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23 October, 03:31

In a test of an automobile engine 1.00 L of octane (702 g) is burned, but only 1.84 kg of carbon dioxide is produced. What is the percentage yield of carbon?

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  1. 23 October, 05:51
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    The % yield of CO2 is 85.05 %

    Explanation:

    Step 1: Data given

    Mass of octane = 702 grams

    Molar mass octane = 114.23 g/mol

    Mass CO2 = 1.84 kg = 1840 grams

    Molar mass of CO2

    Step 2: The balanced equation

    2C8H18 + 25O2 → 16CO2 + 18H2O

    Step 3: Calculate moles of octane

    Moles octane = mass octane / molar mass octane

    Moles octane = 702.0 grams / 114.23 g/mol

    Moles octane = 6.145 moles

    Step 4: Calculate moles of CO2

    For 2 moles octane we need 25 moles O2 to produce 16 moles CO2 and 18 moles H2O

    For 6.145 moles octane we'll have 8*6.145 moles = 49.16 moles

    Step 5: Calculate mass of CO2

    Mass CO2 = moles CO2 * molar mass CO2

    Mass CO2 = 49.16 moles * 44.01 g/mol

    Mass CO2 = 2163.5 grams

    Step 6: Calculate % yield of carbon dioxide

    % yield = (actual yield / theoretical yield) * 100%

    % yield = (1840/2163.5) * 100%

    % yield = 85.05 %

    The % yield of CO2 is 85.05 %
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