Matches in SemOpenAlex for { <https://semopenalex.org/work/W2006084102> ?p ?o ?g. }
- W2006084102 abstract "Keeping the drilling fluid equivalent circulating density in the operating window between the pore and fracture pressure is a challenge, particularly when the gap between these two is narrow, such as in offshore, extended reach, and slim hole drilling applications usually encountered in shale gas and/or oil drilling. To overcome this challenge, accurate estimation of frictional pressure loss in the annulus is essential. A better estimation of frictional pressure losses will enable improved well control, optimized bit hydraulics, a better drilling fluid program, and pump selection. Field and experimental measurements show that pressure loss in annuli is strongly affected by the pipe rotation and eccentricity. The major focus of this project is on a horizontal well setup with drillstring under compression, considering the influence of rotation on frictional pressure losses of yield power law fluids. The test matrix includes flow through the annulus for various buckling modes with and without the rotation of the inner pipe. Sinusoidal, helical, and transition from sinusoidal to helical configurations with and without the drillstring rotation were investigated. Helical configurations with two different pitch lengths are compared. Eight yield power law fluids are tested and consistent results are observed. The drillstring rotation patterns and buckling can be observed due to experimental facility's relatively longer and transparent test section. At the initial position, inner pipe is lying at the bottom due to its extensive length, suggesting a fully eccentric annular geometry. When the drillstring is rotated, whirling, snaking, irregular motions are observed. This state is considered as a free drillstring configuration since there is no prefixed eccentricity imposed on the drillstring. The reason for such design is to simulate the actual drilling operations, especially the highly inclined and horizontal drilling operations. Results show that rotating the drillstring can either increase or decrease the frictional pressure losses. The most pronounced effect of rotation is observed in the transition region from laminar to turbulent flow. The experiments with the buckled drillstring showed significantly reduced frictional pressure losses compared to the free drillstring configuration. Decreasing the length of the pitch caused a further reduction in pressure losses. Using the experimental database, turbulent friction factors for buckled and rotating drillstrings are presented. The drilling industry has recently been involved in incidents that show the need for critical improvements for evaluating and avoiding risks in oil/gas drilling. The information obtained from this study can be used to improve the control of bottomhole pressures during extended reach, horizontal, managed pressure, offshore, and slim hole drilling applications. This will lead to improved safety and enhanced optimization of drilling operations." @default.
- W2006084102 created "2016-06-24" @default.
- W2006084102 creator A5021263074 @default.
- W2006084102 creator A5031119626 @default.
- W2006084102 creator A5032511274 @default.
- W2006084102 creator A5035404476 @default.
- W2006084102 creator A5048947308 @default.
- W2006084102 creator A5053340577 @default.
- W2006084102 creator A5066548093 @default.
- W2006084102 date "2014-12-01" @default.
- W2006084102 modified "2023-10-06" @default.
- W2006084102 title "Effect of Drillstring Deflection and Rotary Speed on Annular Frictional Pressure Losses" @default.
- W2006084102 cites W1964359797 @default.
- W2006084102 cites W1965355128 @default.
- W2006084102 cites W1969379606 @default.
- W2006084102 cites W1974882001 @default.
- W2006084102 cites W1975748348 @default.
- W2006084102 cites W1975765171 @default.
- W2006084102 cites W1976941810 @default.
- W2006084102 cites W1981224683 @default.
- W2006084102 cites W1988109654 @default.
- W2006084102 cites W1989191243 @default.
- W2006084102 cites W1992356174 @default.
- W2006084102 cites W1994119576 @default.
- W2006084102 cites W1995953061 @default.
- W2006084102 cites W1998626139 @default.
- W2006084102 cites W2000196087 @default.
- W2006084102 cites W2000844283 @default.
- W2006084102 cites W2008977611 @default.
- W2006084102 cites W2011616451 @default.
- W2006084102 cites W2012851001 @default.
- W2006084102 cites W2022934520 @default.
- W2006084102 cites W2034674054 @default.
- W2006084102 cites W2034758128 @default.
- W2006084102 cites W2034955945 @default.
- W2006084102 cites W2036045374 @default.
- W2006084102 cites W2046745251 @default.
- W2006084102 cites W2048575597 @default.
- W2006084102 cites W2055326167 @default.
- W2006084102 cites W2060485159 @default.
- W2006084102 cites W2082400975 @default.
- W2006084102 cites W2082634403 @default.
- W2006084102 cites W2084136032 @default.
- W2006084102 cites W2085464165 @default.
- W2006084102 cites W2087097812 @default.
- W2006084102 cites W2089351260 @default.
- W2006084102 cites W2092537456 @default.
- W2006084102 cites W2095406979 @default.
- W2006084102 cites W2100565506 @default.
- W2006084102 cites W2146678735 @default.
- W2006084102 cites W2168256764 @default.
- W2006084102 cites W4252018096 @default.
- W2006084102 doi "https://doi.org/10.1115/1.4027565" @default.
- W2006084102 hasPublicationYear "2014" @default.
- W2006084102 type Work @default.
- W2006084102 sameAs 2006084102 @default.
- W2006084102 citedByCount "27" @default.
- W2006084102 countsByYear W20060841022014 @default.
- W2006084102 countsByYear W20060841022015 @default.
- W2006084102 countsByYear W20060841022016 @default.
- W2006084102 countsByYear W20060841022017 @default.
- W2006084102 countsByYear W20060841022018 @default.
- W2006084102 countsByYear W20060841022019 @default.
- W2006084102 countsByYear W20060841022020 @default.
- W2006084102 countsByYear W20060841022021 @default.
- W2006084102 countsByYear W20060841022022 @default.
- W2006084102 countsByYear W20060841022023 @default.
- W2006084102 crossrefType "journal-article" @default.
- W2006084102 hasAuthorship W2006084102A5021263074 @default.
- W2006084102 hasAuthorship W2006084102A5031119626 @default.
- W2006084102 hasAuthorship W2006084102A5032511274 @default.
- W2006084102 hasAuthorship W2006084102A5035404476 @default.
- W2006084102 hasAuthorship W2006084102A5048947308 @default.
- W2006084102 hasAuthorship W2006084102A5053340577 @default.
- W2006084102 hasAuthorship W2006084102A5066548093 @default.
- W2006084102 hasConcept C120665830 @default.
- W2006084102 hasConcept C121332964 @default.
- W2006084102 hasConcept C127313418 @default.
- W2006084102 hasConcept C127413603 @default.
- W2006084102 hasConcept C150936888 @default.
- W2006084102 hasConcept C152068911 @default.
- W2006084102 hasConcept C159985019 @default.
- W2006084102 hasConcept C168630323 @default.
- W2006084102 hasConcept C17744445 @default.
- W2006084102 hasConcept C190538878 @default.
- W2006084102 hasConcept C192562407 @default.
- W2006084102 hasConcept C199539241 @default.
- W2006084102 hasConcept C25197100 @default.
- W2006084102 hasConcept C2524010 @default.
- W2006084102 hasConcept C2776088076 @default.
- W2006084102 hasConcept C2781355719 @default.
- W2006084102 hasConcept C33923547 @default.
- W2006084102 hasConcept C57879066 @default.
- W2006084102 hasConcept C74050887 @default.
- W2006084102 hasConcept C78519656 @default.
- W2006084102 hasConceptScore W2006084102C120665830 @default.
- W2006084102 hasConceptScore W2006084102C121332964 @default.
- W2006084102 hasConceptScore W2006084102C127313418 @default.
- W2006084102 hasConceptScore W2006084102C127413603 @default.
- W2006084102 hasConceptScore W2006084102C150936888 @default.