Things can change shape.
Things can change shape.
Some changes are temporary. If you let go, the object snaps back. This is like a rubber band. It goes back to its old shape.
Other changes stay forever. This is called permanent change. The object stays a new shape. 
Soft things like gum change a lot. Hard things like glass might just break. All things will break if you push hard enough.
It is fun to see how things bend and move.
Objects can change their size or shape. This is called deformation.
There are two main ways this happens. The first way is called elastic deformation. This is a temporary change. If you stop pushing or pulling, the object snaps back. It returns to its original shape. This is like a rubber band.
The second way is called plastic deformation. This is a permanent change. The object stays in its new shape even after you let go. 
If you keep pushing, the object might reach a breaking point. This is called a fracture. A fracture is a break in the material. Most materials will eventually break if you apply enough force.
Engineers study these changes to build safe things. They look at stress, which is the force on an object. They also look at strain, which is the amount of change. They use these ideas to pick the best materials for buildings or machines.
Deformation is a term used in engineering to describe how an object changes its size or shape. When you apply force to something, it might stretch, squash, or bend. If an object does not change shape at all, engineers call it rigid.
There are two main ways that deformation works. The first way is called elastic deformation, which is temporary. This happens when the force applied does not break the molecular bonds inside the material. Once you stop the force, the object returns to its original shape. This is similar to how a spring works. 

Scientists and engineers have studied these changes for a long time. They use math to describe how materials act under pressure. For example, Hooke's law helps explain linear elastic deformation. This law shows the relationship between stress and strain. Stress is the force applied to an object. Strain is the resulting change in shape.
Different materials behave in very unique ways. Metals like gold, silver, and copper are ductile, meaning they change shape easily. Soft things like wet chewing gum also show large plastic deformation. However, hard materials like ceramics or glass are brittle. They do not change shape much before they experience a fracture, which is a break. 
Understanding deformation helps us connect science to the world around us. When you see a metal pole buckle under a heavy load, you are seeing structural failure.
In engineering, deformation is the change in the size or shape of an object. This process is vital for understanding how structures and machines respond to forces. When forces act on a material, the object may stretch, squash, or bend. If the change in size is so small that it cannot be measured, the object is called rigid.
Deformation occurs through specific mechanical processes. When an external force, or stress, is applied, it acts on the internal structure of the material. This stress can cause the material to change its dimensions. For example, compressive stress can shorten an object while causing it to bulge outward laterally.
Materials generally undergo two distinct types of deformation: elastic and plastic. Elastic deformation is temporary and recoverable. This occurs when the applied stress does not exceed the energy required to break molecular bonds. Once the stress is removed, the material returns to its original shape. 
If the stress continues past a specific threshold called the yield point, plastic deformation begins. Plastic deformation is permanent and irreversible. Even after the applied forces are removed, the object remains distorted. 
When a ductile material is pulled under tensile stress, it follows a specific sequence of stages. First, it undergoes elastic deformation, followed by a period of strain hardening. During strain hardening, the material actually becomes stronger due to the movement of atomic dislocations. Eventually, the material reaches its ultimate tensile strength. After this point, it enters the necking region. Necking is characterized by a rapid reduction in the cross-sectional area of the specimen. 
Engineers use different mathematical models to measure these changes. Engineering stress and strain are approximations used when the change in size is considered negligible. These calculations assume the cross-sectional area of the object remains constant. However, in reality, the area decreases as the object deforms. To account for this, scientists use true stress and true strain. True stress is calculated using the instantaneous cross-sectional area and length of the object. 
Understanding these principles is essential for preventing structural failure. Failure can occur in several ways depending on the material and the force. In brittle materials, failure usually happens through sudden rupture. In ductile materials, failure can occur through yielding. For long, slender elements like columns, failure often occurs through buckling. Buckling happens when an increase in compressive force causes the structure to bend at a stress level lower than its actual compressive strength.
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