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Under a constant pressure of 1.000 atm, we do the combustion of 1.0000 mol of propane, C3H8(g), at 25.0C (N.B. combustion is the reaction of

Under a constant pressure of 1.000 atm, we do the combustion of 1.0000 mol of propane, C3H8(g), at 25.0C (N.B. combustion is the reaction of a substance with O2(g) to produce CO2(g) and H2O(l)). Calculate the values of H, U, Q, and W for this combustion. If the combustion of 2.22 mol of propane, C3H8(g), at constant pressure is used to heat 50.0 kg of water originally at 25.0C, what will be the final temperature of this 50.0 kg of

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