首站-论文投稿智能助手
典型文献
Application-oriented hydrolysis reaction system of solid-state hydrogen storage materials for high energy density target:A review
文献摘要:
Hydrogen storage and delivery technology is still a bottleneck in the hydrogen industry chain.Among all kinds of hydrogen storage methods,light-weight solid-state hydrogen storage(LSHS)materials could become promising due to its intrinsic high hydrogen capacity.Hydrolysis reaction of LSHS materials occurs at moderate conditions,indicating the potential for portable applications.At present,most of review work focuses on the improvement of material performance,especially the catalysts design.This part is important,but the others,such as operation modes,are also vital to to make full use of material potential in the practical applications.Different operation modes of hydrolysis reaction have an impact on hydrogen capacity to various degrees.For example,hydrolysis in solution would decrease the hydro-gen capacity of hydrogen generator to a low value due to the excessive water participating in the reac-tion.Therefore,application-oriented operation modes could become a key problem for hydrolysis reaction of LSHS materials.In this paper,the operation modes of hydrolysis reaction and their practical applications are mainly reviewed.The implements of each operation mode are discussed and compared in detail to determine the suitable one for practical applications with the requirement of high energy den-sity.The current challenges and future directions are also discussed.
文献关键词:
作者姓名:
Jing Yao;Zhen Wu;Huan Wang;Fusheng Yang;Jianwei Ren;Zaoxiao Zhang
作者机构:
School of Chemical Engineering and Technology,Xi'an Jiaotong University,Xi'an 710049,Shaanxi,China;Department of Mechanical Engineering Science,University of Johannesburg,Johannesburg 2092,South Africa;State Key Laboratory of Multiphase Flow in Power Engineering,Xi'an Jiaotong University,Xi'an 710049,Shaanxi,China
文献出处:
引用格式:
[1]Jing Yao;Zhen Wu;Huan Wang;Fusheng Yang;Jianwei Ren;Zaoxiao Zhang-.Application-oriented hydrolysis reaction system of solid-state hydrogen storage materials for high energy density target:A review)[J].能源化学,2022(11):218-238
A类:
LSHS,Hydrolysis
B类:
Application,oriented,hydrolysis,reaction,system,solid,state,hydrogen,storage,materials,high,energy,density,target,Hydrogen,delivery,technology,still,bottleneck,industry,chain,Among,kinds,methods,light,weight,could,become,promising,due,its,intrinsic,capacity,occurs,moderate,conditions,indicating,potential,portable,applications,At,present,most,work,focuses,improvement,performance,especially,catalysts,design,This,important,but,others,such,operation,modes,also,vital,make,full,practical,Different,have,impact,various,degrees,For,example,solution,would,decrease,generator,low,value,excessive,water,participating,Therefore,key,problem,In,this,paper,their,mainly,reviewed,implements,each,discussed,compared,detail,determine,suitable,one,requirement,current,challenges,future,directions
AB值:
0.489142
相似文献
Recent advances in metastable alloys for hydrogen storage:a review
Huai-Jun Lin;Yan-Shan Lu;Liu-Ting Zhang;Hai-Zhen Liu;Kaveh Edalati;ádám Révész-Institute of Advanced Wear and Corrosion Resistance and Functional Materials,Jinan University,Guangzhou 510632,China;Guangdong Provincial Key Laboratory of Advance Energy Storage Materials,South China University of Technology,Guangzhou 510640,China;School of Materials and Energy,Guangdong University of Technology,Guangzhou 510006,China;School of Energy and Power,Jiangsu University of Science and Technology,Zhenjiang 212003,China;Guangxi Colleges and Universities Key Laboratory of Novel Energy Materials and Related Technology,School of Physical Science and Technology,Guangxi University,Nanning 530004,China;Guangxi Novel Battery Materials Research Center of Engineering Technology,School of Physical Science and Technology,Guangxi University,Nanning 530004,China;Guangxi Key Laboratory of Processing for Non-Ferrous Metallic and Featured Materials,Guangxi University,Nanning 530004,China;International Institute for Carbon-Neutral Energy Research(WPI-I2CNER),Kyushu University,Fukuoka 819-0395,Japan;Department of Materials Physics,E?tv?s University,Budapest 1518,Hungary
Metal matrix nanocomposites in tribology:Manufacturing,performance,and mechanisms
Shuaihang PAN;Kaiyuan JIN;Tianlu WANG;Zhinan ZHANG;Long ZHENG;Noritsugu UMEHARA-Department of Mechanical and Aerospace Engineering,University of California Los Angeles(UCLA),Los Angeles,CA 90095,USA;Physical Intelligence Department,Max Planck Institute for Intelligent Systems,Stuttgart 70569,Germany;Stake Key Laboratory of Mechanical System and Vibration,Shanghai Jiao Tong University,Shanghai 200240,China;Key Laboratory of Bionic Engineering(Ministry of Education),College of Biological and Agricultural Engineering,Jilin University,Changchun 130022,China;Micro-Nano Mechanical Science Laboratory,Department of Micro-Nano Mechanical Science and Engineering,Graduate School of Engineering,Nagoya University,Chikisa-ku Furo-cho,Nagoya,Aichi 464-8601,Japan
机标中图分类号,由域田数据科技根据网络公开资料自动分析生成,仅供学习研究参考。