极地深层热水钻回水腔结构及热特性研究
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1.中国地质大学(北京) 工程技术学院;2.中国地质大学北京 工程技术学院

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国家重点研发计划项目“极地大深度冰盖快速钻探关键技术与装备”课题三“高承压多功能软管及其绞车系统”(编号:2021YFC2801403);国家自然科学基金青年科学“可回收式热融钻具孔壁冻融过程的传热规律研究” (编号:42206255)。


Research on structure and thermal characteristics of return-water cavity of deep hot-water drill in polar regions
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1.School of Engineering and Technology, China University of Geosciences (Beijing);2.School of Engineering and Technology,China University of Geosciences Beijing

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    摘要:

    热水钻被认为是开展极地冰下湖探测最高效、最安全和最清洁的钻探装备。利用热水钻开展冰下湖钻探时需要建造回水腔,但目前回水腔的结构及热特性尚不清楚。为此,本文首先梳理了深层热水钻回水腔的主要结构形式。然后,以上覆冰层对冰下湖水的压力为基础,建立了回水腔建造深度计算方法,并确定了回水腔的初始形状及主要尺寸的计算方法。接着,通过建立回水腔周围冰层温度场的物理模型和数学模型,提出了回水腔临界回水温度和临界注热流量的计算方法,并系统分析了各因素对这两个参数的影响规律。研究结果表明:当深层热水钻用于冰下湖钻探时,回水腔应优先选用双层主/副孔结构,主孔和副孔之间的距离应该小于1 m,主/副孔直径应在0.3~0.6 m之间且回水腔的高度应比潜水泵大2~3 m;回水腔的建造深度主要由冰盖厚度决定,在实际工程中,回水腔的建造深度应比理论计算值大15~30 m;回水腔的临界回水温度和临界注热流量随时间的增大而减小;正常工况下,回水腔的临界回水温度不超过2~3℃,而临界注热流量不超过12 L/min。

    Abstract:

    Hot-water drill is considered to be the most efficient, safest and cleanest drilling equipment for exploring subglacial lakes in polar regions. A return-water cavity must be built when using hot-water drill to explore subglacial lakes. However, at present, the structure and thermal characteristics of the return-water cavity are still not clear. the paper first sorts out the main structure of return-water cavities of deep hot-water drill. Subsequently, a method for calculating the construction depth of the return-water cavity is established based on the pressure of the overlying ice on the subglacial lakes, and the initial shape of the return-water cavity is determined and the calculation methods for its dimensions is proposed. Then, the methods for calculating the critical temperature of return-water and the critical flow rate of injected hot water are proposed by establishing the physical and mathematical model of the ice temperature field surrounding the return-water cavity. Later, the influence of various factors on the two parameters are systematically analyzed. The research shows that the double-layer main/secondary hole structure is preferred for the return-water cavity when it is used for drilling subglacial lakes. The distance between the main hole and the secondary hole should be less than 1 m, the diameter of the main or the secondary hole should be between 0.3 and 0.6 m, and the length of the return-water cavity should be 2~ 3 m longer than that of the submersible pump. The construction depth of the return-water cavity mainly depends on the thickness of the overlying ice sheet. In practical engineering, the construction depth of the return-water cavity should be 15~30 m greater than the theoretical value. The critical temperature of return-water and the critical flow rate of injected hot water decrease with time. In normal conditions, the critical temperature of return-water does not exceed 2~ 3 °C and the critical flow rate of injected hot water does not exceed 12 L/min.

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  • 收稿日期:2024-08-28
  • 最后修改日期:2024-11-29
  • 录用日期:2024-12-11
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