Chemical Industry and Engineering Progress ›› 2025, Vol. 44 ›› Issue (11): 6290-6300.DOI: 10.16085/j.issn.1000-6613.2024-1751

• Energy processes and technology • Previous Articles    

Gas storage characteristics of methane hydrate in micro-powder silica gel below the freezing point

LIU Jun1(), LAN Jiangchen1, WANG Weiqiang1, WANG Beifu1, GAO Jianfeng1, ZHENG Zhaoqi1, CHENG Longsheng2(), LIANG Deqing3   

  1. 1.National & Local Joint Engineering Research Center of Harbor Oil & Gas Storage and Transportation Technology, Zhejiang Key Laboratory of Petrochemical Environmental Pollution Control, Zhejiang Key Laboratory of Pollution Control for Port-Petrochemical Industry, Zhejiang Ocean University, Zhoushan 316022, Zhejiang, China
    2.Xin’ao Energy (Zhejiang) Energy Trading Co. , Ltd. , Ningbo 315000, Zhejiang, China
    3.Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou 510640, Guangdong, China
  • Received:2024-10-30 Revised:2024-12-09 Online:2025-12-08 Published:2025-11-25
  • Contact: CHENG Longsheng

冰点以下微粉硅胶中甲烷水合物储气特性

刘军1(), 蓝江晨1, 王卫强1, 王北福1, 高建丰1, 郑兆棋1, 程龙生2(), 梁德青3   

  1. 1.浙江海洋大学,临港石油天然气储运技术国家地方联合工程研究中心,浙江省石油化工环境污染控制重点 实验室,全省临港石化污染控制重点实验室,浙江 舟山 316022
    2.新奥能源(浙江)能源贸易有限公司,浙江 宁波 315000
    3.中国科学院广州能源研究所,广东 广州 510640
  • 通讯作者: 程龙生
  • 作者简介:刘军(1991—),男,博士,讲师,研究方向为水合物储能储气。E-mail:2022173@zjou.edu.cn
  • 基金资助:
    舟山市科技计划(2023C41015);浙江省中央引导地方科技发展专项(2025ZY01079)

Abstract:

Hydrates can effectively store cooling energy and gases, showing great potential for applications in the field of gas storage and transportation. This paper investigated the formation of methane hydrate in micro-powder silica gel below the freezing point, with pressure ranging from 4.0— 6.0MPa and temperature ranging from 253.1—268.1K. The study found that after the silica gel pores were saturated with water, the volume occupied by the interstitial spaces between particles constituted 45% of the total volume. It served as a pathway for gas diffusion. At a constant pressure ranging from 5.0—6.0MPa, in the first 280—300min before methane hydrate formation, the higher the temperature, the easier methane diffused into the ice, leading to a higher formation rate of methane hydrate. In comparison, the driving force for hydrate formation had a smaller impact on the gas consumption rate. However, during the formation of hydrates, the rate of gas consumption for hydrate formation was alternately controlled by the methane diffusion rate and the hydrate nucleation rate. NR120 represented the relative gas consumption rate during the first 120min. At lower pressures, the overall NR120 was higher, the time to consume 90% of the gas (T90) was shorter, and the final reaction pressure was lower, indicating a lower energy requirement for hydrate formation. Under the conditions of 268.1K and 4MPa, the water conversion rate reached 77.93%. NR120 was 44.40mol/(min·m3), T90 was 198min, and the gas storage capacity relative to water at standard conditions reached 150.78m3/m3, which represented the optimal conditions for methane hydrate formation.

Key words: methane, hydrate, silica gel, gas storage, conversion

摘要:

水合物可以有效地储存冷能和气体,在气体储存运输领域具有巨大的应用前景。本文研究了冰点以下微粉硅胶(silica gel)中甲烷水合物的生成,压力范围为4.0~6.0MPa,温度范围为253.1~268.1K。研究发现,微粉硅胶孔内水饱和以后,颗粒之间体积占整体体积的45%,为气体扩散提供通道。在5.0~6.0MPa的相同压力下,甲烷水合物生成前280~300min,温度越高,甲烷越容易扩散进入冰中,导致甲烷水合物的生成速率越高,相比之下,水合物的生成驱动力对气体消耗速率影响较小。然而,在水合物生成过程中,甲烷扩散速率和水合物成核速率交替控制水合物气体的消耗速率。NR120为前120min的相对气体消耗速率,压力越低,NR120整体越高,完成90%气体消耗量的时间为T90,整体越短,反应终结压力越低,所需生成水合物压缩能越低。在268.1K、4MPa的条件下,水的转化率为77.93%。NR120为44.40mol/(min·m3)、T90为198min,标准状态下相对于水的储气能力达到150.78m3/m3,是甲烷水合物生成的最佳条件。

关键词: 甲烷, 水合物, 微粉硅胶, 储气, 转化率

CLC Number: 

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