9. (a) The free-body diagram for the block is shown below.
Fis the applied force,
Nis the normal force
of the wall on the block,
fis the force of friction, and mgis the force of gravity. To determine if the
block falls, we find the magnitude fof the force of friction required to hold it without accelerating
and also find the normal force of the wall on the block.
Wecomparefand µsN.If
f<µ
sN, the block does
not slide on the wall but if
f>µ
sN, the block does slide.
The horizontal component of
Newton’s second law is F−
N=0,soN=F=12Nand
µsN=(0.60)(12 N) = 7.2N.
The vertical component is f−
mg =0,sof=mg =5.0N.
Since f<µ
sNthe block does
not slide.
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N
mg
F
f
(b) Since the block does not move f=5.0N and N= 12 N. The force of the wall on the block is
Fw=−Nˆ
i+fˆ
j=−(12 N)ˆ
i+(5.0N)ˆ
j
where the axes are as shown on Fig. 6-21 of the text.
