双柱阶梯基础计算.docx
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双柱阶梯基础计算.docx
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双柱阶梯基础计算
双柱阶梯基础计算
项目名称日期
设计者校对者
一、设计依据
《建筑地基基础设计规范》(GB50007-2011)①
《混凝土结构设计规范》(GB50010-2010)②
二、示意图
三、计算信息
构件编号:
JC-1
计算类型:
验算截面尺寸
1.几何参数
台阶数n=3
矩形柱宽
bc=400mm矩形柱高
hc=400mm
矩形柱宽
bc=800mm矩形柱高
hc=400mm
基础高度
h仁450mm
基础高度
h2=300mm
基础高度
h3=300mm
一阶长度
b1=600mm
b3=500mm
一阶宽度
a仁600mm
a3=500mm
二阶长度
b2=600mm
b4=500mm
二阶宽度
a2=600mm
a4=500mm
一阶长度
b1=600mm
b4=500mm
一阶宽度
a仁600mm
a4=500mm
二阶长度
b2=600mm
b5=500mm
二阶宽度
a2=600mm
a5=500mm
三阶长度
b3=500mm
b6=500mm
三阶宽度
a3=500mm
a6=500mm
2.材料信息
基础混凝土等级柱混凝土等级:
C30ftb=1.43N/mm
C30ft_c=1.43N/mm
fcb=14.3N/mm
fc_c=14.3N/mm
钢筋级别:
3.计算信息
结构重要性系数
基础埋深:
HPB300
fy=270N/mm
丫0=1.0
dh=1.500m
纵筋合力点至近边距离:
as=40mm
4.作用在基础顶部荷载标准值
Fgk1=200.000kNFqk1=100.000kN
Fgk2=100.000kNFqk2=50.000kN
Fk=Fgk1/rg1+Fqk1/rq1+Fgk2/rg2+Fqk2/rq2=200.000/1.200+100.000/1.400+100.000/1.200+50.000/
1.400=357.143kN
Mxk=Mgxk1+Fgk1*(A2-A1)+Mqxk1+Fqk1*(A2-A1)+Mgxk2+Fgk2*(A2-A1)+Mqxk2+Fqk2*(A2-A1)
=80.000+200.000*(1.700-1.900)+0.000+100.000*(1.700-1.900)+80.000+100.000*(1.700-1.900)+0.000
+50.000*(1.700-1.900)
=70.000kN*m
Myk=Mgyk1-Fgk1*(Bx/2-B1)+Mqyk1-Fqk1*(Bx/2-B1)+Mgyk2+Fgk2*(Bx/2-B1)+Mqyk2+Fqk2*(Bx/2-B1)
=90.000-200.000*(4.400/2-1.900)/2+0.000-100.000*(4.400/2-1.900)+90.000+100.000*(4.400/2-1.900)+0.000+50.000*(4.400/2-1.900)
=135.000kN*m
Vxk=Vgxk1+Vqxk1+Vgxk2+Vqxk2=80.000+0.000+80.000+0.000=160.000kN
Vyk=Vgyk1+Vqyk1+Vgyk2+Vqyk2=90.000+0.000+90.000+0.000=180.000kN
F1=rg*Fgk1+rq*Fqk1+rg*Fgk2+rq*Fqk2
=1.20*200.000+1.40*100.000+1.20*100.000+1.40*50.000
=570.000kN*m
Mx1=rg*(Mgxk1+Fgk1*(A2-A1))+rq*(Mqxk1+Fqk1*(A2-A1))+rg*(Mgxk2+Fgk2*(A2-A1))+rq*(Mqxk2+Fqk2*(A2-A1))
=1.20*(80.000+200.000*(1.700-1.900))+1.40*(0.000+100.000*(1.700-1.900))+1.20*(80.000+100.000
*(1.700-1.900))+1.40*(0.000+50.000*(1.700-1.900))
=78.000kN*m
My仁rg*(Mgyk1-Fgk1*(Bx/2-B1))+rq*(Mqyk1-Fqk1*(Bx/2-B1))+rg*(Mgyk2+Fgk2*(Bx/2-B1))+rq*(Mq
yk2+Fqk2*(Bx/2-B1)))
=1.20*(90.000-200.000*(4.400/2-1.900))+1.40*(0.000-100.000*(4.400/2-1.900))+1.20*(90.000+100
.000*(4.400/2-1.900))+1.40*(0.000+50.000*(4.400/2-1.900))
=180.000kN*m
Vx仁rg*Vgxk1+rq*Vqxk1+rg*Vgxk2+rq*Vqxk2=1.40*80.000+1.40*0.000+1.20*80.000+1.40*0.000=19
2.000kN
Vy仁rg*Vgyk1+rq*Vqyk1+rg*Vgyk2+rq*Vqyk2=1.40*90.000+1.40*0.000+1.20*90.000+1.40*0.000=21
6.000kN
F2=1.35*Fk=1.35*357.143=482.143kN
Mx2=1.35*Mxk=1.35*177.000=238.950kN*m
My2=1.35*Myk=1.35*102.000=137.700kN*m
Vx2=1.35*Vxk=1.35*160.000=216.000kN
Vy2=1.35*Vyk=1.35*180.000=243.000kN
F=max(|F1|,|F2|)=max(|570.000|,|482.143|)=570.000kN
Mx=max(|Mx1|,|Mx2|)=max(|78.000|,|238.950|)=238.950kN*m
My=max(|My1|,|My2|)=max(|159.000|,|137.700|)=159.000kN*m
Vx=max(|Vx1|,|Vx2|)=max(|192.000|,|216.000|)=216.000kN
Vy=max(|Vy1|,|Vy2|)=max(|216.000|,|243.000|)=243.000kN
5.修正后的地基承载力特征值
fa=150.000kPa
四、计算参数
1.基础总长Bx=B1+B2+Bc=1.900+1.900+0.600=4.400m
2.基础总宽By=A1+A2=1.900+1.700=3.600m
A1=a1+a2+a3+max(hc1,hc2)/2=0.600+0.600+0.500+max(0.400,0.400)/2=1.900m
A2=a4+a5+a6+max(hc1,hc2)/2=0.500+0.500+0.500+max(0.400,0.400)/2=1.700m
B仁b1+b2+b3+bc1/2=0.600+0.600+0.500+0.400/2=1.900m
B2=b4+b5+b6+bc2/2=0.500+0.500+0.500+0.800/2=1.900m
3.基础总高H=h1+h2+h3=0.450+0.300+0.300=1.050m
4.底板配筋计算高度ho=h1+h2+h3-as=0.450+0.300+0.300-0.040=1.010m
5.基础底面积A=Bx*By=4.400*3.600=15.840m
6.Gk=y*Bx*By*dh=20.000*4.400*3.600*1.500=475.200kN
G=1.35*Gk=1.35*475.200=641.520kN
五、计算作用在基础底部弯矩值
Mdxk=Mxk-Vxk*H=177.000-160.000*1.050=9.000kN*m
Mdyk=Myk+Vyk*H=102.000+180.000*1.050=291.000kN*m
Mdx=Mx-Vx*H=238.950-216.000*1.050=12.150kN*m
Mdy=My+Vy*H=59.000+243.000*1.050=414.150kN*m
六、验算地基承载力
1.验算轴心荷载作用下地基承载力
pk=(Fk+Gk)/A=(357.143+475.200)/15.840=52.547kPa【①5.2.2-2】
因丫o*pk=1.0*52.547=52.547kPa 轴心荷载作用下地基承载力满足要求 2.验算偏心荷载作用下的地基承载力 exk=Mdyk/(Fk+Gk)=174.000/(357.143+475.200)=0.209m 因|exk|wBx/6=0.733mx方向小偏心,由公式【①5.2.2-2】和【①5.2.2-3】推导Pkmax_x=(Fk+Gk)/A+6*|Mdyk|/(Bx2*By) 2 =(357.143+475.200)/15.840+6*1174.000|/(4.400*3.600) =67.526kPa Pkmin_x=(Fk+Gk)/A-6*|Mdyk|/(Bx2*By) =(357.143+475.200)/15.840-6*1174.000|/(4.4002*3.600) =37.568kPa eyk=Mdxk/(Fk+Gk)=-14.500/(357.143+475.200)=-0.017m 因|eyk|wBy/6=0.600my方向小偏心 Pkmax_y=(Fk+Gk)/A+6*|Mdxk|/(By2*Bx)=(357.143+475.200)/15.840+6*1-14.500|/(3.6002*4.400) =54.073kPa Pkmin_y=(Fk+Gk)/A-6*|Mdxk|/(By2*Bx) 2=(357.143+475.200)/15.840-6*1-14.500|/(3.600*4.400) =51.021kPa 3.确定基础底面反力设计值 Pkmax=(Pkmax_x-pk)+(Pkmax_y-pk)+pk =(67.526-52.547)+(54.073-52.547)+52.547 =69.052kPa Yo*Pkmax=1.0*69.052=69.052kPaw1.2*fa=1.2*150.000=180.000kPa 偏心荷载作用下地基承载力满足要求 七、基础冲切验算 1.计算基础底面反力设计值 1.1计算x方向基础底面反力设计值 ex=Mdy/(F+G)=385.800/(570.000+641.520)=0.318m 因exwBx/6.0=0.733mx方向小偏心 Pmax_x=(F+G)/A+6*|Mdy|/(Bx2*By)=(570.000+641.520)/15.840+6*|385.800|/(4.4002*3.600) =109.698kPa Pmin_x=(F+G)/A-6*|Mdy|/(Bx2*By) 2=(570.000+641.520)/15.840-6*|385.800|/(4.400*3.600) =43.272kPa 1.2计算y方向基础底面反力设计值 ey=Mdx/(F+G)=-16.200/(570.000+641.520)=-0.013m 因ey Pmax_y=(F+G)/A+6*|Mdx|/(By*Bx) 2 =(570.000+641.520)/15.840+6*|-16.200|/(3.600*4.400) =78.189kPa Pmin_y=(F+G)/A-6*|Mdx|/(By2*Bx) =(570.000+641.520)/15.840-6*|-16.200|/(3.6002*4.400) =74.780kPa 1.3因Md炉0Mdyz0 Pmax=Pmax_x+Pmax_y-(F+G)/A=109.698+78.189-(570.000+641.520)/15.840=111.402kPa 1.4计算地基净反力极值 Pjmax=Pmax-G/A=111.402-641.520/15.840=70.902kPa Pjmax_x=Pmax_x-G/A=101.537-641.520/15.840=61.037kPa Pjmax_y=Pmax_y-G/A=77.432-641.520/15.840=36.932kPa 2.验算柱边冲切 YH=h1+h2+h3=1.050m,YB=bc1/2+bc2/2+Bc=1.100m,YL=max(hc1,hc2)=0.400m YB1=B1+Bc/2=2.200m,YB2=B2+Bc/2=2.200m,YL1=A1=1.900m,YL2=A2=1.700m YHo=YH-as=1.010m 2.1因800 2.2x方向柱对基础的冲切验算 x冲切位置斜截面上边长x冲切位置斜截面下边长x冲切不利位置x冲切面积 bt=YB=1.100m bb=YB+2*YHo=3.120m bm=(bt+bb)/2=(1.100+3.120)/2=2.110m 2 /2-(1.700-0.400/2 2 /2-(1.700-0.400/ =max((2.200-1.100/2-1.010)*(1.700+0.400/2+1.010)+(2.200-1.100/2-1.010) 2 -1.010)/2,(2.200-1.100/2-1.010)*(1.700+0.400/2+1.010)+(2.200-1.100/2-1.010) 2 2-1.010)/2) =max(1.947,1.947) =1.947m y冲切截面上的地基净反力设计值 Fly=Aly*Pjmax=1.947*70.902=138.057kN 丫o*Fly=1.0*138.057=138.06kN 丫o*Fly<0.7*3hp*ft_b*am*YHo(6.5.5-1) =0.7*0.979*1.43*1410*1010 =1395.83kN y方向柱对基础的冲切满足规范要求 3.验算h2处冲切 YH=h1+h2=0.750m YB=bc1/2+bc2/2+bc+b3+b6=2.200m YL=max(hc1,hc2)+a3+a6=1.400m YB1=B1+Bc/2=2.200m,YB2=B2+Bc/2=2.200m,YL1=A1=1.900m,YL2=A2=1.700m YHo=YH-as=0.710m 2,(YL2-YL/2-YHo)*(YB+2*YHo)+(YL2-YL/2-YHo) =max((2.200-2.200/2-0.710)*(1.700+1.400/2+0.710)+(2.200-2.200/2-0.710) 2 -0.710)/2,(2.200-2.200/2-0.710)*(1.700+1.400/2+0.710)+(2.200-2.200/2-0.710) 2 2-0.710)/2) =max(1.247,1.247) =1.247m y冲切截面上的地基净反力设计值 Fly=Aly*Pjmax=1.247*70.902=88.408kN 丫o*Fly=1.0*88.408=88.41kN 丫o*Fly<0.7*3hp*ft_b*am*YHo(6.5.5-1) =0.7*1.000*1.43*2110*710 =1499.60kN y方向变阶处对基础的冲切满足规范要求 4.验算h3处冲切 YH=h3=0.300m YB=bc1/2+bc2/2+bc+b2+b3+b5+b6=3.300m 2 /2-(1.700-1.400/2 2 /2-(1.700-1.400/ YL=max(hc1,hc2)+a2+a3+a5+a6=2.500m YB1=B1+Bc/2=2.200m,YB2=B2+Bc/2=2.200m,YL1=A1=1.900m,YL2=A2=1.700m YHo=YH-as=0.260m =926.53kN x方向变阶处对基础的冲切满足规范要求 4.3y方向变阶处对基础的冲切验算 y冲切位置斜截面上边长at=YL=2.500m y冲切位置斜截面下边长ab=YL+2*YHo=3.020m y冲切面积 22 Aly=max((YB1-YB/2-YHo)*(YL2+YL/2+YHo)+(YB1-YB/2-YHo)/2-(YL2-YL/2-YHo)/2,(YB2-YB/2-YHo)*(YL2 22 2 /2-(1.700-2.500/2 2 /2-(1.700-2.500/ +YL/2+YHo)+(YB2-YB/2-YHo)/2)-(YL2-YL/2-YHo)/2 Fly=Aly*Pjmax=0.955*70.902=67.705kN 丫o*Fly=1.0*67.705=67.70kN 丫o*Fly<0.7*3hp*ft_b*am*YHo(6.5.5-1) =0.7*1.000*1.43*2760*260 =718.32kN y方向变阶处对基础的冲切满足规范要求 八、柱下基础的局部受压验算 因为基础的混凝土强度等级大于等于柱的混凝土强度等级,所以不用验算柱下扩展基础顶面的局部受压承载力。 九、基础受弯计算 1.因Mdx>0,Mdy>0此基础为双向受弯 2.计算1-1截面弯矩 因ex Pj仁max(((Bx-a1)*(Pxmax-Pmin_x)/Bx)+Pmin_x-G/A,((Bx-a2)*(Pxmax-Pmin_x)/Bx)+Pmin_x-G/A) =max(((4.400-0.600)*(101.537-51.433)/4.400)+51.433-641.520/15.840,((4.400-0.600)*(101.537-51.433)/4.400)+51.433-641.520/15.840) =54.204kPa 因eywBy/6=0.600my方向小偏心 Pj2=max(((By-a1)*(Pymax-Pymin)/By)+Pymin-G/A,((By-a2)*(Pymax-Pymin)/By)+Pymin-G/A) =max(((3.600-0.600)*(77.432-75.538)/3.600)+75.538-641.520/15.840,((3.600-0.600)*(77.432-75.538)/3.600)+75.538-641.520/15.840) =36.616kPa b=bc1/2+bc2/2+Bc=0.400/2+0.800/2+0.600=1.200m h=max(hc1,hc2)=max(0.400,0.400)=0.400m 3x=1.077 3y=1.025 2 MI_1=1/48*3x*(Bx-b)*(2*By+h)*(Pj1+Pjmax_x) =1/48*1.077*(4.400-1.200)2*(2*3.600+0.400)*(54.204+61.037) =201.30kN*m MII_1=1/48*3y*(By-h)2*(2*Bx+b)*(Pj2+Pjmax_y) =1/48*1.025*(3.600-0.400)'*(2*4.400+1.200)*(36.616+36.932) =160.81kN*m 3.计算ll-ll截面弯矩 因x方向小偏心 Pj1=max(((Bx-a1-a2)*(Pxmax-Pmin_x)/Bx)+Pmin_x-G/A,((Bx-a3-a4)*(Pxmax-Pmin_x)/Bx)+Pmin_x-G/A) =max(((4.400-0.600-0.600)*(101.537-51.433)/4.400)+51.433-641.520/15.840,((4.400-0.500-0.500)*(101.537-51.433)/4.400)+51.433-641.520/15.840) =49.649kPa 因y方向小偏心 Pj2=max(((By-a1-a2)*(Pymax-Pymin)/By)+Pymin-G/A,((By-a3-a4)*(Pymax-Pymin)/By)+Pymin-G/A) =max(((3.600-0.600-0.600)*(77.432-75.538)/3.600)+75.538-641.520/15.840,((3.600-0.500-0.500)* (77.432-75.538)/3.600)+75.538-641.520/15.840) =36.406kPa 3x=1.045 3y=1.022 MI_2=max(1/48*3x*(Bx-b-b3)*(2*By+h+a3)*(Pj1+Pjmax_x),1/48*3x*(Bx-b-b6)2*(2*By+h+a6)*(P j1+Pjmax_x)) =max(1/48*1.045*(4.400-1.200-0.500)2*(2*3.600+0.400+0.500)*(49.649+61.037),1/48*1.045*(4 •400-1.200-0.500)2*(2*3.600+0.400+0.500)*(49.649+61.037)) =142.35kN*m 22 MII_2=max(1/48*3y*(By-h-a3)*(2*Bx+b+b3)*(Pj2+Pjmax_y),1/48*3y*(By-h-a6)*(2*Bx+b+b6)*( Pj2+Pjmax_y)) =max(1/48*1.022*(3.600-0.400-0.500)2*(2*4.400+1.200+0.500)*(36.406+61.037),1/48*1.022*(3 .600-0.400-0.500)2*(2*4.400+1.200+0.500)*(36.406+61.037)) =119.54kN*m 4.计算III-III截面弯矩 因x方向小偏心 Pj仁max(((Bx-a1-a2-a3)*(Pxmax-Pmin_x)/Bx)+Pmin_x-G/A,((Bx-a4-a5-a6)*(Pxmax-Pmin_x)/Bx)+P min_x-G/A)=max(((4.400-0.600-0.600-0.500)*(101.537-51.433)/4.400)+51.433-641.520/15.840,((4.400-0.500- 0.500-0.500)*(101.537-51.433)/4.400)+51.433-641.520/15.840) =43.956kPa 因y方向
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