A particle is projected with a velocity v so that its horizontal range is twice the greatest height attained. The horizontal range is :

A particle is projected with a velocity v so that its horizontal range

1.	A particle is projected with a velocity v so that its horizontal range is twice the greatest height attained. The horizontal range is :
Answer» `2v^(2)//3G` `v^(2)//2g` `v^(2)//g` `4V^(2)//5g` Solution :R = 2H `sin2theta=sin^(2)theta` `2sintheacostheta=sin^(2)theta` `:.tantheta=2` Range `R=(u^(2).2sinthetacostheta)/g` `=u^(2).2xx(2x)/(sqrt(5)x).x/(sqrt(5)x)xx1/g` `(u^(2).4)/(5g)`

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A particle is projected with a velocity v so that its horizontal range is twice the greatest height attained. The horizontal range is :

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