Technical Papers
Apr 27, 2020

Valorization of Agricultural Waste: Comparative Study with Focus on Improving the Heating Value of Biomass

Publication: Journal of Energy Engineering
Volume 146, Issue 4

Abstract

Agro-based biomass is a viable alternative to fossil fuels, but problems such as ash slagging, fouling, and heated-surface corrosion impose negative impacts on the process of thermal conversion of biomass. Demineralization is a pretreatment process that can be used to alleviate these problems by decreasing the ash content of biomass feedstock. In this research work, rice husk (RH) and cotton stalk (CS) were leached with three different acid solutions (H2SO4, HCl, and CH3COOH) to investigate the potential effects on the fuel characteristics of the biomass. The leaching agents dissolved the minerals present in the biomasses and reduced the ash content; however, the percentage reduction of ash content in RH (29%) was lower than that in CS (58%). The high heating value (HHV) of both demineralized biomasses increased due to the increase in overall carbon content; however, the percentage increase in HHV in CS was greater than that in RH. The HHV of treated RH samples increased to 16.48, 16.20, and 15.97  MJ/kg when treated with H2SO4, HCl, and CH3COOH, respectively, compared with raw RH (15.41  MJ/kg). In the CS samples, the HHV of H2SO4-, HCl-, and CH3COOH-treated samples increased to 19.80, 19.20, and 18.90, respectively, compared with raw CS (18.38  MJ/kg). The thermogravimetric characterization of leached biomass showed that the demineralization with acid solutions increased the thermal stability. Fourier-transform infrared spectroscopy and scanning electron microscopy analysis illustrated that the acid leaching induced significant physiochemical structure changes in the treated biomasses. The study demonstrated that demineralization has the ability to reduce the ash content of the biomass, which improved the energy value of the biomass.

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Data Availability Statement

All data, models, and code generated or used during the study appear in the published article.

Acknowledgments

The research work was supported by the Department of Chemical Engineering, University of Engineering and Technology, Lahore Pakistan.

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Published In

Go to Journal of Energy Engineering
Journal of Energy Engineering
Volume 146Issue 4August 2020

History

Received: Jun 22, 2019
Accepted: Feb 6, 2020
Published online: Apr 27, 2020
Published in print: Aug 1, 2020
Discussion open until: Sep 27, 2020

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Authors

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Muhammad Amir Javed [email protected]
Graduate Student, Dept. of Chemical Engineering, Univ. of Engineering and Technology, Lahore 54890, Pakistan. Email: [email protected]
Assistant Professor, Dept. of Chemical Engineering, Univ. of Engineering and Technology, Lahore 54890, Pakistan (corresponding author). ORCID: https://orcid.org/0000-0002-1467-6971. Email: [email protected]
Zaheer Aslam, Ph.D. [email protected]
Associate Professor, Dept. of Chemical Engineering, Univ. of Engineering and Technology, Lahore 54890, Pakistan. Email: [email protected]
Naveed Ramzan [email protected]
Professor, Dean of Faculty of Chemical, Metallurgical and Polymer Engineering, Dept. of Chemical Engineering, Univ. of Engineering and Technology, Lahore 54890, Pakistan. Email: [email protected]
Tousif Hussain, Ph.D. [email protected]
Assistant Professor, Center for Advanced Studies in Physics, Government College Univ., Lahore 54000, Pakistan. Email: [email protected]

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