scispace - formally typeset
Journal ArticleDOI

Latent heat storage above 120°C for applications in the industrial process heat sector and solar power generation

TLDR
In this paper, phase change materials (PCMs) are used for thermal storage in the temperature range of 120-300 °C for solar thermal power generation and high temperature process heat.
Abstract
This paper is focussed on thermal storage technologies using phase change materials (PCMs) in the temperature range of 120-300 °C for solar thermal power generation and high temperature process heat. As state-of-the-art reference system a steam accumulator is described, which typically has a volume-specific thermal energy density of 20-30 kWh/m³. Regarding efficiency, a fundamental demand on thermal storage is the minimization of temperature differences between working fluid and storage medium. This requires isothermal storage systems for processes using water/steam. An obvious solution is, therefore, the application of PCMs. The selection of the PCMs depends strongly on the operation conditions of the respective application. At present, the main emphasis is directed to alkali metal nitrates and nitrites and their mixtures. For example, the eutectic mixture of the binary system KNO3-NaNO3 has been identified as an excellent system to be used for processes using saturated steam at around 25 bar. At around 5 bar the ternary system KNO3-NaNO2-NaNO3, commonly used as heat transfer fluid, can also be used as a PCM. To overcome the low thermal conductivity of the salt systems, approaches of increased surfaces area and increased thermal conductivity using expanded graphite (EG) have been investigated. Using EG/PCM-composites the effective thermal conductivity can be increased from below 0.5 W/(mK) to 3-20 W/(mK). Three design concepts have been developed. In the macro-encapsulated design, the PCM is enclosed in metal tubes, giving a short distance for heat transfer and increasing the heat transfer area. In the second design, the heat exchanger tubes are embedded in EG/PCM-composite storage material. The third design option uses graphite foils arranged perpendicularly onto the heat exchanger tubes and a suitable salt system filled in between. The upgrade of existing steam accumulators using these PCM concepts is also proposed.

read more

Citations
More filters
Journal ArticleDOI

Technical Challenges and Opportunities for Concentrating Solar Power With Thermal Energy Storage

TL;DR: In this paper, the authors discuss the technical challenges associated with various thermal energy storage technologies and opportunities for advancing the scientific knowledge relating to the critical questions still remaining for each technology, and discuss the potential for developing TES systems utilizing any one of the three categories of TES technologies, including sensible heat storage, latent heat storage using phase change materials (PCMs) or thermochemical storage.
Journal ArticleDOI

Recent developments in geometrical configurations of thermal energy storage for concentrating solar power plant

TL;DR: In this paper, a review of geometrical configuration of thermal energy storage tank by summarizing a series of numerical, experimental and theoretical studies in the open literatures has been proposed in the paper.
Journal ArticleDOI

Nitrate salts doped with CuO nanoparticles for thermal energy storage with improved heat transfer

TL;DR: In this article, a cupric oxide (CuO) nanoparticle-enhanced nitrate salt system was proposed to improve the thermal conductivity of the pure salt by adding nanoparticles of higher conductivity, such as metallic nanoparticles or nanoparticulate graphite.
Journal ArticleDOI

Characterization of Sodium Nitrate as Phase Change Material

TL;DR: The results of material investigations of NaNO3 with a melting temperature of 306 °C as a phase change material (PCM) are presented in this article, where the thermal stability was examined by kinetic experiments and long-duration oven tests.
Journal ArticleDOI

Waste heat transportation system, using phase change material (PCM) from steelworks to chemical plant

TL;DR: In this paper, the feasibility of a latent heat transportation (LHT) system that uses phase change material (PCM) to recover waste heat at temperatures over 300°C in steelworks and supplies it to a distillation tower of benzene, toluene, and xylene (BTX).
References
More filters
ReportDOI

Physical properties data compilations relevant to energy storage. ii: molten salts: data on single and multi-component salt systems

TL;DR: In this article, the authors provided selected data with value judgements for an additional set of 107 salt systems of interest as candidate materials for thermal energy storage sub-systems, for electrochemical energy storage systems, and in electrochemical aluminum production.
Journal ArticleDOI

Buffer storage for direct steam generation

TL;DR: In this article, the authors use steam accumulators for compensation of fast transients in insolation for solarthermal systems using steam as working medium and integrate latent heat storage material to increase the storage capacity.
Related Papers (5)