Combustion of hydrocarbons such as decane (C₁0H₂2) produces carbon dioxide, a "greenhouse gas." Greenhouse gases in the Earth's atmosphere can trap the Sun's heat, raising the average temperature of the Earth. For this reason there has been a great deal of international discussion about whether to regulate the production of carbon dioxide. 1. Write a balanced chemical equation, including physical state symbols, for the combustion of liquid decane into gaseous carbon dioxide and gaseous water. 2. Suppose 0.160 kg of decane are burned in air at a pressure of exactly 1 atm and a temperature of 11.0 °C. Calculate the volume of carbon dioxide gas that is produced. Round your answer to 3 significant digits.

Chemistry & Chemical Reactivity
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Chapter3: Chemical Reactions
Section3.5: Precipitation Reactions
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Combustion of hydrocarbons such as decane (C₁0H₂2) produces carbon dioxide, a "greenhouse gas." Greenhouse gases in the Earth's atmosphere can trap the
Sun's heat, raising the average temperature of the Earth. For this reason there has been a great deal of international discussion about whether to regulate the
production of carbon dioxide.
1. Write a balanced chemical equation, including physical state symbols, for the
combustion of liquid decane into gaseous carbon dioxide and gaseous water.
2. Suppose 0.160 kg of decane are burned in air at a pressure of exactly 1 atm and a
temperature of 11.0 °C. Calculate the volume of carbon dioxide gas that is produced.
Round your answer to 3 significant digits.
Transcribed Image Text:Combustion of hydrocarbons such as decane (C₁0H₂2) produces carbon dioxide, a "greenhouse gas." Greenhouse gases in the Earth's atmosphere can trap the Sun's heat, raising the average temperature of the Earth. For this reason there has been a great deal of international discussion about whether to regulate the production of carbon dioxide. 1. Write a balanced chemical equation, including physical state symbols, for the combustion of liquid decane into gaseous carbon dioxide and gaseous water. 2. Suppose 0.160 kg of decane are burned in air at a pressure of exactly 1 atm and a temperature of 11.0 °C. Calculate the volume of carbon dioxide gas that is produced. Round your answer to 3 significant digits.
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