High-performance static formation of methane hydrate in fixed bed constructed by incorporating expanded graphite into polyimide foam

被引:2
作者
Sun, Xinran [1 ]
Liu, Daiming [1 ]
Xuan, Zhibing [1 ]
Zhang, Yongtao [1 ]
Zhang, Guodong [1 ]
Chen, Chen [1 ]
Sun, Mengting [1 ]
Lin, Yan [1 ]
Zhong, Jie [2 ]
Wang, Fei [1 ]
机构
[1] Qingdao Univ Sci & Technol, Coll Electromech Engn, Shandong Engn Lab Preparat & Applicat High perform, Qingdao 266061, Peoples R China
[2] China Univ Petr East China, Sch Petr Engn, Qingdao 266580, Shandong, Peoples R China
基金
中国国家自然科学基金;
关键词
Methane hydrate; Fixed bed; Expanded graphite; Polyimide foam; Static formation; CO2; CAPTURE; GAS; SURFACTANT; KINETICS; STORAGE;
D O I
10.1016/j.cej.2024.152777
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hydrate has been endowed with great potential in energy storage and transportation. However, the kinetics of its formation process has been a challenge, often requiring dynamic mechanical processes that are energy-intensive and cumbersome to operate. Herein, a well-designed expanded graphite (EG)/polyimide (PI) foam was first explored as fixed bed for the formation of methane hydrate. The results demonstrate that the EG/PI fixed bed exhibits a remarkable performance in hydrate formation under static conditions, with a high gas storage capacity of 149 V/V, a short induction time and a rapid formation rate of 13.1 V & sdot;V- 1 & sdot;min- 1 at 6 MPa and -2 degrees C, and excellent recyclability, which are attributed to its stable micro/macro structures. Thereinto, the pores of EG serves as gas adsorption and reaction sites, initialing the formation with extremely short induction time. The three-dimensional framework of PI foam supports the uniform dispersion of EG particles and enables the efficient formation of hydrate under static condition. The EG/PI fixed bed decreases the water freezing point and leads to a high supercooling that facilitates the rapid nucleation of hydrate. Meanwhile, the fixed bed provides extensive mass-transfer channels, sufficient growing space, and superior heat conductivity, which contribute to the hydrate growth under static condition. This work not only offers a novel strategy for fabricating high-performance fixed bed, but also provides an insight into its promotion mechanism in hydrate formation.
引用
收藏
页数:9
相关论文
共 58 条
  • [31] Understanding the characteristic of methane hydrate equilibrium in materials and its potential application
    Liu, Huang
    Zhan, Siyuan
    Guo, Ping
    Fan, Shuanshi
    Zhang, Senlin
    [J]. CHEMICAL ENGINEERING JOURNAL, 2018, 349 : 775 - 781
  • [32] Study on the kinetics of hydrate formation in a bubble column
    Luo, Y. -T.
    Zhu, J. -H.
    Fan, S. -S.
    Chen, G. -J.
    [J]. CHEMICAL ENGINEERING SCIENCE, 2007, 62 (04) : 1000 - 1009
  • [33] Makogon Y., 1997, HYDRATES HYDROCARBON
  • [35] Induction time, storage capacity, and rate of methane hydrate formation in the presence of SDS and silver nanoparticles
    Mohammadi, Abolfazl
    Manteghian, Mehrdad
    Mohammadi, Amir H.
    Jahangiri, Alireza
    [J]. CHEMICAL ENGINEERING COMMUNICATIONS, 2017, 204 (12) : 1420 - 1427
  • [36] Experimental study on gas hydrate formation from natural gas mixture
    Mohebbi, V.
    Behbahani, R. M.
    [J]. JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2014, 18 : 47 - 52
  • [37] Investigation on Polyimide/Silica Hybrid Foams and Their Erosion Resistance to Atomic Oxygen
    Qi, Kailiang
    Zhang, Guangcheng
    [J]. POLYMER COMPOSITES, 2015, 36 (04) : 713 - 721
  • [38] Sloan ED, 2008, CHEM IND-SER, V119, P1
  • [39] Influence of expanded graphite coming from the electrochemical oxidation of phenol on cement-polymer matrix
    Slosarczyk, Agnieszka
    Krawczyk, Piotr
    [J]. POLISH JOURNAL OF CHEMICAL TECHNOLOGY, 2016, 18 (04) : 5 - 8
  • [40] Smith J. M., 1950, Introduction to chemical engineering thermodynamics, DOI 10.1021/ed027p584.3