Area Change (MA)
R2026bLibraries:
Simscape /
Fluids /
Moist Air /
Pipes & Fittings
Description
The Area Change (MA) block models a sudden or a gradual area change in a moist air network. When moist air flows from port A to port B, it experiences an area contraction. When moist air flows from port B to port A, it experiences an area expansion. You can use semi-empirical, tabular, or constant parameterizations to model losses. The component is assumed adiabatic. There is no heat exchange with the surroundings.
Semi-Empirical Parameterizations
If you set Local loss parameterization to either of the semi-empirical correlation settings, the hydraulic loss coefficient, K, characterizes losses in pressure and velocity based on the Contraction correction factor, Ccontraction, and Expansion correction factor, Cexpansion, parameters. The block calculates the area change coefficient from both expansion and contraction loss factors and based on the flow rate through the block.
When Local loss parameterization is
Semi-empirical correlation - gradual area change, the
loss factor depends on the value of the Cone angle
parameter.
For area contractions where the value of the Cone angle parameter, θ, is between 0 and 45 degrees, the contraction loss factor is
where R is the port area ratio For area contractions where the value of the Cone angle parameter is between 45 and 180 degrees, the contraction loss factor is
For area expansions where the value of the Cone angle parameter is between 0 and 45 degrees, the expansion loss factor is
and for expansions where the value of the Cone angle parameter is between 45 and 180 degrees, the expansion loss factor is
When Local loss parameterization is
Semi-empirical correlation - sudden area change, the
contraction loss factor is
The expansion loss factor is
For both semi-empirical settings, the hydraulic loss coefficient is
where:
A is the mass flow rate through port A.
is the threshold mass flow rate for flow reversal, which the block calculates from the Critical Reynolds number parameter, Rec,
where:
AR is the restriction area, which is the Cross-sectional area at port B parameter.
ν is the fluid kinematic viscosity.
is the average fluid density.
Dh is the hydraulic diameter at the restriction area,
Constant Loss Parameterization
Set Local loss parameterization to Constant loss
efficient to directly specify the loss coefficients with the
Contraction loss coefficient and Expansion loss
coefficient parameters.
Tabulated Data Parameterization
Set Local loss parameterization to Tabulated
data - loss coefficient vs. Reynolds number to parameterize the
loss factor by using data interpolated from the Reynolds number at the smallest
area, which is a function of the Critical Reynolds number parameter,
The block uses linear interpolation between data points, and nearest-neighbor extrapolation beyond the table boundaries.
Pressure Differential
The pressure differential over the area change is
where ρ is the fluid density at the inlet.
The pressure loss is
Energy Balance
The energy conservation equation in the area change is
where:
ΦA and ΦB are the energy flow rates into the block through ports A and B.
Assumptions and Limitations
This component is adiabatic. It does not exchange heat with its surroundings.
The cross-sectional area at port A must be greater than or equal to the cross-sectional area at port B.
The flow is incompressible and the Mach number is small.
Ports
Conserving
Parameters
References
[1] Crane Co, editor. Flow of Fluids: Through Valves, Fittings and Pipe. Repr, Crane, 2009.
[2] Idelʹchik, I. E., and A. S. Ginevskiĭ. Handbook of Hydraulic Resistance. 4th ed. rev. and Augmented, Begell House, 2007.
[3] Wessel, D. J. 2001. ASHRAE Fundamentals Handbook 2001 (SI Edition). American Society of Heating, Refrigerating and Air-Conditioning Engineers.
Extended Capabilities
Version History
Introduced in R2026b
