Answer:
The heat needed to boil 1 gallon of water is 81,490.62 Joules.
Explanation:
[tex]Q=mc\Delta T[/tex]
Where:
Q = heat absorbed or heat lost
c = specific heat of substance
m = Mass of the substance
ΔT = change in temperature of the substance
We have :
Volume of water = V = 1 gal = 4546.09 mL
Density of water , d= 1 g/mL
mass of water = m = d × V = 1g/mL × 4546.09 mL = 4546.09 g
Specific heat of water = c = 1 Cal/g°C
ΔT = 100°C - 25°C = 75 °C
9 (boiling pint of water is 100°C)
Heat absorbed by the water to make it boil:
[tex]Q= 4546.09 g\times 1 Cal/g^oC\times 75^oC=340,956.75 Cal[/tex]
1 calorie = 4.184 J
[tex]Q=\frac{340,956.75}{4.184} J = 81,490.62 J[/tex]
The heat needed to boil 1 gallon of water is 81,490.62 Joules.
