Page 214 - Cost-Benefit Analysis of agricultural waste management methods
P. 214

255–272. Retrieved from https://doi.org/10.1590/1678-992x-2016-0459Cole%

                       C3%A7%C3%A3o_1.pdf
                   Dai, Y., Zheng, H., Jiang, Z., & Xing, B. (2020). Comparison of different crop residue-based

                       technologies for their energy production and air pollutant emission. Science of The
                       Total Environment, 707, 136122. doi:https://doi.org/10.1016/j.scitotenv.2019.136122

                   Dominique Bureau, Alain Quinet and Katheline Schub. (2021). Benefit-Cost Analysis for

                       Climate Action. J. Benefit Cost Anal., 12(3), 494-517.
                   Elsever. (2021). University, societal impact and sustainable development. A closer look

                       for research leaders. Retrieved from https://www.elsevier.com/research
                       intelligence/societal-impact-and-sdg-guide

                   ERS, U. (2017). ARMS Farm financial and crop production practices. Retrieved from

                       https://data.ers.usda.gov/reports.aspx?ID=17883
                   Esher Hsu, 2021. Cost-benefit analysis for recycling of agricultural wastes in Taiwan.

                       Waste Management. 120(2021); 424-432.

                   Esher Hsu. (2021). Cost-benefit analysis for recycling of agricultural wastes in Taiwan.
                       Waste Management, 120, 424-432.

                   European Commission. (2021). waste management options and climate change.
                       Retrieved from https://ec.europa.eu/environment/pdf/waste/studies/climate_

                       change_xsum.pdf

                   European Commission. (2021). waste management options and climate change.
                       Retrieved from https://ec.europa.eu/environment/pdf/waste/studies/climate_

                       change_xsum.pdf
                   Fang, Y. R., Wu, Y., & Xie, G. H. (2019). Crop residue utilizations and potential for

                       bioethanol production in China. Renewable and Sustainable Energy Reviews, 113.

                       Retrieved from https://doi.org/10.1016/j.rser.2019.109288
                   Fornacca, D., Ren, G., & Xiao, W. (2017). Performance of Three MODIS Fire Products

                       (MCD45A1, MCD64A1, MCD14ML), and ESA Fire_CCI in a Mountainous Area of

                       Northwest Yunnan, China, Characterized by Frequent Small Fires. Remote Sensing,
                       9(1131), 1-20.

                   Fuentes, M., Govaerts, B., De León, F., Hidalgo, C., Dendooven, L., Sayre, K. D., &

                       Etchevers, J. (2009). Fourteen years of applying zero and conventional tillage, crop
                       rotation and residue management systems and its effect on physical and chemical







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