1)相对界限受压区高度 ξb
ξb = β1 / [1 + fy / (Es * εcu)]=0.80/[1+300/(200000*0.0033)] = 0.550
受压区高度 x = ho - [ho ^ 2 - 2 * M / (α1 * fc * b)] ^ 0.5
= 465-[465^2-2* 200000000/(1.00*11.94*200)]^0.5 = 244.27mm
相对受压区高度 ξ = x / ho = 244.27/465 = 0.525 ≤ ξb = 0.550
纵向受拉钢筋 As = α1 * fc * b * x / fy = 1.00*11.94*200*244.27/ 300 = 1944mm
配筋率 ρ = As / (b * ho) = 1944/(200*465) = 2.09%
最小配筋率 ρmin = Max{0.20%, 0.45ft/fy} = 0.20%
ρ≥ ρmin , 满足最小配筋率的要求
2)对于第二项,由于受压区高度超限,故需加高截面------即混凝土梁的话,配多少钢筋都不可以承受300KN.M
内容全部来源于网络收集,如有侵权,请联系网站删除!