PUMPED HEAT ELECTRICITY STORAGE: POTENTIAL ANALYSIS AND ORC REQUIREMENTS

被引:26
作者
Roskosch, D. [1 ]
Atakan, B. [1 ]
机构
[1] Univ Duisburg Essen, Thermodynam IVG, Faulty Engn, Lotharstr 1, D-47057 Duisburg, Germany
来源
4TH INTERNATIONAL SEMINAR ON ORC POWER SYSTEMS | 2017年 / 129卷
关键词
pumped electricity heat storage; fluid selection; inverse engineering; endo-reversible thermodynamics; ENERGY-STORAGE;
D O I
10.1016/j.egypro.2017.09.235
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 rising share of renewable energy sources in power generation leads to the need of energy storage capacities. In this context, also some interest in thermal energy storages, especially in a concept called pumped heat electricity storage (PHES), arises. One possible design of such a PHES system consists of a compression heat pump, a thermal storage and an organic Rankine cycle (ORC). The present work analyses the general thermodynamic potential and limits of such a system and deals with the unusual requirements for the ORC. The potential analysis starts with the optimal case of combining two Carnot cycles with irreversible heat transfer. It is found that the efficiency of the entire process increases with increasing storage temperature and in general roundtrip efficiencies up to 70 % are predicted. Afterwards the cycles are transferred to cycles that are more realistic by considering technical aspects and a hypothetical working fluid which is optimized by an inverse engineering approach. This leads to lowered roundtrip efficiencies, which now, decrease with increasing storage temperatures. In a second step the specific ORC requirements as part of a PHES are considered, emphasizing the working fluid parameters. Especially, the use of a latent thermal energy storage leads to an ORC design differing from common (e.g. geothermal) applications. It is shown that the efficiency of the ORC and of the entire process strongly depends on the superheating at the expander inlet; here, the superheating must be held as small as possible, contrary to ORCs using common heat sources. (C) 2017 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:1026 / 1033
页数:8
相关论文
共 14 条
[1]   Comment on "Thermodynamic Efficiency of Pumped Heat Electricity Storage" [J].
Chen, Jincan ;
Guo, Juncheng .
PHYSICAL REVIEW LETTERS, 2016, 116 (15)
[2]   EFFICIENCY OF A CARNOT ENGINE AT MAXIMUM POWER OUTPUT [J].
CURZON, FL ;
AHLBORN, B .
AMERICAN JOURNAL OF PHYSICS, 1975, 43 (01) :22-24
[3]   A thermal energy storage process for large scale electric applications [J].
Desrues, T. ;
Ruer, J. ;
Marty, P. ;
Fourmigue, J. F. .
APPLIED THERMAL ENGINEERING, 2010, 30 (05) :425-432
[4]   Exergoeconomic Analysis of a Pumped Heat Electricity Storage System with Concrete Thermal Energy Storage [J].
Dietrich, A. ;
Dammel, F. ;
Stephan, P. .
INTERNATIONAL JOURNAL OF THERMODYNAMICS, 2016, 19 (01) :43-51
[5]   Energy storage in the energy transition context: A technology review [J].
Gallo, A. B. ;
Simoes-Moreira, J. R. ;
Costa, H. K. M. ;
Santos, M. M. ;
Moutinho dos Santos, E. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 65 :800-822
[6]   Performance evaluation and parametric choice criteria of a Brayton pumped thermal electricity storage system [J].
Guo, Juncheng ;
Cai, Ling ;
Chen, Jincan ;
Zhou, Yinghui .
ENERGY, 2016, 113 :693-701
[7]   Parametric studies and optimisation of pumped thermal electricity storage [J].
McTigue, Joshua D. ;
White, Alexander J. ;
Markides, Christos N. .
APPLIED ENERGY, 2015, 137 :800-811
[8]   Analysis of pumped heat electricity storage process using exponential matrix solutions [J].
Ni, Fan ;
Caram, Hugo S. .
APPLIED THERMAL ENGINEERING, 2015, 84 :34-44
[9]  
Roskosch D, 2015, P ASME ORC, V3
[10]  
Roskosch D, 2017, P EC IN PRESS, V30