Register
Calculate the change in entropy when 1.00 kg of water at 100 ∘C is vaporized and converted to steam at 100 ∘C. Assume that the heat of vaporization of water is 2256×103J/kg.
62.7k views
0 votes
Calculate the change in entropy when 1.00 kg of water at 100 ∘C is vaporized and converted to steam at 100 ∘C. Assume that the heat of vaporization of water is 2256×103J/kg.

User Annalise
by
8.0k points

1 Answer

2 votes

Answer : The change in entropy is
6.05* 10^3J/K

Explanation :

Formula used :


\Delta S=(m* L_v)/(T)

where,


\Delta S = change in entropy = ?

m = mass of water = 1.00 kg


L_v = heat of vaporization of water =
2256* 10^3J/kg

T = temperature =
100^oC=273+100=373K

Now put all the given values in the above formula, we get:


\Delta S=((1.00kg)* (2256* 10^3J/kg))/(373K)


\Delta S=6048.25J/K=6.05* 10^3J/K

Therefore, the change in entropy is
6.05* 10^3J/K

User Toffler
by
9.6k points
← Prev Question Next Question →

Related questions

Ask a Question
Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

9.5m questions

12.2m answers

Other Questions

Compare and contrast an electric generator and a battery??
How do you balance __H2SO4 + __B(OH)3 --> __B2(SO4)3 + __H2O
As an object’s temperature increases, the ____________________ at which it radiates energy increases.
Why is gold preferred as a superior metal over silver and bronze?
What is the evidence of a chemical reaction when the fireworks go off
Link Copied!