College of Science and Engineering, James Cook University, Townsville, Australia.
Melbourne Trace Analysis for Chemical, Earth and Environmental Sciences (TrACEES) Platform and School of Chemistry, The University of Melbourne, Melbourne, VIC 3010, Australia.
Bioresour Technol. 2022 Sep;360:127515. doi: 10.1016/j.biortech.2022.127515. Epub 2022 Jun 25.
In this work, Cu-SrO bimetallic catalyst was synthesised and examined for catalytic co-pyrolysis of ironbark (IB) and waste cooking oil (WCO) using Py-GC/MS. The effect of catalyst supports (ZSM-5, Y-zeolite, activated carbon, AlO, and ZrO) on aromatic hydrocarbons yield was studied. The effect of catalyst support on the selectivity of gasoline (C8-C14), diesel (C15-C17), and heavy oil (>C20) components of bio-oil were studied. Non-catalytic co-pyrolysis of IB and WCO produced a heavy oil component of 58.7% (>C20). SrO initiated a ketonization reaction that converted carboxylic acids into new C-C bonds. The addition of Cu effectively promoted secondary cracking and aromatization reactions enhancing the hydrocarbon yield. Cu-SrO/ZSM-5 and Cu-SrO/Y-zeolite produced low acid content of 4.43% and 12.5%, respectively. Overall, the bimetallic catalyst Cu-SrO/ZSM-5 significantly increased the amount of C8-C14 compounds to 87.28% and reduced compounds over C20 to 1.19%.
在这项工作中,合成了 Cu-SrO 双金属催化剂,并使用 Py-GC/MS 对铁桉(IB)和废烹饪油(WCO)的催化共热解进行了研究。研究了催化剂载体(ZSM-5、Y 沸石、活性炭、AlO 和 ZrO)对芳烃产率的影响。研究了催化剂载体对生物油中汽油(C8-C14)、柴油(C15-C17)和重油(>C20)成分选择性的影响。IB 和 WCO 的非催化共热解产生了 58.7%(>C20)的重油成分。SrO 引发了酮化反应,将羧酸转化为新的 C-C 键。Cu 的加入有效地促进了二次裂化和芳构化反应,提高了烃的产率。Cu-SrO/ZSM-5 和 Cu-SrO/Y-zeolite 分别产生了 4.43%和 12.5%的低酸含量。总的来说,双金属催化剂 Cu-SrO/ZSM-5 显著增加了 C8-C14 化合物的数量,达到 87.28%,并将 C20 以上的化合物减少到 1.19%。