Equation of trajectory of a projectile is given by y=−x2+10x where x and y are in meters and x is along horizontal and y is vertically upward and particle is projected from origin. Then which of the following options is/are correct? (g=10m/s2)
A
Initial speed of particle is √505m/s
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B
Horizontal range is 10m
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C
Maximum height is 25m
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D
Angle of projection with horizontal is tan−1(5)
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Solution
The correct option is C Maximum height is 25m y=10x−x2ory=10x(1−x10)(1)
On comparing equ. (1) with equation of trajectory, y=xtanθ(1−xR) tanθ=10⇒sinθ=10√101
and cosθ=1√101
and R=10m R=2u2sinθcosθg⇒10=2u2×10√101×1√10110⇒u2=505 ⇒u=√505m/s
Maximum height (H)=u2sinθ2g=505×10020×101=25m