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Design of Foundation in STAAD Foundation 1. Isolated Footing Design isolated footing for a column 300 mm x 450 mm, carrying axial load of 1500 kN and Mu = 150 kNm using STAAD. Foundation. Assume that the moment is reversible. The safe bearing capacity of the soil is 200 kN/m2 at a depth of 1 metre from ground level. Use…
Vejetha Sajeevan
updated on 09 May 2023
Design of Foundation in STAAD Foundation
1. Isolated Footing
Design isolated footing for a column 300 mm x 450 mm, carrying axial load of 1500 kN and Mu = 150 kNm using STAAD. Foundation. Assume that the moment is reversible. The safe bearing capacity of the soil is 200 kN/m2 at a depth of 1 metre from ground level. Use M 25 and Fe 415 for the footing. Also validate the design through hand calculation.
Solution:
Aim: We need to design Isolated Footing Design using STAAD Foundation for the given data:-
Size of column : 300 mmx 450 mm
Axial load : 1500 KN
Moment
SBC of soil : 200 KN/
Grade of concrete : M25
Grade of steel : Fe 415
Design is also to be validated through hand/manual calculation
Procedure:
Safe Bearing Capacity = 200
Grade of Concrete = M25
Grade of Steel = Fe415
Following design result has been found out:
Now,for validation of design of footing using hand calculation.
VALIDATION OF DESIGN THROUGH HAND CALCULATION
Footing should be symmetric with respect to column as the moment is reversible(
Service load = 1500KN
Considering Self weight of footing & weight of backfill soil = 10% of service load
P = 1.1x 1500= 1650 KN
Area required = 1.1
Therefore L=B=
`provide square footing of size 3.0 m x 3.0 m
STEP-2 : NET UPWARD SOIL PRESSURE
= (1.5x 1.1x1500/9)
= 275
Eccentricity e = M/P = 150/1500 = 0.1M = 100 mm
L/6= 3000/6 =500 mm
e < L/6 ,therefore no negative soil pressure will develop hence compression steel is not required.
STEP-3 DEPTH OF FOOTING ON THE BASIS OF B.M.
The maximum bending moment at the face of column (M)
=
751.78
d = 301 mm Say d = 305 mm
Adopt d = 600 mm due to shear consideration
Add effective cover = 50 mm
D = 650 mm
Depth of footing from one way shear-
d=
= 1.5X1.1X1500( 3-0.3)/2(1.5x1.1x1500+350x9)
= 6682.5/11250 =0.594 m = 594 mm < 600 ( OK)
Depth required for two way shear ( punching shear)
[
Permissible
=0.25
= 0.25x4.472 = 1.118 N/
STEP-4: Reinforcement calculation
p =
= (5081/3000x650)x100 = 0.26% > 0.12% which is min reqr , hence OK
= 0.0998
Lever Arm Z = d(1-0.416
= 600( 1-0.416x0.0998)
= 575.089 mm
= 751780X1000/0.87X415X575.089 = 3620.66
STEP-5 : DEVELOPMENT LENGTH
As per IS 456: 2000,Cl 26.2.1.1
415
Result: Isolated Footing for the given data has been designed succesfully using STAAD Foundation and summary of the design is as follow:
2. Combined Footing
Design a combined footing using STAAD. Foundation for two columns C1, 400 mm x 400 mm carrying a service load of 800 kN and C2, 300 mm x 500 mm carrying a service load of 1200 kN. The column C1 is flushed with the property line. The columns are at 3.0 m c/c distance. The safe bearing capacity of soil is 200 kN/m2 at a depth of 1.5 m below the ground level. Use M 20 and Fe 415 for columns and footing.
Solution:
Aim: We need to design Combined footing for given data:-
1. Two columns C1 & C2 having size 400 mmx 400 mm & 300 mmx 500 mm respectively.
2. Service load on C1 is 800 KN & on C2 is 1200 KN
3. Column C1 is flushed with property line
4. C/C distance between columns = 3.0 m
5. SBC of soil = 200 KN/
6. Grade of Concrete : M20
7. Steel grade : Fe 415
Procedure:
Under combined footing job we have to assign the following parameters:
RESULT: It is concluded that-
Hence, design of Combined Footing has been done succesfully.
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