首页> 外文会议>The Proceedings of the Seventh (2007) ISOPE Ocean Mining amp; Gas Hydrates Symposium (ISOPE OMS-2007) >Observation of the Self-preservation Effect of Methane and Ethane Hydrate
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Observation of the Self-preservation Effect of Methane and Ethane Hydrate

机译:甲烷和乙烷水合物的自保存作用观察

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摘要

We investigated surface changes of methane and ethane hydrates during depressurization using optical and confocal scanning microscopes. The dissociation of methane hydrate above 242 K and ethane hydrate above 267 K resulted in the formation of clear ice sheets on the hydrate surface. The ice sheets that formed at 252 K were the thickest of those from 242 to 262 K, indicating that methane hydrate stability may be greatest around 252 K. Our results reveal that the formation of ice sheets is closely related to the mechanism of the self-preservation effect of methane hydrate and ethane hydrate. Practical transportation and storage of methane hydrate and ethane hydrate should be undertaken at 250 and 270K at atmospheric pressure. Dissociation control of methane hydrate by the self-preservation effect based on ice sheet formation may be helpful for research into methane hydrate resources, and thus our results are of value.
机译:我们使用光学和共聚焦扫描显微镜研究了减压过程中甲烷和乙烷水合物的表面变化。 242 K以上的甲烷水合物和267 K以上的乙烷水合物的解离导致在水合物表面形成透明的冰盖。在252 K处形成的冰盖是242至262 K中最厚的冰盖,表明甲烷水合物的稳定性在252 K左右可能最大。我们的结果表明,冰盖的形成与自燃机制密切相关。甲烷水合物和乙烷水合物的保存效果。甲烷水合物和乙烷水合物的实际运输和储存应在大气压下于250和270K下进行。通过基于冰盖形成的自我保存作用来控制甲烷水合物的解离,可能有助于甲烷水合物资源的研究,因此我们的结果是有价值的。

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