6.1 Define the following terms:
6.1.1 Stress
6.1.2 Strain
6.2 A steel bar experiences a stress of 250 MPa - NSC Technical Sciences - Question 6 - 2020 - Paper 1
Question 6
6.1 Define the following terms:
6.1.1 Stress
6.1.2 Strain
6.2 A steel bar experiences a stress of 250 MPa. The modulus of elasticity is 190 GPa. The bar has a dia... show full transcript
Worked Solution & Example Answer:6.1 Define the following terms:
6.1.1 Stress
6.1.2 Strain
6.2 A steel bar experiences a stress of 250 MPa - NSC Technical Sciences - Question 6 - 2020 - Paper 1
Step 1
Define the following terms: Stress
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Answer
Stress is defined as the internal resistance offered by a material to deformation when subjected to an external load. It is mathematically expressed as:
Stress=AreaForce
where Force is the applied load and Area is the cross-sectional area over which the load is distributed.
Step 2
Define the following terms: Strain
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Answer
Strain is the measure of deformation representing the displacement between particles in a material body. It is defined as the change in length divided by the original length and is expressed as:
Strain=L0ΔL
where (\Delta L) is the change in length and (L_0) is the original length.
Step 3
Calculate the: Strain on the bar.
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Answer
To calculate the strain on the bar, we can use the formula relating stress and strain:
Strain=ModulusofElasticityStress
In this case:
Stress = 250 MPa = 250 \times 10^6 Pa
Modulus of Elasticity = 190 GPa = 190 \times 10^9 Pa
Substituting:
Strain=190×109250×106=0.00131579≈0.00132
Step 4
Calculate the: Force exerted on the bar.
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Answer
To calculate the force exerted on the bar, we can use:
Force=Stress×Area
First, we need to find the cross-sectional area (A) of the bar:
A=π(2d)2=π(20.06)2≈2.82743×10−3m2
Then we apply:
Force=250×106×2.82743×10−3≈70700N
Step 5
What is the effect of an increase in temperature on the viscosity of a fluid?
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Answer
An increase in temperature typically results in a decrease in the viscosity of a fluid. This is because higher temperatures provide more energy to the molecules, allowing them to move more freely and overcome the intermolecular forces that contribute to viscosity.
Step 6
Define a perfectly plastic body.
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Answer
A perfectly plastic body is a type of material that undergoes permanent deformation without any increase in stress beyond a certain yield point. Once this yield point is reached, the material will deform indefinitely under constant stress without returning to its original shape.
Step 7
Give TWO examples of perfectly plastic bodies.
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Answer
Clay
Mud
Step 8
State Pascal's law in words.
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Answer
Pascal's law states that in a confined fluid at rest, any change in pressure applied at any point in the fluid is transmitted undiminished throughout the fluid in all directions.
Step 9
What is the minimum force that must be applied to lift the vehicle?
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Answer
Using Pascal's law, we can find the minimum force required:
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Answer
The thrust of a liquid refers to the axial force exerted by the liquid when it flows or is displaced. This force is a result of the pressure exerted by the liquid on the walls of the container or on an object within the liquid.