"Synthesis gas" is a mixture of carbon monoxide and water vapor. At high temperature synthesis gas will form carbon dioxide and hydrogen, and in fact this reaction is one of the ways hydrogen is made industrially. A chemical engineer studying this reaction fills a 200. mL flask with 1.9 atm of carbon monoxide gas and 3.8 atm of water vapor. When the mixture has come to equilibrium she determines that it contains 1.33 atm of carbon monoxide gas, 3.23 atm of water vapor and 0.57 atm of carbon dioxide. The engineer then adds another 0.95 atm of water, and allows the mixture to come to equilibrium again. Calculate the pressure of hydrogen after equilibrium is reached the second time. Round your answer to 2 significant digits. | atm ?
"Synthesis gas" is a mixture of carbon monoxide and water vapor. At high temperature synthesis gas will form carbon dioxide and hydrogen, and in fact this reaction is one of the ways hydrogen is made industrially. A chemical engineer studying this reaction fills a 200. mL flask with 1.9 atm of carbon monoxide gas and 3.8 atm of water vapor. When the mixture has come to equilibrium she determines that it contains 1.33 atm of carbon monoxide gas, 3.23 atm of water vapor and 0.57 atm of carbon dioxide. The engineer then adds another 0.95 atm of water, and allows the mixture to come to equilibrium again. Calculate the pressure of hydrogen after equilibrium is reached the second time. Round your answer to 2 significant digits. | atm ?
Introductory Chemistry: A Foundation
9th Edition
ISBN:9781337399425
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Donald J. DeCoste
Chapter17: Equilibrium
Section: Chapter Questions
Problem 11QAP: . What does it mean to say that a state of chemical or physical equilibrium is dynamic?
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Transcribed Image Text:"Synthesis gas" is a mixture of carbon monoxide and water vapor. At high temperature synthesis gas will form carbon dioxide
and hydrogen, and in fact this reaction is one of the ways hydrogen is made industrially.
A chemical engineer studying this reaction fills a 200. mL flask with 1.9 atm of carbon monoxide gas and 3.8 atm of water
vapor. When the mixture has come to equilibrium she determines that it contains 1.33 atm of carbon monoxide gas, 3.23 atm of
water vapor and 0.57 atm of carbon dioxide.
The engineer then adds another 0.95 atm of water, and allows the mixture to come to equilibrium again. Calculate the pressure
of hydrogen after equilibrium is reached the second time. Round your answer to 2 significant digits.
atm
x10
?
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