Enhanced oil recovery Field planning and development strategies
Language: Inglés Publication details: Massachusetts Elsevier 2010Description: xv; 192 pISBN:- 9781856178556
- 622.338 A472 0015284
| Current library | Call number | Status | Barcode | |
|---|---|---|---|---|
| Biblioteca Alejandro Angel Bulgheroni | 622.338 A472 0015284 (Browse shelf(Opens below)) | Not for loan | 200059342 |
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| 622.338 A286 0015281 Advanced reservoir management and engineering | 622.338 A431 0005173 Production operations Well completions, workover, and stimulation | 622.338 A431 0015828 Production operations Well completions, workover, and stimulation | 622.338 A472 0015284 Enhanced oil recovery Field planning and development strategies | 622.338 A512 0003957 Advances in filtration and separation technology Filtration and separation in oil and gas drilling and production operations | 622.338 A512 0003959 Advances in filtration and separation technology Pollution control technology for oil and gas drilling and production operations | 622.338 A512 0003960 Advances in filtration and separation technology Fine particle filtration and separation |
Enhanced-Oil Recovery (EOR) evaluations focused on asset acquisition or rejuvenation involve a combination of complex decisions, using different data sources. EOR projects have been traditionally associated with high CAPEX and OPEX, as well as high financial risk, which tend to limit the number of EOR projects launched. In this book, the authors propose workflows for EOR evaluations that account for different volumes and quality of information. This flexible workflow has been successfully applied to oil property evaluations and EOR feasibility studies in many oil reservoirs. The methodology associated with the workflow relies on traditional (look-up tables, XY correlations, etc.) and more advanced (data mining for analog reservoir search and geology indicators) screening methods, emphasizing identification of analogues to support decision making. The screening phase is combined with analytical or simplified numerical simulations to estimate full-field performance by using reservoir data-driven segmentation procedures.



