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2024, 11, No.200 28-32+60
大型水电解制氢系统配置及主厂房布置方案探讨
基金项目(Foundation):
邮箱(Email):
DOI: 10.13500/j.dlkcsj.issn1671-9913.2024.11.006
投稿时间: 2024-09-06
投稿日期(年): 2024
修回时间: 2024-09-09
终审时间: 2024-09-11
终审日期(年): 2024
审稿周期(年): 1
发布时间: 2024-11-15
出版时间: 2024-11-15
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摘要:

在全球低碳发展和国家“双碳”目标背景下,氢能作为大规模、长周期储能介质和重要能源载体,将在未来能源供应体系中发挥重要作用。利用可再生能源,特别是风、光发电水电解制氢将成为氢能生产的主要方式。探讨大型水电解制氢系统典型配置方案,对其优势和存在的问题进行分析,提出解决方案,并从安全标准、运行检修等方面针对大型水电解制氢主厂房布置方案进行研究,提出推荐的布置方案。

Abstract:

In the context of global low-carbon development and the national "peak carbon-carbon neutral" goal,hydrogen energy,as a large-scale,long-cycle energy storage medium and an important energy carrier,will play an important role in the future energy supply system.Utilizing renewable energy sources,especially wind and solar power generation to produce hydrogen by water electrolysis will become one of the main ways of hydrogen production.Discusses the typical configuration of large water electrolysis hydrogen production system,analyses its advantages and problems,puts forward solutions,and researches the arrangement of the main plant for large water electrolysis hydrogen production from the aspects of safety standards,operation and maintenance,and puts forward the recommended arrangement scheme.

参考文献

[1]俞红梅,衣宝廉.电解制氢与氢储能[J].中国工程科学,2018,20(3):58-65.

[2]迟军,俞红梅.基于可再生能源的水电解制氢技术[J].催化学报,2018,39(3):390-394.

[3]AN L,WEI C,LU M,et al.Recent Development of Oxygen Evolution Electrocatalysts in Acidic Environment[J].Advanced Materials,2021,33(20):2006328.

[4]尹玉国,逄锦鑫,黄登高,等.大型水电解制氢技术现状及发展[J].广东化工,2022,49(11):97-98.

[5]ZENG K,ZHANG D.Recent Progress in Alkaline Water Electrolysis for Hydrogen Production and Applications[J].Progress in Energy and Combustion Science,2010,36(3):307-326.

[6]JANG D,CHO H S,KANG S.Numerical Modeling and Analysis of the Effect of Pressure on the Performance of an Alkaline Water Electrolysis System[J].Applied Energy,2021,287:116554.

[7]杨成玉,马军,李广玉,等.大型碱性电解水制氢装备多对一的应用与实践[J].太阳能,2022(5):103-114.

[8]陈学明.变配电站在甲乙类厂房设置探讨[J].现代建筑电气.2021,12(133):53-68.

基本信息:

DOI:10.13500/j.dlkcsj.issn1671-9913.2024.11.006

中图分类号:TM612;TQ116.21

引用信息:

[1]涂宏,周军,李少华.大型水电解制氢系统配置及主厂房布置方案探讨[J].电力勘测设计,2024,No.200(11):28-32+60.DOI:10.13500/j.dlkcsj.issn1671-9913.2024.11.006.

投稿时间:

2024-09-06

投稿日期(年):

2024

修回时间:

2024-09-09

终审时间:

2024-09-11

终审日期(年):

2024

审稿周期(年):

1

发布时间:

2024-11-15

出版时间:

2024-11-15

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