Answer: The sphere is 0.002548 cm travel up the plane.
Step-by-step explanation:
Since we have given that
Inclination angle = 30°
Translational speed = 0.25 m/s
As we know that
[tex]KE=0.5\times lw^2=PE[/tex]
and
Length of solid sphere is given by
[tex]l=\dfrac{2Mr^2}{5}[/tex]
So, it becomes,
[tex]KE=0.5\times \dfrac{2Mr^2}{5}w^2=Mgd\sin \theta[/tex]
And [tex]0.25\ m/sv=rw[/tex]
So, it becomes,
[tex]1\times (0.25)^2=5\times d\times 9.81\times \sin 30^\circ\\\\0.0625=49.05d\times \dfrac{1}{2}\\\\\dfrac{0.125}{49.05}=d\\\\d=0.002548[/tex]
Hence, the sphere is 0.002548 cm travel up the plane.
