A body is projected with an angle `theta`. The maximum height reached is h. If the time of flight is 4 sec and `g=10m//s^2`, then the value of h is 

A body is projected at an angle theta so that its range is maximum. If T is the time of flight then the value of maximum range is (acceleration due to gravity= g)

For a projectile, the ratio of maximum height reached to the square of flight time is (g = 10 ms^(-2))

A body is projected at angle 30° to horizontal with a velocity 50 ms^(-1) . Its time of flight is (g=10 m//s^2 )

A body is projected with a velocity vecv =(3hati +4hatj) ms^(-1) The maximum height attained by the body is: (g=10 ms^(-2))

A stone is thrown at an angle theta to the horizontal reaches a maximum height H. Then the time of flight of stone will be:

A stone is thrown at an angle theta to the horizontal reaches a maximum height H. Then the time of flight of stone will be:

A ball is thrown at a speed of 20 m/s at an angle of 30 ^@ with the horizontal . The maximum height reached by the ball is (Use g=10 m//s^2 )

Time of flight is 1 s and range is 4 m .Find the projection speed is:

A body is projected with a certain speed at angles of projection of theta and 90 - theta The maximum height attained in the two cases are 20m and 10m respectively. The range for angle of projection theta is

A stone is projected in air. Its time of flight is 3s and range is 150m. Maximum height reached by the stone is (Take, g = 10 ms^(-2))