Simulation and Analysis of a Split Drill Bit for Pneumatic DTH Hammer Percussive Rotary Drilling

IF 1.2 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Geofluids Pub Date : 2024-01-03 DOI:10.1155/2024/4614348
Yuanling Shi, Conghui Li
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引用次数: 0

Abstract

Reverse circulation impact drilling has the advantages of high drilling efficiency and less dust, which can effectively form holes in hard rock and gravel layer. As integral reverse circulation drill bits used in the conventional down-the-hole (DTH) hammers are only suitable for specific formations, the whole set of DTH hammer needs to be replaced when drilling different formations. In this paper, several types of split drill bits for different drilling technologies are designed. The flow field characteristics of one of the split drill bits is analyzed based on the computational fluid dynamics (CFD) method, with four technic parameters considered, which are input flow rate, number of inlet holes, angle of injection exhaust holes, and diameter of injection exhaust holes, respectively. Three parameters are selected as indicators to evaluate the rationality and performance of the split drill bit, which are injection exhaust hole outlet mass flow rate, ratio of the mass flow rate out of injection exhaust holes to the whole inlet mass flow rate, and maximum pressure at the upper end of the split drill bit. According to the CFD analysis results, the above four technic parameters influence the flow rate and pressure in different rules. Considering the injection capacity, pressure loss, and bit strength, inlet holes of 10, injection exhaust holes with an angle of 50°, and injection exhaust holes with a diameter of 12 mm are recommended to obtain ideal reverse circulation. Different types of split drill bits were manufactured, and drilling experiments were carried out in unconsolidated formations. The maximum drilling rate can reach 1.5 m/min in the drilling experiments. The split drill bit proposed in this paper exhibits excellent adaptability for reverse circulation drilling in loose formations.

用于气动潜孔锤冲击式旋转钻探的分体式钻头的仿真与分析
反循环冲击钻进具有钻进效率高、粉尘少等优点,可在硬岩和砾石层中有效成孔。由于传统潜孔(DTH)锤使用的整体式反循环钻头只适用于特定地层,在钻进不同地层时需要更换整套潜孔锤。本文设计了几种适用于不同钻井技术的分体式钻头。基于计算流体动力学(CFD)方法分析了其中一种分体式钻头的流场特性,考虑了四个工艺参数,分别是输入流量、进水孔数、喷射排气孔角度和喷射排气孔直径。选择三个参数作为评价分体式钻头合理性和性能的指标,分别是喷射排气孔出口质量流量、喷射排气孔出口质量流量与整个入口质量流量之比、分体式钻头上端最大压力。根据 CFD 分析结果,上述四个工艺参数对流量和压力的影响规律各不相同。考虑到喷射能力、压力损失和钻头强度,建议采用 10 的进气孔、50° 角的喷射排气孔和直径为 12 毫米的喷射排气孔,以获得理想的反循环。制造了不同类型的分体式钻头,并在未固结地层中进行了钻探实验。在钻进实验中,最大钻进速度可达 1.5 米/分钟。本文提出的劈裂式钻头在松散地层的反循环钻进中表现出良好的适应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Geofluids
Geofluids 地学-地球化学与地球物理
CiteScore
2.80
自引率
17.60%
发文量
835
期刊介绍: Geofluids is a peer-reviewed, Open Access journal that provides a forum for original research and reviews relating to the role of fluids in mineralogical, chemical, and structural evolution of the Earth’s crust. Its explicit aim is to disseminate ideas across the range of sub-disciplines in which Geofluids research is carried out. To this end, authors are encouraged to stress the transdisciplinary relevance and international ramifications of their research. Authors are also encouraged to make their work as accessible as possible to readers from other sub-disciplines. Geofluids emphasizes chemical, microbial, and physical aspects of subsurface fluids throughout the Earth’s crust. Geofluids spans studies of groundwater, terrestrial or submarine geothermal fluids, basinal brines, petroleum, metamorphic waters or magmatic fluids.
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