12/17/2016
1200kN
• Example 800kN
350m
• Given Column 1 size 30x 30
Reinf. 422
Column 2 size 40x 40cm
Reinf. 424
Property line
Ultimate soil bearing pressure , qult = 150kPa
• fyk = 300MPa fyd = 300/1.15 = 260.87 MPa
• C25 fck= 20MPafctk = 1.5 MPa, b
• Required:- Design of rectangular combined footing
• SOLUTION
• Proportioning of footing • qult = R/A = 2000/ (4.50*b)
800kN
R
1200kN • 150 = 2000/(4.50 *b) b =2.96m
X’ • Take b =3.00m
15cm 350cm
• Actual contact pressure
• = R/ab = 2000/ (4.50*3.00) = 148.15kPa < qult ……….. ok
a
• Shear force and bending moment diagrams
• R = 800 +1200 = 2000kN
• RX’ = 1200 *350 X’ = (1200 *350)/2000 = 210cm
• a = 2 ( X’ + 15) = 450 cm
0.30m 3.15m 0.40m 0.65m
800kN 1200kN • Thickness of the footing
• Wide beam shear
• The magnitude of the wide beam shear is read off from the shear
822.24kN 148.15*3=444.45kN/m force diagram at a distance of d from the face of the column.
1.65m d
• V = 444.45 (3.45 –d) -800 =733.35-444.45d
66.67kN • Take d= 0.60m and = min = 0.5/fyk = 0.5 /300 = 0.0017
• Then, V =466.68kN
• The wide beam shear resistance according to EBCS-2 is given
by
377.76kN
Vud = 0.25fctd k1k2 bwd (MN)
599.99kN-m
733.33kN k1 = ( 1+50) = (1 +50*0.0017) =1.085
k2 = 1.6 – d =1.6 -0.6 = 1
Vud = 0.25 *1*1.085*1*3.0*0.60 =0.488MN =488kN>V …OK!
5.00kN-m
160.59kN-m
1
� 12/17/2016
• Net shear force developed under column 1
• Punching shear
V1= 800 -148.15*(1.2*2.1) =426.66kN
• Net shear force developed under column 2
1.5d +0.30 =1.2 1.5d +0.40 +0.65=1.95 V2 = 1200-148.15* (1.95*2.2)=564.43kN
• Punching shear resistance
3d+0.3=2.1
3d+0.4=2.2
Vup = 0.25fctd k1k2ud (MN)
300cm
d= 0.60m and = min = 0.5/fyk = 0.5 /300 = 0.0017
k1 = ( 1+50) = (1 +50*0.0017) =1.085
1.5d +0.30 =1.2 1.5d +0.40 +0.65=1.95 k2 = 1.6 – d =1.6 -0.6 = 1
450cm u1 = Pr1 =4.5m , u2 = Pr1 = 6.1m
• Punching shear resistance under column 1
• Perimeters Pr1 =1.2+1.2+2.1 =4.5m • Vup = 0.25 *1000* 1.085*1*4.5*0.6=732.38kN > V1…… ok!
Pr2 =1.95+1.95+2.2=6.1m
• Punching shear resistance under column 2
f cd 2M
• Vup = 0.25 *1000* 1.085*1*6.1*0.6=992.78kN > V2………… ok! 1 1
f yd f cd bd 2
• Moment capacity of concrete
11.33 2 599.99
M 0.32 f cd bd 2 1 1 0.0022 min
11.33 103 3.0 0.6
2
260.87
0.32 11.3310 3.00 0.6 3 2
As bd 0.0022 300 60 39.6cm 2
3915.65kN m M max ....Ok!
Use = 20, as = 3.14cm2
No. of bars , n= 39.6/3.14 =12.6 , use 13 bars
• Calculation of reinforcement Spacing = (300-2*5)/ (n-1) =24.2cm
– Long direction
The reinforcement shall be calculated for the maximum moment Use 13 20 c/c 240mm
Mmax = 599.99kN-m
– Short direction • Contact pressure under columns 1 and 2
800
1 444.44kN / m 2
l1 = (3-0.3)/2 = 1.35m l2 = (3-0.4)/2
3.00 X 0.60
, = 1.30m
1200
2 400kN / m 2
3.00 X 1.00
• Bending moment
a’+d/2= 2.55 m a’+d= 0 .35 m • M1 =444.44 *1.35*0.60*1.35/2 = 243kN-m
0.3+0.3=0.60m 0.4+0.6=1.0m
Effective width at exterior and interior columns being a+d/2 and • M2 = 400 * 1.30 *1.00 * 1.30/2 = 338kN-m
a+d, respectively
2
� 12/17/2016
• Calculation of Reinforcements Use = 20, as = 3.14cm
– Under column 1 No. of bars , n= 17.05/3.14 =5.4 , use 6 bars
Moment capacity of concrete Spacing = (60-5)/ (n-1) =9.2cm
Use 6 20 c/c 90mm
M 0.32 f cd bd 2
0.32 11.33103 0.60 0.58
2
– Under column 2
731.79kN m M 1....Ok! Moment capacity of concrete
M 0.32 f cd bd 2
0.32 11.33103 1.00 0.58
2
f cd 2M
1 1
f yd f cd bd 2 1219.65kN m M 2 ....Ok!
11.33 2 243
1 1 2
0.0049 min ....ok!
260.87 11.33 103 0.60 0.58
As bd 0.0049 60 58 17.05cm 2
Use = 20, as = 3.14cm
f cd 2M
1 1 No. of bars , n= 25.14/3.14 = 8 , use 8 bars
f yd
f cd bd 2
Spacing = (245)/ (7)
11.33 2 338
1 1 2
0.0040 min ....ok! =35cm < 400mm (smax for secondary bars)……. ok
260.87 11.33 103 1 0.58
Use 8 20 c/c 350mm
As bd 0.0040100 58 23.20cm 2
•Long direction
Asmin = min bd = 0.0017 *300 *60 =30.60cm2
Use = 20, as = 3.14cm
No. of bars , n= 30.16/3.14 = 9.7 , use 10 bars
No. of bars , n= 23.20/3.14 =7.4 , use 8 bars Spacing = (300-10)/ (9)
Spacing = (100)/ (n-1) =14.3cm
=32.2cm < 400mm (smax for secondary bars)……. ok
Use 8 20 c/c 140mm
Use 10 20 c/c 320mm
• The reinforcement between the two strips will be nominal
reinforcement to prevent shrinkage cracks
• Short direction
• Asmin = min bd = 0.0017 *255 *58 =25.14cm2
•Cantilever portion
–Bottom reinforcement , long direction
Short direction
–Critical moment from bending moment diagram is M =160.59kN-m
Provide minimum reinforcement
f cd 2M
1 1 • Asmin = min bd = 0.0017 *35 *58 =3.45cm2
f yd f cd bd 2
• No. of bars , n= 3.45/3.14 =1.1 , use 2 bars
11.33 2 160.59 Spacing = (25)/ 2 =12.5cm
1 1 2
0.00057 min
260.87 11.33103 3 0.60 Use 2 20 c/c 125mm
As minbd 0.0017 300 60 30.60cm 2
• Development length
Use = 20, as = 3.14cm • Short direction
No. of bars , n= 30.6/3.14 =9.7 , use 10 bars • Under column 1
Spacing = (300-2*5)/ 9 =32.22cm
f yd 2 260.87
Use 10 20 c/c 320mm ld 130.44cm
4 f bd 4 1
3
� 12/17/2016
• Available development length, la =135-5=130cm < ld
Bend the bars upward with a minimum length of 10cm
• Under column 2
f yd 2 260.87
ld 130.44cm
4 f bd 4 1
• Available development length, la =130-5=125cm < ld
Bend the bars upward with a minimum length of 10cm
