Page 138 Practice Problem 5.14: If, instead of the fish, we place a 3.00 kg rock in the pan, how much does the spring stretch? Answer: twice as much, 2.45 cm.

The second image has background info used to help solve the practice problem.

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**Chapter 5: Applications of Newton’s Laws** ### Example 5.4: Fishy Business In this example, we will consider the forces that come into play in measuring weight. Weighing a fish involves using a spring balance. Let's go through a scenario: - **Set Up**: When the scale is unstressed, both the spring and the fish provide a reading of zero. In Figure 5.22a and b, a 1.50-kg fish is weighed. **Solution**: 1. **Weight Calculation**: - The weight of the fish is: \[ mg = (1.50\, \text{kg})(9.80\, \text{m/s}^2) = 14.7\, \text{N} \] 2. **Equilibrium Condition**: - \[ \sum F = F_{\text{sp}} - mg = 0 \\ \Rightarrow F_{\text{sp}} = mg = 14.7\, \text{N} \] 3. **Spring Calculation**: - The spring constant \( k \) is given as 1200 N/m. - Use Hooke's Law: \[ F = k \Delta L = 14.7\, \text{N} \\ \Delta L = \frac{F}{k} = \frac{14.7\, \text{N}}{1200\, \text{N/m}} = 0.0123\, \text{m} = 1.23\, \text{cm} \] - **Reflect**: - The weight of the 1.50-kg fish is less than the tested weight of 12.0 N, so the spring stretches less than the tested 10 cm, specifically about 1.23 cm. - **Practice Problem**: - If a 3.00 kg rock is placed on the scale instead, calculate the spring stretch. - **Answer**: The spring stretches twice as much, or about 2.45 cm. **Figure 5.22: Weighing a Fish** 1. **Diagram (a):** Shows the spring stretched by a known weight, 12.0 N. 2. **Diagram (b):** Illustrates the spring stretched by the fish. 3. **Diagram (c

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**Practice Problem 5.14:** If, instead of the fish, we place a 3.00 kg rock in the pan, how much does the spring stretch? **Answer:** twice as much, 2.45 cm.