完成求解器雅可比矩阵首轮优化,增加更新目录,整理了文档文件夹,增加了服务启动脚本
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@@ -1,7 +1,8 @@
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from __future__ import annotations
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from collections.abc import Callable
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from collections.abc import Callable, Sequence
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from dataclasses import dataclass
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from math import isfinite
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from typing import ClassVar
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from app.simulation.core.errors import RecoverableTrialStateError
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@@ -9,6 +10,8 @@ from app.simulation.core.medium import (
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GasMedium,
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IdealGasMedium,
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ThermodynamicProperties,
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ThermodynamicPropertiesLinearization,
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ThermodynamicPropertyTangents,
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)
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from app.simulation.core.peng_robinson import HELIUM_PR, PengRobinsonFluid
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from app.simulation.performance import profile_property, record_property_iterations
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@@ -309,6 +312,153 @@ class AmesimHeliumPengRobinsonMedium(IdealGasMedium):
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),
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)
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def linearize_properties_from_mU(
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self,
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m: float,
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U: float,
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V: float,
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dm: Sequence[float],
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dU: Sequence[float],
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dV: Sequence[float],
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*,
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properties: ThermodynamicProperties | None = None,
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) -> ThermodynamicPropertiesLinearization:
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"""Implicitly differentiate the Peng-Robinson m/U/V recovery."""
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dm_values = tuple(float(value) for value in dm)
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dU_values = tuple(float(value) for value in dU)
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dV_values = tuple(float(value) for value in dV)
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if not (len(dm_values) == len(dU_values) == len(dV_values)):
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raise ValueError("Thermodynamic tangent vectors must have equal lengths.")
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props = properties or self.properties_from_mU(m, U, V)
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width = len(dm_values)
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def invalid(reason: str) -> ThermodynamicPropertiesLinearization:
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return ThermodynamicPropertiesLinearization(
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properties=props,
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tangents=ThermodynamicPropertyTangents.zeros(width),
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valid=False,
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reason=reason,
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)
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expected_density = m / V
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expected_internal_energy = U / m
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if (
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abs(props.rho - expected_density)
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> 1.0e-12 * max(abs(expected_density), 1.0)
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or abs(props.u - expected_internal_energy)
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> 1.0e-12 * max(abs(expected_internal_energy), 1.0)
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):
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return invalid("properties_primal_mismatch")
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if not all(
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isfinite(value)
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for values in (dm_values, dU_values, dV_values)
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for value in values
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):
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return invalid("non_finite_tangent_input")
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if props.T <= 2.2 * (1.0 + 1.0e-10):
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return invalid("temperature_floor_boundary")
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pressure_temperature_derivative = (
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self.fluid.pressure_temperature_derivative_at_density(
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props.T,
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props.rho,
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)
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)
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pressure_density_derivative = (
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self.fluid.pressure_density_derivative_at_temperature(
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props.T,
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props.rho,
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)
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)
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cv = (
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self.cv_at_temperature(props.T)
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+ self.fluid.residual_isochoric_heat_capacity_at_density(
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props.T,
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props.rho,
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)
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)
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recovered_internal_energy = (
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self.specific_internal_energy(props.T)
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+ self.fluid.residual_specific_internal_energy_at_density(
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props.T,
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props.rho,
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)
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)
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recovery_scale = max(
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abs(props.u),
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abs(cv * props.T) if isfinite(cv) else 0.0,
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1.0,
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)
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if (
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not all(
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isfinite(value)
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for value in (
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pressure_temperature_derivative,
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pressure_density_derivative,
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cv,
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recovered_internal_energy,
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)
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)
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or cv <= 0.0
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):
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return invalid("invalid_peng_robinson_derivative")
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if abs(recovered_internal_energy - props.u) > 1.0e-8 * recovery_scale:
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return invalid("properties_recovery_not_converged")
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internal_energy_density_derivative = (
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props.p - props.T * pressure_temperature_derivative
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) / (props.rho * props.rho)
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drho: list[float] = []
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du: list[float] = []
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dT: list[float] = []
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dp: list[float] = []
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dh: list[float] = []
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for mass_tangent, energy_tangent, volume_tangent in zip(
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dm_values,
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dU_values,
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dV_values,
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strict=True,
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):
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density_tangent = (
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mass_tangent / V - m * volume_tangent / (V * V)
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)
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internal_energy_tangent = (
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energy_tangent / m - U * mass_tangent / (m * m)
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)
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temperature_tangent = (
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internal_energy_tangent
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- internal_energy_density_derivative * density_tangent
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) / cv
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pressure_tangent = (
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pressure_temperature_derivative * temperature_tangent
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+ pressure_density_derivative * density_tangent
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)
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enthalpy_tangent = (
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internal_energy_tangent
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+ pressure_tangent / props.rho
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- props.p * density_tangent / (props.rho * props.rho)
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)
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drho.append(density_tangent)
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du.append(internal_energy_tangent)
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dT.append(temperature_tangent)
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dp.append(pressure_tangent)
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dh.append(enthalpy_tangent)
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tangent_values = (*drho, *du, *dT, *dp, *dh)
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if not all(isfinite(value) for value in tangent_values):
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return invalid("non_finite_property_tangent")
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return ThermodynamicPropertiesLinearization(
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properties=props,
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tangents=ThermodynamicPropertyTangents(
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p=tuple(dp),
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T=tuple(dT),
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rho=tuple(drho),
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u=tuple(du),
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h=tuple(dh),
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),
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)
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@dataclass(frozen=True)
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class AmesimGasPropertyModelSpec:
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