Solve the previous problem if the firction coefficient between the 2.0 kg block and the plane below it is 0.5 and the plane below the 4.0 kg block is frictionless.

`m_1=4, m_2=2kg`
FricitoN/Al coefficient between 2 kg block
and surface =0.5
R=10 cm=0.1m`
`I=0.5kg-m^2`
`-m_1gsintheta-T_1`
=m_1a`…..1
`-T_2-(m_2gsintheta+mu m_2gcostheta)`
`=m_2a`…2
`(T_1-T_2)=I_a/r^2`……3
Adding equation 1 and 2 we will get
`m_1gsintheta-(m_2gsintheta-mu mg costheta)+(T_2-T_1)`
`=m_a+m_2a`
`=4xx9.8xx91/sqrt2)
`{2xx9.8xx(1/sqrt2)+0.5xx2xx9.8xx(1/sqrt2)}`
`=(4+2+05/0.01)a`
`rarr 37.80-(13.90+6.95)=56a`
`rarr 27.8-20.3=56a`
`rarr a=7/56=0.125m/s^2`