Municipal solid waste higher heating value prediction from ultimate analysis using multiple regression and genetic programming techniques

Author:

Boumanchar Imane12,Chhiti Younes2,M’hamdi Alaoui Fatima Ezzahrae2,Sahibed-dine Abdelaziz1,Bentiss Fouad1,Jama Charafeddine3,Bensitel Mohammed1

Affiliation:

1. Laboratory of Catalysis and Corrosion of Materials (LCCM), Chemistry Department, Chouaïb Doukkali University, El Jadida, Morocco

2. Science Engineer Laboratory for Energy (LabSIPE), National School of Applied Sciences, Chouaïb Doukkali University, El Jadida, Morocco

3. Lille University, ENSCL, UMET CNRS UMR 8207, Lille, France

Abstract

Municipal solid waste (MSW) management presents an important challenge for all countries. In order to exploit them as a source of energy, a knowledge of their calorific value is essential. In fact, it can be experimentally measured by an oxygen bomb calorimeter. This process is, however, expensive. In this light, the purpose of this paper was to develop empirical models for the prediction of MSW higher heating value (HHV) from ultimate analysis. Two methods were used: multiple regression analysis and genetic programming formalism. Both techniques gave good results. Genetic programming, however, provides more accuracy compared to published works in terms of a great correlation coefficient (CC) and a low root mean square error (RMSE).

Publisher

SAGE Publications

Subject

Pollution,Environmental Engineering

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