A particle is projected at an angle of 30∘ w.r.t horizontal with speed 20m/s. Take the point of projection as the origin of the coordinate axes and find the position vector(in m) of the particle after 1s. (Take g=10m/s2)
A
5√3^i+5^j
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B
10√3^i+5^j
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C
5^i+10√3^j
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D
10√3^i+10^j
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Solution
The correct option is B10√3^i+5^j Displacement of the particle x-direction is given by x=ucosθ×t=20×√32×1=10√3m Displacement of the particle in y-direction is given by, y=usinθt−12×10×t2 =20×12×1−5×12=5m ∴ Position vector (→r)=10√3^i+5^j