Newtonian Pressure Distribution over Surface using Cosine Angle Solution

STEP 0: Pre-Calculation Summary
Formula Used
Pressure Coefficient = 2*(cos(Newtonian angle))^2
Cp = 2*(cos(Φ))^2
This formula uses 1 Functions, 2 Variables
Functions Used
cos - Cosine of an angle is the ratio of the side adjacent to the angle to the hypotenuse of the triangle., cos(Angle)
Variables Used
Pressure Coefficient - Pressure coefficient defines the value of local pressure at a point in terms of free stream pressure and dynamic pressure.
Newtonian angle - (Measured in Radian) - Newtonian angle is the angle between the normal to the surface and the freestream.
STEP 1: Convert Input(s) to Base Unit
Newtonian angle: 56 Radian --> 56 Radian No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
Cp = 2*(cos(Φ))^2 --> 2*(cos(56))^2
Evaluating ... ...
Cp = 1.45596910444428
STEP 3: Convert Result to Output's Unit
1.45596910444428 --> No Conversion Required
FINAL ANSWER
1.45596910444428 1.455969 <-- Pressure Coefficient
(Calculation completed in 00.020 seconds)

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Created by Sanjay Krishna
Amrita School of Engineering (ASE), Vallikavu
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PSG College of Technology (PSGCT), Coimbatore
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Laminar Boundary Layer at Stagnation point on Blunt body Calculators

Stagnation Pressure
​ LaTeX ​ Go Stagnation Pressure = 2*Dynamic Pressure*(cos(Newtonian angle))^2+Free Stream Pressure
Nusselt Number for Stagnation Point on Blunt Body
​ LaTeX ​ Go Nusselt Number = Nusselt Number at Stagnation Point*(0.7*(cos(Newtonian angle))^(1.5)+0.3)
Newtonian Dynamic Pressure
​ LaTeX ​ Go Dynamic Pressure = 0.5*(Stagnation Pressure-Free Stream Pressure)
Newtonian Pressure Distribution over Surface using Cosine Angle
​ LaTeX ​ Go Pressure Coefficient = 2*(cos(Newtonian angle))^2

Newtonian Pressure Distribution over Surface using Cosine Angle Formula

​LaTeX ​Go
Pressure Coefficient = 2*(cos(Newtonian angle))^2
Cp = 2*(cos(Φ))^2

What is Newtonian pressure distribution?

Newtonian Theory uses the pressure distribution of air flowing over a body to calculate forces and moments at hypersonic speeds.

How to Calculate Newtonian Pressure Distribution over Surface using Cosine Angle?

Newtonian Pressure Distribution over Surface using Cosine Angle calculator uses Pressure Coefficient = 2*(cos(Newtonian angle))^2 to calculate the Pressure Coefficient, Newtonian pressure distribution over surface using cosine angle formula is defined as the double of the square of cosine angle, where the angle is between the normal to the surface and the freestream. Pressure Coefficient is denoted by Cp symbol.

How to calculate Newtonian Pressure Distribution over Surface using Cosine Angle using this online calculator? To use this online calculator for Newtonian Pressure Distribution over Surface using Cosine Angle, enter Newtonian angle (Φ) and hit the calculate button. Here is how the Newtonian Pressure Distribution over Surface using Cosine Angle calculation can be explained with given input values -> 1.455969 = 2*(cos(56))^2.

FAQ

What is Newtonian Pressure Distribution over Surface using Cosine Angle?
Newtonian pressure distribution over surface using cosine angle formula is defined as the double of the square of cosine angle, where the angle is between the normal to the surface and the freestream and is represented as Cp = 2*(cos(Φ))^2 or Pressure Coefficient = 2*(cos(Newtonian angle))^2. Newtonian angle is the angle between the normal to the surface and the freestream.
How to calculate Newtonian Pressure Distribution over Surface using Cosine Angle?
Newtonian pressure distribution over surface using cosine angle formula is defined as the double of the square of cosine angle, where the angle is between the normal to the surface and the freestream is calculated using Pressure Coefficient = 2*(cos(Newtonian angle))^2. To calculate Newtonian Pressure Distribution over Surface using Cosine Angle, you need Newtonian angle (Φ). With our tool, you need to enter the respective value for Newtonian angle 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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