The equation of projectile is `y=16x-(x^(2))/(4)` the horizontal range – InterviewSolution

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1.	The equation of projectile is `y=16x-(x^(2))/(4)` the horizontal range is:-A. 16mB. 8mC. 64mD. 12.8m
Answer» Correct Answer - C `y=16x-(x^(2))/(y)` `y=16x(1-(x)/(64))` Comparing with `y=x tan theta(1-(x)/(R))` R=64m

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