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Spectral cullet classification in the mid-infrared field for ceramic glass contaminants detection

机译:用于陶瓷玻璃污染物检测的中红外光谱碎玻璃分类

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摘要

The presence of glass-like contaminants inside waste glass products, usually resulting from both industrial and differentiated urban waste collection, has greatly increased in recent years, due to the introduction to the market of a large amount of goods manufactured from ceramic glass. The presence of contaminants in the glass recycling streams reduces product quality and increases production costs. The detection of ceramic glass detection is an unresolved problem, as such material looks like normal glass and can only be detected by trained personnel. In this study an innovative approach to ceramic glass recognition, based on the spectral signature in the mid-infrared (MIR) field, was proposed and investigated. The study specifically addressed the spectral characterization of glass and ceramic glass fragments collected in a real recycling plant from two different production lines: coloured container glass and white container glass. To define suitable inspection strategies to separate the useful (glass) from the polluting (ceramic glass) materials at the recycling plants, fragments presenting different colour, thickness, size, shape and manufacturing were selected. Both dirty and clean cullet was considered. The analyses, carried out in the MIR spectral field (2280-4480 nm), show that ceramic glass and glass fragments can be recognized according to their different spectral signature. In particular, by selecting a specific wavelength ratio the two classes of materials can be rapidly recognized, suggesting the possibility of developing an integrated hardware and software sorting system for 'on-line' ceramic glass separation.
机译:近年来,由于将大量由陶瓷玻璃制成的商品引入市场,废玻璃产品内部通常由于工业废弃物和有区别的城市垃圾收集而产生的类玻璃污染物的数量已大大增加。玻璃再循环流中污染物的存在降低了产品质量并增加了生产成本。陶瓷玻璃检测的检测是一个尚未解决的问题,因为这种材料看起来像普通玻璃,并且只能由经过培训的人员进行检测。在这项研究中,提出并研究了一种基于中红外(MIR)光谱特征的陶瓷玻璃识别创新方法。这项研究专门针对在真正的回收工厂中从两条不同的生产线:彩色容器玻璃和白色容器玻璃中收集的玻璃和陶瓷玻璃碎片的光谱特征。为了定义合适的检查策略,以将回收工厂的有用(玻璃)材料与污染(陶瓷玻璃)材料分开,选择了具有不同颜色,厚度,尺寸,形状和制造工艺的碎片。肮脏和干净的碎玻璃都被考虑了。在MIR光谱场(2280-4480 nm)中进行的分析表明,可以根据陶瓷玻璃和玻璃碎片的不同光谱特征识别它们。特别是,通过选择特定的波长比,可以快速识别两类材料,这表明开发用于“在线”陶瓷玻璃分离的集成硬件和软件分类系统的可能性。

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