A particle is projected with initial velocity of `hati+2hatj`. The eqaution of trajectory is `(take g=10ms^(-2))`A. `y=2x-15x^(2)`B. `y=2x-25x^(2)`C. `y=x-5x^(2)`D. `y=2x-5x^(2)`

A particle is projected with initial velocity of `hati+2hatj`. The eqa

1.	A particle is projected with initial velocity of `hati+2hatj`. The eqaution of trajectory is `(take g=10ms^(-2))`A. `y=2x-15x^(2)`B. `y=2x-25x^(2)`C. `y=x-5x^(2)`D. `y=2x-5x^(2)`
Answer» Correct Answer - b Given, Horizontal component of initial velocity `u_(x)=2=usin theta` `tan theta=(u sin theta)/(u cos theta)=2/1=2` The equation of trajectory of projectile motion is `y=x tan theta-(gx^(2))/(2u^(2)cos^(2) theta)=xtan theta-(gx^(2))/(2(u_(x))^(2))` `y=x xx2 -(10xx x^(2))/(2(1)^(2))=2x-5x^(2)`

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A particle is projected with initial velocity of `hati+2hatj`. The eqaution of trajectory is `(take g=10ms^(-2))`A. `y=2x-15x^(2)`B. `y=2x-25x^(2)`C. `y=x-5x^(2)`D. `y=2x-5x^(2)`

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