School of Energy and Power Engineering, Jiangsu University, Zhenjiang 212013, China.
School of Mechanical Engineering, Shanghai JiaoTong University, Shanghai 200240, China.
Bioresour Technol. 2021 Oct;338:125560. doi: 10.1016/j.biortech.2021.125560. Epub 2021 Jul 13.
Due to rapid deactivation of catalysts, the effective conversion of biomass with oxygen-rich and hydrogen-deficient characteristics to transportation fuels and high-valued chemicals via catalytic pyrolysis remains a challenge for commercialization. Hydrogen-rich plastic is used as feedstock co-fed with biomass to improve the catalytic pyrolysis process. The present work aims to investigate the co-pyrolysis process of cellulose and polyethylene (PE) over MgO by TG combined with photoionization time-of-flight mass spectrometry (PI-TOF-MS), which features on-line detection of catalytic pyrolysis products in real time. The MgO catalyst could improve the pyrolysis of cellulose and enhance the CC bond breaking of PE, respectively. During catalytic co-pyrolysis, the yields from olefins and furan as well as its derivatives can be enhanced obviously. Further, the formation of additional aromatics can be observed due to the Diels-Alder reaction. This work shows TG coupled to PI-TOF-MS is a powerful setup to study and optimize catalytic co-pyrolysis process.
由于催化剂的快速失活,通过催化热解将富含氧和缺氢的生物质有效转化为运输燃料和高价值化学品,这对于商业化仍然是一个挑战。富氢塑料被用作与生物质共进料的原料,以改善催化热解过程。本工作旨在通过 TG 与光离化飞行时间质谱(PI-TOF-MS)联用研究纤维素和聚乙烯(PE)在 MgO 上的共热解过程,其特点是实时在线检测催化热解产物。MgO 催化剂可以分别提高纤维素的热解效率和增强 PE 的 CC 键断裂。在催化共热解过程中,可以明显提高烯烃和呋喃及其衍生物的产率。此外,由于 Diels-Alder 反应,可以观察到额外芳烃的形成。这项工作表明,TG 与 PI-TOF-MS 联用是研究和优化催化共热解过程的强大装置。