EXPERIMENTAL ANALYSIS OF KINETICS AND CYCLIC PERFORMANCE OF COBALT OXIDE POWDER AS REDOX REACTANT AGENT FOR HIGH-TEMPERATURE THERMOCHEMICAL ENERGY STORAGE

被引:0
|
作者
Vahedi, Nasser [1 ]
Oztekin, Alparslan [1 ]
机构
[1] Lehigh Univ, Dept Mech Engn & Mech, PC Rossin Coll Engn & Appl Sci, Bethlehem, PA 18015 USA
关键词
REVERSIBLE-REACTIONS; METAL-OXIDES; SYSTEMS;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
For continuous operation of Concentrated Solar Power (CSP) Plants it is necessary to integrate thermal energy storage module. High-density energy storage system at a high temperature is required for the new generation of large scale CSP plants. The Thermochemical Energy Storage (ICES) systems use the enthalpy of formation of a reversible chemical reaction for energy storage and release. Gas/solid reduction oxidation (redox) reactions of solid metal oxides using air as heat transfer fluid (HTF) can be directly integrated with air operated CSP plants, and there is no need for HTF storage and any intermediate heat exchanger. A new generation of large scale CSP plants uses high-temperature solar collectors to increase power cycle efficiency. Such operating conditions require the development of suitable high-temperature TCES systems. The selection of suitable metal oxide reactant is very critical in the design of such high-temperature storage systems and requires a detailed study of the physics of reaction within the reactor. Cobalt oxide (Co3O4/CoO) has been verified to have a high reaction temperature, high enthalpy of reaction together with reasonable cyclic and thermal stability. Unique features of cobalt oxide require more fundamental study of the physics behind the redox reaction and its cyclic performance. Study of the physics of materials during the storage/release cycle is necessary for the design and improvement of the reactor and can be used as a benchmark for comparison of any implemented changes. A high precision, true differential TGA/DSC instrument is used for simultaneous measurement of weight change (TGA) and true differential heat flow (DSC) for pure cobalt oxide (Co3O4) powder. Storage cycle (charge/discharge) was conducted for five cycles. Complete re-oxidation was achieved within reasonable times by performing the two reactions at close temperatures and controlling heating/cooling rates. Basic performance parameters were derived as a benchmark for future references. Single-cycle controlling parameters such as heating/cooling rate, dwelling time, and purge gas rate were investigated. System response for few initial cycles was studied. It was shown that pure cobalt oxide could regain weight and complete re-oxidation with reasonable stability. A transition for heat flow was detected after a few initial cycles which reduced discharge heat and decreased overall performance.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] Fe-doped Manganese Oxide Redox Material for Thermochemical Energy Storage at High-Temperatures
    Gokon, Nobuyuki
    Nishizawa, Aoi
    Yawata, Takehiro
    Bellan, Selvan
    Kodama, Tatsuya
    Cho, Hyun-seok
    SOLARPACES 2018: INTERNATIONAL CONFERENCE ON CONCENTRATING SOLAR POWER AND CHEMICAL ENERGY SYSTEMS, 2019, 2126
  • [32] High-temperature thermochemical energy storage using metal hydrides: Destabilisation of calcium hydride with silicon
    Griffond, Arnaud C. M.
    Sofianos, M. Veronica
    Sheppard, Drew A.
    Humphries, Terry D.
    Sargent, Anna-Lisa
    Dornheim, Martin
    Aguey-Zinsou, Kondo-Francois
    Buckley, Craig E.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2021, 858
  • [33] High-Temperature Calcium-Based Thermochemical Energy Storage System for Use with CSP Facilities
    Muto, Andrew
    McCabe, Kevin
    Real, Daniel
    INTERNATIONAL CONFERENCE ON CONCENTRATING SOLAR POWER AND CHEMICAL ENERGY SYSTEMS (SOLARPACES 2017), 2018, 2033
  • [34] Reduction kinetics for large spherical 2:1 iron-manganese oxide redox materials for thermochemical energy storage
    Hamidi, Marziyeh
    Bayon, Alicia
    Wheeler, Vincent M.
    Kreider, Peter
    Wallace, Mark A.
    Tsuzuki, Takuya
    Catchpole, Kylie
    Weimer, Alan W.
    CHEMICAL ENGINEERING SCIENCE, 2019, 201 : 74 - 81
  • [35] Investigation on Modification Mechanism of CaO/CaCO3 High-Temperature Thermochemical Energy Storage
    Tian, Xikun
    Xu, Tianxin
    Yan, Jun
    Lin, Shangchao
    Zhao, Changying
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2023, 44 (09): : 2541 - 2548
  • [36] Composite material for high-temperature thermochemical energy storage using calcium hydroxide and ceramic foam
    Funayama, Shigehiko
    Takasu, Hiroki
    Zamengo, Massimiliano
    Kariya, Jun
    Kim, Seon Tae
    Kato, Yukitaka
    ENERGY STORAGE, 2019, 1 (02)
  • [37] Experimental discharge analysis of a high-temperature thermal energy storage system made of alumina blocks
    Sanchez-Gonzalez, Alberto
    Jimenez-Montero, Ines
    Soria-Verdugo, Antonio
    APPLIED THERMAL ENGINEERING, 2025, 267
  • [38] Thermal and cyclic performance of aluminum alloy composite phase change microcapsules for high-temperature thermal energy storage
    Wang, Kaichen
    Tao, Keyu
    Guo, Miao
    Wang, Tieying
    Liao, Zhirong
    Ye, Feng
    Xu, Chao
    Du, Xiaoze
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2024, 277
  • [39] High-temperature thermochemical energy storage based on redox reactions using Co-Fe and Mn-Fe mixed metal oxides
    Andre, Laurie
    Abanades, Stephane
    Cassayre, Laurent
    JOURNAL OF SOLID STATE CHEMISTRY, 2017, 253 : 6 - 14
  • [40] Iron Oxide-based Particles for High Temperature Thermochemical Energy Storage via the Elemental Sulfur Thermochemical Cycle
    Tsongidis, Nikolaos, I
    Karagiannakis, George
    Sakellariou, Kyriaki G.
    Pagkoura, Chrysa
    Konstandopoulos, Athanasios G.
    SOLARPACES 2018: INTERNATIONAL CONFERENCE ON CONCENTRATING SOLAR POWER AND CHEMICAL ENERGY SYSTEMS, 2019, 2126