Optimization of Cu/MnO2 catalyst for enhanced methane bi-reforming: a response surface methodology approach for sustainable syngas production

被引:0
|
作者
Ibrahim, Irna Haslina [1 ]
Shafiqah, Mohd-Nasir Nor [1 ]
Suhaimi, Nuremirah Syafiqah [1 ]
Li, Maoshuai [3 ]
Van Cuong, Nguyen [4 ]
Abidin, Sumaiya Zainal [2 ,4 ]
机构
[1] Univ Malaysia Pahang Al Sultan Abdullah, Fac Chem & Proc Engn Technol, Kuantan, Pahang, Malaysia
[2] Univ Malaysia Pahang Al Sultan Abdullah, Ctr Res Adv Fluid & Proc FLUID CENTRE, Kuantan 26300, Pahang, Malaysia
[3] Tianjin Univ, Collaborat Innovat Ctr Chem Sci & Engn, Sch Chem Engn & Technol, Key Lab Green Chem Technol,Minist Educ,Natl Ind Ed, Tianjin, Peoples R China
[4] Ind Univ Ho Chi Minh City, Fac Chem Engn, Ho Chi Minh City, Vietnam
关键词
Cu-based catalyst; hydrogen; methane bi-reforming; reforming; response surface methodology optimization; syngas; HYDROGEN-PRODUCTION; COMBINED STEAM; SUPPORTED NI; CO2; PERFORMANCE; MECHANISM; OXIDATION; ETHANOL; OXIDE;
D O I
10.1080/00986445.2024.2383577
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Hydrogen or syngas, valued for its clean and high-energy properties, stands as a promising solution to future energy shortages by converting CO2 and CH4 waste into renewable syngas through a reaction known as methane bi-reforming. Hence, the purpose of this current research is to examine the effectiveness of Cu/MnO2 catalyst in methane bi-reforming (MBR) using response surface methodology (RSM). The synthesis of the 15%Cu/MnO2 catalyst was accomplished using the ultrasonic impregnation method, followed by a comprehensive analysis and characterization of the catalyst using CO2-TPD, BET, H-2-TPR, TPO, and XRD evaluation. The effect of reaction parameters was investigated using RSM analysis, including temperature, CO2/CH4 ratio, and gas hourly space velocity (GHSV) (700-900 degrees C, 0.2-1.0, and 16-36 L g cat(-1) h(-1), respectively). According to the analysis of variance and three-dimensional response surface plots, it was determined that CH4 conversion and H-2 yield were largely influenced by temperature, whereas CO2 conversion and CO yield could be manipulated through CO2/CH4 feed ratio. Meanwhile, the GHSV appeared to have a significant influence on the H-2/CO ratio and CH4 conversion. From the experimental data, it was found that the 15%Cu/MnO2 catalyst performed best under specified optimal conditions of 800 degrees C, a CO2/CH4 ratio of 0.6, and a GHSV of 26 L g cat(-1) h(-1). These optimal conditions resulted in the maximum conversion of CH4 (54.67%), CO2 conversion (47.52%), H-2 yield (43.81%), CO yield (36.29%), and H-2/CO ratio (1.384). Despite the inevitability of carbon formation resulting from the breakdown of CH4 and CO at high temperatures, the examination of the spent catalysts under optimal conditions yielded a smaller quantity of carbon of approximately 28.27% in comparison to the suboptimal conditions with 55.37%.
引用
收藏
页码:1713 / 1732
页数:20
相关论文
共 50 条
  • [41] In depth investigation of bi-functional, Cu/Zn/γ-Al2O3 catalyst in biodiesel production from low-grade cooking oil: Optimization using response surface methodology
    Sulaiman, Nur Fatin
    Abu Bakar, Wan Azelee Wan
    Toemen, Susilawati
    Kamal, Norhasyimah Mohd
    Nadarajan, Renugambaal
    RENEWABLE ENERGY, 2019, 135 : 408 - 416
  • [42] Catalyst evaluation for high-purity H2 production by sorption-enhanced steam-methane reforming coupled to a Ca/Cu process
    Navarro, M. V.
    Lopez, J. M.
    Garcia, T.
    Grasa, G.
    Murillo, R.
    JOURNAL OF POWER SOURCES, 2017, 363 : 117 - 125
  • [43] Role of promoter on the catalytic activity of novel hollow bimetallic Ni-Co/Al2O3 catalyst in the dry reforming of methane process: Optimization using response surface methodology
    Mousavinejad, Seyed Ali
    Farsi, Mohammad
    Rahimpour, Mohammad Reza
    JOURNAL OF THE ENERGY INSTITUTE, 2024, 113
  • [44] Enhanced Long-term Stability and Carbon Resistance of Ni/MnxOy-AL2O3 Catalyst in Near-equilibrium CO2 Reforming of Methane for Syngas Production
    Djebarri, Baya
    Touahra, Fouzia
    Aider, Nadia
    Bali, Ferroudja
    Sehailia, Moussa
    Chebout, Redouane
    Bachari, Khaldoun
    Halliche, Djamila
    BULLETIN OF CHEMICAL REACTION ENGINEERING AND CATALYSIS, 2020, 15 (02): : 331 - 347
  • [45] CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
    Hambali, H. U.
    Jalil, A. A.
    Abdulrasheed, A. A.
    Siang, T. J.
    Owgi, A. H. K.
    Aziz, F. F. A.
    CHEMICAL ENGINEERING SCIENCE, 2021, 231
  • [46] Optimization of TOC removal from coal gasification wastewater by novel Fe/C micro-electrolysis fillers containing MnO2 using response surface methodology
    Liang, Yaqin
    Li, Hui
    Mao, Xiaoming
    Wu, Lintao
    Li, Yan
    Wang, Fei
    Liang, Liqun
    Ma, Zhihui
    DESALINATION AND WATER TREATMENT, 2020, 202 : 295 - 305
  • [47] DBD plasma-assisted ethanol steam reforming for green H2 production: Process optimization through response surface methodology (RSM)
    Cao, Guoqiang
    Xiao, Yue
    Huang, Wei-Min
    Chen, Chien-Hua
    Baltrusaitis, Jonas
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (02) : 553 - 565
  • [48] Response surface methodology approach for optimization of Cu2+ and Pb2+ removal using nanoadsorbent developed from rice husk
    Kaur, Mandeep
    Sharma, Praveen
    Kumari, Santosh
    MATERIALS TODAY COMMUNICATIONS, 2019, 21
  • [49] Valorization of date juice by the production of lipopeptide biosurfactants by a Bacillus mojavensis BI2 strain: bioprocess optimization by response surface methodology and study of surface activities
    Mnif, Ines
    Bouallegue, Amir
    Mekki, Salwa
    Ghribi, Dhouha
    BIOPROCESS AND BIOSYSTEMS ENGINEERING, 2021, 44 (11) : 2315 - 2330
  • [50] Valorization of date juice by the production of lipopeptide biosurfactants by a Bacillus mojavensis BI2 strain: bioprocess optimization by response surface methodology and study of surface activities
    Inès Mnif
    Amir Bouallegue
    Salwa Mekki
    Dhouha Ghribi
    Bioprocess and Biosystems Engineering, 2021, 44 : 2315 - 2330