Fracture treatment design and execution in low-porosity chalk reservoirs

被引:6
|
作者
Cipolla, C. L. [1 ]
Hansen, K. K.
Ginty, W. R.
机构
[1] Pinnacle Technol, Houston, TX USA
[2] Amerada Hess AS, Kuala Lumpur, Malaysia
来源
SPE PRODUCTION & OPERATIONS | 2007年 / 22卷 / 01期
关键词
D O I
10.2118/86485-PA
中图分类号
TE [石油、天然气工业];
学科分类号
0820 ;
摘要
This paper details the results for 33 propped-fracture treatments in low-porosity zones in the South Arne (SA) field, Danish North Sea. To date, seven horizontal wells (2900 in total vertical depth [TVD]) have been completed using 100 tip screenout (TSO) propped-fracture treatments containing 70 million pounds of proppant. The target oil bearing Tor and Ekofisk intervals range from 40 to 120 in of combined thickness, with a Young's modulus and permeability that can vary from less than 0.5 to over 2.5 million psi and 0.1 to 4 in, respectively, along the horizontal section. The wide variations in reservoir and rock properties present significant fracture design and execution challenges. Results indicate that propped-fracture treatments become increasingly more difficult to place as porosity decreases, and this problem is primarily attributed to higher natural fracture/fissure density in the lower-porosity, higher-modulus zones. Production data indicate that these natural fractures or fissures do not measurably contribute to productivity, but can be "activated" under fracturing conditions. Contrary to intuition, pad size and fluid-loss additives must be increased and maximum proppant concentration decreased in low-porosity (low-permeability) zones. In the higher-porosity, higher-permeability northern portion of the field, pad sizes of 35,000 gal containing 20,000 lb of 100-mesh sand allowed the placement of 800,000 lb of proppant at concentrations up to 15 pounds of proppant added per gallon of fluid (ppa). However, in the lower-porosity, lower permeability southern portion of the field, pad sizes of 200,000 gal containing more than 100,000 lb of 100-mesh sand were required to place similar proppant volumes, with concentrations limited to 8 ppa. This paper summarizes field data from 100 treatments, illustrating the design changes necessary to place propped-fracture treatments in low-porosity chalk reservoirs. The paper documents the relationship between chalk porosity, fluid efficiency, and treatment design.
引用
收藏
页码:94 / 106
页数:13
相关论文
共 50 条
  • [1] Dual-porosity saturation model of low-porosity and low-permeability clastic reservoirs
    Li Xia
    Zhao Wenzhi
    Zhou Cancan
    Wang Tongshan
    Li Chaoliu
    PETROLEUM EXPLORATION AND DEVELOPMENT, 2012, 39 (01) : 88 - 98
  • [2] Dual-porosity saturation model of low-porosity and low-permeability clastic reservoirs
    Li, Xia
    Zhao, Wenzhi
    Zhou, Cancan
    Wang, Tongshan
    Li, Chaoliu
    Shiyou Kantan Yu Kaifa/Petroleum Exploration and Development, 2012, 39 (01): : 82 - 91
  • [3] Low-porosity ceramic tiles
    Asfa-Wossen, Ledetta
    MATERIALS WORLD, 2010, 18 (09) : 6 - 6
  • [4] Low-porosity and low-permeability reservoirs characterization using low-frequency seismic attribute
    Jing Zeng
    Handong Huang
    Sanyi Yuan
    Chunhua Wu
    Acta Geophysica, 2020, 68 : 1345 - 1360
  • [5] Low-porosity and low-permeability reservoirs characterization using low-frequency seismic attribute
    Zeng, Jing
    Huang, Handong
    Yuan, Sanyi
    Wu, Chunhua
    ACTA GEOPHYSICA, 2020, 68 (05) : 1345 - 1360
  • [6] Ultrasonic porosity estimation of low-porosity ceramic samples
    Eskelinen, J.
    Hoffren, H.
    Kohout, T.
    Haeggstrom, E.
    Pesonen, L. J.
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 26A AND 26B, 2007, 894 : 1320 - 1327
  • [7] Design of low-porosity auxetic tessellations with reduced mechanical stress concentrations
    Velasquez, M. Barillas
    Francesconi, L.
    Taylor, M.
    EXTREME MECHANICS LETTERS, 2021, 48
  • [8] Reducing formation damage to low-porosity and low-permeability CBM reservoirs using calcium carbonate nanoparticles
    Gu, Sui
    Cai, Jihua
    Chang, Dewu
    Diqiu Kexue - Zhongguo Dizhi Daxue Xuebao/Earth Science - Journal of China University of Geosciences, 2015, 40 (06): : 1093 - 1100
  • [9] Specific mercury porosimetry for low-porosity materials
    Dubois, C
    Couchot, P
    Calleja, AA
    Boeglin, E
    Chambaudet, A
    MEASUREMENT SCIENCE AND TECHNOLOGY, 1998, 9 (12) : 2016 - 2022
  • [10] Low-porosity tricalcium aluminate hardened paste
    Zivica, V.
    Palou, M. T.
    Bagel, L.
    Krizma, M.
    CONSTRUCTION AND BUILDING MATERIALS, 2013, 38 : 1191 - 1198