Design Example 5_ Pad base – axial load plus bending moment (small eccentricity)
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12/3/13 Design Example 5: Pad base – axial load plus bending moment (small eccentricity). | Builder's Engineer www.abuildersengineer.com/2013/01/design-example-5-pad-base-axial-load.html 1/4 Design Example 5: Pad base – axial load plus bending moment (small eccentricity). 0 0 Me gusta A column pad base is subject to an axial load of 200 kN (dead) plus 300 kN (imposed), and a bending moment of 40 kNm. To suit site constraints, the base is limited to a length of L = 1.8 m. Load eccentricity When moments act on a foundation, it is normal to replace them by positioning the vertical load at an equivalent eccentricity. The resultant vertical superstructure load is P = G + Q = 200 + 300 = 500 kN Q as a percentage of P is 100Q/P = (100 × 300)/500 = 60%. From "Fig. 11.22 Combined partial safety factor for dead + imposed loads" , the combined partial factor for superstructure loads is γP = 1.52. The resultant eccentricity is given by Bearing pressure check – design chart approach A suitable base size can be checked or calculated using design chart H.1 in Appendix H. For the purpose of this example this is reproduced in Fig. 11.26 below. Assuming a superstructure bearing pressure of p = n a = 300 kN/m2, Assuming a base length of L = 1.8 m, From Fig. 11.26, this gives a required base area of
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Transcript of Design Example 5_ Pad base – axial load plus bending moment (small eccentricity)
12/3/13 Design Example 5: Pad base – axial load plus bending moment (small eccentricity). | Builder's Engineer
www.abuildersengineer.com/2013/01/design-example-5-pad-base-axial-load.html 1/4
Design Example 5: Pad base – axial load plus bendingmoment (small eccentricity).
0 0Me gusta
A column pad base is subject to an axial load of 200 kN
(dead) plus 300 kN (imposed), and a bending moment of 40kNm. To suit site constraints, the base is limited to a length of
L = 1.8 m.
Load eccentricity
When moments act on a foundation, it is normal to replace
them by positioning the vertical load at an equivalent
eccentricity. The resultant vertical superstructure load is
P = G + Q
= 200 + 300 = 500 kN
Q as a percentage of P is 100Q/P = (100 × 300)/500 = 60%.
From "Fig. 11.22 Combined partial safety factor for dead + imposed loads", the combined partial factor for
superstructure loads is γP = 1.52.The resultant eccentricity is given by
Bearing pressure check – design chart approach
A suitable base size can be checked or calculated using design chart H.1 in Appendix H. For the purpose of this
example this is reproduced in Fig. 11.26 below. Assuming a superstructure bearing pressure of p = na = 300
kN/m2,
Assuming a base length of L = 1.8 m,
From Fig. 11.26, this gives a required base area of
12/3/13 Design Example 5: Pad base – axial load plus bending moment (small eccentricity). | Builder's Engineer
www.abuildersengineer.com/2013/01/design-example-5-pad-base-axial-load.html 2/4
A = BL = 2.1 m2
Thus
A width of B = 1.2 m will be adopted.
Bearing pressure check – calculation approachThe eccentricity eP = 0.08 m is less than L/6 = 1.8/6 = 0.3 m, and thus the formation is loaded in compression
over the full plan area of the base. Assume a width of B = 1.2 m.
Thus pmax = 293 kN/m2 and pmin = 169 kN/m2. These are less than the allowable bearing pressure of na = 300kN/m2 ; the width of B = 1.2 m is therefore satisfactory.
Resultant ultimate design pressuresSince the base is fully in compression, ultimate design pressures, pu, are obtained by simply factoring up these
pressures using the combined partial safety factor γP.
12/3/13 Design Example 5: Pad base – axial load plus bending moment (small eccentricity). | Builder's Engineer
www.abuildersengineer.com/2013/01/design-example-5-pad-base-axial-load.html 3/4
This is shown in Fig. 11.27.
Effect of offsetting the baseWhere the moment always acts in one direction, economies in the base size can be achieved by positioning the
base eccentric to the vertical load. Thus if the centroid of the base is offset by eP = 0.08 m, the pressurebecomes uniform, and is simply given by p = P/A. This would give
Compared to A = 1.8 × 1.2 = 2.16 m2, this would be a reduction of 23%. This approach is used in DesignExample 8.
Fig. 11.26 Pad base (small eccentricity) design example – design chart H1 (Appendix H) for base size.
12/3/13 Design Example 5: Pad base – axial load plus bending moment (small eccentricity). | Builder's Engineer
www.abuildersengineer.com/2013/01/design-example-5-pad-base-axial-load.html 4/4
Fig. 11.27 Pad base (small eccentricity) design example– loads and bearing pressures.
