A Comprehensive Review on Thermal Coconversion of Biomass, Sludge, Coal, and Their Blends Using Thermogravimetric Analysis

Author:

Hameed Zeeshan1,Naqvi Salman Raza1,Naqvi Muhammad2ORCID,Ali Imtiaz3,Taqvi Syed Ali Ammar4,Gao Ningbo5ORCID,Hussain Syed Azfar6,Hussain Sadiq7

Affiliation:

1. School of Chemical & Materials Engineering, National University of Sciences & Technology, Islamabad, Pakistan

2. Department of Engineering and Chemical Sciences, Karlstad University, Karlstad, Sweden

3. Department of Chemical and Materials Engineering, King Abdulaziz University, Rabigh, Saudi Arabia

4. Department of Chemical Engineering, NED University of Engineering & Technology, Karachi, Pakistan

5. School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, China

6. Department of Chemical Engineering, Ecole Polytechnique de Montréal, Montréal, Canada

7. Department of Chemical Engineering, NFC-Institute of Engineering & Technology, Khanewal Road, Multan, Pakistan

Abstract

Lignocellulosic biomass is a vital resource for providing clean future energy with a sustainable environment. Besides lignocellulosic residues, nonlignocellulosic residues such as sewage sludge from industrial and municipal wastes are gained much attention due to its large quantities and ability to produce cheap and clean energy to potentially replace fossil fuels. These cheap and abundantly resources can reduce global warming owing to their less polluting nature. The low-quality biomass and high ash content of sewage sludge-based thermal conversion processes face several disadvantages towards its commercialization. Therefore, it is necessary to utilize these residues in combination with coal for improvement in energy conversion processes. As per author information, no concrete study is available to discuss the synergy and decomposition mechanism of residues blending. The objective of this study is to present the state-of-the-art review based on the thermal coconversion of biomass/sewage sludge, coal/biomass, and coal/sewage sludge blends through thermogravimetric analysis (TGA) to explore the synergistic effects of the composition, thermal conversion, and blending for bioenergy production. This paper will also contribute to detailing the operating conditions (heating rate, temperature, and residence time) of copyrolysis and cocombustion processes, properties, and chemical composition that may affect these processes and will provide a basis to improve the yield of biofuels from biomass/sewage sludge, coal/sewage sludge, and coal/biomass blends in thermal coconversion through thermogravimetric technique. Furthermore, the influencing factors and the possible decomposition mechanism are elaborated and discussed in detail. This study will provide recent development and future prospects for cothermal conversion of biomass, sewage, coal, and their blends.

Funder

Karlstad University

Publisher

Hindawi Limited

Subject

General Chemistry

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