An equilibrium mixture of PCl, (g), PCI, (g), and Cl, (g) has partial pressures of 217.0 Torr, 13.2 Torr, and 13.2 Torr, respectively. A quantity of Cl, (g) is injected into the mixture, and the total pressure jumps to 263.0 Torr at the moment of mixing. The system then re-equilibrates. The chemical equation for this reaction is PCI, (g) + Cl, (g) PCI,(g) Calculate the new partial pressures, P, after equilibrium is reestablished. Torr Ppcl, Torr Pcl, Torr PPCI, %3D
An equilibrium mixture of PCl, (g), PCI, (g), and Cl, (g) has partial pressures of 217.0 Torr, 13.2 Torr, and 13.2 Torr, respectively. A quantity of Cl, (g) is injected into the mixture, and the total pressure jumps to 263.0 Torr at the moment of mixing. The system then re-equilibrates. The chemical equation for this reaction is PCI, (g) + Cl, (g) PCI,(g) Calculate the new partial pressures, P, after equilibrium is reestablished. Torr Ppcl, Torr Pcl, Torr PPCI, %3D
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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![### Equilibrium Reaction of Gaseous Compounds
An equilibrium mixture of \( \text{PCl}_5(g) \), \( \text{PCl}_3(g) \), and \( \text{Cl}_2(g) \) has partial pressures of 217.0 Torr, 13.2 Torr, and 13.2 Torr, respectively. A quantity of \( \text{Cl}_2(g) \) is injected into the mixture, and the total pressure jumps to 263.0 Torr at the moment of mixing. The system then re-equilibrates.
The chemical equation for this reaction is:
\[ \text{PCl}_3(g) + \text{Cl}_2(g) \rightleftharpoons \text{PCl}_5(g) \]
Calculate the new partial pressures, \( P \), after equilibrium is reestablished.
#### Partial Pressure Calculation:
- \( P_{\text{PCl}_3} = \) \_\_\_\_ Torr
- \( P_{\text{Cl}_2} = \) \_\_\_\_ Torr
- \( P_{\text{PCl}_5} = \) \_\_\_\_ Torr
**Explanation of Diagrams:**
There are no graphs or diagrams in the content. This text focuses on the calculation of partial pressures after equilibrium is reestablished in a chemical reaction.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F214a1152-ccda-43e7-9936-4a2ae323f75a%2Fbe5374b8-f1e2-4258-a751-04d4dc508328%2Fqu4r7ad_processed.png&w=3840&q=75)
Transcribed Image Text:### Equilibrium Reaction of Gaseous Compounds
An equilibrium mixture of \( \text{PCl}_5(g) \), \( \text{PCl}_3(g) \), and \( \text{Cl}_2(g) \) has partial pressures of 217.0 Torr, 13.2 Torr, and 13.2 Torr, respectively. A quantity of \( \text{Cl}_2(g) \) is injected into the mixture, and the total pressure jumps to 263.0 Torr at the moment of mixing. The system then re-equilibrates.
The chemical equation for this reaction is:
\[ \text{PCl}_3(g) + \text{Cl}_2(g) \rightleftharpoons \text{PCl}_5(g) \]
Calculate the new partial pressures, \( P \), after equilibrium is reestablished.
#### Partial Pressure Calculation:
- \( P_{\text{PCl}_3} = \) \_\_\_\_ Torr
- \( P_{\text{Cl}_2} = \) \_\_\_\_ Torr
- \( P_{\text{PCl}_5} = \) \_\_\_\_ Torr
**Explanation of Diagrams:**
There are no graphs or diagrams in the content. This text focuses on the calculation of partial pressures after equilibrium is reestablished in a chemical reaction.
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