Cobalt/cobaltous oxide based honeycombs for thermochemical heat storage in future concentrated solar power installations: Multi-cyclic assessment and semi-quantitative heat effects estimations

被引:75
|
作者
Karagiannakis, George [1 ]
Pagkoura, Chrysoula [1 ,2 ]
Halevas, Eleftherios [1 ]
Baltzopoulou, Penelope [1 ]
Konstandopoulos, Athanasios G. [1 ,3 ]
机构
[1] Ctr Res & Technol Hellas APTL CPERI CERTH, Chem Proc & Energy Resources Inst, Aerosol & Particle Technol Lab, 6th Km Charilaou Thermi,POB 361, Thermi 57001, Greece
[2] Univ Western Macedonia, Dept Mech Engn, Bakola & Sialvera Str, Kozani 50100, Greece
[3] AUTH, Dept Chem Engn, POB 1517, Thessaloniki 54006, Greece
关键词
Thermochemical storage; Honeycomb reactor; Cobalt oxide; Redox; AIR BRAYTON CYCLE; ENERGY-STORAGE; HIGH-TEMPERATURE; PARABOLIC TROUGH; THERMAL STORAGE; THERMODYNAMICS; DECARBONATION; DECOMPOSITION; ELECTRICITY; GENERATION;
D O I
10.1016/j.solener.2016.04.032
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The present study relates to the preparation and evaluation of small-scale honeycomb structures as compact reactors/heat exchangers via exploitation of the cobalt/cobaltous oxide (Co3O4/CoO) cyclic reduction oxidation (redox) heat storage scheme. The structures considered included in-house extruded monoliths (pure cobalt oxide and cobalt oxide/alumina composites) and commercial cordierite substrates coated with Co3O4. The samples were subjected to multi-cyclic redox operation under air flow, in the temperature range of 700-1000 degrees C. Reduction occurred during heating up to 1000 degrees C, while oxidation took place during cooling. Redox performance was evaluated on the basis of on-line oxygen release/consumption measurements, while continuous monitoring of imposed air flow reactor inlet/outlet temperatures facilitated the preliminary estimation of heat dissipation in the duration and after completion of the exothermic reaction (oxidation). For all samples, redox performance remained stable in the course of multi-cyclic exposure. In terms of heat transfer, there is strong indication that both composition and the geometry of the honeycomb are important. The pure Co3O4 extruded honeycomb exhibited the highest heat dissipation efficiency but suffered from severe deformation upon multi-cyclic operation. The addition of a small amount of alumina in the aforementioned composition (10% on the basis of total initial mass of oxides), particularly when combined with an increase of the honeycomb wall thickness, substantially improved macro-structural stability upon thermal/redox cycling. The Co3O4-coated cordierite monoliths showed essentially the same normalised redox performance with the pure Co3O4 extruded honeycomb, however the overall heat dissipation achieved was lower. Regarding the effect of redox cycling on the structural stability of studied formulations, pure Co3O4 samples exhibited notable swelling. In the case of the extruded body, this resulted to structural collapse while for the coated cordierite honeycomb, expansion of the coating layer led to partial channels blocking. Based on relevant morphological and structural post-analysis, it was concluded that formation of cobalt aluminate largely reduced swelling intensity. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:394 / 407
页数:14
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