A particle moves with constant acceleration along a straight line starting from rest. The percentage increase in its displacement during the 4th second compared to that in the 3rd second is

Question

A particle moves with constant acceleration along a straight line starting from rest. The percentage increase in its displacement during the 4th second compared to that in the 3rd second is (A) 33 % (B) 40 % (C) 66 % (D) 77 %

Tardigrade Admin · Accepted Answer

We know that Sn t h=u+(1/2) a(2 n-1) S3 text rd =0+(1/2) a(2 × 3-1)=(5/2) a ( for n=3 s) S4 t h=0+(1/2) a(2 × 4-1)=(7/2) a ( for n=4 s ) So, the percentage increase =(S4 h -S3 rd /S3 rd ) × 100 =((7/2) a-(5/2) a/(5)2 a) × 100 =((2 a/2)/(5)2 a) × 100 =2 × 20=40 %

Q. A particle moves with constant acceleration along a straight line starting from rest. The percentage increase in its displacement during the $4^{t h}$ second compared to that in the $3^{r d}$ second is

$33%$

$40%$

$66%$

$77%$

Q. A particle moves with constant acceleration along a straight line starting from rest. The percentage increase in its displacement during the 4th second compared to that in the 3rd second is

33%

40%

66%

77%

We know that Snth​=u+21​a(2n−1) S3 rd ​=0+21​a(2×3−1)=25​a( for n=3s) S4th​=0+21​a(2×4−1)=27​a( for n=4s) So, the percentage increase =S3rd​S4h​−S3rd​​×100 =25​a27​a−25​a​×100 =25​a22a​​×100 =2×20=40%

Q. A particle moves with constant acceleration along a straight line starting from rest. The percentage increase in its displacement during the $4^{t h}$ second compared to that in the $3^{r d}$ second is

$33%$

$40%$

$66%$

$77%$