相变
材料科学
相变材料
储能
相(物质)
冷库
相变
热力学
化学
物理
生物
园艺
功率(物理)
有机化学
作者
Yaxi Li,Chuanchang Li,Ya‐Ling He
标识
DOI:10.1016/j.est.2025.117467
摘要
Phase change materials (PCMs) are crucial in cold storage technology, yet their application in low-temperature environments remains underexplored due to the limited availability of suitable materials. Most existing studies focus solely on either inorganic or organic PCMs , inorganic PCMs often face issues such as phase separation, supercooling, and poor cycling stability, while organic PCMs face challenges such as low thermal conductivity , flammability , and high costs. Additionally, the incompatibility between organic and inorganic PCMs has long posed a fundamental challenge, preventing the integration of their respective advantages. This study addresses these challenges by developing an innovative organic-inorganic composite PCM through interfacial modifications. Mechanistically, the modulation of interfacial forces enhances compatibility, suppresses phase separation, and provides nucleation sites to eliminate supercooling. A significant breakthrough was realized in precisely tuning phase change temperature (PCT) to 4.9 °C, while maintaining a high latent heat of 157.9 J g −1 and achieving a thermal conductivity of 0.198 W m −1 K −1 . The optimized HTG 5 formulation, with a modified eutectic salt-to-tetradecane ratio of 5:5, exhibited a 33 % enhancement in cold storage density compared to conventional inorganic PCMs at the same PCT, while effectively eliminating phase separation and supercooling. Cycling stability tests further demonstrated that the phase change properties remained stable even after 50 thermal cycles. Beyond thermal performance, the composite formulation effectively mitigated the flammability concerns associated with pure organic PCMs and significantly reduced costs by incorporating low-cost inorganic components. Application experiments validated its ability to delay internal temperature fluctuations, highlighting its potential as an efficient cold energy storage medium. By successfully integrating organic and inorganic PCMs for low-temperature applications, this study paves the way for next-generation cold storage PCMs with enhanced performance and reliability. • A phase change cold storage gel was prepared with high latent heat and low fluidity. • The gel was obtained by complexing the modified hydrated salt with tetradecane . • The non-flammable gel is completely free of supercooling and phase separation. • The effect of tetradecane on the phase change behavior of the system is expounded. • The gel has high cycle stability and is a promising medium for cooling management.
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