from components.plant.pot import Pot from matplotlib.pyplot import plot, figure, subplot, grid, show, legend from components.pid import Kalman from components.pid.temp_controller_base import TempControllerBase from components.pid.tc_constants import * import numpy as np class TempController(TempControllerBase): def __init__(self, dt, params): TempControllerBase.__init__(self, dt, params) self.kalman = Kalman(dt, params['Kalman']) def init_kalman(self, value): self.kalman.initial((value, 0)) def process(self): # Process Kalman if self.use_kalman: Z = self.kalman.process_measurement((self.theta_ist_set, 0), 0.0) xp = self.kalman.process(Z) self.theta_ist = xp[0, 0] self.heatrate_ist = xp[1, 0] * 60 else: self.theta_ist = self.theta_ist_set self.heatrate_ist = self.heatrate_ist_set # Compensate for max heat rate to reduce overshoot if self.heatrate_soll_set > 0: self.pid_hold.scale(1.0/self.heatrate_soll_set) self.heatrate_soll = self.heatrate_soll_set * self.pid_hold.get_y() theta_err = self.theta_soll_set - self.theta_ist heatrate_err = self.heatrate_soll - self.heatrate_ist diff = self.theta_soll_set - self.theta_ist self.process_fsm(diff) self.process_pid(theta_err, heatrate_err) if __name__ == '__main__': dt = 1.0 temp_ist = 0 temp_soll = 20 ctrl = TempController(dt, Test.tc_ctrl_params) plant = Pot(dt, Test.tc_pot_params) _temp_ist = np.empty(0) _temp_soll = np.empty(0) _y = np.empty(0) _fb = np.empty(0) _t = np.empty(0) _heatrate_ist_kalman = np.empty(0) _temp_ist_kalman = np.empty(0) a = 0.5 fb = 0 rho = 0.02 temps = [{'Temp': 20, 'Duration': 1000}, {'Temp': 40, 'Duration': 1000}, {'Temp': 50, 'Duration': 1000}, {'Temp': 60, 'Duration': 1000}, {'Temp': 70, 'Duration': 1000}, {'Temp': 80, 'Duration': 1000}, {'Temp': 78, 'Duration': 1000}] t = 0 for temp in temps: temp_soll = temp['Temp'] hold_counter = temp['Duration'] hold = False ctrl.set_theta_soll(temp_soll) ctrl.set_heatrate_soll(1.0) while True: if hold: if hold_counter == 0: break hold_counter -= 1 plant.process() temp_ist = plant.get_temperature() + 0.0 * np.random.randn() ctrl.set_theta_ist(temp_ist) ctrl.process() y = 3500*ctrl.get_power() power = max(0, y) plant.set_power(power) fb = plant.get_power() if abs(temp_ist - temp_soll) < 0.1: hold = True temp_ist -= rho _temp_ist = np.append(_temp_ist, temp_ist) _temp_soll = np.append(_temp_soll, temp_soll) _y = np.append(_y, y) _fb = np.append(_fb, fb) _t = np.append(_t, t) _heatrate_ist_kalman = np.append(_heatrate_ist_kalman, max(-1, min(3, ctrl.heatrate_ist))) _temp_ist_kalman = np.append(_temp_ist, ctrl.theta_ist) t += 1 figure(1) subplot(3, 1, 1) plot(_t, _temp_ist, _t, _temp_soll, 'r-', linewidth=1) legend(["ist", "soll"]) grid(True) subplot(3, 1, 2) plot(_t, _y, '-b', _t, _fb, '-r', linewidth=1) legend(["y", "pot"]) grid(True) subplot(3, 1, 3) plot(_t, _heatrate_ist_kalman, '-b', linewidth=1) legend(["heatrate"]) grid(True) show() print("End of program")