4.6 Article

Thermal energy storage for solar-powered organic Rankine cycle engines

期刊

SOLAR ENERGY
卷 96, 期 -, 页码 205-219

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.solener.2013.07.013

关键词

Thermal energy storage; Organic Rankine cycle (ORC); Complete flashing cycle (CFC)

资金

  1. Dutch Technology Foundation STW
  2. Applied Science Division of NWO
  3. Technology Program of the Ministry of Economic Affairs [11143]

向作者/读者索取更多资源

The feasibility of energy storage is of paramount importance for solar power systems, to the point that it can be the technology enabler. Regarding concentrated solar power (CSP) systems, the implementation of thermal energy storage (TES) is arguably a key advantage over systems based on photovoltaic (PV) technologies. The interest for highly efficient and modular CSP plants of small to medium capacity (5 kW(E)-5 MWE) is growing: organic Rankine cycle (ORC) power systems stand out in terms of efficiency, reliability and cost-effectiveness in such power-range. In this paper a thorough investigation on thermal storage systems tailored to high-temperature (approximate to 300 degrees C) ORC power plants is addressed first, stemming from the observation that the direct storage of the ORC working fluid is effective thanks to its favourable thermodynamic properties. The concept of complete flashing cycle (CFC) is then introduced as a mean of achieving an unmatched system layout simplification, while preserving conversion efficiency. This is a new variant of the Rankine cycle, whereby the vapour is produced by throttling the organic working fluid from liquid to saturated vapour conditions. The presentation and discussion of a case study follows: a 100 kW(E) CFC system with direct thermal energy storage, coupled with state-of-the-art parabolic trough collectors. The proposed turbogenerator achieves an estimated 25% efficiency, which corresponds to a value of 18% in design conditions for the complete system. Considering siloxanes as working fluids, the estimated values of storage density are around 10 kW (e)h/m(storage)(3). (C) 2013 Elsevier Ltd. All rights reserved.

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