首页> 外文期刊>Journal of Analytical & Applied Pyrolysis >Catalytic co-pyrolysis of oil sludge with HDPE to obtain paraffinic products over HUSY zeolites prepared by dealumination and desilication
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Catalytic co-pyrolysis of oil sludge with HDPE to obtain paraffinic products over HUSY zeolites prepared by dealumination and desilication

机译:用HDPE催化加油污泥加油污泥,以通过差异和溶解制备的哈伊沸石获得链烷烃产物

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Oil sludge is a waste from the oil industry with a complex composition and its treatment is still a challenge. In addition, polyolefin waste is becoming a problem due to its accumulation and slow degradation. In this study, catalytic co-pyrolysis was used to treat oil sludge and high density polyethylene (HDPE) at 450 degrees C and at an atmospheric pressure for 15 min to generate paraffin-rich oily products. Y zeolites were obtained by dealumination and desilication processes which were characterized by XRD, N-2 adsorption, FTIR, Si-29 and Al-27 NMR, TG and NH3 TPD. Pristine and modified zeolites were evaluated in the co-pyrolysis in order to assess their performances through the quality of the obtained pyrolytic oil (GC-MS and SimDis). The modificated zeolites presented higher mesoporosity than the original solid as so lower total acidity. Amidst the tested catalysts, ModSi-10 and Mod-Al presented the best performances showing high yield of liquid fraction, rich in parafinic light hydrocarbons, probably due to their moderate acidity and improved mesoporosity. Consequently, these two zeolites presented outstanding catalytic characteristics alongside high selectivity to paraffinic hydrocarbons in the diesel fraction from co-pyrolisis of the oil sludge waste with HDPE.
机译:油污是石油工业的废物,复杂的成分,其治疗仍然是一个挑战。此外,聚烯烃废物由于其积累和缓慢降解而导致问题。在该研究中,使用催化共热分解在450℃下并在大气压下处理油污泥和高密度聚乙烯(HDPE)15分钟以产生富含石蜡的油性产品。通过XRD,N-2吸附,FTIR,Si-29和Al-27 NMR,Tg和NH 3 TPD以XRD,N-2吸附,FTIR,Si-29和Al-27 TPD为特征的Zeolites获得。在共热分解中评估原始和修饰的沸石,以通过所得热解油(GC-MS和SIMDIS)的质量来评估它们的性能。该修饰的沸石呈现比原始固体更高的渗透性,如此较低的总酸度。在测试的催化剂中,ModSi-10和Mod-A1呈现出最佳性能,显示出高产液体馏分,富含ParaNic轻质烃,可能是由于它们的中等酸度和改善的介体。因此,这两种沸石在柴油馏分中与HDPE的柴油污泥废弃物的柴油级分中的链烷烃烃的高选择性呈现出优异的催化特性。

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