Study of a proton exchange membrane fuel cell and metal hydride system based on double spiral structure coupling
Literature Information
Xiao Wang, Jin-Xin Wang, Hao Zhang, Shi-Yu Li
The coupling system of a Proton Exchange Membrane Fuel Cell (PEMFC) and Metal Hydride (MH) canister was investigated, employing a double spiral structure to redirect waste heat from the PEMFC to the MH. The remaining heat was harnessed for seawater desalination via a Multi-Stage Flash Desalination (MSF) apparatus. By analyzing the operation of the PEMFC at various power points and dividing the hydrogen release process into stages A, B, and C, we investigate the time evolution law of each parameter of the MH bed. We evaluate the effects of the PEMFC operating parameters and the double spiral geometry parameters on the system's stable operation duration. The results reveal that the current density of the PEMFC significantly affected the system performance, while its operating temperature exerted a limited impact; the system exhibits greater suitability for long-term, low-power operation mode. Furthermore, the system's efficiency can reach up to 81.7%, with a stable working time of 6790 seconds. Considering the heat exchange in the MH canister, the double spiral heat exchanger's position occupancy problem, and the double-tube synergistic effect together, the MH is divided into α, β, and γ zones, and the heat exchanger geometrical parameters are optimized for the study. It is recommended to employ a tube diameter of 0.015 m and a coil spacing of 0.030 m for the heat exchanger.
Related Literature
Visualizing the down-regulation of hTERT mRNA expression using gold-nanoflare probes and verifying the correlation with cancer cell apoptosis
Hongxiao Sun, Min Hong, Qiangqiang Yang, Chuan Li, Guangzhi Zhang, Qiaoli Yue, Yanhua Ma, Xia Li
DOI: 10.1039/C9AN00204A
Native mass spectrometry beyond ammonium acetate: effects of nonvolatile salts on protein stability and structure
Zijie Xia, Joseph B. DeGrandchamp, Evan R. Williams
DOI: 10.1039/C9AN00266A
Direct glucose detection in whole blood by colorimetric assay based on glucose oxidase-conjugated graphene oxide/MnO2 nanozymes
Po-Chun Lee, Ying-Pei Hsu, Chen Peng, Hung-Wei Yang
DOI: 10.1039/C8AN02440E
Transverse solute dispersion in microfluidic paper-based analytical devices (μPADs)
Raúl Urteaga, Emanuel Elizalde, Claudio L. A. Berli
DOI: 10.1039/C8AN00149A
A facile graphene oxide-based fluorescent nanosensor for the in situ “turn-on” detection of telomerase activity
Li Zhang, Jie Peng, Ming-Fang Hong, Jia-Qing Chen, Ru-Ping Liang
DOI: 10.1039/C8AN00402A
Screening of two-photon activated photodynamic therapy sensitizers using a 3D osteosarcoma model
Dominik Theiner
DOI: 10.1039/C9AN00068B
A homogeneous electrochemical sensor for Hg2+ determination in environmental water based on the T–Hg2+–T structure and exonuclease III-assisted recycling amplification
Hao Yu, Lingshan Su, Chang Liu, Yanling Song, Shaoyun Wang, Zhenyu Lin, Fang Chen
DOI: 10.1039/C8AN00462E
Tandem trapped ion mobility spectrometry
Fanny C. Liu, Mark E. Ridgeway, Melvin A. Park
DOI: 10.1039/C7AN02054F
Fluorescence signal amplification assay for the detection of B. melitensis 16M, based on peptide-mediated magnetic separation technology and a AuNP-mediated bio-barcode assembled by quantum dot technology
Xinxin Li, Chao Zhao, Yi Liu, Yue Li, Fengnan Lian, Dan Wang, Ying Zhang, Juan Wang, Xiuling Song, Juan Li, Yanming Yang, Kun Xu
DOI: 10.1039/C9AN00028C
Biosensing strategies based on enzymatic reactions and nanoparticles
Nerea Briz, Valeri Pavlov
DOI: 10.1039/C7AN02067H
You might also like
What precautions should be taken when handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2)?
When handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2), it is importan...
Is 4-(4H-1,2,4-Triazol-4-yl)piperidine (CAS: 690261-92-8) safe?
4-(4H-1,2,4-Triazol-4-yl)piperidine is generally considered safe for use in phar...
How should waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) be handled?
Waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) should be collecte...
What regulatory guidelines apply to 5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3)?
5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3) is subject to regulat...
How is Methyl 3-acetamido-2-thiophenecarboxylate (CAS: 22288-79-5) typically synthesized?
Methyl 3-acetamido-2-thiophenecarboxylate can be synthesized by the reaction of ...
What is 4-Isoquinolinecarbonitrile (CAS: 34846-65-6)?
4-Isoquinolinecarbonitrile is a chemical compound with the CAS number 34846-65-6...
How should Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) be stored?
Store Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) in a cool, dry p...
What regulatory guidelines apply to 6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8)?
6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8) is subject to the...
Is (2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) safe?
(2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) ...
What are the physical and chemical properties of 7-bromo-3-methyl-3,4-dihydroquinazolin-4-one (CAS: 1293987-84-4)?
7-Bromo-3-methyl-3,4-dihydroquinazolin-4-one is a solid with a crystalline form....












![[2',6'-bis(propan-2-yloxy)-[1,1'-biphenyl]-3-yl]dicyclohexylphosphane structure [2',6'-bis(propan-2-yloxy)-[1,1'-biphenyl]-3-yl]dicyclohexylphosphane structure](https://static.chemtradehub.com/structs/787/787618-22-8-dda2.webp)


