Work Done By Variable Force

Work Done By Variable Force

Vishal kumarUpdated on 02 Jul 2025, 07:29 PM IST

When a force acts on an object and causes displacement, work is done. In the real world, forces often vary rather than remain constant, leading to what is known as variable force. Understanding the work done by a variable force is crucial in fields such as physics and engineering, where it helps to explain how energy is transferred in various situations. For example, when a car accelerates, the engine exerts a variable force on the car, changing its speed and kinetic energy. Similarly, when you stretch a spring or lift an object using a pulley system, the force exerted changes with distance, making the work done dependent on how the force varies with displacement. This concept is vital for designing efficient machines, optimizing energy usage, and predicting system behaviour in complex environments

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  1. Work Done By Variable Force
  2. Solved Examples Based on Work Done By Variable Force
  3. Summary
Work Done By Variable Force
Work Done By Variable Force

Work Done By Variable Force

Force is a vector quantity. So it has a magnitude as well as direction. A variable force means when its magnitude its direction or both varies with position.

And work done by the variable force is given by

W=Fds

Where F is a variable force and ds is a small displacement

When Force is Time-Dependent

And we can write ds=vdt

So,

W=Fvdt
Where F and v are force and velocity vectors at any instant.

Work Done Calculation by Force Displacement Graph

The area under the force-displacement curve with the proper algebraic sign represents work done by the force.

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Solved Examples Based on Work Done By Variable Force

Example 1: When a rubber band is stretched by a distance x, it exerts a restoring force of magnitude F=ax+bx2 where a and b are constants. The work done in stretching the unstretched rubber band by L is :

1) aL2+bL3
2) 12(aL2+bL3)
3) aL22+bL33
4) 12(aL22+bL33)

Solution:

Definition of work done by a variable force
W=Fds

wherein
F is variable force and ds is a small displacement
At x=x

F=ax+bx2
Work done in displacing rubber through dx=Fdx

W=0L(ax+bx2)dx=a0Lxdx+b0Lx2dxw=aL22+bL33

Hence, the answer is the option (3).

Example 2: A force acts on a 2kg object so that its position is given as a function of time as x = 3t2 + 5. What is the work (in Joule) done by this force in the first 5 seconds?

1) 850

2) 875

3) 950

4) 900

Solution:

Definition of work done by a variable force
W=Fds

wherein
F is variable force and ds is a small displacement
Work done = change in kinetic energy

V=dxdt=6t Work done =12mv20=12(2)(6×5)20=900 J

Hence, the answer is the option (4).

Example 3: A time-dependent force F=6t acts on a particle of mass 1 kg. If the particle starts from rest, the work (in Joule) is done by the force during the first 1 sec. will be :

1) 4.5

2) 22

3) 9

4) 18

Solution:

Force is given F=6t

F=ma=mdvdt=6tdvdt=6t(Since m=1 kg)dv=6tdt
On integrating, 0vdV=601tdt=3
Therefore v=3 m/s
Therefore change in kinetic energy in one second =12×m×320=4.5 J
Since the change in kinetic energy is equal to the work done.

W=ΔKE=4.5 J

Hence, the answer is the option (1).

Example 4: A person pushes a box on a rough horizontal surface. He applies a force of 200N over a distance of 15m. Thereafter, he gets progressively tired and his applied force reduces linearly with distance to 100N. The total distance through which the box has been moved is 30m. What is the work done by the person during the total movement of the box?

1) 3280 J

2) 2780 J

3) 5960 J

4) 5250 J

Solution:

F=200 N for 0x15=20010015(x15) for 15x<30 W=Fdx=015200dx+1530(30010015x)dx=200×15+300×1510015×(302152)2=3000+45002250=5250 J

Hence, the answer is the option (4).

Example 5: A particle experiences a variable force F=(4xi^+3y2j^) in a horizontal xy plane. Assume distance in meters and force is Newton. If the particle moves from point (1,2) to point (2,3) in the xy plane, then the Kinetic energy changes by :

1) 50.0 J
2) 12.5 J
3) 25.0 J
4) 0 J

Solution:

The force experienced by particles in a horizontal XY plane is,

F¯=4x(i^)+3y2(j^)
Comparing with,

F¯=Fxi^+Fyj^ Fx=4x,Fy=3y2dW=F¯ds¯=(Fxi^+Fyj^)(dxi^+dyj^)dW=Fxdx+FydyW=dW=x=1x=24xdx+y=2y=33y2dy=ΔKE

(from Work-energy theorem)

W=4[x22]12+3[y33]23=4[212]+3[983]W=6+19=25 J=ΔKE

Hence, the answer is the option (3)

Summary

The article discusses the concept of work done by variable forces, which are forces whose magnitude, direction, or both change with position. It explains how work done by such forces can be calculated using integration and how it can be visualized using force-displacement graphs. The article also provides several solved examples to illustrate the application of these concepts, such as calculating work done by stretching a rubber band, analyzing time-dependent forces, and determining the energy changes in particles experiencing variable forces. These examples help in understanding the practical implications of variable force in real-life situations.

Frequently Asked Questions (FAQs)

Q: How does the understanding of work done by variable forces contribute to advancements in renewable energy technologies?
A:
Understanding work done by variable forces is essential in renewable energy technologies. It's crucial for optimizing wind turbine designs (analyzing variable wind forces), improving solar panel efficiency (considering varying solar radiation), and enhancing energy harvesting from ocean waves (analyzing complex fluid forces).
Q: What is the role of tensor analysis in calculating work done by variable forces in complex systems?
A:
Tensor analysis is crucial for calculating work done by variable forces in complex systems, especially those involving anisotropic materials or multidimensional stress states. It allows for a compact representation of forces and displacements in multiple dimensions.
Q: How does the concept of work done by variable forces apply to the study of chemical reactions?
A:
In chemical reactions, work done by variable forces is often considered in terms of changes in intermolecular forces as reactants transform into products. It's crucial for understanding reaction energetics, particularly in processes involving large molecular rearrangements.
Q: What is the importance of understanding work done by variable forces in the field of materials science?
A:
In materials science, understanding work done by variable forces is crucial for analyzing material behavior under varying loads. It's essential for studying phenomena like plastic deformation, fatigue, and fracture mechanics in materials with complex stress-strain relationships.
Q: How do you calculate work done by variable forces in the context of continuum mechanics?
A:
In continuum mechanics, work done by variable forces is often expressed in terms of stress and strain tensors. The work is calculated by integrating these tensors over the volume of the material, accounting for varying forces throughout the continuum.
Q: What is the significance of the work-energy theorem in analyzing variable forces in astrophysics?
A:
In astrophysics, the work-energy theorem helps analyze the behavior of celestial bodies under varying gravitational forces. It's crucial for understanding phenomena like tidal forces, gravitational collapse, and energy transfer in binary star systems.
Q: How does the concept of work done by variable forces apply to the study of plasma physics?
A:
In plasma physics, work done by variable forces is crucial in understanding the behavior of charged particles in electromagnetic fields. It's essential for analyzing phenomena like plasma confinement and acceleration in varying field configurations.
Q: What is the relationship between work done by variable forces and the concept of ergodicity in statistical mechanics?
A:
In statistical mechanics, the concept of ergodicity relates to the exploration of phase space over time. Work done by variable forces can affect how a system explores its phase space, influencing whether the system behaves ergodically or not.
Q: How do you analyze work done by variable forces in non-inertial reference frames?
A:
In non-inertial reference frames, additional fictitious forces (like Coriolis force) must be considered. The work done by these apparent forces, which vary with position and velocity, is calculated using the same integration techniques as for real variable forces.
Q: What is the role of work done by variable forces in understanding phase transitions in materials?
A:
Work done by variable forces is crucial in understanding phase transitions. It helps explain the energy changes involved as materials transition between states (e.g., solid to liquid), accounting for the varying intermolecular forces during the process.