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43 votes
43 votes
How many calories are released when 6 grams of 100°C steam turns to 0°C ice?

User Denis Rudenko
by
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1 Answer

12 votes
12 votes

Answer: 4276.2 calories

Step-by-step explanation:

Given

mass of steam is 6 gm at
100^(\circ)C

Conversion of steam to ice involves

  • steam to water at
    100^(\circ)C
  • water at
    100^(\circ)C to water at
    0^(\circ)C
  • water to the ice at
    0^(\circ)C

Calories released during the conversion of steam to water at
100^(\circ)C


E_1=mL_v\quad [L_v=\text{latent heat of vaporisation}]\\E_1=6* 533=3198\ cal.

Calories released during the conversion of water at
100^(\circ)C to water at
0^(\circ)C


E_2=mc(\Delta T)\quad [c=\text{specific heat of water,}1\ cal./gm.^(\circ)C]\\E_2=6* 1* 100=600\ cal.

Calories released during the conversion of water to the ice at
0^(\circ)C


E_3=mL_f\quad [L_f=\text{latent heat of fusion}]\\E_3=6* 79.7=478.2\ cal.

The total energy released is


E=E_1+E_2+E_3\\E=3198+600+478.2=4276.2\ cal.

User Bobo Shone
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3.4k points