Butane, C4H10, is a component of natural gas that is used as fuel for cigarette lighters. The balanced equation of the complete combustion of butane is 2C4H10 (9) + 1302(g)→8CO2 (g) + 10H2O(1) At 1.00 atm and 23 °C, what is the volume of carbon dioxide formed by the combustion of 3.80 g of butane? Express your answer with the appropriate units.

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Chapter5: Gases
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Constants | Periodic Table
Part B
Butane, C4H10, is a component of natural gas that is used as fuel for cigarette lighters. The
balanced equation of the complete combustion of butane is
2C4H10 (g) + 1302 (g)→8CO2(g)+ 10H2O(1)
At 1.00 atm and 23 °C, what is the volume of carbon dioxide formed by the combustion of
3.80 g of butane?
Express your answer with the appropriate units.
> View Available Hint(s)
µA
?
volume of CO2 =
Value
%3D
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Transcribed Image Text:Constants | Periodic Table Part B Butane, C4H10, is a component of natural gas that is used as fuel for cigarette lighters. The balanced equation of the complete combustion of butane is 2C4H10 (g) + 1302 (g)→8CO2(g)+ 10H2O(1) At 1.00 atm and 23 °C, what is the volume of carbon dioxide formed by the combustion of 3.80 g of butane? Express your answer with the appropriate units. > View Available Hint(s) µA ? volume of CO2 = Value %3D Submit Previous Answers
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