Process intensification for generating and decomposing formic acid, a liquid hydrogen carrier

被引:4
|
作者
Egbert, Jonathan D. [1 ]
Grubel, Katarzyna [1 ]
Howe, Daniel T. [1 ]
Weber, Robert S. [1 ]
Agarwal, Arun S. [2 ]
Brix, Todd [2 ]
机构
[1] Pacific Northwest Natl Lab, POB 999, Richland, WA 99352 USA
[2] OCOchem Inc, 350 Hills St, Richland, WA USA
关键词
STORAGE; AMBIENT; PD;
D O I
10.1049/rpg2.12381
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We preview two processes that facilitate using formic acid (HCOOH) as a liquid hydrogen carrier to store renewably-generated electrical energy and then release it to generate electrical power cleanly for backup or emergency applications. First, we show that simultaneously oxidizing an organic solute (typically a waste stream) can assist the electrochemical synthesis of formic acid by lowering the cell potential. The electrolyser comprises a hybrid 3-chamber PEM stack that reduces CO2 via a gas-diffusion cathode boosted by the oxidation of aqueous methanol. However, the extent of the boosting needs to be optimized across the whole operation of the cell. Next, we present results from an intensified reactor for decomposing formic acid back into H-2 and CO2 at elevated pressure so that the H-2 can be used in a fuel cell. The reactor combines three operations: Vaporization of the formic acid, its decomposition, and separation of the product stream. Their close coupling affords energy savings and a compact design that could be mounted on a mobile skid. We briefly discuss the electrode catalyst that facilitates the first process and two thermally activated catalysts (Ir supported on covalent triazine framework and Pd supported on carbon) that enable the second process.
引用
收藏
页码:2957 / 2963
页数:7
相关论文
共 50 条
  • [1] Formic Acid as a Hydrogen Energy Carrier
    Eppinger, Jorg
    Huang, Kuo-Wei
    ACS ENERGY LETTERS, 2017, 2 (01): : 188 - 195
  • [2] Retrofitting via Intensification: Application to Formic Acid Process
    da Cunha, Sergio
    Rangaiah, G. P.
    Hidajat, Kus
    27TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, PT A, 2017, 40A : 1093 - 1098
  • [3] Biogenic Formic Acid as a Green Hydrogen Carrier
    Preuster, Patrick
    Albert, Jakob
    ENERGY TECHNOLOGY, 2018, 6 (03) : 501 - 509
  • [4] Formic Acid-Based Liquid Organic Hydrogen Carrier System with Heterogeneous Catalysts
    Zhong, Heng
    Iguchi, Masayuki
    Chatterjee, Maya
    Himeda, Yuichiro
    Xu, Qiang
    Kawanami, Hajime
    ADVANCED SUSTAINABLE SYSTEMS, 2018, 2 (02):
  • [5] Research progress on catalytic dehydrogenation process intensification for liquid organic hydride carrier hydrogen storage
    Gai H.
    Zhang C.
    Qu J.
    Sun H.
    Tuo Y.
    Wang B.
    Jin X.
    Zhang X.
    Feng X.
    Chen D.
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2024, 43 (01): : 164 - 185
  • [6] Hydrogen Storage in Formic Acid: A Comparison of Process Options
    Mueller, Karsten
    Brooks, Kriston
    Autrey, Tom
    ENERGY & FUELS, 2017, 31 (11) : 12603 - 12611
  • [7] Multi-criteria decision framework for catalyst selection: Production of formic acid as a circular liquid organic hydrogen carrier in the hydrogen economy
    Tekeli, Fatma Noyan
    Filiz, Bilge Coskuner
    Yoruklu, Hulya Civelek
    Figen, Aysel Kanturk
    JOURNAL OF CLEANER PRODUCTION, 2024, 452
  • [8] Comparative Risk Assessment of a Hydrogen Refueling Station Using Gaseous Hydrogen and Formic Acid as the Hydrogen Carrier
    Kim, Changsoo
    Lee, Younggeun
    Kim, Kyeongsu
    ENERGIES, 2023, 16 (06)
  • [9] Nano-catalysts for the synthesis/dehydrogenation of formic acid as a renewable hydrogen carrier
    Mori, Kohsuke
    Masuda, Shinya
    Yamashita, Hiromi
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256
  • [10] Formic Acid as a Hydrogen Carrier for Fuel Cells Toward a Sustainable Energy System
    Kawanami, Hajime
    Himeda, Yuichi
    Laurenczy, Gabor
    ADVANCES IN INORGANIC CHEMISTRY, VOL 70: INORGANIC REACTION MECHANISMS, 2017, 70 : 395 - 427