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In the given diagram, the Bending moment about fixed end ‘A’ will be : 

F2 Savita ENG 23-10-23 D6

This question was previously asked in
UKPSC JE Civil 8 May 2022 Official Paper-I
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  1. \(\rm \frac{wl^2}{8}\)
  2. \(\rm \frac{wl^2}{3}\)
  3. \(\rm \frac{wl^2}{4}\)
  4. \(\rm \frac{wl^2}{6}\)

Answer (Detailed Solution Below)

Option 4 : \(\rm \frac{wl^2}{6}\)
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Detailed Solution

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Calculation:

Given

F2 Savita ENG 23-10-23 D6

Total load on beam (W) = \({1\over 2}\times w\times l\) , (acting at \(l\over 3 \) from the left end or \(2l\over 3\) from the right end).

Bending moment at A (MA) = (\(1\over 2\) × \(w\) × \(l\)) ×\(l\over 3\)

Bending moment at A (MA) = \(wl^2\over 6\)

Hence option (4) is the correct answer.

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