Taking specific heat of lead as 0.128 J/gK = c
We have energy of ball at 7.00 meter height = mgh = [tex]87.6*10^{-3}*9.81*7[/tex]
When leads gets heated by a temperature ΔT energy needed = mcΔT
= [tex]87.6*10^{-3}*0.128*10^3[/tex]ΔT
Comparing both the equations
[tex]87.6*10^{-3}*9.81*7[/tex] = [tex]87.6*10^{-3}*0.128*10^3[/tex]ΔT
ΔT = 0.536 K
Change in temperature same in degree and kelvin scale
So ΔT = 0.536 [tex]^0C[/tex]
