Files
ardupilot/Blimp/Fins.cpp
T

254 lines
8.1 KiB
C++

#include "Blimp.h"
#include <SRV_Channel/SRV_Channel.h>
const AP_Param::GroupInfo Fins::var_info[] = {
// @Param: FREQ_HZ
// @DisplayName: Fins frequency
// @Description: This is the oscillation frequency of the fins
// @Range: 1 10
// @User: Standard
AP_GROUPINFO("FREQ_HZ", 1, Fins, freq_hz, 3),
// @Param: TURBO_MODE
// @DisplayName: Enable turbo mode
// @Description: Enables double speed on high offset (finned blimp only).
// @Range: 0 1
// @User: Standard
AP_GROUPINFO("TURBO_MODE", 2, Fins, turbo_mode, 0),
// @Param: THR_MAX
// @DisplayName: Maximum throttle
// @Description: Maximum throttle allowed. Constrains any throttle input to this value (negative and positive) Set it to 1 to disable (i.e. allow max throttle).
// @Range: 0 1
// @User: Standard
AP_GROUPINFO("THR_MAX", 3, Fins, thr_max, 1),
AP_GROUPEND
};
//constructor
Fins::Fins(uint16_t loop_rate) :
_loop_rate(loop_rate)
{
AP_Param::setup_object_defaults(this, var_info);
switch ((Fins::motor_frame)blimp.g2.frame_class.get()) {
case Fins::MOTOR_FRAME_FISHBLIMP:
_frame = Fins::MOTOR_FRAME_FISHBLIMP;
_initialised_ok = true;
break;
case Fins::MOTOR_FRAME_FOUR_MOTOR:
_frame = Fins::MOTOR_FRAME_FOUR_MOTOR;
_initialised_ok = true;
break;
case Fins::MOTOR_FRAME_UNDEFINED:
default:
_frame = Fins::MOTOR_FRAME_UNDEFINED;
GCS_SEND_TEXT(MAV_SEVERITY_ERROR, "ERROR: Bad frame class. Motors not initialised.");
_initialised_ok = false;
break;
}
}
void Fins::setup_finsmotors()
{
if (!_initialised_ok) {
return;
}
switch (_frame) {
case Fins::MOTOR_FRAME_FISHBLIMP:
GCS_SEND_TEXT(MAV_SEVERITY_INFO, "Setting up FishBlimp.");
setup_fins();
break;
case Fins::MOTOR_FRAME_FOUR_MOTOR:
GCS_SEND_TEXT(MAV_SEVERITY_INFO, "Setting up FourMotor.");
setup_motors();
break;
case Fins::MOTOR_FRAME_UNDEFINED:
GCS_SEND_TEXT(MAV_SEVERITY_ERROR, "ERROR: Bad frame class.");
break;
}
}
void Fins::setup_fins()
{
//fin # r f d y, r f d y
//right, front, down, yaw for amplitude then for offset
add_fin(0, 0, 1, 0.5, 0, 0, 0, 0.5, 0); //Back
add_fin(1, 0, -1, 0.5, 0, 0, 0, 0.5, 0); //Front
add_fin(2, -1, 0, 0, 0.5, 0, 0, 0, 0.5); //Right
add_fin(3, 1, 0, 0, 0.5, 0, 0, 0, -0.5); //Left
SRV_Channels::set_angle(SRV_Channel::k_motor1, INPUT_AND_OUTPUT_SCALING);
SRV_Channels::set_angle(SRV_Channel::k_motor2, INPUT_AND_OUTPUT_SCALING);
SRV_Channels::set_angle(SRV_Channel::k_motor3, INPUT_AND_OUTPUT_SCALING);
SRV_Channels::set_angle(SRV_Channel::k_motor4, INPUT_AND_OUTPUT_SCALING);
}
void Fins::setup_motors()
{
// motor# r f d y
add_motor(0, 0, 1, 0, 1); //FrontLeft 33
add_motor(1, 0, 1, 0, -1); //FrontRight 34
add_motor(2, 0, 0, -1, 0); //Up 35
add_motor(3, 1, 0, 0, 0); //Right 36
SRV_Channels::set_angle(SRV_Channel::k_motor1, INPUT_AND_OUTPUT_SCALING);
SRV_Channels::set_angle(SRV_Channel::k_motor2, INPUT_AND_OUTPUT_SCALING);
SRV_Channels::set_angle(SRV_Channel::k_motor3, INPUT_AND_OUTPUT_SCALING);
SRV_Channels::set_angle(SRV_Channel::k_motor4, INPUT_AND_OUTPUT_SCALING);
}
void Fins::add_fin(int8_t fin_num, float right_amp_fac, float front_amp_fac, float down_amp_fac, float yaw_amp_fac,
float right_off_fac, float front_off_fac, float down_off_fac, float yaw_off_fac)
{
// ensure valid fin number is provided
if (fin_num >= 0 && fin_num < NUM_FINS) {
// set amplitude factors
_right_amp_factor[fin_num] = right_amp_fac;
_front_amp_factor[fin_num] = front_amp_fac;
_down_amp_factor[fin_num] = down_amp_fac;
_yaw_amp_factor[fin_num] = yaw_amp_fac;
// set offset factors
_right_off_factor[fin_num] = right_off_fac;
_front_off_factor[fin_num] = front_off_fac;
_down_off_factor[fin_num] = down_off_fac;
_yaw_off_factor[fin_num] = yaw_off_fac;
}
}
void Fins::add_motor(int8_t fin_num, float right_amp_fac, float front_amp_fac, float down_amp_fac, float yaw_amp_fac)
{
// ensure valid fin number is provided
if (fin_num >= 0 && fin_num < NUM_FINS) {
_right_amp_factor[fin_num] = right_amp_fac;
_front_amp_factor[fin_num] = front_amp_fac;
_down_amp_factor[fin_num] = down_amp_fac;
_yaw_amp_factor[fin_num] = yaw_amp_fac;
}
}
void Fins::output()
{
if (!_initialised_ok) {
return;
}
if (!_armed) {
// set everything to zero so fins stop moving
right_out = 0;
front_out = 0;
down_out = 0;
yaw_out = 0;
}
#if HAL_LOGGING_ENABLED
blimp.Write_FINI(right_out, front_out, down_out, yaw_out);
#endif
//Constrain after logging so as to still show when sub-optimal tuning is causing massive overshoots.
right_out = constrain_float(right_out, -thr_max, thr_max);
front_out = constrain_float(front_out, -thr_max, thr_max);
down_out = constrain_float(down_out, -thr_max, thr_max);
yaw_out = constrain_float(yaw_out, -thr_max, thr_max);
switch (_frame) {
case Fins::MOTOR_FRAME_FISHBLIMP:
output_fins();
break;
case Fins::MOTOR_FRAME_FOUR_MOTOR:
output_motors();
break;
case Fins::MOTOR_FRAME_UNDEFINED:
GCS_SEND_TEXT(MAV_SEVERITY_ERROR, "ERROR: Bad frame class.");
break;
}
}
void Fins::output_fins()
{
_time = AP_HAL::micros() * 1.0e-6;
for (int8_t i=0; i<NUM_FINS; i++) {
_amp[i] = fmaxf(0,_right_amp_factor[i]*right_out) + fmaxf(0,_front_amp_factor[i]*front_out) +
fabsf(_down_amp_factor[i]*down_out) + fabsf(_yaw_amp_factor[i]*yaw_out);
_off[i] = _right_off_factor[i]*right_out + _front_off_factor[i]*front_out +
_down_off_factor[i]*down_out + _yaw_off_factor[i]*yaw_out;
_freq[i] = 1;
_num_added = 0;
if (fmaxf(0,_right_amp_factor[i]*right_out) > 0.0f) {
_num_added++;
}
if (fmaxf(0,_front_amp_factor[i]*front_out) > 0.0f) {
_num_added++;
}
if (fabsf(_down_amp_factor[i]*down_out) > 0.0f) {
_num_added++;
}
if (fabsf(_yaw_amp_factor[i]*yaw_out) > 0.0f) {
_num_added++;
}
if (_num_added > 0) {
_off[i] = _off[i]/_num_added; //average the offsets
}
if ((_amp[i]+fabsf(_off[i])) > thr_max) {
_amp[i] = thr_max - fabsf(_off[i]);
}
if (turbo_mode) {
//double speed fins if offset at max...
if (_amp[i] <= 0.6 && fabsf(_off[i]) >= 0.4) {
_freq[i] = 2;
}
}
// finding and outputting current position for each servo from sine wave
_thrpos[i]= _amp[i]*cosf(freq_hz * _freq[i] * _time * 2 * M_PI) + _off[i];
SRV_Channels::set_output_scaled(SRV_Channels::get_motor_function(i), _thrpos[i] * INPUT_AND_OUTPUT_SCALING);
}
#if HAL_LOGGING_ENABLED
blimp.Write_FINO(_amp, _off);
#endif
}
void Fins::output_motors()
{
for (int8_t i=0; i<NUM_FINS; i++) {
//Calculate throttle for each motor
_thrpos[i] = constrain_float(_right_amp_factor[i]*right_out + _front_amp_factor[i]*front_out + _down_amp_factor[i]*down_out + _yaw_amp_factor[i]*yaw_out, -thr_max, thr_max);
//Set output
SRV_Channels::set_output_scaled(SRV_Channels::get_motor_function(i), _thrpos[i] * INPUT_AND_OUTPUT_SCALING);
}
}
void Fins::output_min()
{
right_out = 0;
front_out = 0;
down_out = 0;
yaw_out = 0;
Fins::output();
}
const char* Fins::get_frame_string()
{
switch (_frame) {
case Fins::MOTOR_FRAME_FISHBLIMP:
return "FISHBLIMP";
case Fins::MOTOR_FRAME_FOUR_MOTOR:
return "FOURMOTOR";
case Fins::MOTOR_FRAME_UNDEFINED:
break;
}
return "NOFRAME";
}