Respuesta :
Answer:
The total energy required is 121.56 kJ
Explanation:
The energy required to heat a m = 40g sample of ice is calculated using the following information:
The specific heat of ice =[tex]s_{ice}[/tex] = 2.108 J/g-K
The specific heat of water =[tex]s_{water}[/tex] = 4.187 J/g-K
The specific heat of steam = [tex]s_{steam}[/tex] = 1.996 J/g-K
The latent heat of fusion for ice = L = 336 kJ/kg
The latent heat of vaporisation = l = 2260 kJ/kg
The latent heat of fusion is the amount of energy required to change one kg of ice into water without a change in temperature.
Firstly, we find the energy required to change the temperature of 40 g of ice from -10°C to 0°C.
[tex]Energy\:required=ms_{ice}\Delta T\\ \Delta T\:is\:the\:change\:in\:temperature\\Energy\:required=40\times2.108\times(0-(-10))=40\times2.108\times10=843.2J[/tex]
Then, the energy required to convert 40g of ice at 0°C to water at 0°C.
[tex]Energy\:required=mL=40\times336=13440J[/tex]
Then, the energy required to convert water at 0°C to water at 100°C.
[tex]Energy\:required=ms_{water}\Delta T=40\times4.187\times(100-0)=40\times4.187\times100=16748J[/tex]
The energy required to convert water at 100°C to steam at 100°C.
[tex]Energy\:required=ml=40\times2260=90400J\\[/tex]
The energy required to convert steam at 100°C to steam at 105°C.
[tex]Energy\:required=ms_{steam}\Delta T=40\times1.996\times(105-100)=399.2J[/tex]
Total Energy required = 843.2 + 13440 + 16748 + 90400 + 399.2 = 121560.4J = 121.56 kJ
