Validation of MATLAB algorithm to implement a two-step parallel pyrolysis model for the prediction of maximum %char yield

Numerical modeling of biomass pyrolysis is becoming a cost and time-saving alternative for experimental investigations, also to predict the yield of the by-products of the entire process. In the present study, a two-step parallel kinetic model was used to predict char yield under isothermal conditio...

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Published inDiscover chemical engineering Vol. 1; no. 1
Main Authors Horsfall, Ibiba Taiwo, Ndukwu, Macmanus Chinenye, Abam, Fidelis Ibiang, Olatunji, Ololade Moses, Ojong, Ojong Elias, Osa-Aria, Keavey
Format Journal Article
LanguageEnglish
Published Cham Springer International Publishing 01.12.2021
Springer Nature B.V
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ISSN2730-7700
2730-7700
DOI10.1007/s43938-021-00003-w

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Abstract Numerical modeling of biomass pyrolysis is becoming a cost and time-saving alternative for experimental investigations, also to predict the yield of the by-products of the entire process. In the present study, a two-step parallel kinetic model was used to predict char yield under isothermal condition. MATLAB ODE45 function codes were employed to solve a set of differential equations that predicts the %char at varying residence times and temperatures. The code shows how the various kinetic parameters and mass of pyrolysis products were determined. Nevertheless, the algorithm used for the prediction was validated with experimental data and results from past works. At 673.15 K, the numerical simulation using ODE45 function gives a char yield of 27.84%. From 573.15 K to 673.15 K, char yield ranges from 31.7 to 33.72% to 27.84% while experimental yield decreases from 44 to 22%. Hence, the error between algorithm prediction and experimental data from literature is − 0.26 and 0.22. Again, comparing the result of the present work with the analytical method from the literature showed a good agreement.
AbstractList Numerical modeling of biomass pyrolysis is becoming a cost and time-saving alternative for experimental investigations, also to predict the yield of the by-products of the entire process. In the present study, a two-step parallel kinetic model was used to predict char yield under isothermal condition. MATLAB ODE45 function codes were employed to solve a set of differential equations that predicts the %char at varying residence times and temperatures. The code shows how the various kinetic parameters and mass of pyrolysis products were determined. Nevertheless, the algorithm used for the prediction was validated with experimental data and results from past works. At 673.15 K, the numerical simulation using ODE45 function gives a char yield of 27.84%. From 573.15 K to 673.15 K, char yield ranges from 31.7 to 33.72% to 27.84% while experimental yield decreases from 44 to 22%. Hence, the error between algorithm prediction and experimental data from literature is − 0.26 and 0.22. Again, comparing the result of the present work with the analytical method from the literature showed a good agreement.
Numerical modeling of biomass pyrolysis is becoming a cost and time-saving alternative for experimental investigations, also to predict the yield of the by-products of the entire process. In the present study, a two-step parallel kinetic model was used to predict char yield under isothermal condition. MATLAB ODE45 function codes were employed to solve a set of differential equations that predicts the %char at varying residence times and temperatures. The code shows how the various kinetic parameters and mass of pyrolysis products were determined. Nevertheless, the algorithm used for the prediction was validated with experimental data and results from past works. At 673.15 K, the numerical simulation using ODE45 function gives a char yield of 27.84%. From 573.15 K to 673.15 K, char yield ranges from 31.7 to 33.72% to 27.84% while experimental yield decreases from 44 to 22%. Hence, the error between algorithm prediction and experimental data from literature is − 0.26 and 0.22. Again, comparing the result of the present work with the analytical method from the literature showed a good agreement.
ArticleNumber 3
Author Abam, Fidelis Ibiang
Osa-Aria, Keavey
Horsfall, Ibiba Taiwo
Ndukwu, Macmanus Chinenye
Ojong, Ojong Elias
Olatunji, Ololade Moses
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  fullname: Osa-Aria, Keavey
  organization: Department of Mechanical Engineering, Michael Okpara University of Agriculture, Umudike
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CitedBy_id crossref_primary_10_1016_j_jaap_2024_106472
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Keywords Pyrolysis kinetic model
Mass of biochar
MATLAB codes
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Snippet Numerical modeling of biomass pyrolysis is becoming a cost and time-saving alternative for experimental investigations, also to predict the yield of the...
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SubjectTerms Algorithms
Biochemical Engineering
Biomass
Brief Communication
Carbon
Chemistry
Chemistry and Materials Science
Dependent variables
Energy
Heat
Industrial Chemistry/Chemical Engineering
Kinetics
Partial differential equations
Simulation
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Title Validation of MATLAB algorithm to implement a two-step parallel pyrolysis model for the prediction of maximum %char yield
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