www-awu.aleks.com/alekscgi/x/sl.exe/10_u-IgNsikr7j8P3H-MTgeviKF C Solution Form M Gmail YouTube Maps G hess law organic c...... OKINETICS AND EQUILIBRIUM Using Le Chatelier's Principle to predict the result of changin Carbon disulfide and oxygen react to form carbon dioxide and sulfur CS₂(g)+30₂(g) → CO₂(g)+2SO₂(g) Suppose a mixture of CS₂, O₂, CO₂ and SO, has come to equilibr below will cause in the composition of the mixture in the vessel. All perturbation change in composition
www-awu.aleks.com/alekscgi/x/sl.exe/10_u-IgNsikr7j8P3H-MTgeviKF C Solution Form M Gmail YouTube Maps G hess law organic c...... OKINETICS AND EQUILIBRIUM Using Le Chatelier's Principle to predict the result of changin Carbon disulfide and oxygen react to form carbon dioxide and sulfur CS₂(g)+30₂(g) → CO₂(g)+2SO₂(g) Suppose a mixture of CS₂, O₂, CO₂ and SO, has come to equilibr below will cause in the composition of the mixture in the vessel. All perturbation change in composition
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
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![**Using Le Châtelier's Principle to Predict the Result of Changing Conditions**
Carbon disulfide and oxygen react to form carbon dioxide and sulfur dioxide, as shown in the chemical equation:
\[ \text{CS}_2(g) + 3\text{O}_2(g) \rightarrow \text{CO}_2(g) + 2\text{SO}_2(g) \]
Suppose a mixture of CS₂, O₂, CO₂, and SO₂ has come to equilibrium in a closed reaction vessel. Predict what change, if any, the perturbations in the table below will cause in the composition of the mixture in the vessel. Also, decide whether the equilibrium shifts to the right or left.
| Perturbation | Change in Composition | Shift in Equilibrium |
|--------------|-----------------------|----------------------|
| Some O₂ is removed | The pressure of CS₂ will | ☐ to the left ☐ (none) ☐ to the right |
| | The pressure of CO₂ will | ☐ to the left ☐ (none) ☐ to the right |
| Some O₂ is added | The pressure of CS₂ will | ☐ to the left ☐ (none) ☐ to the right |
| | The pressure of CO₂ will | ☐ to the left ☐ (none) ☐ to the right |
**Instructions:**
- Check the appropriate boxes to predict the shift in equilibrium.
**Graph/Diagram Explanation:**
There are radio buttons available to choose between the options "to the left," "(none)," or "to the right," allowing users to indicate their prediction for each scenario regarding shifts in equilibrium based on changes in pressure due to alterations in reactant levels.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F9be9a090-f726-46c3-84a4-96616934014f%2Fe6257c7c-c772-4b25-83e4-24784ebabdd5%2Fjbcm4d7_processed.jpeg&w=3840&q=75)
Transcribed Image Text:**Using Le Châtelier's Principle to Predict the Result of Changing Conditions**
Carbon disulfide and oxygen react to form carbon dioxide and sulfur dioxide, as shown in the chemical equation:
\[ \text{CS}_2(g) + 3\text{O}_2(g) \rightarrow \text{CO}_2(g) + 2\text{SO}_2(g) \]
Suppose a mixture of CS₂, O₂, CO₂, and SO₂ has come to equilibrium in a closed reaction vessel. Predict what change, if any, the perturbations in the table below will cause in the composition of the mixture in the vessel. Also, decide whether the equilibrium shifts to the right or left.
| Perturbation | Change in Composition | Shift in Equilibrium |
|--------------|-----------------------|----------------------|
| Some O₂ is removed | The pressure of CS₂ will | ☐ to the left ☐ (none) ☐ to the right |
| | The pressure of CO₂ will | ☐ to the left ☐ (none) ☐ to the right |
| Some O₂ is added | The pressure of CS₂ will | ☐ to the left ☐ (none) ☐ to the right |
| | The pressure of CO₂ will | ☐ to the left ☐ (none) ☐ to the right |
**Instructions:**
- Check the appropriate boxes to predict the shift in equilibrium.
**Graph/Diagram Explanation:**
There are radio buttons available to choose between the options "to the left," "(none)," or "to the right," allowing users to indicate their prediction for each scenario regarding shifts in equilibrium based on changes in pressure due to alterations in reactant levels.
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