Files
SystemSimulationApp/app/simulation/solvers/stream.py
T

185 lines
6.5 KiB
Python

from __future__ import annotations
from dataclasses import dataclass
from app.simulation.core.base import Component, DynamicComponent
from app.simulation.core.ports import PortState
from app.simulation.performance import profile_phase
from app.simulation.systems.network import SimulationNetwork
class StreamSolveError(RuntimeError):
def __init__(self, message: str, diagnostics: "StreamSolveDiagnostics") -> None:
super().__init__(message)
self.diagnostics = diagnostics
@dataclass(frozen=True)
class StreamSolveDiagnostics:
converged: bool
iterations: int
max_delta: float
def as_dict(self) -> dict[str, object]:
return {
"converged": self.converged,
"iterations": self.iterations,
"maxDelta": self.max_delta,
}
@dataclass(frozen=True)
class _StreamConnectionBinding:
component_name: str
port_name: str
connected_component: Component
connected_port: PortState
class StreamResolver:
"""Resolve outflow enthalpy propagation after pressure and flow are known."""
def __init__(
self,
network: SimulationNetwork,
*,
relative_tolerance: float = 1e-9,
max_iterations: int = 100,
) -> None:
self.network = network
self.relative_tolerance = relative_tolerance
self.max_iterations = max_iterations
self._components = tuple(network.components.values())
self._dynamic_components = tuple(
component
for component in self._components
if isinstance(component, DynamicComponent)
)
self._non_dynamic_components = tuple(
component
for component in self._components
if not isinstance(component, DynamicComponent)
)
self._ports = tuple(
(component.name, port_name, port)
for component in self._components
for port_name, port in component.ports.items()
)
self._connection_bindings = self._build_connection_bindings()
self.last_diagnostics: StreamSolveDiagnostics | None = None
def _build_connection_bindings(self) -> tuple[_StreamConnectionBinding, ...]:
result: list[_StreamConnectionBinding] = []
for connection in self.network.connections:
if connection.kind != "physical":
continue
first, second = connection.endpoints
first_component = self.network.components[first.component]
second_component = self.network.components[second.component]
result.append(
_StreamConnectionBinding(
component_name=first.component,
port_name=first.port,
connected_component=second_component,
connected_port=second_component.get_port(second.port),
)
)
result.append(
_StreamConnectionBinding(
component_name=second.component,
port_name=second.port,
connected_component=first_component,
connected_port=first_component.get_port(first.port),
)
)
return tuple(result)
def connected_enthalpies(self) -> dict[str, dict[str, float]]:
values: dict[str, dict[str, float]] = {
component.name: {} for component in self._components
}
for binding in self._connection_bindings:
values[binding.component_name][binding.port_name] = (
binding.connected_port.h_outflow
)
return values
def connected_temperature_reference_enthalpies(
self,
) -> dict[str, dict[str, float]]:
"""Return connector references used for upstream temperature only."""
values: dict[str, dict[str, float]] = {
component.name: {} for component in self._components
}
for binding in self._connection_bindings:
values[binding.component_name][binding.port_name] = float(
getattr(
binding.connected_component,
"temperature_reference_h",
binding.connected_port.h_outflow,
)
)
return values
@profile_phase("simulation.refresh", minimum_mode="audit")
def _refresh_dynamic_components(self) -> None:
for component in self._dynamic_components:
component.refresh_thermodynamic_ports()
@profile_phase("simulation.refresh", minimum_mode="audit")
def _refresh_stream_components(
self,
connected: dict[str, dict[str, float]],
) -> None:
for component in self._non_dynamic_components:
component.update_stream_outflows(connected[component.name])
@profile_phase("simulation.stream", minimum_mode="audit")
def solve(
self,
*,
dynamic_ports_are_current: bool = False,
) -> tuple[StreamSolveDiagnostics, dict[str, dict[str, float]]]:
if not dynamic_ports_are_current:
self._refresh_dynamic_components()
max_delta = 0.0
for iteration in range(1, self.max_iterations + 1):
previous = {
(component_name, port_name): port.h_outflow
for component_name, port_name, port in self._ports
}
connected = self.connected_enthalpies()
self._refresh_stream_components(connected)
deltas = [
abs(port.h_outflow - previous[(component_name, port_name)])
for component_name, port_name, port in self._ports
]
magnitudes = [
abs(port.h_outflow)
for _component_name, _port_name, port in self._ports
]
max_delta = max(deltas, default=0.0)
scale = max(magnitudes + [1.0])
if max_delta <= self.relative_tolerance * scale:
diagnostics = StreamSolveDiagnostics(
converged=True,
iterations=iteration,
max_delta=max_delta,
)
self.last_diagnostics = diagnostics
return diagnostics, self.connected_enthalpies()
diagnostics = StreamSolveDiagnostics(
converged=False,
iterations=self.max_iterations,
max_delta=max_delta,
)
self.last_diagnostics = diagnostics
raise StreamSolveError(
"Stream enthalpy propagation did not converge.",
diagnostics,
)