modelPartialDamperExponential

Partial model for air dampers with exponential opening characteristics

Extends from IBPSA.Fluid.BaseClasses.PartialResistance, IBPSA.Fluid.Actuators.BaseClasses.ActuatorSignal.

Information

Partial model for air dampers with exponential opening characteristics. This is the base model for air dampers and variable air volume flow boxes. The model implements the functions that relate the opening signal, the pressure drop and the mass flow rate. The model also defines parameters that are used by different air damper models.

For a description of the opening characteristics and typical parameter values, see the damper model IBPSA.Fluid.Actuators.Dampers.Exponential.

Parameters

TypeNameDefaultDescription
Booleanuse_deltaMtrueSet to true to use deltaM for turbulent transition, else ReC is used
RealdeltaM0.3Fraction of nominal mass flow rate where transition to turbulent occurs
Modelica.SIunits.Velocityv_nominal1Nominal face velocity
Modelica.SIunits.AreaAm_flow_nominal/rho_default/v_nominalFace area
BooleanroundDuctfalseSet to true for round duct, false for square cross section
RealReC4000Reynolds number where transition to turbulent starts
RealkFixedFlow coefficient of fixed resistance that may be in series with damper, k=m_flow/sqrt(dp), with unit=(kg.m)^(1/2).
Damper coefficients
Reala-1.51Coefficient a for damper characteristics
Realb0.105*90Coefficient b for damper characteristics
RealyL15/90Lower value for damper curve
RealyU55/90Upper value for damper curve
Realk01E6Flow coefficient for y=0, k0 = pressure drop divided by dynamic pressure
Realk10.45Flow coefficient for y=1, k1 = pressure drop divided by dynamic pressure
Advanced
Booleanuse_constant_densitytrueSet to true to use constant density for flow friction

Components

TypeNameDefaultDescription
Medium.DensityrhoMedium density
RealkDamFlow coefficient of damper, k=m_flow/sqrt(dp), with unit=(kg.m)^(1/2)
RealkFlow coefficient of damper plus fixed resistance, k=m_flow/sqrt(dp), with unit=(kg.m)^(1/2)

Revisions

  • March 22, 2017, by Michael Wetter:
    Added back v_nominal, but set the assignment of A to be final. This allows scaling the model with m_flow_nominal, which is generally known in the flow leg, and v_nominal, for which a default value can be specified.
    This is for #544.
  • October 12, 2016 by David Blum:
    Removed parameter v_nominal and variable area, to simplify parameterization of the model. Also added assertion statements upon initialization for parameters k0 and k1 so that they fall within suggested ranges found in ASHRAE 825-RP. This is for #544.
  • January 27, 2015 by Michael Wetter:
    Set Evaluate=true for use_constant_density. This is a structural parameter. Adding this annotation leads to fewer numerical Jacobians for Buildings.Examples.VAVReheat.ClosedLoop with Buildings.Media.PerfectGases.MoistAirUnsaturated.
  • December 14, 2012 by Michael Wetter:
    Renamed protected parameters for consistency with the naming conventions.
  • January 16, 2012 by Michael Wetter:
    To simplify object inheritance tree, revised base classes IBPSA.Fluid.BaseClasses.PartialResistance, IBPSA.Fluid.Actuators.BaseClasses.PartialTwoWayValve, IBPSA.Fluid.Actuators.BaseClasses.PartialDamperExponential, IBPSA.Fluid.Actuators.BaseClasses.PartialActuator and model IBPSA.Fluid.FixedResistances.PressureDrop.
  • August 5, 2011, by Michael Wetter:
    Moved linearized pressure drop equation from the function body to the equation section. With the previous implementation, the symbolic processor may not rearrange the equations, which can lead to coupled equations instead of an explicit solution.
  • June 22, 2008 by Michael Wetter:
    Extended range of control signal from 0 to 1 by implementing the function exponentialDamper.
  • June 10, 2008 by Michael Wetter:
    First implementation.