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Q-1. How is buried piping modeled in CAEPIPE?
A-1. Soils in CAEPIPE are modeled based on Winkler's soil model of infinite closely spaced elastic springs. Soil stiffness is calculated for all three directions at each node. Pressure value in the load is suitably modified to consider the effect of static overburden soil pressure. Model is analyzed for operating (W+P1+T1) condition and the displacements in the three directions are noted. A check is made for whether skin friction is mobilized and the soil has attained the yield state. If true, then the spring is released in that direction indicating that soil no longer
offers resistance in that direction. This modified model is again analyzed and checked for yield stage. The iterative process is continued till the percentage difference between displacement at each node for two successive iterations is less than 1%. The final stiffness is the true resistance offered by the soil to the pipe.
Q-13. Technical Notes on Buried piping
A-13. Soil in Buried piping analysis is modeled using bilinear restraints with an initial stiffness and an ultimate load. After the ultimate load is reached the displacement continues without any further increase in load, i.e. the yield stiffness is zero. The initial stiffness is calculated by dividing the ultimate load by the yield displacement which is assumed to be D/25, where D is outsided diameter of the pipe.
Nomenclature:
D = Outside diameter of pipe
Depth = Ground Level – Avg. height of pipe element, (Depth > 0 for buried piping to have an effect)
Avg. height of pipe element = (Height of one end of pipe + height of other end of pipe)/2
Ks = Coefficient of horizontal soil stress which depends on the = relative density and state of consolidation of soil. Ks is empirical in nature and may be estimated from Nq/50.
Nq = Bearing capacity factor = 0.98414 exp (phi * 0.107311), phi is in degrees.
phi = delta + 5 (degrees)
delta = angle of friction between soil and pipe.
Sp = soil pressure = soil density * depth
Cs = Undrained cohesive strength (input for cohesive soil)
Af = Adhesion factor = 1.7012775 exp (-0.00833699*Cs). (Cs in = KN/M2) <= 1.0
kp = Coefficient of passive earth pressure
= (1 + sin(phi)) / (1 - sin(phi))
bottom depth = depth + D/2;
top depth = depth - D/2;
Nr = (Nq - 1.0) * tan(1.4*phi)
dq = dr = 1.0 + 0.1 * tan(PI/4 + phi/2) * depth / D for delta > = 10 deg otherwise dq = dr = 1.0
The ultimate loads (per unit length of pipe for axial and transverse = directions and per unit projected length of pipe for vertical direction) are = calculated as
follows:
For cohesive (clayey) and cohesionless (sandy) soils different equations are used.
Axial direction:
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Cohesive soil:
Axial load = PI * D * Af * Cs;
Cohesionless soil:
Axial load = PI * D * Ks * Sp * tan(delta)
Transverse direction:
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Cohesive soil:
Transvers load = D * (2.0 * Cs + Sp + 1.5 * Cs * depth / D)
Cohesionless soil:
Transverse load = kp * kp * Sp * D;
Vertically downward direction:
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Cohesive soil:
Downward load = D * (5.7182 * Cs + Soil density * bottom depth)=20
Cohesionless soil:
Downward load = D * (Soil density * bottom depth * Nq * dq + 0.5*Soil density * D * Nr * dr)
Vertically upward direction:
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Cohesive soil:
Upward load = D * Soil density * top depth + 2 * Cs * topdepth
Cohesionless soil:
Upward load = D * Soil density * top depth
Buried pipes are defined by defining soils (under Misc menu) and specifying the soils for pipe sections under Sections.
The (soil) Name is used to identify the soil and to associate the soil with a pipe section. Soil density and Ground level are input for both cohesive and cohesionless soils. The ground level is used to calculate depth of the buried section. For cohesive soil, strength is the undrained cohesive strength (Cs). For cohesionless soil, Delta is angle of friction between soil and pipe and Ks is Coefficient of horizontal soil stress.