Investigation of a household-scale open sorption energy storage system based on the Zeolite 13X/water reacting pair

التفاصيل البيبلوغرافية
العنوان: Investigation of a household-scale open sorption energy storage system based on the Zeolite 13X/water reacting pair
المؤلفون: R. van Alebeek, Luca Scapino, Ccm Camilo Rindt, M Mohammadreza Gaeini, M.A.J.M. Beving, HA Herbert Zondag
المساهمون: Mechanical Engineering, Energy Technology
المصدر: Applied Thermal Engineering, 139, 325-333. Elsevier
سنة النشر: 2018
مصطلحات موضوعية: Materials science, 020209 energy, Mass flow, Nuclear engineering, Energy Engineering and Power Technology, Open sorption system, 02 engineering and technology, Sensible heat, Thermal energy storage, Industrial and Manufacturing Engineering, Energy storage, Thermochemische warmteopslag, 0202 electrical engineering, electronic engineering, information engineering, Thermal mass, Zeolite 13X, Pressure drop, Zeoliet 13X, Segmented reactor, Humidity, Sorption, Reactor, 021001 nanoscience & nanotechnology, Sorptie, Thermochemical heat storage, 0210 nano-technology, High power
الوصف: Sorption thermal energy storage is a promising concept for seasonal heat storage. Advantages of sorption heat storage are high energy storage density (compared to sensible and phase change heat storage) and negligible energy losses during storage over long time periods. In order to investigate the potential of sorption thermal energy storage, a high power open sorption heat storage system has been designed and built for household space heating applications. In this paper, the characteristics of the open zeolite 13X/water sorption energy storage system will be presented. The setup consists of four segments with a total capacity of 250 L of zeolite. A segmented reactor has been designed to reduce the pressure drop over the system, which results in less required fan power. This configuration also decreases the response time and makes the system scalable. Dehydration of the reactor is performed by supplying hot air to the zeolite bed. Hydration is performed by supplying humidified air to the bed. In all the segments, the pressure drop, temperature, and humidity are monitored. Furthermore, inside one of the reactor segments, the temperature is monitored at different locations in the zeolite bed. Several tests, using different mass flow rates, have been performed. During the tests, a maximum temperature step of 24 °C was realized. The maximum delivered power was 4.4 kW and the obtained storage capacity was 52 kWh. The reactor efficiency was 76% taking into consideration the conductive heat losses through the reactor wall and the sensible heat taken up by the thermal mass of the solids. Furthermore, it has been noticed that the flow through the bed was not completely uniform. This has a negative influence on the performance of the system.
وصف الملف: application/pdf
اللغة: English
تدمد: 1359-4311
URL الوصول: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::66257bd5a152deb6a36639f69807f51d
https://research.tue.nl/nl/publications/8810c923-39ee-4c23-a14b-853e240b0931
حقوق: OPEN
رقم الأكسشن: edsair.doi.dedup.....66257bd5a152deb6a36639f69807f51d
قاعدة البيانات: OpenAIRE