A Method of Composite Profile Control for Medium and High Permeability Reservoirs
A high-permeability and oil-reservoir technology, applied in the field of composite profile control of medium and high permeability oil reservoirs, can solve the problems of reducing the effective amount of plugging fractures in the oil layer, limited depth of profile control, and large amount of profile control agent, so as to increase the swept volume. and oil washing efficiency, strong formation adaptability and wide range of reservoirs
- Summary
- Abstract
- Description
- Claims
- Application Information
AI Technical Summary
Problems solved by technology
Method used
Examples
Embodiment 1
[0017] An oilfield block A of Hekou Oil Production Plant of Shengli Oilfield, 2 injections and 8 productions, water injection development started in 1990, geological reserves 5.6×10 5 t, coefficient of variation 8.7, reservoir thickness 12m, average pore radius 15 microns, permeability 1500×10 -3 um 2 , before profile control, the comprehensive water content is 97.5%, and the daily fluid production is 335m 3 , daily oil 8.4t. Implement the concrete steps of the present invention in this block as follows:
[0018] (1) Conduct tracer detection on block A, the tracer used is carbon 14 (14C), measure the water breakthrough time of the oil well, and determine the waterline advance speed.
[0019] Table 1. Tracer detection results of oil wells in block A
[0020] Hashtag
Oil-water well distance, m
see water time, d
Waterline propulsion speed, m / d
speed ranking
A-1
250
45
5.6
4
A-2
185
60
3.1
7
A-3
320
30
...
Embodiment 2
[0029] Block B of an oilfield in Hekou Oil Production Plant of Shengli Oilfield, 3 injections and 10 productions, water injection development started in 1995, geological reserves 9.2×10 5 t, coefficient of variation 10.5, reservoir thickness 24m, average pore radius 23 microns, permeability 2300×10 -3 um 2 , the comprehensive water content before profile control is 96.0%, and the daily fluid production is 480m 3 , daily oil 19.2t. Implement the concrete steps of the present invention in this block as follows:
[0030] (1) Conduct tracer detection on block B, the tracer used is iodine 131 (131I), measure the water breakthrough time of the oil well, and determine the waterline advance speed.
[0031] Table 2 Tracer detection results of oil wells in Block B
[0032] Hashtag
Oil-water well distance, m
see water time, d
Waterline propulsion speed, m / d
speed ranking
B-1
180
50
3.6
8
B-2
253
78
3.2
9
B-3
280
...
Embodiment 3
[0040] A block M of an oilfield in Gudao Oil Production Plant of Shengli Oilfield, 1 injection and 5 productions, water injection development started in 1998, geological reserves 2.5×105 , coefficient of variation 9.2, reservoir thickness 18m, average pore radius 36 microns, permeability 3500×10 -3 um 2 , the comprehensive water content before profile control is 98.2%, and the daily liquid production is 360m 3 , daily oil 6.5t. Implement the concrete steps of the present invention in this block as follows:
[0041] (1) Conduct tracer detection on block M, the tracer used is hydrogen 3 (3H), measure the water breakthrough time of the oil well, and determine the waterline advance speed.
[0042] Table 3 Tracer detection results of oil wells in block M
[0043] Hashtag
Oil-water well distance, m
see water time, d
Waterline propulsion speed, m / d
speed ranking
M-1
175
32
5.5
4
M-2
230
60
3.8
5
[0044] M...
PUM
Abstract
Description
Claims
Application Information
- R&D Engineer
- R&D Manager
- IP Professional
- Industry Leading Data Capabilities
- Powerful AI technology
- Patent DNA Extraction
Browse by: Latest US Patents, China's latest patents, Technical Efficacy Thesaurus, Application Domain, Technology Topic, Popular Technical Reports.
© 2024 PatSnap. All rights reserved.Legal|Privacy policy|Modern Slavery Act Transparency Statement|Sitemap|About US| Contact US: help@patsnap.com