废液催化裂化催化剂热解高密度聚乙烯废液油的制备及表征

Felix Aibuedefe Aisien , Eki Tina Aisien
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引用次数: 5

摘要

全球范围内不断扩大的塑料使用造成了与塑料垃圾处理有关的环境问题。将废塑料转化为高质量液体油的一种可能的替代技术是热热解和催化热解。研究重点是在间歇式反应器中,采用废流体催化裂化(FCC)催化剂,在不同温度和催化剂塑性比下,对高密度聚乙烯(HDPE)进行热裂解和催化缓慢热解。采用ASTM方法和气相色谱-质谱联用(GC-MS)对采出的液体油馏分的物理化学特性进行了分析。结果表明,500°C的热解温度和0.2的催化剂塑性比是理想的操作条件。废FCC催化剂的BET表面积、孔体积和平均孔径分别为0.103cm2/g、7.02nm和63.24m2/g。将废弃的HDPE塑料热热解,产生73.9重量%的液体油、23.1重量%的气体和3重量%的焦炭作为最终产物。此外,催化热解产生较高的液体油产率(88.8wt%),但较少的气体产率(9.9wt%)和焦炭产率(1.3wt%)。催化热解产生的液体油的运动粘度、密度、闪点、倾点和热值分别为2.48 cSt、0.85 g/cm3、34.5°C、-6°C和41.6 MJ/kg。根据GC-MS数据,液体油的化学成分包含38种介于C6和C24之间的碳氢化合物。因此,由废HDPE制成的液体油具有与传统燃料相似的特性,可以用作替代可再生能源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Production and characterization of liquid oil from the pyrolysis of waste high-density polyethylene plastics using spent fluid catalytic cracking catalyst

Production and characterization of liquid oil from the pyrolysis of waste high-density polyethylene plastics using spent fluid catalytic cracking catalyst

Globally expanding plastic use has created environmental issues related to the disposal of plastic waste. One of the possible alternative techniques for turning waste plastics into high-quality liquid oils is thermal and catalytic pyrolysis. The research focused on high-density polyethylene (HDPE) thermal and catalytic slow pyrolysis employing waste fluid catalytic cracking (FCC) catalyst at various temperatures and catalyst-to-plastic ratios in a batch reactor. The ASTM methods and Gas Chromatography-Mass Spectrometry (GC-MS) were used to analyze the physical and chemical characteristics of the produced liquid oil fraction. The results indicate that a pyrolysis temperature of 500°C and a catalyst to plastic ratio of 0.2 were the ideal operating conditions. The BET surface area, pore volume, and average pore size of the spent FCC catalyst were 0.103 cm2/g, 7.02 nm, and 63.24 m2/g, respectively. Waste HDPE plastic was thermally pyrolyzed, yielding 73.9 wt% liquid oil, 23.1 wt% gas, and 3 wt% char as the end products.

Furthermore, the catalytic pyrolysis produced a higher yield of liquid oil (88.8 wt%) but less gas (9.9 wt%) and char (1.3 wt%). The kinematic viscosity, density, flash point, pour point, and calorific value of liquid oil produced by catalytic pyrolysis were 2.48 cSt, 0.85 g/cm3, 34.5 °C, -6 °C, and 41.6 MJ/kg, respectively. According to the GC-MS data, the liquid oil's chemical composition contains 38 hydrocarbons between C6 and C24. Because of this, the liquid oils made from waste HDPE have characteristics similar to those of conventional fuels and can be used as alternative renewable energy sources.

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