Life cycle assessment of thermochemical energy storage integration concepts for a concentrating solar power plant

被引:20
|
作者
Pelay, Ugo [1 ]
Azzaro-Pantel, Catherine [2 ]
Fan, Yilin [1 ]
Luo, Lingai [1 ]
机构
[1] Univ Nantes, CNRS, UMR6607, Lab Therm & Energie Nantes,LTeN, F-44000 Nantes, France
[2] Univ Toulouse, UPS, INPT, Lab Genie Chim,CNRS, Campus INP ENSIACET, Toulouse 4, France
关键词
concentrating solar power (CSP); environmental impact; life cycle assessment (LCA); midpoint categories; thermal energy storage (TES); thermochemical; SYSTEMS;
D O I
10.1002/ep.13388
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper presents an original life cycle assessment (LCA) of a concentrating solar power (CSP) plant with thermochemical energy storage (TCES). The studied CSP plant is a hypothetic solar tower plant with a Rankine power cycle, and the TCES material used is calcium hydroxide. Based on three proposed TCES integration concepts, detailed sizing and the associated emission inventory are performed for four main groups that constitute the CSP plant, including the solar field, the solar tower, the storage system and the power cycle. Various midpoint impact categories are evaluated using the IMPACT 2002+ method embedded in the SimaPro 7.3 software. A sensitivity analysis is performed to identify the most influencing elements of the CSP plant on the environmental impacts. LCA results show that the CSP plant with different TCES integration alternatives has comparable global warming potential (approximately 11 kg CO2.eq/MWh) and energy payback time (approximately 4 months). The additional environmental burden due to the addition of the TCES system is relatively small (about 30%). The use of calcium hydroxide for the TCES has noticeable midpoint impacts on the respiratory inorganics, the terrestrial ecotoxicity and the mineral extraction. Solar field group (heliostat mirrors) is generally the most sensitive and environmental impacting factor of the CSP installation. The Turbine integration concept has the smallest environmental impacts among the three concepts proposed.
引用
下载
收藏
页数:11
相关论文
共 50 条
  • [31] Carbonation of Limestone Derived CaO for Thermochemical Energy Storage: From Kinetics to Process Integration in Concentrating Solar Plants
    Ortiz, C.
    Valverde, J. M.
    Chacartegui, R.
    Perez-Maqueda, L. A.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (05): : 6404 - 6417
  • [32] Life Cycle Assessment of a Solar Thermal Concentrating System
    Koroneos, Christopher J.
    Piperidis, Socrates A.
    Tatatzikidis, Christos A.
    Rovas, Dimitrios C.
    COMPUTING AND COMPUTATIONAL TECHNIQUES IN SCIENCES, 2008, : 209 - +
  • [33] Life cycle assessment of a future central receiver solar power plant and autonomous operated heliostat concepts
    Telsnig, Thomas
    Weinrebe, Gerhard
    Finkbeiner, Jonathan
    Eltrop, Ludger
    SOLAR ENERGY, 2017, 157 : 187 - 200
  • [34] Energy and exergy analysis of the integration of concentrated solar power with calcium looping for power production and thermochemical energy storage
    Karasavvas, Evgenios
    Panopoulos, Kyriakos D.
    Papadopoulou, Simira
    Voutetakis, Spyros
    RENEWABLE ENERGY, 2020, 154 : 743 - 753
  • [35] Recent developments in geometrical configurations of thermal energy storage for concentrating solar power plant
    Mao, Qianjun
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 59 : 320 - 327
  • [36] Modeling and dynamic simulation of thermal energy storage system for concentrating solar power plant
    Yu, Qiang
    Li, Xiaolei
    Wang, Zhifeng
    Zhang, Qiangqiang
    ENERGY, 2020, 198 (198)
  • [37] Optimization of thermal energy storage integration strategies for peak power production by concentrating solar power plants
    Guedez, R.
    Spelling, J.
    Laumert, B.
    Fransson, T.
    PROCEEDINGS OF THE SOLARPACES 2013 INTERNATIONAL CONFERENCE, 2014, 49 : 1642 - 1651
  • [38] THERMAL ENERGY STORAGE FOR CONCENTRATING SOLAR POWER PLANTS
    Kuravi, Sarada
    Goswami, Yogi
    Stefanakos, Elias K.
    Ram, Manoj
    Jotshi, Chand
    Pendyala, Swetha
    Trahan, Jamie
    Sridharan, Prashanth
    Rahman, Muhammad
    Krakow, Burton
    TECHNOLOGY AND INNOVATION, 2012, 14 (02) : 81 - 91
  • [39] The Value of Concentrating Solar Power and Thermal Energy Storage
    Sioshansi, Ramteen
    Denholm, Paul
    IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2010, 1 (03) : 173 - 183
  • [40] Reliable integration of a concentrating solar power plant in a small isolated system through an appropriately sized battery energy storage system
    Nikolaidis, Alexandros I.
    Koumparou, Yiannis
    Makrides, Georgios
    Efthymiou, Venizelos
    Georghiou, George Elia
    Charalambous, Charalambos A.
    IET RENEWABLE POWER GENERATION, 2016, 10 (05) : 735 - 742