modelConduction_3D

2-D Conduction Models

Extends from TRANSFORM.HeatAndMassTransfer.ClosureRelations.Geometry.ConductionIcons, TRANSFORM.HeatAndMassTransfer.DiscritizedModels.BaseClasses.Dimensions_3.PartialDistributedVolume (Base class for distributed 3-D volume models).

Parameters

TypeNameDefaultDescription
Integerfigure (from ConductionIcons)1Index for Icon figure
Integer[3]nVs (from PartialDistributedVolume){1, 1, 1}Number of discrete volumes
RealnParallel1Number of parallel components
IntegernFM_1if exposeState_a1 and exposeState_b1 then nVs[1] - 1 else if not exposeState_a1 and not exposeState_b1 then nVs[1] + 1 else nVs[1]number of flow models
IntegernFM_2if exposeState_a2 and exposeState_b2 then nVs[2] - 1 else if not exposeState_a2 and not exposeState_b2 then nVs[2] + 1 else nVs[2]number of flow models
IntegernFM_3if exposeState_a3 and exposeState_b3 then nVs[3] - 1 else if not exposeState_a3 and not exposeState_b3 then nVs[3] + 1 else nVs[3]number of flow models
Initialization › Dynamics
DynamicsenergyDynamics (from PartialDistributedVolume)Dynamics.DynamicFreeInitialFormulation of energy balances
Initialization › Start Value: Temperature
SI.Temperature[nVs[1],nVs[2],nVs[3]]Ts_start (from PartialDistributedVolume)fill(Material.T_reference, nVs[1], nVs[2], nVs[3])Temperature
SI.TemperatureT_a1_startMaterial.T_referenceTemperature at port a1
SI.TemperatureT_b1_startT_a1_startTemperature at port b1
SI.TemperatureT_a2_startMaterial.T_referenceTemperature at port a2
SI.TemperatureT_b2_startT_a2_startTemperature at port b2
SI.TemperatureT_a3_startMaterial.T_referenceTemperature at port a3
SI.TemperatureT_b3_startT_a3_startTemperature at port b3
Advanced
SI.Density[nVs[1],nVs[2],nVs[3]]ds_reference (from PartialDistributedVolume)Material.density(Material.setState_T(Ts_start))Reference density of mass reference for constant volumes
Advanced › Model Structure
BooleanexposeState_a1true=true, T is calculated at port_a1 else Q_flow
BooleanexposeState_b1false=true, T is calculated at port_b1 else Q_flow
BooleanexposeState_a2true=true, T is calculated at port_a2 else Q_flow
BooleanexposeState_b2false=true, T is calculated at port_b2 else Q_flow
BooleanexposeState_a3true=true, T is calculated at port_a3 else Q_flow
BooleanexposeState_b3false=true, T is calculated at port_b3 else Q_flow
Heat Transfer
Boolean[3]adiabaticDims{false, false, false}=true, toggle off conduction heat transfer in dimension {1,2,3}
Visualization
BooleanshowNametrue

Connectors

TypeNameDefaultDescription
Interfaces.HeatPort_Flow[nVs[2],nVs[3]]port_a1
Interfaces.HeatPort_Flow[nVs[2],nVs[3]]port_b1
Interfaces.HeatPort_Flow[nVs[1],nVs[3]]port_a2
Interfaces.HeatPort_Flow[nVs[1],nVs[3]]port_b2
Interfaces.HeatPort_Flow[nVs[1],nVs[2]]port_a3
Interfaces.HeatPort_Flow[nVs[1],nVs[2]]port_b3

Components

TypeNameDefaultDescription
BaseClasses.Dimensions_3.Summarysummary
SI.Volume[nVs[1],nVs[2],nVs[3]]Vs (from PartialDistributedVolume)Discretized volumes
Material.BaseProperties[nVs[1],nVs[2],nVs[3]]materials (from PartialDistributedVolume)
SI.Mass[nVs[1],nVs[2],nVs[3]]ms (from PartialDistributedVolume)Mass
SI.Mass[nVs[1],nVs[2],nVs[3]]delta_ms (from PartialDistributedVolume)Change in mass of constant volumes
SI.InternalEnergy[nVs[1],nVs[2],nVs[3]]Us (from PartialDistributedVolume)Internal energy
SI.HeatFlowRate[nVs[1],nVs[2],nVs[3]]Ubs (from PartialDistributedVolume)Energy sources across volume interfaces (e.g., thermal diffusion) and source/sinks within volumes (e.g., ohmic heating, external convection)
Geometrygeometry
ConductionModelconductionModelConduction Model
InternalHeatModelinternalHeatModelInternal heat generation model
SI.HeatFlowRate[nVs[1] + 1,nVs[2],nVs[3]]Q_flows_1Heat flow rates across segment boundaries
SI.HeatFlowRate[nVs[1],nVs[2] + 1,nVs[3]]Q_flows_2Heat flow rates across segment boundaries
SI.HeatFlowRate[nVs[1],nVs[2],nVs[3] + 1]Q_flows_3Heat flow rates across segment boundaries
Material.ThermodynamicState[nVs[2],nVs[3]]state_a1state defined by volume outside port_a1
Material.ThermodynamicState[nVs[2],nVs[3]]state_b1state defined by volume outside port_b1
Material.ThermodynamicState[nVs[1],nVs[3]]state_a2state defined by volume outside port_a2
Material.ThermodynamicState[nVs[1],nVs[3]]state_b2state defined by volume outside port_b2
Material.ThermodynamicState[nVs[1],nVs[2]]state_a3state defined by volume outside port_a3
Material.ThermodynamicState[nVs[1],nVs[2]]state_b3state defined by volume outside port_b3

Contents

NameDescription
Geometry
ConductionModel
InternalHeatModel