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Integrated Hybrid Life Cycle Assessment and Supply Chain Environmental Profile Evaluations of Lead-based (Lead Zirconate Titanate) versus Lead-free (Potassium Sodium Niobate) Piezoelectric Ceramics

机译:铅基(锆钛酸铅)与无铅(铌酸钾钠)压电陶瓷的混合寿命周期综合评估和供应链环境概况评估

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摘要

The increasing awareness of the environmental and health threats of lead as well as environmental legislation, both in the EU and around the world targeted at decreasing the use of hazardous substances in electrical appliances and products has reinvigorated the race to develop lead-free alternatives to lead zirconate titanate (PZT), which presently dominates the market for piezoelectric materials. Emphasis has been placed on one of the most likely piezoelectric materials, potassium sodium niobate (KNN), as a lead-free replacement for PZT. KNN has been speculated to have better environmental credentials and is considered as a “greener” replacement to PZT. However, a comparative environmental impact assessment of the life cycle phases of KNN versus PZT piezoelectric materials has not been carried out. Such a life cycle assessment is crucial before any valid claims of “greenness” or environmental viability of one material over the other can be made and is the focus of this paper. Against this backdrop, a methodologically robust life cycle supply chain assessment based on integrated hybrid life cycle framework is undertaken within the context of the two piezoelectric materials. Results show that the presence of niobium in KNN constitutes far greater impact across all the 16 categories considered in comparison with PZT. The increased environmental impact of KNN occurs in the early stages of the LCA due to raw material extraction and processing. As a result, the environmental damage has already occurred before its use in piezoelectric applications during which it doesn’t constitute any threat. As such, the use of the term “environmentally friendly” for the description of KNN should be avoided. Cost-benefit analysis of substituting PZT with KNN also indicates that the initial cost of conversion to KNN is greater, especially for energy usage during production. This environmental assessment has allowed us to define and address environmental health and safety as well as sustainability issues that are essential for future development of these materials. Overall, this work demonstrates insightful findings that can be garnered through the application of life cycle assessment and supply chain management to a strategic engineering question which allows industries and policy makers to make informed decisions regarding the environmental consequences of substitute materials, designs, fabrication processes and usage.
机译:在欧盟和世界范围内,人们越来越意识到铅对环境和健康的威胁以及环境法规,以减少在电器和产品中使用有害物质,这激起了开发无铅铅替代品的竞争。钛酸锆(PZT),目前在压电材料市场上占主导地位。重点放在最有可能的压电材料之一铌酸钾钠(KNN)上,作为PZT的无铅替代品。据推测,KNN具有更好的环境资质,被认为是PZT的“绿色”替代品。但是,尚未对KNN与PZT压电材料的生命周期阶段进行比较的环境影响评估。这样的生命周期评估至关重要,才能对一种材料提出对任何一种材料的“绿色”或环境可行性的有效主张,这是本文的重点。在这种背景下,在两种压电材料的背景下,进行了基于集成的混合生命周期框架的方法论上稳健的生命周期供应链评估。结果表明,与PZT相比,KNN中铌的存在对所有16个类别的影响更大。由于原料的提取和加工,在生命周期评价的早期阶段,KNN对环境的影响增加。结果,在压电应用中使用之前就已经发生了环境破坏,因此不会构成任何威胁。因此,应避免使用术语“环境友好”来描述KNN。用KNN替代PZT的成本效益分析还表明,转换为KNN的初始成本较高,尤其是生产过程中的能源使用。这项环境评估使我们能够定义和解决环境健康与安全以及可持续性问题,这些问题对于这些材料的未来开发至关重要。总体而言,这项工作表明了有深刻见解的发现,可以将生命周期评估和供应链管理应用于战略工程问题中,从而使行业和政策制定者能够就替代材料,设计,制造过程和替代品的环境后果做出明智的决策。用法。

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