The complete combustion of 24.0g of an organic compound produces 1.2mol of CO2 and 1.6mol of H2O. The compound was:
Propane
1-Propanol
Propanoic Acid
Methyl Ethanoate
Firstly, you should work out the ratio n(C):n(H) for each compound. They are: 3:8, 3:8, 3:6, and 3:6 respectively.
Then, you do some calculations:
n(C) in 24.0 g of the compound = n(CO2) produced
= 1.2 mol
n(H) in 24.0 g of the compound = 2 x n(H2O) produced
= 2 x 1.6
= 3.2 mol
Ratio n(C) : n(H)
= 1.2 : 3.2
= 1 : 2.67
= 3 : 8
I don't think this is too counterintuitive. At this stage, you only need to choose between propane and propan-1-ol. But how? Well, you need to plug in the molar mass of each compound to see if it matches your value for n(C) or n(H):
n(C3H8) in 24.0 g = m(C3H8) / M(C3H8)
= 24.0 g / 44.0 g mol-1
= 0.545 mol
n(C3H8O) in 24.0 g = m(C3H8O) / M(C3H8O)
= 24.0 g / 60.0 g mol-1
= 0.400 mol
I hope you can see that for propan-1-ol, we do have n(C)=0.4*3=0.12 mol or n(H)=0.4*8=3.2 mol. They are consistent with what we had earlier.
Volume of water: 440 ml
Initial mass of ethyne: 2.88g
Final mass of ethyne: 2.17g
Initial temperature of water: 23.5 C
Final temperature of water 42.6 C
During combustion of ethyne (C2H2), Use the change in temperature of the water to determine the amount of energy in KJ added during the heating.
What I did was E=4.184 x 440 x 19.1 = 35162 = 35.1KJ
but then the solution goes on to find the energy for one mole by dividing it by (0.71/26) giving 1.3 x 10^3 KJ. However isnt that for a mole of ethyne? and the question asks for energy in KJ added during the heating. ?
So shouldn't it be 35.1 KJ?
Yes, I agree with you. If the suggested answer was correct, its unit for energy (which is what the question asks) wouldn't have made sense.
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