Pyrolysis of waste plastics for alternative fuel: a review of key factors

Haseeb Yaqoob, Hafiz Muhammad Ali and Umair Khalid
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Abstract

Plastic is a threat to the environment since it does not biodegrade, but it also has the potential to become a substantial resource to produce alternative energy sources, creating a multibillion-dollar untapped market. Every year, millions of tons of plastic are produced, resulting in a significant rise in plastic waste, which causes ecological and environmental problems. According to estimates, only around 10% of this waste plastic is now recycled. Plastic waste may be handled in two ways: recycling or converting it into energy. The first alternative, recycling, has several challenges, including the need for labor-intensive processes and concerns about water pollution, which may threaten its long-term sustainability. As a result, the second technique for turning waste plastic into energy has been developed, enhanced, and extensively researched. Pyrolysis is a technique that involves heating plastics at temperatures ranging from 455–700 °C without oxygen. This process yields high-calorific fuel that can be utilized as an alternative fuel. This study explores the thermal and catalytic cracking processes involved in waste plastic pyrolysis, focusing on crucial factors such as temperature, time, feedstock, reactor type, and catalyst that impact results such as oil production, gases, and heat. Furthermore, the study investigates the properties of the liquid oil produced and offers suggestions for enhancing the liquid fuel yield for each kind of plastic.

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废塑料热解制备替代燃料的关键因素综述
塑料对环境是一种威胁,因为它不能生物降解,但它也有可能成为生产替代能源的重要资源,创造数十亿美元的未开发市场。每年,数百万吨的塑料被生产出来,导致塑料垃圾大幅增加,这造成了生态和环境问题。据估计,现在只有大约10%的废塑料被回收利用。塑料垃圾有两种处理方式:回收利用或将其转化为能源。第一种选择,即回收利用,有几个挑战,包括需要劳动密集型的过程和对水污染的担忧,这可能会威胁到它的长期可持续性。因此,第二种将废塑料转化为能源的技术得到了发展、加强和广泛的研究。热解是一种在温度为455-700°C的无氧条件下加热塑料的技术。这个过程产生高热量的燃料,可以用作替代燃料。本研究探讨了废塑料热解过程中涉及的热裂解和催化裂解过程,重点研究了影响产油、产气和热等结果的关键因素,如温度、时间、原料、反应器类型和催化剂。此外,研究了所生产的液体油的性能,并为提高每种塑料的液体燃料收率提出了建议。
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Inside back cover Back cover Afterglow quenching in plasma-based dry reforming of methane: a detailed analysis of the post-plasma chemistry via kinetic modelling. Showcasing the technological advancements of carbon dioxide conversion: a pathway to a sustainable future From lead–acid batteries to perovskite solar cells – efficient recycling of Pb-containing materials†
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