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Question

Find the value of θ in the diagram, so that the projectile can hit the target, placed at a height of 10 m from ground (as shown). (g=10 m/s2)


A
θ=300
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B
θ =450
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C
θ =tan15
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D
θ =800
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Solution

The correct option is B θ =450
When the projectile (projected with initial speed (u=20 m/s) hits the target, then its x & y co-ordinates should be equal to that of target.

Hence x=20 m and y=10 m, now we will substitute it in the equation of trajectory, which is given as;
y=xtanθgx22u2cos2θ

10=20×tanθ10×2022×202×(sec2θ)

2=4×tanθ(1+tan2θ)

tan2θ4tanθ+3=0

tanθ=3,1
Therefore, corresponding to these values of tanθ,
either θ=45 or tan1(3)

Hence option B is the correct answer

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