Surface-set Diamond Bit Design for Deep-Sea Operating Environment of Seafloor Drill and Hole-Bottom Flow Field Analysis

Q3 Engineering
Jialiang Wang, Dilei Qian, Yang Sun, Fenf Peng
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引用次数: 0

Abstract

Drilling sampling technology is an important means for obtaining underground physical data and evaluating mineral reserves. The coring diamond bit is located in the front of the drilling equipment, which can reflect the drilling efficiency and core recovery of the bit when drilling into the coring. In order to improve the drilling efficiency and core recovery, a design scheme of diamond bit for seafloor drills is proposed, which combines the formation characteristics of the seafloor within 300 meters. Based on the fluid dynamics theory and considering the effect of bit rotation on the flow field at the hole-bottom, the effects of bit water passage structure and drilling parameters on the flow field are analyzed. The results show that the designed bit can avoid the core erosion by 80% of the drilling fluid. The rotary speed should be controlled at 250 - 330 rpm, and the pump displacement should be 50 - 60 L/min. When the drilling fluid is up-return along the hole wall, the velocity first rises and then drops, then stabilizes between 0.8 - 1.3 m/s, which meets the range requirements for the standard cuttings up-return and the stability of the hole wall. Finally, the rationality of the bit design scheme is verified by field drilling experiments. The average core recovery percent reaches 85 %, which is about 25% higher than the conventional bit of water passage
面向深海海底钻井作业环境的地面镶钻钻头设计与井底流场分析
钻孔取样技术是获取地下物性资料和评价矿产储量的重要手段。取心金刚石钻头位于钻井设备的前端,在钻进取心时可以反映钻头的钻进效率和岩心采收率。为了提高钻井效率和岩心采收率,结合300米范围内海底地层特点,提出了一种海底钻头用金刚石钻头的设计方案。基于流体动力学理论,考虑钻头旋转对井底流场的影响,分析了钻头水道结构和钻井参数对井底流场的影响。结果表明,设计的钻头可避免80%的钻井液对岩心的侵蚀。转速应控制在250 - 330rpm,泵排量应控制在50 - 60l /min。钻井液沿井壁上行时,流速先上升后下降,稳定在0.8 ~ 1.3 m/s之间,满足标准岩屑上行和井壁稳定的范围要求。最后,通过现场钻井试验验证了钻头设计方案的合理性。平均岩心采收率达到85%,比常规钻头的通水率提高约25%
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来源期刊
International Journal of Fluid Machinery and Systems
International Journal of Fluid Machinery and Systems Engineering-Industrial and Manufacturing Engineering
CiteScore
1.80
自引率
0.00%
发文量
32
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