STATEMENT-1: For maximum height `H` of a projectile when the macimum rnage is `R` the only valid relation is that `H` is `50%` of `R`.
STATEMENT-2: `R = (u^(2)sin 2 theta)/(g)` and `H = (u^(2) sin^(2) theta)/(2g)`.

A particle is projected from the ground with velocity u at angle theta with horizontal. The horizontal rnage, maximum hieght and time of flight are R,H and T respectively. They are given by, R = (u^(2)sin 2 theta)/(g),H = (u^(2)sin^(2)theta)/(2g) and T = (2usin theta)/(g) Now keeping u as fixed, theta is varied from 30^(@) to 60^(@) . Then,

Assertion When theta = 45^(@) or 135^(@) , the valueof R remains the same, only the sign changes. Reason R= (u^(2)sin2theta)/(g)

Maximum value of the expression cos theta-sin^(2)theta-2,theta in R , is

Statement I The maximum value of sin theta+costheta is 2. Statement II The maximum value of sin theta is 1 and that of cos theta is also 1.

STATEMENT-1: A body is projected from the ground with a velocity v at an angle with the horizontal direction, it reaches a maximum height (H) and reaches the ground after a time T = 2u sin theta//g because STATEMENT-2: The vertical and horizontal motions can be treated independently

Maximum value of the expression cos theta-sin^(2)theta-2,theta in R, is -

Maximum value of the expression cos theta- sin^(2)theta-2,theta in R ,is -

Prove that for a projectile fired from level ground at an angle theta above the horizontal, the ratio of the maximum height H to the range R is given by (H)/(R)=(1)/(4)tan theta

A projectil has the same range (R ) when the maximum heitht attained by it is either H_1 or H_1 . Find the relation between R, H_1 and H_2 .