化工学报

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退役光伏组件TPT背板热氧化降解特性研究

王上铭(), 李小峰, 方秋宇, 王强, 张国平, 陈渝楠, 陈斌()   

  1. 西安交通大学动力工程多相流国家重点实验室,陕西 西安 710049
  • 收稿日期:2025-11-24 修回日期:2025-12-24 出版日期:2025-12-30
  • 通讯作者: 陈斌
  • 作者简介:王上铭(2000—),男,博士研究生,mingshao@stu.xjtu.edu.cn
  • 基金资助:
    咸阳市2024年重点研发计划项目(L2024-ZDYF-ZDYF-GY-0024);陕西省自然科学基础研究计划实验室重点项目(2025SYS-SYSZD-058)

Thermo-oxidative degradation characteristics of TPT backsheet from end-of-life photovoltaic modules

Shangming WANG(), Xiaofeng LI, Qiuyu FANG, Qiang WANG, Guoping ZHANG, Yunan CHEN, Bin CHEN()   

  1. State Key Laboratory of Multiphase Flow in Power Engineering, Xi’an Jiaotong University, Xi’an 710049, Shaanxi, China
  • Received:2025-11-24 Revised:2025-12-24 Online:2025-12-30
  • Contact: Bin CHEN

摘要:

针对退役晶硅光伏组件中的TPT背板在空气氛围下开展热重-红外光谱分析与反应力场分子动力学(ReaxFF-MD)模拟计算,系统探讨了TPT背板的热解反应行为、动力学特征与热解机理。热重实验表明,TPT背板在空气中的热氧化降解为双阶段反应,呈现出较氮气更低的热解起始温度(280 ℃)和更高的热解终止温度(585 ℃)。动力学分析显示两个阶段的平均活化能分别为185和128 kJ/mol。ReaxFF-MD模拟揭示,空气氛围下,氧气主要通过强化碳骨架断裂和氢脱除过程加速聚合物降解,而对脱氟过程的影响较小。TPT的热解由烷氧(C-O)键断裂引发,氧气通过生成过氧自由基参与反应链延伸,促进了含氧小分子如CO2、甲醇、甲醛、乙醛等的生成。此外,对苯二甲酸等产物数量亦有增加。研究结果为理解氧气参与下TPT背板的热解过程提供了理论支持。

关键词: 退役晶硅光伏组件, TPT背板, 热解, 动力学, 分子模拟, ReaxFF-MD

Abstract:

The thermal degradation behavior of the TPT backsheet from end‑of‑life crystalline silicon photovoltaic (EoL c-Si PV) modules was systematically investigated under an air atmosphere by means of thermogravimetry‑infrared (TG‑IR) analysis and reactive force field molecular dynamics (ReaxFF‑MD) simulations. The thermogravimetric experiment results show that the oxidative degradation of TPT in air proceeds in two distinct stages, exhibiting a lower onset temperature (280 °C) and a higher termination temperature (585 °C) compared with nitrogen conditions. Kinetic analysis yields average activation energies of 185  kJ/mol for the first stage and 128 kJ/mol for the second stage. The ReaxFF‑MD simulations reveal that under air, oxygen predominantly accelerates polymer degradation by reinforcing carbon‑backbone scission and hydrogen removal processes, while exerting a comparatively minor influence on defluorination. The pyrolysis of TPT is initiated by cleavage of alkoxy (C-O) bonds. Subsequently, oxygen participates in chain‑propagation via peroxy radicals, thereby promoting the formation of oxygenated small molecules such as CO2, methanol, formaldehyde and acetaldehyde. Moreover, an increased yield of terephthalic acid and related aromatic products is observed. These results provide a theoretical basis for understanding the oxidative pyrolysis process of TPT backsheets in oxygen‑rich atmospheres.

Key words: EoL c-Si PV modules, TPT backsheet, pyrolysis, kinetics, molecular simulation, ReaxFF-MD

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