A comparison of two hydrogen storages in a fossil-free direct reduced iron process

被引:19
作者
Andersson, Joakim [1 ]
Gronkvist, Stefan [1 ]
机构
[1] KTH Royal Inst Technol, Div Energy Proc, SE-10044 Stockholm, Sweden
关键词
Direct reduced iron; Methanol; Electrolysis; Hydrogen storage; Fossil-free; Steelmaking; POWER-TO-GAS; CARBON-DIOXIDE; METHANOL PRODUCTION; WATER ELECTROLYSIS; ENERGY-STORAGE; RENEWABLE POWER; CAPTURED CO2; SALT CAVERNS; WIND ENERGY; FUEL;
D O I
10.1016/j.ijhydene.2021.06.092
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Hydrogen direct reduction has been proposed as a means to decarbonize primary steelmaking. Preferably, the hydrogen necessary for this process is produced via water electrolysis. A downside to electrolysis is the large electricity demand. The electricity cost of water electrolysis may be reduced by using a hydrogen storage to exploit variations in electricity price, i.e., producing more hydrogen when the electricity price is low and vice versa. In this paper we compare two kinds of hydrogen storages in the context of a hydrogen direct reduction process via simulations based on historic Swedish electricity prices: the storage of gaseous hydrogen in an underground lined rock cavern and the storage of hydrogen chemically bound in methanol. We find the methanol-based storages to be economically advantageous to lined rock caverns in several scenarios. The main advantages of methanol-based storage are the low investment cost of storage capacity and the possibility to decouple storage capacity from rate capacity. Nevertheless, no storage option is found to be profitable for historic Swedish electricity prices. For the storages to be profitable, electricity prices must be volatile with relatively frequent high peaks, which has happened rarely in Sweden in recent years. However, such scenarios may become more common with the expected increase of intermittent renewable power in the Swedish electricity system. (c) 2021 The Author(s). Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC. This is an open access article under the CC BY license (http://creativecommons.org/ licenses/by/4.0/).
引用
收藏
页码:28657 / 28674
页数:18
相关论文
共 102 条
[1]  
Ahman M., 2018, DROGEN STEELMAKING I DROGEN STEELMAKING I, P109
[2]   Challenges in the Greener Production of Formates/Formic Acid, Methanol, and DME by Heterogeneously Catalyzed CO2 Hydrogenation Processes [J].
Alvarez, Andrea ;
Bansode, Atul ;
Urakawa, Atsushi ;
Bavykina, Anastasiya V. ;
Wezendonk, Tim A. ;
Makkee, Michiel ;
Gascon, Jorge ;
Kapteijn, Freek .
CHEMICAL REVIEWS, 2017, 117 (14) :9804-9838
[3]   Application of Liquid Hydrogen Carriers in Hydrogen Steelmaking [J].
Andersson, Joakim .
ENERGIES, 2021, 14 (05)
[4]   Methanol as a carrier of hydrogen and carbon in fossil-free production of direct reduced iron [J].
Andersson, Joakim ;
Kruger, Andries ;
Gronkvist, Stefan .
ENERGY CONVERSION AND MANAGEMENT-X, 2020, 7
[5]   Large-scale storage of hydrogen [J].
Andersson, Joakim ;
Gronkvist, Stefan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (23) :11901-11919
[6]   Co-electrolysis for power-to-methanol applications [J].
Andika, Riezqa ;
Nandiyanto, Asep Bayu Dani ;
Putra, Zulfan Adi ;
Bilad, Muhammad Roil ;
Kim, Young ;
Yun, Choa Mun ;
Lee, Moonyong .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 95 :227-241
[7]  
[Anonymous], 2015, POWER GEN EUROPE
[8]  
[Anonymous], HIST MARKET DATA
[9]   A Review of The Methanol Economy: The Fuel Cell Route [J].
Araya, Samuel Simon ;
Liso, Vincenzo ;
Cui, Xiaoti ;
Li, Na ;
Zhu, Jimin ;
Sahlin, Simon Lennart ;
Jensen, Soren Hojgaard ;
Nielsen, Mads Pagh ;
Kaer, Soren Knudsen .
ENERGIES, 2020, 13 (03)
[10]   Investigation of technical and economic aspects for methanol production through CO2 hydrogenation [J].
Atsonios, Konstantinos ;
Panopoulos, Kyriakos D. ;
Kakaras, Emmanuel .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (04) :2202-2214