- (A) Not a function of its pressure
- (B) Not a function of its nature
- (C) Not a function of its temperature
- (D) Unity, if it follows PV = nRT
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- (A) In which there is a temperature drop
- (B) Which is exemplified by a non-steady flow expansion
- (C) Which can be performed in a pipe with a constriction
- (D) In which there is an increase in temperature
- (A) Le-Chatelier principle
- (B) Kopp’s rule
- (C) Law of corresponding state
- (D) Arrhenius hypothesis
- (A) Henry’s law
- (B) Law of mass action
- (C) Hess’s law
- (D) None of these
- (A) Prediction of the extent of a chemical reaction
- (B) Calculating absolute entropies of substances at different temperature
- (C) Evaluating entropy changes of chemical reaction
- (D) Both
- (A) Molecular size
- (B) Volume
- (C) Pressure
- (D) Temperature
- (A) The statement as per Gibbs-Helmholtz
- (B) Called Lewis-Randall rule
- (C) Henry’s law
- (D) None of these
- (A) Volume
- (B) Mass
- (C) Critical temperature
- (D) None of these
- (A) Low temperature and high pressure
- (B) Low temperature and low pressure
- (C) High temperature and high pressure
- (D) High temperature and low pressure
- (A) μi = (∂F/∂ni)T, P, ni
- (B) μi = (∂A/∂ni)T, P, ni
- (C) μi = (∂F/∂ni)T, P
- (D) μi = (∂A/∂ni)T, P

