The height y and the distance x along the horizontal plane of a projectile on a certain planet (with no surrounding atmosphere) are given by y = (8t - 5t2 ) metre and x = 6t metre, where t is in second. The velocity of projection is

Question

The height y and the distance x along the horizontal plane of a projectile on a certain planet (with no surrounding atmosphere) are given by y = (8t - 5t2 ) metre and x = 6t metre, where t is in second. The velocity of projection is (A) 8 ms - 1  (B) 6 ms - 1  (C) 10 ms - 1  (D) 14 ms-1

Tardigrade Admin · Accepted Answer

Given, y=8 t-5 t2...(i) x=6 t...(ii) We know, x=(u cos θ) t...(iii) Compare with Eq. (ii), we get u1 cos θ=(x/t)=6 and y=(u sin θ) t-(1/2) g t2 Compare with Eq (i), we get u2 sin θ =8 ∴ u =√u12+u22 u =√36+64 u =10 ms -1

Q. The height $y$ and the distance $x$ along the horizontal plane of a projectile on a certain planet (with no surrounding atmosphere) are given by $y = (8 t - 5 t^{2})$ metre and $x = 6 t$ metre, where $t$ is in second. The velocity of projection is

8 $m s^{- 1}$

6 $m s^{- 1}$

10 $m s^{- 1}$

$14 m s^{- 1}$

Q. The height y and the distance x along the horizontal plane of a projectile on a certain planet (with no surrounding atmosphere) are given by y=(8t−5t2) metre and x=6t metre, where t is in second. The velocity of projection is

8 ms−1

6 ms−1

10 ms−1

14ms−1

Given, y=8t−5t2...(i) x=6t...(ii) We know, x=(ucosθ)t...(iii) Compare with Eq. (ii), we get u1​cosθ=tx​=6 and y=(usinθ)t−21​gt2 Compare with Eq (i), we get u2​sinθ=8 ∴u=u12​+u22​​ u=36+64​ u=10ms−1

Q. The height $y$ and the distance $x$ along the horizontal plane of a projectile on a certain planet (with no surrounding atmosphere) are given by $y = (8 t - 5 t^{2})$ metre and $x = 6 t$ metre, where $t$ is in second. The velocity of projection is

8 $m s^{- 1}$

6 $m s^{- 1}$

10 $m s^{- 1}$

$14 m s^{- 1}$