A block of mass m=2kg is kept in position on the wall by applying an oblique force 'F' at 60° to the vertical as shown . calculate the minimum value of 'F'(the coafficient of friction between the wall and the block = 0.9) (Take 'g'=10ms^-2)?

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A block of mass m=2kg is kept in position on the wall by applying an oblique force 'F' at 60° to the vertical as shown . calculate the minimum value of 'F'(the coafficient of friction between the wall and the block = 0.9) (Take 'g'=10ms^-2)?

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Answer 1 · 2018-07-07T08:51:10

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Let the force $vecF$ be applied on the block obliquely at an angle of $theta=60^@$ with the vertical as shown in the figure above.

The resolved part of the applied force $vecF$ perpendicular to the wall will be $vecFsintheta$ and the resolved part parallel to the wall in upward direction is $vecFcostheta$

So static fictional force in upward direction is

$F_suarr="coefficient of friction"(mu_s)xxFsintheta$

$=0.9vecFsintheta$

So considering the equilibrium of forces we have

$vecFcostheta+0.9*vecFsintheta=mg$

$=>vecFcos60+0.9*vecFsin60=2*10$

$=>vecF=20/(1/2+(0.9sqrt3)/2)~~15.6N$

If the applied force $vecF$ acts obliquely downward making an angle $theta=60^@$ with the vertical then the component of $vecF$ in vertical direction will be downward and equilibrium of force will give the following relation.

$0.9*vecFsintheta=mg+ vecFcostheta$

$=>-vecFcos60+0.9*vecFsin60=2*10$

$=>vecF=20/(-1/2+(0.9sqrt3)/2)~~71.6N$

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A block of mass m=2kg is kept in position on the wall by applying an oblique force 'F' at 60° to the vertical as shown . calculate the minimum value of 'F'(the coafficient of friction between the wall and the block = 0.9) (Take 'g'=10ms^-2)?

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