[求助]：pkpm独立基础计算冲切计算疑问？

WRHCHINA · 发表于 2004-3-11 09:45:53

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请问有谁知道：pkpm的基础工具箱jctools计算独立基础时，计算冲切有两次计算X＋方向，不同处是净反力产生的面积不同，第一次与规范一致，第二次我不知道是怎么来的？附pkpm计算书如下。附件pkpm计算书中含简图。

                        计算项目: 独立基础-4
*************************************************************************************************
   [计算条件]
   独基类型:锥形现浇
   独基尺寸(单位mm):
            长    宽    高
   一阶  2000    2000    400
   二阶    0       0       0
   基础底标高：-2.6m
   基础移心：S方向:0mm B方向:0mm
   底板配筋：
   Y方向:?10@200
   X方向:?10@200

   混凝土容重：25.0kN/m3
   柱截面信息：
   柱截面高：500mm
   柱截面宽：500mm
   柱偏心x：0mm
   柱偏心y：0mm
   柱转角：0°

   荷载信息
   竖向荷载基本值： Nk= 893Kn
   X方向弯矩基本值：Mx= 0Kn*m
   Y方向弯矩基本值：My= 0Kn*m



   [计算结果]
   1、冲切验算
      采用GB5007-2002建筑地基基础设计规范,公式如下：
                                          8.2.7-1
                                             8.2.7-2
                                                   8.2.7-3
   冲切力抗力计算:
      X+方向,高度 H= 400
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      ◎◎◎本方向冲切验算满足◎◎◎
      X-方向,高度 H= 400
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      ◎◎◎本方向冲切验算满足◎◎◎
      Y+方向,高度 H= 400
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      ◎◎◎本方向冲切验算满足◎◎◎
      Y-方向,高度 H= 400
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      Fl = pj*Al = 223.25* 0.64=  142.88
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(1.20+0.50)*0.35/2 =  298.40KN
      ◎◎◎本方向冲切验算满足◎◎◎

      四边冲切验算
      H = 400.
      Fl = N-pk*(bc+2*h0)*(hc+2*h0)
         =  893.00- 223.3*(500.0+2*350.0)*(500.0+2*350.0)*1e-6
         =  571.52Kn
      Fr = 0.7*Bhp*ft*am*h0
         = 0.7*1.00* 1432.9*(500.0+500.0+2*350.0)*350.0*1e-6
         = 1193.60Kn
      ◎◎◎四边冲切验算满足◎◎◎

      X+方向,高度 H= 400mm
      Fl = pj*Al = 223.25* 0.88=  195.90
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.70+0.00)*0.35/2 =  122.87KN
      ★★★冲切不满足★★★ H = H+100 =  500.
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      ◎◎◎本方向冲切验算满足◎◎◎
      X-方向,高度 H = 500mm
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      ◎◎◎本方向冲切验算满足◎◎◎
      Y+方向,高度  H= 500mm
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      ◎◎◎本方向冲切验算满足◎◎◎
      Y-方向,高度  H= 500mm
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      Fl = pj*Al = 223.25* 0.80=  178.04
      0.7*βhp*ft*(at+ab)*ho/2 = 0.7*1.00*1432.89*(0.90+0.00)*0.45/2 =  203.11KN
      ◎◎◎本方向冲切验算满足◎◎◎

   2、配筋验算
      采用GB5007-2002建筑地基基础设计规范,计算公式如下：

      弯矩计算：
      x方向,h0 = 340mm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm

      y方向,h0 = 340mm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm

      x方向,h0 = 340mm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm

      y方向,h0 = 340mm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm
      M = 1/12*a1*a1*[(2l+a`)*1(Pjmax+Pj)+(Pjmax-Pj)*l]
         = 0.75*0.75[(2*2.00+0.50)*(223250.00+223250.00)+(223250.00-223250.00)*2.00]/12
         =  94.18KNm

      配筋计算：
         M1 = 94.184
         AGx = M1/(0.9*h0*fy) = 94183.609/(0.9*0.340*210.) =  1465.665mm*mm
         M2 = 94.184
         AGy = M2/(0.9*h0*fy) = 94183.609/(0.9*0.340*210.) =  1465.665mm*mm

         M1 = 94.184
         AGx = M1/(0.9*h0*fy) = 94183.609/(0.9*0.340*210.) =  1465.665mm*mm
         M2 = 94.184
         AGy = M2/(0.9*h0*fy) = 94183.609/(0.9*0.340*210.) =  1465.665mm*mm

         X方向配筋 Y方向配筋
         1465.665 1465.665

      原钢筋X方向配筋量不足
      原钢筋Y方向配筋量不足

      计算的配筋方案为：
      AGx:φ10@100 AGy:φ10@100

WRHCHINA · 发表于 2004-3-11 10:25:36

ghr19770506 同志，怎么到处留言"好东西!有学了一招!" 是为了赚钱吧？能不能教教我，学到什么了？现在就解答一下pkpm的独立基础的冲切计算问题！

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[求助]：pkpm独立基础计算冲切计算疑问？

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