Lesson 3.4.2
3.4.2 Mechanical properties of matter Quiz: OCR Physics, Unit 2
20 questions
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Lesson 3.4.2, Mechanical properties of matter: 20 multiple choice questions for the OCR Physics (H156), Unit 2: Forces and motion, written with Revision Ninja.
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The 20 questions
-
Which feature of a force-extension graph equals the work done in stretching a spring?
- Maximum force
- Gradient of line
- Area under graph
- Y-intercept
-
The elastic potential energy stored in a spring obeying Hooke's law is:
- E = k x
- E = F x^2
- E = (1/2) k x^2
- E = k x^2
-
Which formula is used to calculate the tensile stress in a stretched wire?
- Extension / length
- Stress / strain
- Force / extension
- Force / area
-
Which formula is used to calculate the tensile strain of a stretched wire?
- Extension / length
- Force / extension
- Force / area
- Stress / strain
-
Which ratio is used to calculate the Young modulus of a material?
- Force / area
- Stress / strain
- Extension / length
- Strain / stress
-
What term describes the maximum tensile stress a material can withstand before fracture?
- Elastic limit
- Young modulus
- Ultimate tensile strength
- Limit of proportionality
-
What feature characterises a brittle material before it breaks?
- High plastic flow
- Zero elastic deformation
- Little plastic deformation
- Large plastic deformation
-
A wire of length 2.0 m, cross-sectional area 1.0 mm^2, is stretched by a force of 100 N. The stress in the wire is:
- 2.0 x 10^8 Pa
- 1.0 x 10^10 Pa
- 1.0 x 10^6 Pa
- 1.0 x 10^8 Pa
-
A material has an original length of 2.0 m. Under load its extension is 0.5 mm. What is its strain?
- 2.5 x 10^-4
- 2.5 x 10^-7
- 2.5 x 10^-3
- 4.0 x 10^-4
-
A material has a stress of 2.0 x 10^7 Pa and a strain of 1.0 x 10^-3. What is its Young modulus?
- 5.0 x 10^-11 Pa
- 2.0 x 10^4 Pa
- 2.0 x 10^10 Pa
- 2.0 x 10^7 Pa
-
A spring has a force of 20 N at an extension of 0.1 m, with force proportional to extension. What is the elastic potential energy stored?
- 1.0 J
- 2.0 J
- 10 J
- 0.5 J
-
A spring of spring constant 400 N m^-1 is extended by 0.05 m. What is the elastic potential energy stored?
- 0.05 J
- 20 J
- 0.5 J
- 0.25 J
-
A force-extension graph rises linearly from 0 to 40 N at an extension of 0.2 m. What is the work done?
- 2 J
- 4 J
- 8 J
- 40 J
-
A wire of length 2.0 m and cross-sectional area 1 mm^2 extends by 1 mm under a force of 100 N. What is the Young modulus of the wire?
- 2 x 10^11 Pa
- 2 x 10^4 Pa
- 2 x 10^8 Pa
- 5 x 10^10 Pa
-
What type of deformation occurs when a wire is stretched beyond its elastic limit?
- Plastic deformation
- Polymeric deformation
- Viscous deformation
- Elastic deformation
-
A force-extension curve passes through (extension, force) points (0 m, 0 N), (0.1 m, 20 N) and (0.2 m, 50 N). Using the trapezium rule, estimate the work done.
- 10 J
- 4.5 J
- 3.5 J
- 5.0 J
-
What feature on a stress-strain graph indicates that a material is ductile?
- Zero elastic strain
- Infinite elastic limit
- No plastic region
- Large plastic region
-
A wire of a given metal, with the same cross-section, has its length doubled. The Young modulus of the wire:
- Halves
- Quadruples
- Doubles
- Is unchanged
-
A spring stores energy when stretched by 0.04 m under a force of 12 N, within its limit of proportionality. What energy is stored?
- 0.24 J
- 0.48 J
- 0.024 J
- 0.12 J
-
For a material obeying Hooke's law, the energy stored per unit volume is (1/2) x stress x strain. With stress 2.0 x 10^7 Pa and strain 1.0 x 10^-3, the energy per unit volume is:
- 1.0 x 10^7 J m^-3
- 2.0 x 10^4 J m^-3
- 1.0 x 10^4 J m^-3
- 5.0 x 10^3 J m^-3
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