A Comprehensive Review of Biomass Pellets and Their Role in Sustainable Energy: Production, Properties, Environment, Economics, and Logistics

被引:4
作者
Mortadha, Haider [1 ]
Kerrouchi, Hadj Babouhoun [1 ]
Al-Othman, Amani [2 ,3 ]
Tawalbeh, Muhammad [4 ,5 ]
机构
[1] Amer Univ Sharjah, Dept Mech Engn, POB 26666, Sharjah, U Arab Emirates
[2] Amer Univ Sharjah, Dept Chem & Biol Engn, POB 26666, Sharjah, U Arab Emirates
[3] Amer Univ Sharjah, Energy Water & Sustainable Environm Res Ctr, Sharjah, U Arab Emirates
[4] Univ Sharjah, Sustainable & Renewable Energy Engn Dept, POB 27272, Sharjah, U Arab Emirates
[5] Univ Sharjah, Sustainable Energy & Power Syst Res Ctr, RISE, POB 27272, Sharjah, U Arab Emirates
关键词
Pellets; Agro-pellets; Sustainable energy; Biomass; Biofuels; Pelletization; Pellet mill; Torrefaction; WHEAT-STRAW; BIOLOGICAL PRETREATMENT; FUEL PELLETS; WOOD; BIOFUEL; COMBUSTION; GASIFICATION; TORREFACTION; PERFORMANCE; EMISSIONS;
D O I
10.1007/s12649-024-02873-x
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The global energy landscape is undergoing a pivotal shift, with a pressing need to minimize pollution and carbon dioxide (CO2) emissions by transitioning from fossil fuels to renewable energy sources. Biofuels, accounting for the largest renewable share in global energy production, surpass all other renewables combined and can ideally meet half of the world's energy needs in the next several decades. Solid biomass, such as pellets, has gained traction in Europe. Derived from organic materials like wood and crops, pellets offer an increasingly popular and sustainable alternative to coal for heat and power generation, with global production rising quickly and projected to continue growing into the far future. Pellet production is a comprehensive process. Feedstock preparation, processing treatments (mechanical, thermochemical, biological), and additives are essential to optimize feedstock properties. The feedstock is then pelletized using pellet mills, and the machine specifications and manufacturing parameters applied can significantly influence costs and product quality. The literature on life cycle assessments of pellets has shown that replacing coal with pellets can reduce various emissions and improve the environmental footprint of energy production. Because of their superior properties and emission profiles compared to agro-pellets (agriculture biomass pellets), Wood pellets dominate the pellet market as a substitute for coal in residential and commercial heating and industrial power generation. Despite their growing appeal, pellet consumption remains concentrated in specific regions, with Europe and China being the main regions reporting wide-scale pellet use. This paper provides an in-depth insight into pellets, encompassing their production, properties, applications, environmental implications, current market dynamics, future challenges, and relevant policies. Currently, wood pellets remain superior to other forms of pellets, and with sustainable forestry practices allowing greater wood harvest rates, it is expected and recommended to increase wood pellet production and consumption, especially in the heating sector. Agro-pellets should also be explored as technology improves, although their use might be restricted to when there is excessive biomass nearby if they keep underperforming relative to wood pellets. With a cleaner pollutant profile, carbon-neutral combustion, and increasingly competitive prices, biomass pellets are one of the most promising sustainable solutions to the world's growing energy demands.
引用
收藏
页数:33
相关论文
共 143 条
[71]   Hydrothermal carbonization of lipid extracted algae for hydrochar production and feasibility of using hydrochar as a solid fuel [J].
Lee, Jongkeun ;
Lee, Kwanyong ;
Sohn, Donghwan ;
Kim, Young Mo ;
Park, Ki Young .
ENERGY, 2018, 153 :913-920
[72]  
LineOnLine, 2024, Pellet stove
[73]   Particle Size Distribution and Physicochemical Properties of Pellets Made of Straw, Hay, and Their Blends [J].
Lisowski, Aleksander ;
Matkowski, Patryk ;
Dabrowska, Magdalena ;
Piatek, Michal ;
Swietochowski, Adam ;
Klonowski, Jacek ;
Mieszkalski, Leszek ;
Reshetiuk, Volodymyr .
WASTE AND BIOMASS VALORIZATION, 2020, 11 (01) :63-75
[74]  
Lowry J., 2016, Renewable Energy in the Service of Mankind, VII, P233, DOI [10.1007/978-3-319-18215-5_21, DOI 10.1007/978-3-319-18215-5_21]
[75]   Impact of co-firing coal and biomass on flame characteristics and stability [J].
Lu, Gang ;
Yan, Yong ;
Cornwell, Steve ;
Whitehouse, Michael ;
Riley, Gerry .
FUEL, 2008, 87 (07) :1133-1140
[76]   Biomass logistics analysis for large scale biofuel production: Case study of loblolly pine and switchgrass [J].
Lu, Xiaoming ;
Withers, Mitch R. ;
Seifkar, Navid ;
Field, Randall P. ;
Barrett, Steven R. H. ;
Herzog, Howard J. .
BIORESOURCE TECHNOLOGY, 2015, 183 :1-9
[77]   Pelletized Composite Wood Fiber Mixed with Plastic as Advanced Solid Biofuels: Thermo-Chemical Analysis [J].
Madadian, E. ;
Akbarzadeh, A. H. ;
Lefsrud, M. .
WASTE AND BIOMASS VALORIZATION, 2018, 9 (09) :1629-1643
[78]   Grinding performance and physical properties of wheat and barley straws, corn stover and switchgrass [J].
Mani, S ;
Tabil, LG ;
Sokhansanj, S .
BIOMASS & BIOENERGY, 2004, 27 (04) :339-352
[79]   Torrefaction after pelletization (TAP): Analysis of torrefied pellet quality and co-products [J].
Manouchehrinejad, Maryam ;
Mani, Sudhagar .
BIOMASS & BIOENERGY, 2018, 118 :93-104
[80]   Energy analysis of a wood or pellet stove in a single-family house equipped with gas boiler and radiators [J].
Marigo, Marco ;
Zulli, Fabio ;
Bordignon, Sara ;
Carnieletto, Laura ;
Emmi, Giuseppe ;
De Carli, Michele .
BUILDING SIMULATION, 2022, 15 (09) :1577-1593