A boat is moving towards east with velocity 4m/s with respect to river flowing towards north with velocity 2m/s and the wind is blowing towards north with velocity 6m/s. The direction of the flag blown over by the wind hoisted on the boat is
A
South-east
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B
North
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C
tan−112 with east
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D
North-west
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Solution
The correct option is D North-west Let the +ve−x axis along the east direction and +ve−y axis along the north direction.
The velocity of boat w.r.t river is given as, vbr=4^im/s
Velocity of river w.r.t ground, vrg=2^jm/s
Velocity of wind w.r.t ground is, vwg=6^jm/s
The direction of flag hoisted on the boat will be along the direction of velocity of wind w.r.t boat.
Applying the concept of relative velocity, ⇒→vwb=→vwg−→vbg
Since →vbr=→vbg−→vrg
⇒→vwb=→vwg−(→vbr+→vrg)
→vwb=6^j+(−2^j)+(−4^i)
→vwb=4^j−4^i
Thus, tanθ=∣∣∣vyvx∣∣∣=1
⇒θ=45∘
On observing the component of velocity for vwb it is clear that the direction will be along north-west.
Why this Question?The flag points in the direction of wind with respect to pole ofthe flag.