Consider the balanced equation for the combustion of isooctane, C8H18, where 2 moles of the isooctane were made to react with excess oxygen gas. 2 C8H18 (l) + 25 O2 (g)  16 CO2 (g) + 18 H2O (g) If the actual yield is 697 grams of CO2, what is the % yield of the reaction? Use the following atomic masses: H = 1, C = 12, O = 16. Express your answer in percentage and in two decimal places.

Chemistry for Engineering Students
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Chapter4: Stoichiometry
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Problem 4.44PAE: 4.44 Industrial production of hydrogen gas uses the reaction shown below. If 1.00 metric ton of...
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Consider the balanced equation for the combustion of isooctane, C8H18, where 2 moles of the isooctane were made to react with excess oxygen gas.

2 C8H18 (l) + 25 O2 (g)  16 CO2 (g) + 18 H2O (g)

If the actual yield is 697 grams of CO2, what is the % yield of the reaction? Use the following atomic masses: H = 1, C = 12, O = 16. Express your answer in percentage and in two decimal places.

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