Modulus of Elasticity given Tensile Stress Solution

STEP 0: Pre-Calculation Summary
Formula Used
Modulus of Elasticity = (Tensile Stress/Tensile Strain)
E = (σt/εtensile)
This formula uses 3 Variables
Variables Used
Modulus of Elasticity - (Measured in Pascal) - Modulus of Elasticity is a quantity that measures an object or substance's resistance to being deformed elastically when stress is applied to it.
Tensile Stress - (Measured in Pascal) - Tensile Stress can be defined as the magnitude of force applied along an elastic rod, which is divided by the cross-sectional area of the rod in a direction perpendicular to the applied force.
Tensile Strain - Tensile Strain is the ratio of change in length to original length.
STEP 1: Convert Input(s) to Base Unit
Tensile Stress: 3.39 Megapascal --> 3390000 Pascal (Check conversion ​here)
Tensile Strain: 0.6 --> No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
E = (σttensile) --> (3390000/0.6)
Evaluating ... ...
E = 5650000
STEP 3: Convert Result to Output's Unit
5650000 Pascal -->5.65 Megapascal (Check conversion ​here)
FINAL ANSWER
5.65 Megapascal <-- Modulus of Elasticity
(Calculation completed in 00.004 seconds)

Credits

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Created by Sagar S Kulkarni
Dayananda Sagar College of Engineering (DSCE), Bengaluru
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K J Somaiya College of Engineering (K J Somaiya), Mumbai
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Modulus of Elasticity given Tensile Stress Formula

​LaTeX ​Go
Modulus of Elasticity = (Tensile Stress/Tensile Strain)
E = (σt/εtensile)

What is Hooke's law?

Hooke's law states that when a material is loaded within the elastic limit, the stress is proportional to the strain produced by the stress. This means that the ratio of stress to the corresponding strain is a constant and this constant is called as Modulus of elasticity.

How to Calculate Modulus of Elasticity given Tensile Stress?

Modulus of Elasticity given Tensile Stress calculator uses Modulus of Elasticity = (Tensile Stress/Tensile Strain) to calculate the Modulus of Elasticity, The Modulus of Elasticity given Tensile Stress formula is defined as the ratio of tensile stress to tensile strain. The ratio is also known as Young's Modulus. Modulus of Elasticity is denoted by E symbol.

How to calculate Modulus of Elasticity given Tensile Stress using this online calculator? To use this online calculator for Modulus of Elasticity given Tensile Stress, enter Tensile Stress t) & Tensile Strain tensile) and hit the calculate button. Here is how the Modulus of Elasticity given Tensile Stress calculation can be explained with given input values -> 5.7E-6 = (3390000/0.6).

FAQ

What is Modulus of Elasticity given Tensile Stress?
The Modulus of Elasticity given Tensile Stress formula is defined as the ratio of tensile stress to tensile strain. The ratio is also known as Young's Modulus and is represented as E = (σttensile) or Modulus of Elasticity = (Tensile Stress/Tensile Strain). Tensile Stress can be defined as the magnitude of force applied along an elastic rod, which is divided by the cross-sectional area of the rod in a direction perpendicular to the applied force & Tensile Strain is the ratio of change in length to original length.
How to calculate Modulus of Elasticity given Tensile Stress?
The Modulus of Elasticity given Tensile Stress formula is defined as the ratio of tensile stress to tensile strain. The ratio is also known as Young's Modulus is calculated using Modulus of Elasticity = (Tensile Stress/Tensile Strain). To calculate Modulus of Elasticity given Tensile Stress, you need Tensile Stress t) & Tensile Strain tensile). With our tool, you need to enter the respective value for Tensile Stress & Tensile Strain and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Modulus of Elasticity?
In this formula, Modulus of Elasticity uses Tensile Stress & Tensile Strain. We can use 2 other way(s) to calculate the same, which is/are as follows -
  • Modulus of Elasticity = (Compressive Stress/Compressive Strain)
  • Modulus of Elasticity = Normal Stress/Strain in Component
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