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/**
2
 * Marlin 3D Printer Firmware
3
 * Copyright (C) 2016 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
4
 *
5
 * Based on Sprinter and grbl.
6
 * Copyright (C) 2011 Camiel Gubbels / Erik van der Zalm
7
 *
8
 * This program is free software: you can redistribute it and/or modify
9
 * it under the terms of the GNU General Public License as published by
10
 * the Free Software Foundation, either version 3 of the License, or
11
 * (at your option) any later version.
12
 *
13
 * This program is distributed in the hope that it will be useful,
14
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
15
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
16
 * GNU General Public License for more details.
17
 *
18
 * You should have received a copy of the GNU General Public License
19
 * along with this program.  If not, see <http://www.gnu.org/licenses/>.
20
 *
21
 */
22
 
23
/**
24
 * Configuration.h
25
 *
26
 * Basic settings such as:
27
 *
28
 * - Type of electronics
29
 * - Type of temperature sensor
30
 * - Printer geometry
31
 * - Endstop configuration
32
 * - LCD controller
33
 * - Extra features
34
 *
35
 * Advanced settings can be found in Configuration_adv.h
36
 *
37
 */
38
#ifndef CONFIGURATION_H
39
#define CONFIGURATION_H
40
#define CONFIGURATION_H_VERSION 010109
41
 
42
//===========================================================================
43
//============================= Getting Started =============================
44
//===========================================================================
45
 
46
/**
47
 * Here are some standard links for getting your machine calibrated:
48
 *
49
 * http://reprap.org/wiki/Calibration
50
 * http://youtu.be/wAL9d7FgInk
51
 * http://calculator.josefprusa.cz
52
 * http://reprap.org/wiki/Triffid_Hunter%27s_Calibration_Guide
53
 * http://www.thingiverse.com/thing:5573
54
 * https://sites.google.com/site/repraplogphase/calibration-of-your-reprap
55
 * http://www.thingiverse.com/thing:298812
56
 */
57
 
58
//===========================================================================
59
//============================= DELTA Printer ===============================
60
//===========================================================================
61
// For a Delta printer start with one of the configuration files in the
62
// example_configurations/delta directory and customize for your machine.
63
//
64
 
65
//===========================================================================
66
//============================= SCARA Printer ===============================
67
//===========================================================================
68
// For a SCARA printer start with the configuration files in
69
// example_configurations/SCARA and customize for your machine.
70
//
71
 
72
//===========================================================================
73
//============================= HANGPRINTER =================================
74
//===========================================================================
75
// For a Hangprinter start with the configuration file in the
76
// example_configurations/hangprinter directory and customize for your machine.
77
//
78
 
79
// @section info
80
 
81
// User-specified version info of this build to display in [Pronterface, etc] terminal window during
82
// startup. Implementation of an idea by Prof Braino to inform user that any changes made to this
83
// build by the user have been successfully uploaded into firmware.
84
#define STRING_CONFIG_H_AUTHOR "(Aleph Objects Inc, TAZ)" // Who made the changes.
85
#define SHOW_BOOTSCREEN
86
#define STRING_SPLASH_LINE1 SHORT_BUILD_VERSION // will be shown during bootup in line 1
87
#define STRING_SPLASH_LINE2 WEBSITE_URL         // will be shown during bootup in line 2
88
 
89
/**
90
 * *** VENDORS PLEASE READ ***
91
 *
92
 * Marlin allows you to add a custom boot image for Graphical LCDs.
93
 * With this option Marlin will first show your custom screen followed
94
 * by the standard Marlin logo with version number and web URL.
95
 *
96
 * We encourage you to take advantage of this new feature and we also
97
 * respectfully request that you retain the unmodified Marlin boot screen.
98
 */
99
 
100
// Enable to show the bitmap in Marlin/_Bootscreen.h on startup.
101
//#define SHOW_CUSTOM_BOOTSCREEN
102
 
103
// Enable to show the bitmap in Marlin/_Statusscreen.h on the status screen.
104
//#define CUSTOM_STATUS_SCREEN_IMAGE
105
 
106
// @section machine
107
 
108
/**
109
 * Select the serial port on the board to use for communication with the host.
110
 * This allows the connection of wireless adapters (for instance) to non-default port pins.
111
 * Serial port 0 is always used by the Arduino bootloader regardless of this setting.
112
 *
113
 * :[0, 1, 2, 3, 4, 5, 6, 7]
114
 */
115
#define SERIAL_PORT 0
116
 
117
/**
118
 * This setting determines the communication speed of the printer.
119
 *
120
 * 250000 works in most cases, but you might try a lower speed if
121
 * you commonly experience drop-outs during host printing.
122
 * You may try up to 1000000 to speed up SD file transfer.
123
 *
124
 * :[2400, 9600, 19200, 38400, 57600, 115200, 250000, 500000, 1000000]
125
 */
126
#define BAUDRATE 250000
127
 
128
// Enable the Bluetooth serial interface on AT90USB devices
129
//#define BLUETOOTH
130
 
131
// The following define selects which electronics board you have.
132
// Please choose the name from boards.h that matches your setup
133
#ifndef MOTHERBOARD
134
  #define MOTHERBOARD BOARD_RAMBO
135
#endif
136
 
137
// Optional custom name for your RepStrap or other custom machine
138
// Displayed in the LCD "Ready" message
139
#define CUSTOM_MACHINE_NAME "TAZ"
140
 
141
// Define this to set a unique identifier for this printer, (Used by some programs to differentiate between machines)
142
// You can use an online service to generate a random UUID. (eg http://www.uuidgenerator.net/version4)
143
//#define MACHINE_UUID "00000000-0000-0000-0000-000000000000"
144
 
145
// @section extruder
146
 
147
// This defines the number of extruders
148
// :[1, 2, 3, 4, 5]
149
#define EXTRUDERS 1
150
 
151
// Generally expected filament diameter (1.75, 2.85, 3.0, ...). Used for Volumetric, Filament Width Sensor, etc.
152
#define DEFAULT_NOMINAL_FILAMENT_DIA 3.0
153
 
154
// For Cyclops or any "multi-extruder" that shares a single nozzle.
155
//#define SINGLENOZZLE
156
 
157
/**
158
 * Průša MK2 Single Nozzle Multi-Material Multiplexer, and variants.
159
 *
160
 * This device allows one stepper driver on a control board to drive
161
 * two to eight stepper motors, one at a time, in a manner suitable
162
 * for extruders.
163
 *
164
 * This option only allows the multiplexer to switch on tool-change.
165
 * Additional options to configure custom E moves are pending.
166
 */
167
//#define MK2_MULTIPLEXER
168
#if ENABLED(MK2_MULTIPLEXER)
169
  // Override the default DIO selector pins here, if needed.
170
  // Some pins files may provide defaults for these pins.
171
  //#define E_MUX0_PIN 40  // Always Required
172
  //#define E_MUX1_PIN 42  // Needed for 3 to 8 steppers
173
  //#define E_MUX2_PIN 44  // Needed for 5 to 8 steppers
174
#endif
175
 
176
// A dual extruder that uses a single stepper motor
177
//#define SWITCHING_EXTRUDER
178
#if ENABLED(SWITCHING_EXTRUDER)
179
  #define SWITCHING_EXTRUDER_SERVO_NR 0
180
  #define SWITCHING_EXTRUDER_SERVO_ANGLES { 0, 90 } // Angles for E0, E1[, E2, E3]
181
  #if EXTRUDERS > 3
182
    #define SWITCHING_EXTRUDER_E23_SERVO_NR 1
183
  #endif
184
#endif
185
 
186
// A dual-nozzle that uses a servomotor to raise/lower one of the nozzles
187
//#define SWITCHING_NOZZLE
188
#if ENABLED(SWITCHING_NOZZLE)
189
  #define SWITCHING_NOZZLE_SERVO_NR 0
190
  #define SWITCHING_NOZZLE_SERVO_ANGLES { 0, 90 }   // Angles for E0, E1
191
  //#define HOTEND_OFFSET_Z { 0.0, 0.0 }
192
#endif
193
 
194
/**
195
 * Two separate X-carriages with extruders that connect to a moving part
196
 * via a magnetic docking mechanism. Requires SOL1_PIN and SOL2_PIN.
197
 */
198
//#define PARKING_EXTRUDER
199
#if ENABLED(PARKING_EXTRUDER)
200
  #define PARKING_EXTRUDER_SOLENOIDS_INVERT           // If enabled, the solenoid is NOT magnetized with applied voltage
201
  #define PARKING_EXTRUDER_SOLENOIDS_PINS_ACTIVE LOW  // LOW or HIGH pin signal energizes the coil
202
  #define PARKING_EXTRUDER_SOLENOIDS_DELAY 250        // Delay (ms) for magnetic field. No delay if 0 or not defined.
203
  #define PARKING_EXTRUDER_PARKING_X { -78, 184 }     // X positions for parking the extruders
204
  #define PARKING_EXTRUDER_GRAB_DISTANCE 1            // mm to move beyond the parking point to grab the extruder
205
  #define PARKING_EXTRUDER_SECURITY_RAISE 5           // Z-raise before parking
206
  #define HOTEND_OFFSET_Z { 0.0, 1.3 }                // Z-offsets of the two hotends. The first must be 0.
207
#endif
208
 
209
/**
210
 * "Mixing Extruder"
211
 *   - Adds G-codes M163 and M164 to set and "commit" the current mix factors.
212
 *   - Extends the stepping routines to move multiple steppers in proportion to the mix.
213
 *   - Optional support for Repetier Firmware's 'M164 S<index>' supporting virtual tools.
214
 *   - This implementation supports up to two mixing extruders.
215
 *   - Enable DIRECT_MIXING_IN_G1 for M165 and mixing in G1 (from Pia Taubert's reference implementation).
216
 */
217
//#define MIXING_EXTRUDER
218
#if ENABLED(MIXING_EXTRUDER)
219
  #define MIXING_STEPPERS 2        // Number of steppers in your mixing extruder
220
  #define MIXING_VIRTUAL_TOOLS 16  // Use the Virtual Tool method with M163 and M164
221
  //#define DIRECT_MIXING_IN_G1    // Allow ABCDHI mix factors in G1 movement commands
222
#endif
223
 
224
// Offset of the extruders (uncomment if using more than one and relying on firmware to position when changing).
225
// The offset has to be X=0, Y=0 for the extruder 0 hotend (default extruder).
226
// For the other hotends it is their distance from the extruder 0 hotend.
227
//#define HOTEND_OFFSET_X {0.0, 20.00} // (in mm) for each extruder, offset of the hotend on the X axis
228
//#define HOTEND_OFFSET_Y {0.0, 5.00}  // (in mm) for each extruder, offset of the hotend on the Y axis
229
 
230
// @section machine
231
 
232
/**
233
 * Select your power supply here. Use 0 if you haven't connected the PS_ON_PIN
234
 *
235
 * 0 = No Power Switch
236
 * 1 = ATX
237
 * 2 = X-Box 360 203Watts (the blue wire connected to PS_ON and the red wire to VCC)
238
 *
239
 * :{ 0:'No power switch', 1:'ATX', 2:'X-Box 360' }
240
 */
241
#define POWER_SUPPLY 1
242
 
243
#if POWER_SUPPLY > 0
244
  // Enable this option to leave the PSU off at startup.
245
  // Power to steppers and heaters will need to be turned on with M80.
246
  //#define PS_DEFAULT_OFF
247
 
248
  //#define AUTO_POWER_CONTROL        // Enable automatic control of the PS_ON pin
249
  #if ENABLED(AUTO_POWER_CONTROL)
250
    #define AUTO_POWER_FANS           // Turn on PSU if fans need power
251
    #define AUTO_POWER_E_FANS
252
    #define AUTO_POWER_CONTROLLERFAN
253
    #define POWER_TIMEOUT 30
254
  #endif
255
 
256
#endif
257
 
258
// @section temperature
259
 
260
//===========================================================================
261
//============================= Thermal Settings ============================
262
//===========================================================================
263
 
264
/**
265
 * --NORMAL IS 4.7kohm PULLUP!-- 1kohm pullup can be used on hotend sensor, using correct resistor and table
266
 *
267
 * Temperature sensors available:
268
 *
269
 *    -4 : thermocouple with AD8495
270
 *    -3 : thermocouple with MAX31855 (only for sensor 0)
271
 *    -2 : thermocouple with MAX6675 (only for sensor 0)
272
 *    -1 : thermocouple with AD595
273
 *     0 : not used
274
 *     1 : 100k thermistor - best choice for EPCOS 100k (4.7k pullup)
275
 *     2 : 200k thermistor - ATC Semitec 204GT-2 (4.7k pullup)
276
 *     3 : Mendel-parts thermistor (4.7k pullup)
277
 *     4 : 10k thermistor !! do not use it for a hotend. It gives bad resolution at high temp. !!
278
 *     5 : 100K thermistor - ATC Semitec 104GT-2/104NT-4-R025H42G (Used in ParCan & J-Head) (4.7k pullup)
279
 *   501 : 100K Zonestar (Tronxy X3A) Thermistor
280
 *     6 : 100k EPCOS - Not as accurate as table 1 (created using a fluke thermocouple) (4.7k pullup)
281
 *     7 : 100k Honeywell thermistor 135-104LAG-J01 (4.7k pullup)
282
 *    71 : 100k Honeywell thermistor 135-104LAF-J01 (4.7k pullup)
283
 *     8 : 100k 0603 SMD Vishay NTCS0603E3104FXT (4.7k pullup)
284
 *     9 : 100k GE Sensing AL03006-58.2K-97-G1 (4.7k pullup)
285
 *    10 : 100k RS thermistor 198-961 (4.7k pullup)
286
 *    11 : 100k beta 3950 1% thermistor (4.7k pullup)
287
 *    12 : 100k 0603 SMD Vishay NTCS0603E3104FXT (4.7k pullup) (calibrated for Makibox hot bed)
288
 *    13 : 100k Hisens 3950  1% up to 300°C for hotend "Simple ONE " & "Hotend "All In ONE"
289
 *    15 : 100k thermistor calibration for JGAurora A5 hotend
290
 *    20 : the PT100 circuit found in the Ultimainboard V2.x
291
 *    60 : 100k Maker's Tool Works Kapton Bed Thermistor beta=3950
292
 *    66 : 4.7M High Temperature thermistor from Dyze Design
293
 *    70 : the 100K thermistor found in the bq Hephestos 2
294
 *    75 : 100k Generic Silicon Heat Pad with NTC 100K MGB18-104F39050L32 thermistor
295
 *
296
 *       1k ohm pullup tables - This is atypical, and requires changing out the 4.7k pullup for 1k.
297
 *                              (but gives greater accuracy and more stable PID)
298
 *    51 : 100k thermistor - EPCOS (1k pullup)
299
 *    52 : 200k thermistor - ATC Semitec 204GT-2 (1k pullup)
300
 *    55 : 100k thermistor - ATC Semitec 104GT-2 (Used in ParCan & J-Head) (1k pullup)
301
 *
302
 *  1047 : Pt1000 with 4k7 pullup
303
 *  1010 : Pt1000 with 1k pullup (non standard)
304
 *   147 : Pt100 with 4k7 pullup
305
 *   110 : Pt100 with 1k pullup (non standard)
306
 *
307
 *         Use these for Testing or Development purposes. NEVER for production machine.
308
 *   998 : Dummy Table that ALWAYS reads 25°C or the temperature defined below.
309
 *   999 : Dummy Table that ALWAYS reads 100°C or the temperature defined below.
310
 *
311
 * :{ '0': "Not used", '1':"100k / 4.7k - EPCOS", '2':"200k / 4.7k - ATC Semitec 204GT-2", '3':"Mendel-parts / 4.7k", '4':"10k !! do not use for a hotend. Bad resolution at high temp. !!", '5':"100K / 4.7k - ATC Semitec 104GT-2 (Used in ParCan & J-Head)", '501':"100K Zonestar (Tronxy X3A)", '6':"100k / 4.7k EPCOS - Not as accurate as Table 1", '7':"100k / 4.7k Honeywell 135-104LAG-J01", '8':"100k / 4.7k 0603 SMD Vishay NTCS0603E3104FXT", '9':"100k / 4.7k GE Sensing AL03006-58.2K-97-G1", '10':"100k / 4.7k RS 198-961", '11':"100k / 4.7k beta 3950 1%", '12':"100k / 4.7k 0603 SMD Vishay NTCS0603E3104FXT (calibrated for Makibox hot bed)", '13':"100k Hisens 3950  1% up to 300°C for hotend 'Simple ONE ' & hotend 'All In ONE'", '20':"PT100 (Ultimainboard V2.x)", '51':"100k / 1k - EPCOS", '52':"200k / 1k - ATC Semitec 204GT-2", '55':"100k / 1k - ATC Semitec 104GT-2 (Used in ParCan & J-Head)", '60':"100k Maker's Tool Works Kapton Bed Thermistor beta=3950", '66':"Dyze Design 4.7M High Temperature thermistor", '70':"the 100K thermistor found in the bq Hephestos 2", '71':"100k / 4.7k Honeywell 135-104LAF-J01", '147':"Pt100 / 4.7k", '1047':"Pt1000 / 4.7k", '110':"Pt100 / 1k (non-standard)", '1010':"Pt1000 / 1k (non standard)", '-4':"Thermocouple + AD8495", '-3':"Thermocouple + MAX31855 (only for sensor 0)", '-2':"Thermocouple + MAX6675 (only for sensor 0)", '-1':"Thermocouple + AD595",'998':"Dummy 1", '999':"Dummy 2" }
312
 */
313
#define TEMP_SENSOR_0 7
314
#define TEMP_SENSOR_1 0
315
#define TEMP_SENSOR_2 0
316
#define TEMP_SENSOR_3 0
317
#define TEMP_SENSOR_4 0
318
#define TEMP_SENSOR_BED 7
319
#define TEMP_SENSOR_CHAMBER 0
320
 
321
// Dummy thermistor constant temperature readings, for use with 998 and 999
322
#define DUMMY_THERMISTOR_998_VALUE 25
323
#define DUMMY_THERMISTOR_999_VALUE 100
324
 
325
// Use temp sensor 1 as a redundant sensor with sensor 0. If the readings
326
// from the two sensors differ too much the print will be aborted.
327
//#define TEMP_SENSOR_1_AS_REDUNDANT
328
#define MAX_REDUNDANT_TEMP_SENSOR_DIFF 10
329
 
330
// Extruder temperature must be close to target for this long before M109 returns success
331
#define TEMP_RESIDENCY_TIME 10  // (seconds)
332
#define TEMP_HYSTERESIS 3       // (degC) range of +/- temperatures considered "close" to the target one
333
#define TEMP_WINDOW     1       // (degC) Window around target to start the residency timer x degC early.
334
 
335
// Bed temperature must be close to target for this long before M190 returns success
336
#define TEMP_BED_RESIDENCY_TIME 0   // (seconds)
337
#define TEMP_BED_HYSTERESIS 3       // (degC) range of +/- temperatures considered "close" to the target one
338
#define TEMP_BED_WINDOW     1       // (degC) Window around target to start the residency timer x degC early.
339
 
340
// The minimal temperature defines the temperature below which the heater will not be enabled It is used
341
// to check that the wiring to the thermistor is not broken.
342
// Otherwise this would lead to the heater being powered on all the time.
343
#define HEATER_0_MINTEMP 5
344
#define HEATER_1_MINTEMP 5
345
#define HEATER_2_MINTEMP 5
346
#define HEATER_3_MINTEMP 5
347
#define HEATER_4_MINTEMP 5
348
#define BED_MINTEMP      5
349
 
350
// When temperature exceeds max temp, your heater will be switched off.
351
// This feature exists to protect your hotend from overheating accidentally, but *NOT* from thermistor short/failure!
352
// You should use MINTEMP for thermistor short/failure protection.
353
#define HEATER_0_MAXTEMP 250
354
#define HEATER_1_MAXTEMP 250
355
#define HEATER_2_MAXTEMP 250
356
#define HEATER_3_MAXTEMP 250
357
#define HEATER_4_MAXTEMP 250
358
#define BED_MAXTEMP      150
359
 
360
//===========================================================================
361
//============================= PID Settings ================================
362
//===========================================================================
363
// PID Tuning Guide here: http://reprap.org/wiki/PID_Tuning
364
 
365
// Comment the following line to disable PID and enable bang-bang.
366
#define PIDTEMP
367
#define BANG_MAX 70      // Limits current to nozzle while in bang-bang mode; 255=full current
368
#define PID_MAX  74      // Limits current to nozzle while PID is active (see PID_FUNCTIONAL_RANGE below); 255=full current
369
#define PID_K1 0.95      // Smoothing factor within any PID loop
370
#if ENABLED(PIDTEMP)
371
  //#define PID_AUTOTUNE_MENU // Add PID Autotune to the LCD "Temperature" menu to run M303 and apply the result.
372
  //#define PID_DEBUG // Sends debug data to the serial port.
373
  //#define PID_OPENLOOP 1 // Puts PID in open loop. M104/M140 sets the output power from 0 to PID_MAX
374
  //#define SLOW_PWM_HEATERS // PWM with very low frequency (roughly 0.125Hz=8s) and minimum state time of approximately 1s useful for heaters driven by a relay
375
  //#define PID_PARAMS_PER_HOTEND // Uses separate PID parameters for each extruder (useful for mismatched extruders)
376
                                  // Set/get with gcode: M301 E[extruder number, 0-2]
377
  #define PID_FUNCTIONAL_RANGE 16 // If the temperature difference between the target temperature and the actual temperature
378
                                  // is more than PID_FUNCTIONAL_RANGE then the PID will be shut off and the heater will be set to min/max.
379
 
380
  // If you are using a pre-configured hotend then you can use one of the value sets by uncommenting it
381
  // Buda 2.0 on 24V
382
  #define DEFAULT_Kp 6
383
  #define DEFAULT_Ki .3
384
  #define DEFAULT_Kd 125
385
 
386
  // Buda 2.0 on 12V
387
  //#define DEFAULT_Kp 22.2
388
  //#define DEFAULT_Ki 1.01
389
  //#define DEFAULT_Kd 114
390
 
391
  // Ultimaker
392
  //#define DEFAULT_Kp 22.2
393
  //#define DEFAULT_Ki 1.08
394
  //#define DEFAULT_Kd 114
395
 
396
  // MakerGear
397
  //#define DEFAULT_Kp 7.0
398
  //#define DEFAULT_Ki 0.1
399
  //#define DEFAULT_Kd 12
400
 
401
  // Mendel Parts V9 on 12V
402
  //#define DEFAULT_Kp 63.0
403
  //#define DEFAULT_Ki 2.25
404
  //#define DEFAULT_Kd 440
405
 
406
#endif // PIDTEMP
407
 
408
//===========================================================================
409
//============================= PID > Bed Temperature Control ===============
410
//===========================================================================
411
 
412
/**
413
 * PID Bed Heating
414
 *
415
 * If this option is enabled set PID constants below.
416
 * If this option is disabled, bang-bang will be used and BED_LIMIT_SWITCHING will enable hysteresis.
417
 *
418
 * The PID frequency will be the same as the extruder PWM.
419
 * If PID_dT is the default, and correct for the hardware/configuration, that means 7.689Hz,
420
 * which is fine for driving a square wave into a resistive load and does not significantly
421
 * impact FET heating. This also works fine on a Fotek SSR-10DA Solid State Relay into a 250W
422
 * heater. If your configuration is significantly different than this and you don't understand
423
 * the issues involved, don't use bed PID until someone else verifies that your hardware works.
424
 */
425
#define PIDTEMPBED
426
 
427
//#define BED_LIMIT_SWITCHING
428
 
429
/**
430
 * Max Bed Power
431
 * Applies to all forms of bed control (PID, bang-bang, and bang-bang with hysteresis).
432
 * When set to any value below 255, enables a form of PWM to the bed that acts like a divider
433
 * so don't use it unless you are OK with PWM on your bed. (See the comment on enabling PIDTEMPBED)
434
 */
435
#define MAX_BED_POWER 206 // limits duty cycle to bed; 255=full current
436
 
437
#if ENABLED(PIDTEMPBED)
438
 
439
  //#define PID_BED_DEBUG // Sends debug data to the serial port.
440
 
441
  //24V 360W silicone heater from NPH on 3mm borosilicate (TAZ 2.2+)
442
  #define DEFAULT_bedKp 20
443
  #define DEFAULT_bedKi 5
444
  #define DEFAULT_bedKd 275
445
 
446
  //12v 400W silicone heater from QUDB into 3mm borosilicate (TAZ 1.0+)
447
  //from pidautotune
448
  //#define DEFAULT_bedKp 650
449
  //#define DEFAULT_bedKi 60
450
  //#define DEFAULT_bedKd 1800
451
 
452
  //120V 250W silicone heater into 4mm borosilicate (MendelMax 1.5+)
453
  //from FOPDT model - kp=.39 Tp=405 Tdead=66, Tc set to 79.2, aggressive factor of .15 (vs .1, 1, 10)
454
  //#define DEFAULT_bedKp 10.00
455
  //#define DEFAULT_bedKi .023
456
  //#define DEFAULT_bedKd 305.4
457
 
458
  //120V 250W silicone heater into 4mm borosilicate (MendelMax 1.5+)
459
  //from pidautotune
460
  //#define DEFAULT_bedKp 97.1
461
  //#define DEFAULT_bedKi 1.41
462
  //#define DEFAULT_bedKd 1675.16
463
 
464
  // FIND YOUR OWN: "M303 E-1 C8 S90" to run autotune on the bed at 90 degreesC for 8 cycles.
465
#endif // PIDTEMPBED
466
 
467
// @section extruder
468
 
469
/**
470
 * Prevent extrusion if the temperature is below EXTRUDE_MINTEMP.
471
 * Add M302 to set the minimum extrusion temperature and/or turn
472
 * cold extrusion prevention on and off.
473
 *
474
 * *** IT IS HIGHLY RECOMMENDED TO LEAVE THIS OPTION ENABLED! ***
475
 */
476
#define PREVENT_COLD_EXTRUSION
477
#define EXTRUDE_MINTEMP 170
478
 
479
/**
480
 * Prevent a single extrusion longer than EXTRUDE_MAXLENGTH.
481
 * Note: For Bowden Extruders make this large enough to allow load/unload.
482
 */
483
#define PREVENT_LENGTHY_EXTRUDE
484
#define EXTRUDE_MAXLENGTH 200
485
 
486
//===========================================================================
487
//======================== Thermal Runaway Protection =======================
488
//===========================================================================
489
 
490
/**
491
 * Thermal Protection provides additional protection to your printer from damage
492
 * and fire. Marlin always includes safe min and max temperature ranges which
493
 * protect against a broken or disconnected thermistor wire.
494
 *
495
 * The issue: If a thermistor falls out, it will report the much lower
496
 * temperature of the air in the room, and the the firmware will keep
497
 * the heater on.
498
 *
499
 * If you get "Thermal Runaway" or "Heating failed" errors the
500
 * details can be tuned in Configuration_adv.h
501
 */
502
 
503
#define THERMAL_PROTECTION_HOTENDS // Enable thermal protection for all extruders
504
#define THERMAL_PROTECTION_BED     // Enable thermal protection for the heated bed
505
 
506
//===========================================================================
507
//============================= Mechanical Settings =========================
508
//===========================================================================
509
 
510
// @section machine
511
 
512
// Uncomment one of these options to enable CoreXY, CoreXZ, or CoreYZ kinematics
513
// either in the usual order or reversed
514
//#define COREXY
515
//#define COREXZ
516
//#define COREYZ
517
//#define COREYX
518
//#define COREZX
519
//#define COREZY
520
 
521
//===========================================================================
522
//============================== Endstop Settings ===========================
523
//===========================================================================
524
 
525
// @section homing
526
 
527
// Specify here all the endstop connectors that are connected to any endstop or probe.
528
// Almost all printers will be using one per axis. Probes will use one or more of the
529
// extra connectors. Leave undefined any used for non-endstop and non-probe purposes.
530
#define USE_XMIN_PLUG
531
#define USE_YMIN_PLUG
532
#define USE_ZMIN_PLUG
533
//#define USE_XMAX_PLUG
534
//#define USE_YMAX_PLUG
535
//#define USE_ZMAX_PLUG
536
 
537
// Enable pullup for all endstops to prevent a floating state
538
#define ENDSTOPPULLUPS
539
#if DISABLED(ENDSTOPPULLUPS)
540
  // Disable ENDSTOPPULLUPS to set pullups individually
541
  //#define ENDSTOPPULLUP_XMAX
542
  //#define ENDSTOPPULLUP_YMAX
543
  //#define ENDSTOPPULLUP_ZMAX
544
  //#define ENDSTOPPULLUP_XMIN
545
  //#define ENDSTOPPULLUP_YMIN
546
  //#define ENDSTOPPULLUP_ZMIN
547
  //#define ENDSTOPPULLUP_ZMIN_PROBE
548
#endif
549
 
550
// Mechanical endstop with COM to ground and NC to Signal uses "false" here (most common setup).
551
#define X_MIN_ENDSTOP_INVERTING true  // set to true to invert the logic of the endstop.
552
#define Y_MIN_ENDSTOP_INVERTING true  // set to true to invert the logic of the endstop.
553
#define Z_MIN_ENDSTOP_INVERTING true  // set to true to invert the logic of the endstop.
554
#define X_MAX_ENDSTOP_INVERTING true  // set to true to invert the logic of the endstop.
555
#define Y_MAX_ENDSTOP_INVERTING true  // set to true to invert the logic of the endstop.
556
#define Z_MAX_ENDSTOP_INVERTING true  // set to true to invert the logic of the endstop.
557
#define Z_MIN_PROBE_ENDSTOP_INVERTING true  // set to true to invert the logic of the probe.
558
 
559
/**
560
 * Stepper Drivers
561
 *
562
 * These settings allow Marlin to tune stepper driver timing and enable advanced options for
563
 * stepper drivers that support them. You may also override timing options in Configuration_adv.h.
564
 *
565
 * A4988 is assumed for unspecified drivers.
566
 *
567
 * Options: A4988, DRV8825, LV8729, L6470, TB6560, TB6600, TMC2100,
568
 *          TMC2130, TMC2130_STANDALONE, TMC2208, TMC2208_STANDALONE,
569
 *          TMC26X,  TMC26X_STANDALONE,  TMC2660, TMC2660_STANDALONE,
570
 *          TMC5130, TMC5130_STANDALONE
571
 * :['A4988', 'DRV8825', 'LV8729', 'L6470', 'TB6560', 'TB6600', 'TMC2100', 'TMC2130', 'TMC2130_STANDALONE', 'TMC2208', 'TMC2208_STANDALONE', 'TMC26X', 'TMC26X_STANDALONE', 'TMC2660', 'TMC2660_STANDALONE', 'TMC5130', 'TMC5130_STANDALONE']
572
 */
573
//#define X_DRIVER_TYPE  A4988
574
//#define Y_DRIVER_TYPE  A4988
575
//#define Z_DRIVER_TYPE  A4988
576
//#define X2_DRIVER_TYPE A4988
577
//#define Y2_DRIVER_TYPE A4988
578
//#define Z2_DRIVER_TYPE A4988
579
//#define E0_DRIVER_TYPE A4988
580
//#define E1_DRIVER_TYPE A4988
581
//#define E2_DRIVER_TYPE A4988
582
//#define E3_DRIVER_TYPE A4988
583
//#define E4_DRIVER_TYPE A4988
584
 
585
// Enable this feature if all enabled endstop pins are interrupt-capable.
586
// This will remove the need to poll the interrupt pins, saving many CPU cycles.
587
//#define ENDSTOP_INTERRUPTS_FEATURE
588
 
589
/**
590
 * Endstop Noise Filter
591
 *
592
 * Enable this option if endstops falsely trigger due to noise.
593
 * NOTE: Enabling this feature means adds an error of +/-0.2mm, so homing
594
 * will end up at a slightly different position on each G28. This will also
595
 * reduce accuracy of some bed probes.
596
 * For mechanical switches, the better approach to reduce noise is to install
597
 * a 100 nanofarads ceramic capacitor in parallel with the switch, making it
598
 * essentially noise-proof without sacrificing accuracy.
599
 * This option also increases MCU load when endstops or the probe are enabled.
600
 * So this is not recommended. USE AT YOUR OWN RISK.
601
 * (This feature is not required for common micro-switches mounted on PCBs
602
 * based on the Makerbot design, since they already include the 100nF capacitor.)
603
 */
604
//#define ENDSTOP_NOISE_FILTER
605
 
606
//=============================================================================
607
//============================== Movement Settings ============================
608
//=============================================================================
609
// @section motion
610
 
611
/**
612
 * Default Settings
613
 *
614
 * These settings can be reset by M502
615
 *
616
 * Note that if EEPROM is enabled, saved values will override these.
617
 */
618
 
619
/**
620
 * With this option each E stepper can have its own factors for the
621
 * following movement settings. If fewer factors are given than the
622
 * total number of extruders, the last value applies to the rest.
623
 */
624
//#define DISTINCT_E_FACTORS
625
 
626
/**
627
 * Default Axis Steps Per Unit (steps/mm)
628
 * Override with M92
629
 *                                      X, Y, Z, E0 [, E1[, E2[, E3[, E4]]]]
630
 */
631
#define DEFAULT_AXIS_STEPS_PER_UNIT   { 100.5, 100.5, 400, 850 }
632
 
633
/**
634
 * Default Max Feed Rate (mm/s)
635
 * Override with M203
636
 *                                      X, Y, Z, E0 [, E1[, E2[, E3[, E4]]]]
637
 */
638
#define DEFAULT_MAX_FEEDRATE          { 800, 800, 8, 50 }
639
 
640
/**
641
 * Default Max Acceleration (change/s) change = mm/s
642
 * (Maximum start speed for accelerated moves)
643
 * Override with M201
644
 *                                      X, Y, Z, E0 [, E1[, E2[, E3[, E4]]]]
645
 */
646
#define DEFAULT_MAX_ACCELERATION      { 9000, 9000, 100, 10000 }
647
 
648
/**
649
 * Default Acceleration (change/s) change = mm/s
650
 * Override with M204
651
 *
652
 *   M204 P    Acceleration
653
 *   M204 R    Retract Acceleration
654
 *   M204 T    Travel Acceleration
655
 */
656
#define DEFAULT_ACCELERATION          500     // X, Y, Z and E acceleration for printing moves
657
#define DEFAULT_RETRACT_ACCELERATION  3000    // E acceleration for retracts
658
#define DEFAULT_TRAVEL_ACCELERATION   3000    // X, Y, Z acceleration for travel (non printing) moves
659
 
660
/**
661
 * Default Jerk (mm/s)
662
 * Override with M205 X Y Z E
663
 *
664
 * "Jerk" specifies the minimum speed change that requires acceleration.
665
 * When changing speed and direction, if the difference is less than the
666
 * value set here, it may happen instantaneously.
667
 */
668
#define DEFAULT_XJERK                  8.0
669
#define DEFAULT_YJERK                  8.0
670
#define DEFAULT_ZJERK                  0.3
671
#define DEFAULT_EJERK                 10.0
672
 
673
/**
674
 * S-Curve Acceleration
675
 *
676
 * This option eliminates vibration during printing by fitting a Bézier
677
 * curve to move acceleration, producing much smoother direction changes.
678
 *
679
 * See https://github.com/synthetos/TinyG/wiki/Jerk-Controlled-Motion-Explained
680
 */
681
//#define S_CURVE_ACCELERATION
682
 
683
//===========================================================================
684
//============================= Z Probe Options =============================
685
//===========================================================================
686
// @section probes
687
 
688
//
689
// See http://marlinfw.org/docs/configuration/probes.html
690
//
691
 
692
/**
693
 * Z_MIN_PROBE_USES_Z_MIN_ENDSTOP_PIN
694
 *
695
 * Enable this option for a probe connected to the Z Min endstop pin.
696
 */
697
#define Z_MIN_PROBE_USES_Z_MIN_ENDSTOP_PIN
698
 
699
/**
700
 * Z_MIN_PROBE_ENDSTOP
701
 *
702
 * Enable this option for a probe connected to any pin except Z-Min.
703
 * (By default Marlin assumes the Z-Max endstop pin.)
704
 * To use a custom Z Probe pin, set Z_MIN_PROBE_PIN below.
705
 *
706
 *  - The simplest option is to use a free endstop connector.
707
 *  - Use 5V for powered (usually inductive) sensors.
708
 *
709
 *  - RAMPS 1.3/1.4 boards may use the 5V, GND, and Aux4->D32 pin:
710
 *    - For simple switches connect...
711
 *      - normally-closed switches to GND and D32.
712
 *      - normally-open switches to 5V and D32.
713
 *
714
 * WARNING: Setting the wrong pin may have unexpected and potentially
715
 * disastrous consequences. Use with caution and do your homework.
716
 *
717
 */
718
//#define Z_MIN_PROBE_ENDSTOP
719
 
720
/**
721
 * Probe Type
722
 *
723
 * Allen Key Probes, Servo Probes, Z-Sled Probes, FIX_MOUNTED_PROBE, etc.
724
 * Activate one of these to use Auto Bed Leveling below.
725
 */
726
 
727
/**
728
 * The "Manual Probe" provides a means to do "Auto" Bed Leveling without a probe.
729
 * Use G29 repeatedly, adjusting the Z height at each point with movement commands
730
 * or (with LCD_BED_LEVELING) the LCD controller.
731
 */
732
//#define PROBE_MANUALLY
733
//#define MANUAL_PROBE_START_Z 0.2
734
 
735
/**
736
 * A Fix-Mounted Probe either doesn't deploy or needs manual deployment.
737
 *   (e.g., an inductive probe or a nozzle-based probe-switch.)
738
 */
739
#define FIX_MOUNTED_PROBE
740
 
741
/**
742
 * Z Servo Probe, such as an endstop switch on a rotating arm.
743
 */
744
//#define Z_PROBE_SERVO_NR 0   // Defaults to SERVO 0 connector.
745
//#define Z_SERVO_ANGLES {70,0}  // Z Servo Deploy and Stow angles
746
 
747
/**
748
 * The BLTouch probe uses a Hall effect sensor and emulates a servo.
749
 */
750
//#define BLTOUCH
751
 
752
/**
753
 * Enable one or more of the following if probing seems unreliable.
754
 * Heaters and/or fans can be disabled during probing to minimize electrical
755
 * noise. A delay can also be added to allow noise and vibration to settle.
756
 * These options are most useful for the BLTouch probe, but may also improve
757
 * readings with inductive probes and piezo sensors.
758
 */
759
//#define PROBING_HEATERS_OFF       // Turn heaters off when probing
760
#if ENABLED(PROBING_HEATERS_OFF)
761
  //#define WAIT_FOR_BED_HEATER     // Wait for bed to heat back up between probes (to improve accuracy)
762
#endif
763
//#define PROBING_FANS_OFF          // Turn fans off when probing
764
//#define DELAY_BEFORE_PROBING 200  // (ms) To prevent vibrations from triggering piezo sensors
765
 
766
// A probe that is deployed and stowed with a solenoid pin (SOL1_PIN)
767
//#define SOLENOID_PROBE
768
 
769
// A sled-mounted probe like those designed by Charles Bell.
770
//#define Z_PROBE_SLED
771
//#define SLED_DOCKING_OFFSET 5  // The extra distance the X axis must travel to pickup the sled. 0 should be fine but you can push it further if you'd like.
772
 
773
//
774
// For Z_PROBE_ALLEN_KEY see the Delta example configurations.
775
//
776
 
777
/**
778
 *   Z Probe to nozzle (X,Y) offset, relative to (0, 0).
779
 *   X and Y offsets must be integers.
780
 *
781
 *   In the following example the X and Y offsets are both positive:
782
 *   #define X_PROBE_OFFSET_FROM_EXTRUDER 10
783
 *   #define Y_PROBE_OFFSET_FROM_EXTRUDER 10
784
 *
785
 *      +-- BACK ---+
786
 *      |           |
787
 *    L |    (+) P  | R <-- probe (20,20)
788
 *    E |           | I
789
 *    F | (-) N (+) | G <-- nozzle (10,10)
790
 *    T |           | H
791
 *      |    (-)    | T
792
 *      |           |
793
 *      O-- FRONT --+
794
 *    (0,0)
795
 */
796
#define X_PROBE_OFFSET_FROM_EXTRUDER -25     // X offset: -left  +right  [of the nozzle]
797
#define Y_PROBE_OFFSET_FROM_EXTRUDER -29     // Y offset: -front +behind [the nozzle]
798
#define Z_PROBE_OFFSET_FROM_EXTRUDER -12.35  // Z offset: -below +above  [the nozzle]
799
 
800
// Certain types of probes need to stay away from edges
801
#define MIN_PROBE_EDGE 10
802
 
803
// X and Y axis travel speed (mm/m) between probes
804
#define XY_PROBE_SPEED 8000
805
 
806
// Feedrate (mm/m) for the first approach when double-probing (MULTIPLE_PROBING == 2)
807
#define Z_PROBE_SPEED_FAST HOMING_FEEDRATE_Z
808
 
809
// Feedrate (mm/m) for the "accurate" probe of each point
810
#define Z_PROBE_SPEED_SLOW (Z_PROBE_SPEED_FAST / 2)
811
 
812
// The number of probes to perform at each point.
813
//   Set to 2 for a fast/slow probe, using the second probe result.
814
//   Set to 3 or more for slow probes, averaging the results.
815
//#define MULTIPLE_PROBING 2
816
 
817
/**
818
 * Z probes require clearance when deploying, stowing, and moving between
819
 * probe points to avoid hitting the bed and other hardware.
820
 * Servo-mounted probes require extra space for the arm to rotate.
821
 * Inductive probes need space to keep from triggering early.
822
 *
823
 * Use these settings to specify the distance (mm) to raise the probe (or
824
 * lower the bed). The values set here apply over and above any (negative)
825
 * probe Z Offset set with Z_PROBE_OFFSET_FROM_EXTRUDER, M851, or the LCD.
826
 * Only integer values >= 1 are valid here.
827
 *
828
 * Example: `M851 Z-5` with a CLEARANCE of 4  =>  9mm from bed to nozzle.
829
 *     But: `M851 Z+1` with a CLEARANCE of 2  =>  2mm from bed to nozzle.
830
 */
831
#define Z_CLEARANCE_DEPLOY_PROBE   15 // Z Clearance for Deploy/Stow
832
#define Z_CLEARANCE_BETWEEN_PROBES  5 // Z Clearance between probe points
833
#define Z_CLEARANCE_MULTI_PROBE     5 // Z Clearance between multiple probes
834
//#define Z_AFTER_PROBING           5 // Z position after probing is done
835
 
836
#define Z_PROBE_LOW_POINT          -2 // Farthest distance below the trigger-point to go before stopping
837
 
838
// For M851 give a range for adjusting the Z probe offset
839
#define Z_PROBE_OFFSET_RANGE_MIN -20
840
#define Z_PROBE_OFFSET_RANGE_MAX 20
841
 
842
// Enable the M48 repeatability test to test probe accuracy
843
//#define Z_MIN_PROBE_REPEATABILITY_TEST
844
 
845
// For Inverting Stepper Enable Pins (Active Low) use 0, Non Inverting (Active High) use 1
846
// :{ 0:'Low', 1:'High' }
847
#define X_ENABLE_ON 0
848
#define Y_ENABLE_ON 0
849
#define Z_ENABLE_ON 0
850
#define E_ENABLE_ON 0 // For all extruders
851
 
852
// Disables axis stepper immediately when it's not being used.
853
// WARNING: When motors turn off there is a chance of losing position accuracy!
854
#define DISABLE_X false
855
#define DISABLE_Y false
856
#define DISABLE_Z false
857
// Warn on display about possibly reduced accuracy
858
//#define DISABLE_REDUCED_ACCURACY_WARNING
859
 
860
// @section extruder
861
 
862
#define DISABLE_E false // For all extruders
863
#define DISABLE_INACTIVE_EXTRUDER true // Keep only the active extruder enabled.
864
 
865
// @section machine
866
 
867
// Invert the stepper direction. Change (or reverse the motor connector) if an axis goes the wrong way.
868
#define INVERT_X_DIR false
869
#define INVERT_Y_DIR true
870
#define INVERT_Z_DIR false
871
 
872
// @section extruder
873
 
874
// For direct drive extruder v9 set to true, for geared extruder set to false.
875
#define INVERT_E0_DIR true
876
#define INVERT_E1_DIR true
877
#define INVERT_E2_DIR true
878
#define INVERT_E3_DIR true
879
#define INVERT_E4_DIR true
880
 
881
// @section homing
882
 
883
//#define NO_MOTION_BEFORE_HOMING  // Inhibit movement until all axes have been homed
884
 
885
//#define UNKNOWN_Z_NO_RAISE // Don't raise Z (lower the bed) if Z is "unknown." For beds that fall when Z is powered off.
886
 
887
//#define Z_HOMING_HEIGHT 4  // (in mm) Minimal z height before homing (G28) for Z clearance above the bed, clamps, ...
888
                             // Be sure you have this distance over your Z_MAX_POS in case.
889
 
890
// Direction of endstops when homing; 1=MAX, -1=MIN
891
// :[-1,1]
892
#define X_HOME_DIR -1
893
#define Y_HOME_DIR -1
894
#define Z_HOME_DIR -1
895
 
896
// @section machine
897
 
898
// The size of the print bed
899
#define X_BED_SIZE 298
900
#define Y_BED_SIZE 275
901
 
902
// Travel limits (mm) after homing, corresponding to endstop positions.
903
#define X_MIN_POS 0
904
#define Y_MIN_POS 0
905
#define Z_MIN_POS 0
906
#define X_MAX_POS X_BED_SIZE
907
#define Y_MAX_POS Y_BED_SIZE
908
#define Z_MAX_POS 250
909
 
910
/**
911
 * Software Endstops
912
 *
913
 * - Prevent moves outside the set machine bounds.
914
 * - Individual axes can be disabled, if desired.
915
 * - X and Y only apply to Cartesian robots.
916
 * - Use 'M211' to set software endstops on/off or report current state
917
 */
918
 
919
// Min software endstops constrain movement within minimum coordinate bounds
920
#define MIN_SOFTWARE_ENDSTOPS
921
#if ENABLED(MIN_SOFTWARE_ENDSTOPS)
922
  #define MIN_SOFTWARE_ENDSTOP_X
923
  #define MIN_SOFTWARE_ENDSTOP_Y
924
  #define MIN_SOFTWARE_ENDSTOP_Z
925
#endif
926
 
927
// Max software endstops constrain movement within maximum coordinate bounds
928
#define MAX_SOFTWARE_ENDSTOPS
929
#if ENABLED(MAX_SOFTWARE_ENDSTOPS)
930
  #define MAX_SOFTWARE_ENDSTOP_X
931
  #define MAX_SOFTWARE_ENDSTOP_Y
932
  #define MAX_SOFTWARE_ENDSTOP_Z
933
#endif
934
 
935
#if ENABLED(MIN_SOFTWARE_ENDSTOPS) || ENABLED(MAX_SOFTWARE_ENDSTOPS)
936
  //#define SOFT_ENDSTOPS_MENU_ITEM  // Enable/Disable software endstops from the LCD
937
#endif
938
 
939
/**
940
 * Filament Runout Sensors
941
 * Mechanical or opto endstops are used to check for the presence of filament.
942
 *
943
 * RAMPS-based boards use SERVO3_PIN for the first runout sensor.
944
 * For other boards you may need to define FIL_RUNOUT_PIN, FIL_RUNOUT2_PIN, etc.
945
 * By default the firmware assumes HIGH=FILAMENT PRESENT.
946
 */
947
//#define FILAMENT_RUNOUT_SENSOR
948
#if ENABLED(FILAMENT_RUNOUT_SENSOR)
949
  #define NUM_RUNOUT_SENSORS   1     // Number of sensors, up to one per extruder. Define a FIL_RUNOUT#_PIN for each.
950
  #define FIL_RUNOUT_INVERTING false // set to true to invert the logic of the sensor.
951
  #define FIL_RUNOUT_PULLUP          // Use internal pullup for filament runout pins.
952
  #define FILAMENT_RUNOUT_SCRIPT "M600"
953
#endif
954
 
955
//===========================================================================
956
//=============================== Bed Leveling ==============================
957
//===========================================================================
958
// @section calibrate
959
 
960
/**
961
 * Choose one of the options below to enable G29 Bed Leveling. The parameters
962
 * and behavior of G29 will change depending on your selection.
963
 *
964
 *  If using a Probe for Z Homing, enable Z_SAFE_HOMING also!
965
 *
966
 * - AUTO_BED_LEVELING_3POINT
967
 *   Probe 3 arbitrary points on the bed (that aren't collinear)
968
 *   You specify the XY coordinates of all 3 points.
969
 *   The result is a single tilted plane. Best for a flat bed.
970
 *
971
 * - AUTO_BED_LEVELING_LINEAR
972
 *   Probe several points in a grid.
973
 *   You specify the rectangle and the density of sample points.
974
 *   The result is a single tilted plane. Best for a flat bed.
975
 *
976
 * - AUTO_BED_LEVELING_BILINEAR
977
 *   Probe several points in a grid.
978
 *   You specify the rectangle and the density of sample points.
979
 *   The result is a mesh, best for large or uneven beds.
980
 *
981
 * - AUTO_BED_LEVELING_UBL (Unified Bed Leveling)
982
 *   A comprehensive bed leveling system combining the features and benefits
983
 *   of other systems. UBL also includes integrated Mesh Generation, Mesh
984
 *   Validation and Mesh Editing systems.
985
 *
986
 * - MESH_BED_LEVELING
987
 *   Probe a grid manually
988
 *   The result is a mesh, suitable for large or uneven beds. (See BILINEAR.)
989
 *   For machines without a probe, Mesh Bed Leveling provides a method to perform
990
 *   leveling in steps so you can manually adjust the Z height at each grid-point.
991
 *   With an LCD controller the process is guided step-by-step.
992
 */
993
//#define AUTO_BED_LEVELING_3POINT
994
//#define AUTO_BED_LEVELING_LINEAR
995
//#define AUTO_BED_LEVELING_BILINEAR
996
//#define AUTO_BED_LEVELING_UBL
997
//#define MESH_BED_LEVELING
998
 
999
/**
1000
 * Normally G28 leaves leveling disabled on completion. Enable
1001
 * this option to have G28 restore the prior leveling state.
1002
 */
1003
//#define RESTORE_LEVELING_AFTER_G28
1004
 
1005
/**
1006
 * Enable detailed logging of G28, G29, M48, etc.
1007
 * Turn on with the command 'M111 S32'.
1008
 * NOTE: Requires a lot of PROGMEM!
1009
 */
1010
//#define DEBUG_LEVELING_FEATURE
1011
 
1012
#if ENABLED(MESH_BED_LEVELING) || ENABLED(AUTO_BED_LEVELING_BILINEAR) || ENABLED(AUTO_BED_LEVELING_UBL)
1013
  // Gradually reduce leveling correction until a set height is reached,
1014
  // at which point movement will be level to the machine's XY plane.
1015
  // The height can be set with M420 Z<height>
1016
  #define ENABLE_LEVELING_FADE_HEIGHT
1017
 
1018
  // For Cartesian machines, instead of dividing moves on mesh boundaries,
1019
  // split up moves into short segments like a Delta. This follows the
1020
  // contours of the bed more closely than edge-to-edge straight moves.
1021
  #define SEGMENT_LEVELED_MOVES
1022
  #define LEVELED_SEGMENT_LENGTH 5.0 // (mm) Length of all segments (except the last one)
1023
 
1024
  /**
1025
   * Enable the G26 Mesh Validation Pattern tool.
1026
   */
1027
  //#define G26_MESH_VALIDATION
1028
  #if ENABLED(G26_MESH_VALIDATION)
1029
    #define MESH_TEST_NOZZLE_SIZE    0.4  // (mm) Diameter of primary nozzle.
1030
    #define MESH_TEST_LAYER_HEIGHT   0.2  // (mm) Default layer height for the G26 Mesh Validation Tool.
1031
    #define MESH_TEST_HOTEND_TEMP  205.0  // (°C) Default nozzle temperature for the G26 Mesh Validation Tool.
1032
    #define MESH_TEST_BED_TEMP      60.0  // (°C) Default bed temperature for the G26 Mesh Validation Tool.
1033
  #endif
1034
 
1035
#endif
1036
 
1037
#if ENABLED(AUTO_BED_LEVELING_LINEAR) || ENABLED(AUTO_BED_LEVELING_BILINEAR)
1038
 
1039
  // Set the number of grid points per dimension.
1040
  #define GRID_MAX_POINTS_X 3
1041
  #define GRID_MAX_POINTS_Y GRID_MAX_POINTS_X
1042
 
1043
  // Set the boundaries for probing (where the probe can reach).
1044
  //#define LEFT_PROBE_BED_POSITION MIN_PROBE_EDGE
1045
  //#define RIGHT_PROBE_BED_POSITION (X_BED_SIZE - MIN_PROBE_EDGE)
1046
  //#define FRONT_PROBE_BED_POSITION MIN_PROBE_EDGE
1047
  //#define BACK_PROBE_BED_POSITION (Y_BED_SIZE - MIN_PROBE_EDGE)
1048
 
1049
  // Probe along the Y axis, advancing X after each column
1050
  //#define PROBE_Y_FIRST
1051
 
1052
  #if ENABLED(AUTO_BED_LEVELING_BILINEAR)
1053
 
1054
    // Beyond the probed grid, continue the implied tilt?
1055
    // Default is to maintain the height of the nearest edge.
1056
    //#define EXTRAPOLATE_BEYOND_GRID
1057
 
1058
    //
1059
    // Experimental Subdivision of the grid by Catmull-Rom method.
1060
    // Synthesizes intermediate points to produce a more detailed mesh.
1061
    //
1062
    //#define ABL_BILINEAR_SUBDIVISION
1063
    #if ENABLED(ABL_BILINEAR_SUBDIVISION)
1064
      // Number of subdivisions between probe points
1065
      #define BILINEAR_SUBDIVISIONS 3
1066
    #endif
1067
 
1068
  #endif
1069
 
1070
#elif ENABLED(AUTO_BED_LEVELING_UBL)
1071
 
1072
  //===========================================================================
1073
  //========================= Unified Bed Leveling ============================
1074
  //===========================================================================
1075
 
1076
  //#define MESH_EDIT_GFX_OVERLAY   // Display a graphics overlay while editing the mesh
1077
 
1078
  #define MESH_INSET 1              // Set Mesh bounds as an inset region of the bed
1079
  #define GRID_MAX_POINTS_X 10      // Don't use more than 15 points per axis, implementation limited.
1080
  #define GRID_MAX_POINTS_Y GRID_MAX_POINTS_X
1081
 
1082
  #define UBL_MESH_EDIT_MOVES_Z     // Sophisticated users prefer no movement of nozzle
1083
  #define UBL_SAVE_ACTIVE_ON_M500   // Save the currently active mesh in the current slot on M500
1084
 
1085
  //#define UBL_Z_RAISE_WHEN_OFF_MESH 2.5 // When the nozzle is off the mesh, this value is used
1086
                                          // as the Z-Height correction value.
1087
 
1088
#elif ENABLED(MESH_BED_LEVELING)
1089
 
1090
  //===========================================================================
1091
  //=================================== Mesh ==================================
1092
  //===========================================================================
1093
 
1094
  #define MESH_INSET 10          // Set Mesh bounds as an inset region of the bed
1095
  #define GRID_MAX_POINTS_X 3    // Don't use more than 7 points per axis, implementation limited.
1096
  #define GRID_MAX_POINTS_Y GRID_MAX_POINTS_X
1097
 
1098
  //#define MESH_G28_REST_ORIGIN // After homing all axes ('G28' or 'G28 XYZ') rest Z at Z_MIN_POS
1099
 
1100
#endif // BED_LEVELING
1101
 
1102
/**
1103
 * Points to probe for all 3-point Leveling procedures.
1104
 * Override if the automatically selected points are inadequate.
1105
 */
1106
#if ENABLED(AUTO_BED_LEVELING_3POINT) || ENABLED(AUTO_BED_LEVELING_UBL)
1107
  //#define PROBE_PT_1_X 15
1108
  //#define PROBE_PT_1_Y 180
1109
  //#define PROBE_PT_2_X 15
1110
  //#define PROBE_PT_2_Y 20
1111
  //#define PROBE_PT_3_X 170
1112
  //#define PROBE_PT_3_Y 20
1113
#endif
1114
 
1115
/**
1116
 * Add a bed leveling sub-menu for ABL or MBL.
1117
 * Include a guided procedure if manual probing is enabled.
1118
 */
1119
//#define LCD_BED_LEVELING
1120
 
1121
#if ENABLED(LCD_BED_LEVELING)
1122
  #define MBL_Z_STEP 0.025    // Step size while manually probing Z axis.
1123
  #define LCD_PROBE_Z_RANGE 4 // Z Range centered on Z_MIN_POS for LCD Z adjustment
1124
#endif
1125
 
1126
// Add a menu item to move between bed corners for manual bed adjustment
1127
//#define LEVEL_BED_CORNERS
1128
 
1129
#if ENABLED(LEVEL_BED_CORNERS)
1130
  #define LEVEL_CORNERS_INSET 30    // (mm) An inset for corner leveling
1131
  #define LEVEL_CORNERS_Z_HOP  4.0  // (mm) Move nozzle up before moving between corners
1132
  //#define LEVEL_CENTER_TOO        // Move to the center after the last corner
1133
#endif
1134
 
1135
/**
1136
 * Commands to execute at the end of G29 probing.
1137
 * Useful to retract or move the Z probe out of the way.
1138
 */
1139
//#define Z_PROBE_END_SCRIPT "G1 Z10 F12000\nG1 X15 Y330\nG1 Z0.5\nG1 Z10"
1140
 
1141
 
1142
// @section homing
1143
 
1144
// The center of the bed is at (X=0, Y=0)
1145
//#define BED_CENTER_AT_0_0
1146
 
1147
// Manually set the home position. Leave these undefined for automatic settings.
1148
// For DELTA this is the top-center of the Cartesian print volume.
1149
//#define MANUAL_X_HOME_POS 0
1150
//#define MANUAL_Y_HOME_POS 0
1151
//#define MANUAL_Z_HOME_POS 0
1152
 
1153
// Use "Z Safe Homing" to avoid homing with a Z probe outside the bed area.
1154
//
1155
// With this feature enabled:
1156
//
1157
// - Allow Z homing only after X and Y homing AND stepper drivers still enabled.
1158
// - If stepper drivers time out, it will need X and Y homing again before Z homing.
1159
// - Move the Z probe (or nozzle) to a defined XY point before Z Homing when homing all axes (G28).
1160
// - Prevent Z homing when the Z probe is outside bed area.
1161
//
1162
//#define Z_SAFE_HOMING
1163
 
1164
#if ENABLED(Z_SAFE_HOMING)
1165
  #define Z_SAFE_HOMING_X_POINT ((X_BED_SIZE) / 2)    // X point for Z homing when homing all axes (G28).
1166
  #define Z_SAFE_HOMING_Y_POINT ((Y_BED_SIZE) / 2)    // Y point for Z homing when homing all axes (G28).
1167
#endif
1168
 
1169
// Homing speeds (mm/m)
1170
#define HOMING_FEEDRATE_XY (50*60)
1171
#define HOMING_FEEDRATE_Z  (8*60)
1172
 
1173
// @section calibrate
1174
 
1175
/**
1176
 * Bed Skew Compensation
1177
 *
1178
 * This feature corrects for misalignment in the XYZ axes.
1179
 *
1180
 * Take the following steps to get the bed skew in the XY plane:
1181
 *  1. Print a test square (e.g., https://www.thingiverse.com/thing:2563185)
1182
 *  2. For XY_DIAG_AC measure the diagonal A to C
1183
 *  3. For XY_DIAG_BD measure the diagonal B to D
1184
 *  4. For XY_SIDE_AD measure the edge A to D
1185
 *
1186
 * Marlin automatically computes skew factors from these measurements.
1187
 * Skew factors may also be computed and set manually:
1188
 *
1189
 *  - Compute AB     : SQRT(2*AC*AC+2*BD*BD-4*AD*AD)/2
1190
 *  - XY_SKEW_FACTOR : TAN(PI/2-ACOS((AC*AC-AB*AB-AD*AD)/(2*AB*AD)))
1191
 *
1192
 * If desired, follow the same procedure for XZ and YZ.
1193
 * Use these diagrams for reference:
1194
 *
1195
 *    Y                     Z                     Z
1196
 *    ^     B-------C       ^     B-------C       ^     B-------C
1197
 *    |    /       /        |    /       /        |    /       /
1198
 *    |   /       /         |   /       /         |   /       /
1199
 *    |  A-------D          |  A-------D          |  A-------D
1200
 *    +-------------->X     +-------------->X     +-------------->Y
1201
 *     XY_SKEW_FACTOR        XZ_SKEW_FACTOR        YZ_SKEW_FACTOR
1202
 */
1203
//#define SKEW_CORRECTION
1204
 
1205
#if ENABLED(SKEW_CORRECTION)
1206
  // Input all length measurements here:
1207
  #define XY_DIAG_AC 282.8427124746
1208
  #define XY_DIAG_BD 282.8427124746
1209
  #define XY_SIDE_AD 200
1210
 
1211
  // Or, set the default skew factors directly here
1212
  // to override the above measurements:
1213
  #define XY_SKEW_FACTOR 0.0
1214
 
1215
  //#define SKEW_CORRECTION_FOR_Z
1216
  #if ENABLED(SKEW_CORRECTION_FOR_Z)
1217
    #define XZ_DIAG_AC 282.8427124746
1218
    #define XZ_DIAG_BD 282.8427124746
1219
    #define YZ_DIAG_AC 282.8427124746
1220
    #define YZ_DIAG_BD 282.8427124746
1221
    #define YZ_SIDE_AD 200
1222
    #define XZ_SKEW_FACTOR 0.0
1223
    #define YZ_SKEW_FACTOR 0.0
1224
  #endif
1225
 
1226
  // Enable this option for M852 to set skew at runtime
1227
  //#define SKEW_CORRECTION_GCODE
1228
#endif
1229
 
1230
//=============================================================================
1231
//============================= Additional Features ===========================
1232
//=============================================================================
1233
 
1234
// @section extras
1235
 
1236
//
1237
// EEPROM
1238
//
1239
// The microcontroller can store settings in the EEPROM, e.g. max velocity...
1240
// M500 - stores parameters in EEPROM
1241
// M501 - reads parameters from EEPROM (if you need reset them after you changed them temporarily).
1242
// M502 - reverts to the default "factory settings".  You still need to store them in EEPROM afterwards if you want to.
1243
//
1244
#define EEPROM_SETTINGS   // Enable for M500 and M501 commands
1245
//#define DISABLE_M503    // Saves ~2700 bytes of PROGMEM. Disable for release!
1246
#define EEPROM_CHITCHAT   // Give feedback on EEPROM commands. Disable to save PROGMEM.
1247
 
1248
//
1249
// Host Keepalive
1250
//
1251
// When enabled Marlin will send a busy status message to the host
1252
// every couple of seconds when it can't accept commands.
1253
//
1254
#define HOST_KEEPALIVE_FEATURE        // Disable this if your host doesn't like keepalive messages
1255
#define DEFAULT_KEEPALIVE_INTERVAL 2  // Number of seconds between "busy" messages. Set with M113.
1256
#define BUSY_WHILE_HEATING            // Some hosts require "busy" messages even during heating
1257
 
1258
//
1259
// M100 Free Memory Watcher
1260
//
1261
//#define M100_FREE_MEMORY_WATCHER    // Add M100 (Free Memory Watcher) to debug memory usage
1262
 
1263
//
1264
// G20/G21 Inch mode support
1265
//
1266
//#define INCH_MODE_SUPPORT
1267
 
1268
//
1269
// M149 Set temperature units support
1270
//
1271
//#define TEMPERATURE_UNITS_SUPPORT
1272
 
1273
// @section temperature
1274
 
1275
// Preheat Constants
1276
#define PREHEAT_1_TEMP_HOTEND 180
1277
#define PREHEAT_1_TEMP_BED     70
1278
#define PREHEAT_1_FAN_SPEED     0 // Value from 0 to 255
1279
 
1280
#define PREHEAT_2_TEMP_HOTEND 230
1281
#define PREHEAT_2_TEMP_BED    110
1282
#define PREHEAT_2_FAN_SPEED     0 // Value from 0 to 255
1283
 
1284
/**
1285
 * Nozzle Park
1286
 *
1287
 * Park the nozzle at the given XYZ position on idle or G27.
1288
 *
1289
 * The "P" parameter controls the action applied to the Z axis:
1290
 *
1291
 *    P0  (Default) If Z is below park Z raise the nozzle.
1292
 *    P1  Raise the nozzle always to Z-park height.
1293
 *    P2  Raise the nozzle by Z-park amount, limited to Z_MAX_POS.
1294
 */
1295
//#define NOZZLE_PARK_FEATURE
1296
 
1297
#if ENABLED(NOZZLE_PARK_FEATURE)
1298
  // Specify a park position as { X, Y, Z }
1299
  #define NOZZLE_PARK_POINT { (X_MIN_POS + 10), (Y_MAX_POS - 10), 20 }
1300
  #define NOZZLE_PARK_XY_FEEDRATE 100   // X and Y axes feedrate in mm/s (also used for delta printers Z axis)
1301
  #define NOZZLE_PARK_Z_FEEDRATE 5      // Z axis feedrate in mm/s (not used for delta printers)
1302
#endif
1303
 
1304
/**
1305
 * Clean Nozzle Feature -- EXPERIMENTAL
1306
 *
1307
 * Adds the G12 command to perform a nozzle cleaning process.
1308
 *
1309
 * Parameters:
1310
 *   P  Pattern
1311
 *   S  Strokes / Repetitions
1312
 *   T  Triangles (P1 only)
1313
 *
1314
 * Patterns:
1315
 *   P0  Straight line (default). This process requires a sponge type material
1316
 *       at a fixed bed location. "S" specifies strokes (i.e. back-forth motions)
1317
 *       between the start / end points.
1318
 *
1319
 *   P1  Zig-zag pattern between (X0, Y0) and (X1, Y1), "T" specifies the
1320
 *       number of zig-zag triangles to do. "S" defines the number of strokes.
1321
 *       Zig-zags are done in whichever is the narrower dimension.
1322
 *       For example, "G12 P1 S1 T3" will execute:
1323
 *
1324
 *          --
1325
 *         |  (X0, Y1) |     /\        /\        /\     | (X1, Y1)
1326
 *         |           |    /  \      /  \      /  \    |
1327
 *       A |           |   /    \    /    \    /    \   |
1328
 *         |           |  /      \  /      \  /      \  |
1329
 *         |  (X0, Y0) | /        \/        \/        \ | (X1, Y0)
1330
 *          --         +--------------------------------+
1331
 *                       |________|_________|_________|
1332
 *                           T1        T2        T3
1333
 *
1334
 *   P2  Circular pattern with middle at NOZZLE_CLEAN_CIRCLE_MIDDLE.
1335
 *       "R" specifies the radius. "S" specifies the stroke count.
1336
 *       Before starting, the nozzle moves to NOZZLE_CLEAN_START_POINT.
1337
 *
1338
 *   Caveats: The ending Z should be the same as starting Z.
1339
 * Attention: EXPERIMENTAL. G-code arguments may change.
1340
 *
1341
 */
1342
//#define NOZZLE_CLEAN_FEATURE
1343
 
1344
#if ENABLED(NOZZLE_CLEAN_FEATURE)
1345
  // Default number of pattern repetitions
1346
  #define NOZZLE_CLEAN_STROKES  12
1347
 
1348
  // Default number of triangles
1349
  #define NOZZLE_CLEAN_TRIANGLES  3
1350
 
1351
  // Specify positions as { X, Y, Z }
1352
  #define NOZZLE_CLEAN_START_POINT { 30, 30, (Z_MIN_POS + 1)}
1353
  #define NOZZLE_CLEAN_END_POINT   {100, 60, (Z_MIN_POS + 1)}
1354
 
1355
  // Circular pattern radius
1356
  #define NOZZLE_CLEAN_CIRCLE_RADIUS 6.5
1357
  // Circular pattern circle fragments number
1358
  #define NOZZLE_CLEAN_CIRCLE_FN 10
1359
  // Middle point of circle
1360
  #define NOZZLE_CLEAN_CIRCLE_MIDDLE NOZZLE_CLEAN_START_POINT
1361
 
1362
  // Moves the nozzle to the initial position
1363
  #define NOZZLE_CLEAN_GOBACK
1364
#endif
1365
 
1366
/**
1367
 * Print Job Timer
1368
 *
1369
 * Automatically start and stop the print job timer on M104/M109/M190.
1370
 *
1371
 *   M104 (hotend, no wait) - high temp = none,        low temp = stop timer
1372
 *   M109 (hotend, wait)    - high temp = start timer, low temp = stop timer
1373
 *   M190 (bed, wait)       - high temp = start timer, low temp = none
1374
 *
1375
 * The timer can also be controlled with the following commands:
1376
 *
1377
 *   M75 - Start the print job timer
1378
 *   M76 - Pause the print job timer
1379
 *   M77 - Stop the print job timer
1380
 */
1381
#define PRINTJOB_TIMER_AUTOSTART
1382
 
1383
/**
1384
 * Print Counter
1385
 *
1386
 * Track statistical data such as:
1387
 *
1388
 *  - Total print jobs
1389
 *  - Total successful print jobs
1390
 *  - Total failed print jobs
1391
 *  - Total time printing
1392
 *
1393
 * View the current statistics with M78.
1394
 */
1395
//#define PRINTCOUNTER
1396
 
1397
//=============================================================================
1398
//============================= LCD and SD support ============================
1399
//=============================================================================
1400
 
1401
// @section lcd
1402
 
1403
/**
1404
 * LCD LANGUAGE
1405
 *
1406
 * Select the language to display on the LCD. These languages are available:
1407
 *
1408
 *    en, an, bg, ca, cn, cz, cz_utf8, de, el, el-gr, es, es_utf8, eu,
1409
 *    fi, fr, fr_utf8, gl, hr, it, kana, kana_utf8, ko_KR, nl, pl, pt,
1410
 *    pt_utf8, pt-br, pt-br_utf8, ru, sk_utf8, tr, uk, zh_CN, zh_TW, test
1411
 *
1412
 * :{ 'en':'English', 'an':'Aragonese', 'bg':'Bulgarian', 'ca':'Catalan', 'cn':'Chinese', 'cz':'Czech', 'cz_utf8':'Czech (UTF8)', 'de':'German', 'el':'Greek', 'el-gr':'Greek (Greece)', 'es':'Spanish', 'es_utf8':'Spanish (UTF8)', 'eu':'Basque-Euskera', 'fi':'Finnish', 'fr':'French', 'fr_utf8':'French (UTF8)', 'gl':'Galician', 'hr':'Croatian', 'it':'Italian', 'kana':'Japanese', 'kana_utf8':'Japanese (UTF8)', 'ko_KR':'Korean', 'nl':'Dutch', 'pl':'Polish', 'pt':'Portuguese', 'pt-br':'Portuguese (Brazilian)', 'pt-br_utf8':'Portuguese (Brazilian UTF8)', 'pt_utf8':'Portuguese (UTF8)', 'ru':'Russian', 'sk_utf8':'Slovak (UTF8)', 'tr':'Turkish', 'uk':'Ukrainian', 'zh_CN':'Chinese (Simplified)', 'zh_TW':'Chinese (Taiwan)', 'test':'TEST' }
1413
 */
1414
#define LCD_LANGUAGE en
1415
 
1416
/**
1417
 * LCD Character Set
1418
 *
1419
 * Note: This option is NOT applicable to Graphical Displays.
1420
 *
1421
 * All character-based LCDs provide ASCII plus one of these
1422
 * language extensions:
1423
 *
1424
 *  - JAPANESE ... the most common
1425
 *  - WESTERN  ... with more accented characters
1426
 *  - CYRILLIC ... for the Russian language
1427
 *
1428
 * To determine the language extension installed on your controller:
1429
 *
1430
 *  - Compile and upload with LCD_LANGUAGE set to 'test'
1431
 *  - Click the controller to view the LCD menu
1432
 *  - The LCD will display Japanese, Western, or Cyrillic text
1433
 *
1434
 * See http://marlinfw.org/docs/development/lcd_language.html
1435
 *
1436
 * :['JAPANESE', 'WESTERN', 'CYRILLIC']
1437
 */
1438
#define DISPLAY_CHARSET_HD44780 JAPANESE
1439
 
1440
/**
1441
 * SD CARD
1442
 *
1443
 * SD Card support is disabled by default. If your controller has an SD slot,
1444
 * you must uncomment the following option or it won't work.
1445
 *
1446
 */
1447
//#define SDSUPPORT
1448
 
1449
/**
1450
 * SD CARD: SPI SPEED
1451
 *
1452
 * Enable one of the following items for a slower SPI transfer speed.
1453
 * This may be required to resolve "volume init" errors.
1454
 */
1455
//#define SPI_SPEED SPI_HALF_SPEED
1456
//#define SPI_SPEED SPI_QUARTER_SPEED
1457
//#define SPI_SPEED SPI_EIGHTH_SPEED
1458
 
1459
/**
1460
 * SD CARD: ENABLE CRC
1461
 *
1462
 * Use CRC checks and retries on the SD communication.
1463
 */
1464
//#define SD_CHECK_AND_RETRY
1465
 
1466
/**
1467
 * LCD Menu Items
1468
 *
1469
 * Disable all menus and only display the Status Screen, or
1470
 * just remove some extraneous menu items to recover space.
1471
 */
1472
//#define NO_LCD_MENUS
1473
//#define SLIM_LCD_MENUS
1474
 
1475
//
1476
// ENCODER SETTINGS
1477
//
1478
// This option overrides the default number of encoder pulses needed to
1479
// produce one step. Should be increased for high-resolution encoders.
1480
//
1481
#define ENCODER_PULSES_PER_STEP 2
1482
 
1483
//
1484
// Use this option to override the number of step signals required to
1485
// move between next/prev menu items.
1486
//
1487
#define ENCODER_STEPS_PER_MENU_ITEM 1
1488
 
1489
/**
1490
 * Encoder Direction Options
1491
 *
1492
 * Test your encoder's behavior first with both options disabled.
1493
 *
1494
 *  Reversed Value Edit and Menu Nav? Enable REVERSE_ENCODER_DIRECTION.
1495
 *  Reversed Menu Navigation only?    Enable REVERSE_MENU_DIRECTION.
1496
 *  Reversed Value Editing only?      Enable BOTH options.
1497
 */
1498
 
1499
//
1500
// This option reverses the encoder direction everywhere.
1501
//
1502
//  Set this option if CLOCKWISE causes values to DECREASE
1503
//
1504
//#define REVERSE_ENCODER_DIRECTION
1505
 
1506
//
1507
// This option reverses the encoder direction for navigating LCD menus.
1508
//
1509
//  If CLOCKWISE normally moves DOWN this makes it go UP.
1510
//  If CLOCKWISE normally moves UP this makes it go DOWN.
1511
//
1512
//#define REVERSE_MENU_DIRECTION
1513
 
1514
//
1515
// Individual Axis Homing
1516
//
1517
// Add individual axis homing items (Home X, Home Y, and Home Z) to the LCD menu.
1518
//
1519
//#define INDIVIDUAL_AXIS_HOMING_MENU
1520
 
1521
//
1522
// SPEAKER/BUZZER
1523
//
1524
// If you have a speaker that can produce tones, enable it here.
1525
// By default Marlin assumes you have a buzzer with a fixed frequency.
1526
//
1527
//#define SPEAKER
1528
 
1529
//
1530
// The duration and frequency for the UI feedback sound.
1531
// Set these to 0 to disable audio feedback in the LCD menus.
1532
//
1533
// Note: Test audio output with the G-Code:
1534
//  M300 S<frequency Hz> P<duration ms>
1535
//
1536
//#define LCD_FEEDBACK_FREQUENCY_DURATION_MS 2
1537
//#define LCD_FEEDBACK_FREQUENCY_HZ 5000
1538
 
1539
//=============================================================================
1540
//======================== LCD / Controller Selection =========================
1541
//========================   (Character-based LCDs)   =========================
1542
//=============================================================================
1543
 
1544
//
1545
// RepRapDiscount Smart Controller.
1546
// http://reprap.org/wiki/RepRapDiscount_Smart_Controller
1547
//
1548
// Note: Usually sold with a white PCB.
1549
//
1550
//#define REPRAP_DISCOUNT_SMART_CONTROLLER
1551
 
1552
//
1553
// ULTIMAKER Controller.
1554
//
1555
//#define ULTIMAKERCONTROLLER
1556
 
1557
//
1558
// ULTIPANEL as seen on Thingiverse.
1559
//
1560
//#define ULTIPANEL
1561
 
1562
//
1563
// PanelOne from T3P3 (via RAMPS 1.4 AUX2/AUX3)
1564
// http://reprap.org/wiki/PanelOne
1565
//
1566
//#define PANEL_ONE
1567
 
1568
//
1569
// GADGETS3D G3D LCD/SD Controller
1570
// http://reprap.org/wiki/RAMPS_1.3/1.4_GADGETS3D_Shield_with_Panel
1571
//
1572
// Note: Usually sold with a blue PCB.
1573
//
1574
//#define G3D_PANEL
1575
 
1576
//
1577
// RigidBot Panel V1.0
1578
// http://www.inventapart.com/
1579
//
1580
//#define RIGIDBOT_PANEL
1581
 
1582
//
1583
// Makeboard 3D Printer Parts 3D Printer Mini Display 1602 Mini Controller
1584
// https://www.aliexpress.com/item/Micromake-Makeboard-3D-Printer-Parts-3D-Printer-Mini-Display-1602-Mini-Controller-Compatible-with-Ramps-1/32765887917.html
1585
//
1586
//#define MAKEBOARD_MINI_2_LINE_DISPLAY_1602
1587
 
1588
//
1589
// ANET and Tronxy 20x4 Controller
1590
//
1591
//#define ZONESTAR_LCD            // Requires ADC_KEYPAD_PIN to be assigned to an analog pin.
1592
                                  // This LCD is known to be susceptible to electrical interference
1593
                                  // which scrambles the display.  Pressing any button clears it up.
1594
                                  // This is a LCD2004 display with 5 analog buttons.
1595
 
1596
//
1597
// Generic 16x2, 16x4, 20x2, or 20x4 character-based LCD.
1598
//
1599
//#define ULTRA_LCD
1600
 
1601
//=============================================================================
1602
//======================== LCD / Controller Selection =========================
1603
//=====================   (I2C and Shift-Register LCDs)   =====================
1604
//=============================================================================
1605
 
1606
//
1607
// CONTROLLER TYPE: I2C
1608
//
1609
// Note: These controllers require the installation of Arduino's LiquidCrystal_I2C
1610
// library. For more info: https://github.com/kiyoshigawa/LiquidCrystal_I2C
1611
//
1612
 
1613
//
1614
// Elefu RA Board Control Panel
1615
// http://www.elefu.com/index.php?route=product/product&product_id=53
1616
//
1617
//#define RA_CONTROL_PANEL
1618
 
1619
//
1620
// Sainsmart (YwRobot) LCD Displays
1621
//
1622
// These require F.Malpartida's LiquidCrystal_I2C library
1623
// https://bitbucket.org/fmalpartida/new-liquidcrystal/wiki/Home
1624
//
1625
//#define LCD_SAINSMART_I2C_1602
1626
//#define LCD_SAINSMART_I2C_2004
1627
 
1628
//
1629
// Generic LCM1602 LCD adapter
1630
//
1631
//#define LCM1602
1632
 
1633
//
1634
// PANELOLU2 LCD with status LEDs,
1635
// separate encoder and click inputs.
1636
//
1637
// Note: This controller requires Arduino's LiquidTWI2 library v1.2.3 or later.
1638
// For more info: https://github.com/lincomatic/LiquidTWI2
1639
//
1640
// Note: The PANELOLU2 encoder click input can either be directly connected to
1641
// a pin (if BTN_ENC defined to != -1) or read through I2C (when BTN_ENC == -1).
1642
//
1643
//#define LCD_I2C_PANELOLU2
1644
 
1645
//
1646
// Panucatt VIKI LCD with status LEDs,
1647
// integrated click & L/R/U/D buttons, separate encoder inputs.
1648
//
1649
//#define LCD_I2C_VIKI
1650
 
1651
//
1652
// CONTROLLER TYPE: Shift register panels
1653
//
1654
 
1655
//
1656
// 2 wire Non-latching LCD SR from https://goo.gl/aJJ4sH
1657
// LCD configuration: http://reprap.org/wiki/SAV_3D_LCD
1658
//
1659
//#define SAV_3DLCD
1660
 
1661
//=============================================================================
1662
//=======================   LCD / Controller Selection  =======================
1663
//=========================      (Graphical LCDs)      ========================
1664
//=============================================================================
1665
 
1666
//
1667
// CONTROLLER TYPE: Graphical 128x64 (DOGM)
1668
//
1669
// IMPORTANT: The U8glib library is required for Graphical Display!
1670
//            https://github.com/olikraus/U8glib_Arduino
1671
//
1672
 
1673
//
1674
// RepRapDiscount FULL GRAPHIC Smart Controller
1675
// http://reprap.org/wiki/RepRapDiscount_Full_Graphic_Smart_Controller
1676
//
1677
#define REPRAP_DISCOUNT_FULL_GRAPHIC_SMART_CONTROLLER
1678
 
1679
//
1680
// ReprapWorld Graphical LCD
1681
// https://reprapworld.com/?products_details&products_id/1218
1682
//
1683
//#define REPRAPWORLD_GRAPHICAL_LCD
1684
 
1685
//
1686
// Activate one of these if you have a Panucatt Devices
1687
// Viki 2.0 or mini Viki with Graphic LCD
1688
// http://panucatt.com
1689
//
1690
//#define VIKI2
1691
//#define miniVIKI
1692
 
1693
//
1694
// MakerLab Mini Panel with graphic
1695
// controller and SD support - http://reprap.org/wiki/Mini_panel
1696
//
1697
//#define MINIPANEL
1698
 
1699
//
1700
// MaKr3d Makr-Panel with graphic controller and SD support.
1701
// http://reprap.org/wiki/MaKr3d_MaKrPanel
1702
//
1703
//#define MAKRPANEL
1704
 
1705
//
1706
// Adafruit ST7565 Full Graphic Controller.
1707
// https://github.com/eboston/Adafruit-ST7565-Full-Graphic-Controller/
1708
//
1709
//#define ELB_FULL_GRAPHIC_CONTROLLER
1710
 
1711
//
1712
// BQ LCD Smart Controller shipped by
1713
// default with the BQ Hephestos 2 and Witbox 2.
1714
//
1715
//#define BQ_LCD_SMART_CONTROLLER
1716
 
1717
//
1718
// Cartesio UI
1719
// http://mauk.cc/webshop/cartesio-shop/electronics/user-interface
1720
//
1721
//#define CARTESIO_UI
1722
 
1723
//
1724
// LCD for Melzi Card with Graphical LCD
1725
//
1726
//#define LCD_FOR_MELZI
1727
 
1728
//
1729
// SSD1306 OLED full graphics generic display
1730
//
1731
//#define U8GLIB_SSD1306
1732
 
1733
//
1734
// SAV OLEd LCD module support using either SSD1306 or SH1106 based LCD modules
1735
//
1736
//#define SAV_3DGLCD
1737
#if ENABLED(SAV_3DGLCD)
1738
  //#define U8GLIB_SSD1306
1739
  #define U8GLIB_SH1106
1740
#endif
1741
 
1742
//
1743
// Original Ulticontroller from Ultimaker 2 printer with SSD1309 I2C display and encoder
1744
// https://github.com/Ultimaker/Ultimaker2/tree/master/1249_Ulticontroller_Board_(x1)
1745
//
1746
//#define ULTI_CONTROLLER
1747
 
1748
//
1749
// TinyBoy2 128x64 OLED / Encoder Panel
1750
//
1751
//#define OLED_PANEL_TINYBOY2
1752
 
1753
//
1754
// MKS MINI12864 with graphic controller and SD support
1755
// http://reprap.org/wiki/MKS_MINI_12864
1756
//
1757
//#define MKS_MINI_12864
1758
 
1759
//
1760
// Factory display for Creality CR-10
1761
// https://www.aliexpress.com/item/Universal-LCD-12864-3D-Printer-Display-Screen-With-Encoder-For-CR-10-CR-7-Model/32833148327.html
1762
//
1763
// This is RAMPS-compatible using a single 10-pin connector.
1764
// (For CR-10 owners who want to replace the Melzi Creality board but retain the display)
1765
//
1766
//#define CR10_STOCKDISPLAY
1767
 
1768
//
1769
// ANET and Tronxy Graphical Controller
1770
//
1771
//#define ANET_FULL_GRAPHICS_LCD  // Anet 128x64 full graphics lcd with rotary encoder as used on Anet A6
1772
                                  // A clone of the RepRapDiscount full graphics display but with
1773
                                  // different pins/wiring (see pins_ANET_10.h).
1774
 
1775
//
1776
// MKS OLED 1.3" 128 × 64 FULL GRAPHICS CONTROLLER
1777
// http://reprap.org/wiki/MKS_12864OLED
1778
//
1779
// Tiny, but very sharp OLED display
1780
//
1781
//#define MKS_12864OLED          // Uses the SH1106 controller (default)
1782
//#define MKS_12864OLED_SSD1306  // Uses the SSD1306 controller
1783
 
1784
//
1785
// Silvergate GLCD controller
1786
// http://github.com/android444/Silvergate
1787
//
1788
//#define SILVER_GATE_GLCD_CONTROLLER
1789
 
1790
//=============================================================================
1791
//============================  Other Controllers  ============================
1792
//=============================================================================
1793
 
1794
//
1795
// CONTROLLER TYPE: Standalone / Serial
1796
//
1797
 
1798
//
1799
// LCD for Malyan M200 printers.
1800
// This requires SDSUPPORT to be enabled
1801
//
1802
//#define MALYAN_LCD
1803
 
1804
//
1805
// CONTROLLER TYPE: Keypad / Add-on
1806
//
1807
 
1808
//
1809
// RepRapWorld REPRAPWORLD_KEYPAD v1.1
1810
// http://reprapworld.com/?products_details&products_id=202&cPath=1591_1626
1811
//
1812
// REPRAPWORLD_KEYPAD_MOVE_STEP sets how much should the robot move when a key
1813
// is pressed, a value of 10.0 means 10mm per click.
1814
//
1815
//#define REPRAPWORLD_KEYPAD
1816
//#define REPRAPWORLD_KEYPAD_MOVE_STEP 10.0
1817
 
1818
//=============================================================================
1819
//=============================== Extra Features ==============================
1820
//=============================================================================
1821
 
1822
// @section extras
1823
 
1824
// Increase the FAN PWM frequency. Removes the PWM noise but increases heating in the FET/Arduino
1825
#define FAST_PWM_FAN
1826
 
1827
// Use software PWM to drive the fan, as for the heaters. This uses a very low frequency
1828
// which is not as annoying as with the hardware PWM. On the other hand, if this frequency
1829
// is too low, you should also increment SOFT_PWM_SCALE.
1830
//#define FAN_SOFT_PWM
1831
 
1832
// Incrementing this by 1 will double the software PWM frequency,
1833
// affecting heaters, and the fan if FAN_SOFT_PWM is enabled.
1834
// However, control resolution will be halved for each increment;
1835
// at zero value, there are 128 effective control positions.
1836
#define SOFT_PWM_SCALE 0
1837
 
1838
// If SOFT_PWM_SCALE is set to a value higher than 0, dithering can
1839
// be used to mitigate the associated resolution loss. If enabled,
1840
// some of the PWM cycles are stretched so on average the desired
1841
// duty cycle is attained.
1842
//#define SOFT_PWM_DITHER
1843
 
1844
// Temperature status LEDs that display the hotend and bed temperature.
1845
// If all hotends, bed temperature, and target temperature are under 54C
1846
// then the BLUE led is on. Otherwise the RED led is on. (1C hysteresis)
1847
//#define TEMP_STAT_LEDS
1848
 
1849
// M240  Triggers a camera by emulating a Canon RC-1 Remote
1850
// Data from: http://www.doc-diy.net/photo/rc-1_hacked/
1851
//#define PHOTOGRAPH_PIN     23
1852
 
1853
// SkeinForge sends the wrong arc g-codes when using Arc Point as fillet procedure
1854
//#define SF_ARC_FIX
1855
 
1856
// Support for the BariCUDA Paste Extruder
1857
//#define BARICUDA
1858
 
1859
// Support for BlinkM/CyzRgb
1860
//#define BLINKM
1861
 
1862
// Support for PCA9632 PWM LED driver
1863
//#define PCA9632
1864
 
1865
/**
1866
 * RGB LED / LED Strip Control
1867
 *
1868
 * Enable support for an RGB LED connected to 5V digital pins, or
1869
 * an RGB Strip connected to MOSFETs controlled by digital pins.
1870
 *
1871
 * Adds the M150 command to set the LED (or LED strip) color.
1872
 * If pins are PWM capable (e.g., 4, 5, 6, 11) then a range of
1873
 * luminance values can be set from 0 to 255.
1874
 * For Neopixel LED an overall brightness parameter is also available.
1875
 *
1876
 * *** CAUTION ***
1877
 *  LED Strips require a MOSFET Chip between PWM lines and LEDs,
1878
 *  as the Arduino cannot handle the current the LEDs will require.
1879
 *  Failure to follow this precaution can destroy your Arduino!
1880
 *  NOTE: A separate 5V power supply is required! The Neopixel LED needs
1881
 *  more current than the Arduino 5V linear regulator can produce.
1882
 * *** CAUTION ***
1883
 *
1884
 * LED Type. Enable only one of the following two options.
1885
 *
1886
 */
1887
//#define RGB_LED
1888
//#define RGBW_LED
1889
 
1890
#if ENABLED(RGB_LED) || ENABLED(RGBW_LED)
1891
  #define RGB_LED_R_PIN 34
1892
  #define RGB_LED_G_PIN 43
1893
  #define RGB_LED_B_PIN 35
1894
  #define RGB_LED_W_PIN -1
1895
#endif
1896
 
1897
// Support for Adafruit Neopixel LED driver
1898
//#define NEOPIXEL_LED
1899
#if ENABLED(NEOPIXEL_LED)
1900
  #define NEOPIXEL_TYPE   NEO_GRBW // NEO_GRBW / NEO_GRB - four/three channel driver type (defined in Adafruit_NeoPixel.h)
1901
  #define NEOPIXEL_PIN    4        // LED driving pin on motherboard 4 => D4 (EXP2-5 on Printrboard) / 30 => PC7 (EXP3-13 on Rumba)
1902
  #define NEOPIXEL_PIXELS 30       // Number of LEDs in the strip
1903
  #define NEOPIXEL_IS_SEQUENTIAL   // Sequential display for temperature change - LED by LED. Disable to change all LEDs at once.
1904
  #define NEOPIXEL_BRIGHTNESS 127  // Initial brightness (0-255)
1905
  //#define NEOPIXEL_STARTUP_TEST  // Cycle through colors at startup
1906
#endif
1907
 
1908
/**
1909
 * Printer Event LEDs
1910
 *
1911
 * During printing, the LEDs will reflect the printer status:
1912
 *
1913
 *  - Gradually change from blue to violet as the heated bed gets to target temp
1914
 *  - Gradually change from violet to red as the hotend gets to temperature
1915
 *  - Change to white to illuminate work surface
1916
 *  - Change to green once print has finished
1917
 *  - Turn off after the print has finished and the user has pushed a button
1918
 */
1919
#if ENABLED(BLINKM) || ENABLED(RGB_LED) || ENABLED(RGBW_LED) || ENABLED(PCA9632) || ENABLED(NEOPIXEL_LED)
1920
  #define PRINTER_EVENT_LEDS
1921
#endif
1922
 
1923
/**
1924
 * R/C SERVO support
1925
 * Sponsored by TrinityLabs, Reworked by codexmas
1926
 */
1927
 
1928
/**
1929
 * Number of servos
1930
 *
1931
 * For some servo-related options NUM_SERVOS will be set automatically.
1932
 * Set this manually if there are extra servos needing manual control.
1933
 * Leave undefined or set to 0 to entirely disable the servo subsystem.
1934
 */
1935
//#define NUM_SERVOS 3 // Servo index starts with 0 for M280 command
1936
 
1937
// Delay (in milliseconds) before the next move will start, to give the servo time to reach its target angle.
1938
// 300ms is a good value but you can try less delay.
1939
// If the servo can't reach the requested position, increase it.
1940
#define SERVO_DELAY { 300 }
1941
 
1942
// Only power servos during movement, otherwise leave off to prevent jitter
1943
//#define DEACTIVATE_SERVOS_AFTER_MOVE
1944
 
1945
#endif // CONFIGURATION_H