A method is presented for the determination of the transverse response of the idealized suspended span of an offshore pipeline to random seismic input. The method is based on spatial discretization of the pipe with nodal lumped masses. The earthquake is assumed to be a stationary random process char
Pipeline response to random ground motion by discrete model
β Scribed by T. K. Datta; E. A. Mashaly
- Publisher
- John Wiley and Sons
- Year
- 1986
- Tongue
- English
- Weight
- 777 KB
- Volume
- 14
- Category
- Article
- ISSN
- 0098-8847
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β¦ Synopsis
The response of buried pipelines to random excitation by earthquake forces is obtained using a lumped mass model. The earthquake is considered as a stationary random process characterized by a power spectral density function (PSDF). The cross spectral density function between two random inputs along the length of the pipe is defined with the help of the local earthquake PSDF which is the same for all points, and a frequency dependent exponentially decaying (with distance) function. Soil resistance to dynamic excitation along the pipelength is obtained in an approximate manner with the help of frequency independent impedance functions derived from half-space analysis and Mindlin's static stresses within the soil due to point loads. The proposed method has the advantage that it can take into consideration the cross terms in soil stiffness and damping matrices and can consider any boundary condition that needs to be satisfied at the ends of the pipe. A parametric study is also made to show the influence ofcross terms in the soil stiffness and damping matrices on the response of the pipe.
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