Academic literature on the topic 'Environmental aspects of Drilling muds'

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Journal articles on the topic "Environmental aspects of Drilling muds"

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Flemming, H. C., and J. Wingender. "Relevance of microbial extracellular polymeric substances (EPSs) - Part II: Technical aspects." Water Science and Technology 43, no. 6 (2001): 9–16. http://dx.doi.org/10.2166/wst.2001.0328.

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Extracellular polymeric substances (EPSs) are involved in both detrimental and beneficial consequences of microbial aggregates such as biofilms, flocs and biological sludges. In biofouling, they are responsible for the increase of friction resistance, change of surface properties such as hydrophobicity, roughness, colour, etc. In biocorrosion of metals they are involved by their ability to bind metal ions. In bioweathering, they contribute by their complexing properties to the dissolution of minerals. The EPSs represent a sorption site for pollutants such as heavy metal ions and organic molecu
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Wiesłw, Wiesław, and Marcin Rzepka. "Zjawiska chemiczno-technologiczne podczas zabiegu cementowania otworu w aspekcie projektowania rur okładzinowych." Nafta-Gaz 77, no. 2 (2021): 92–105. http://dx.doi.org/10.18668/ng.2021.02.04.

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Borehole design is a complex and multidimensional question in terms of the number of issues to be resolved in terms of mechanical, environmental and public safety engineering requirements. In this article contains a review and evaluation of chemical phenomena and processes (not always correctly evaluated) that occur during the preparation of cement slurry and after its displacement during the formation of the gel structure of cement and cement sheath. As a result of the chemically complicated process of slurry gelation, a new structure is formed, i.e. steel pipe – sheath (cement stone) – a roc
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Galitskova, Yulia Mikhailovna. "USE OF DRILLING MUDS." ENVIRONMENT. TECHNOLOGIES. RESOURCES. Proceedings of the International Scientific and Practical Conference 1 (June 20, 2019): 59. http://dx.doi.org/10.17770/etr2019vol1.4101.

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Drilling of wells is accompanied by pollution of all environmental components with drilling and process waste. With drilling operations carried out, terrain and soil mass disturbance occur first. Waste generated during the drilling process includes drilling muds, return drilling muds, drilling wastewater. The contaminating ability of drilling waste is determined by the use of chemical reagents and components involved in the preparation and processing of drilling muds. The use of additives and reagents is necessary to make sure the solution displays certain properties that ensure effective well
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Błaż, Sławomir. "Odwracalne ciecze emulsyjne o wysokim stężeniu fazy wewnętrznej (HIPR)." Nafta-Gaz 77, no. 3 (2021): 175–86. http://dx.doi.org/10.18668/ng.2021.03.04.

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Invert muds are the most commonly used oil-based drilling muds. The oil to water phase ratio in invert drilling muds ranges from 65/35 up to 90/10, with the most common ones ranging from 70/30 to 80/20. At these oil to water phase ratios, the drilling mud is characterized with high stability and appropriate rheological and structural parameters allowing to adjust drilling mud density in a wide range. One of the disadvantages of invert muds is their cost (due to oil content) and environmental problems associated with waste and management of oily drill cuttings. Taking into account the propertie
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Galitskova, Yulia. "Use of Drilling Muds for Remediation." MATEC Web of Conferences 196 (2018): 03001. http://dx.doi.org/10.1051/matecconf/201819603001.

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Drilling wells is an ecologically dangerous type of work accompanied by contamination of soil, subsurface and surface waters, pollution of open air with drilling and technological wastes. Throughout the drilling process, drilling waste is generated, such as drilling muds, return drilling muds, drilling waste water. The resulting waste is usually disposed of at landfills, which ensure minimal environmental impact. The use of drilling muds in other spheres is hindered by the complex composition of oily waste. Samples of liquids and solids in drilling wastes, picked at three locations, were subje
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Gasymov, O. I. "On the definition of thermo-physical properties of drilling mud and cement slurry in well drilling." Azerbaijan Oil Industry, no. 4 (April 15, 2020): 15–18. http://dx.doi.org/10.37474/0365-8554/2020-4-15-18.

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A great number of studies are dedicated to the definition of heat conductivity of drilling muds and cement slurries. It should be noted that existing works on the specification of heat conductivity of the drilling mud are based on either experimental or theoretical studies in which well conditions are reflected incompletely. Considering all above-mentioned aspects, the practical interest consists in the definition of thermal conductivity of drilling muds and cement slurries in well drilling on the basis of the data obtained at the wellhead during unsteady processes execution. The paper offers
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Gonzalez-Rodriguez, J. G., and R. P. M. Procter. "Environmental cracking of AISI 4145 steel in drilling muds." Corrosion Science 35, no. 1-4 (1993): 515–20. http://dx.doi.org/10.1016/0010-938x(93)90184-i.

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Raimondi, Peter T., Arthur M. Barnett, and Paul R. Krause. "The effects of drilling muds on marine invertebrate larvae and adults." Environmental Toxicology and Chemistry 16, no. 6 (1997): 1218–28. http://dx.doi.org/10.1002/etc.5620160617.

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Bakhtyar, Sajida, and Marthe Monique Gagnon. "Toxicity assessment of individual ingredients of synthetic-based drilling muds (SBMs)." Environmental Monitoring and Assessment 184, no. 9 (2011): 5311–25. http://dx.doi.org/10.1007/s10661-011-2342-x.

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Capdepuy, M., O. Goya, and C. Quentin‐Noury. "Sanitary aspects of the thermal muds in Aquitaine." International Journal of Environmental Health Research 4, no. 1 (1994): 1–6. http://dx.doi.org/10.1080/09603129409356792.

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