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The Pressure Coefficient is a dimensionless quantity used to describe the ratio of dynamic pressure to static pressure in a blast wave. Check FAQs
Cp=2YM2(rp-1)
Cp - Pressure Coefficient?Y - Specific Heat Ratio?M - Mach Number?rp - Pressure Ratio?

Pressure Coefficient for Blast Wave Theory Example

With values
With units
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Here is how the Pressure Coefficient for Blast Wave Theory equation looks like with Values.

Here is how the Pressure Coefficient for Blast Wave Theory equation looks like with Units.

Here is how the Pressure Coefficient for Blast Wave Theory equation looks like.

0.8Edit=21.6Edit8Edit2(41.96Edit-1)
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Pressure Coefficient for Blast Wave Theory Solution

Follow our step by step solution on how to calculate Pressure Coefficient for Blast Wave Theory?

FIRST Step Consider the formula
Cp=2YM2(rp-1)
Next Step Substitute values of Variables
Cp=21.682(41.96-1)
Next Step Prepare to Evaluate
Cp=21.682(41.96-1)
LAST Step Evaluate
Cp=0.8

Pressure Coefficient for Blast Wave Theory Formula Elements

Variables
Pressure Coefficient
The Pressure Coefficient is a dimensionless quantity used to describe the ratio of dynamic pressure to static pressure in a blast wave.
Symbol: Cp
Measurement: NAUnit: Unitless
Note: Value can be positive or negative.
Specific Heat Ratio
The Specific Heat Ratio is a measure of the ratio of heat absorbed to the resulting temperature change of a substance in a blast wave.
Symbol: Y
Measurement: NAUnit: Unitless
Note: Value can be positive or negative.
Mach Number
The Mach Number is a dimensionless quantity representing the ratio of the speed of an object to the speed of sound in a given medium.
Symbol: M
Measurement: NAUnit: Unitless
Note: Value should be greater than 0.
Pressure Ratio
The Pressure Ratio is the ratio of the pressure behind the blast wave to the ambient pressure in front of the blast wave.
Symbol: rp
Measurement: NAUnit: Unitless
Note: Value can be positive or negative.

Other Formulas to find Pressure Coefficient

​Go Pressure Coefficient Combined with Blast Wave for Shuttle at Angle of Attack
Cp=0.0137yl+2(sin(α))2
​Go Pressure Coefficient for Blunt-Nosed Plate
Cp=0.173Cd23(xd1)23
​Go Pressure Coefficient for Blunt-Nosed Cylinder
Cp=0.096Cd12xdd
​Go Pressure Coefficient Combined with Blast Wave for Shuttle
Cp=0.0137xdl

How to Evaluate Pressure Coefficient for Blast Wave Theory?

Pressure Coefficient for Blast Wave Theory evaluator uses Pressure Coefficient = 2/(Specific Heat Ratio*Mach Number^2)*(Pressure Ratio-1) to evaluate the Pressure Coefficient, Pressure Coefficient for Blast Wave Theory formula is defined as a dimensionless quantity that characterizes the blast wave's ability to transmit energy to the surrounding environment, providing a crucial parameter in understanding the blast wave's behavior and effects. Pressure Coefficient is denoted by Cp symbol.

How to evaluate Pressure Coefficient for Blast Wave Theory using this online evaluator? To use this online evaluator for Pressure Coefficient for Blast Wave Theory, enter Specific Heat Ratio (Y), Mach Number (M) & Pressure Ratio (rp) and hit the calculate button.

FAQs on Pressure Coefficient for Blast Wave Theory

What is the formula to find Pressure Coefficient for Blast Wave Theory?
The formula of Pressure Coefficient for Blast Wave Theory is expressed as Pressure Coefficient = 2/(Specific Heat Ratio*Mach Number^2)*(Pressure Ratio-1). Here is an example- 0.097656 = 2/(1.6*8^2)*(41.96-1).
How to calculate Pressure Coefficient for Blast Wave Theory?
With Specific Heat Ratio (Y), Mach Number (M) & Pressure Ratio (rp) we can find Pressure Coefficient for Blast Wave Theory using the formula - Pressure Coefficient = 2/(Specific Heat Ratio*Mach Number^2)*(Pressure Ratio-1).
What are the other ways to Calculate Pressure Coefficient?
Here are the different ways to Calculate Pressure Coefficient-
  • Pressure Coefficient=0.0137/(Distance from X-Axis/Length of Shuttle)+2*(sin(Angle of Attack))^2OpenImg
  • Pressure Coefficient=0.173*(Drag Coefficient^(2/3))/((Distance from Y-Axis/Diameter 1)^(2/3))OpenImg
  • Pressure Coefficient=0.096*(Drag Coefficient^(1/2))/(Distance from Nose Tip to Required Base Diameter/Diameter)OpenImg
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