332 lines
12 KiB
Python
332 lines
12 KiB
Python
# -*- coding: utf-8 -*-
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"""Component models used by Brayton cycle simulations."""
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class Compressor():
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"""压缩机类"""
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def __init__(self, name, eff):
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"""
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初始化参数
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name: 名称
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eff: 等熵效率
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Wc: 压缩功
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inlet_state: 入口参数
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outlet_state: 出口参数
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outlet_state_is: 等熵状态下出口参数
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"""
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self.name = name
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self.eff = eff
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self.variables = None
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def calculator(self, p_in, T_in, p_out, property_calculator):
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# 先计算熵值
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inlet_state = property_calculator.calculate_properties(T=T_in, P=p_in)
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mw = property_calculator.mw
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s = inlet_state['s']
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h_in = inlet_state['h']
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outlet_state_is = property_calculator.calculate_properties(P=p_out, s=s)
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h_out_is = outlet_state_is['h']
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h_out = h_in + (h_out_is - h_in) / self.eff
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outlet_state = property_calculator.calculate_properties(P=p_out, h=h_out)
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Wc = h_out - h_in
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T_out = outlet_state['T']
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# 计算结果
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self.variables = {
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'name': self.name,
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'inlet_state':{
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'P': p_in, # 压强(kPa)
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'T': T_in,
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'h': h_in/mw, # 比焓(J/mol)->(J/kg)
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's': s/mw, # 比熵(J/mol.K)->(J/kg.K)
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},
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'outlet_state':{
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'P': p_out, # 压强(kPa)
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'T': T_out,
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'h': h_out/mw, # 比焓(kJ/mol)->(kJ/kg)
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's': s/mw, # 比熵(kJ/mol.K)->(kJ/kg.K)
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},
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'eff': self.eff,
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'Wc': Wc/mw, # 压缩功(kJ/mol)->(kJ/kg)
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'pi': p_out / p_in
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}
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class Turbine():
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"""透平类"""
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def __init__(self, name, eff):
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"""
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初始化参数
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name: 名称
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eff: 透平效率
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"""
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self.name = name
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self.eff = eff
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self.variables = None
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def calculator(self, p_in, T_in, p_out, property_calculator):
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"""涡轮参数计算"""
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inlet_state = property_calculator.calculate_properties(P=p_in, T=T_in)
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mw = property_calculator.mw
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s = inlet_state['s']
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h_in = inlet_state['h']
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outlet_state_is = property_calculator.calculate_properties(P=p_out, s=s)
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h_out_is = outlet_state_is['h']
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h_out = h_in - (h_in - h_out_is) * self.eff
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outlet_state = property_calculator.calculate_properties(P=p_out, h=h_out)
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T_out = outlet_state['T']
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Wt = h_in - h_out
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self.variables = {
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'name': self.name,
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'inlet_state':{
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'P': p_in, # 压强(kPa)
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'T': T_in,
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'h': h_in/mw, # 比焓(J/mol)->(J/kg)
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's': s/mw, # 比熵(J/mol.K)->(J/kg.K)
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},
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'outlet_state':{
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'P': p_out, # 压强(kPa)
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'T': T_out,
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'h': h_out/mw, # 比焓(J/mol)->(J/kg)
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's': s/mw, # 比熵(J/mol.K)->(J/kg.K)
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},
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'eff': self.eff,
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'Wt': Wt/mw, # 透平做功(J/mol)->(J/kg)
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'pi': p_in / p_out
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}
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class Recuperator():
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"""换热器类"""
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def __init__(self, name, eff, x=0):
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"""
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初始化参数
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name: 名称
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eff: 换热效率(基于焓的计算方法)
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"""
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self.name = name
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self.eff = eff
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self.Q_ex = None
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self.variables = None
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self.x = x
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def calculator(self, cold_inlet_state, hot_inlet_state, bypass_info, ploss=0.0, property_calculator=None):
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"""
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计算换热器两侧参数,默认逆流
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bypass_info: 是否存在分流,0为不存在,1为存在
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下标含义
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----------
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1: 换热器冷端入口
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2: 换热器冷端出口
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3: 换热器热端入口
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4: 换热器热端出口
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ass: 迭代中间变量,假设值
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"""
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# 计算两入口参数, 这里单位是kg
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if property_calculator is None:
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if hasattr(ploss, "calculate_properties"):
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property_calculator = ploss
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ploss = 0.0
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else:
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raise ValueError("property_calculator is required")
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p1 = cold_inlet_state['P']
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T1 = cold_inlet_state['T']
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h1 = cold_inlet_state['h']
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p2 = p1 * (1 - ploss)
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p3 = hot_inlet_state['P']
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T3 = hot_inlet_state['T']
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h3 = hot_inlet_state['h']
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p4 = p3 * (1 - ploss)
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mw = property_calculator.mw
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# 设定质量流量
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m_cold = (1-self.x) if bypass_info == 1 else 1.0
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m_hot = 1.0
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# =============================================================================
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# # 采用焓差效能的方式来计算换热器进出口参数
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# # 假设最大温差发生在冷端, 计算冷端出口温度和比焓
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# cold_outlet_state = property_calculator.calculate_properties(T=T3, P=p2)
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# h2 = cold_outlet_state['h'] / mw
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# Q_ass_cold = m_cold * abs(h2 - h1)
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#
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# # 假设最大温差发生在热端, 计算热端出口温度和比焓
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# hot_outlet_state = property_calculator.calculate_properties(T=T1, P=p4)
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# h4 = hot_outlet_state['h'] / mw
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# Q_ass_hot = m_hot * abs(h3 - h4)
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#
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# # 比较两个可能的Q,取最小值与焓差效能的乘积作为实际换热量
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# self.Q_ex = min(Q_ass_hot, Q_ass_cold) * self.eff
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# # 由实际换热量计算出口焓和出口状态
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# h2 = h1 + self.Q_ex / m_cold
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# h4 = h3 - self.Q_ex / m_hot
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# cold_outlet_state = property_calculator.calculate_properties(P=p2, h=h2*mw)
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# hot_outlet_state = property_calculator.calculate_properties(P=p4, h=h4*mw)
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# T2 = cold_outlet_state['T']
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# T4 = hot_outlet_state['T']
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# =============================================================================
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# 采用温差效能的方式来计算换热器进出口参数
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T_ass_max = abs(T1 - T3)
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# 假设最大温差发生在冷端, 计算冷端出口温度和比焓
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T2 = T1 + T_ass_max * self.eff
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cold_outlet_state = property_calculator.calculate_properties(T=T2, P=p2)
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h2 = cold_outlet_state['h'] / mw
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Q_ass_cold = m_cold * abs(h2 - h1)
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# 假设最大温差发生在热端, 计算热端出口温度和比焓
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T4 = T3 - T_ass_max * self.eff
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hot_outlet_state = property_calculator.calculate_properties(T=T4, P=p4)
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h4 = hot_outlet_state['h'] / mw
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Q_ass_hot = m_hot * abs(h3 - h4)
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# 比较两个可能的Q,取最小值与焓差效能的乘积作为实际换热量
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self.Q_ex = min(Q_ass_hot, Q_ass_cold)
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# 由实际换热量计算出口焓和出口状态
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h2 = h1 + self.Q_ex / m_cold
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h4 = h3 - self.Q_ex / m_hot
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cold_outlet_state = property_calculator.calculate_properties(P=p2, h=h2*mw)
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hot_outlet_state = property_calculator.calculate_properties(P=p4, h=h4*mw)
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T2 = cold_outlet_state['T']
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T4 = hot_outlet_state['T']
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# 拼装变量
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self.variables = {
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'name': self.name,
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'cold_inlet_state':{
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'P': p1,
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'T': T1,
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'h': h1,
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's': cold_inlet_state['s']
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},
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'cold_outlet_state':{
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'P': p2,
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'T': cold_outlet_state['T'],
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'h': h2,
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's': cold_outlet_state['s']/mw
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},
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'hot_inlet_state':{
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'P': p3,
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'T': T3,
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'h': h3,
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's': hot_inlet_state['s']
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},
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'hot_outlet_state':{
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'P': p4,
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'T': T4,
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'h': h4,
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's': hot_outlet_state['s']/mw
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},
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'eff': self.eff,
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'Q_exchange': self.Q_ex
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}
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def check_pinch_point(self, property_calculator, num_segments=20):
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"""
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换热器内部夹点校验
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将换热量均分为 num_segments 段,检查内部每个微元的冷热流体温度
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"""
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h_cold_in = self.variables['cold_inlet_state']['h']
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h_hot_in = self.variables['hot_inlet_state']['h']
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p_cold = self.variables['cold_inlet_state']['P']
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p_hot = self.variables['hot_inlet_state']['P']
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m_cold = (1 - self.x) if self.name == "Low Temperature recuprerator" else 1.0
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m_hot = 1.0
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dQ = self.Q_ex / num_segments
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# 沿冷流体流动方向步进检查
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for i in range(num_segments + 1):
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q_current = i * dQ
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# 当前微元截面的焓值
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h_cold_local = h_cold_in + q_current / m_cold
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h_hot_local = (h_hot_in - self.Q_ex / m_hot) + q_current / m_hot
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# 查温度
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T_cold_local = property_calculator.calculate_properties(P=p_cold, h=h_cold_local * property_calculator.mw)['T']
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T_hot_local = property_calculator.calculate_properties(P=p_hot, h=h_hot_local * property_calculator.mw)['T']
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# 如果热流体温度低于等于冷流体温度 (设定一个 0.1K 的最小逼近温差容差)
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if T_hot_local - T_cold_local < 0.1:
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return False # 发生温度交叉,物理不可行!
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return True
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class Heater():
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"""加热器类"""
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def __init__(self, name):
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self.name = name
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self.variables = None
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def calculator(self, inlet_state, outlet_state):
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h_in = inlet_state['h']
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h_out = outlet_state['h']
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Q_input = h_out - h_in
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self.variables = {
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'name': self.name,
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'inlet_state':{
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'P': inlet_state['P'], # 压强(kPa)
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'T': inlet_state['T'],
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'h': inlet_state['h'],
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's': inlet_state['s'],
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},
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'outlet_state':{
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'P': outlet_state['P'], # 压强(kPa)
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'T': outlet_state['T'],
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'h': outlet_state['h'],
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's': outlet_state['s'],
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},
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'Q_in': Q_input,
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}
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class Condenser():
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"""冷凝器类"""
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def __init__(self, name):
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self.name = name
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self.variables = None
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def calculator(self, inlet_state, outlet_state):
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h_in = inlet_state['h']
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h_out = outlet_state['h']
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Q_output = h_in - h_out
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self.variables = {
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'name': self.name,
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'inlet_state':{
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'P': inlet_state['P'], # 压强(kPa)
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'T': inlet_state['T'],
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'h': inlet_state['h'],
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's': inlet_state['s'],
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},
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'outlet_state':{
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'P': outlet_state['P'], # 压强(kPa)
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'T': outlet_state['T'],
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'h': outlet_state['h'],
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's': outlet_state['s'],
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},
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'Q_out': Q_output,
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}
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class Concentrator():
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"""汇流组件"""
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def __init__(self, name):
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self.name = name
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self.variables = None
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def calculator(self, inlet_state_bypass, inlet_state_mroad, x, property_calculator):
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h_in_bypass = inlet_state_bypass['h']
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h_in_mroad = inlet_state_mroad['h']
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p_in = inlet_state_bypass['P']
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mw = property_calculator.mw
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h_out = x * h_in_bypass + (1-x) * h_in_mroad
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outlet_state = property_calculator.calculate_properties(P=p_in, h=h_out*mw)
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self.variables = {
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'name': self.name,
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'inlet_state_bypass': inlet_state_bypass,
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'inlet_state_mroad': inlet_state_mroad,
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'outlet_state':{
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'P': p_in,
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'T': outlet_state['T'],
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'h': h_out,
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's': outlet_state['s']/mw
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}
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}
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