Question 7.130: Draw the shear and moment diagrams for the beam ABC.
Draw the shear and moment diagrams for the beam ABC.
Support Reactions: The 6 kN load can be replacde by an equivalent force and couple moment at B as shown on FBD (a).
\hookrightarrow +\Sigma M_A=0 ; \quad F_{C D} \sin 45^{\circ}(6)-6(3)-9.00=0 \quad F_{C D}=6.364 \mathrm{kN}
+↑\Sigma F_y=0 ; \quad A_y+6.364 \sin 45^{\circ}-6=0 \quad A_y=1.50 \mathrm{kN}
Shear and Moment Functions: \text { For } \mathbf{0} \leq \boldsymbol{x}<\mathbf{3} \mathbf{m} [\mathrm{FBD}(\mathrm{b})] \text {, }
+↑ \Sigma F_y=0 ; \quad 1.50-V=0 \quad V=1.50 \mathrm{kN}
\hookrightarrow +\Sigma M=0 ; \quad M-1.50 x=0 \quad M=\{1.50 x\} \mathrm{kN} \cdot \mathrm{m}For 3 m < x ≤ 6 m [FBD (c)],
+↑ \Sigma F_y=0 ; \quad V+6.364 \sin 45^{\circ}=0 \quad V=-4.50 \mathrm{kN}
\hookrightarrow +\Sigma M=0 ; \quad 6.364 \sin 45^{\circ}(6-x)-M=0M=\{27.0-4.50 x\} \mathrm{kN} \cdot \mathrm{m}
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