上海交通大学学报(英文版) ›› 2012, Vol. 17 ›› Issue (1): 53-057.doi: 10.1007/s12204-012-1229-5
HU Xiao-chen (胡晓晨), QI Zhao-gang (祁照岗), YANG Ming (阳 明), CHEN Jiang-ping (陈江平)
收稿日期:
2011-06-29
出版日期:
2012-02-29
发布日期:
2012-03-21
通讯作者:
HU Xiao-chen (胡晓晨),
E-mail:sissi.xiaochenhu@gmail.com
HU Xiao-chen (胡晓晨), QI Zhao-gang (祁照岗), YANG Ming (阳 明), CHEN Jiang-ping (陈江平)
Received:
2011-06-29
Online:
2012-02-29
Published:
2012-03-21
Contact:
HU Xiao-chen (胡晓晨),
E-mail:sissi.xiaochenhu@gmail.com
摘要: Abstract: Known as one of the most promising application of metal hydride (MH), the MH compressor can afford hydrogen with high pressure and high purity. Two AB5 type multi-component hydrogen storage alloys and vanadium are studied for the purpose of high pressure compression. A compact compression system has been built. Each designed small-size reactor contains seven special stainless-steel pipes. The single stage compressor can improve the hydrogen pressure from 2 up to 35 MPa with the hydrogen desorbed per unit mass of 207.8 mL/g. The two-stage compression can output hydrogen with pressure of 38 MPa steadily in whole 5.7 mol hydrogen output flow. However, its hydrogen desorbed per unit mass was only computed to 106.9 mL/g as a result of two reactors used in the cycle and the output mass of hydrogen increased less.
中图分类号:
HU Xiao-chen (胡晓晨), QI Zhao-gang (祁照岗), YANG Ming (阳 明), CHEN Jia. A 38 MPa Compressor Based on Metal Hydrides[J]. 上海交通大学学报(英文版), 2012, 17(1): 53-057.
HU Xiao-chen (胡晓晨), QI Zhao-gang (祁照岗), YANG Ming (阳 明), CHEN Jiang-ping (陈江平). A 38 MPa Compressor Based on Metal Hydrides[J]. Journal of shanghai Jiaotong University (Science), 2012, 17(1): 53-057.
1 Guidotti R A, Atkinson G B, Wong M M. Hydrogen absorption by rare earth-transition metal alloys [J]. Journal of the Less-Common Metals, 1997, 51(1): 13-28. 2 Shmal'ko Y F, Ivanovsky A I, Lototsky M V. Sample pilot plant of industrial metal-hydride compressor [J]. International Journal of Hydrogen Energy, 1999, 24(7): 645-648. 3 Wang Xin-hua, Chen Ru-gan, Zhang Yan, et al. Hydrogen storage alloys for high-pressure suprapure hydrogen compressor [J]. Journals of Alloys and Compounds, 2006, 420(1-2): 322-325. 4 Ram G M, Srinivasa M S. Prediction of heat and mass transfer in annular cylindrical metal hydride beds [J]. International Journal of Hydrogen Energy, 1992, 17(10): 795-805. 5 Nakagawa T, Inomata A, Aoki H, et al. Numerical analysis of heat and mass transfer characteristics in the metal hydride beds [J]. International Journal of Hydrogen Energy, 2000, 25(4): 339-350. 6 Sun Da-wen, Deng Song-jiu. Study of heat and mass transfer characteristics of metal hydride beds: A two-dimensional model [J]. Journal of the Less-Common Metals, 1989, 141(1): 271-279. 7 Isselhorst A. Heat and mass transfer in coupled hydride reaction beds [J]. Journal of Alloys and Compounds, 1995, 231(1-2): 871-879. 8 Muthukumar P, Maiya M P, Murthy S S. Experiments on a metal hydride-based hydrogen storage device [J]. International Journal of Hydrogen Energy, 2005, 30(15): 1569-1581. 9 Laurencelle F, Dehouche Z, Goyette J, et al. Integrated electrolyser---metal hydride compression system [J]. International Journal of Hydrogen Energy, 2006, 31(6): 762-768. 10 Wang X H, Bei Y Y, Song X C, et al. Investigation on high-pressure metal hydride hydrogen compressors [J]. International Journal of Hydrogen Energy, 2007, 32(16): 4011-4015. 11 Luo Gang. Metal hydride and compression system for high pressure hydrogen compression [D]. Shenyang, China: Institute of Metal Research, Chinese Academy of Sciences, 2011 (in Chinese). |
[1] | WANG Wenhao, (王文豪), DENG Qian(邓迁), LI Tao (李涛), LIU Yuehua (刘月华), LIU Yang (刘洋), SUN Yeye (孙叶叶), DENG Changxu (邓昌旭), ZHOU Xiaojun (周小军), MA Zhenjiang (马振江), QIANG Lei (强磊), WANG Jinwu, (王金武), DAI Kerong, (戴尅戎). Research Update on Bioreactors Used in Tissue Engineering[J]. J Shanghai Jiaotong Univ Sci, 2021, 26(3): 272-283. |
[2] | WANG Jianji, LIU Tao . Leakage Model of Axial Clearance and Test of Scroll Compressors[J]. Journal of Shanghai Jiao Tong University(Science), 2020, 25(4): 531-537. |
[3] | LI Dan (李丹), WANG Hongdong (王鸿东), LIANG Xiaofeng *(梁晓锋). Bayesian Network Based Approach for Diagnosis of Modified Sequencing Batch Reactor[J]. Journal of Shanghai Jiao Tong University (Science), 2019, 24(4): 417-429. |
[4] | TANG He-nan* (汤赫男), WANG Shi-jie (王世杰), ZHAO Jing (赵晶). Effect of Fluid-Structure Interaction on Sealed Flow Field and Leakage Rate Based on Computational Fluid Dynamics[J]. 上海交通大学学报(英文版), 2015, 20(3): 326-330. |
[5] | PANG Ting* (庞婷), LIN Jerry Y. S. (林跃生). Conceptual Process and Analysis of Water-Gas-Shift Membrane Reactor[J]. 上海交通大学学报(英文版), 2015, 20(2): 228-233. |
[6] | ZHANG Yan* (张艳), XU Cheng (徐成). Distributed Model Predictive Control with One-Step Delay Communication for Large-Scale Systems and a Case Study[J]. 上海交通大学学报(英文版), 2014, 19(6): 747-754. |
[7] | HAO Ming (郝 明), JIANG Wei* (蒋 玮). AMEsim Based Simulation on Hydraulic Experiment Rig for Assembly of Stator Components[J]. 上海交通大学学报(英文版), 2013, 18(5): 570-576. |
阅读次数 | ||||||||||||||||||||||||||||||||||||||||||||||||||
全文 394
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
摘要 1347
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||