Question #6e844

1 Answer
Dec 3, 2016

Given

#m-> "mass of the block"=9.25kg#

#F-> "horizontal force applied on the block"=55N#

#mu_k-> "coefficient of kinetic friction"=0.175#

#F_"fric"-> "frictional force resisting the block"#
#" "" "=mu_kmg=0.175xx9.25xx9.8N=15.86375N#

So net force acting on the block

#F_n=F-F_"fric"=(55-15.86375)=39.13625N#

So acceleration produced

#a=F_n/m=(39.13625N)/(9.25kg)~~4.23ms^-2#

If time taken to cover the distance #s=3m# be t sec then by using equation of kinematics we can write

#S=uxxt+1/2at^2#

#=>3=0xxt+1/2xx4.23xxt^2#

#t=sqrt(6/4.23)s=~~1.19s#