Balance the following chemical equation (if necessary): C3H6(g) + O2(g) → CO₂(g) + H₂O(g) 1 + 4- Reset ²- C3H6 2 3 4 5 6 7 2+3+ CO₂ 0₂ 8 02 03 04 05 06 07 ☐ ☐o 9 DOLA (S) (1) (g) (aq) 9 xH₂O 0 H₂O Delete 4

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### Balancing Chemical Equations: Example Question

#### Question 48 of 50

**Task:** Balance the following chemical equation (if necessary):

\[ \text{C}_3\text{H}_6(g) + \text{O}_2(g) \rightarrow \text{CO}_2(g) + \text{H}_2\text{O}(g) \]

### Interactive Elements:

The interface provides several interactive elements for balancing the equation:

- **Numeric Buttons (0-9):** These allow the input of coefficients to balance the equation.
- **Charge Indicators:** Buttons such as 0²⁻, 0²⁺ provide options for indicating charges if applicable, although not necessary for this equation.
- **Operators:** Includes symbols for addition (+), subtraction (–), and reaction direction (→).
- **States of Matter:** Options like (s), (l), (g), and (aq) to indicate solid, liquid, gas, and aqueous states.
- **Compounds Provided:** Pre-written options for quickly adding each compound involved: C₃H₆, CO₂, O₂, H₂O.
- **Functional Buttons:** 
  - **Reset:** Clears all inputs to restart the balancing process.
  - **Delete:** Removes the most recent action.
  
### Instructions:

To balance the equation, enter the appropriate coefficients for each compound by clicking the numbers and using the options provided. The goal is to ensure the same number of each type of atom on both sides of the equation.

### Important Concepts:

- **Balancing Atoms:** Ensure that the number of atoms for carbon, hydrogen, and oxygen are equal on both sides of the equation.
- **Conservation of Mass:** The principle that mass is conserved in a chemical reaction, necessitating the balancing of equations.
- **Coefficients:** Whole numbers placed in front of compounds to indicate the number of molecules or moles involved in the reaction. 

This interface is designed to help students practice and learn the process of balancing chemical equations effectively.
Transcribed Image Text:### Balancing Chemical Equations: Example Question #### Question 48 of 50 **Task:** Balance the following chemical equation (if necessary): \[ \text{C}_3\text{H}_6(g) + \text{O}_2(g) \rightarrow \text{CO}_2(g) + \text{H}_2\text{O}(g) \] ### Interactive Elements: The interface provides several interactive elements for balancing the equation: - **Numeric Buttons (0-9):** These allow the input of coefficients to balance the equation. - **Charge Indicators:** Buttons such as 0²⁻, 0²⁺ provide options for indicating charges if applicable, although not necessary for this equation. - **Operators:** Includes symbols for addition (+), subtraction (–), and reaction direction (→). - **States of Matter:** Options like (s), (l), (g), and (aq) to indicate solid, liquid, gas, and aqueous states. - **Compounds Provided:** Pre-written options for quickly adding each compound involved: C₃H₆, CO₂, O₂, H₂O. - **Functional Buttons:** - **Reset:** Clears all inputs to restart the balancing process. - **Delete:** Removes the most recent action. ### Instructions: To balance the equation, enter the appropriate coefficients for each compound by clicking the numbers and using the options provided. The goal is to ensure the same number of each type of atom on both sides of the equation. ### Important Concepts: - **Balancing Atoms:** Ensure that the number of atoms for carbon, hydrogen, and oxygen are equal on both sides of the equation. - **Conservation of Mass:** The principle that mass is conserved in a chemical reaction, necessitating the balancing of equations. - **Coefficients:** Whole numbers placed in front of compounds to indicate the number of molecules or moles involved in the reaction. This interface is designed to help students practice and learn the process of balancing chemical equations effectively.
Expert Solution
Step 1

Combustion reaction:
A combustion reaction is a type of chemical reaction where a compound and oxidant reacted to produce heat and new product.
The given reaction is combustion reaction.
C3H6 (g) + O2(g) → CO2 (g) + H2O (g)

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