Thermal cycling testing of Zn–Mg–Al eutectic metal alloys as potential high-temperature phase change materials for latent heat storage

被引:0
|
作者
E. Risueño
A. Gil
J. Rodríguez-Aseguinolaza
A. Gil
M. Tello
A. Faik
B. D’Aguanno
机构
[1] CIC Energigune,Dpto. Física de la Materia Condensada, Facultad de Ciencia y Tecnología
[2] Universidad del País Vasco,undefined
关键词
Thermal stability; Thermal cycling testing; Eutectic metallic alloys; Phase change material; Long-term thermal stability;
D O I
暂无
中图分类号
学科分类号
摘要
This article presents the thermal stability testing results of five high-temperature phase change materials for their potential use in latent thermal energy storage systems. The tested materials are eutectic metal alloys [Zn84Al8.7Mg7.3, Zn88.7Al11.3, Zn92.2Mg7.8, Zn72Mg28 and Mg70Zn24.9Al5.1 (at.%)] with phase change temperatures in the range of 340–380 °C. The five candidates have been selected not only for their adequate melting temperature and high fusion enthalpy, but also for the availability and appropriate costs [2–3 $/kg (Rodríguez-Aseguinolaza in J Therm Anal Calorim 117:93–99, 2014)] of Zn, Al, and Mg primary metals. As it is well known and demonstrated in previous works, the use of metal alloys presents noticeable benefits on the TES solutions based on their implementation. The particular advantages introduced by the Zn–Mg–Al system in terms of maximization of the storage capacity and appropriate operation temperature justify a deeper analysis of these alloys, previously studied, for a complete thermal performance. In this work, with the aim of reproducing a realistic thermal cycling behaviour in real heat storage applications, the selected candidates have been subjected to short- and long-term thermal cycling tests by 100 and 500 melting/solidification cycles, respectively. These experiments permitted to detect any potential evolution of the thermodynamic and structural properties of the investigated materials that could be sign of an undesirable chemical decomposition or phase segregation. As a conclusion, the Zn84Al8.7Mg7.3, Zn88.7Al11.3, Mg72Zn28 and Mg70Zn24.9Al5.1 alloys have been identified as very promising latent heat storage materials due to their long-term thermal stability.
引用
收藏
页码:885 / 894
页数:9
相关论文
共 50 条
  • [21] Investigation on the thermal performance of a high-temperature latent heat storage system
    Ma, Zhao
    Yang, Wei-Wei
    Yuan, Fan
    Jin, Bo
    He, Ya-Ling
    APPLIED THERMAL ENGINEERING, 2017, 122 : 579 - 592
  • [22] Experimental investigation of high-temperature latent heat storage packed bed using alloy-based phase change materials
    Kurniawan, Ade
    Tsukiashi, Rei
    Shimizu, Yuto
    Sato, Yuusuke
    Nakamura, Tomokazu
    Chiu, Justin N. W.
    Nomura, Takahiro
    APPLIED THERMAL ENGINEERING, 2025, 259
  • [23] METALLIC COMPOSITES PHASE-CHANGE MATERIALS FOR HIGH-TEMPERATURE THERMAL ENERGY STORAGE
    Li, Xiaobo
    Wang, Hengzhi
    Wang, Hui
    Kim, Sohae
    Esfarjani, Keivan
    Ren, Zhifeng
    Chen, Gang
    PROCEEDINGS OF THE ASME 7TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, 2013, 2014,
  • [24] Investigations on transient thermal performance of phase change materials embedded in metal foams for latent heat thermal energy storage
    Zhang, Zhaoli
    Zhang, Nan
    Yuan, Yanping
    Jiao, Wenrui
    Phelan, Patrick E.
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (15) : 20763 - 20782
  • [25] High latent heat storage and high thermal conductive phase change materials using exfoliated graphite nanoplatelets
    Kim, Sumin
    Drza, Lawrence T.
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2009, 93 (01) : 136 - 142
  • [26] Thermal charge/discharge performance of iron-germanium alloys as phase change materials for solar latent heat storage at high temperatures
    Gokon, Nobuyuki
    Jie, Chew Shun
    Nakano, Yuya
    Kodama, Tatsuya
    Bellan, Selvan
    Cho, Hyunseok
    JOURNAL OF ENERGY STORAGE, 2020, 30
  • [27] Silicon as high-temperature phase change medium for latent heat storage: A thermo-hydraulic study
    Ray, Alok K.
    Rakshit, Dibakar
    Kumar, K. Ravi
    Gurgenci, Hal
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2021, 46
  • [28] Thermodynamic Analysis of a High-Temperature Latent Heat Thermal Energy Storage System
    MacPhee, David W.
    Erguvan, Mustafa
    ENERGIES, 2020, 13 (24)
  • [29] ASSESSMENT OF THE POSSIBILITIES OF HIGH-TEMPERATURE THERMAL STORAGE USING THE LATENT HEAT METHOD
    PANTALONI, J
    LARINI, M
    GUENOCHE, H
    DESAULTY, M
    BOYER, J
    PETIT, JP
    HUETZ, J
    REVUE GENERALE DE THERMIQUE, 1979, 18 (212-): : 475 - 499
  • [30] Heat Transfer in Latent High-Temperature Thermal Energy Storage SystemsExperimental Investigation
    Scharinger-Urschitz, Georg
    Walter, Heimo
    Haider, Markus
    ENERGIES, 2019, 12 (07)