刘勇, 崔家玮, 魏建平, 张宏图, 徐向宇. 自激振荡脉冲超临界二氧化碳射流发生机制[J]. 煤炭学报, 2022, 47(7): 2643-2655.
引用本文: 刘勇, 崔家玮, 魏建平, 张宏图, 徐向宇. 自激振荡脉冲超临界二氧化碳射流发生机制[J]. 煤炭学报, 2022, 47(7): 2643-2655.
LIU Yong, CUI Jiawei, WEI Jianping, ZHANG Hongtu, XU Xiangyu. Generating mechanism of selfexcited oscillation pulsed supercritical carbon dioxide jet[J]. Journal of China Coal Society, 2022, 47(7): 2643-2655.
Citation: LIU Yong, CUI Jiawei, WEI Jianping, ZHANG Hongtu, XU Xiangyu. Generating mechanism of selfexcited oscillation pulsed supercritical carbon dioxide jet[J]. Journal of China Coal Society, 2022, 47(7): 2643-2655.

自激振荡脉冲超临界二氧化碳射流发生机制

Generating mechanism of selfexcited oscillation pulsed supercritical carbon dioxide jet

  • 摘要: 煤层气开采过程中,经常出现井壁坍塌、渗透率降低等问题。超临界二氧化碳(SC-CO2 ) 钻井技术的提出为煤层气钻井提供了新的技术支撑,但较高的破煤门限压力和高能耗,仍是限制SC-CO2推广应用的关键。 射流形式是影响射流能量转化效率的重要因素之一,目前SC-CO2射流的相关研究均基于连续射流。 相较于连续射流,脉冲射流冲击压力大、具有更高的破煤岩效率,其 中自激振荡脉冲射流是与工程相结合的最现实的一种脉冲射流形式。 目前关于自激振荡脉冲射流的研究多是基于水射流开展的,但由于 SC-CO2 与水的流体性质存在较大差异,自激振荡脉冲水射流喷 嘴的相关结构参数是否适用于 SC-CO2 尚未可知,仍需进一步开展相关研究。 因此,为进一步提 升SC-CO2的破煤效率,提出自激振荡脉冲SC-CO2射流。 在传统Helmholtz共振腔的基础上,结合可压缩流体理论,明确了 SC-CO2 的自激振荡脉冲发生机制,确定了适用于 SC-CO2 的自激振荡喷嘴结 构;通过大涡模拟分析了 SC-CO2 的自激振荡发生过程,并开展了 SC-CO2 连续射流与脉冲射流破煤对 比实验,验证了自激振荡脉冲SC-CO2射流的破煤效率。 结果表明:SC-CO2射流的自激振荡脉冲机理 与水射流的自激振荡脉冲机理存在本质上的差异;SC-CO2 湍流的脉动主要由涡模态、声模态和熵模 态组成,其运动中的剪切过程决定了涡结构的形成与放大,是形成自激振荡扰动的根本,膨胀压缩过 程和热力学过程决定了扰动的反馈以及扰动频率,是完成自激振荡的关键。 并且涡模态、声模态和熵 模态之间相互耦合,共同作用;发现自激振荡脉冲 SC-CO2 射流喷嘴的设计关键是找到合适的振荡腔 结构;自激振荡脉冲SC-CO2射流相较于连续射流而言,射流能量转化率更高,冲蚀破坏效果更好。 综 上所述,该研究创新性提出了自激振荡脉冲 SC-CO2 射流,明确了自激振荡脉冲 SC-CO2 射流发生机 制,为自激振荡脉冲 SC-CO2 射流喷嘴设计奠定了基础,确定了较好的自激振荡喷嘴结构参数,并验证 了所设计喷嘴的适用性,进一步提升了 SC-CO2 射流的能量利用率,降低了系统能耗。

     

    Abstract: Problems such as collapsed well walls and reduced permeability often occur during the extraction of coalbed methane. The proposed supercritical carbon dioxide (SC-CO 2) drilling technology provides a new technical support for coal bed methane drilling. However, the high coal breakage threshold pressure and the high energy consumption are still the keys to limiting the application of SC-CO 2. The form of the jet is one of the most important factors affecting the energy conversion efficiency of the jet, and the current studies on SC-CO 2 jet are based on a continuous jet. The pulsed jet has higher impact pressure and higher rock breakage efficiency than a continuous jet. Among them, the selfexcited oscillation pulsed jet is the most realistic form of pulsed jet combined with engineering. Current research on the selfexcited oscillation pulsed jet is mostly based on water jets. However, as the fluid properties of SC-CO 2 and water are very different, the applicability of the structural parameters of the selfexcited oscillation pulsed water jet nozzle to SC-CO 2 is not yet known, and a further research is needed. Therefore, to further enhance the coal breakage efficiency of SC-CO 2, a selfexcited oscillation pulsed SC-CO 2 jet was proposed in this paper. On the basis of the conventional Helmholtz resonance cavity, the selfexcited oscillation pulsed generation mechanism of SC-CO 2 was clarified in conjunction with compressible fluid theory, and the selfexcited oscillation nozzle structure applicable to SC-CO 2 was determined. The process of selfexcited oscillation of SC-CO 2 was analyzed by large eddy simulation, and a comparison experiment of coal breakage between continuous and pulsed SC-CO 2 jets was carried out. The coal breakage efficiency of the selfexcited oscillation pulsed SC-CO 2 jet was also verified. The results show that the selfexcited oscillation pulsed mechanism of the SC-CO 2 jet is fundamentally different from that of the water jet. The pulsation of SC-CO 2 turbulence consists mainly of vortex, acoustic and entropic modes. The shearing process in its motion determines the formation and amplification of the vortex structure and is fundamental to the formation of selfexcited oscillation perturbation. The expansion and compression process and the thermodynamic process determine the feedback of the perturbation as well as the frequency of the perturbation, which is the key to the completion of selfexcited oscillation. The vortex, acoustic and entropic modes are coupled to each other and act together. The key to the design of the selfexcited oscillation pulsed SC-CO 2 jet nozzle was found to be finding the right oscillation cavity structure. The selfexcited oscillation pulsed SC-CO 2 jet has higher jet energy conversion rate and better erosion damage than a continuous jet. In summary, this study innovatively proposes a selfexcited oscillation pulsed SC-CO 2 jet. The mechanism of selfexcited oscillation pulsed SC-CO 2 jet generation has been clarified, which lays the foundation for the design of selfexcited oscillation pulsed SC-CO 2 jet nozzle. The better selfexcited nozzle structure parameters were determined and the applicability of the designed nozzle was verified, further improving the energy utilization of the SC-CO 2 jet and reducing the energy consumption of the system.

     

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