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首页> 外文期刊>Journal of the air & waste management association >Stabilization of Residues Obtained from the Treatment of Laboratory Waste: Part 2-Transformation of Plasma Vitrified Slag into Composites
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Stabilization of Residues Obtained from the Treatment of Laboratory Waste: Part 2-Transformation of Plasma Vitrified Slag into Composites

机译:通过处理实验室废料获得的残留物的稳定化:第2部分-将等离子玻璃化炉渣转化为复合材料

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摘要

The Sustainable Environment Research Center of National Cheng Kung University in Taiwan has set up a treatment plant to dispose of laboratory waste. In the treatment process, the residue from the incineration system and the physical and chemical system is vitrified by a plasma melting system. Part 1 of this study described the treatment path of metals during vitrification. In Part 2, plasma vitrified slag is reused by using a molding technology. Unsaturated polyester resin and glass fiber were used as the molding material and additive, respectively, in the molding process. With an appropriate mixing ratio of unsaturated polyester resin, glass fiber, and slag, the physical properties of composites improved, and the ultimate tensile strength reached 17.6 MPa. However, an excess amount of slag reduced the strength and even retarded the production of composites. Differential thermal analysis and the water bathing test results show that the composite decomposed at 80 ℃ and that it vaporized at 187 ℃. Although the unsaturated polyester resin decomposed, the metal encapsulated in the slag did not leach out. The results show that the reuse of slag using molding technology should be taken into consideration.
机译:台湾国立成功大学可持续环境研究中心已经建立了处理实验室废物的处理厂。在处理过程中,焚烧系统和物理和化学系统的残留物会通过等离子熔化系统进行玻璃化。本研究的第1部分描述了玻璃化过程中金属的处理途径。在第2部分中,通过使用成型技术来重新使用等离子玻璃化炉渣。在成型过程中,不饱和聚酯树脂和玻璃纤维分别用作成型材料和添加剂。在不饱和聚酯树脂,玻璃纤维和矿渣的适当混合比例下,复合材料的物理性能得到改善,极限抗拉强度达到17.6 MPa。然而,过量的炉渣降低了强度,甚至阻碍了复合材料的生产。差热分析和水浴试验结果表明,该复合材料在80℃分解,并在187℃蒸发。尽管不饱和聚酯树脂分解,但是封装在炉渣中的金属没有浸出。结果表明,应考虑利用成型技术对炉渣进行再利用。

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    Department of Safety, Health, and Environmental Engineering, Chung Hwa University of Medical Technology, Tainan County, 71703, Taiwan, Republic of China;

    Department of Foundry Engineering, National Tainan Industrial Vocational High School, Tainan, Taiwan, Republic of China;

    Department of Environmental Engineering and Sustainable Environment Research Center, National Cheng Kung University, Tainan, Taiwan, Republic of China;

    Sustainable Environment Research Center, National Cheng Kung University, Tainan, Taiwan, Republic of China;

    Department of Safety Health and Environmental Engineering, Chung Hwa University of Medical Technology, Tainan, Taiwan, Republic of China;

    Department of Chemical and Materials Engineering, Cheng Shiu University, Kaohsiung, Taiwan, Republic of China;

    Department of Safety Health and Environmental Engineering, Chung Hwa University of Medical Technology, Tainan, Taiwan, Republic of China;

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