The force F1 that is necessary to move a body up an inclined plane is double the force F2 that is necessary to just prevent it from sliding down, then: ( Given that ϕ is angle of repose, θ is angle of inclined plane and w is weight of the body)
A
F2=w sin(θ−ϕ)secϕ
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B
F1=w sin(θ−ϕ)secϕ
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C
tanϕ=3tanθ
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D
tanθ=3tanϕ
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Solution
The correct option is Dtanθ=3tanϕ
F1=mg sin θ+μmg cos θ. F2=mg sin θ−μmg cos θ.
But mg = w μ=tan ϕF1=w (sin θ+sin ϕcos ϕcos θ)⇒F1=w sin (θ+ϕ)sec ϕ F2=w (sin θ−sin ϕcos ϕcos θ)⇒F2=w sin (θ−ϕ)sec ϕ
Now F1=2F2 mg sin θ+μmg cos θ=2(mg sin θ−μmg cos θ) sin θ+μcos θ=2sin θ−2μcos θ⇒3μcos θ=sin θ ⇒tan θ=3μ