Academic literature on the topic 'Components of Drilling Fluid'

Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles

Select a source type:

Consult the lists of relevant articles, books, theses, conference reports, and other scholarly sources on the topic 'Components of Drilling Fluid.'

Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.

You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.

Journal articles on the topic "Components of Drilling Fluid"

1

宋, 祥. "Components and Application of Drilling Fluid Isotope Logger." Journal of Oil and Gas Technology 39, no. 04 (2017): 211–16. http://dx.doi.org/10.12677/jogt.2017.394057.

Full text
APA, Harvard, Vancouver, ISO, and other styles
2

Glibovytska, Nataliia, and Lesya Plaksiy. "The drilling solution components’ impact on the environment and directions of its reduction." Biolohichni systemy 12, no. 1 (2020): 52–57. http://dx.doi.org/10.31861/biosystems2020.01.052.

Full text
Abstract:
The problem of the oil wells operation influence on the environmental ecological state is considered. The technical and biological aspects of the impact of drilling solution components used in the process of oil production on the biotic and abiotic environment are analyzed. The methods of preserving the cleanliness of reservoirs and soil during the wells operations and preventing pollutants from entering the environment are described. Possible effects of the toxic compounds of the drilling fluid on living organisms, in particular plants, have been identified. The components of drilling fluids
APA, Harvard, Vancouver, ISO, and other styles
3

Yao, Rugang, Guancheng Jiang, Wei Li, Tianqing Deng, and Hongxia Zhang. "Effect of water-based drilling fluid components on filter cake structure." Powder Technology 262 (August 2014): 51–61. http://dx.doi.org/10.1016/j.powtec.2014.04.060.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

Zhizhan, Wang, Qin Liming, Lu Huangsheng, Li Xin, and Cai Qing. "Determining the fluorescent components in drilling fluid by using NMR method." Chinese Journal of Geochemistry 34, no. 3 (2015): 410–15. http://dx.doi.org/10.1007/s11631-015-0049-3.

Full text
APA, Harvard, Vancouver, ISO, and other styles
5

Shafie, Bunyami, Lee Huei Hong, Phene Neoh Pei Nee, et al. "Heat Moisture Modified Rice Flours as Additive in Drilling Fluids." Journal of Advanced Research in Fluid Mechanics and Thermal Sciences 80, no. 1 (2021): 62–72. http://dx.doi.org/10.37934/arfmts.80.1.6272.

Full text
Abstract:
Drilling mud is a dense, viscous fluid mixture used in oil and gas drilling operations to bring rock cuttings to the earth's surface from the boreholes as well as to lubricate and cool the drill bit. Water-based mud is commonly used due to its relatively inexpensive and easy to dispose of. However, several components and additives in the muds become increasingly cautious and restricted. Starch was introduced as a safe and biodegradable additive into the water-based drilling fluid, in line with an environmental health concern. In this study, the suitability of four local rice flours and their h
APA, Harvard, Vancouver, ISO, and other styles
6

Anderson, Richard L., H. Christopher Greenwel, James L. Suter, Rebecca M. Jarvis, and Peter V. Coveney. "Towards the design of new and improved drilling fluid additives using molecular dynamics simulations." Anais da Academia Brasileira de Ciências 82, no. 1 (2010): 43–60. http://dx.doi.org/10.1590/s0001-37652010000100005.

Full text
Abstract:
During exploration for oil and gas, a technical drilling fluid is used to lubricate the drill bit, maintain hydrostatic pressure, transmit sensor readings, remove rock cuttings and inhibit swelling of unstable clay based reactive shale formations. Increasing environmental awareness and resulting legislation has led to the search for new, improved biodegradable drilling fluid components. In the case of additives for clay swelling inhibition, an understanding of how existing effective additives interact with clays must be gained to allow the design of improved molecules. Owing to the disordered
APA, Harvard, Vancouver, ISO, and other styles
7

Sharma, M. M., and R. W. Wunderlich. "The alteration of rock properties due to interactions with drilling-fluid components." Journal of Petroleum Science and Engineering 1, no. 2 (1987): 127–43. http://dx.doi.org/10.1016/0920-4105(87)90004-0.

Full text
APA, Harvard, Vancouver, ISO, and other styles
8

Musteykis, A. I., А. А. Levikhin, and K. Yu Anistratov. "Theoretical and practical realisation of perspective thermal spallation drilling technology." Mining Industry Journal (Gornay Promishlennost), no. 2/2021 (May 10, 2021): 90–94. http://dx.doi.org/10.30686/1609-9192-2021-2-90-94.

Full text
Abstract:
The article presents the results of theoretical and experimental studies of the conversional use of a rocket engine gas generator to create a device for thermal spallation drilling of solid rocks. The main difference between the studied device and traditional thermal drills is the relatively low temperature of the working fluid. It has been experimentally shown that this level of temperature of the working fluid provides a stable process of thermal spallation of the rock and at the same time a long life of the structure. The developed mathematical apparatus allows to select device parameters f
APA, Harvard, Vancouver, ISO, and other styles
9

Al-Ghanimi, Ghofran F., and Nada S. Al-Zubaidi. "The Performance of Iraqi Bentonite Using Soda Ash and Caustic Soda Additives." Association of Arab Universities Journal of Engineering Sciences 27, no. 1 (2020): 83–93. http://dx.doi.org/10.33261/jaaru.2019.27.1.010.

Full text
Abstract:
Choosing an adequate drilling fluid is of paramount importance in drilling operations. Thus, controlling the drilling fluid properties is by means of the appropriate selection of drilling fluid components of base fluids, solids, and additives to preserve drilling fluid properties. The aim of this study is to use the available and low cost Iraq's mineral resources. One of these minerals is presented by the Iraqi calcium montmorillonite clay (Ca-bentonite) was obtained from Wadi Bashera / Western Desert /Anbar Governorate to be used as an alternative active solid instead of spending hard currenc
APA, Harvard, Vancouver, ISO, and other styles
10

Lv, Miao Rong, Mei Li, Zhi Qiang Chen, and Li Wang. "Foundation and Application of Fluid End’s Vibration Model for Drilling Reciprocation Pump." Advanced Materials Research 337 (September 2011): 575–83. http://dx.doi.org/10.4028/www.scientific.net/amr.337.575.

Full text
Abstract:
With the help of digital audio technology, fault diagnosis and quick identification of multi-channel synchronous vibration signals acquired from a triplex pump in well site were achieved. A characteristic model of fluid end’s vibration for this pump was established and further verified by indoor systematic experiments. The source of various vibration components was determined, statistic relationships between these components in different conditions were regressed, and typical sub-signals excited by pump valve movement were also modeled by the use of the basic operation unit segmentation and op
APA, Harvard, Vancouver, ISO, and other styles

Dissertations / Theses on the topic "Components of Drilling Fluid"

1

Kupeyeva, Aliya. "Determination Of Hydrate Formation Conditions Of Drilling Fluids." Master's thesis, METU, 2007. http://etd.lib.metu.edu.tr/upload/2/12608607/index.pdf.

Full text
Abstract:
The objective of this study is to determine hydrate formation conditions of a multicomponent polymer based drilling fluid. During the study, experimental work is carried out by using a system that contains a high-pressure hydrate formation cell and pressure-temperature data is recorded in each experiment. Different concentrations of four components of drilling fluid, namely potassium chloride (KCl), partially hydrolyzed polyacrylicamide (PHPA), xanthan gum (XCD) and polyalkylene glycol (poly.glycol) were used in the experiments, to study their effect on hydrate formation conditions.
APA, Harvard, Vancouver, ISO, and other styles
2

Sonmez, Ahmet. "Performance Analysis Of Drilling Fluid Liquid Lubricants." Master's thesis, METU, 2011. http://etd.lib.metu.edu.tr/upload/12613581/index.pdf.

Full text
Abstract:
Excessive torque is one of the most important problems in oil/gas drilling industry. Friction between wellbore/casing and drill string causes excessive torque. This study discusses performance analysis of drilling fluid lubricants, which are used as friction reducers in well-bore. Three different types of commercial chemical lubricants, which are fatty acid and glycerid based, triglycerid and vegetable oil based and polypropylene glycol based, diesel oil, and crude oil, which consists of different API gravity, paraffin and asphaltene value samples, were selected for the analysis. In the analy
APA, Harvard, Vancouver, ISO, and other styles
3

Meuric, Olivier Francois Joseph. "Numerical modelling of fluid flow in drilling processes." Thesis, University of Exeter, 1998. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.267227.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

SILVA, THIAGO PINHEIRO DA. "ENHANCED FLUID RHEOLOGY CHARACTERIZATION FOR MANAGED PRESSURE DRILLING." PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO, 2016. http://www.maxwell.vrac.puc-rio.br/Busca_etds.php?strSecao=resultado&nrSeq=28069@1.

Full text
Abstract:
PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO<br>COORDENAÇÃO DE APERFEIÇOAMENTO DO PESSOAL DE ENSINO SUPERIOR<br>PROGRAMA DE EXCELENCIA ACADEMICA<br>Caracterização Reológica de Fluidos para Perfuração com Gerenciamento de Pressão. Forças Hidráulicas desempenham uma função importante em muitas operações de campo de petróleo, incluindo perfuração, completação, fraturamento, acidificação, workover e produção. Em aplicações de Perfuração com Gerenciamento de Pressão (Managed Pressure Drilling - MPD), onde as estimativas de perdas de pressão são críticas para controlar o poço dentro da janela
APA, Harvard, Vancouver, ISO, and other styles
5

Newberry, John Christopher, and john newberry@rmit edu au. "On the Micro-Precision Robotic Drilling of Aerospace Components." RMIT University. Aerospace, Mechanical and Manufacturing Engineering, 2007. http://adt.lib.rmit.edu.au/adt/public/adt-VIT20080513.162719.

Full text
Abstract:
This dissertation describes research concerned with the use of advanced measurement techniques for the control of robotic manufacturing processes. The work focused on improving the state of technology in the precision robotic machining of components within the aerospace manufacturing industry within Australia. Specific contributions are the development of schemes for the use of advanced measurement equipment in precision machining operations and to apply flexible manufacturing techniques in automated manufacturing. The outcome of the research enables placement of a robotic end effector to
APA, Harvard, Vancouver, ISO, and other styles
6

Kursad, Sezer Huseyin. "Laser drilling of thermal barrier coated jet-engine components." Thesis, University of Manchester, 2007. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.685444.

Full text
APA, Harvard, Vancouver, ISO, and other styles
7

Ozer, Ceren. "Hydraulics Optimization Of Foam Drilling In Drilling Operations." Master's thesis, METU, 2009. http://etd.lib.metu.edu.tr/upload/2/12611059/index.pdf.

Full text
Abstract:
ABSTRACT HYDRAULICS OPTIMIZATION OF FOAM DRILLING IN DRILLING OPERATIONS &Ouml<br>zer, Ceren M. Sc., Department of Petroleum and Natural Gas Engineering Supervisor: Assoc. Prof. Dr. Evren &Ouml<br>zbayoglu September 2009, 72 pages In drilling, drilling fluid affects every single step of operation. If rig system is thought as the human body, drilling mud can be defined as the blood system of it. Drilling fluid carries the cuttings, cools the bit, it conditions the hole and so on. Some special kinds of drilling fluids are used for special purposes such as underbalanced drilling. Underbalanced dr
APA, Harvard, Vancouver, ISO, and other styles
8

DeSilva, Sirilath. "Transient axisymmetric model for laser drilling." Diss., The University of Arizona, 2003. http://hdl.handle.net/10150/289927.

Full text
Abstract:
A transient axisymmetric model is developed to study the laser drilling phenomenon. Governing equations are the transient axisymmetric 3-D heat conduction equation for the solid substrate and for the liquid molten part, the thin layer model (TLM) equations are utilized. Boundary element method (BEM) is used for the region encompassing the moving boundary and finite difference method (FDM) is utilized for the remainder. BEM and FDM are coupled using flux and temperature at their interface. TLM is obtained using simplified free surface, mass, momentum and energy equations in body intrinsic coord
APA, Harvard, Vancouver, ISO, and other styles
9

Essiwi, Mohamed Milad Ahmed. "Validation of CFD modeling for oil well drilling fluid flows." Thesis, University of Newcastle Upon Tyne, 2006. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.430771.

Full text
APA, Harvard, Vancouver, ISO, and other styles
10

Treanor, Marcell. "Experimental and analytic investigation of the drilling process in printed circuit board manufacture." Thesis, Queen's University Belfast, 1998. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.268314.

Full text
APA, Harvard, Vancouver, ISO, and other styles

Books on the topic "Components of Drilling Fluid"

1

Testing fluid power components. Industrial Press, 1990.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
2

Marcom, Michael R. The rotary rig and its components. Petroleum extension Service, The University of Texas, 2015.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
3

Bork, K. R. The rotary rig and its components. 4th ed. Petroleum Extension Service, Division of Continuing Education, University of Texas at Austin, 1995.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
4

Bath International Fluid Power Workshop (2nd 1989 University of Bath). Fluid power components and systems. Research Studies Press, 1990.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
5

International Off-Highway & Powerplant Congress & Exposition (1987 Milwaukee, Wis.). Fluid power: Components, electrohydraulics, and design. Society of Automotive Engineers, 1987.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
6

Whittaker, Alun, ed. Theory and Applications of Drilling Fluid Hydraulics. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-5303-1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
7

Brandt, Kerryn A. Fluid drilling and soil conditioning using hydrophilic polymers. U.S. Dept. of Agriculture, National Agricultural Library, 1988.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
8

Brandt, Kerryn A. Fluid drilling and soil conditioning using hydrophilic polymers. U.S. Dept. of Agriculture, National Agricultural Library, 1988.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
9

Brandt, Kerryn A. Fluid drilling and soil conditioning using hydrophilic polymers. U.S. Dept. of Agriculture, National Agricultural Library, 1988.

Find full text
APA, Harvard, Vancouver, ISO, and other styles
10

American Society of Mechanical Engineers. Winter Meeting. Flows in non-rotating turbomachinery components. American Society of Mechanical Engineers, 1988.

Find full text
APA, Harvard, Vancouver, ISO, and other styles

Book chapters on the topic "Components of Drilling Fluid"

1

Jones, Timothy G. J., and Trevor L. Hughes. "Drilling Fluid Suspensions." In Suspensions: Fundamentals and Applications in the Petroleum Industry. American Chemical Society, 1996. http://dx.doi.org/10.1021/ba-1996-0251.ch010.

Full text
APA, Harvard, Vancouver, ISO, and other styles
2

Dai, Caili, and Fulin Zhao. "Drilling Fluid Chemistry." In Oilfield Chemistry. Springer Singapore, 2018. http://dx.doi.org/10.1007/978-981-13-2950-0_2.

Full text
APA, Harvard, Vancouver, ISO, and other styles
3

Whittaker, Alun. "The Drilling Fluid." In Theory and Applications of Drilling Fluid Hydraulics. Springer Netherlands, 1985. http://dx.doi.org/10.1007/978-94-009-5303-1_3.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

Patel, Bharatan R., C. Samuel Martin, John E. Minardi, et al. "Static Components of Fluid Machinery." In Handbook of Fluid Dynamics and Fluid Machinery. John Wiley & Sons, Inc., 2008. http://dx.doi.org/10.1002/9780470172650.ch25.

Full text
APA, Harvard, Vancouver, ISO, and other styles
5

Gray, D. "Fluid Drilling of Vegetable Seeds." In Horticultural Reviews. John Wiley & Sons, Inc., 2011. http://dx.doi.org/10.1002/9781118060766.ch1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
6

Wistrand, Kai, and Fredrik Karlsson. "Method Components – Rationale Revealed." In Notes on Numerical Fluid Mechanics and Multidisciplinary Design. Springer International Publishing, 2004. http://dx.doi.org/10.1007/978-3-540-25975-6_15.

Full text
APA, Harvard, Vancouver, ISO, and other styles
7

Caenn, Ryen, H. C. H. Darley†, and George R. Gray†. "Drilling Fluid Components." In Composition and Properties of Drilling and Completion Fluids. Elsevier, 2017. http://dx.doi.org/10.1016/b978-0-12-804751-4.00013-4.

Full text
APA, Harvard, Vancouver, ISO, and other styles
8

Darley, H. C. H., and George R. Gray. "DRILLING FLUID COMPONENTS." In Composition and Properties of Drilling and Completion Fluids. Elsevier, 1988. http://dx.doi.org/10.1016/b978-0-08-050241-0.50015-1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
9

Caenn, Ryen, H. C. H. Darley, and George R. Gray. "Drilling Fluid Components." In Composition and Properties of Drilling and Completion Fluids. Elsevier, 2011. http://dx.doi.org/10.1016/b978-0-12-383858-2.00011-1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
10

Adua Awejori, Gabriel, and Mileva Radonjic. "Review of Geochemical and Geo-Mechanical Impact of Clay-Fluid Interactions Relevant to Hydraulic Fracturing." In Hydraulic Fracturing [Working Title]. IntechOpen, 2021. http://dx.doi.org/10.5772/intechopen.98881.

Full text
Abstract:
Shale rocks are an integral part of petroleum systems. Though, originally viewed primarily as source and seal rocks, introduction of horizontal drilling and hydraulic fracturing technologies have essentially redefined the role of shale rocks in unconventional reservoirs. In the geological setting, the deposition, formation and transformation of sedimentary rocks are characterised by interactions between their clay components and formation fluids at subsurface elevated temperatures and pressures. The main driving forces in evolution of any sedimentary rock formation are geochemistry (chemistry of solids and fluids) and geomechanics (earth stresses). During oil and gas production, clay minerals are exposed to engineered fluids, which initiate further reactions with significant implications. Application of hydraulic fracturing in shale formations also means exposure and reaction between shale clay minerals and hydraulic fracturing fluids. This chapter presents an overview of currently available published literature on interactions between formation clay minerals and fluids in the subsurface. The overview is particularly focused on the geochemical and geomechanical impacts of interactions between formation clays and hydraulic fracturing fluids, with the goal to identify knowledge gaps and new research questions on the subject.
APA, Harvard, Vancouver, ISO, and other styles

Conference papers on the topic "Components of Drilling Fluid"

1

Sharma, M. M., and R. W. Wunderlich. "The Alteration of Rock Properties Due to Interactions With Drilling Fluid Components." In SPE Annual Technical Conference and Exhibition. Society of Petroleum Engineers, 1985. http://dx.doi.org/10.2118/14302-ms.

Full text
APA, Harvard, Vancouver, ISO, and other styles
2

Vryzas, Zisis, Omar Mahmoud, Hisham Nasr-El-Din, Vassilis Zaspalis, and Vassilios C. Kelessidis. "Incorporation of Fe3O4 Nanoparticles as Drilling Fluid Additives for Improved Drilling Operations." In ASME 2016 35th International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2016. http://dx.doi.org/10.1115/omae2016-54071.

Full text
Abstract:
A successful drilling operation requires an effective drilling fluid system. Due to the variety of downhole conditions across the globe, the fluid system should be designed to meet complex challenges such as High-Pressure/High-Temperature (HPHT) environments, while promoting better productivity with a minimum interference for completion operations. This study aims to improve the rheological and fluid loss properties of water-bentonite suspensions by using both commercial (C-NP) and custom-made (CM-NP) iron oxide (Fe3O4) nanoparticles (NP) as drilling fluid additives. Superparamagnetic Fe3O4 NP
APA, Harvard, Vancouver, ISO, and other styles
3

Chodankar, Abhijeet D., and Cheng-Xian Lin. "Borehole Temperature Modelling in High Temperature Drilling Environment Based on Heat Transfer Laws." In ASME 2019 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/imece2019-10085.

Full text
Abstract:
Abstract High temperature drilling environment has a drastic effect on drilling fluids, wellbore stability, and drilling system components. It has been observed that drilling fluids displace conventional halide based fluids in High Pressure and High Temperature (HPHT) wells leading to corrosion and environmental hazards, while wellbore strengthens further as a result of an increase in fracture initiation pressure in high temperature environment. However, it seriously damages the downhole tools like sensors, elastomer dynamic seals, lithium batteries, electronic component and boards leading to
APA, Harvard, Vancouver, ISO, and other styles
4

Cayeux, Eric. "Automatic Measurement of the Dependence on Pressure and Temperature of the Mass Density of Drilling Fluids." In SPE/IADC International Drilling Conference and Exhibition. SPE, 2021. http://dx.doi.org/10.2118/204084-ms.

Full text
Abstract:
Abstract Drilling fluids are subjected to large variations of pressure and temperature while they are circulated in a well. This span of pressures and temperatures is so large that the mass density of the drilling mud differs from one depth to another. For a precise estimation of the hydrostatic and hydrodynamic pressures, it is therefore important to have a good estimation of the pressure and temperature dependence of the mass density of drilling fluids. Usually, the mass density of drilling fluids is manually measured with a mud balance. The pressure and temperature dependence of the mass de
APA, Harvard, Vancouver, ISO, and other styles
5

Helmy, Samy A., Judith K. Guy-Caffey, Leroy J. Detiveaux, Sabine C. Zeilinger, Mike D. Barry, and Cliff Aaron Corbell. "The Successful Development, Validation, and First Use of an Innovative Zinc-Free, High-Density Completion Fluid for Deepwater." In SPE/IADC International Drilling Conference and Exhibition. SPE, 2021. http://dx.doi.org/10.2118/204095-ms.

Full text
Abstract:
Abstract The completion of wells using solids-laden fluids can impair the reservoir production and also damage the functioning of downhole completion tools, therefore completing wells with clear-brine fluids is the preferred alternative. Clear brines are typically halide or formate salt solutions in water, but they, too, have shortcomings. At lower temperatures or increased pressures, the salts in these fluids can crystallize causing potential well control concerns and/or costly operational disruptions. Completion of high-pressure wells, with densities above approximately 14.3 lb/gal for calci
APA, Harvard, Vancouver, ISO, and other styles
6

Deshpande, Kedar, Pravin Naphade, and Chad Wuest. "Advanced Computational Modeling for Estimating Safe Cuttings Load Through MPD Surface Equipment." In IADC/SPE Asia Pacific Drilling Technology Conference. SPE, 2021. http://dx.doi.org/10.2118/201074-ms.

Full text
Abstract:
Abstract The critical components of Managed Pressure Drilling (MPD) operations include surface manifold, surface chokes and the pipes connected to Mud Gas separators. The MPD surface equipment needs to safely handle a multiphase mixture of drilling mud, cuttings load and reservoir fluid influx during operations. The focus of this work is to establish safe cuttings load limit that can be handled by MPD system using advanced computational fluid dynamics (CFD) modeling approach. In MPD operations the surface choke is the key surface manifold component through which the fluid and cuttings flow bef
APA, Harvard, Vancouver, ISO, and other styles
7

Bamberger, Judith Ann, and Margaret S. Greenwood. "Evaluation of Ultrasonic Methods for In-Situ Real-Time Characterization of Drilling Mud." In ASME 2005 Fluids Engineering Division Summer Meeting. ASMEDC, 2005. http://dx.doi.org/10.1115/fedsm2005-77488.

Full text
Abstract:
A real time multi-functional ultrasonic sensor system is proposed to provide automated drilling fluid monitoring that can improve the capability and development of slimhole and microhole drilling. This type of reliable, accurate, and affordable drilling fluid monitoring will reduce the overall costs in exploration and production. It will also allow more effective drilling process automation while providing rig personnel a safer and more efficient work environment. Accurate and timely measurements of drilling fluid properties such as flow rate, density, viscosity, and solid loading are key comp
APA, Harvard, Vancouver, ISO, and other styles
8

de Queiroz Neto, Joao Crisosthomo. "Characterization Of The Invasion Profile And Its Components Due To Drilling Fluid Mudcake Filtration, Using The Synchrotron Light X-Ray Fluorescence." In SPE European Formation Damage Conference. Society of Petroleum Engineers, 2005. http://dx.doi.org/10.2118/95025-ms.

Full text
APA, Harvard, Vancouver, ISO, and other styles
9

Numkam, Gilles, and Babak Akbari. "Phase Inversion of Complex Fluids With Implications to Drilling Fluids." In ASME 2019 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/smasis2019-5715.

Full text
Abstract:
Abstract Global energy demand continues to drive oil and gas exploration in increasingly challenging environments. The extreme temperatures and pressures drilling fluids are subjected to require optimum design of their rheology. Among the numerous components used in the design of drilling fluids are surfactants. Surfactants play an important role in the emulsification of immiscible liquids as well as the alteration of cuttings wettability to facilitate transport to the surface. Nonionic surfactants, depending on their chemical group allow the inversion of oil-in-water emulsions (O/W) to water-
APA, Harvard, Vancouver, ISO, and other styles
10

Rotimi, Oluwatosin John, David Nnaemeka Ukwu, Wang Zhenli, et al. "Sequential Prediction of Drilling Fluid Loss Using Support Vector Machine and Decision Tree Methods." In SPE Nigeria Annual International Conference and Exhibition. SPE, 2021. http://dx.doi.org/10.2118/207185-ms.

Full text
Abstract:
Abstract Machine learning methods have been applied to predict depths of fluid loss in hydrocarbon exploration.During drilling, lost circulation can be described as the unpleasant loss of all or part of drilling mud or fluid into the immediate formations or affected formation by excessive hydrostatic pressure, sufficient to fracture the formation or expand existing fractures encountered during the drilling process. In this study, we deployed Python codes of Support Vector Machine (SVM) and Decision Tree (DT) methodsto categorical data obtained from drilling operations in a producing field to p
APA, Harvard, Vancouver, ISO, and other styles

Reports on the topic "Components of Drilling Fluid"

1

Thomas, Carla, Flemings Peter, and Kehua You. Technical Note: UT-GOM2-2 Drilling Fluid. Office of Scientific and Technical Information (OSTI), 2020. http://dx.doi.org/10.2172/1773344.

Full text
APA, Harvard, Vancouver, ISO, and other styles
2

Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2003. http://dx.doi.org/10.2172/896508.

Full text
APA, Harvard, Vancouver, ISO, and other styles
3

Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896509.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896510.

Full text
APA, Harvard, Vancouver, ISO, and other styles
5

Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896513.

Full text
APA, Harvard, Vancouver, ISO, and other styles
6

Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896515.

Full text
APA, Harvard, Vancouver, ISO, and other styles
7

Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2005. http://dx.doi.org/10.2172/896519.

Full text
APA, Harvard, Vancouver, ISO, and other styles
8

Tatiana Hoff and Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896522.

Full text
APA, Harvard, Vancouver, ISO, and other styles
9

Bob O'Connor and Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity With Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896523.

Full text
APA, Harvard, Vancouver, ISO, and other styles
10

Maribella Irving and Fred Growcock. Enhanced Wellbore Stabilization and Reservoir Productivity with Aphron Drilling Fluid Technology. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/896524.

Full text
APA, Harvard, Vancouver, ISO, and other styles
We offer discounts on all premium plans for authors whose works are included in thematic literature selections. Contact us to get a unique promo code!