State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Beijing, 102249, China.
Center for Hydrate Research, Colorado School of Mines, Golden, Colorado 80401, United States.
Sci Rep. 2016 Dec 12;6:38855. doi: 10.1038/srep38855.
The hydrate structure type and dissociation behavior for pure methane and methane-ethane hydrates at temperatures below the ice point and atmospheric pressure were investigated using in situ Raman spectroscopic analysis. The self-preservation effect of sI methane hydrate is significant at lower temperatures (268.15 to 270.15 K), as determined by the stable C-H region Raman peaks and A/A value (Ratio of total peak area corresponding to occupancies of guest molecules in large cavities to small cavities) being around 3.0. However, it was reduced at higher temperatures (271.15 K and 272.15 K), as shown from the dramatic change in Raman spectra and fluctuations in A/A values. The self-preservation effect for methane-ethane double hydrate is observed at temperatures lower than 271.15 K. The structure transition from sI to sII occurred during the methane-ethane hydrate decomposition process, which was clearly identified by the shift in peak positions and the change in relative peak intensities at temperatures from 269.15 K to 271.15 K. Further investigation shows that the selectivity for self-preservation of methane over ethane leads to the structure transition; this kind of selectivity increases with decreasing temperature. This work provides new insight into the kinetic behavior of hydrate dissociation below the ice point.
使用原位拉曼光谱分析研究了冰点以下和常压下纯甲烷和甲烷-乙烷水合物的水合物结构类型和离解行为。通过稳定的 C-H 区域拉曼峰和 A/A 值(对应于大笼和小笼中占据的客体分子的总峰面积比)约为 3.0,可以确定在较低温度(268.15 至 270.15 K)下 sI 甲烷水合物的自保存效应显著。然而,在较高温度(271.15 K 和 272.15 K)下,自保存效应降低,这可以从拉曼光谱的剧烈变化和 A/A 值的波动看出。在低于 271.15 K 的温度下观察到甲烷-乙烷双水合物的自保存效应。在甲烷-乙烷水合物分解过程中发生了从 sI 到 sII 的结构转变,在从 269.15 K 到 271.15 K 的温度范围内,通过峰位置的移动和相对峰强度的变化可以清楚地识别出这种转变。进一步的研究表明,甲烷对乙烷的自保存选择性导致了结构转变;这种选择性随着温度的降低而增加。这项工作为冰点以下水合物离解的动力学行为提供了新的见解。