Drilling Fluid Density and Hydraulic Drag Reduction With Glass Bubble Additives

被引:19
作者
Kutlu, Bahri [1 ,4 ]
Takach, Nicholas [2 ]
Ozbayoglu, Evren M. [2 ]
Miska, Stefan Z. [2 ]
Yu, Mengjiao [2 ]
Mata, Clara [3 ]
机构
[1] Univ Tulsa, Dept Petr Engn, 17802 IH-10 West Suite 300, San Antonio, TX 78257 USA
[2] Univ Tulsa, Dept Petr Engn, 800 S Tucker Dr, Tulsa, OK 74104 USA
[3] 3M, 3M Ctr, 236-2A-07 St, Paul, MN 55144 USA
[4] Apache Corp, 17802 IH-10 West Suite 300, San Antonio, TX 78257 USA
来源
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME | 2017年 / 139卷 / 04期
关键词
TURBULENT; FLOW;
D O I
10.1115/1.4036540
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
This study concentrates on the use of materials known as hollow glass spheres, also known as glass bubbles, to reduce the drilling fluid density below the base fluid density without introducing a compressible phase to the wellbore. Four types of lightweight glass spheres with different physical properties were tested for their impact on rheological behavior, density reduction effect, survival ratio at elevated pressures, and hydraulic drag reduction effect when mixed with water-based fluids. A Fann75 high pressure high temperature (HPHT) viscometer and a flow loop were used for the experiments. Results show that glass spheres successfully reduce the density of the base drilling fluid while maintaining an average of 0.93 survival ratio, the rheological behavior of the tested fluids at elevated concentrations of glass bubbles is similar to the rheological behavior of conventional drilling fluids and hydraulic drag reduction is present up to certain concentrations. All results were integrated into hydraulics calculations for a wellbore scenario that accounts for the effect of temperature and pressure on rheological properties, as well as the effect of glass bubble concentration on mud temperature distribution along the wellbore. The effect of drag reduction was also considered in the calculations.
引用
收藏
页数:11
相关论文
共 24 条
[1]  
Aadnoy B., 2009, ADV DRILLING WELL TE, P203
[2]  
Cheng C. Y., 2013, FEDSM201316392 ASME
[3]  
Colebrook C. F., 1939, J. Inst. Civ. Eng, V12, P393, DOI [10.1680/ijoti.1939.13150, DOI 10.1680/IJOTI.1939.13150, 10.1680/ijoti.1939.14509, DOI 10.1680/IJOTI.1939.14509]
[4]   Drag reduction by polymer additives in a turbulent pipe flow: Numerical and laboratory experiments [J].
DenToonder, JMJ ;
Hulsen, MA ;
Kuiken, GDC ;
Nieuwstadt, FTM .
JOURNAL OF FLUID MECHANICS, 1997, 337 :193-231
[5]   TURBULENT FLOW OF NON-NEWTONIAN SYSTEMS [J].
DODGE, DW ;
METZNER, AB .
AICHE JOURNAL, 1959, 5 (02) :189-204
[6]   A new determination of the molecular dimensions [J].
Einstein, A .
ANNALEN DER PHYSIK, 1906, 19 (02) :289-306
[7]   Turbulent drag reduction using fluid spheres [J].
Gillissen, J. J. J. .
JOURNAL OF FLUID MECHANICS, 2013, 716 :83-95
[8]  
Govier G. W., 1972, FLOW COMPLEX MIXTURE, P792
[9]   OBSERVATIONS ON TURBULENT-DRAG REDUCTION IN A DILUTE SUSPENSION OF CLAY IN SEA-WATER [J].
GUST, G .
JOURNAL OF FLUID MECHANICS, 1976, 75 (MAY13) :29-&
[10]   EFFECT OF ADDITIVES ON FLUID FRICTION [J].
HOYT, JW .
JOURNAL OF BASIC ENGINEERING, 1972, 94 (02) :258-+