Catalytic co-pyrolysis of blended biomass-plastic mixture using synthesized metal oxide(MO)-dolomite based catalyst

被引:15
|
作者
Harith, N. [1 ]
Hafriz, R. S. R. M. [2 ]
Arifin, N. A. [3 ]
Tan, Ee Sann [2 ]
Salmiaton, A. [1 ,4 ]
Shamsuddin, A. H. [2 ]
机构
[1] Univ Putra Malaysia, Fac Engn, Dept Chem & Environm Engn, Serdang 43400, Selangor, Malaysia
[2] Univ Tenaga Nas, Inst Sustainable Energy, Kajang 43000, Selangor, Malaysia
[3] Kawasan Inst Penyelidikan, Mat Engn & Testing Grp, TNB Res Sdn Bhd, Jalan Ayer Itam, Kajang 43000, Selangor, Malaysia
[4] Univ Putra Malaysia, Fac Engn, Sustainable Proc Engn Res Ctr, Serdang 43000, Selangor, Malaysia
关键词
Empty fruit bunch (EFB); High -density polyethylene (HDPE); Co; -pyrolysis; Dolomite catalyst; Bio-oil; HIGH-DENSITY POLYETHYLENE; BUBBLING FLUIDIZED-BED; BIO-OIL PRODUCTION; WASTE PLASTICS; DEOXYGENATION; BIODIESEL; SAWDUST; SYNGAS;
D O I
10.1016/j.jaap.2022.105776
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Co-pyrolysis is one of the best new technologies to utilise excess of plastic waste where the products are generated in the form of oil, gas and char. A selective catalyst is needed to improve the quality of the co-pyrolysis product, in which, oil with low of oxygenated compounds content and high yield of oil are favoured. In this work, Malaysian dolomite was modified by doping with transition metals (Ni/Fe/Ca) at 10 wt% loading using the precipitation method and then compared with a modified commercial catalyst named NiO/ZSM-5 zeolite. Co -pyrolysis was conducted using empty fruit bunch (EFB) and high-density polyethylene (HDPE) at 500 degrees C oper-ating temperature, 10 cm3/min N2 flow rate, 10 wt% catalyst loading, 1:3 HDPE:EFB ratio and 75 g of feedstock with 60 min of operating time in a stainless-steel fluidised bed reactor. The catalysts were characterised using different analysis methods such as XRD, BET and SEM. The highest gas yield of 68% was obtained by increasing the content of calcium oxide (CaO) in dolomite (in dolomite (CaO/CMD900). For the Fe-doped dolomite (Fe3O4/ CMD900), the highest oil yield (10.34 wt%) and a high content oxygenated compounds were obtained. For the Ni-doped dolomite (NiO/CMD900), the oil with the highest hydrocarbon yield (85.32 %) and low oxygenated compound (14.68 %) was obtained. This study confirms that modified dolomite can increase the yield and quality of bio-oil.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Chitosan-assisted reassembled hierarchical HZSM-5 for selective production of monocyclic aromatics in catalytic co-pyrolysis of biomass and plastic
    Fu, Peng
    Tang, Binbin
    Li, Hongtao
    Liu, Shanjian
    Wang, Lihong
    Lin, Xiaona
    RENEWABLE ENERGY, 2024, 236
  • [32] Simultaneous production of aromatics-rich bio-oil and carbon nanomaterials from catalytic co-pyrolysis of biomass/plastic wastes and in-line catalytic upgrading of pyrolysis gas
    Xu, Dan
    Yang, Siyuan
    Su, Yinhai
    Shi, Lei
    Zhang, Shuping
    Xiong, Yuanquan
    WASTE MANAGEMENT, 2021, 121 : 95 - 104
  • [33] Co-Pyrolysis of biomass and plastic waste: Process prediction and optimization based on Artificial Intelligence and response optimizer surrogate model
    Ayub, Yousaf
    Ren, Jingzheng
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2024, 186 : 612 - 624
  • [34] Catalytic co-pyrolysis of cellulosic ethanol-processing residue with high-density polyethylene over biomass bottom ash catalyst
    Chen, Bo
    Yao, Zhitong
    Zhang, Changwei
    Cheng, Shikun
    Zhu, Mengying
    Wang, Yankun
    Wu, Yilu
    Cao, Hui
    Watson, Ian
    Cai, Di
    BIOMASS CONVERSION AND BIOREFINERY, 2024, 14 (15) : 18031 - 18040
  • [35] In Situ and Ex Situ Catalytic Co-pyrolysis of Lignocellulosic Biomass and Plastics (Low-Density and High-Density Polyethylene) Using Spent FCC Catalyst
    Praveen Kumar Kanduri
    Srinivas Seethamraju
    Waste and Biomass Valorization, 2023, 14 : 1737 - 1751
  • [36] In Situ and Ex Situ Catalytic Co-pyrolysis of Lignocellulosic Biomass and Plastics (Low-Density and High-Density Polyethylene) Using Spent FCC Catalyst
    Kanduri, Praveen Kumar
    Seethamraju, Srinivas
    WASTE AND BIOMASS VALORIZATION, 2023, 14 (05) : 1737 - 1751
  • [37] Study on biomass and polymer catalytic co-pyrolysis product characteristics using machine learning and shapley additive explanations (SHAP)
    Qi, Jingwei
    Wang, Yijie
    Xu, Pengcheng
    Huhe, Taoli
    Ling, Xiang
    Yuan, Haoran
    Chen, Yong
    Li, Jiadong
    FUEL, 2025, 380
  • [38] La-doped Ni/ZrO2 catalyst for the production of H2-rich gas by upgrading vapors coming from pyrolysis of biomass and co-pyrolysis of biomass with plastic
    Jedrzejczyk, Marcin
    Podlaska, Aleksandra
    Cieluch, Kamil
    Ryczkowski, Robert
    Goscianska, Joanna
    Grams, Jacek
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 51 : 1496 - 1510
  • [39] Co-pyrolysis of biomass and plastic wastes: A review on reactants synergy, catalyst impact, process parameter, hydrocarbon fuel potential, COVID-19
    Ansari, Khursheed B.
    Hassan, Saeikh Zaffar
    Bhoi, Rohidas
    Ahmad, Ejaz
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2021, 9 (06):
  • [40] Improving hydrocarbon yield via catalytic fast co-pyrolysis of biomass and plastic over ceria and HZSM-5: An analytical pyrolyzer analysis
    Ding, Kuan
    He, Aoxi
    Zhong, Daoxu
    Fan, Liangliang
    Liu, Shiyu
    Wang, Yunpu
    Liu, Yuhuan
    Chen, Paul
    Lei, Hanwu
    Ruan, Roger
    BIORESOURCE TECHNOLOGY, 2018, 268 : 1 - 8