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A fuel gas consists of 75% butane (C4H10), 10% propane (C3H8) and 15% butene (C4H8) by...

A fuel gas consists of 75% butane (C4H10), 10% propane (C3H8) and 15% butene (C4H8) by volume. It is to be fed to the combustion chamber in 10% excess air at 25ºC, where it is completely burnt to carbon dioxide and water. The flue gases produced are to be used to generate 5 bar steam from water at 90ºC.

net calorific value (MJm-3) at 25oC

Butane (C4H10) = 111.7MJm-3, Butene (C4H8) = 105.2 MJm-3. Propane (C3H8) = 85.8 MJm-3. air is 21% oxygen, 79% nitrogen by volume and 23.3% and 76.7% nitrogen by mass. Atomic mass of C=12, O=16, N=14 and H=1

(a) Write balanced equations for the combustion of each component of the fuel gas.

(d) Calculate: (i) the net calorific value (CV) per m3 of the fuel/air mix at 25ºC (ii) the net calorific value (CV) per kmol of the fuel/air mix at 25ºC.

(e) Determine the composition of the flue gases by volume (assuming the inlet air is dry): (i) on a wet basis (ii) on a dry basis.

(f) Determine the maximum flame temperature.

(h) Determine the ‘furnace efficiency' if the flue gases leave the boiler at 300ºC.

(j) Determine the dew point temperature assuming that the flue gas pressure is 1.00 bar and the inlet air: (i) is dry (ii) contains 0.8 kg water per kmol of air at the temperature of the inlet air.

(k) If the flue gases exiting the boiler are used to preheat the water fed to the boiler from a temperature of 28ºC to 90ºC and assuming: - a mean specific heat capacity for water over this temperature range to be 4.2 kJ kg-1 K-1 - a mean molar heat capacity for the flue gases up to 300ºC to be 31 kJ kmol-1 K-1 - 10% of the heat required to heat the water is lost in the heat exchanger - all water entering the system is converted to steam determine the final outlet temperature of the flue gas and state if the dew point will be reached in both of the cases given in part (j).

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