Unit 3: Stress and strain - Subjective Questions

BTY730 — Biomechanics • Practice Questions with Detailed Answers

20 questions

1

Define stress and strain. State their SI units and explain why strain is a dimensionless quantity.

2

Explain the relationship between applied forces and deformations in a loaded body. How does the concept of equilibrium relate to internal forces?

3

Describe the three basic loading configurations (tension, compression, and shear) with neat diagrams and give one biomechanical example of each.

4

State and explain Hooke's Law. Derive the relationship between stress and strain, and define the modulus of elasticity.

5

Describe the uniaxial tension test. Explain the procedure, the type of specimen used, and the quantities measured during the test.

6

Distinguish between a load-elongation diagram and a stress-strain diagram. Why is the stress-strain diagram preferred for characterizing material behavior?

7

With a neat sketch, explain the salient points on the stress-strain diagram of a ductile material (mild steel). Label the proportional limit, elastic limit, yield point, ultimate strength, and fracture point.

8

Define the following material properties as obtained from the stress-strain diagram: elasticity, plasticity, ductility, brittleness, and toughness.

9

Distinguish between ductile and brittle materials based on their stress-strain behavior. Give two examples of each relevant to biomechanics.

10

Explain the concept of an idealized model for material behavior. Describe the rigid, linear elastic, elastic-perfectly plastic, and elastic-plastic with strain hardening models with sketches.

11

Define Young's modulus (E), shear modulus (G), and bulk modulus (K). State the relationships among them and Poisson's ratio.

12

Derive the expression for the elongation () of a prismatic bar of length , cross-sectional area , subjected to an axial load , made of a material with Young's modulus .

13

Explain the terms proportional limit, elastic limit, and yield strength. How do they differ from one another?

14

Describe the 0.2% offset method for determining the yield strength of materials that do not exhibit a well-defined yield point. Illustrate with a diagram.

15

Define modulus of resilience and modulus of toughness. Derive/explain how they are obtained from the stress-strain diagram.

16

Distinguish between engineering (nominal) stress-strain and true stress-strain. Why does the true stress continue to rise while engineering stress falls after necking?

17

A steel rod of diameter and length is subjected to an axial tensile load of . If , calculate the stress, strain, and elongation of the rod.

18

Explain the phenomenon of necking in a ductile material during a tension test. What is meant by ultimate strength and breaking strength?

19

Define Poisson's ratio. Explain its physical significance and typical values. How is lateral strain related to axial strain?

20

Compare and contrast the mechanical behavior of biological materials (like bone, tendon, and cartilage) with engineering materials (like steel). Highlight the concepts of anisotropy and viscoelasticity.