Answer:2.87
Explanation:
Given
mass of force=25 N
mass of box=5 kg
coefficient of kinetic friction [tex]\mu _k=0.2[/tex]
Acceleration of box will be provided by its cos component and friction try to oppose it
Normal reaction[tex]=mg-F\sin 30 [/tex]
[tex]N=5\times 9.8 -25\sin 30 =36.5 N[/tex]
friction force[tex](f_r)=\mu _k N=0.2\times 36.5=7.3 N[/tex]
net force in horizontal direction
[tex]F\cos 30 -f_r=ma[/tex]
[tex]25\cos 30-7.3=5\times a[/tex]
[tex]a=2.87 m/s^2[/tex]
