Inertia Coefficient for Fixed body in Oscillatory Flow Solution

STEP 0: Pre-Calculation Summary
Formula Used
Inertia Coefficient = 1+Added Mass Coefficient
Cm = 1+Ca
This formula uses 2 Variables
Variables Used
Inertia Coefficient - Inertia Coefficient are hydrodynamic characteristics linked to the structure of the porous media.
Added Mass Coefficient - Added Mass Coefficient are hydrodynamic characteristics linked to the structure of the porous media.
STEP 1: Convert Input(s) to Base Unit
Added Mass Coefficient: 4.5 --> No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
Cm = 1+Ca --> 1+4.5
Evaluating ... ...
Cm = 5.5
STEP 3: Convert Result to Output's Unit
5.5 --> No Conversion Required
FINAL ANSWER
5.5 <-- Inertia Coefficient
(Calculation completed in 00.004 seconds)

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Coorg Institute of Technology (CIT), Coorg
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The Morison (MOJS) Equation Calculators

Inertia Force for Fixed body in Oscillatory Flow
​ LaTeX ​ Go Inertia Force of Fluid = Density of Fluid*Inertia Coefficient*Volume of Body*Flow Acceleration
Drag Force for Fixed body in Oscillatory Flow
​ LaTeX ​ Go Drag Force = 0.5*Density of Fluid*Drag Coefficient of Fluid*Reference Area*Flow Velocity^2
Added-Mass Coefficient for Fixed Body in Oscillatory Flow
​ LaTeX ​ Go Added Mass Coefficient = Inertia Coefficient-1
Inertia Coefficient for Fixed body in Oscillatory Flow
​ LaTeX ​ Go Inertia Coefficient = 1+Added Mass Coefficient

Inertia Coefficient for Fixed body in Oscillatory Flow Formula

​LaTeX ​Go
Inertia Coefficient = 1+Added Mass Coefficient
Cm = 1+Ca

What is the Morison Equation?

The Morison equation is the sum of two force components: an inertia force in phase with the local flow acceleration and a drag force proportional to the (signed) square of the instantaneous flow velocity. The inertia force is of the functional form as found in potential flow theory, while the drag force has the form as found for a body placed in a steady flow. In the heuristic approach of Morison, O'Brien, Johnson and Schaaf these two force components, inertia and drag, are simply added to describe the inline force in an oscillatory flow. The transverse force—perpendicular to the flow direction, due to vortex shedding—has to be addressed separately.

How to Calculate Inertia Coefficient for Fixed body in Oscillatory Flow?

Inertia Coefficient for Fixed body in Oscillatory Flow calculator uses Inertia Coefficient = 1+Added Mass Coefficient to calculate the Inertia Coefficient, The Inertia Coefficient for Fixed body in Oscillatory Flow formula is defined as hydrodynamic characteristics linked to the structure of porous media. Inertia Coefficient is denoted by Cm symbol.

How to calculate Inertia Coefficient for Fixed body in Oscillatory Flow using this online calculator? To use this online calculator for Inertia Coefficient for Fixed body in Oscillatory Flow, enter Added Mass Coefficient (Ca) and hit the calculate button. Here is how the Inertia Coefficient for Fixed body in Oscillatory Flow calculation can be explained with given input values -> 5.5 = 1+4.5.

FAQ

What is Inertia Coefficient for Fixed body in Oscillatory Flow?
The Inertia Coefficient for Fixed body in Oscillatory Flow formula is defined as hydrodynamic characteristics linked to the structure of porous media and is represented as Cm = 1+Ca or Inertia Coefficient = 1+Added Mass Coefficient. Added Mass Coefficient are hydrodynamic characteristics linked to the structure of the porous media.
How to calculate Inertia Coefficient for Fixed body in Oscillatory Flow?
The Inertia Coefficient for Fixed body in Oscillatory Flow formula is defined as hydrodynamic characteristics linked to the structure of porous media is calculated using Inertia Coefficient = 1+Added Mass Coefficient. To calculate Inertia Coefficient for Fixed body in Oscillatory Flow, you need Added Mass Coefficient (Ca). With our tool, you need to enter the respective value for Added Mass Coefficient and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
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