A body is projected with a initial velocity of `(8hati+6hatj) m s^(-1)` . The horizontal range is `(g = 10 m s^(-2))`

What are the angles of projection of a projectile projected with velocity 30 ms^(-1) , so that the horizontal range is 45 m ? Take g = 10 ms^(-2) .

A body is projected with a velocity V = 3 hati + 4 hatj + 12 hatk units. Assume xy plane is horizontal (g=10m/s). The range and maximum height are?

What are the two angles of projection of a projectile projected with velocity of 30 m//s , so that the horizontal range is 45 m . Take, g= 10 m//s^(2) .

A projectile is projected from ground with an initial velocity (5hati+10hatj)m//s If the range of projectile is R m, time of flight is Ts and maximum height attained above ground is Hm, find the numerical value of (RxxH)/T . [Take g=10m//s^2 ]

A particle is projected with velocity of 10m/s at an angle of 15° with horizontal.The horizontal range will be (g = 10m/s^2)

A body is projected with an initial velocity 20 m//s at 60^(@) to the horizontal. Its initial velocity vector is "___" (g=10 m//s^(2))

A body is projected from the ground with a velocity v = (3hati +10 hatj)ms^(-1) . The maximum height attained and the range of the body respectively are (given g = 10 ms^(-2))