Influence of ball milling parameters on the mechano-chemical conversion of polyolefins.

Adrian H Hergesell, Claire L Seitzinger, Justin Burg, Renate J Baarslag, Ina Vollmer
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Abstract

Ball-milling of addition polymers such as polyolefins, polystyrene and polyacrylates can be used for depolymerization to obtain the respective monomers. However, absolute yields are typically low, especially from polyolefins which are notoriously difficult to depolymerize. To increase the viability of ball milling as a recycling technique, the effect of milling parameters on small hydrocarbon and monomer yields has to be understood. Herein, we systematically investigate the influence of sphere material, milling frequency, plastic filling degree, and milling temperature. Heavy spheres and high milling frequencies boost hydrocarbon yields by maximizing mechanical forces and frequency of collisions. While the dose of kinetic energy is commonly used to describe mechano-chemical processes, we found that it does not capture the mechano-chemical depolymerization of polyolefins. Instead, we rationalized the results based on the Zhurkov equation, a model developed for the thermo-mechanical scission of polymers under stress. In addition, low plastic filling degrees allow for high percentage yields, but cause significant wear on the grinding tools, prohibiting sustained milling. Milling below 40 °C is beneficial for brittle chain cleavage and depolymerization. This study provides a new approach to rationalize the influence of individual milling parameters and their interplay and serves as a starting point to derive design principles for larger-scale mechano-chemical depolymerization processes.

球磨参数对聚烯烃机械-化学转化的影响。
球磨加成聚合物如聚烯烃、聚苯乙烯和聚丙烯酸酯可用于解聚得到各自的单体。然而,绝对产率通常很低,特别是聚烯烃,它是出了名的难以解聚。为了提高球磨作为回收技术的可行性,必须了解球磨参数对小烃和单体收率的影响。在此,我们系统地研究了球体材料、铣削频率、塑料填充程度和铣削温度的影响。重型球体和高研磨频率通过最大化机械力和碰撞频率来提高碳氢化合物产量。虽然动能的剂量通常用于描述机械化学过程,但我们发现它不能捕获聚烯烃的机械化学解聚。相反,我们根据朱尔科夫方程(Zhurkov equation)对结果进行了合理化,朱尔科夫方程是为聚合物在应力作用下的热-机械断裂而开发的模型。此外,低塑料填充度允许高产量百分比,但会对研磨工具造成严重磨损,禁止持续研磨。低于40℃的铣削有利于脆性链的解理和解聚。该研究提供了一种新的方法来合理化各个铣削参数的影响及其相互作用,并为推导大型机械化学解聚工艺的设计原则提供了起点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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