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Hole-bottom freezing technique based on phase change heat transfer for gas-hydrates sampling: Efficiency optimization of refrigeration change of phase

机译:基于相变热传递的空穴底部冷冻技术,用于气水水合物采样:阶段制冷变化的效率优化

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摘要

Coring is the key to the exploration and exploitation of natural gas hydrate. Less than 60% of gas-hydrate cores can be retrieved by the existing pressure preservation technique because of mechanical valve sealing failures. To solve this problem, a freezing sampling method was proposed. The cold-alcohol was formed by dry ice gasification refrigeration to reduce the temperature of the hydrate core in the drilling-hole and to prevent the decomposition of the gas-hydrates. However, gasification efficiency of dry ice in the narrow sampler's internal space is notably low, and the cryogenic alcohol cannot meet the requirements of the frozen hydrate core. In this paper, three different structures of the mixing chamber are proposed to improve the gasification efficiency of dry ice. The comparison mixing tests were performed with the cold-source external freezing sampler. The results demonstrate that cryogenic alcohol temperatures of 259.6 K, 248.3 K and 242.7 K are obtained using three kinds of mixing chambers, and the perforated pipe mechanism with the highest mixing efficiency was selected. The core and cold alcohol heat transfer test demonstrates that the core was frozen to 254.7 K in 13 min. At this temperature, it is possible to ensure that the hydrate does not decompose. (C) 2017 Elsevier Ltd. All rights reserved.
机译:冠军是勘探和利用天然气水合物的关键。由于机械阀密封故障,可以通过现有的压力保存技术检索小于60%的天然气水合物核心。为了解决这个问题,提出了一种冷冻抽样方法。冷醇由干冰气化制冷形成,以降低钻孔孔中水合物芯的温度,并防止气水合物的分解。然而,窄采样器内部空间中干冰的气化效率显着低,低温醇不能满足冷冻水合物核心的要求。本文提出了混合室的三种不同结构,提高了干冰的气化效率。使用冷源外部冷冻采样器进行比较混合试验。结果表明,使用三种混合室获得259.6k,248.3k和242.7k的低温醇温度,选择具有最大混合效率的穿孔管机构。核心和冷醇传热试验表明,13分钟内将核心冷冻至254.7k。在该温度下,可以确保水合物不分解。 (c)2017 Elsevier Ltd.保留所有权利。

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