Please show solutions on how to get the 27.57 value. The circle green in the figure.

 

Civil engineering- steel design

 

Note: I thought the value is 86.617 . Feel free to correct me . What should put in circle in the figure.

 

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Step 2: Calculation of least moment of inertia 7- (100×25) × 12-5+ (150 x 25)- (25+75) (100x25)+ (150x25) 65 mm Las = [100x216² (160 (25) +52,5"] + [25-150) + (rm))) = 1-864x10² mm NEW, = (100x25)x 50+ (150x25) x)2-5 2500+ 3750 = 295 mm lyy = [25> 100³ (25-10-22:5] [15 (1501)-15] = 4388020-833 mm From above two cases. Imin 1388020-833 mm" Step 3: Load capacity calculation Now, Euler stress (Fe) = ².E Also, 4.71× *** JE 2510 Total cross-sectional area = A₁ + A₂ = 2500+ 3750 = 6250 mm 2 Least radius of gyration (romain) = √√Imin (K4/² = 26-197 Effective length (KL) = 1x4 = 4m = 4000 mm :: Slendernes ration (KL/min) = S 4-71x Theoritical critical stren 100 R 4000 26.497 for = (0.658fa/fe), fy (6.658 21/7-5) 218 = 5.734 MPa nominal strength > P₁ = fer. Ag (ü) ASD:- Desige strength = 5.734 x 6250 100 (1) LRFD- Design strength = 4.Pa 43 88020-833 6250 It'v 200x10 150.96 = 35839-73 N = 35.84 KN 200×10 √218 =133-755 is given by AlSC Equ²¹ F3-2 as = 0.9 x35-84 = 32-256 KN 175 175 = 150.96 < 200 (ex) Pr/52 = = 35-81/1-67 = 21.461 KN = 27.57 N/mm²

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Determine the maximum safe capacity of an axially loaded hinged ends column having an unsupported length of 4m. Fy = 248 MPa and E = 200 GPa. Use AISC Specifications. 25 CIVIL ENGINEERING: STEEL DESIGN 100 25 175