A particle is projected from ground with speed 80 m/s at an angle `30^(@)` with horizontal from ground. The magnitude of average velocity of particle in time interval t = 2 s to t = 6 s is [Take g = 10 `m//s^(2)] `

A particle is projected from the ground with an initial velocity of 20m//s at an angle of 30^(@) with horizontal. The magnitude of change in velocity in a time interval from t=0 to t=0.5s ( g=10m//s^(2) )

A particle is projected from ground at an angle 45^(@) with initial velocity 20sqrt2 ms^(-1) .The magnitude of average velocity in a timer interval from t=0 to t=3 s in ms^(-1) is

A particle is project from ground with a speed of 6 m//s at an angle of cos^(-1)(sqrt((7)/(27))) with horizontal. Then the magnitude of average velocity of particle from its starting point to the highest point of its trajectory in m//s is:

A particle is projected from ground with velocity 40sqrt(2)m//s at 45^(@) . At time t=2s

A particle is projected from ground with velocity 40sqrt2m at 45^(@) .At time t=2s

A particle is projected from ground at angle 45^@ with initial velocity 20(sqrt2) m//s . Find (a)change in velocity, (b)magnitude of average velocity in a time interval from t=0 to t=3s .

Find average speed in time interval t= 2 to t=10s

A particle is projected with velocity 50 m/s at an angle 60^(@) with the horizontal from the ground. The time after which its velocity will make an angle 45^(@) with the horizontal is

A particle is projected from the ground with an initial velocity of 20 m//s at angle fo 30^@ with the horizontal. What is the magnitude of chang in velocity in 0.5 scond ? ( g= 10 m//s^2) .

A particle is projected at an angle theta from ground with speed u (g = 10 m/ s^2 )