Answer :
Explanation:
Given that,
Fapp = 67.0 N at 30.0° above the horizontal (rightward and upward)
Fnorm = 64.5 N, up
Ffrict = 27.6 N, left
Fgrav = 98 N, down
(a) Resolution of the applied force:
Horizontal component,
[tex]F_x=F\cos\theta\\\\=67\times \cos(30)\\\\=58.02\ N[/tex]
Vertical component,
[tex]F_y=F\sin\theta\\\\=67\times \sin(30)\\\\=33.5\ N[/tex]
(b) Net horizontal force :
[tex]F_x=58.02+(-27.6),\ \text{frictional force act in opposite direction of motion}\\\\F_x=30.42\ N[/tex]
It is positive, it will act in right side
Net vertical force :
[tex]F_y=33.5+64.5+(-98),\ \text{gravitational force acts in downward direction}\\\\F_y=0[/tex]
Hence, it is clear that the net force is in horizontal direction i.e. 30.42 N due right side.