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Question

An electron moving with a velocity of 5×104ms-1 enters into a uniform electric field and acquires a uniform acceleration of 104ms-2 in the direction of its initial motion

(i) Calculate the time in which the electron would acquire a velocity double of its initial velocity.

(ii) How much distance the electron would cover in this time?


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Solution

Step 1: Given

The initial velocity of the electron, u=5×104ms-1

Acceleration acquired by the electron, a=104ms-2

Step 2: Formulas used

From the three equations of motion, we know that,

Distance covered, s=ut+12at2,

Where u is the initial velocity, t is the time taken and a is the acceleration of the body.

We also know that,

time, t=v-uaa=vt

Step 3: Calculate the time required to double the initial velocity

We need that the final velocity is twice the initial velocity, thus, v=2u=2×5×104=105ms-1.

Thus, the time required to acquire double the initial velocity is, t=10×104-5×104104=5s

Step 4: Calculate the distance covered in the meantime

By using the first equation, the distance covered is

s=5×104×5+12×104×52s=37.5×104m

Therefore,

  1. Time required to double the initial velocity is 5s.
  2. Distance covered while doubling the initial velocity is 37.5m.

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