Elastic and plastic deformation
CIE A-Level PhysicsΒ· 25 min read
1. Elastic Deformationβ β ββββ± 10 min
Elastic Deformation
A temporary change in the shape or size of a material when a load is applied. The material returns completely to its original dimensions once all external load is removed.
Example:
A stretched rubber band that shrinks back to its original length when released
At the atomic level, elastic deformation occurs when inter-atomic bonds stretch temporarily under load. Atoms are displaced from their equilibrium positions, but no bonds break, so atoms return to their original positions once the load is removed. Up to the proportional limit, elastic deformation follows Hooke's law (), where extension is proportional to applied force.
A spring of original length 15 cm is stretched to 18 cm by a 10 N force, which is below the spring's elastic limit. Describe the length of the spring once the force is completely removed.
- 1
Since the applied force is below the elastic limit, all deformation is elastic.
- 2
By definition, elastic deformation is fully reversed when load is removed.
- 3
The spring will return to its original length of 15 cm.
2. Plastic Deformationβ β β βββ± 15 min
Plastic Deformation
A permanent change in the shape or size of a material when load is applied above the yield point. The material does not return to its original dimensions once the load is removed.
Example:
A bent copper wire that stays bent after you release it
Plastic deformation occurs when applied stress exceeds the material's yield point (the stress where plastic flow begins). In crystalline metals, this happens when dislocations allow layers of atoms to slide past each other. Original inter-atomic bonds break, and new bonds form in new positions, so atoms do not return to their original equilibrium after unloading. This leaves a permanent change in shape, called permanent set.
An aluminium wire of original length 3.0 m is loaded until it yields. After removing all load, its final length is 3.21 m. Calculate the permanent extension of the wire.
- 1
Deformation beyond the yield point is plastic, so permanent extension remains after unloading.
- 2
Permanent extension = Final length - Original length
- 3
- 4
The permanent extension of the wire is 0.21 m (21 cm).
Test your understanding of the difference between the two deformation types
Which of the following describes plastic deformation?
A: A compressed spring returns to its original shape when released
B: A piece of clay that stays squashed after being pressed
C: A wooden ruler bent slightly and returning to straight
D: A trampoline mat bouncing back after someone jumps on it
Reveal answer
B βCorrect: Clay remains permanently deformed after pressing, so this is plastic deformation. All other options return to their original shape, so they are elastic.
3. Deformation on Stress-Strain Curvesβ β β βββ± 15 min
β Calculator OK
On a typical stress-strain curve for a ductile material like mild steel:
- Deformation is fully elastic from the origin up to the elastic limit
- Once stress exceeds the yield point, plastic deformation begins
- When unloading from a point in the plastic region, the unloading line is always parallel to the original linear elastic (Hooke's law) section of the loading curve
- The permanent strain is the intercept of the unloading line with the strain axis
A steel sample is loaded to a total strain of 0.015. The stress at maximum load is 2400 MPa, and Young's modulus of steel is 200 GPa. Calculate the permanent strain after unloading.
- 1
When unloading from plastic deformation, the elastic strain is recovered along a line parallel to the original elastic curve.
- 2
Calculate elastic strain recovered using :
- 3
- 4
Permanent strain = Total strain at maximum load - Recovered elastic strain:
- 5
- 6
Final permanent strain is 0.003.
4. Common Pitfalls
Wrong move:
Confusing elastic limit with proportional limit
Why:
The proportional limit is where Hooke's law stops applying, but elastic deformation continues up to the higher elastic limit.
Correct move:
Remember the order: proportional limit < elastic limit < yield point. Elastic deformation ends at the elastic limit, not the proportional limit.
Wrong move:
Assuming any deformation beyond the proportional limit is plastic
Why:
Many materials have a region between the proportional limit and elastic limit where deformation is still fully reversible (elastic), just not proportional to stress.
Correct move:
Deformation is only plastic if it does not return to original shape after unloading, regardless of Hooke's law.
Wrong move:
Drawing the unloading line back to the origin from plastic deformation
Why:
Unloading from the plastic region does not follow the original loading curve. The unloading line is always parallel to the initial elastic linear section.
Correct move:
Always draw unloading lines from plastic deformation parallel to the original elastic line to find the correct permanent strain.
Wrong move:
Taking maximum extension as permanent extension
Why:
Even when loaded into the plastic region, some elastic extension is still recovered when the load is removed.
Correct move:
Permanent extension = total extension at maximum load minus the elastic extension recovered during unloading.
5. Quick Reference Cheatsheet
Property | Elastic Deformation | Plastic Deformation | ||||||||||||||||||||||||||||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Returns to original shape after unloading? | Yes | No | ||||||||||||||||||||||||||||||||||||||||||
Occurs for stress below: | Elastic limit | N/A (always above yield point) | ||||||||||||||||||||||||||||||||||||||||||
S | t | r | e | t | c | h | i | n | g | o | f | i | n | t | e | r | a | t | o | m | i | c | b | o | n | d | s | , | n | o | b | r | e | a | k | i | n | g | ||||||
B | o | n | d | b | r | e | a | k | i | n | g | , | a | t | o | m | s | s | l | i | d | e | t | o | n | e | w | p | o | s | i | t | i | o | n | s | ||||||||
Produces permanent set? | No | Yes | ||||||||||||||||||||||||||||||||||||||||||
Unloading line from max load | Follows loading curve | Parallel to original elastic line |
When this came up on past exams
AI-estimated based on syllabus patterns β cross-check with official past papers for accuracy. Use only as revision-focus signals.
- 2022 Β· 12
Identify deformation type from description
- 2023 Β· 22
Calculate permanent extension from graph
Going deeper
What's Next
Elastic and plastic deformation is a core concept for the deformation of solids unit in CIE A-Level Physics, and regularly appears in multiple choice and structured questions. Understanding this behaviour underpins further topics like calculating energy stored in deformed solids, describing fracture behaviour of brittle and ductile materials, and applying material properties to real-world engineering problems. Mastery of this topic will also help you interpret stress-strain graphs correctly, which is a common exam requirement.
- βStrain energy
- βWaves
- βProgressive waves
