A comparative techno-economic and sensitivity analysis of Power-to-X processes from different energy sources

被引:65
作者
Bellotti, D. [1 ]
Rivarolo, M. [1 ]
Magistri, L. [1 ]
机构
[1] Univ Genoa, Thermochem Power Grp, Via Montallegro 1, I-16145 Genoa, Italy
关键词
Green hydrogen; power to Fuel; Energy storage; Innovative fuels; Economic analysis; HYDROGEN-PRODUCTION; RENEWABLE ENERGY; SYSTEM; METHANE; COST; GAS; OPTIMIZATION; PERFORMANCE; CHALLENGES; GENERATION;
D O I
10.1016/j.enconman.2022.115565
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper, green hydrogen produced via water electrolysis and its conversion into three alternative fuels, such as methane, methanol, and ammonia, are considered. The four different Power-to-Fuel solutions are investigated and compared from both the technical and economic points of view aiming at providing a comprehensive overview of the Power-to-Fuel feasibility. At first, the global process efficiency, the storage capacity, the annual costs, and the production cost of the different fuels (in terms of mass, energy, and hydrogen content) are calculated for a reference scenario. Then, a sensitivity analysis is carried out analyzing the influence of many parameters (i.e. electricity cost, electrolyser CAPEX, operating hours, etc) on the economic viability of all the processes. Finally, map plots are developed reporting the fuel production cost for considering different renewable energy sources and their availability. They can be considered as a useful tool for pre-feasibility analysis of power to fuel processes enabling to analyze and compare the different solutions in different scenarios. It is found that the highest efficient process is the Power-to-Hydrogen (about 61.5%) followed by the methanol and ammonia processes and in the end the methane processes. In terms of energy storage and energy density by volume, the methanol resulted in the most suitable solution, while the ammonia resulted in the best H2 storage medium in terms of kg of H2 per m3 of storage (108 kgH2/m3). From the economic perspective, the annual cost breakdown showed that, in all the cases, the major expenditures are related to the electrical energy purchase and CAPEX and OPEX of the electrolyzer (around 90% of total costs), and a 50% reduction in electricity cost and electrolyzer CAPEX could lead to a reduction of about 30% and 18% on fuel production cost, respectively. The cheapest fuel in terms of mass and energy content are methanol (1.02(sic)/kg) and Hydrogen (0.16(sic)/kWh), respectively. The ammonia production cost in terms of hydrogen content in mass resulted almost comparable with the Hydrogen one (5.76(sic)/kgH2 and 5.31(sic)/(sic)/kgH2, respectively). The contribution of the co-produced oxygen sale has been estimated in around a 15% reduction of fuel production cost in all the cases.
引用
收藏
页数:15
相关论文
共 60 条
[31]   A hybrid wind-PV system performance investigation for the purpose of maximum hydrogen production and storage using advanced alkaline electrolyzer [J].
Khalilnejad, A. ;
Riahy, G. H. .
ENERGY CONVERSION AND MANAGEMENT, 2014, 80 :398-406
[32]   Renewable methanol synthesis from renewable H2 and captured CO2: How can power-to-liquid technology be economically feasible? [J].
Lee, Boreum ;
Lee, Hyunjun ;
Lim, Dongjun ;
Brigljevic, Boris ;
Cho, Wonchul ;
Cho, Hyun-Seok ;
Kim, Chang-Hee ;
Lim, Hankwon .
APPLIED ENERGY, 2020, 279
[33]   Assessment of integrated energy systems for the production and use of renewable methanol by water electrolysis and CO2 hydrogenation [J].
Lonis, Francesco ;
Tola, Vittorio ;
Cau, Giorgio .
FUEL, 2021, 285
[34]   Large-scale decomposition of green ammonia for pure hydrogen production [J].
Makhloufi, Camel ;
Kezibri, Nouaamane .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (70) :34777-34787
[35]   Modelling of a power-to-gas system to predict the levelised cost of energy of an advanced renewable gaseous transport fuel [J].
McDonagh, Shane ;
O'Shea, Richard ;
Wall, David M. ;
Deane, J. P. ;
Murphy, Jerry D. .
APPLIED ENERGY, 2018, 215 :444-456
[36]  
methanex, About us
[37]   Hydrogen storage and delivery: Review of the state of the art technologies and risk and reliability analysis [J].
Moradi, Ramin ;
Groth, Katrina M. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (23) :12254-12269
[38]   Site-dependent levelized cost assessment for fully renewable Power-to-Methane systems [J].
Morgenthaler, Simon ;
Ball, Christopher ;
Koj, Jan Christian ;
Kuckshinrichs, Wilhelm ;
Witthaut, Dirk .
ENERGY CONVERSION AND MANAGEMENT, 2020, 223
[39]   Techno-economic assessment of commercial ammonia synthesis methods in coastal areas of Germany [J].
Nosherwani, Shahmir Ali ;
Neto, Rui Costa .
JOURNAL OF ENERGY STORAGE, 2021, 34
[40]   Large-vscale hydrogen production and storage technologies: Current status and future directions [J].
Olabi, A. G. ;
Bahri, Adel Saleh ;
Abdelghafar, Aasim Ahmed ;
Baroutaji, Ahmad ;
Sayed, Enas Taha ;
Alami, Abdul Hai ;
Rezk, Hegazy ;
Abdelkareem, Mohammad Ali .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (45) :23498-23528