be shipped as a liquid. Suppose 2.62 × 10° ft of methane is oxidized to methanol at 1.00 atm and 25 °C. What volume of methanol, in liters, is formed? The density of methanol is 0.791 g/mL. volume: Write the balanced chemical equations for the combustion of methane gas and liquid methanol to CO, (g) and H, O(1). Include phases.

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Chapter1: Chemical Foundations
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Question 7 of 10
Calculate the total enthalpy change for the complete combustion of the 2.62 × 10° f° of methane gas and the equivalent
amount of liquid methanol calculated in the first part of the question. Use the standard enthalpy of formation values in
this table.
AHmethane =
kJ
kJ
AHmethanol =
Liquid methane has a density of 0.466 g/mL, and the density of liquid methanol at 25 °C is 0.791 g/mL. Calculate the enthalpy
change for the combustion of 4.00 L of liquid methane and 4.00 L of liquid methanol. Use the same thermodynamic values for
liquid methane that you used for methane gas in the previous part.
kJ
Enter numeric value
AHmethane =
kJ
AHmethanol =
Transcribed Image Text:O Resources Give Uo O Hint Check Answer Question 7 of 10 Calculate the total enthalpy change for the complete combustion of the 2.62 × 10° f° of methane gas and the equivalent amount of liquid methanol calculated in the first part of the question. Use the standard enthalpy of formation values in this table. AHmethane = kJ kJ AHmethanol = Liquid methane has a density of 0.466 g/mL, and the density of liquid methanol at 25 °C is 0.791 g/mL. Calculate the enthalpy change for the combustion of 4.00 L of liquid methane and 4.00 L of liquid methanol. Use the same thermodynamic values for liquid methane that you used for methane gas in the previous part. kJ Enter numeric value AHmethane = kJ AHmethanol =
Many wells drilled in the United States produce both oil and natural gas. In the past, the natural gas was treated as a waste
byproduct of oil production and was burned off because the cost of shipping the gas was prohibitively high since it is
necessary to liquefy the gas, which is mainly methane (CH) and has a boiling point of –164 °C. As the natural gas market has
grown, liquefied natural gas (LNG) carriers, tank ships designed for transporting LNG, have become more prevalent and the
shipping costs have decreased. Before the rise in LNG tankers, one strategy used for transporting natural gas was to oxidize the
methane to methanol (CH,OH), which has a boiling point of 65 °C, and can more readily be shipped as a liquid.
Suppose 2.62 x 10° ft of methane is oxidized to methanol at 1.00 atm and 25 °C. What volume of methanol, in liters, is
formed? The density of methanol is 0.791 g/mL.
volume:
L.
Write the balanced chemical equations for the combustion of methane gas and liquid methanol to CO, (g) and H,O(1).
Include phases.
combustion of methane:
combustion of methanol:
Transcribed Image Text:Many wells drilled in the United States produce both oil and natural gas. In the past, the natural gas was treated as a waste byproduct of oil production and was burned off because the cost of shipping the gas was prohibitively high since it is necessary to liquefy the gas, which is mainly methane (CH) and has a boiling point of –164 °C. As the natural gas market has grown, liquefied natural gas (LNG) carriers, tank ships designed for transporting LNG, have become more prevalent and the shipping costs have decreased. Before the rise in LNG tankers, one strategy used for transporting natural gas was to oxidize the methane to methanol (CH,OH), which has a boiling point of 65 °C, and can more readily be shipped as a liquid. Suppose 2.62 x 10° ft of methane is oxidized to methanol at 1.00 atm and 25 °C. What volume of methanol, in liters, is formed? The density of methanol is 0.791 g/mL. volume: L. Write the balanced chemical equations for the combustion of methane gas and liquid methanol to CO, (g) and H,O(1). Include phases. combustion of methane: combustion of methanol:
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