An Assessment of Environmental Impact on Offshore Decommissioning of Oil and Gas Pipelines
Abstract
:1. Introduction
2. Framework and Regulations
3. Options for Decommissioning
4. Environmental Baseline
5. Potential Environmental Impacts
5.1. Noise Impact
5.2. Seabed Disturbance
5.3. Waste Disposal
5.4. Biodiversity
5.5. Water Pollution
5.6. Air Pollution
5.7. Potential Economic Impact
6. Mitigation Measures
6.1. Data Transparency
6.2. Utilizing Current Technology in Decommissioning Works
6.3. Mathematical Models
6.4. Decommissioning Forecast
6.5. Revising the Framework for Decommissioning Pipelines
6.6. Repurpose
6.7. Recycling or Reusing the Oil and Gas Pipelines
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Ahiaga-Dagbui, D.D.; Love, P.E.; Whyte, A.; Boateng, P. Costing and technological challenges of offshore oil and gas decommissioning in the UK North Sea. J. Constr. Eng. Manag. 2017, 143, 05017008. [Google Scholar] [CrossRef] [Green Version]
- Arnould, J.P.; Monk, J.; Ierodiaconou, D.; Hindell, M.A.; Semmens, J.; Hoskins, A.J.; Costa, D.P.; Abernathy, K.; Marshall, G.J. Use of anthropogenic sea floor structures by Australian fur seals: Potential positive ecological impacts of marine industrial development? PLoS ONE 2015, 10, e0130581. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Azimov, U.; Birkett, M. Feasibility study and design of an ocean wave power generation station integrated with a decommissioned offshore oil platform in UK waters. Int. J. Energy Environ. 2017, 8, 161–174. [Google Scholar]
- Barrymore, S.J.; Ballard, J. Decommissioning—A path forward for Australia. APPEA J. 2019, 59, 25–33. [Google Scholar] [CrossRef]
- Basile, V.; Capobianco, N.; Vona, R. The usefulness of sustainable business models: Analysis from oil and gas industry. Corp. Soc. Responsib. Environ. Manag. 2021, 28, 1801–1821. [Google Scholar] [CrossRef]
- Birchenough, S.N.; Degraer, S. Science in support of ecologically sound decommissioning strategies for offshore man-made structures: Taking stock of current knowledge and considering future challenges. ICES J. Mar. Sci. 2020, 77, 1075–1078. [Google Scholar] [CrossRef] [Green Version]
- BOEM (Burea of Ocean Energy Management), Central California Call Areas, 13 February 2021 (2018). Available online: https://www.boem.gov/sites/default/files/renewable-energy-program/State-Activities/CA/Central-California-Call-Areas-Map-NOAA.pdf (accessed on 15 May 2023).
- Bond, T.; Partridge, J.C.; Taylor, M.D.; Langlois, T.J.; Malseed, B.E.; Smith, L.D.; McLean, D.L. Fish associated with a subsea pipeline and adjacent seafloor of the North West Shelf of Western Australia. Mar. Environ. Res. 2018, 141, 53–65. [Google Scholar] [CrossRef]
- Bubbico, R.; Carbone, F.; Ramírez-Camacho, J.; Pastor, E.; Casal, J. Conditional probabilities of post-release events for hazardous materials pipelines. Process Saf. Environ. Prot. 2016, 104, 95–110. [Google Scholar] [CrossRef] [Green Version]
- Bull, A.S.; Love, M.S. Worldwide oil and gas platform decommissioning: A review of practices and reefing options. Ocean Coast. Manag. 2019, 168, 274–306. [Google Scholar] [CrossRef]
- Burdon, D.; Barnard, S.; Boyes, S.J.; Elliott, M. Oil and gas infrastructure decommissioning in marine protected areas: System complexity, analysis and challenges. Mar. Pollut. Bull. 2018, 135, 739–758. [Google Scholar] [CrossRef]
- Chandler, J.; White, D.; Techera, E.J.; Gourvenec, S.; Draper, S. Engineering and legal considerations for decommissioning of offshore oil and gas infrastructure in Australia. Ocean Eng. 2017, 131, 338–347. [Google Scholar] [CrossRef] [Green Version]
- Cantle, P.; Bernstein, B. Air emissions associated with decommissioning California’s offshore oil and gas platforms. Integr. Environ. Assess. Manag. 2015, 11, 564–571. [Google Scholar] [CrossRef]
- Capobianco, N.; Basile, V.; Loia, F.; Vona, R. Toward a sustainable decommissioning of offshore platforms in the oil and gas industry: A PESTLE analysis. Sustainability 2021, 13, 6266. [Google Scholar] [CrossRef]
- Day, P.B.; Stuart-Smith, R.D.; Edgar, G.J.; Bates, A.E. Species’ thermal ranges predict changes in reef fish community structure during 8 years of extreme temperature variation. Divers. Distrib. 2018, 24, 1036–1046. [Google Scholar] [CrossRef] [Green Version]
- Ekins, P.; Vanner, R.; Firebrace, J. Decommissioning of offshore oil and gas facilities: A comparative assessment of different scenarios. J. Environ. Manag. 2006, 79, 420–438. [Google Scholar] [CrossRef] [Green Version]
- Erbe, C.; Marley, S.A.; Schoeman, R.P.; Smith, J.N.; Trigg, L.E.; Embling, C.B. The effects of ship noise on marine mammals—A review. Front. Mar. Sci. 2019, 6, 606. [Google Scholar] [CrossRef] [Green Version]
- Fam, M.; Konovessis, D.; Ong, L.; Tan, H. A review of offshore decommissioning regulations in five countries—Strengths and weaknesses. Ocean Eng. 2018, 160, 244–263. [Google Scholar] [CrossRef]
- Fowler, A.; Macreadie, P.; Jones, D.; Booth, D. A multi-criteria decision approach to decommissioning of offshore oil and gas infrastructure. Ocean Coast. Manag. 2014, 87, 20–29. [Google Scholar] [CrossRef] [Green Version]
- Fowler, A.M.; Jørgensen, A.M.; Svendsen, J.C.; Macreadie, P.I.; Jones, D.O.B.; Boon, A.R.; Booth, D.J.; Brabant, R.; Callahan, E.; Claisse, J.T.; et al. Environmental benefits of leaving offshore infrastructure in the ocean. Front. Ecol. Environ. 2018, 16, 571–578. [Google Scholar] [CrossRef]
- Gosgortekhnadzor of the Russian Federation on 06/10/2002, State Unitary Enterprise IPTER, 2003, 123 p. Available online: https://www.russiangost.com/p-99627-ost-153-394-027-2002.aspx (accessed on 12 February 2022).
- Grant, A.; Briggs, A.D. Toxicity of sediments from around a North Sea oil platform: Are metals or hydrocarbons responsible for ecological impacts? Mar. Environ. Res. 2002, 53, 95–116. [Google Scholar] [CrossRef]
- Harrald, M.; Hayes, P.J.; Hall, M. Impact of trawling on the benthos around oil and gas pipelines. Scott. Mar. Freshw. Sci. 2018, 9, 28. [Google Scholar]
- Hawkins, A.D.; Popper, A.N. A sound approach to assessing the impact of underwater noise on marine fishes and invertebrates. ICES J. Mar. Sci. 2017, 74, 635–651. [Google Scholar] [CrossRef]
- Diesels, C. Low Cost Ways to Reduce Emissions from Construction Equipment; US Environmental Protection Agency: Washington, DC, USA, 2007. Available online: http://www.epa.gov/cleandiesel/documents/100r07002.pdf (accessed on 30 August 2021).
- International Energy Agency (IEA). World Energy Outlook: Executive Summary, Page-5. 2018. Available online: https://www.iea.org/reports/world-energy-outlook-2018 (accessed on 9 September 2021).
- Kaiser, M. FERC pipeline decommissioning cost in the U.S. Gulf of Mexico, 1995–2015. Mar. Policy 2017, 82, 167–180. [Google Scholar] [CrossRef]
- Kang, Y.; Zuo, L.; Guo, Z. Abandonment of onshore oil and gas pipelines. Oil Gas Storage Transp. 2015, 34, 122–127. [Google Scholar]
- Khalidov, I.; Milovidov, K.; Stepin, Y. Models for the Multicriteria Selection of Options for Decommissioning Projects for Offshore Oil and Gas Structures. Energies 2023, 16, 2253. [Google Scholar] [CrossRef]
- Khalidov, I.; Milovidov, K.; Soltakhanov, A. Decommissioning of oil and gas assets: Industrial and environmental security management, international experience and Russian practice. Heliyon 2021, 7, e07646. [Google Scholar] [CrossRef]
- Koroma, S.G.; Animah, I.; Shafiee, M.; Tee, K.F. Decommissioning of Deep and Ultra-deep Water Oil and Gas Pipelines: Issues and Challenges. International Journal of Oil. Gas Coal Technol. 2019, 22, 470–487. [Google Scholar] [CrossRef]
- Lacey, N.C.; Hayes, P. Epifauna associated with subsea pipelines in the North Sea. ICES J. Mar. Sci. 2020, 77, 1137–1147. [Google Scholar] [CrossRef] [Green Version]
- Lakhal, S.; Khan, M.; Islam, M. An “Olympic” framework for a green decommissioning of an offshore oil platform. Ocean Coast. Manag. 2009, 52, 113–123. [Google Scholar] [CrossRef]
- Leporini, M.; Marchetti, B.; Corvaro, F.; Polonara, F. Reconversion of offshore oil and gas platforms into renewable energy sites production: Assessment of different scenarios. Renew. Energy 2019, 135, 1121–1132. [Google Scholar] [CrossRef]
- Li, Y.; Hu, Z. A review of multi-attributes decision-making models for offshore oil and gas facilities decommissioning. J. Ocean Eng. Sci. 2021, 7, 58–74. [Google Scholar] [CrossRef]
- Love, M.S.; York, A. A comparison of the fish assemblages associated with an oil/gas pipeline and adjacent seafloor in the Santa Barbara Channel, Southern California Bight. Bull. Mar. Sci. 2005, 77, 101–118. [Google Scholar]
- MacIntosh, A.; Dafforn, K.; Penrose, B.; Chariton, A.; Cresswell, T. Ecotoxicological effects of decommissioning offshore petroleum infrastructure: A systematic review. Crit. Rev. Environ. Sci. Technol. 2021, 52, 3283–3321. [Google Scholar] [CrossRef]
- Mackenzie, W. Offshore Decommissioning in Asia Pacific Could Cost US$100 Billion. 2018. Available online: https://www.woodmac.com/press-releases/asia-decom/ (accessed on 21 December 2022).
- Manouchehri, S. Subsea Pipelines and Flowlines Decommissioning: What We Should Know for a Rational Approach. In International Conference on Offshore Mechanics and Arctic Engineering; American Society of Mechanical Engineers: New York, NY, USA, 2017; Volume 57700, p. V05BT04A009. [Google Scholar]
- Martins, I.D.; Moraes, F.F.; Távora, G.; Soares, H.L.F.; Infante, C.E.; Arruda, E.F.; Bahiense, L.; Caprace, J.; Lourenço, M.I. A review of the multicriteria decision analysis applied to oil and gas decommissioning problems. Ocean Coast. Manag. 2020, 184, 105000. [Google Scholar] [CrossRef]
- Maruschak, P.; Prentkovskis, O.; Bishchak, R. Defectiveness of external and internal surfaces of the main oil and gas pipelines after long-term operation. J. Civ. Eng. Manag. 2016, 22, 279–286. [Google Scholar] [CrossRef]
- McLean, D.L.; Partridge, J.C.; Bond, T.; Birt, M.J.; Bornt, K.R.; Langlois, T.J. Using industry ROV videos to assess fish associations with subsea pipelines. Cont. Shelf Res. 2017, 141, 76–97. [Google Scholar] [CrossRef]
- McLean, D.; Speed, C.W.; Birt, M.J.; Colquhoun, J.; Case, M.; Stowar, M.; Bond, T.; Ierodiaconou, D.; Whitmarsh, S.K.; Taylor, M.D.; et al. Habitat value of subsea wells and pipelines for fishery target species in Australia. Front. Mar. Sci. 2022, 9, 1537. [Google Scholar] [CrossRef]
- Milne, P. Offshore Oil and Gas May Finally Have to Cough Up for Its $56b Clean-Up Bill; The Sunday Morning Herald: Sydney, Australia, 2022; Available online: https://www.smh.com.au/business/companies/offshore-oil-and-gas-may-finally-have-to-cough-up-for-its-56b-clean-up-bill-20220113-p59o1f.html (accessed on 23 April 2023).
- Nelson, J.; Dyer, A.S.; Romeo, L.F.; Wenzlick, M.Z.; Zaengle, D.; Duran, R.; Bauer, J. Evaluating Offshore Infrastructure Integrity (No. DOE/NETL-2021/2643); National Energy Technology Laboratory (NETL): Pittsburgh, PA, USA; Morgantown, WV, USA; Albany, OR, USA, 2021; 74p.
- Nishimoto, M.M.; Washburn, L.; Love, M.S.; Schroeder, D.M.; Emery, B.M.; Kui, L. Timing of juvenile fish settlement at offshore oil platforms coincides with water mass advection into the Santa Barbara Channel, California. Bull. Mar. Sci. 2019, 95, 559–582. [Google Scholar] [CrossRef]
- Offshore Safety Directive Regulator (OSDR). The Offshore Pipeline Integrity Management Inspection Guide. 2021. Available online: https://www.hse.gov.uk/offshore/pipelines-integritymanagement-inspection.pdf (accessed on 23 November 2021).
- Karlheinz Spitz, Brian Twomey, Environmental Issues Surrounding Oil Rig Decommissioning, Reverse Engineering Services Ltd., Green Crop, ISBN 978–0–9925207–0–0. Available online: http://www.greencorpllc.com/wp-content/uploads/2019/03/Oil-_-Gas-Decommissioning-Oil-Rig_Greencorp_RESL.pdf (accessed on 4 October 2021).
- Paiva, P.M.; Junior, J.L.; Calderon, E.N.; Juliano, M.M.F.; Molisani, M.M. Decommissioning of subsea oil and gas production pipelines: Hydrodynamic modeling for preliminary assessment of sediment resuspension and burial onto benthic organisms. J. Integr. Coast. Zone Manag. 2020, 20, 161–168. [Google Scholar] [CrossRef]
- Panin, S.V.; Maruschak, P.O.; Vlasov, I.V.; Syromyatnikova, A.S.; Bolshakov, A.M.; Berto, F.; Prentkovskis, O.; Ovechkin, B.B. Effect of operating degradation in Arctic conditions on physical and mechanical properties of 09Mn2Si pipeline steel. Procedia Eng. 2017, 178, 597–603. [Google Scholar] [CrossRef]
- Ramírez-Camacho, J.; Carbone, F.; Pastor, E.; Bubbico, R.; Casal, J. Assessing the consequences of pipeline accidents to support land-use planning. Saf. Sci. 2017, 97, 34–42. [Google Scholar] [CrossRef]
- Rouse, S.; Kafas, A.; Catarino, R.; Peter, H. Commercial fisheries interactions with oil and gas pipelines in the North Sea: Considerations for decommissioning. ICES J. Mar. Sci. 2018, 75, 279–286. [Google Scholar] [CrossRef]
- Rouse, S.; Hayes, P.; Davies, I.M.; Wilding, T.A. Offshore pipeline decommissioning: Scale and context. Mar. Pollut. Bull. 2018, 129, 241–244. [Google Scholar] [CrossRef] [PubMed]
- Rouse, S.; Hayes, P.; Wilding, T.A. Commercial fisheries losses arising from interactions with offshore pipelines and other oil and gas infrastructure and activities. ICES J. Mar. Sci. 2020, 77, 1148–1156. [Google Scholar] [CrossRef] [Green Version]
- Schramm, K.D.; Marnane, M.J.; Elsdon, T.S.; Jones, C.M.; Saunders, B.J.; Newman, S.J.; Harvey, E.E. Fish associations with shallow water subsea pipelines compared to surrounding reef and soft sediment habitats. Sci. Rep. 2021, 11, 238. [Google Scholar] [CrossRef]
- Solan, M.; Hauton, C.; Godbold, J.A.; Wood, C.L.; Leighton, T.G.; White, P. Anthropogenic sources of underwater sound can modify how sediment-dwelling invertebrates mediate ecosystem properties. Sci. Rep. 2016, 6, 1–9. [Google Scholar] [CrossRef] [Green Version]
- Smith, J.; Byrd, R. Estimated air emissions savings from partially removing and reefing the jacket of a large California oil and gas platform. Ocean Coast. Manag. 2021, 211, 105741. [Google Scholar] [CrossRef]
- Tan, Y.; Li, H.; Cheng, J.; Wang, J.; Jiang, B.; Song, Y.; Wang, X. Cost and environmental impact estimation methodology and potential impact factors in offshore oil and gas platform decommissioning: A review. Environ. Impact Assess. Rev. 2021, 87, 106536. [Google Scholar] [CrossRef]
- Lei, G.; Stankoa, M.; Silva, T.L. Formulations for automatic optimization of decommissioning timing in offshore oil and gas field development planning. Comp. Chem. Eng. 2022, 165, 107910. [Google Scholar] [CrossRef]
- Techera, E.J.; Chandler, J. Offshore installations, decommissioning and artificial reefs: Do current legal frameworks best serve the marine environment? Mar. Policy 2015, 59, 53–60. [Google Scholar] [CrossRef]
- Thames Area Decommissioning Environmental Impact Assessment. 2014. Available online: https://www.tullowoil.com/application/files/3515/8490/1263/eia-for-thames-area-decommissioning.pdf (accessed on 25 September 2021).
- UN ESCAP. Assessment of the Environmental Impact of Port Development: A Guidebook for EIA of Port Development. 1992. Available online: https://www.unescap.org/resources/assessmentenvironmental-impact-port-development-guidebook-eia-port-development (accessed on 26 September 2021).
- von Hellfeld, R.; Gade, C.; Koppel, D.J.; Walters, W.J.; Kho, F.; Hastings, A. An approach to assess potential environmental mercury release, food web bioaccumulation, and human dietary methylmercury uptake from decommissioning offshore oil and gas infrastructure. J. Hazard. Mater. 2023, 452, 131298. [Google Scholar] [CrossRef]
- Watson, S.M.; McLean, D.L.; Balcom, B.J.; Birchenough, S.N.; Brand, A.M.; Camprasse, E.C.; Claisse, J.T.; Coolen, J.W.; Cresswell, T.; Fokkema, B.; et al. Offshore decommissioning horizon scan: Research priorities to support decision-making activities for oil and gas infrastructure. Sci. Total Environ. 2023, 878, 163015. [Google Scholar] [CrossRef]
- Williams, R.; Wright, A.J.; Ashe, E.; Blight, L.K.; Bruintjes, R.; Canessa, R.; Wale, M.A. Impacts of anthropogenic noise on marine life: Publication patterns, new discoveries, and future directions in research and management. Ocean Coast. Manag. 2015, 115, 17–24. [Google Scholar] [CrossRef] [Green Version]
- Xiao, C.; Zhang, Y.; Zhu, F. Immunotoxicity of polychlorinated biphenyls (PCBs) to the marine crustacean species, Scylla paramamosain. Environ. Pollut. 2021, 291, 118229. [Google Scholar] [CrossRef]
- Xie, M.Y.; Li, B.; Cui, L.; Wang, H.T.; Yan, L. How to abandon onshore oil and gas pipelines. Oil Gas Storage Transp. 2014, 33, 825–828. [Google Scholar]
- Yavorskyi, A.V.; Karpash, M.O.; Zhovtulia, L.Y.; Poberezhny, L.Y.; Maruschak, P.O. Safe operation of engineering structures in the oil and gas industry. J. Nat. Gas Sci. Eng. 2017, 46, 289–295. [Google Scholar] [CrossRef]
- Zapukhliak, V.; Poberezhny, L.; Maruschak, P.; Grudz, V., Jr.; Stasiuk, R.; Brezinová, J.; Guzanová, A. Mathematical modeling of unsteady gas transmission system operating conditions under insufficient loading. Energies 2019, 12, 1325. [Google Scholar] [CrossRef] [Green Version]
USA | UK | |
---|---|---|
Main regulator | BSEE (Bureau of Safety and Environmental Enforcement) | DECC (Department of Energy and Climate Change) |
Key regulation | NTL G05 “Decommissioning Guidance for Wells and Platforms”—October 2010 | Regional: OSPAR Decision 98/3 on the Disposal of Disused Offshore Installations; National: The Petroleum Act 1998. |
Conversion to artificial reef | Authorized | Prohibited, except for excessively heavy or concrete structures |
Implementation and maintenance of pipeline integrity management process | Success Criteria |
|
Metal | Maximum Concentration in Sediments (µg/g) |
---|---|
Ba | 484 |
Cr | 22 |
Cu | 46 |
Fe | 14,320 |
Mn | 628 |
Pb | 195 |
Zn | 927 |
THC | 17,211 |
Contaminant | Origins of Contaminant | Pre-Drilling Mean Concentration (mg/kg dw) | During Operations Mean Concentration (mg/kg dw) | Post-Drilling Mean Concentration (mg/kg dw) | ANZG Sediment DGV (mg/kg dw) | Reference |
---|---|---|---|---|---|---|
PAH | Discharges from the platform to the seabed | 55 | - | 48 | 10 | [45] |
Ba | Discharges from the platform to the seabed | 752 | - | 862 | NA | |
Pb | Drilling cuttings | - | 1926 | - | 50 | |
Ni | Drilling cuttings | - | 67 | - | 21 | |
Zn | Drilling cuttings | - | 1346 | - | 200 |
Criteria | Total Removal | Partial Removal | Leave In-Situ | |
---|---|---|---|---|
Environmental | Seabed disturbance | −3 | −2 | −1 |
Air pollution/emission due to construction equipment | −3 | −2 | −1 | |
Waste disposal | −3 | −2 | −1 | |
Noise impact | −3 | −2 | −1 | |
Water quality | −3 | −2 | −1 | |
Biodiversity | −3 | −2 | −1 | |
Social | Impact on fisheries/Livelihood of fisherman | 0 | 0 | 1 |
Economic | Cost | −3 | −2 | −1 |
Employment opportunities/recruitment of workforce | 3 | 2 | 1 | |
Safety | Risk to navigation | −1 | −2 | −3 |
Risk to personnel | −3 | −2 | −1 | |
Score | −22 | −16 | −9 |
Aspect | Mitigation Strategies |
---|---|
Noise | Machinery, tools, and equipment are to be in good working condition. The vessels’ work activities will be carefully planned to optimize their use. Careful scheduling and selection of equipment with less noise level below 80 dB. |
Air pollution, the carbon footprint of vessels | Fuel consumption to minimize by operational practices and power management systems for engines, generators, and any other combustion plant to reduce air emissions and minimize carbon footprint in the atmosphere. Decommissioning activities planned to minimize vessel use, such as optimization of vessel and helicopter schedules. |
Seabed disturbance | Improving management in optimizing pipeline routing to minimize the amount of trenching will also minimize the unavoidable impacts of increased suspended sediment. Man-made chemicals such as Polychlorinated biphenyls (PCBs) that are detrimental to the water quality should be substituted with other chemicals that do not contribute to the damage to the water quality. |
Biodiversity | Relocating species to other locations during the decommissioning process. Mitigating impact considerations by minimizing machine noise or suspended sediments (turbidity) or by avoidance of decommissioning activities. |
Solid waste from decommissioning of pipelines | Reuse and recycling of pipelines or cut materials for post-decommission instead of throwing the potential materials into landfill. Conducting examination after decommissioning to ensure all cut materials are removed. Creating local waste treatment facilities and local decommissioning yards. |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Shams, S.; Prasad, D.M.R.; Imteaz, M.A.; Khan, M.M.H.; Ahsan, A.; Karim, M.R. An Assessment of Environmental Impact on Offshore Decommissioning of Oil and Gas Pipelines. Environments 2023, 10, 104. https://doi.org/10.3390/environments10060104
Shams S, Prasad DMR, Imteaz MA, Khan MMH, Ahsan A, Karim MR. An Assessment of Environmental Impact on Offshore Decommissioning of Oil and Gas Pipelines. Environments. 2023; 10(6):104. https://doi.org/10.3390/environments10060104
Chicago/Turabian StyleShams, Shahriar, D. M. Reddy Prasad, Monzur Alam Imteaz, Md. Munir Hayet Khan, Amimul Ahsan, and Md. Rezaul Karim. 2023. "An Assessment of Environmental Impact on Offshore Decommissioning of Oil and Gas Pipelines" Environments 10, no. 6: 104. https://doi.org/10.3390/environments10060104
APA StyleShams, S., Prasad, D. M. R., Imteaz, M. A., Khan, M. M. H., Ahsan, A., & Karim, M. R. (2023). An Assessment of Environmental Impact on Offshore Decommissioning of Oil and Gas Pipelines. Environments, 10(6), 104. https://doi.org/10.3390/environments10060104