1、资料内容仅供您学习参考,如有不当或者侵权,请联系改正或者删除。 工程力学与建筑结构第四次作业1. =156=160MP2. 皆为几何不变体系3.=9.9=90MP安全4.5.3PF1 =PF2 =F3 =1.5P226. 圆形: 正方形: 长方形: 圆环形1:1.05:2.10:5.727. 答案: As=1133mm解题提示: 取as=35mm, h055035515mm。2dMfcbh0 10 200 5152 =1.20 125 1020.28286s =1 1 2 s 1 1 2 0.2828 0.3409 0.396 ( 查表91) fcbh012.5 200 390故须按双筋截面配
2、筋。( 3) 取 = b=0.544, 即 s = sb0.396。dMf y (h0 as )sb fcbh0 2 1.2 180 106 0.396 12.5 200 3902 = 594.5mmAs =2310 (390 35)( 4) As = 1 ( fc bh0 + f y As )( 0.54412.5200390310594.5) f y/3102305.5mm29.答案: As= As=765mm2解 题 提 示 : (1) 资 料 : C20 混 凝 土 fc = 10N /mm2; 级 钢 筋f y = f y 310N / mm2; 取as = as 40mm, 则h0
3、 = has45040=410mm。( 2) 内力计算: 柱所承受的轴向压力设计值N =( GNGKQNQK )1.0 1.0 (1.05 150 1.20 200) 397.5KN(3)偏心距e0及偏心距增大系数 的确定: 0l0h4500/450=108,应考虑纵向弯曲的影响。e0300mm h/30450/3015mm,按实际偏心距e0300mm计算。1 = 0.5 fcA0.5 10 300 450 =1.4 1, 取 11; d N1.2 397500由于l0h1015, 故取 21; 211400 e0h0l01=121+1021 1 1.0981300410h1400(4)判别大小偏压: 2 压区高度x =dN 1.2 397500 =159mm bh0 80mme = e0 h2 +as1.098 300 450/ 2 + 40 514.4mmxdcNe f bx h02As = As(f y h0 as)1.2 397500 514.4 10 300 159(410 159/ 2)310(410 40)765mm2minbh0 0.2% 300 410 246mm23
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