超临界甲醇预处理后用甘氨酸从废弃印刷电路板中提取铜:工艺优化、浸出动力学和热力学分析。

IF 7.1 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Rima Kumari, Roshan Prabhakar, Sukha Ranjan Samadder
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引用次数: 0

摘要

废弃印刷电路板的处置构成重大的环境和健康风险,因为它们是含有有害物质的电子废物的主要组成部分。然而,wpcb也含有有价值的金属元素,使它们成为回收的重要资源。为了应对危险废物管理和资源回收的双重挑战,从多氯联苯中提取金属的可持续方法势在必行。因此,本研究旨在探索利用甘氨酸作为传统无机酸浸剂的环保替代品,从wpcb中提取铜。将甘氨酸浸出与甲醇超临界预处理相结合,提高了铜的析出效率,改善了传质过程。在甘氨酸浓度为0.5 M、H2O2浓度为5% (v/v)、料液比为1.5:100 g/mL、温度为40℃的条件下,浸出时间为15 h,铜的提取率达到97.46%。此外,动力学研究表明,金属萃取过程为混合控制反应机制,计算活化能为40.01 kJ/mol。此外,对回收的金属浸出盐进行了全面的表征,为化合物的性质和浸出机制提供了见解。因此,开发的这种综合方法提供了一种可持续和环境友好的方法,可以减少wpcb的危害,同时提取有价值的金属,有助于推进电子废物管理实践和环境可持续性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced copper extraction from waste printed circuit boards using glycine after supercritical methanol pre-treatment: Process optimization, leaching kinetics, and thermodynamic analysis.

The disposal of waste-printed circuit boards (WPCBs) poses significant environmental and health risks, as they are a major component of e-waste containing hazardous materials. However, WPCBs also contain valuable metallic elements, making them important resources for recycling. To address the dual challenge of hazardous waste management and resource recovery, sustainable approaches for metal extraction from WPCBs are imperative. The present study, thus aimed to explore the use of glycine as an environment-friendly alternative to conventional inorganic acid-leaching agents for copper extraction from WPCBs. The integration of glycine leaching with pre-treatment under supercritical conditions with methanol enhanced the copper liberation efficiency along with improved mass transfer processes. Under optimized conditions of 0.5 M glycine concentration, 5 % (v/v) H2O2 concentration, 1.5:100 g/mL solid-to-liquid ratio, and 40 °C temperature, a remarkably high copper extraction efficiency of 97.46 % was achieved within a 15 h leaching duration. Besides, the kinetic studies indicated a mixed-controlled reaction mechanism for the metal extraction process, with a calculated activation energy of 40.01 kJ/mol. Additionally, a thorough characterization of the recovered metal-leached salt provided insights into the compound's nature and leaching mechanism. This integrated approach developed thus offers a sustainable and environment-friendly method for reducing the hazardousness of WPCBs while simultaneously extracting valuable metals, contributing to the advancement of e-waste management practices and environmental sustainability.

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来源期刊
Waste management
Waste management 环境科学-工程:环境
CiteScore
15.60
自引率
6.20%
发文量
492
审稿时长
39 days
期刊介绍: Waste Management is devoted to the presentation and discussion of information on solid wastes,it covers the entire lifecycle of solid. wastes. Scope: Addresses solid wastes in both industrialized and economically developing countries Covers various types of solid wastes, including: Municipal (e.g., residential, institutional, commercial, light industrial) Agricultural Special (e.g., C and D, healthcare, household hazardous wastes, sewage sludge)
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