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Ice coverage of the Arctic Ocean is predicted to become thinner and to cover less area with time. The combination of more ice-free waters for exploration and navigation, along with increasing demand for hydrocarbons and improvements in technologies for the discovery and exploitation of new hydrocarbon resources have focused attention on the hydrocarbon potential of the Arctic Basin and its margins. The purpose of this document is to 1) summarize results of a review of published hydrocarbon resources in the Arctic, including both conventional oil and gas and methane hydrates and 2) develop a set of digital maps of the hydrocarbon potential of the Arctic Ocean. These maps can be combined with predictions of ice-free areas to enable estimates of the likely regions and sequence of hydrocarbon production development in the Arctic. In this report, conventional oil and gas resources are explicitly linked with potential gas hydrate resources. This has not been attempted previously and is particularly powerful as the likelihood of gas production from marine gas hydrates increases. Available or planned infrastructure, such as pipelines, combined with the geospatial distribution of hydrocarbons is a very strong determinant of the temporal-spatial development of Arctic hydrocarbon resources. Significant unknowns decrease themore » certainty of predictions for development of hydrocarbon resources. These include: 1) Areas in the Russian Arctic that are poorly mapped, 2) Disputed ownership: primarily the Lomonosov Ridge, 3) Lack of detailed information on gas hydrate distribution, and 4) Technical risk associated with the ability to extract methane gas from gas hydrates. Logistics may control areas of exploration more than hydrocarbon potential. Accessibility, established ownership, and leasing of exploration blocks may trump quality of source rock, reservoir, and size of target. With this in mind, the main areas that are likely to be explored first are the Bering Strait and Chukchi Sea, in spite of the fact that these areas do not have highest potential for future hydrocarbon reserves. Opportunities for improving the mapping and assessment of Arctic hydrocarbon resources include: 1) Refining hydrocarbon potential on a basin-by-basin basis, 2) Developing more realistic and detailed distribution of gas hydrate, and 3) Assessing the likely future scenarios for development of infrastructure and their interaction with hydrocarbon potential. It would also be useful to develop a more sophisticated approach to merging conventional and gas hydrate resource potential that considers the technical uncertainty associated with exploitation of gas hydrate resources. Taken together, additional work in these areas could significantly improve our understanding of the exploitation of Arctic hydrocarbons as ice-free areas increase in the future.« le
 
Ice coverage of the Arctic Ocean is predicted to become thinner and to cover less area with time. The combination of more ice-free waters for exploration and navigation, along with increasing demand for hydrocarbons and improvements in technologies for the discovery and exploitation of new hydrocarbon resources have focused attention on the hydrocarbon potential of the Arctic Basin and its margins. The purpose of this document is to 1) summarize results of a review of published hydrocarbon resources in the Arctic, including both conventional oil and gas and methane hydrates and 2) develop a set of digital maps of the hydrocarbon potential of the Arctic Ocean. These maps can be combined with predictions of ice-free areas to enable estimates of the likely regions and sequence of hydrocarbon production development in the Arctic. In this report, conventional oil and gas resources are explicitly linked with potential gas hydrate resources. This has not been attempted previously and is particularly powerful as the likelihood of gas production from marine gas hydrates increases. Available or planned infrastructure, such as pipelines, combined with the geospatial distribution of hydrocarbons is a very strong determinant of the temporal-spatial development of Arctic hydrocarbon resources. Significant unknowns decrease themore » certainty of predictions for development of hydrocarbon resources. These include: 1) Areas in the Russian Arctic that are poorly mapped, 2) Disputed ownership: primarily the Lomonosov Ridge, 3) Lack of detailed information on gas hydrate distribution, and 4) Technical risk associated with the ability to extract methane gas from gas hydrates. Logistics may control areas of exploration more than hydrocarbon potential. Accessibility, established ownership, and leasing of exploration blocks may trump quality of source rock, reservoir, and size of target. With this in mind, the main areas that are likely to be explored first are the Bering Strait and Chukchi Sea, in spite of the fact that these areas do not have highest potential for future hydrocarbon reserves. Opportunities for improving the mapping and assessment of Arctic hydrocarbon resources include: 1) Refining hydrocarbon potential on a basin-by-basin basis, 2) Developing more realistic and detailed distribution of gas hydrate, and 3) Assessing the likely future scenarios for development of infrastructure and their interaction with hydrocarbon potential. It would also be useful to develop a more sophisticated approach to merging conventional and gas hydrate resource potential that considers the technical uncertainty associated with exploitation of gas hydrate resources. Taken together, additional work in these areas could significantly improve our understanding of the exploitation of Arctic hydrocarbons as ice-free areas increase in the future.« le
 
Document type: Report
 
 
== Full document ==
 
<pdf>Media:Draft_Content_266086334-beopen267-3920-document.pdf</pdf>
 
  
  
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* [https://digital.library.unt.edu/ark:/67531/metadc934937/m2/1/high_res_d/958008.pdf https://digital.library.unt.edu/ark:/67531/metadc934937/m2/1/high_res_d/958008.pdf]
 
* [https://digital.library.unt.edu/ark:/67531/metadc934937/m2/1/high_res_d/958008.pdf https://digital.library.unt.edu/ark:/67531/metadc934937/m2/1/high_res_d/958008.pdf]
  
* [https://core.ac.uk/display/71335744 https://core.ac.uk/display/71335744],[http://www.pnl.gov/main/publications/external/technical_reports/PNNL-17922.pdf http://www.pnl.gov/main/publications/external/technical_reports/PNNL-17922.pdf],[https://digital.library.unt.edu/ark:/67531/metadc934937 https://digital.library.unt.edu/ark:/67531/metadc934937],[https://www.osti.gov/servlets/purl/958008 https://www.osti.gov/servlets/purl/958008],[https://academic.microsoft.com/#/detail/1541646351 https://academic.microsoft.com/#/detail/1541646351]
+
* [https://www.osti.gov/servlets/purl/958008 https://www.osti.gov/servlets/purl/958008],
 +
: [https://core.ac.uk/display/71335744 https://core.ac.uk/display/71335744],
 +
: [https://www.researchgate.net/profile/Signe_White/publication/237407875_Preliminary_Geospatial_Analysis_of_Arctic_Ocean_Hydrocarbon_Resources/links/5540f9370cf2718618dc95e0.pdf https://www.researchgate.net/profile/Signe_White/publication/237407875_Preliminary_Geospatial_Analysis_of_Arctic_Ocean_Hydrocarbon_Resources/links/5540f9370cf2718618dc95e0.pdf],
 +
: [https://digital.library.unt.edu/ark:/67531/metadc934937 https://digital.library.unt.edu/ark:/67531/metadc934937],
 +
: [http://www.pnl.gov/main/publications/external/technical_reports/PNNL-17922.pdf http://www.pnl.gov/main/publications/external/technical_reports/PNNL-17922.pdf],
 +
: [https://academic.microsoft.com/#/detail/1541646351 https://academic.microsoft.com/#/detail/1541646351]

Revision as of 12:58, 22 January 2021

Abstract

Ice coverage of the Arctic Ocean is predicted to become thinner and to cover less area with time. The combination of more ice-free waters for exploration and navigation, along with increasing demand for hydrocarbons and improvements in technologies for the discovery and exploitation of new hydrocarbon resources have focused attention on the hydrocarbon potential of the Arctic Basin and its margins. The purpose of this document is to 1) summarize results of a review of published hydrocarbon resources in the Arctic, including both conventional oil and gas and methane hydrates and 2) develop a set of digital maps of the hydrocarbon potential of the Arctic Ocean. These maps can be combined with predictions of ice-free areas to enable estimates of the likely regions and sequence of hydrocarbon production development in the Arctic. In this report, conventional oil and gas resources are explicitly linked with potential gas hydrate resources. This has not been attempted previously and is particularly powerful as the likelihood of gas production from marine gas hydrates increases. Available or planned infrastructure, such as pipelines, combined with the geospatial distribution of hydrocarbons is a very strong determinant of the temporal-spatial development of Arctic hydrocarbon resources. Significant unknowns decrease themore » certainty of predictions for development of hydrocarbon resources. These include: 1) Areas in the Russian Arctic that are poorly mapped, 2) Disputed ownership: primarily the Lomonosov Ridge, 3) Lack of detailed information on gas hydrate distribution, and 4) Technical risk associated with the ability to extract methane gas from gas hydrates. Logistics may control areas of exploration more than hydrocarbon potential. Accessibility, established ownership, and leasing of exploration blocks may trump quality of source rock, reservoir, and size of target. With this in mind, the main areas that are likely to be explored first are the Bering Strait and Chukchi Sea, in spite of the fact that these areas do not have highest potential for future hydrocarbon reserves. Opportunities for improving the mapping and assessment of Arctic hydrocarbon resources include: 1) Refining hydrocarbon potential on a basin-by-basin basis, 2) Developing more realistic and detailed distribution of gas hydrate, and 3) Assessing the likely future scenarios for development of infrastructure and their interaction with hydrocarbon potential. It would also be useful to develop a more sophisticated approach to merging conventional and gas hydrate resource potential that considers the technical uncertainty associated with exploitation of gas hydrate resources. Taken together, additional work in these areas could significantly improve our understanding of the exploitation of Arctic hydrocarbons as ice-free areas increase in the future.« le


Original document

The different versions of the original document can be found in:

https://core.ac.uk/display/71335744,
https://www.researchgate.net/profile/Signe_White/publication/237407875_Preliminary_Geospatial_Analysis_of_Arctic_Ocean_Hydrocarbon_Resources/links/5540f9370cf2718618dc95e0.pdf,
https://digital.library.unt.edu/ark:/67531/metadc934937,
http://www.pnl.gov/main/publications/external/technical_reports/PNNL-17922.pdf,
https://academic.microsoft.com/#/detail/1541646351
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Document information

Published on 01/01/2008

Volume 2008, 2008
DOI: 10.2172/958008
Licence: CC BY-NC-SA license

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