第1个回答 2010-10-20
随便说一下 :
那个GK还要乘以一个S ,刚才忘记写了。
第2个回答 2010-10-21
你的地质报告看了么,持力层是什么土啊!这些你需要告我,而且你需要独立基础还是桩基础啊!请具体点!我的邮箱是[email protected]欢迎交流!
F = 700.00 kN
Mx = 80.00 kN•m
My = 0.00 kN•m
Vx = 13.00 kN
Vy = 0.00 kN
折减系数Ks = 1.00
(2)作用在基础底部的弯矩设计值
绕X轴弯矩: M0x = Mx-Vy•(H1+H2) = 80.00-0.00×0.45 = 80.00 kN•m
绕Y轴弯矩: M0y = My+Vx•(H1+H2) = 0.00+13.00×0.45 = 5.85 kN•m
(3)作用在基础底部的弯矩标准值
绕X轴弯矩: M0xk = M0x/Ks = 80.00/1.00 = 80.00 kN•m
绕Y轴弯矩: M0yk = M0y/Ks = 5.85/1.00 = 5.85 kN•m
4.材料信息:
混凝土: C30 钢筋: HRB335(20MnSi)
5.基础几何特性:
底面积:S = (A1+A2)(B1+B2) = 2.00×2.00 = 4.00 m2
绕X轴抵抗矩:Wx = (1/6)(B1+B2)(A1+A2)2 = (1/6)×2.00×2.002 = 1.33 m3
绕Y轴抵抗矩:Wy = (1/6)(A1+A2)(B1+B2)2 = (1/6)×2.00×2.002 = 1.33 m3
三、计算过程
1.修正地基承载力
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
fa = fak+ηb•γ•(b-3)+ηd•γm•(d-0.5) (式5.2.4)
式中:fak = 226.00 kPa
ηb = 0.00,ηd = 1.00
γ = 18.00 kN/m3 γm = 18.00 kN/m3
b = 2.00 m, d = 2.00 m
如果 b < 3m,按 b = 3m, 如果 b > 6m,按 b = 6m
如果 d < 0.5m,按 d = 0.5m
fa = fak+ηb•γ•(b-3)+ηd•γm•(d-0.5)
= 226.00+0.00×18.00×(3.00-3.00)+1.00×18.00×(2.00-0.50)
= 253.00 kPa
修正后的地基承载力特征值 fa = 253.00 kPa
2.轴心荷载作用下地基承载力验算
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
pk = (Fk+Gk)/A (5.2.2-1)
Fk = F/Ks = 700.00/1.00 = 700.00 kN
Gk = 20S•d = 20×4.00×2.00 = 160.00 kN
pk = (Fk+Gk)/S = (700.00+160.00)/4.00 = 215.00 kPa ≤ fa,满足要求。
3.偏心荷载作用下地基承载力验算
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
当e≤b/6时,pkmax = (Fk+Gk)/A+Mk/W (5.2.2-2)
pkmin = (Fk+Gk)/A-Mk/W (5.2.2-3)
当e>b/6时,pkmax = 2(Fk+Gk)/3la (5.2.2-4)
X、Y方向同时受弯。
偏心距exk = M0yk/(Fk+Gk) = 5.85/(700.00+160.00) = 0.01 m
e = exk = 0.01 m ≤ (B1+B2)/6 = 2.00/6 = 0.33 m
pkmaxX = (Fk+Gk)/S+M0yk/Wy
= (700.00+160.00)/4.00+5.85/1.33 = 219.39 kPa
偏心距eyk = M0xk/(Fk+Gk) = 80.00/(700.00+160.00) = 0.09 m
e = eyk = 0.09 m ≤ (A1+A2)/6 = 2.00/6 = 0.33 m
pkmaxY = (Fk+Gk)/S+M0xk/Wx
= (700.00+160.00)/4.00+80.00/1.33 = 275.00 kPa
pkmax = pkmaxX+pkmaxY-(Fk+Gk)/S = 219.39+275.00-215.00 = 279.39 kPa
≤ 1.2×fa = 1.2×253.00 = 303.60 kPa,满足要求。
4.基础抗冲切验算
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
Fl ≤ 0.7•βhp•ft•am•h0 (8.2.7-1)
Fl = pj•Al (8.2.7-3)
am = (at+ab)/2 (8.2.7-2)
pjmax,x = F/S+M0y/Wy = 700.00/4.00+5.85/1.33 = 179.39 kPa
pjmin,x = F/S-M0y/Wy = 700.00/4.00-5.85/1.33 = 170.61 kPa
pjmax,y = F/S+M0x/Wx = 700.00/4.00+80.00/1.33 = 235.00 kPa
pjmin,y = F/S-M0x/Wx = 700.00/4.00-80.00/1.33 = 115.00 kPa
pj = pjmax,x+pjmax,y-F/S = 179.39+235.00-175.00 = 239.39 kPa
(1)柱对基础的冲切验算:
H0 = H1+H2-as = 0.20+0.25-0.08 = 0.37 m
X方向:
Alx = 1/2•(A1+A2)(B1+B2-B-2H0)-1/4•(A1+A2-A-2H0)2
= (1/2)×2.00×(2.00-0.30-2×0.37)-(1/4)×(2.00-0.40-2×0.37)2
= 0.78 m2
Flx = pj•Alx = 239.39×0.78 = 185.55 kN
ab = min{A+2H0, A1+A2} = min{0.40+2×0.37, 2.00} = 1.14 m
amx = (at+ab)/2 = (A+ab)/2 = (0.40+1.14)/2 = 0.77 m
Flx ≤ 0.7•βhp•ft•amx•H0 = 0.7×1.00×1430.00×0.770×0.370
= 285.18 kN,满足要求。
Y方向:
Aly = 1/4•(2B+2H0+A1+A2-A)(A1+A2-A-2H0)
= (1/4)×(2×0.30+2×0.37+2.00-0.40)(2.00-0.40-2×0.37)
= 0.63 m2
Fly = pj•Aly = 239.39×0.63 = 151.32 kN
ab = min{B+2H0, B1+B2} = min{0.30+2×0.37, 2.00} = 1.04 m
amy = (at+ab)/2 = (B+ab)/2 = (0.30+1.04)/2 = 0.67 m
Fly ≤ 0.7•βhp•ft•amy•H0 = 0.7×1.00×1430.00×0.670×0.370
= 248.15 kN,满足要求。
5.基础受压验算
计算公式:《混凝土结构设计规范》(GB 50010-2002)
Fl ≤ 1.35•βc•βl•fc•Aln (7.8.1-1)
局部荷载设计值:Fl = 700.00 kN
混凝土局部受压面积:Aln = Al = B×A = 0.30×0.40 = 0.12 m2
混凝土受压时计算底面积:Ab = min{3B, B1+B2}×min{A+2B, A1+A2} = 0.90 m2
混凝土受压时强度提高系数:βl = sq.(Ab/Al) = sq.(0.90/0.12) = 2.74
1.35βc•βl•fc•Aln
= 1.35×1.00×2.74×14300.00×0.12
= 6344.27 kN ≥ Fl = 700.00 kN,满足要求。
6.基础受弯计算
计算公式:
按《简明高层钢筋混凝土结构设计手册(第二版)》中下列公式验算:
MⅠ=β/48•(L-a)2(2B+b)(pjmax+pjnx) (11.4-7)
MⅡ=β/48•(B-b)2(2L+a)(pjmax+pjny) (11.4-8)
(1)柱根部受弯计算:
G = 1.35Gk = 1.35×160.00 = 216.00kN
Ⅰ-Ⅰ截面处弯矩设计值:
pjnx = pjmin,x+(pjmax,x-pjmin,x)(B1+B2+B)/2/(B1+B2)
= 170.61+(179.39-170.61)×(2.00+0.30)/2/2.00
= 175.66 kPa
MⅠ = β/48•(B1+B2-B)2[2(A1+A2)+A](pjmax,x+pjnx)
= 1.0000/48×(2.00-0.30)2×(2×2.00+0.40)×(179.39+175.66)
= 94.06 kN•m
Ⅱ-Ⅱ截面处弯矩设计值:
pjny = pjmin,y+(pjmax,y-pjmin,y)(A1+A2+A)/2/(A1+A2)
= 115.00+(235.00-115.00)×(2.00+0.40)/2/2.00
= 187.00 kPa
MⅡ = β/48•(A1+A2-A)2[2(B1+B2)+B](pjmax,y+pjny)
= 1.0522/48×(2.00-0.40)2×(2×2.00+0.30)×(235.00+187.00)
= 101.83 kN•m
Ⅰ-Ⅰ截面受弯计算:
相对受压区高度: ζ= 0.024319 配筋率: ρ= 0.001159
ρ < ρmin = 0.001500 ρ = ρmin = 0.001500
计算面积:675.00 mm2/m
Ⅱ-Ⅱ截面受弯计算:
相对受压区高度: ζ= 0.026356 配筋率: ρ= 0.001256
ρ < ρmin = 0.001500 ρ = ρmin = 0.001500
计算面积:675.00 mm2/m
四、计算结果
1.X方向弯矩计算结果:
计算面积:675.00 mm2/m
采用方案:D12@140
实配面积:807.84 mm2/m
2.Y方向弯矩计算结果:
计算面积:675.00 mm2/m
采用方案:D12@140
实配面积:807.84 mm2/m本回答被提问者采纳
F = 700.00 kN
Mx = 80.00 kN•m
My = 0.00 kN•m
Vx = 13.00 kN
Vy = 0.00 kN
折减系数Ks = 1.00
(2)作用在基础底部的弯矩设计值
绕X轴弯矩: M0x = Mx-Vy•(H1+H2) = 80.00-0.00×0.45 = 80.00 kN•m
绕Y轴弯矩: M0y = My+Vx•(H1+H2) = 0.00+13.00×0.45 = 5.85 kN•m
(3)作用在基础底部的弯矩标准值
绕X轴弯矩: M0xk = M0x/Ks = 80.00/1.00 = 80.00 kN•m
绕Y轴弯矩: M0yk = M0y/Ks = 5.85/1.00 = 5.85 kN•m
4.材料信息:
混凝土: C30 钢筋: HRB335(20MnSi)
5.基础几何特性:
底面积:S = (A1+A2)(B1+B2) = 2.00×2.00 = 4.00 m2
绕X轴抵抗矩:Wx = (1/6)(B1+B2)(A1+A2)2 = (1/6)×2.00×2.002 = 1.33 m3
绕Y轴抵抗矩:Wy = (1/6)(A1+A2)(B1+B2)2 = (1/6)×2.00×2.002 = 1.33 m3
三、计算过程
1.修正地基承载力
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
fa = fak+ηb•γ•(b-3)+ηd•γm•(d-0.5) (式5.2.4)
式中:fak = 226.00 kPa
ηb = 0.00,ηd = 1.00
γ = 18.00 kN/m3 γm = 18.00 kN/m3
b = 2.00 m, d = 2.00 m
如果 b < 3m,按 b = 3m, 如果 b > 6m,按 b = 6m
如果 d < 0.5m,按 d = 0.5m
fa = fak+ηb•γ•(b-3)+ηd•γm•(d-0.5)
= 226.00+0.00×18.00×(3.00-3.00)+1.00×18.00×(2.00-0.50)
= 253.00 kPa
修正后的地基承载力特征值 fa = 253.00 kPa
2.轴心荷载作用下地基承载力验算
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
pk = (Fk+Gk)/A (5.2.2-1)
Fk = F/Ks = 700.00/1.00 = 700.00 kN
Gk = 20S•d = 20×4.00×2.00 = 160.00 kN
pk = (Fk+Gk)/S = (700.00+160.00)/4.00 = 215.00 kPa ≤ fa,满足要求。
3.偏心荷载作用下地基承载力验算
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
当e≤b/6时,pkmax = (Fk+Gk)/A+Mk/W (5.2.2-2)
pkmin = (Fk+Gk)/A-Mk/W (5.2.2-3)
当e>b/6时,pkmax = 2(Fk+Gk)/3la (5.2.2-4)
X、Y方向同时受弯。
偏心距exk = M0yk/(Fk+Gk) = 5.85/(700.00+160.00) = 0.01 m
e = exk = 0.01 m ≤ (B1+B2)/6 = 2.00/6 = 0.33 m
pkmaxX = (Fk+Gk)/S+M0yk/Wy
= (700.00+160.00)/4.00+5.85/1.33 = 219.39 kPa
偏心距eyk = M0xk/(Fk+Gk) = 80.00/(700.00+160.00) = 0.09 m
e = eyk = 0.09 m ≤ (A1+A2)/6 = 2.00/6 = 0.33 m
pkmaxY = (Fk+Gk)/S+M0xk/Wx
= (700.00+160.00)/4.00+80.00/1.33 = 275.00 kPa
pkmax = pkmaxX+pkmaxY-(Fk+Gk)/S = 219.39+275.00-215.00 = 279.39 kPa
≤ 1.2×fa = 1.2×253.00 = 303.60 kPa,满足要求。
4.基础抗冲切验算
计算公式:
按《建筑地基基础设计规范》(GB 50007-2002)下列公式验算:
Fl ≤ 0.7•βhp•ft•am•h0 (8.2.7-1)
Fl = pj•Al (8.2.7-3)
am = (at+ab)/2 (8.2.7-2)
pjmax,x = F/S+M0y/Wy = 700.00/4.00+5.85/1.33 = 179.39 kPa
pjmin,x = F/S-M0y/Wy = 700.00/4.00-5.85/1.33 = 170.61 kPa
pjmax,y = F/S+M0x/Wx = 700.00/4.00+80.00/1.33 = 235.00 kPa
pjmin,y = F/S-M0x/Wx = 700.00/4.00-80.00/1.33 = 115.00 kPa
pj = pjmax,x+pjmax,y-F/S = 179.39+235.00-175.00 = 239.39 kPa
(1)柱对基础的冲切验算:
H0 = H1+H2-as = 0.20+0.25-0.08 = 0.37 m
X方向:
Alx = 1/2•(A1+A2)(B1+B2-B-2H0)-1/4•(A1+A2-A-2H0)2
= (1/2)×2.00×(2.00-0.30-2×0.37)-(1/4)×(2.00-0.40-2×0.37)2
= 0.78 m2
Flx = pj•Alx = 239.39×0.78 = 185.55 kN
ab = min{A+2H0, A1+A2} = min{0.40+2×0.37, 2.00} = 1.14 m
amx = (at+ab)/2 = (A+ab)/2 = (0.40+1.14)/2 = 0.77 m
Flx ≤ 0.7•βhp•ft•amx•H0 = 0.7×1.00×1430.00×0.770×0.370
= 285.18 kN,满足要求。
Y方向:
Aly = 1/4•(2B+2H0+A1+A2-A)(A1+A2-A-2H0)
= (1/4)×(2×0.30+2×0.37+2.00-0.40)(2.00-0.40-2×0.37)
= 0.63 m2
Fly = pj•Aly = 239.39×0.63 = 151.32 kN
ab = min{B+2H0, B1+B2} = min{0.30+2×0.37, 2.00} = 1.04 m
amy = (at+ab)/2 = (B+ab)/2 = (0.30+1.04)/2 = 0.67 m
Fly ≤ 0.7•βhp•ft•amy•H0 = 0.7×1.00×1430.00×0.670×0.370
= 248.15 kN,满足要求。
5.基础受压验算
计算公式:《混凝土结构设计规范》(GB 50010-2002)
Fl ≤ 1.35•βc•βl•fc•Aln (7.8.1-1)
局部荷载设计值:Fl = 700.00 kN
混凝土局部受压面积:Aln = Al = B×A = 0.30×0.40 = 0.12 m2
混凝土受压时计算底面积:Ab = min{3B, B1+B2}×min{A+2B, A1+A2} = 0.90 m2
混凝土受压时强度提高系数:βl = sq.(Ab/Al) = sq.(0.90/0.12) = 2.74
1.35βc•βl•fc•Aln
= 1.35×1.00×2.74×14300.00×0.12
= 6344.27 kN ≥ Fl = 700.00 kN,满足要求。
6.基础受弯计算
计算公式:
按《简明高层钢筋混凝土结构设计手册(第二版)》中下列公式验算:
MⅠ=β/48•(L-a)2(2B+b)(pjmax+pjnx) (11.4-7)
MⅡ=β/48•(B-b)2(2L+a)(pjmax+pjny) (11.4-8)
(1)柱根部受弯计算:
G = 1.35Gk = 1.35×160.00 = 216.00kN
Ⅰ-Ⅰ截面处弯矩设计值:
pjnx = pjmin,x+(pjmax,x-pjmin,x)(B1+B2+B)/2/(B1+B2)
= 170.61+(179.39-170.61)×(2.00+0.30)/2/2.00
= 175.66 kPa
MⅠ = β/48•(B1+B2-B)2[2(A1+A2)+A](pjmax,x+pjnx)
= 1.0000/48×(2.00-0.30)2×(2×2.00+0.40)×(179.39+175.66)
= 94.06 kN•m
Ⅱ-Ⅱ截面处弯矩设计值:
pjny = pjmin,y+(pjmax,y-pjmin,y)(A1+A2+A)/2/(A1+A2)
= 115.00+(235.00-115.00)×(2.00+0.40)/2/2.00
= 187.00 kPa
MⅡ = β/48•(A1+A2-A)2[2(B1+B2)+B](pjmax,y+pjny)
= 1.0522/48×(2.00-0.40)2×(2×2.00+0.30)×(235.00+187.00)
= 101.83 kN•m
Ⅰ-Ⅰ截面受弯计算:
相对受压区高度: ζ= 0.024319 配筋率: ρ= 0.001159
ρ < ρmin = 0.001500 ρ = ρmin = 0.001500
计算面积:675.00 mm2/m
Ⅱ-Ⅱ截面受弯计算:
相对受压区高度: ζ= 0.026356 配筋率: ρ= 0.001256
ρ < ρmin = 0.001500 ρ = ρmin = 0.001500
计算面积:675.00 mm2/m
四、计算结果
1.X方向弯矩计算结果:
计算面积:675.00 mm2/m
采用方案:D12@140
实配面积:807.84 mm2/m
2.Y方向弯矩计算结果:
计算面积:675.00 mm2/m
采用方案:D12@140
实配面积:807.84 mm2/m本回答被提问者采纳
第3个回答 2010-10-19
你提出的问题是什么啊,地基承载力标准值fak=226Kpa是勘察报告上的某个分层的承载力的,你提出的柱基础的底端处在那个层位上的呢?
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