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One mole of an ideal gas is heated at constant pressure from `0^(@)C` to `100^(@)C` (A) Calculate work done. (B) If the gas were expanded isothermally and reversibly at `0^(@)C` from 1 atm to some other pressure `P_(1)`, water must be the final pressure if the maximum work is equal to the work involned in (a)? |
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Answer» Correct Answer - molar internal energy change =37.5 kj/mol, molar enthaply of vaporization =40.6kj/mol Solution (a) work involed in heating of gas `W_(a) = - p.Delta V = - P (V_(2) - V_(1)) - 198.7` `= -2.303 xx1xx9.87xx 273 log_(10). (1)/(P_(1)) :. P_(1) = 0.694 atm` |
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