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D19A99G
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- Calculation of the theoretical value of AFR of ethanol
First I have seen a few forums dotted about covering this subject already, however I couldn't find exactly what I was looking for so I apologise if its somewhere on here already.
I am trying to calculate the AFR value for pure ethanol.
I am only including oxygen in the category of "air" due to other elements being inert.
The balanced equation is C2H5OH + 3O2 = 3H2O + 2CO2.
When I then calculate the AFR while also considering that oxygen only makes up 21% of air, the value I get is approximately 9.9. Which is different to the widely used value of 9. Is there something I'm doing wrong or has the value of 9 only being achieved through practical tests which cannot be replicated via theory?
Ethanol mass = 46, Oxygen mass = 96
Air mass = Oxygen*4.76 = 456.96
AFR = 456.96/46 = 9.93
When; C=12amu, H=1amu, O=16amu
I am trying to calculate the AFR value for pure ethanol.
I am only including oxygen in the category of "air" due to other elements being inert.
The balanced equation is C2H5OH + 3O2 = 3H2O + 2CO2.
When I then calculate the AFR while also considering that oxygen only makes up 21% of air, the value I get is approximately 9.9. Which is different to the widely used value of 9. Is there something I'm doing wrong or has the value of 9 only being achieved through practical tests which cannot be replicated via theory?
Ethanol mass = 46, Oxygen mass = 96
Air mass = Oxygen*4.76 = 456.96
AFR = 456.96/46 = 9.93
When; C=12amu, H=1amu, O=16amu
