结构构件计算书
=1.000*3.000*12.155*160000.000/1000 =5834.40kN
柱下基础局部受压承载力满足规范要求 十、基础受弯计算
1. 因Mdx>0 , Mdy>0 此基础为双向受弯 2. 计算I-I截面弯矩
因 ex ≤Bx/6=0.367m x方向小偏心 a=(Bx-bc)/2=(2.200-0.400)/2=0.900m
Pj1=((Bx-a)*(Pmax_x-Pmin_x)/Bx)+Pmin_x-G/A
=((2.200-0.900)*(279.221-106.388)/2.200)+106.388-235.224/4.840 =159.917kPa
因 ey ≤By/6=0.367m y方向小偏心 a=(By-hc)/2=(2.200-0.400)/2=0.900m
Pj2=((By-a)*(Pmax_y-Pmin_y)/By)+Pmin_y-G/A
=((2.200-0.900)*(196.912-188.697)/2.200)+188.697-235.224/4.840 =144.951kPa βx=1.083 βy=1.024
MI_1=1/48*βx*(Bx-bc)2
*(2*By+hc)*(Pj1+Pjmax_x)
=1/48*1.083*(2.200-0.400)2
*(2*2.200+0.400)*(159.917+230.621) =137.03kN*m
MII_1=1/48*βy*(By-hc)2
*(2*Bx+bc)*(Pj2+Pjmax_y)
=1/48*1.024*(2.200-0.400)2
*(2*2.200+0.400)*(144.951+148.312) =97.32kN*m 十一、计算配筋 10.1 计算Asx
Asx_1=γo*MI_1/(0.9*(H-as)*fy)
=1.0*137.03*106
/(0.9*(400.000-70.000)*360)
=1281.6mm2
Asx1=Asx_1=1281.6mm2
Asx=Asx1/By=1281.6/2.200=583mm2
/m Asx=max(Asx, ρmin*H*1000)
=max(583, 0.150%*400*1000)
=600mm2
/m
选择钢筋14@200, 实配面积为770mm2
/m。 10.2 计算Asy
Asy_1=γo*MII_1/(0.9*(H-as)*fy)
=1.0*97.32*106
/(0.9*(400.000-70.000)*360)
=910.2mm2
Asy1=Asy_1=910.2mm2
Asy=Asy1/Bx=910.2/2.200=414mm2
/m Asy=max(Asy, ρmin*H*1000)
=max(414, 0.150%*400*1000)
=600mm2
/m
第6页,共7页
结构构件计算书
选择钢筋14@200, 实配面积为770mm/m。
2
第7页,共7页