Physics, asked by shreyakeshari1678, 4 months ago

A force of 200 newton applied standing body with moves 10m/s and stopped 5second .calculate the work done.​

Answers

Answered by darksoul3
14

\large\bf{\underline\orange{Answer \:↝}}

Que :- A force of 200 newton applied standing body with moves 10m/s and stopped 5second. calculate the work done.

Ans :- Given

Force = 200N

displacement = 10m/s

Work done = Force × displacement

= 200 × 10

= 2000J

Answered by Anonymous
2

Given

  • force = 200 N
  • initial velocity= 10 m/sec
  • final velocity= 0
  • time taken = 5 sec

To find

work done

Solution

Work done of an object is defined as magnitude of the force multiplied by the distance moved the object in direction of which force is applied.

{ \underline{ \boxed{ \sf{w = f.s \: cos\theta}}}}

where

  • f denotes force applied
  • s denotes the distance
  • w denotes the work done

In order to find the work done we need to first calculate the distance .

To find the distance we need to find the acceleration though the 1st equation of motion.

1st equation of motion is given by -:

{ \underline{ \boxed{ \sf{v = u + at}}}}

where

  • v denotes final velocity
  • u denotes initial velocity
  • a denotes acceleration
  • t denotes time.

Substitute the values

➝10 + a× 5

➝-10 = 5a

➝a= -10 /5

a= -2 m/sec ²

according to 3rd equation of motion

{ \underline{ \boxed{ \sf{ {v}^{2}  =  {u}^{2}  + 2as}}}}

➝0= (10)²+ 2× (-2) × s

➝0 = 100 -4s

➝-100 = -4s

s= 100/4

➝s= 25 meter

substitute the the distance in the formula of work

 \sf{➝w = 200 \times 25} \\ \sf{ ➝w = 5000 \: joule} \\  \sf{➝w = 5 \: kilojoules}

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