Agricultural waste biomass resource utilization and its application in environmental remediation

Authors

  • Ziyan Dang

DOI:

https://doi.org/10.54097/an5r9w64

Keywords:

biomass, biochar, preparation, application.

Abstract

With the increasing demand for energy, human beings need to find new renewable energy sources to promote human survival and development. The rational application of agricultural waste biomass is of great significance to reducing resource waste and improving environmental problems. This paper discusses the resource utilization of agricultural waste biomass and its application in environmental remediation. Agricultural waste biomass, such as crop straw and livestock manure, can be converted into efficient energy or biochar after resource treatment. This biochar has an excellent performance in soil remediation and wastewater treatment because of its high adsorption capacity. The preparation methods of biochar are diverse, including pyrolysis, hydrothermal carbonization, etc., and its properties can be further enhanced through physical and chemical modification. However, there are still some problems, such as low biomass utilization efficiency and unclear long-term impact on the environment. In the future, efficient biochar preparation and modification technology should be further developed to realize its wide application in environmental remediation.

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References

[1] Shusheng C, Pang A B. Advances in thermochemical conversion of woody biomass to energy, fuels and chemicals. Biotechnology Advances, 2019, 37 (4):589-597.

[2] Ahmad M, Rajapaksha A U, Liu J E, et al. Biochar as a sorbent for contaminant management in soil and water: a review. Chemo sphere, 2014, 99: 19 - 33.

[3] Xian Bin. Dong Research on the current situation and outlook of resource utilisation of agricultural organic waste. Rural Agriculture Farmer, 2022, (06):37-38.

[4] Besson M, Gallezot P, Pinel C. Conversion of biomass into chemicals over metal catalysts. Chemical Reviews, 2014, 114: 1827-1870.

[5] Sarasadat, Taherymoosavi, Stephen, et al. Characterization of organic compounds in a mixed feedstock biochar generated from Australian agricultural residues. Journal of Analytical & Ap -plied Pyrolysis, 2016.

[6] Zhang CY, Ho SH, Chen WH, et al. Oxidative torrefaction of biomass nutshells: evaluations of energy efficiency as well as biochar transportation and storage. Applied Energy, 2019, 235: 428-441.

[7] Ahmed MB, Zhou JL, Ngo HH, et al. Progress in the preparation and application of modified biochar for improved contaminant removal from water and wastewater. Bioresource Technology, 2016: 836-851.

[8] Jianlong Wang, Wang S. Preparation, modification and environmental application of biochar: A review. Joumal of Cleaner Production, 2019.

[9] Chen H, Gao Y, El-Naggar A, et al. Enhanced sorption of trivalent anti-mony by chitosan-loaded biochar in aqueous solutions: characteriza-tion, performance and mechanisms. Hazard Mater, 2022.

[10] Tan Y, Wan X, Ni X, et al. Efficient removal of Cd (II) from aqueous solution by chitosan modified kiwi branch biochar. Chemosphere, 2022, 289: 133251.

[11] Zheng L, Ji H, Gao Y, et al. Effects of Modified Biochar on the Mobility and Speciation Distribution of Cadmium in Contaminated Soil. Processes, 2022, 10(5):818.

[12] Ministry of Environmental Protection, Ministry of Land and Resources. National Soil Pollution Survey Bulletin . 2014.

[13] Jiang J, Xu RK, Jiang TY, et al. Immobilization of Cu (II), Pb (II) and Cd (II) by the addition of rice straw derived biochar to a simulated polluted Ultisol. Journal of hazardous materials,2012,229/230:145-150.

[14] Liang Jie, Li Xuemei, Yu Zhigang, et al. Amorphous MnO2 Modified biochar derived from aerobically composted swine manure for adsorption of Pb (II) and Cd (II). ACS Sustainable Chemistry & Engineering, 2017, 5 (6): 50495058.

[15] Zhang Xueqing, Fei Yuhong, Tian Xia, et al. Passivation effect of phosphorus-modified biochar on Pb and Cd composite contaminated soil. Environmental Pollution and Prevention, 2017, 39 (09): 1017-1020.

[16] Jiang H, Dang C Y, Liu W, et al. Radical attack and mineralization mechanisms on electrochemical oxidation of p-substituted phenols at boron-doped diamond anodes. Chemosphere, 2020, 248: 126033.

[17] Sangon S, Hunt J A, Attard M T, et al. Valorisation of waste rice straw for the production of highly effective carbon based adsorbents for dyes removal. Journal of Cleaner Production,2018,1721128-1139.

[18] Liang Linqing, Wang Jiahong, Zhang Yanxin. Magnetic mesoporous carbon hollow microspheres adsorbents for the efficient removal of Cr (Ⅲ) and Cr (Ⅲ)-EDTA in high salinity water. Microporous and Mesoporous Materials, 2023, 347: 112344.

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Published

18-02-2025

How to Cite

Dang , Z. (2025). Agricultural waste biomass resource utilization and its application in environmental remediation. Highlights in Science, Engineering and Technology, 125, 17-22. https://doi.org/10.54097/an5r9w64