DHARM
806 GEOTECHNICAL ENGINEERING
horizontal force of 1000 kN acting at a height of 8 m above the scour level. Determine the total
allowable equivalent resisting force due to earth pressure, assuming that (a) the well rotates
about a point above the base, and (b) the well rotates about the base. Assume γ′ = 10 kN/m^3 ,
φ = 30°, and factor of safety against passive resistance = 2. Use Terzaghi’s Approach:
D = 16 m H = 8 m φ = 30°
∴ Ka =
(sin )
(sin )
130
130
1
3
−°
+°
=
Kp =
(sin )
(sin )
130
130
3
+°
−°
=
Total height above base + H 1 = 16 + 8 = 24
Modified passive pressure coefficient,
Kp′ =
K
FS
p
.
==.
3
2
150
(a) Rotation about a point above the base:
From Eq. 19.30:
2 D 1 = 3923 HHDHD 11 ±− −^2 () 1
= 3 24×± × −× ×−9 24^2 2 16 3 24 16()
=^72 ±−5184 1792
P
8m
16 m
Scour level
D 1
P
H=8m
D=16m
H = 24 m 1
(a) Well with lateral load (b) Pressure distribution
Fig. 19.24 Cylindrical well with lateral load (Ex. 19.4)
2 D 1 = 72 – 58.24 (rejecting the +ve sign, as it leads to a value for D 1 > D)
= 13.76
D 1 = 6.88 m
From Eq. 19.28,
q′max =
1
2
γ′DK().()pa′ −K D− 2 D 1
= (1/2) × 10 × 16{(3/2) – (1/3)} (16 – 13.76)
= 209.1 kN/m