Science, asked by bhavanilogsha, 6 months ago

A particle experience an acceleration a = (4e-31) m/s2 along positive x-axis, where t is
time in s. If the initial velocity of the particle is 2 m/s along positive x-axis, the velocity of
the particle when its acceleration becomes zero is
O 5 m/s2
O 10 m/s2
O 6 m/s2
10 m/s²
please help me...... ​

Answers

Answered by vk8091624
1

Here we are given a = 6(t- 1) Here, s = +x, v = +v. To find velocity-time relation using a = dv/dt, we have

dt

dv

= 6 ( t - 1 )...(i)When velocity changes from v

0

to v during time t, integrating both sides with respect to time, we have∫

v

0

v

dv=∫

0

t

6(t−1)dt⇒v−v

0

=3t

2

−6t Substituting v

0

= 2 m/s, we have v =

dt

dx

=3t

2

−6t+2 (ii)dx = (3t

2

−6t+2)dt.(ii) find position-time relation, again integrating (ii) both sides, we have ∫

0

x

dx=∫

0

t

(3t

2

−6t+2)dt This gives x=t

3

−3t

2

+ 2t = t (t - 1)(t - 2) iii)The particle passes through the origin where x = 0 from (iii), we have t = 0, 1s and 2s. That means the particle crosses the origin twice at t = 1 s and t = 2 s. After t = 2 s, x is positive. Hence, its displacement points in positive x-direction and goes on increasing its magnitude.The particle will come at rest when v = 0. From (ii), we have t = (1−

3

1

)s (=t

1

, say and t = (1+

3

1

)s (=t

2

, say)Hence, the particle at t =t

1

and t

2

. That signifies to and fro motion of the particle during first two seconds as it starts retracing its path at t = t

1

and t = t

2

The displacement (x), velocity (v), and acceleration (a) of the particle in different time intervals are given in the following table and shown in the following graphs.Time interval (1−

3

1

)(1−

3

1

) (1+

3

1

)

Answered by nj6211064
0

Answer:

THE CORRECT ANSWER IS 6m/s² SURELY

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