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Microwave-assisted chemical recovery of glass fiber and epoxy resin from non-metallic components in waste printed circuit boards

机译:废物印刷电路板中的非金属组分微波辅助玻璃纤维和环氧树脂的化学回收

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摘要

An efficient, microwave-assisted chemical recovery approach for epoxy resin and glass fiber from non-metallic components (NMC) in waste printed circuit boards (WPCBs) for resource reutilization was developed in this research. HNO_3 was selected as the chemical reagent because epoxy resin has low corrosion resistance to HNO_3. The influence of reaction parameters such as reaction time, temperature, concentration of HNO_3, liquid-solid ratio, and power of the microwave synthesizer on the separation efficiency of NMC (epoxy resin and glass fiber) and the reaction mechanism were investigated. The physical and chemical properties of NMC, reaction solvent, and decomposed products were analyzed using energy dispersive X-ray Spectroscopy (SEM-EDX) and Fourier transform infrared spectroscopy (FT-IR). The results showed that up to 88.42% of epoxy resin and glass fiber ((5 g) 10 mL/g) could be separated under the action of 300 W microwave power at 95 °C for 12 h and a HNO_3 concentration of 7 mol/L During the reaction, C-N bonds formed by the crosslinking agent and the three-dimensional network structure of the thermosetting epoxy resin were destroyed. The carbon chain structure and chemical properties of epoxy resin did not change significantly and the functional groups of ethyl acetate maintained the chemical structure before and after the reaction. This uncomplicated and efficient inorganic acid chemical microwave-assisted process holds promise for use as a feasible recovery technology for epoxy resin and glass fibers in NMC. The proposed process is particularly appealing because of its high selectivity, considerable economic advantages, and environmental benefits.
机译:在本研究中开发了在废纸电路板(WPCB)中的非金属组分(NMC)中的高效,微波辅助化学回收方法,用于废弃印刷电路板(WPCB)进行资源再利用。选择HNO_3作为化学试剂,因为环氧树脂对HNO_3具有低腐蚀性抗性。研究了反应参数如反应时间,温度,HNO_3,液体比和微波合成器的功率对NMC(环氧树脂和玻璃纤维)的分离效率和反应机理的影响。使用能量分散X射线光谱(SEM-EDX)和傅里叶变换红外光谱(FT-IR)分析NMC,反应溶剂和分解产物的物理和化学性质。结果表明,高达88.42%的环氧树脂和玻璃纤维((5g)10ml / g)可以在300W微波功率的作用下在95℃下分离12小时,HNO_3浓度为7mol / L在反应过程中,通过交联剂形成的CN键和热固性环氧树脂的三维网络结构被破坏。环氧树脂的碳链结构和化学性质未显着变化,乙酸乙酯的官能团在反应前后保持化学结构。这种简单且高效的无机酸化学微波辅助工艺占据了NMC中环氧树脂和玻璃纤维的可行恢复技术的承担。由于其高选择性,相当大的经济优势和环境效益,拟议的过程特别吸引人。

著录项

  • 来源
    《Waste Management》 |2021年第4期|8-16|共9页
  • 作者单位

    Shanghai Collaborative Innovation Centre for WEEE Recycling Shanghai Polytechnic University Shanghai 201209 China;

    Shanghai Collaborative Innovation Centre for WEEE Recycling Shanghai Polytechnic University Shanghai 201209 China;

    Shanghai Collaborative Innovation Centre for WEEE Recycling Shanghai Polytechnic University Shanghai 201209 China;

    Shanghai Collaborative Innovation Centre for WEEE Recycling Shanghai Polytechnic University Shanghai 201209 China;

    Macau Environmental Research Institute Macau University of Science and Technology Macau China;

    School of Environment and Safety Engineering North University of China Taiyuan 030051 China;

    Brook Byers Institute for Sustainable Systems and the Department of Civil and Environmental Engineering Atlanta 30332 United States;

    Shanghai Collaborative Innovation Centre for WEEE Recycling Shanghai Polytechnic University Shanghai 201209 China;

    Shanghai Collaborative Innovation Centre for WEEE Recycling Shanghai Polytechnic University Shanghai 201209 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Microwave-assisted; Waste printed circuit boards (WPCBs); Non-metallic components (NMC); Epoxy resin; Class fiber; Chemical recovery;

    机译:微波辅助;废纸电路板(WPCB);非金属组分(NMC);环氧树脂;类纤维;化学回收;

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