Reduce the charge risking applying migration tracers : Benzocarbazoles as Petroleum Migration Biomarker in the Norwegian North Sea. Geochemical migration and reservoir filling reconstruction for oil fields of the blocks 15,16, 30 and 31
Hydrocarbon exploration success depends on matching the pre-drill assumptions. Geological and geochemical studies are made to identify, understand and reduce the pre-drill risk of a well. In the Norwegian North Sea, the charge risk became the most important risk, as charge failure accounts for the main reason of being a dry well for post well analysis. Although the Norwegian North Sea is an area where up to ten thousand wells have been drilled and the petroleum system is extensively studied. Based on the charge failure post drill the focus is now on charge and migrations, as the proven source rock quantity and quality are in many cases proven. Current charge risking primarily relies on basin models built on geophysical, geological, geochemical source rock parameters. Geochemical post well analyses are typically done only for oil–oil or oil–source correlations and in many cases not integrated to geophysical and geology evaluations. Migration pathways are often only evaluated with basin modeling software and not verified with geochemical data, even though migration is the key factor to determine whether hydrocarbons reach a reservoir or not. This thesis addresses secondary hydrocarbon migration as the main charge risk by applying molecular migration tracers and uses benzocarbazoles plus methylxanthones as migration tracers to reconstruct migration routes and reservoir filling histories in the Norwegian North Sea. Benzocarbazoles and methylxanthones are polar compounds and undergo systematic geochromatographic fractionation during migration through a pore network. The migration tracers are used as proxies in relation to migration distance and direction. Benzocarbazoles and methylxanthones are direct geochemical measurements of hydrocarbon migration. Geochemical analyses are independent from other data and just based oils or extract samples from drilled wells. The study objective is to demonstrate that molecular migration tracers can significantly improve charge risking, reduce exploration uncertainty, and establish geochemistry as a key element for petroleum system analysis. Integration of migration tracers with geophysics, geology, sedimentology, and petrophysics in a basin model provides a real added value for the understanding of the charge and hence reduce the charge risk significantly.
Preview
Rights
Use and reproduction:
Please note that individual components of the publication may be subject to other licensing or copyright conditions.