Find the moment caused by force F about point A. (Hint: It may be easier to break up F into components first) 60° F = 150 lb 5'-0" 20'-0"

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**Title: Understanding Moments in Structural Mechanics** ### Problem Statement: Find the moment caused by force \( F \) about point \( A \). **Hint:** It may be easier to break up \( F \) into components first. ### Diagram Description: A rigid L-shaped structure is shown, fixed at the base labeled as point \( A \). The vertical section of the structure extends upward 20 feet. The horizontal section extends rightward 5 feet from the top of the vertical section. A force \( F = 150 \, \text{lb} \) is applied downwards at an angle of 60° to the horizontal at the end of the horizontal section. ### Parameters: - Vertical section height: 20 feet - Horizontal section length: 5 feet - Force \( F \): 150 lb at a 60° angle to the horizontal ### Detailed Steps to Solve: 1. **Resolve the Force Into Components:** \[ F_x = F \cdot \cos(\theta) \] \[ F_y = F \cdot \sin(\theta) \] where \( \theta = 60° \) - \( F_x = 150 \cdot \cos(60°) = 150 \cdot 0.5 = 75 \, \text{lb} \) - \( F_y = 150 \cdot \sin(60°) = 150 \cdot \frac{\sqrt{3}}{2} \approx 129.9 \, \text{lb} \) 2. **Calculate the Moment about Point \( A \):** The moment \( M \) caused by a force about a point is given by: \[ M_A = F \cdot d \cdot \sin(\alpha) \] where \( \alpha \) is the angle between the force vector and the moment arm \( d \). In our scenario, the transverse force component \( F_x \) acting at a distance of 20 feet from \( A \), and the vertical force component \( F_y \) acting at a distance of 5 feet from \( A \). - Moment due to \( F_x \): \[ M_{A,x} = F_x \cdot 20 = 75 \, \text{lb} \cdot