The calculation is changed based on parameter values of Type of flow and Dynamics of mass in the Air Settings component.
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Type of flow = Linear and Dynamics of mass = Static
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Pressure difference is calculated with:
Heat transfer coefficient is calculated with:
Reynolds number is calculated with:
Prandtl is calculated with:
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Type of flow = Linear and Dynamics of mass = Dynamic
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Mass flow rate is calculated with:
Heat transfer coefficient is calculated with:
Reynolds number is calculated with:
Prandtl number is calculated with:
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Type of flow = Square root and Dynamics of mass = Static
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Pressure difference is calculated with:
Heat transfer coefficient is calculated with:
Reynolds number is calculated with:
Prandtl number is calculated with:
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Type of flow = Square root and Dynamics of mass = Dynamic
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In theory, Mass flow rate is calculated with:
In the Heat Transfer Library, the following equation is used to resolve difficulties of the numerical calculation:
Heat transfer coefficient is calculated with:
Reynolds number is calculated with:
Prandtl number is calculated with:
(*) is the same function as . To check the details of the package and view the original documentation, which includes author and copyright information, click here.
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Type of flow = Darcy-Weisbach and Dynamics of mass = Static
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Pressure difference is calculated with Darcy–Weisbach equation:
Heat transfer coefficient is calculated with:
Reynolds number is calculated with:
Prandtl number is calculated with:
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Type of flow = Darcy-Weisbach and Dynamics of mass = Dynamic
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In theory, Mass flow rate is calculated with Darcy–Weisbach equation:
In the Heat Transfer Library, the following equation is used to resolve difficulties of the numerical calculation:
Heat transfer coefficient is calculated with:
Reynolds number is calculated with:
Prandtl number is calculated with:
(*) is the same function as . To check the details of the package and view the original documentation, which includes author and copyright information, click here.
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Definitions related to Mass flow rate and pressure :
Definitions related to Heat flow rate:
If Dynamics of mass is Static, specific enthalpy is defined with:
If Dynamics of mass is Dynamic, specific enthalpy is defined with:
If Fidelity of properties = Constant, properties and and are constants.
(*) Regarding the value of properties for Constant, see more in Air Settings.
If Fidelity of properties = Ideal Gas (NASA Polynomial), properties are calculated with:
(*) The properties are defined with NASA polynomials and coefficients, see more in Air Settings.
Port's variables are defined with: