- use heat diffusion for water model instead of delay line
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@@ -1,4 +1,4 @@
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from components.plant.pot import Pot, Delay
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from components.plant.pot import Pot, HeatDiffusion
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from matplotlib.pyplot import plot, figure, subplot, grid, show, legend
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from components.pid import Pid, Kalman
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from components import APid
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@@ -28,6 +28,7 @@ class TempController(APid):
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self.params = params
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self.model_params = model_params
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self.kalman_model = Kalman(dt, params['Kalman'])
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self.kalman_model_delay = Kalman(dt, params['Kalman'])
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self.kalman_plant = Kalman(dt, params['Kalman'])
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self.y = -1
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self.state = States.IDLE
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@@ -35,8 +36,6 @@ class TempController(APid):
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self.pid_hold.set_params(params['Hold'])
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self.pid_rate.set_params(params['Heat'])
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self.model = Pot(dt, model_params)
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self.theta_ist_delay_model = Delay(dt, model_params['Td'], 0)
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self.dtheta_ist_delay_model = Delay(dt, model_params['Td'], 0)
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self.is_startup = True
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def set_theta_ist(self, value):
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@@ -44,6 +43,7 @@ class TempController(APid):
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if self.is_startup:
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self.is_startup = False
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self.kalman_model.initial((value, 0))
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self.kalman_model_delay.initial((value, 0))
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self.kalman_plant.initial((value, 0))
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def get_theta_ist(self):
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@@ -75,12 +75,16 @@ class TempController(APid):
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def process(self):
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# Process Kalman of Model
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Z_model = self.kalman_model.process_measurement((self.model.get_temperature_intermediate(), 0), 0.0)
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xp_model = self.kalman_model.process(Z_model)
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k_model = self.kalman_model.process_measurement((self.model.get_temperature_intermediate(), 0), 0.0)
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xp_model = self.kalman_model.process(k_model)
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theta_ist_model = xp_model[0, 0]
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heatrate_ist_model = xp_model[1, 0] * 60
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self.theta_ist_delay_model.put(theta_ist_model)
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self.dtheta_ist_delay_model.put(heatrate_ist_model)
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# Process Kalman of delayed Model
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k_model_delay = self.kalman_model_delay.process_measurement((self.model.get_temperature(), 0), 0.0)
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xp_model_delay = self.kalman_model_delay.process(k_model_delay)
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theta_ist_model_delay = xp_model_delay[0, 0]
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dtheta_ist_model_delay = xp_model_delay[1, 0] * 60
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# Process Kalman of Plant
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Z_plant = self.kalman_plant.process_measurement((self.theta_ist_set, 0), 0.0)
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@@ -97,8 +101,6 @@ class TempController(APid):
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self.theta_ist = theta_ist_plant
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self.heatrate_ist = heatrate_ist_plant
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theta_ist_model_delay = self.theta_ist_delay_model.get()
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dtheta_ist_model_delay = self.dtheta_ist_delay_model.get()
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print ("Model : T_ist={:2.2f}, dT_ist={:2.2f}".format(theta_ist_model, heatrate_ist_model))
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print ("Model*z-1: T_ist={:2.2f}, dT_ist={:2.2f}".format(theta_ist_model_delay, dtheta_ist_model_delay))
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print ("Plant : T_ist={:2.2f}, dT_ist={:2.2f}".format(theta_ist_plant, heatrate_ist_plant))
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@@ -0,0 +1,23 @@
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import numpy as np
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class HeatDiffusion:
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def __init__(self, dt, delay, ic=0):
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self.alpha = dt/delay
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self.beta = 1 - self.alpha
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self.state = ic
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def initial(self, ic):
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self.state = ic
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def process(self, x):
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self.state = self.beta * self.state + self.alpha*x
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return self.state
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if __name__ == '__main__':
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d = HeatDiffusion(0.1, 1)
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for i in range(1, 200):
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y = d.process(1)
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print("In = {}, out = {}".format(i, y))
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@@ -1,5 +1,5 @@
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from components.aplant import APlant
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from components.plant.delay import Delay
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from components.plant.heat_diffusion import HeatDiffusion
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class Pot(APlant):
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@@ -22,7 +22,7 @@ class Pot(APlant):
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self.theta_amb = theta_amb
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self.power_set = 0
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self.delay = Delay(self.dt, self.Td, params['theta'])
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self.delay = HeatDiffusion(self.dt, self.Td, params['theta'])
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def initial(self, temp):
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self.temp_intermediate = temp
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@@ -33,12 +33,12 @@ class Pot(APlant):
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pass
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def process(self):
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power = self.gain * self.power_set
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leak = 1/self.M * self.L * (self.theta_amb - self.temp)/self.theta_amb
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self.temp_intermediate += (self.power_set / (self.M * self.C) + leak) * self.dt
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self.temp_intermediate += (power / (self.M * self.C) + leak) * self.dt
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# Delay
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self.delay.put(self.temp_intermediate)
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self.temp = self.delay.get()
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self.temp = self.delay.process(self.temp_intermediate)
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def is_activated(self):
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return True
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