TS EAMCET · Physics · Motion In Two Dimensions
The vertical displacement ( \(y\) in metre) of a projectile in terms of its horizontal displacement ( \(x\) in metre) is given by \(y=\left(\sqrt{3} x-0.2 x^2\right)\). The time of flight of the projectile is
(Acceleration due to gravity \(=10 \mathrm{~ms}^{-2}\) )
- A \(5 \sqrt{3} \mathrm{~s}\)
- B \(\sqrt{3} \mathrm{~s}\)
- C 0.2 s
- D \(0.2 \sqrt{3} \mathrm{~s}\)
Answer & Solution
Correct Answer
(B) \(\sqrt{3} \mathrm{~s}\)
Step-by-step Solution
Detailed explanation
\( \tan\theta = \sqrt{3} \Rightarrow \theta = 60^\circ \) \( \frac{g}{2u^2 \cos^2\theta} = 0.2 \Rightarrow \frac{10}{2u^2 (\cos 60^\circ)^2} = 0.2 \Rightarrow \frac{10}{2u^2 (1/2)^2} = 0.2 \Rightarrow \frac{20}{u^2} = 0.2 \Rightarrow u = 10 \text{ ms}^{-1} \)…
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