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为实现可靠的电池安全管理,用聚乙烯“外衣”包裹石蜡/氮化硼相变复合材料。

Dressing Paraffin Wax/Boron Nitride Phase Change Composite with a Polyethylene "Underwear" for the Reliable Battery Safety Management.

作者信息

Zhang Yongzheng, Xie Keqing, Shi Jiawei, Guo Cong, Lin Cheng-Te, Che Jianfei, Wu Kai

机构信息

Key Laboratory for Soft Chemistry and Functional Materials of Ministry of Education, Department of Polymer Science and Engineering, School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, P. R. China.

出版信息

Small. 2024 Apr;20(15):e2304886. doi: 10.1002/smll.202304886. Epub 2023 Nov 27.

Abstract

Phase change material (PCM) can provide a battery system with a buffer platform to respond to thermal failure problems. However, current PCMs through compositing inorganics still suffer from insufficient thermal-transport behavior and safety reliability against external force. Herein, a best-of-both-worlds method is reported to allow the PCM out of this predicament. It is conducted by combining a traditional PCM (i.e., paraffin wax/boron nitride) with a spirally weaved polyethylene fiber fabric, just like the traditional PCM is wearing functional underwear. On the one hand, the spirally continuous thermal pathways of polyethylene fibers in the fabric collaborate with the boron nitride network in the PCM, enhancing the through-plane and in-plane thermal conductivity to 10.05 and 7.92 W m K, respectively. On the other, strong polyethylene fibers allow the PCM to withstand a high puncture strength of 47.13 N and tensile strength of 18.45 MPa although above the phase transition temperature. After this typical PCM packs a triple Li-ion battery system, the battery can be promised reliable safety management against both thermal and mechanical abuse. An obvious temperature drop of >10 °C is observed in the battery electrode during the cycling charging and discharging process.

摘要

相变材料(PCM)可为电池系统提供一个缓冲平台,以应对热失效问题。然而,目前通过复合无机物制成的相变材料在热传输性能以及抵抗外力的安全可靠性方面仍存在不足。在此,本文报道了一种两全其美的方法,使相变材料摆脱这一困境。该方法是将传统相变材料(即石蜡/氮化硼)与螺旋编织的聚乙烯纤维织物相结合,就如同传统相变材料穿上了功能性内衣。一方面,织物中聚乙烯纤维的螺旋状连续热通道与相变材料中的氮化硼网络协同作用,使面内热导率和面外热导率分别提高到10.05和7.92 W m⁻¹ K⁻¹。另一方面,高强度的聚乙烯纤维使相变材料即使在高于相变温度时也能承受47.13 N的高穿刺强度和18.45 MPa的拉伸强度。这种典型的相变材料应用于三元锂离子电池系统后,可确保电池在热和机械滥用情况下都能实现可靠的安全管理。在循环充放电过程中,电池电极的温度明显下降超过10°C。

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