Enhancing CO2 Injection Efficiency: Rock-Breaking Characteristics of Particle Jet Impact in Bottom Hole

Author:

Wang Yi12,Zhao Jian34

Affiliation:

1. Key Laboratory of Ultra-Deep Drilling Engineering Technology, SINOPEC, Beijing 102200, China

2. SINOPEC Research Institute of Petroleum Engineering, Co., Ltd., Beijing 102200, China

3. Dongying Academy of Science and Technology, China University of Petroleum (East China), Dongying 257061, China

4. School of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China

Abstract

Storing CO2 in oil and gas reservoirs offers a dual benefit: it reduces atmospheric CO2 concentration while simultaneously enhancing oil displacement efficiency and increasing crude oil production. This is achieved by injecting CO2 into producing oil and gas wells. Employing particle jet technology at the bottom of CO2 injection wells significantly expands the bottom hole diameter, thereby improving CO2 injection efficiency and storage safety. To further investigate the rock-breaking characteristics and efficiency, a finite element model for particle jet rock breaking is established by utilizing the smoothed particle hydrodynamics (SPH) method. Specifically, this new model considers the high temperature and confining pressure conditions present at the bottom hole. The dynamic response and fracturing effects of rock subjected to a particle jet are also revealed. The results indicate that particle jet impact rebound significantly influences the size of the impact crater, with the maximum first principal stress primarily concentrated on the crater’s surface. The impact creates a “v”-shaped crater on the rock surface, with both depth and volume increasing proportionally to jet inlet velocity and particle diameter. However, beyond a key particle concentration of 3%, the increase in depth and volume becomes less pronounced. Confining pressure is found to hinder particle impact rock-breaking efficiency, while high temperatures contribute to larger impact depths and breaking volumes. This research can provide theoretical support and parameter guidance for the practical application of particle impact technology in enhancing CO2 injection efficiency at the bottom hole.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

National Key Research and Development Program of China

Youth Innovation and Technology Support Program for Shandong Provincial Universities

Science and Technology Plan of Dongying City

Publisher

MDPI AG

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