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ODrive/Firmware/MotorControl/axis.hpp
T

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8.7 KiB
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#ifndef __AXIS_HPP
#define __AXIS_HPP
#ifndef __ODRIVE_MAIN_H
#error "This file should not be included directly. Include odrive_main.h instead."
#endif
// Warning: Do not reorder these enum values.
// The state machine uses ">" comparision on them.
enum AxisState_t {
AXIS_STATE_UNDEFINED = 0, //<! will fall through to idle
AXIS_STATE_IDLE = 1, //<! disable PWM and do nothing
AXIS_STATE_STARTUP_SEQUENCE = 2, //<! the actual sequence is defined by the config.startup_... flags
AXIS_STATE_FULL_CALIBRATION_SEQUENCE = 3, //<! run all calibration procedures, then idle
AXIS_STATE_MOTOR_CALIBRATION = 4, //<! run motor calibration
AXIS_STATE_SENSORLESS_CONTROL = 5, //<! run sensorless control
AXIS_STATE_ENCODER_INDEX_SEARCH = 6, //<! run encoder index search
AXIS_STATE_ENCODER_OFFSET_CALIBRATION = 7, //<! run encoder offset calibration
AXIS_STATE_CLOSED_LOOP_CONTROL = 8 //<! run closed loop control
};
struct AxisConfig_t {
bool startup_motor_calibration = false; //<! run motor calibration at startup, skip otherwise
bool startup_encoder_index_search = false; //<! run encoder index search after startup, skip otherwise
// this only has an effect if encoder.config.use_index is also true
bool startup_encoder_offset_calibration = false; //<! run encoder offset calibration after startup, skip otherwise
bool startup_closed_loop_control = false; //<! enable closed loop control after calibration/startup
bool startup_sensorless_control = false; //<! enable sensorless control after calibration/startup
bool enable_step_dir = false; //<! enable step/dir input after calibration
// For M0 this has no effect if enable_uart is true
float counts_per_step = 2.0f;
// Spinup settings
float ramp_up_time = 0.4f; // [s]
float ramp_up_distance = 4 * M_PI; // [rad]
float spin_up_current = 10.0f; // [A]
float spin_up_acceleration = 400.0f; // [rad/s^2]
float spin_up_target_vel = 400.0f; // [rad/s]
};
class Axis {
public:
enum Error_t {
ERROR_NONE = 0x00,
ERROR_INVALID_STATE = 0x01, //<! an invalid state was requested
ERROR_DC_BUS_UNDER_VOLTAGE = 0x02,
ERROR_DC_BUS_OVER_VOLTAGE = 0x04,
ERROR_CURRENT_MEASUREMENT_TIMEOUT = 0x08,
ERROR_BRAKE_RESISTOR_DISARMED = 0x10, //<! the brake resistor was unexpectedly disarmed
ERROR_MOTOR_DISARMED = 0x20, //<! the motor was unexpectedly disarmed
ERROR_MOTOR_FAILED = 0x40,
ERROR_SENSORLESS_ESTIMATOR_FAILED = 0x80,
ERROR_ENCODER_FAILED = 0x100,
ERROR_CONTROLLER_FAILED = 0x200,
ERROR_POS_CTRL_DURING_SENSORLESS = 0x400,
};
enum thread_signals {
M_SIGNAL_PH_CURRENT_MEAS = 1u << 0
};
Axis(const AxisHardwareConfig_t& hw_config,
AxisConfig_t& config,
Encoder& encoder,
SensorlessEstimator& sensorless_estimator,
Controller& controller,
Motor& motor,
TrapezoidalTrajectory& trap);
void setup();
void start_thread();
void signal_current_meas();
bool wait_for_current_meas();
void step_cb();
void set_step_dir_enabled(bool enable);
bool check_DRV_fault();
bool check_PSU_brownout();
bool do_checks();
bool do_updates();
bool check_for_errors();
float get_temp();
// @brief Runs the specified update handler at the frequency of the current measurements.
//
// The loop runs until one of the following conditions:
// - update_handler returns false
// - the current measurement times out
// - the health checks fail (brownout, driver fault line)
// - update_handler doesn't update the modulation timings in time
// This criterion is ignored if current_state is AXIS_STATE_IDLE
//
// If update_handler is going to update the motor timings, you must call motor.arm()
// shortly before this function.
//
// If the function returns, it is guaranteed that error is non-zero, except if the cause
// for the exit was a negative return value of update_handler or an external
// state change request (requested_state != AXIS_STATE_DONT_CARE).
// Under all exit conditions the motor is disarmed and the brake current set to zero.
// Furthermore, if the update_handler does not set the phase voltages in time, they will
// go to zero.
//
// @tparam T Must be a callable type that takes no arguments and returns a bool
template<typename T>
void run_control_loop(const T& update_handler) {
while (requested_state_ == AXIS_STATE_UNDEFINED) {
// look for errors at axis level and also all subcomponents
bool checks_ok = do_checks();
// Update all estimators
// Note: updates run even if checks fail
bool updates_ok = do_updates();
if (!checks_ok || !updates_ok)
break;
// Run main loop function, defer quitting for after wait
// TODO: change arming logic to arm after waiting
bool main_continue = update_handler();
// Check we meet deadlines after queueing
++loop_counter_;
// Wait until the current measurement interrupt fires
if (!wait_for_current_meas()) {
// maybe the interrupt handler is dead, let's be
// safe and float the phases
safety_critical_disarm_motor_pwm(motor_);
update_brake_current();
error_ |= ERROR_CURRENT_MEASUREMENT_TIMEOUT;
break;
}
if (!main_continue)
break;
}
}
bool run_sensorless_spin_up();
bool run_sensorless_control_loop();
bool run_closed_loop_control_loop();
bool run_idle_loop();
void run_state_machine_loop();
const AxisHardwareConfig_t& hw_config_;
AxisConfig_t& config_;
Encoder& encoder_;
SensorlessEstimator& sensorless_estimator_;
Controller& controller_;
Motor& motor_;
TrapezoidalTrajectory& trap_;
osThreadId thread_id_;
volatile bool thread_id_valid_ = false;
// variables exposed on protocol
Error_t error_ = ERROR_NONE;
bool enable_step_dir_ = false; // auto enabled after calibration, based on config.enable_step_dir
AxisState_t requested_state_ = AXIS_STATE_STARTUP_SEQUENCE;
AxisState_t task_chain_[10] = { AXIS_STATE_UNDEFINED };
AxisState_t& current_state_ = task_chain_[0];
uint32_t loop_counter_ = 0;
// Communication protocol definitions
auto make_protocol_definitions() {
return make_protocol_member_list(
make_protocol_property("error", &error_),
make_protocol_property("enable_step_dir", &enable_step_dir_),
make_protocol_ro_property("current_state", &current_state_),
make_protocol_property("requested_state", &requested_state_),
make_protocol_ro_property("loop_counter", &loop_counter_),
make_protocol_object("config",
make_protocol_property("startup_motor_calibration", &config_.startup_motor_calibration),
make_protocol_property("startup_encoder_index_search", &config_.startup_encoder_index_search),
make_protocol_property("startup_encoder_offset_calibration", &config_.startup_encoder_offset_calibration),
make_protocol_property("startup_closed_loop_control", &config_.startup_closed_loop_control),
make_protocol_property("startup_sensorless_control", &config_.startup_sensorless_control),
make_protocol_property("enable_step_dir", &config_.enable_step_dir),
make_protocol_property("counts_per_step", &config_.counts_per_step),
make_protocol_property("ramp_up_time", &config_.ramp_up_time),
make_protocol_property("ramp_up_distance", &config_.ramp_up_distance),
make_protocol_property("spin_up_current", &config_.spin_up_current),
make_protocol_property("spin_up_acceleration", &config_.spin_up_acceleration),
make_protocol_property("spin_up_target_vel", &config_.spin_up_target_vel)
),
make_protocol_function("get_temp", *this, &Axis::get_temp),
make_protocol_object("motor", motor_.make_protocol_definitions()),
make_protocol_object("controller", controller_.make_protocol_definitions()),
make_protocol_object("encoder", encoder_.make_protocol_definitions()),
make_protocol_object("sensorless_estimator", sensorless_estimator_.make_protocol_definitions())
);
}
};
DEFINE_ENUM_FLAG_OPERATORS(Axis::Error_t)
#endif /* __AXIS_HPP */