Green synthesis of metal oxides (CaO-K2O) catalyst using golden apple snail shell and cultivated banana peel for production of biofuel from non-edible Jatropha Curcas oil (JCO) via a central composite design (CCD)

被引:10
作者
Buasri, Achanai [1 ]
Kamsuwan, Jakorn [1 ]
Dokput, Jukkrapong [1 ]
Buakaeo, Piyawat [1 ]
Horthong, Phacharapon [1 ]
Loryuenyong, Vorrada [1 ]
机构
[1] Silpakorn Univ, Fac Engn & Ind Technol, Dept Mat Sci & Engn, Nakhon Pathom 73000, Thailand
关键词
Biological residue; Sustainable energy production; Clean energy technology; Heterogeneous solid base catalyst; Central composite design; Response surface methodology; BIODIESEL PRODUCTION; HETEROGENEOUS CATALYST; CALCIUM-OXIDE; SEED OIL; TRANSESTERIFICATION; ACID; CAO; OPTIMIZATION;
D O I
10.1016/j.jscs.2024.101836
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The use of biomass as a renewable, sustainable, and eco-friendly energy source is now widely recognized as a potential solution for a variety of environmental problems. To develop biodiesel production, cost-effective feedstocks such as agricultural waste, food waste, and non-edible/waste cooking oil were utilized. A heterogeneous solid base catalyst was synthesized by calcining a mixture of waste golden apple snail shell (Pomacea canaliculata) and cultivated (Musa sapientum) banana peel. In transesterification process, potassium oxide (K2O) derived from banana peel is used as a cocatalyst to improve the catalytic activity of calcium oxide (CaO) catalyst derived from waste shell. The innovative CaO-K2O catalyst was investigated by X-ray diffraction (XRD), X-ray fluorescence (XRF) and the Brunauer-Emmett-Teller (BET) technique. The morphology and elemental composition of calcium (Ca), potassium (K), and oxygen (O) in the catalyst were validated by field emission-scanning electron microscopy (FE-SEM) and energy dispersive X-ray spectroscopy (EDX). The CaO catalyst exhibited a BET surface area of 10.88 m(2)/g, which was enhanced to 14.62 m(2)/g upon combination with K2O. The Hammett indicator of CaO catalyst fell between 7.2 < H_< 9.8. However, the CaO-K2O catalyst exhibited a higher value of 15.0 < H_< 18.4, which could be attributed to the phase transition from CaO to CaO-K2O. To investigate the effects of catalyst concentration, ethanol/oil molar ratio, and transesterification time on the yield of fatty acid ethyl ester (FAEE). The optimal conditions for FAEE synthesis were determined using a central composite design (CCD) approach with response surface methodology (RSM). The regression equation obtained for the CCD model has a determination coefficient (R-2) of 0.9921, indicating that this model is well-fitted. At 3.69 wt% catalyst concentration, 19.48:1 ethanol/oil molar ratio, and 1.80 h transesterification time, the highest FAEE yield from Jatropha Curcas oil (JCO) of 97.06 % was obtained. The novel catalyst has a strong yield and can be utilized for up to 6 cycles. It was found that the corresponding yield was 90 % when employing the same process parameters, demonstrating the high reusability of this catalyst. The biodiesel produced from non-edible JCO meets the criteria for standard biodiesel (ASTM D-6751 and EN 14214). The CaO-K2O catalyst is inexpensive, easy to make, biodegradable, recyclable, and environmentally friendly because it is derived from a biological residue. Because of these characteristics, it may be an appropriate candidate for the role of "green catalyst" in sustainable energy production.
引用
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页数:13
相关论文
共 55 条
  • [1] A review of biomass-derived heterogeneous catalyst for a sustainable biodiesel production
    Abdullah, Sharifah Hanis Yasmin Sayid
    Hanapi, Nur Hanis Mohamad
    Azid, Azman
    Umar, Roslan
    Juahira, Hafizan
    Khatoon, Helena
    Endut, Azizah
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 70 : 1040 - 1051
  • [2] Process optimization of ultrasonic-assisted biodiesel production from waste cooking oil using waste chicken eggshell-derived CaO as a green heterogeneous catalyst
    Attari, Arash
    Abbaszadeh-Mayvan, Ahmad
    Taghizadeh-Alisaraei, Ahmad
    [J]. BIOMASS & BIOENERGY, 2022, 158
  • [3] A novel biobased heterogeneous catalyst derived from Musa acuminata peduncle for biodiesel production - Process optimization using central composite design
    Balajii, Muthusamy
    Niju, Subramaniapillai
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2019, 189 : 118 - 131
  • [4] Valorisation of low fatty acid content waste cooking oil into biodiesel through transesterification using a basic heterogeneous calcium-based catalyst
    Bargole, Swapnil Sukhadeo
    Singh, Prakash Kumar
    George, Suja
    Saharan, Virendra Kumar
    [J]. BIOMASS & BIOENERGY, 2021, 146 (146)
  • [5] Process Optimization for Acid Hydrolysis and Characterization of Bioethanol from Leftover Injera Waste by Using Response Surface Methodology: Central Composite Design
    Bekele Bayu, Abreham
    Abeto Amibo, Temesgen
    Beyan, Surafel Mustefa
    [J]. INTERNATIONAL JOURNAL OF ANALYTICAL CHEMISTRY, 2022, 2022
  • [6] Continuous Synthesis of Biodiesel from Outstanding Kernel Oil in a Packed Bed Reactor Using Burkholderia cepacia Lipase Immobilized on Magnetic Nanosupport
    Bento, Heitor B. S.
    Reis, Cristiano E. R.
    Pinto, Pedro A.
    Cortez, Daniela V.
    Vilas Boas, Renata N.
    Costa-Silva, Tales A.
    Carvalho, Ana K. F.
    de Castro, Heizir F.
    [J]. CATALYSIS LETTERS, 2022, 152 (08) : 2434 - 2444
  • [7] Banana peels as a biobase catalyst for fatty acid methyl esters production using Napoleon's plume (Bauhinia monandra) seed oil: A process parameters optimization study
    Betiku, Eriola
    Akintunde, Aramide Mistura
    Ojumu, Tunde Victor
    [J]. ENERGY, 2016, 103 : 797 - 806
  • [8] Biodiesel production from rubber seed oil using calcium oxide derived from eggshell as catalyst - optimization and modeling studies
    Bharadwaj, A. V. S. L. Sai
    Singh, Madhu
    Niju, S.
    Begum, K. M. Meera Sheriffa
    Anantharaman, N.
    [J]. GREEN PROCESSING AND SYNTHESIS, 2019, 8 (01) : 430 - 442
  • [9] Boonmee K., 2010, Kasetsart Journal, Natural Sciences, V44, P290
  • [10] Buasri A., 2023, ASEAN J. Chem. Eng, V23, P40