Computational rhelogy for pipeline and annular flow
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Dr. S. R. Ranganathan Library Reference | Reference | 622.3382 C45 (Browse shelf(Opens below)) | Not For Loan | 820 |
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622.3382 A46, 2:4 Advanced reservoir management and engineering | 622.3382 A49:9 Petroleum reservoir engineering: physicals properties | 622.3382 B44, 2:1 Production optimization : using NODAL analysis | 622.3382 C45 Computational rhelogy for pipeline and annular flow | 622.3382 F56, 3 Petroleum engineer's guide to oil field chemicals and fluids | 622.3382 G37, 2 Blowout and well control handbook | 622.3382 G38:7 Petroleum engineering: drilling and well completions |
Computational Rheology for Pipeline and Annular Flow develops and applies modern analytical and computational finite difference methods for solving flow problems in drilling and production. It also provides valuable insights into flow assurance analysis in subsea pipeline design. Using modeling techniques that simulate the motion of non-Newtonian fluids, e.g., power law, Bingham plastic, and Herschel-Bulkley flows, this book presents proven annular flow methodologies for cuttings transport and stuck pipe analysis based on detailed experimental data obtained from highly deviated and horizontal wells. These methods are applied for highly eccentric borehole geometries to the design of pipeline bundles in subsea applications, where such annular configurations arise in velocity and thermal modeling applications. Also covered extensively are the design and modeling of pipelines having non-circular cross-sections, where deviations from ideal circular geometries arise from plugging due to wax deposition and the presence of hydrates and asphaltenes. As in the case of annular flows, the new algorithms apply to fluids with general rheological description; for example, the methods show very precisely how flow rate and pressure gradient vary nonlinearly in practical problem situations.