Question #59aa4

1 Answer
Dec 16, 2016

#sqrt2v^#

Explanation:

At height #h# total energy of the cart#=KE+PE=1/2mv^2+mgh#
where #m# is mass of cart and #g# is acceleration due to gravity.

After it looses its (#50%#) half mass it climbs to height #2h#
Let velocity at that height #=v_n#

At height #2h# total energy of the cart#=1/2(m/2)v_n^2+(m/2)g(2h)#
#=(m/4)v_n^2+mgh#

Assuming no loss of energy due to friction, and applying law of conservation of energy we get

#1/2mv^2+mgh=(m/4)v_n^2+mgh#
#=>v_n^2/4=v^2/2#
#=>v_n=sqrt2v^#