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从实验室到工业,聚氨酯的回收之旅,走向可持续发展。

Recycling of polyurethanes from laboratory to industry, a journey towards the sustainability.

机构信息

Department of Chemical Engineering, University of Castilla-La Mancha, Institute of Chemical and Environmental Technology, ITQUIMA, Avda. Camilo José Cela s/n, 13004 Ciudad Real, Spain.

Department of Chemical Engineering, University of Castilla-La Mancha, Institute of Chemical and Environmental Technology, ITQUIMA, Avda. Camilo José Cela s/n, 13004 Ciudad Real, Spain.

出版信息

Waste Manag. 2018 Jun;76:147-171. doi: 10.1016/j.wasman.2018.03.041. Epub 2018 Apr 3.

Abstract

The recycling of any kind of plastic to convert it in valuable products is one of the main challenges of today's society. Besides, if the recycling process is itself green, then it would be a great achievement. This paper reviews the way covered from the first attempts of reusing the polyurethane (PU) scraps as a filler for cushions to the last chemical routes employing green recycling agents. Polyurethane is the 6th most used polymer all over the world with a production of 18 millions tons per year, which means a daily production of PU specialties greater than 1 million of cubic meters, equivalent to the volume of the Empire State Building. The thermostable nature of the majority of the polyurethanes specialties has made that the preferred solution for their recycling are the chemical recycling processes. Among them, glycolysis is the one that receives a greater attention from an industrial point of view, so this review puts the spotlight on it. However, the existing reviews in literature do not paid a special attention on glycolysis and only give a superficial description of the process. Nevertheless, in the present review, the scientific literature relative to glycolysis is completely reviewed, updated and ordered according the type of PU specialty recycled. Additionally, the other main chemical recycling processes are also revisited in a more extended and deeper way than in the previous approaches to this topic. Moreover, it is crucial to take into account that some of these technologies, which were described in the literature as promising technologies at laboratory scale are now commercial processes running at industrial scale. For that reason, it is essential to remark that the present review comprises not only a detailed state of art of the scientific literature on the subject, also includes a detailed revision of the past and running on pilot plants and industrial facilities, including several patents, which has never been covered in the current literature. Moreover, this review also describes the most recent studies employing crude glycerol (biodiesel subproduct) as an economic, sustainable and environmental friendly cleavage agent, which should lead the way to the industrial implantation of split-phase glycolysis in a near future, providing high quality recovered products, susceptible of replacing raw ones in the synthesis of new PU specialties. What is more, this review intends that any reader could know and understand the reactions involved in the polyurethane chemistry and recycling, the main polyurethanes types and the fundamentals of the recycling strategies in order to comprehend what are the advantages and drawbacks of each recycling process as starting point for looking for new advantageous alternatives from an environmental, technical and economic point of view. Broader context. This paper reviews the main advances in the polyurethane (PU) recycling field, from laboratory and academia processes to pilot plant and industrial scale ones, including the most relevant patents in the subject. Opposite to other common used plastics, PUs are not polymerization but condensation polymers, synthesized from polyols and isocyanates. The wide diversity of polyols and isocyanates allows the synthesis of numerous different compounds covering a huge range of applications. As a direct consequence of their commercial success, an increasing quantity of PU waste is being disposed by landfilling in the last decades. Such waste comprises not only post-consumer products but also scrap from slabstock manufacturing, which can reach the 10% of the total foam production. However, the massive enforcement of the environmental laws is pointing out a new route in the polymer waste removal sector based in the polymer recycling, and this fact has placed the research in waste treatment as one of the most prolific topics nowadays. In fact, polymer recycling processes have experienced a growing attention from the research and industrial worlds as a direct result of the enforcement of the environmental legislations. Hence, it is essential to develop new environmental sustainable recycling processes with the aim of conserving the natural resources, reducing the amount of waste disposed in landfills and enhancing the sustainability for forthcoming generation.

摘要

任何种类的塑料的回收,将其转化为有价值的产品,是当今社会的主要挑战之一。此外,如果回收过程本身是绿色的,那么这将是一个巨大的成就。本文综述了从首次尝试将聚氨酯(PU)废料再利用为坐垫填料到最后采用绿色回收剂的化学回收路线的方法。聚氨酯是全球第 6 大使用最多的聚合物,每年产量为 1800 万吨,这意味着每天生产的 PU 特种产品超过 100 万立方米,相当于帝国大厦的体积。大多数聚氨酯特种产品的热稳定性使得它们的首选回收方法是化学回收工艺。其中,醇解是从工业角度来看受到关注最多的方法,因此本文重点介绍了它。然而,文献中的现有评论并没有特别关注醇解,只是对该过程进行了肤浅的描述。然而,在本次综述中,根据回收的 PU 特种产品的类型,对与醇解相关的科学文献进行了全面的综述、更新和排序。此外,还以比以往更广泛和深入的方式回顾了其他主要的化学回收工艺。此外,必须考虑到,其中一些技术在文献中被描述为实验室规模的有前途的技术,现在已经是在工业规模上运行的商业工艺。因此,必须指出的是,本综述不仅包括该主题科学文献的详细现状,还包括过去在中试工厂和工业设施上运行的详细修订,包括几个专利,这在当前文献中从未涵盖过。此外,本文还描述了使用粗甘油(生物柴油副产物)作为经济、可持续和环保的裂解剂的最新研究,这应该为分相醇解在不久的将来在工业上的实施铺平道路,提供高质量的回收产品,能够在合成新的 PU 特种产品中替代原始产品。更重要的是,本综述旨在让任何读者都能了解和理解聚氨酯化学和回收过程中涉及的反应、主要的聚氨酯类型以及回收策略的基本原理,以便从环境、技术和经济角度理解每种回收过程的优缺点,作为寻找新的有利替代方案的起点。更广泛的背景。本文综述了聚氨酯(PU)回收领域的主要进展,从实验室和学术界的工艺到中试工厂和工业规模的工艺,包括该主题的最相关专利。与其他常用塑料不同,PU 不是聚合而是缩合聚合物,由多元醇和异氰酸酯合成。多元醇和异氰酸酯的广泛多样性允许合成许多不同的化合物,涵盖了广泛的应用。作为其商业成功的直接结果,在过去几十年中,越来越多的 PU 废物被填埋处理。这些废物不仅包括消费后的产品,还包括来自块状制造的废料,其数量可达泡沫总产量的 10%。然而,环境法规的大规模实施指出了聚合物废物处理领域的新途径,基于聚合物回收,这一事实使研究人员将聚合物回收作为当今最具创新性的话题之一。事实上,聚合物回收工艺已经受到研究和工业界越来越多的关注,这是环境法规实施的直接结果。因此,开发新的环保可持续回收工艺至关重要,旨在保护自然资源,减少填埋场的废物量,并提高未来几代人的可持续性。

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