Some very hot rocks have a temperature of #280 ^o C# and a specific heat of #210 J/(Kg*K)#. The rocks are bathed in #9 L# of boiling water. If the heat of the rocks completely vaporizes the water, what is the minimum combined mass of the rocks?

1 Answer
Jun 10, 2017

The mass of the rocks is #=537.4kg#

Explanation:

The heat transferred from the rocks to the water, is equal to the heat used to evaporate the water.

For the rocks #DeltaT_o=280-100=180º#

Heat of vaporisation of water

#H_w=2257kJkg^-1#

The specific heat of the rocks is

#C_o=0,21kJkg^-1K^-1#

The mass of water is #m_w=9kg#

# m_o C_o (DeltaT_o) = m_w H_w #

#m_o*0.21*180=9*2257#

The mass of the rocks is

#m_o=(9*2257)/(0,21*180)#

#=537.4kg#