Q. A cantilever beam 6 m long carries four point loads of 5 kN, 10 kN, 15 kN and 20 kN are acting at 2 m, 3 m, 4 m and 6 m respectively from fixed end. Draw SFD and B.M.D. 21 February 2024 by civilguruvu.com SOLUTION; Total load = 5 + 10 + 15 + 20 = 50 kN SHEAR FORCE DIAGRAM F A =F max = 50 kN (5 + 10 + 15 + 20) (same in between A &E) F{B} = (just left of B)= 20kN F{c} = (just left ofC )=35 kN FC = (just right of C)= 20kN F D =(just left ofD )=45 kN F D =(just right ofD )=35 kN F E =(just left ofE )=50 kN F E =(just right ofE )=45 kN BENDING MOMENT DIAGRAM M{B} = 0 M{C} = – 20 * 2 = – 40kNm M{D} = – 15 * 1 – 20 * 3 = – 75kNm M{E} = – 10 * 1 – 15 * 2 – 20 * 4 = – 120 kNm M max =MA = -5 * 2 -10 * 3 -15 * 4 – 20 * 6 = – 10 – 30 – 60 – 120 = – 220 kN Max BM occurs at Fixed end A M max =-220 kNm
