Down-hole catalytic upgrading of heavy crude oil

被引:57
作者
Weissman, JG [1 ]
Kessler, RV [1 ]
Sawicki, RA [1 ]
Belgrave, JDM [1 ]
Laureshen, CJ [1 ]
Mehta, SA [1 ]
Moore, RG [1 ]
Ursenbach, MG [1 ]
机构
[1] UNIV CALGARY,DEPT CHEM & PETR ENGN,CALGARY,AB T2N 1N4,CANADA
关键词
D O I
10.1021/ef9501814
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Several processing options have been developed to accomplish near-well-bore in-situ upgrading of heavy crude oils. These processes are designed to pass oil over a fixed bed of catalyst prior to entering the production well, the catalyst being placed by conventional gravel pack methods. The presence of brine and the need to provide heat and reactant gases in a down-hole environment provide challenges not present in conventional processing. These issues were addressed and the processes demonstrated by use of a modified combustion tube apparatus. Middle-Eastern heavy crude oil and the corresponding brine were used at the appropriate reservoir conditions. In-situ combustion was used to generate reactive gases and to drive fluids over a heated sand or catalyst bed, simulating the catalyst contacting portion of the proposed processes. The heavy crude oil was found to be amenable to in-situ combustion at anticipated reservoir conditions, with a relatively low air requirement. Forcing the oil to flow over a heated zone prior to production results in some upgrading of the oil, as compared to the original oil, due to thermal effects. Passing the oil over a hydroprocessing catalyst located in the heated zone results in a product that is significantly upgraded as compared to either the original oil or thermally-processed oil. Catalytic upgrading is due to hydrogenation and results in about a 50% sulfur removal and an 8 degrees API gravity increase. Additionally, the heated catalyst was found to be efficient at converting CO to additional H-2. While all of the technologies needed for a successful field trial of in-situ catalytic upgrading exist, a demonstration has yet to be undertaken.
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页码:883 / 889
页数:7
相关论文
共 27 条
  • [1] [Anonymous], 1991, [No title captured], Patent No. [US 5055175, 5055175]
  • [2] [Anonymous], 1987, [No title captured], Patent No. [US 4706751, 4706751]
  • [3] DEAN DM, 1982, ET120579 US DEP EN
  • [4] DEBRUIJN J, 1994, Patent No. 2103508
  • [5] Gregoli A., 1989, US Patent, Patent No. 4818370
  • [6] Gregoli AA, 1985, Patent, Patent No. [US4501445, 4501445]
  • [7] GREIDANUS JW, 1977, CAN I MIN METALL, V17, P162
  • [8] Hewgill G.S., 1992, US. Patent, Patent No. [5105887 A, 5105887]
  • [9] HYDROGEN FOR THE ENHANCED RECOVERY OF HEAVY CRUDES
    HOFFMAN, EJ
    [J]. ENERGY SOURCES, 1989, 11 (04): : 263 - 272
  • [10] JOHNSON HS, 1985, Patent No. 1195639