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https://github.com/grblHAL/core.git
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167 lines
5.9 KiB
C
167 lines
5.9 KiB
C
/*
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corexy.c - corexy kinematics implementation
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Part of grblHAL
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Copyright (c) 2019 Terje Io
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Copyright (c) 2011-2016 Sungeun K. Jeon for Gnea Research LLC
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Grbl is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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Grbl is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with Grbl. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include "grbl.h"
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#ifdef COREXY
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#include "settings.h"
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#include "planner.h"
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#include "kinematics.h"
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// CoreXY motor assignments. DO NOT ALTER.
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// NOTE: If the A and B motor axis bindings are changed, this effects the CoreXY equations.
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#define A_MOTOR X_AXIS // Must be X_AXIS
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#define B_MOTOR Y_AXIS // Must be Y_AXIS
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// Returns x or y-axis "steps" based on CoreXY motor steps.
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inline static int32_t corexy_convert_to_a_motor_steps (int32_t *steps)
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{
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return (steps[A_MOTOR] + steps[B_MOTOR]) >> 1;
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}
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inline static int32_t corexy_convert_to_b_motor_steps (int32_t *steps)
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{
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return (steps[A_MOTOR] - steps[B_MOTOR]) >> 1;
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}
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// Returns machine position of axis 'idx'. Must be sent a 'step' array.
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static void corexy_convert_array_steps_to_mpos (float *position, int32_t *steps)
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{
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position[X_AXIS] = corexy_convert_to_a_motor_steps(steps) / settings.axis[X_AXIS].steps_per_mm;
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position[Y_AXIS] = corexy_convert_to_b_motor_steps(steps) / settings.axis[Y_AXIS].steps_per_mm;
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position[Z_AXIS] = steps[Z_AXIS] / settings.axis[Z_AXIS].steps_per_mm;
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}
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// Transform absolute position from cartesian coordinate system (mm) to corexy coordinate system (step)
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static void corexy_target_to_steps (int32_t *target_steps, float *target)
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{
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uint_fast8_t idx = N_AXIS;
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int32_t a_steps, b_steps;
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do {
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switch(--idx) {
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case X_AXIS:
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a_steps = lroundf(target[idx] * settings.axis[idx].steps_per_mm);
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break;
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case Y_AXIS:
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b_steps = lroundf(target[idx] * settings.axis[idx].steps_per_mm);
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break;
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default:
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target_steps[idx] = lroundf(target[idx] * settings.axis[idx].steps_per_mm);
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break;
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}
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} while(idx);
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target_steps[A_MOTOR] = a_steps + b_steps;
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target_steps[B_MOTOR] = a_steps - b_steps;
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}
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static uint_fast8_t corexy_limits_get_axis_mask (uint_fast8_t idx)
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{
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return ((idx == A_MOTOR) || (idx == B_MOTOR)) ? (bit(X_AXIS) | bit(Y_AXIS)) : bit(idx);
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}
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static void corexy_limits_set_target_pos (uint_fast8_t idx) // fn name?
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{
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int32_t axis_position;
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switch(idx) {
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case X_AXIS:
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axis_position = corexy_convert_to_b_motor_steps(sys.position);
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sys.position[A_MOTOR] = axis_position;
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sys.position[B_MOTOR] = -axis_position;
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break;
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case Y_AXIS:
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sys.position[A_MOTOR] = sys.position[B_MOTOR] = corexy_convert_to_a_motor_steps(sys.position);
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break;
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default:
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sys.position[idx] = 0;
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break;
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}
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}
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// Set machine positions for homed limit switches. Don't update non-homed axes.
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// NOTE: settings.max_travel[] is stored as a negative value.
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static void corexy_limits_set_machine_positions (axes_signals_t cycle)
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{
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uint_fast8_t idx = N_AXIS;
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if(settings.homing.flags.force_set_origin) {
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if (cycle.mask & bit(--idx)) do {
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switch(--idx) {
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case X_AXIS:
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sys.position[A_MOTOR] = corexy_convert_to_b_motor_steps(sys.position);
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sys.position[B_MOTOR] = - sys.position[A_MOTOR];
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break;
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case Y_AXIS:
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sys.position[A_MOTOR] = corexy_convert_to_a_motor_steps(sys.position);
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sys.position[B_MOTOR] = sys.position[A_MOTOR];
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break;
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default:
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sys.position[idx] = 0;
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break;
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}
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} while (idx);
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} else do {
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if (cycle.mask & bit(--idx)) {
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int32_t off_axis_position;
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int32_t set_axis_position = bit_istrue(settings.homing.dir_mask.value, bit(idx))
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? lroundf((settings.axis[idx].max_travel + settings.homing.pulloff) * settings.axis[idx].steps_per_mm)
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: lroundf(-settings.homing.pulloff * settings.axis[idx].steps_per_mm);
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switch(idx) {
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case X_AXIS:
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off_axis_position = corexy_convert_to_b_motor_steps(sys.position);
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sys.position[A_MOTOR] = set_axis_position + off_axis_position;
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sys.position[B_MOTOR] = set_axis_position - off_axis_position;
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break;
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case Y_AXIS:
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off_axis_position = corexy_convert_to_a_motor_steps(sys.position);
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sys.position[A_MOTOR] = off_axis_position + set_axis_position;
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sys.position[B_MOTOR] = off_axis_position - set_axis_position;
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break;
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default:
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sys.position[idx] = set_axis_position;
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break;
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}
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}
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} while(idx);
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}
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// Initialize API pointers for CoreXY kinematics
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void corexy_init (void)
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{
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kinematics.limits_set_target_pos = corexy_limits_set_target_pos;
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kinematics.limits_get_axis_mask = corexy_limits_get_axis_mask;
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kinematics.limits_set_machine_positions = corexy_limits_set_machine_positions;
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kinematics.plan_target_to_steps = corexy_target_to_steps;
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kinematics.convert_array_steps_to_mpos = corexy_convert_array_steps_to_mpos;
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}
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#endif
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