Answer to Question #86921 in General Chemistry for jason

Question #86921
(a) Using the following data, calculate ΔH° for this reaction.

ΔH°f kJ mol-1: C3H8(g) = -103.8 ; CO2(g) = -393.5 ; H2O(g) = -241.8

ΔH° = _______kJ

(b) Calculate the total heat capacity of 3 mol of CO2(g) and 4 mol of H2O(g), using CCO2(g) = 37.1 J K-1 mol-1 and CH2O(g) = 33.6 J K-1 mol-1.

C = ________ J K-1

(c) When this reaction is carried out in an open flame, almost all the heat produced in part (a) goes to raise the temperature of the products. Assuming that the reactants are at 25°C, calculate the maximum flame temperature that is attainable in an open flame burning propane in oxygen. The actual flame temperature would be lower than this because heat is lost to the surroundings.

Maximum temperature = _________ °C
1
Expert's answer
2019-03-29T03:32:59-0400

ΔH° = -2043.9 kJ 

C = 245.7 J K-1 

Maximum temperature =1798.2 °C


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