For the beam shown below, given that L = 10 m, and w = 6 kN/m, draw the FBD & shear diagram, and then input the magnitude of the max internal kN. shear force along the beam: Calculate your solution to 1 decimal place.
For the beam shown below, given that L = 10 m, and w = 6 kN/m, draw the FBD & shear diagram, and then input the magnitude of the max internal kN. shear force along the beam: Calculate your solution to 1 decimal place.
Chapter2: Loads On Structures
Section: Chapter Questions
Problem 1P
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
Transcribed Image Text:## Problem Description
For the beam shown below, given that \( L = 10 \, \text{m} \), and \( w = 6 \, \text{kN/m} \), draw the Free Body Diagram (FBD) and shear diagram, and then input the magnitude of the maximum internal shear force along the beam: \_\_\_\_ kN.
Calculate your solution to 1 decimal place.
## Diagram Explanation
### Beam Diagram
- The beam is horizontally oriented, supported at both ends.
- It is uniformly loaded with downward arrows indicating a distributed load \( w = 6 \, \text{kN/m} \) spanning its entire length.
- The length of the beam is labeled as \( L = 10 \, \text{m} \).
This diagram is essential for visualizing the beam's structure and loading conditions, which will be used to perform calculations for the FBD (Free Body Diagram) and shear force analysis.
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