Artificial Neural Network and Response Surface Methodology for Predicting and Maximizing Biodiesel Production from Waste Oil with KI/CaO/Al2O3 Catalyst in a Fixed Bed Reactor

被引:19
作者
Loryuenyong, Vorrada [1 ]
Rohing, Sitifatimah [1 ]
Singhanam, Papatsara [1 ]
Kamkang, Hatsatorn [1 ]
Buasri, Achanai [1 ]
机构
[1] Silpakorn Univ, Fac Engn & Ind Technol, Dept Mat Sci & Engn, Nakhon Pathom 73000, Thailand
关键词
artificial intelligence; biodiesel production; waste conversion; continuous reactor; optimization; HETEROGENEOUS CATALYST; COOKING OIL; PROCESS OPTIMIZATION; ACTIVATED CARBON; PALM OIL; TRANSESTERIFICATION; CAO;
D O I
10.1002/cplu.202400117
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Biodiesel from waste oil is produced using heterogeneous catalyzed transesterification in a fixed bed reactor (FBR). Potassium iodide/calcium oxide/alumina (KI/CaO/Al2O3) catalyst was prepared through the processes of calcination and impregnation. The novel catalyst was analyzed with X-ray diffraction (XRD), scanning electron microscopy (SEM), and energy dispersive X-ray spectrometer (EDX). The design of experiment (DoE) method resulted in a total of 20 experimental runs. The significance of 3 reaction parameters, namely catalyst bed height, methanol to waste oil molar ratio, and residence time, and their combined impact on biodiesel yield is investigated. Both the artificial neural network (ANN) based on artificial intelligence (AI) and the Box-Behnken design (BBD) based on response surface methodology (RSM) were utilized in order to optimize the process conditions and maximize the biodiesel production. A quadratic regression model was developed to predict biodiesel yield, with a correlation coefficient (R) value of 0.9994 for ANN model and a coefficient of determination (R-2) value of 0.9986 for BBD model. The maximum amount of biodiesel that can be produced is 98.88 % when catalyst bed height is 7.87 cm, molar ratio of methanol to waste oil is 17.47 : 1, and residence time is 3.12 h. The results of this study indicate that ANN and BBD models can effectively be used to optimize and synthesize the highest %yield of biodiesel in a FBR.
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页数:10
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共 56 条
[1]   Development of multiple machine-learning computational techniques for optimization of heterogenous catalytic biodiesel production from waste vegetable oil [J].
Abdelbasset, Walid Kamal ;
Elkholi, Safaa M. ;
Opulencia, Maria Jade Catalan ;
Diana, Tazeddinova ;
Su, Chia-Hung ;
Alashwal, May ;
Zwawi, Mohammed ;
Algarni, Mohammed ;
Abdelrahman, Anas ;
Hoang Chinh Nguyen .
ARABIAN JOURNAL OF CHEMISTRY, 2022, 15 (06)
[2]  
Agarwal P., 2021, THESIS U WATERLOO CA
[3]   Palm oil transesterification in sub- and supercritical methanol with heterogeneous base catalyst [J].
Asri, Nyoman Puspa ;
Machmudah, Siti ;
Wahyudiono ;
Suprapto ;
Budikarjono, Kusno ;
Roesyadi, Achmad ;
Goto, Motonobu .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2013, 72 :63-67
[4]   Application of machine learning technologies in biodiesel production process-A review [J].
Awogbemi, Omojola ;
Von Kallon, Daramy Vandi .
FRONTIERS IN ENERGY RESEARCH, 2023, 11
[5]   A novel biobased heterogeneous catalyst derived from Musa acuminata peduncle for biodiesel production - Process optimization using central composite design [J].
Balajii, Muthusamy ;
Niju, Subramaniapillai .
ENERGY CONVERSION AND MANAGEMENT, 2019, 189 :118-131
[6]   In-situ transesterification of seeds of invasive Chinese tallow trees (Triadica sebifera L.) in a microwave batch system (GREEN3) using hexane as co-solvent: Biodiesel production and process optimization [J].
Barekati-Goudarzi, Mohamad ;
Boldor, Dorin ;
Nde, Divine B. .
BIORESOURCE TECHNOLOGY, 2016, 201 :97-104
[7]   Application of response surface methodology for optimization of biodiesel production parameters from waste vegetable oil using N-(2-hydroxy) propyl-3-trimethyl ammonium chitosan chloride-based catalyst [J].
Buasri, Achanai ;
Unkaew, Chatree ;
Sawatkoed, Piyawan ;
Pipattananchaiyanan, Pongpon ;
Loryuenyong, Vorrada .
SOUTH AFRICAN JOURNAL OF CHEMICAL ENGINEERING, 2024, 47 :50-59
[8]   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) [J].
Buasri, Achanai ;
Kamsuwan, Jakorn ;
Dokput, Jukkrapong ;
Buakaeo, Piyawat ;
Horthong, Phacharapon ;
Loryuenyong, Vorrada .
JOURNAL OF SAUDI CHEMICAL SOCIETY, 2024, 28 (03)
[9]   Process Optimization of Biodiesel from Used Cooking Oil in a Microwave Reactor: A Case of Machine Learning and Box-Behnken Design [J].
Buasri, Achanai ;
Sirikoom, Phensuda ;
Pattane, Sirinan ;
Buachum, Orapharn ;
Loryuenyong, Vorrada .
CHEMENGINEERING, 2023, 7 (04)
[10]   Continuous Production of Biodiesel from Rubber Seed Oil Using a Packed Bed Reactor with BaCl2 Impregnated CaO as Catalyst [J].
Buasri, Achanai ;
Loryuenyong, Vorrada .
BULLETIN OF CHEMICAL REACTION ENGINEERING AND CATALYSIS, 2018, 13 (02) :320-330