Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Thermochemical Conversion of Biomass for Syngas Production: Current Status and Future Trends

View through CrossRef
The thermochemical conversion of different feedstocks is a technology capable of reducing the amount of biowaste materials produced. In addition, the gasification of feedstock using steam as a gasifying agent also produces hydrogen, which is a clean energy fuel. This article aimed to encapsulate the current status of biowaste gasification and to explain, in detail, the advantages and limitations of gasification technologies. In this review paper, different gasifying agents such as steam, air, and oxygen, as well as their effects on the quality of syngas production, are discussed. In addition, the effects of reactor configuration and different operating parameters, such as temperature, pressure, equivalence ratio, and incorporation of a catalyst, as well as their effects on the ratio of H2/CO, LHV, syngas yield, and tar production, were critically evaluated. Although gasification is a sustainable and ecologically sound biomass utilization technology, tar formation is the main problem in the biomass gasification process. Tar can condense in the reactor, and clog and contaminate equipment. It has been shown that an optimized gasifier and a high-activity catalyst can effectively reduce tar formation. However, key biowaste treatment technologies and concepts must first be improved and demonstrated at the market level to increase stakeholder confidence. Gasification can be the driving force of this integration, effectively replacing fossil fuels with produced gas. In addition, support policies are usually needed to make the integration of biomass gasification technology into the industry profitable with fully functional gasification plants. Therefore, to address such issues, this study focused on addressing these issues and an overview of gasification concepts.
Title: Thermochemical Conversion of Biomass for Syngas Production: Current Status and Future Trends
Description:
The thermochemical conversion of different feedstocks is a technology capable of reducing the amount of biowaste materials produced.
In addition, the gasification of feedstock using steam as a gasifying agent also produces hydrogen, which is a clean energy fuel.
This article aimed to encapsulate the current status of biowaste gasification and to explain, in detail, the advantages and limitations of gasification technologies.
In this review paper, different gasifying agents such as steam, air, and oxygen, as well as their effects on the quality of syngas production, are discussed.
In addition, the effects of reactor configuration and different operating parameters, such as temperature, pressure, equivalence ratio, and incorporation of a catalyst, as well as their effects on the ratio of H2/CO, LHV, syngas yield, and tar production, were critically evaluated.
Although gasification is a sustainable and ecologically sound biomass utilization technology, tar formation is the main problem in the biomass gasification process.
Tar can condense in the reactor, and clog and contaminate equipment.
It has been shown that an optimized gasifier and a high-activity catalyst can effectively reduce tar formation.
However, key biowaste treatment technologies and concepts must first be improved and demonstrated at the market level to increase stakeholder confidence.
Gasification can be the driving force of this integration, effectively replacing fossil fuels with produced gas.
In addition, support policies are usually needed to make the integration of biomass gasification technology into the industry profitable with fully functional gasification plants.
Therefore, to address such issues, this study focused on addressing these issues and an overview of gasification concepts.

Related Results

Syngas Technologies
Syngas Technologies
Abstract This paper will discuss the comparison between the three leading Syngas manufacturing technologies; Partial Oxidation (POX), Autothermal Reforming (ATR) ...
Karakterisasi Unjuk Kerja Mesin 100 CC dengan Bahan Bakar Syngas
Karakterisasi Unjuk Kerja Mesin 100 CC dengan Bahan Bakar Syngas
Gasification is a process of converting carbon-containing compounds to convert both liquid and solid materials into fuel-capable gas (CO, H2, CO2, CH4, and H2O) through the combust...
Investigating the Catalytic Influence of Boron on Ni-Co/Ca Catalysts for Improved Syngas Generation from Rice Straw Pyrolysis
Investigating the Catalytic Influence of Boron on Ni-Co/Ca Catalysts for Improved Syngas Generation from Rice Straw Pyrolysis
A series of boron-promoted Ni-Co/Ca catalysts were synthesized by the sol–gel method to enhance syngas generation from biomass pyrolysis. The efficiency of these catalysts was eval...
Measuring the (un‐)sustainability of industrial biomass production and use
Measuring the (un‐)sustainability of industrial biomass production and use
PurposeThe purpose of this paper is to explore the scope of applications and benefits of sustainability accounting for the production and industrial use of biomass as an energy sou...
Forest Structure and Potential of Carbon Storage at Khao Nam Sab, Kasetsart University, Sri Racha Campus, Chonburi Province
Forest Structure and Potential of Carbon Storage at Khao Nam Sab, Kasetsart University, Sri Racha Campus, Chonburi Province
Background and Objectives: Tropical Forest ecosystems are globally significant for their roles in biodiversity conservation, climate regulation, and carbon sequestration. In Thaila...
Optimized Production of Syngas from Rice Hush Using Steam Explosion in Dual Fluidized Bed Gasifier
Optimized Production of Syngas from Rice Hush Using Steam Explosion in Dual Fluidized Bed Gasifier
Converting rice husk into energy is a promising method of generating renewable energy and reducing greenhouse gas emissions. In this research rice hush is considered as biomass fue...
Combating Greenhouse Effects through Biomass Gasification: A Focus on Kinetic Modeling of Combustion and Gasification Zones
Combating Greenhouse Effects through Biomass Gasification: A Focus on Kinetic Modeling of Combustion and Gasification Zones
The prevalent challenges of global warming, food security, food production, crop production systems, environment control called for consideration and better utilization of green en...

Back to Top