Worldwide shale-oil reserves: towards a global approach based on the principles of Petroleum System and the Petroleum System Yield
Description
Global inventory of shale-oil resources and reserves are far from being complete even in mature basins which have been intensively drilled and produced and in which the main parameters of the regional or local oil-prone source rocks are known. But even in these cases, difficulties still occur for deriving reserves from resources: reaching a plausible recovery factor is actually a complex task because of the lack of production history in many shale-oil ventures. This exercise is in progress in several institutions (EIA, USGS, AAPG) or private oil and gas companies on a basin-by-basin basis in order to estimate the global potential. This analytical method is very useful and accurate but also very time consuming. In the last EIA report in 2013 'only' 95 basins had been surveyed whereas for example, no Middle-East or Caspian basins have been taken into account. In order to accelerate the process and to reach an order of magnitude of worldwide shale-oil reserves, we propose hereafter a method based on the Petroleum System principle as defined by Demaison and Huizinga and more precisely on the Petroleum System Yield (PSY) defined as the ratio between the accumulated hydrocarbons in conventional traps (HCA) and hydrocarbons generated by the mature parts of the source-rock (HCG). By knowing the initial oil reserves worldwide we can first derive the global HCA and then the HCG. Using a proxy for amount of the migrated oil from the source-rocks to the trap, one can obtain the retained accumulations within the shales and then their reserves by using assumptions about a possible average recovery factor for shale-oil. As a definition of shale-oil or more precisely LTO (light tight oil), we will follow Jarvie stating that 'shale-oil is oil stored in organic rich intervals or migrated into juxtaposed organic lean intervals'. According to several institutes or companies, the worldwide initial recoverable oil reserves should reach around 3000 Gbo, taking into account the already produced oil (1000 Gbo) and the 'Yet to Find' oil (500 Gbo). Following a review of more than 50 basins within different geodynamical contexts, the world average PSY value is around 5% except for very special Extra Heavy Oils (EHO) belts like the Orinoco or Alberta fore-land basins where PSY can reach 50% because large part of the migrated oils have been trapped and preserved and not destroyed by oxidation as it is so often the case. This 50% PSY figure is here considered as a good proxy for the global amount of expelled and migrated oil as compared to the HCG. Confirmation of such figures can also be achieved when studying the ratio of S1 (in-place hydrocarbon) versus S2 (potential hydrocarbons to be produced) of some source rocks in Rock-Eval laboratory measurements. Using 3000 Gbo as worldwide oil reserves and assuming a quite optimistic average recovery factor of 40%, the corresponding HCA is close to 7500 Gbo and HCG (=HCA/PSY) close to 150000 Gbo. Assuming a 50% expulsion (migration) factor, we obtain that 75000 Gbo is trapped in source-rocks worldwide which corresponds to the shale-oil resources. To derive the (recoverable) reserves from these resources, one needs to estimate an average recovery factor (RF). Main parameters for determining recovery factors are reasonable values of porosity and saturation which is difficult to obtain in these extremely fine-grained, tight unconventional reservoirs associated with sampling and laboratories technical work-flows which vary significantly. However, new logging technologies (NMR) as well as SEM images reveal that the main effective porosity in oil-shales is created, thanks to maturity increase, within the organic matter itself. Accordingly, porosity is increasing with Total Organic Carbon (TOC) and paradoxically with.. burial. Moreover, porosity has never been water bearing, is mainly oil-wet and therefore oil saturation is very high, measured and calculated between 75 and 90%. Indirect validation of such high figures can be obtained when looking at the first vertical producing wells in the Bakken LTO before hydraulic fracturing started which show a very low water-cut (between 1 and 4%) up to a cumulative oil production of 300 Kbo. One can therefore assume that the highest RF values of around 10% should be used, as proposed by several researchers. Accordingly, the worldwide un-risked shale-oil reserves should be around 7500 Gbo. However, a high risk factor should be applied to some subsurface pitfalls and to many surface hurdles caused by human activities which can hamper developments of shale-oil production. Assuming that only shale-oil basins in (semi) desert conditions will be developed, a probability factor of 20% can be used. Accordingly, the global shale-oil reserves could reach 1500 Gbo which is half the initial conventional reserves and could therefore double the present conventional oil remaining reserves
Availability note (English)
Available from doi: http://dx.doi.org/10.1051/bsgf/2017199Additional details
Additional titles
- Original title (English)
- Les reserves mondiales de petrole non-conventionnel (shales-oils): pour une approche mondiale fondee sur le systeme petrolier et le PSY (Petroleum System Yield)
Identifiers
- DOI
- 10.1051/bsgf/2017199;
Publishing Information
- Journal Title
- Bulletin de la Societe Geologique de France
- Journal Volume
- 188
- Journal Issue
- no.5
- Journal Page Range
- p. 33.1-33.9
- ISSN
- 0037-9409
- CODEN
- BSGFAE
INIS
- Country of Publication
- France
- Country of Input or Organization
- France
- INIS RN
- 49076525
- Subject category
- S58: GEOSCIENCES;
- Descriptors DEI
- INVENTORIES; OIL SATURATION; OIL SHALE DEPOSITS; PRODUCTION; RESOURCE ASSESSMENT; SEDIMENTARY BASINS; SOURCE ROCKS
- Descriptors DEC
- GEOLOGIC DEPOSITS; GEOLOGIC STRUCTURES; MINERAL RESOURCES; RESOURCES; SATURATION
Optional Information
- Notes
- 21 refs.