modelDC_BiDirectConsumer

Four port model of district cooling consumer and producer with direct connection - base class.

Extends from dhcSim.DHC.Submodules.FourPortModules.BaseClasses.BaseModule, dhcSim.DHC.Submodules.FourPortModules.BaseClasses.ExternalProfiles, Buildings.Fluid.Interfaces.TwoPortFlowResistanceParameters (Parameters for flow resistance for models with two ports), dhcSim.DHC.Submodules.FourPortModules.Interfaces.FourPortModulesParameters (Record of needed parameters for four port modules).

Parameters

TypeNameDefaultDescription
dhcSim.Fluid.Types.FeedingTemperatureProsupTempTypedhcSim.Fluid.Types.FeedingTemperaturePro.fixedDefine how supply temperature is caclulated if producer
dhcSim.Fluid.Types.FeedingTemperatureConretTempTypedhcSim.Fluid.Types.FeedingTemperatureCon.fixedDefine how return temperature is caclulated if consumer
Modelica.SIunits.TemperatureTNetSupSetMedium.T_defaultReturn temperature if supTempType=fixed
Modelica.SIunits.TemperatureTNetRetSetMedium.T_defaultReturn temperature if retTempType=fixed
Modelica.SIunits.TemperatureDifferencedeltaT5Temperature difference between inlet and outlet if supTempType or retTempType = dTFix
Flow resistance
BooleancomputeFlowResistance (from TwoPortFlowResistanceParameters)true=true, compute flow resistance. Set to false to assume no friction
Booleanfrom_dp (from TwoPortFlowResistanceParameters)false= true, use m_flow = f(dp) else dp = f(m_flow)
BooleanlinearizeFlowResistance (from TwoPortFlowResistanceParameters)false= true, use linear relation between m_flow and dp for any flow rate
RealdeltaM (from TwoPortFlowResistanceParameters)0.1Fraction of nominal flow rate where flow transitions to laminar
Nominal condition
Modelica.Units.SI.PressureDifferencedp_nominal (from TwoPortFlowResistanceParameters)Pressure difference
Modelica.SIunits.MassFlowRatem_flow_nominal (from FourPortModulesParameters)Nominal mass flow rate
Modelica.SIunits.HeatFlowRateQ_flow_nominalNominal heat flow rate
Modelica.SIunits.HeatFlowRateQ_flow_nominal_proNominal heat flow rate of intetrnal cool producer
Modelica.SIunits.TemperatureTNetIn_nominalMedium.T_defaultNominal Temperature of inflow at network side
Modelica.SIunits.TemperatureTNetOut_nominalMedium.T_defaultNominal Temperature of outflow at network side
Modelica.SIunits.TemperatureTBuiIn_nominalMedium.T_defaultNominal Temperature of inflow at building side
Modelica.SIunits.TemperatureTBuiOut_nominalMedium.T_defaultNominal Temperature of outflow at building side
Assumptions
BooleanallowFlowReversal (from FourPortModulesParameters)true= true to allow flow reversal, false restricts to design direction (port_a -> port_b)
Advanced › Diagnostics
Booleanshow_T (from FourPortModulesParameters)false= true, if actual temperature at port is computed
Advanced
Modelica.SIunits.MassFlowRatem_flow_small (from FourPortModulesParameters)1E-4*abs(m_flow_nominal)Small mass flow rate for regularization of zero flow

Connectors

TypeNameDefaultDescription
Modelica.Blocks.Interfaces.RealOutputQ_flow_out
Modelica.Blocks.Interfaces.RealOutputdp_out
Modelica.Blocks.Interfaces.RealInputy_ProInput signal of internal producer y=0..1

Components

TypeNameDefaultDescription
Modelica.SIunits.HeatFlowRateQ_flowTotTotal heat flow rate; <0=cool producer, >0=cool consumer
Modelica.SIunits.TemperatureTSupIntInternal calculated supply temperature if producer
Modelica.SIunits.TemperatureTRetIntInternal calculated return temperature if consumer
dhcSim.DHC.Submodules.TwoPortModules.CoolBiDirektional_DirectconPro
Modelica.Blocks.Sources.RealExpressionTReturn
Modelica.Blocks.Sources.RealExpressionTSupply