Article, 2024

Optimal design and off-design performance improvement for power-to-methane system integrating solid oxide electrolysis cell with methanation reactor

Fuel, ISSN 0016-2361, Volume 356, 10.1016/j.fuel.2023.129314

Contributors

Zhong L. 0000-0002-9013-1818 [1] [2] Cui X. 0000-0001-6514-0280 [1] Yao E. 0000-0002-1213-1628 (Corresponding author) [2] Xi G. [2] Zou H. [2] Jensen S.H. 0000-0001-8418-1408 [1] [3]

Affiliations

  1. [1] Aalborg University
  2. [NORA names: AAU Aalborg University; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Xi'an Jiaotong University
  4. [NORA names: China; Asia, East];
  5. [3] DynElectro ApS
  6. [NORA names: Other Companies; Private Research; Denmark; Europe, EU; Nordic; OECD]

Abstract

Power-to-methane (PtM) is a prospective solution to the mismatching between the supply and consumption of renewable energy resources (RES) by converting renewable power into methane. However, the continuous fluctuation of RES causes the PtM system to deviate from the design condition in the vast majority of cases, and thus it is significantly vital to study the operating characteristics of the PtM system under off-design conditions. This paper proposes a comprehensive investigation framework from design to off-design steps for the performance improvement of a PtM system combining solid oxide electrolysis cell with methanation reactor, and solar energy is selected as renewable energy input. Firstly, the system with the total exergy efficiency (η) of 11.83% and levelized cost of exergy (LCOE) of 150.76 $/MWh is selected as the optimal design condition based on the homogeneous assessment from both thermodynamic and economic aspects, by means of Non-dominated sorting genetic algorithm-II. Then, based on the optimal design point, the off-design performances are quantitatively investigated under varying solar radiation and key operating parameters, in terms of synthetic natural gas (SNG) yield and η. The results indicate that with the increment in solar radiation, the SNG yield rises, while the η increases first and then decreases. Finally, the multi-objective optimization based on the Artificial Neural Network models is implemented for the system under off-design conditions to acquire the best trade-off between hourly SNG yield and η. The off-design optimization solutions reveal that the hourly optimal SNG yield is located in the range of 275.06–946.53 kW, achieving a total annual SNG yield of 1697 MWh/y, and the hourly optimal η mainly varies in the range of 10.40–11.40%.

Keywords

Design condition, Methanation reactor, Off-design condition, Performance improvement, Power-to-methane, Solid oxide electrolysis cell

Funders

  • MESH
  • China Scholarship Council
  • Innovationsfonden
  • Natural Science Basic Research Program of Shaanxi Province
  • National Natural Science Foundation of China

Data Provider: Elsevier