利用控制本征性质的沸石优化开批式反应器低温催化裂化聚烯烃废弃物。

Hankyeul Kang, Junghwa Yoon, Dongwoo Jun, Ki Hyuk Kang, Insoo Ro, Soohwa Jeong, Jong Hun Kang
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引用次数: 0

摘要

由于塑料垃圾管理的复杂性,环境问题正在恶化。化学回收是一项关键技术,它可以抑制碳进入碳循环,并为当前的石化工艺提供石油替代品。沸石的利用可以降低热解操作温度,从而降低能耗。在这里,我们展示了低温催化裂化聚乙烯(PE)利用开放式反应器配置和* bea型沸石催化剂。采用优化后的开批装置和沸石,在330℃的温度下,聚乙烯转化率达到80%,液体选择性达到70%。我们系统地探索了铝(Al)的位置密度和晶体尺寸的影响,揭示了沸石晶体尺寸是决定液体产量的另一个关键因素。该研究不仅证明了反应器和催化剂的有效组合和优化可以提高整体催化活性,而且为设计有效回收聚烯烃废物的催化系统提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of low-temperature catalytic cracking of polyolefin waste in open-batch reactors using zeolite beta with controlled intrinsic properties.

Environmental problems are worsening due to the complexity in managing plastic waste. Chemical recycling emerges as a pivotal technology that can suppress carbon introduction into the carbon cycle and provide petroleum alternatives for current petrochemical processes. The utilization of zeolites can reduce energy consumption by lowering the operation temperature for pyrolysis. Here, we demonstrate low-temperature catalytic cracking of polyethylene (PE) utilizing an open-batch reactor configuration and *BEA-type zeolite catalysts. With the optimized open-batch setup and zeolites, high PE conversion (~80%) and liquid selectivity (~70%) were achieved at 330 °C. We systematically explored the effects of aluminum (Al) site density and crystal size, revealing that zeolite crystal size is another critical factor determining the liquid production. This work not only demonstrates that an effective combination and optimization of reactor and catalysts can enhance the overall catalytic activity but also offers insights into designing catalysis systems for effective recycling of polyolefin wastes.

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