Ao 3 KN VB C 6 kN VD E -1.26 m-1.26 m-1.26 m 1 kN /F ↑ 1.2 m G 2. Determine the force in each member of the half hip truss shown. State whether each member is in tension of compression. Reaction at G is a roller support. (Ans: FAB = 5.80 KN (C), FAC = 4.20 KN (T), FBC = 0 KN, FCE = 4.20 KN (T), FBE = 1.450 kN (T), FBD = 5.25 KN (C), FDE = 6 KN (C), FDF = 5.25 KN (C), FEF = 7.25 KN (T), FEG = 0 KN, FFG = 6 KN (C)) FOLLOW THIS FORMAT BELOW I WILL UPVOTE

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Ao 2.25 m E pivot point 2.25 m Ex E 3 KN 1.26 m-1.26 m-1.26 m Ey VB C E 1.8 m FOLLOW THIS FORMAT BELOW I WILL UPVOTE 1.8 m Fy Joint E: For FEF: VD Solve for Ey: (1) For FAB: 6 kN E 1.8 m 2.8814, 2.25 1.8 E₁, = 30 kN For FAF: FAB = B B 1.8 m 1.8 m 4 FAF = FEF 30 1.8 2.25 FAB 38.4187 1.8 2.8814 VF = 1 kN 1.8 m FAB = 24 KN (T) ↑ 1.2 m FAF 38.4187 2.25 2.8814 G 1.8(38.4187) 2.8814 FAF = 30 KN (C) с H C 2. Determine the force in each member of the half hip truss shown. State whether each member is in tension of compression. Reaction at G is a roller support. (Ans: FAB = 5.80 KN (C), FAC = 4.20 KN (T), FBC = 0 KN, FCE = 4.20 KN (T), FBE = 1.450 KN (T), FBD = 5.25 KN (C), FDE = 6 KN (C), FDF = 5.25 KN (C), FEF = 7.25 KN (T), FEG = 0 KN, FFG = 6 KN (C)) 10 kN 2.25(38.4187) 2.8814 1.8 m H 10 kN 1.8 m 2.8814, E₁ +F₁ = 10 E, +40 = 10 1.8 D D FEF FEA Reactions: → FEF= SHOW FBD → ΣΕ = 0 ΣΕ = 0 2.25 E,= 30 kN E, +F, -10=0 E, +F, = 10 ΣΜ = 0 F,(1.8)-10(7.2)=0 [1.8F, = 72] F, = 40 KN E = -30 KN E, = 30 kN,↓↓ 1.8(30) 2.25 FEF = 24 KN (C) Joint A: For FEA: 2.8814 1.8 FAE = 38.4187 kN FAF ; A 30 2.8814 2.25 2.8814(30) 2.25 F = 38.4187 N (T) EA 2.25 2.25 F FAR E, = 0 → F, = 40 kN, 1 1.8 (1) 2.8814 FAE38.4187 kN B