Structure and Operation Optimization of a Form-Stable Carbonate/Ceramic-Based Electric Thermal Storage Device for Space Heating
Author:
Pan Xinyu1, Yuan Mengdi1, Xu Guizhi2, Hu Xiao2, Liao Zhirong1ORCID, Xu Chao1
Affiliation:
1. Key Laboratory of Power Station Energy Transfer Conversion and System of MOE, North China Electric Power University, Beijing 102206, China 2. State Key Laboratory of Advanced Power Transmission Technology, Global Energy Interconnection Research, Institute Co., Ltd., Changping District, Beijing 102211, China
Abstract
The escalating demand for heating and the widespread use of CO2-emitting fossil fuels during cold seasons have imposed significant pressure on our natural resources. As a promising alternative to coal-fired boilers, electrical thermal storage devices (ETSDs) for space heating are gaining popularity. However, designing ETSDs for space heating involves significant challenges, which involve their storage rate and operational stability. In contrast to the research of directly developing mid-temperature ETSDs to manage heat release during long heating hours, this study proposed a new ETSD that uses K2CO3–Na2CO3 for high-temperature storage to match the off-peak hours and thereby gain potential economic benefits. This study used experimental and simulation methods to investigate the ETSD’s temperature distribution. An operational strategy was also proposed to achieve more efficient temperature distribution and higher economic benefits. The ETSD with two steel plates and two insulation layers with a power rating of 1.6 kW was found to be the optimum structure, due to its improved heat storage rate (2.1 °C/min), uniform temperature, and material heat resistance (<750 °C). An energy analysis, economic analysis, and a 7-day cycling operation performance of the device were then conducted by comparing the proposed ETSD with a traditional electric heater. The results revealed that the proposed ETSD released 53.4% of the stored energy in the room, and stored 48.6% of it during valley electric time. The total cost of the proposed ETSD was consistently lower than the traditional electric heater in the second heating season (by the 213th day). The efficiency of its valley heat storage for users was 37.2%. Overall, this study provides valuable insights into the development and practical applications of ETSD systems for space heating.
Funder
National Natural Science Foundation of China
Subject
Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction
Reference26 articles.
1. Electric power substitution for coal in China: Status quo and SWOT analysis;Niu;Renew. Sustain. Energy Rev.,2017 2. Evaluating the environmental value schedule of pollutants mitigated in China thermal power industry;Wei;Res. Environ. Sci.,2003 3. Investigation of boilers energy alternative outside the region of Nanjing heating supply;Lin;Power Demand Side Manag.,2010 4. Xu, G., Hu, X., Liao, Z., Xu, C., Yang, C., and Deng, Z. (2018). Experimental and Numerical Study of an Electrical Thermal Storage Device for Space Heating. Energies, 11. 5. State of the art of thermal storage for demand-side management;Arteconi;Appl. Energy,2012
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