低速水刀压力对非沉没空化加砂水刀破岩性能的影响

IF 6 1区 工程技术 Q2 ENERGY & FUELS Petroleum Science Pub Date : 2024-08-01 DOI:10.1016/j.petsci.2024.03.012
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引用次数: 0

摘要

研究表明,非沉没式空化加砂水刀(UCAWJ)可人为地创造一种能产生剪切空化的沉没环境,从而有效地提高岩石破碎性能。剪切空化的产生和崩塌强度取决于中间高速加砂水刀和同轴低速水刀之间的压力差。然而,同轴低速水刀压力的影响尚待研究。为此,实验研究了不同间距下低速水刀压力对岩石破碎性能的影响,并讨论了侵蚀时间和红宝石喷嘴直径对侵蚀性能的影响。最后,观察了不同位置砂岩的微观形态。结果表明,增加侵蚀时间和红宝石喷嘴直径可显著提高岩石破碎性能。在不同间距下,随着低速水刀压力的增加,质量损失先增大后减小,当低速水刀压力为 0.09 MPa 时,最大质量损失为 10.4 g。使用三维轮廓仪测量了空化侵蚀的表面形态,侵蚀深度和表面粗糙度的增加表明剪切空化崩塌的强度显著增加。在 0.18 MPa 的低速水刀压力下,空化侵蚀表面深度可达 600 μm,粗糙度为 127 μm。
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Effect of low-speed waterjet pressure on the rock-breaking performance of unsubmerged cavitating abrasive waterjet

Unsubmerged cavitating abrasive waterjet (UCAWJ) has been shown to artificially create a submerged environment that produces shear cavitation, which effectively enhances rock-breaking performance. The shear cavitation generation and collapse intensity depend on the pressure difference between the intermediate high-speed abrasive waterjet and the coaxial low-speed waterjet. However, the effect of the pressure of the coaxial low-speed waterjet is pending. For this purpose, the effect of low-speed waterjet pressure on rock-breaking performance at different standoff distances was experimentally investigated, and the effects of erosion time and ruby nozzle diameter on erosion performance were discussed. Finally, the micromorphology of the sandstone was observed at different locations. The results show that increased erosion time and ruby nozzle diameter can significantly improve the rock-breaking performance. At different standoff distances, the mass loss increases first and then decreases with the increase of low-speed waterjet pressure, the maximum mass loss is 10.4 g at a low-speed waterjet pressure of 0.09 MPa. The surface morphology of cavitation erosion was measured using a 3D profiler, the increase in both erosion depth and surface roughness indicated a significant increase in the intensity of the shear cavitation collapse. At a low-speed waterjet pressure of 0.18 MPa, the cavitation erosion surface depth can reach 600 μm with a roughness of 127 μm.

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来源期刊
Petroleum Science
Petroleum Science 地学-地球化学与地球物理
CiteScore
7.70
自引率
16.10%
发文量
311
审稿时长
63 days
期刊介绍: Petroleum Science is the only English journal in China on petroleum science and technology that is intended for professionals engaged in petroleum science research and technical applications all over the world, as well as the managerial personnel of oil companies. It covers petroleum geology, petroleum geophysics, petroleum engineering, petrochemistry & chemical engineering, petroleum mechanics, and economic management. It aims to introduce the latest results in oil industry research in China, promote cooperation in petroleum science research between China and the rest of the world, and build a bridge for scientific communication between China and the world.
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