How would you balance the following equation: CH3CH2CH3(g)+O2(g) --> CO2(g) + H2O(g)?

1 Answer
Truong-Son N.
Dec 4, 2015

We can rewrite this as:

#"C"_3"H"_8(g) + "O"_2(g) -> "CO"_2(g) + "H"_2"O"(g)#

I would initially start with the number of carbons because the number of carbons in #"CO"_2# is even, and the number of oxygens in #"O"_2# is also even.

#"C"_3"H"_8(g) + "O"_2(g) -> 3"CO"_2(g) + "H"_2"O"(g)#

Then, I would realize that there are #8# hydrogens on the left, and I need #4xx2# on the right.

#"C"_3"H"_8(g) + "O"_2(g) -> 3"CO"_2(g) + 4"H"_2"O"(g)#

Lastly, I would balance the oxygen, because it is easy to only affect the number of oxygens. It only complicates things more to assign a number to #"O"_2# first because you'll probably end up changing it again later.

#color(blue)("C"_3"H"_8(g) + 5"O"_2(g) -> 3"CO"_2(g) + 4"H"_2"O"(g))#

Last confirmation:

#"C"#: #1xx3 = 3xx1#
#"H"#: #1xx8 = 4xx2#
#"O"#: #5xx2 = 3xx2 + 4xx1#

Since this cannot be reduced any further, this is good to go.

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