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An stoichiometric mixture of hydrogen gas and the air at `25^(@)C` and a total pressure of 1 atm, is exploded in a closed rigid vessel. If the process occurs under adiabatic condition then using the given data answer the question that follow: Given : (i) `C_(P)=8.3" Cal deg"^(-1)" mol"^(-1), (ii) C_(P)=11.3" Cal deg"^(-1)" mol"^(-1), DeltaH_(f) [H_(2)O(g)]= -57.8 kCal` [Take air as `80% N_(2), 20 % O_(2)` by volume] What will be final pressure in atm ?A. `cong 8.5`B. `cong 7.6`C. `cong 5.46`D. `cong 0.85`

Answer» Correct Answer - A
`P_(1)/(n_(1)T_(1))=P_(2)/(n_(2)T_(2))rArr P_(2) cong 8.5`


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