Renewable Power-to-Gas: A technological and economic review
Возобновляемая электроэнергия в газ: технологический и экономический обзор
2015-08-05
SCID: 54.1/5mk7fsyw
Discuss with AI
Power-to-Gasmethanation technologiesrenewable energy storagetechno-economic analysiswater electrolysis
Figures from the paper
Abstract (AI)
The Power-to-Gas (PtG) process chain could play a significant role in the future energy system . Renewable electric energy can be transformed into storable methane via electrolysis and subsequent methanation . This article compares the available electrolysis and methanation technologies with respect to the stringent requirements of the PtG chain such as low CAPEX, high efficiency, and high flexibility. Three water electrolysis technologies are considered: alkaline electrolysis , PEM electrolysis, and solid oxide electrolysis . Alkaline electrolysis is currently the cheapest technology; however, in the future PEM electrolysis could be better suited for the PtG process chain. Solid oxide electrolysis could also be an option in future, especially if heat sources are available. Several different reactor concepts can be used for the methanation reaction. For catalytic methanation, typically fixed-bed reactors are used; however, novel reactor concepts such as three-phase methanation and micro reactors are currently under development. Another approach is the biochemical conversion . The bioprocess takes place in aqueous solutions and close to ambient temperatures. Finally, the whole process chain is discussed. Critical aspects of the PtG process are the availability of CO 2 sources, the dynamic behaviour of the individual process steps, and especially the economics as well as the efficiency.
Key Findings
1
Alkaline electrolysis is currently the least expensive option, while PEM electrolysis may become better suited to Power-to-Gas requirements.
2
Critical Power-to-Gas challenges include CO₂-source availability, dynamic operation of process steps, overall efficiency, and economic viability.
3
Fixed-bed reactors are commonly used for catalytic methanation, while three-phase, microreactor, and biochemical approaches are under development or consideration.
4
Power-to-Gas can convert renewable electricity into storable methane through water electrolysis followed by methanation.
5
Solid oxide electrolysis could be advantageous in future systems when suitable heat sources are available.
Research Object
the renewable Power-to-Gas process chain, comprising water electrolysis and subsequent methane methanation
Research Subject
the technological suitability, flexibility, efficiency, cost, dynamic behavior, and CO2-source requirements of electrolysis and methanation technologies within the Power-to-Gas chain
Publication Details
Publication Date
2015-08-05
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest