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納米流體電池熱管理研究進展

Research progress on nanofluids for battery thermal management

  • 摘要: 隨著非化石能源的開發利用,各行業電氣化程度的提高以及儲能技術的發展,各種電池的應用越來越廣泛,同時電池向著高能量密度方向發展. 在充放電過程中,電池組內能量密度的上升導致電池過熱乃至爆炸,進而影響電池組的壽命和安全. 因而,亟待開發高效的熱管理系統,以及時帶走電池內的熱量. 近年來,多種新型熱管理系統被廣泛研究和應用. 其中,具有效果顯著、成本低廉和無額外能耗等優勢的納米流體電池熱管理系統備受關注. 本文對納米流體電池熱管理系統的研究進展進行了系統綜述,首先介紹了常見的電池種類及常用的熱管理技術,隨后闡述了納米流體的分類和性質,并詳細論述了納米流體在鋰離子電池、燃料電池和太陽能電池三類電池中的熱管理理論、數值模擬、實驗和應用研究現狀. 最后,本文系統討論了當前該領域面臨的挑戰,并提出了未來的發展方向.

     

    Abstract: As climate change worsens, it is becoming increasingly important to effectively harness and store energy from non-fossil fuels to reduce greenhouse gas emissions. The increasing adoption of various rechargeable batteries is being driven by advancements in non-fossil energy, the development of energy storage technology, and electrification in technological fields such as electric vehicles, photovoltaic thermal energy storage, and aerospace technology. However, the compact size of batteries leads to a significant increase in their internal energy density and temperature. Elevated heat flux and temperature not only limit battery performance but also reduce lifespan and pose safety risks to battery systems. The occurrence of thermal runaway under extreme conditions is a concern as it can result in battery combustion or even explosion. Thus, the implementation of efficient battery thermal management systems is essential. Besides traditional methods such as air cooling, phase change materials, and liquid cooling, in recent years, various novel thermal management technologies, including heat pipes, nanoparticle-enhanced phase change materials, and nanofluids, have been extensively explored. Among these emerging technologies, nanofluid battery thermal management systems have garnered attention due to their significant impact, minimal additional energy consumption, and cost-effectiveness compared with alternative approaches. These systems utilize nanofluids, which are liquids with uniformly dispersed nanoparticles. Nanoparticles can contain oxides such as alumina and titanium dioxide, metals such as silver and copper, and carbon-based materials such as carbon nanotube and nanodiamond. The application of nanoparticles results in an improvement in the thermal conductivity of fluids. Moreover, nanoparticles can also supply extra nuclei, improve surface wettability, and delay bubble coalescence while boiling. Thus, nanofluids can enhance heat transfer in both single-phase and two-phase flows. Given the enhancement of heat transfer, nanofluids exhibit significant potential in battery thermal management. Herein, a systematic review of the research progress on nanofluid battery thermal management systems is presented. First, the structure, working principle, and demands of battery thermal management are given. Afterward, the concept and classification of nanofluids are introduced. Subsequently, the fundamental properties of nanofluids, such as stability, viscosity, thermal conductivity, and electrical conductivity, are elucidated. The article further discusses the current research progress on nanofluid-based battery thermal management systems applied in lithium batteries, fuel cells, and photovoltaic batteries. Finally, some notable challenges associated with nanofluid battery thermal management systems and some future development directions on numerical and experimental research and industrial applications are outlined.

     

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