Research on the Temperature Field Distribution Characteristics of Bottomhole PDC Bits during the Efficient Development of Unconventional Oil and Gas in Long Horizontal Wells

Author:

Fu Li12,Yang Henglin12,He Chunlong3,Wang Yuan12,Zhang Heng12,Chen Gang12,Du Yukun45

Affiliation:

1. Engineering Technology R&D Company Ltd., China National Petroleum Corporation (CNPC), Beijing 102206, China

2. National Engineering Research Center of Oil & Gas Drilling and Completion Technology, Beijing 102206, China

3. Technology Research Center of South Sichuan Natural Gas Exploration & Development Branch of Jilin Oilfield, China National Petroleum Corporation (CNPC), Zigong 643000, China

4. State Key Laboratory of Deep Oil and Gas, China University of Petroleum (East China), Qingdao 266580, China

5. School of Petroleum Engineering, China University of Petroleum, Qingdao 266580, China

Abstract

Unconventional tight oil and gas resources, including shale oil and gas, have become the main focus for increasing reserves and production. The safe and efficient development of unconventional oil and gas is a crucial demand for the energy development strategy. Deep tight oil and gas resource development generally adopts horizontal well drilling methods. During drilling, especially in long horizontal sections, the high temperature frequently causes failures of downhole drilling tools and rotary steering tools. The temperature rises sharply during rock breaking with the drill bit. Existing wellbore heat transfer models do not fully consider the impact of heat generated by the drill bit on the wellbore temperature field. This paper aims to experimentally study the temperature rise law of the cutting tooth of the bottom polycrystalline diamond compact (PDC) bit during rock breaking. A set of evaluation devices was developed to study the temperature field distribution characteristics at the bottom of the PDC bit during rock breaking under different experimental conditions. The results indicate that the flow rate of drilling fluid, bit rotation speed, and weight on bit (WOB) significantly affect the distribution of the temperature field at the well bottom. This experimental research on the temperature field distribution characteristics at the bottom of the PDC bit during rock breaking helps reveal the heat transfer characteristics of the long horizontal section wellbore, guide the optimization of drilling parameters, and develop temperature control methods. It is of great significance for the advancement of efficient development technologies for unconventional resources in long horizontal wells.

Funder

Scientific Research Fund Project of the National Engineering Research Center of Oil & Gas Drilling and Completion Technology

Natural Science Foundation of Shandong Province

Publisher

MDPI AG

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