Biodiesel production from waste cooking oil using magnetic bifunctional calcium and iron oxide nanocatalysts derived from empty fruit bunch

被引:46
作者
Ibrahim, Naeemah A. [1 ]
Rashid, Umer [1 ]
Hazmi, Balkis [1 ]
Moser, Bryan R. [2 ]
Alharthi, Fahad A. [3 ]
Rokhum, Samuel Lalthazuala [4 ]
Ngamcharussrivichai, Chawalit [5 ,6 ]
机构
[1] Univ Putra Malaysia UPM, Inst Nanosci & Nanotechnol ION2, Upm Serdang 43400, Selangor, Malaysia
[2] ARS, USDA, Natl Ctr Agr Utilizat Res, Bio Oils Res Unit, Peoria, IL USA
[3] King Saud Univ, Coll Sci, Chem Dept, Riyadh 1145, Saudi Arabia
[4] Natl Inst Technol, Dept Chem, Silchar 788010, Assam, India
[5] Chulalongkorn Univ, Fac Sci, Ctr Excellence Catalysis Bioenergy & Renewable Ch, Bangkok 10330, Thailand
[6] Chulalongkorn Univ, Ctr Excellence Petrochem & Mat Technol PETROMAT, Bangkok 10330, Thailand
关键词
Activated carbon; Magnetic catalyst; Waste cooking oil (WCO); Transesterification; esterification; Biodiesel; Fatty acid methyl esters; SOLID ACID CATALYSTS; LOW-COST FEEDSTOCKS; ACTIVATED CARBON; HETEROGENEOUS CATALYST; BASE CATALYST; SODIUM-SILICATE; RICE HUSK; PALM OIL; SHELL; TRANSESTERIFICATION;
D O I
10.1016/j.fuel.2022.123525
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Magnetic bifunctional nanocatalyst supported on activated carbon (AC), CaO-Fe(2)O(3/)AC was synthesized via wet impregnation method and was utilized for catalytic transesterification of waste cooking oil (WCO). A series of characterization techniques were performed to determine acid-base properties, magnetism, thermal stability, crystallinity, chemical composition, surface properties, and morphology of the catalyst. The BET analysis showed that the CaO-Fe2O3 catalysts had specific surface areas and pore sizes (~5 nm) that were suitable for the transesterification reaction. The optimized catalyst, CaO(10%)-Fe2O3(10%)/AC, possessed significant acidity and basicity desorption of 18532 mu mol g(-1) and 2653 mu mol g(-1), respectively, which contributed to maximum biodiesel yield of 98.3% at the following reaction conditions: 3 wt%, catalyst loading, 18:1 methanol to oil molar ratio and at 65 ?& nbsp;for 3 h of reaction. Furthermore, the magnetism of CaO(10%)-Fe2O3(10%)/AC was 7.59 emu/g, which facilitated high recovery rates from the reaction mixture by magnetic decantation. Reusability experiments revealed a high catalytic stability (FAME yield > 80%) for at least six consecutive cycles. Biodiesel confirmation by Fourier transform infrared spectroscopy and H-1-nuclear magnetic resonance spectroscopy showed a strong C=O absorption band at 1774 cm(-1) and a singlet methoxy proton signal at 3.7 ppm. Lastly, fuel properties analysis met the American biodiesel standard ASTM 6751 with low kinetic viscosity of 3.42 mm(2)s(-1) and flash point of 134 ?.
引用
收藏
页数:14
相关论文
共 91 条
[1]   Bifunctional nano-catalyst produced from palm kernel shell via hydrothermal-assisted carbonization for biodiesel production from waste cooking oil [J].
Abdullah, Rose Fadzilah ;
Rashid, Umer ;
Ibrahim, Mohd Lokman ;
Hazmi, Balkis ;
Alharthi, Fahad A. ;
Nehdi, Imededdine Arbi .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 137
[2]   Synthesis of bifunctional nanocatalyst from waste palm kernel shell and its application for biodiesel production [J].
Abdullah, Rose Fadzilah ;
Rashid, Umer ;
Taufiq-Yap, Yun Hin ;
Ibrahim, Mohd Lokman ;
Ngamcharussrivichai, Chawalit ;
Azam, Muhammad .
RSC ADVANCES, 2020, 10 (45) :27183-27193
[3]   Physicochemical Analysis of Hemp Oil Biodiesel: A Promising Non Edible New Source for Bioenergy [J].
Ahmad, M. ;
Ullah, K. ;
Khan, M. A. ;
Zafar, M. ;
Tariq, M. ;
Ali, S. ;
Sultana, S. .
ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2011, 33 (14) :1365-1374
[4]   Highly active and stable magnetically recyclable CuFe2O4 as a heterogenous catalyst for efficient conversion of waste frying oil to biodiesel [J].
Ali, Rehab M. ;
Elkatory, Marwa R. ;
Hamad, Hesham A. .
FUEL, 2020, 268
[5]   Effect of different co-solvents on biodiesel production from various low-cost feedstocks using Sr-Al double oxides [J].
Ambat, Indu ;
Srivastava, Varsha ;
Iftekhar, Sidra ;
Haapaniemi, Esa ;
Sillanpaa, Mika .
RENEWABLE ENERGY, 2020, 146 :2158-2169
[6]   Heterogeneous Catalyst Deactivation and Regeneration: A Review [J].
Argyle, Morris D. ;
Bartholomew, Calvin H. .
CATALYSTS, 2015, 5 (01) :145-269
[7]   Conversion of a low value industrial waste into biodiesel using a catalyst derived from brewery waste: An activation and deactivation kinetic study [J].
Arumugamurthy, Sakthi Saravanan ;
Sivanandi, Periyasamy ;
Pandian, Sivakumar ;
Choksi, Himanshu ;
Subramanian, Deepalakshmi .
WASTE MANAGEMENT, 2019, 100 (318-326) :318-326
[8]   Magnetically recoverable Mg substituted zinc ferrite nanocatalyst for biodiesel production: Process optimization, kinetic and thermodynamic analysis [J].
Ashok, A. ;
Ratnaji, T. ;
Kennedy, L. John ;
Vijaya, J. Judith ;
Pragash, R. Gnana .
RENEWABLE ENERGY, 2021, 163 :480-494
[9]   Application of CaO-based/Au nanoparticles as heterogeneous nanocatalysts in biodiesel production [J].
Bet-Moushoul, Elsie ;
Farhadi, Khalil ;
Mansourpanah, Yaghoub ;
Nikbakht, Ali Mohammad ;
Molaei, Rahim ;
Forough, Mehrdad .
FUEL, 2016, 164 :119-127
[10]   Biochemical conversion of biodiesel by-product into malic acid: A way towards sustainability [J].
Bharathiraja, B. ;
Selvakumari, I. Aberna Ebenezer ;
Jayamuthunagai, J. ;
Kumar, R. Praveen ;
Varjani, Sunita ;
Pandey, Ashok ;
Gnansounou, Edgard .
SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 709