Potential greenhouse gas emissions and fertiliser material losses from rice straw management failure. Review
I. Nengah Muliarta
Abstract: Agriculture is one of the sectors that contribute to the increase in global emissions, starting from the land preparation process to the post-harvest process. The burning of rice straw is a form of failure in agricultural waste management and is one of the sources of global emissions in rice cultivation activities. Failure in the rice straw management process not only contributes to increased greenhouse area contributes to global warming by contributing gas emissions reaching 14,906.6 kg CO2, 354.29 gas emissions but also loss of fertilizer materials. The activity of burning rice straw in a one-ha kg CO, 132.73 kg PM (particulate matter), 31.65 kg NOx, 20.42 kg SO2 and 12.25 kg CH4. Failure to manage rice straw in the form of burning has also caused a loss of compost in a 1-ha area of 5.11 t. If rice straw is processed into compost, it can reduce the use of inorganic fertilizer, which is one form of application of the concept of low external input sustainable agriculture (LEISA). Rice straw management in principle is also a form of implementing a circular economy and efforts to realize sustainable agriculture.
Keywords: composting; fertilizers; greenhouse gases; rice straw; waste management
Citation: Muliarta, I. N. (2024). Potential greenhouse gas emissions and fertiliser material losses from rice straw management failure. Review. Bulg. J. Agric. Sci., 30(5), 948–956
References: (click to open/close) | Adugna, G. (2016). A review on impact of compost on soil properties, water use and crop productivity. Agricultural Science Research Journal, 4(3), 93–104. https://doi.org/10.14662/ARJASR2016.010. Ahmed, J., Almeida, E., Aminetzah, D., Denis, N., Henderson, K., Katz, J., Kitchel, H. & Mannion, P. (2020). Agriculture and climate change. In Agriculture and climate change (Issue April). McKinsey & Company. https://doi.org/10.4060/cb1593en. Allen, J., Pascual, K. ., Romasanta, R. ., Trinh, M. ., Thach, T. ., Hung, N. ., Sander, B. O. & Chivenge, P. (2019). Rice Straw Management Effects on Greenhouse Gas Emissions and Mitigation Options. In M. Gummert (Ed.), Sustainable Rice Straw Management, 1–192. https://doi.org/10.1007/978-3-030-32373-8. Aminah, M., Firdaus, M., Hartono, A. & Budi, G. (2022). Managing Movement of Returning Rice Straw into Soil (RRIS): A Solution to Land Degradation. JSAL, 9(3), 121–128. https://doi.org/10.21776/ub.jsal.2022.009.03.5. Ana, A., Khoerunnisa, I., Muktiarni, M., Dwiyanti, V. & Maosul, A. (2021). Waste of rice straw as renewable energy: An overview of the potential availability, content, and production process. IOP Conference Series: Materials Science and Engineering, 1098(6), 062070. https://doi.org/10.1088/1757-899x/1098/6/062070. Arai, H., Hosen, Y., Pham Hong, V., Thi, N., Huu, C. & Inubushi, K. (2015). Greenhouse gas emissions from rice straw burning and straw-mushroom cultivation in a triple rice cropping system in the Mekong Delta. J. Soil Sci. Plant Nutr., 61(4), 719–735. https://doi.org/10.1080/00380768.2015.1041862. Arsani, A. M. (2020). The Future of Indonesia and Global Agriculture: Rice Consumption and Agricultural Modernization. Jurnal Litbang Sukowati : Media Penelitian Dan Pengembangan, 4(1), 8. https://doi.org/10.32630/sukowati.v4i1.132. Barus, Y. (2019). Application of Rice Straw Compost with Different Bioactivators on the Growth and Yield of Rice Plant. J Trop Soils, 17(1), 25–29. https://doi.org/10.5400/jts.2012.17.1.25. Bazaluk, O., Havrysh, V. & Nitsenko, V. (2021). Energy and Environmental Assessment of Straw Production for Power Generation. E3S Web of Conferences, 228, 01010. https://doi.org/10.1051/e3sconf/202122801010. Bekchanov, M. & Mirzabaev, A. (2018). Circular economy of composting in Sri Lanka: Opportunities and challenges for reducing waste related pollution and improving soil health. Journal of Cleaner Production, 202(2018), 1107–1119. https://doi.org/10.1016/j.jclepro.2018.08.186. Belc, N., Mustatea, G., Apostol, L., Iorga, S., Vlǎduţ, V. N. & Mosoiu, C. (2019). Cereal supply chain waste in the context of circular economy. E3S Web of Conferences, 112, 03031. https://doi.org/10.1051/e3sconf/201911203031. Bodie, A. R., Micciche, A. C., Atungulu, G. G., Rothrock, M. J. & Ricke, S. C. (2019). Current Trends of Rice Milling Byproducts for Agricultural Applications and Alternative Food Production Systems. Frontiers in Sustainable Food Systems, 3, 1–13. https://doi.org/10.3389/fsufs.2019.00047. Bressan, M., Campagnoli, E., Ferro, C. G. & Giaretto, V. (2022). Rice Straw: A Waste with a Remarkable Green Energy Potential. Energies, 15(4), 1355. https://doi.org/10.3390/en15041355. Cheewaphongphan, P., Junpen, A., Kamnoet, O. & Garivait, S. (2018). Study on the potential of rice straws as a supplementary fuel in very small power plants in Thailand. Energies, 11(2), 1–21. https://doi.org/10.3390/en11020270. Chen, L., Yang, S., Gao, J., Chen, L., Ning, H., Hu, Z., Lu, J., Tan, X., Zeng, Y., Pan, X. & Zeng, Y. (2022). Long-Term Straw Return with Reducing Chemical Fertilizers Application Improves Soil Nitrogen Mineralization in a Double Rice-Cropping System. Agronomy, 12(8), 1767. https://doi.org/10.3390/agronomy12081767. Chivenge, P., Rubianes, F., Chin, D., Thach, T., Khang, V. T., Romasanta, R., Hung, N. & Trinh, M. (2019). Rice Straw Incorporation Influences Nutrient Cycling and Soil Organic Matter. In M. Gummert (Ed.), Sustainable Rice Straw Management (pp. 1–192). https://doi.org/10.1007/978-3-030-32373-8. Doğan, H. G. & Karakaş, G. (2019). The Nexus of Greenhouse Gas Emissions and Agriculture Sector: Case of Turkey and China. Turkish Journal of Agriculture - Food Science and Technology, 7(11), 1972–1981. https://doi.org/10.24925/turjaf.v7i11.1972-1981.2977. El-Dewany, C., Awad, F. & Zaghloul, A. M. (2018). Utilization of Rice Straw as a Low-Cost Natural By-Product in Agriculture. Int. J. of Environmental Pollution & Environmental Modelling, 1(4), 91–102. Firth, A., Baker, B., Brooks, J., Smith, R., Iglay, R. & Brian Davis, J. (2020). Low external input sustainable agriculture: Winter flooding in rice fields increases bird use, fecal matter and soil health, reducing fertilizer requirements. Agric Ecosyst Environ., 300(August 2019), 106962. https://doi.org/10.1016/j.agee.2020.106962. Goodman, B. A. (2020). Utilization of waste straw and husks from rice production: A review. Journal of Bioresources and Bioproducts, 5(3), 143–162. https://doi.org/10.1016/j.jobab.2020.07.001. Grohs, M., Marchesan, E., Giacomini, S., Filho, A., Werle, I., da Silva, A., Pagliarin, V. & Fleck, A. (2020). Greenhouse gas emissions during rice crop year affected by management of rice straw and ryegrass. REV BRAS CIENC SOLO, 44, 1–16. https://doi.org/10.36783/18069657rbcs20190137. Guman, O. & Wegner-Kozlova, E. (2020). Waste management based on circular economy principles. E3S Web of Conferences, 177, 1–10. https://doi.org/10.1051/e3sconf/202017704014. Hanafi, E. M., El Khadrawy, H. H., Ahmed, W. M. & Zaabal, M. M. (2012). Some observations on rice straw with emphasis on updates of its management. World Applied Sciences Journal, 16(3), 354–361. Harun, S., Hanafiah, M. & Noor, M. (2016). Rice Straw Utilisation for Bioenergy Production. Energies, 15(5542), 1–23. Hsu, E. (2021). Cost-benefit analysis for recycling of agricultural wastes in Taiwan. Waste Management, 120, 424–432. https://doi.org/10.1016/j.wasman.2020.09.051. Illankoon, W., Milanese, C., Collivignarelli, M. & Sorlini, S. (2023). Value Chain Analysis of Rice Industry by Products in a Circular Economy Context: A Review. Waste, 1(2), 333–369. https://doi.org/10.3390/waste1020022. IRRI (2020). Sustainable Rice Straw Management for Improved Agri-Food Systems in the Philippines. https://docs.google.com/a/irri.org/viewer?a=v&pid=sites&srcid=aXJyaS5vcmd8ZGV2LXJpY2Utc3RyYXd8Z3g6Nzc4MGRkYmFkNTRjNTFlNw. Islam, van Groenigen, J. W., Jensen, L. S., Sander, B. O. & de Neergaard, A. (2018). The effective mitigation of greenhouse gas emissions from rice paddies without compromising yield by early-season drainage. Science of the Total Environment, 612(2018), 1329–1339. https://doi.org/10.1016/j.scitotenv.2017.09.022. Kadir, M. & Harsani, H. (2023). Effect of Rice-Straw Compost Fertilizer on the Yield Performance of Sulawesi Local Aromatic Rice in Indonesia. JoA, 1(3), 122–127. https://doi.org/10.47709/joa.v1i03.2406. Kadoglidou, K., Kalaitzidis, A., Stavrakoudis, D., Mygdalia, A. & Katsantonis, D. (2019). A novel compost for rice cultivation developed by rice industrial by-products to serve circular economy. Agronomy, 9(9), 553. https://doi.org/10.3390/agronomy9090553. Khatiwada, D. & Golzar, F. (2021). Circularity in the Management of Municipal Solid Waste - A Systematic Review. Environmental and Climate Technologies, 25(1), 491–507. https://doi.org/10.2478/rtuect-2021-0036. Kumar, A., Nayak, A. K., Sharma, S., Senapati, A., Mitra, D., Mohanty, B., Prabukarthikeyan, S. R., Sabarinathan, K. G., Mani, I., Garhwal, R. S., Thankappan, S., Sagarika, M. S., De Los Santos-Villabos, S. & Panneerselvam, P. (2023). Rice straw recycling: A sustainable approach for ensuring environmental quality and economic security. Pedosphere, 33(1), 34–48. https://doi.org/10.1016/j.pedsph.2022.06.036. Kumar, S., D’Silva, T., Chandra, R., Malik, A., Vijay, V. & Misra, A. (2021). Strategies for boosting biomethane production from rice straw: A systematic review. Bioresour. Technol. Rep., 15(September), 100813. https://doi.org/10.1016/j.biteb.2021.100813. Lakhvir, S. & Brar, B. S. (2021). A Review on Rice Straw Management Strategies. Nat. Env. Poll. Tech, 20(4), 1485–1493. https://doi.org/10.46488/NEPT.2021.v20i04.010. Lenin, I., Siska, W. & Mirnia, E. (2021). The effect of straw compost on nutrient uptake and yield of rice in newly opened and intensive lowland. E3S Web Conf., 306, 1–10. https://doi.org/10.1051/e3sconf/202130601032. Mandpe, A., Paliya, S., Gedam, V. V., Patel, S., Tyagi, L. & Kumar, S. (2023). Circular economy approach for sustainable solid waste management: A developing economy perspective. Waste Management and Research, 41(3), 499–511. https://doi.org/10.1177/0734242X221126718. Migo-Sumagang, M. V. P., Maguyon-Detras, M. C., Gummert, M., Alfafara, C. G., Borines, M. G., Capunitan, J. A. & Hung, N. Van. (2020). Rice-straw-based heat generation system compared to open-field burning and soil incorporation of rice straw: An assessment of energy, GHG emissions, and economic impacts. Sustainability (Switzerland), 12(13), 1–18. https://doi.org/10.3390/su12135327. Minister of Environment and Forestry (2022). Operational Plan Indonesia’s (Issue February). https://www.menlhk.go.id/site/single_post/4705/operational-plan-indonesia-s-folu-net-sink-2030. Moustakas, K. & Loizidou, M. (2023). Effective waste management with emphasis on circular economy. Environmental Science and Pollution Research, 30(4), 8540–8547. https://doi.org/10.1007/s11356-022-24670-6. Muliarta, I. N. (2018). Utilization burning rice straw and crops planted. IJLS, 2(3), 142–150. https://doi.org/10.29332/ijls.v2n3.234. Muliarta, I. N. (2019). A study on rice field farmer implementation of rice straw composting. IOP Conf. Ser. Earth Environ. Sci., 343(1), 012001. https://doi.org/10.1088/1755-1315/343/1/012001. Muliarta, I. N. & Purba, J. H. (2020). Potential of Loss of Organic Fertilizer in Lowland Rice Farming in Klungkung District, Bali. Agro Bali, 3(2), 179–185. https://doi.org/10.37637/ab.v3i2.567. Muliarta, I. N. & Suanda, I. W. (2021). Effect of Sugar Addition and Reversal in Rice Straw Composting Aerobically to Compost Maturity. Ilkogretim Online - Elementary Education Online, 20(4), 1669–1680. https://doi.org/10.17051/ilkonline.2021.04.190. Muliarta, I. N., Sukmadewi, D. K. T., Selangga, D. G. W., Kariasa, Prawerti, Parwata, & Landra (2022). Implementation of LEISA Concept through composting rice straw waste in Subak Telun Ayah , Tegallalang. ABDIMAS, 7(November), 663–675. https://doi.org/https://doi.org/10.26905/abdimas.v7i4.7825. Murnita & Taher, Y. A. (2021). Impact of Organic and Inorganic Fertilizers on Changes in Soil Chemical Properties and Rice (Oriza sativa L.) Production. Jurnal Menara Ilmu, 15(2), 67–76. Nakano, D. & Muniz, J. (2018). Writing the literature review for empirical papers. Production, 28. https://doi.org/10.1590/0103-6513.20170086. Nghi, N., Romasanta, R., Hieu, N., Vinh, L., Du, N., Ngan, N., Chivenge, P. & Hung, N. (2020). Rice Straw-Based Composting. In M. Gummert, N. V. Hung, & B. Chivenge, P.Douthwaite (Eds.), Sustainable Rice Straw Management, 33–41. Springer International Publishing. https://doi.org/10.1007/978-3-030-32373-8. Nguyen, M. N. (2020). Worldwide Bans of Rice Straw Burning Could Increase Human Arsenic Exposure. Environmental Science and Technology, 54(7), 3728–3729. https://doi.org/10.1021/acs.est.0c00866. Nguyen, T. D. (2019). Review of postharvest rice straw use: change in use and the need for sustainable management policies in Vietnam. Journal of Vietnamese Environment, 11(2), 95–103. https://doi.org/10.13141/jve. Nguyen, V. H., Topno, S., Balingbing, C., Nguyen, V. C. N., Röder, M., Quilty, J., Jamieson, C., Thornley, P. & Gummert, M. (2016). Generating a positive energy balance from using rice straw for anaerobic digestion. Energy Reports, 2(May 2017), 117–122. https://doi.org/10.1016/j.egyr.2016.05.005. Parmar, R. (2020). Paddy Straw Burning Issues and Solutions. Agrinenv, 1(4), 1–3. Razza, F., Avino, L. D. & Abate, G. L. (2018). Designing Sustainable Technologies, Products and Policies. In Designing Sustainable Technologies, Products and Policies (Issue July). Springer International Publishing. https://doi.org/10.1007/978-3-319-66981-6. Said, N., Alblawi, A., Hendy, I. & Abdel Daiem, M. (2020). Analysis of energy and greenhouse gas emissions of rice straw to energy chain in Egypt. BioResources, 15(1), 1510–1520. https://doi.org/10.15376/biores.15.1.1510-1520. Seglah, P. A., Wang, Y., Wang, H., Neglo, K. A. W., Gao, C., & Bi, Y. (2022). Energy Potential and Sustainability of Straw Resources in Three Regions of Ghana. Sustainability (Switzerland), 14(3), 1–22. https://doi.org/10.3390/su14031434. Setiyo, Y., Gunadnya, I. B. P., Gunam, I. B. W. & Susrusa, I. K. B. (2017). The implementation of low external input sustainable agriculture system to increase productivity of potato (Solanum tuberosum L.). Journal of Food, Agriculture and Environment, 15(2), 62–67. Sharma, A., Soni, R. & Soni, K. (2023). Rice straw to biofertilizer formulations : Fostering waste management for circular economy. Research Square, 1–20. https://doi.org/https://doi.org/10.21203/rs.3.rs-2797131/v1. Singh, G., Gupta, M., Chaurasiya, S., Sharma, V. & Pimenov, D. (2021). Rice straw burning: a review on its global prevalence and the sustainable alternatives for its effective mitigation. JESPR, 28(25), 32125–32155. https://doi.org/10.1007/s11356-021-14163-3. Snyder, H. (2019). Literature review as a research methodology: An overview and guidelines. J. Bus. Res., 104(August), 333–339. https://doi.org/10.1016/j.jbusres.2019.07.039. Song, H. J., Lee, J. H., Jeong, H. C., Choi, E. J., Oh, T. K., Hong, C. O. & Kim, P. J. (2019). Effect of straw incorporation on methane emission in rice paddy: conversion factor and smart straw management. Applied Biological Chemistry, 62(70), 2–30. https://doi.org/10.1186/s13765-019-0476-7. Sumantri, I. & Hadi, S. N. (2019). Production and Nutrient Quality of Rice Straw of Local Rice Varieties From South Kalimantan. TWJ, 5(2), 47–50. https://doi.org/10.20527/twj.v5i2.74. Sumarno, Dharsono & Ardi Chandra, N. R. (2020). An Effort of Furniture Design Development through the Utilization of Rice Straw Gogo Red Rice Slegreng Variety. International Conference on Art, Design, Education and Cultural Studies, 2020(Situmeang 2010), 238–245. https://doi.org/10.18502/kss.v4i12.7600. Sun, N., Gao, C., Ding, Y., Bi, Y., Seglah, P. A. & Wang, Y. (2022). Five-Dimensional Straw Utilization Model and Its Impact on Carbon Emission Reduction in China. Sustainability (Switzerland), 14(24), 1–21. https://doi.org/10.3390/su142416722. Supaporn, P., Kobayashi, T. & Supawadee, C. (2013). Factors affecting farmers’ decisions on utilization of rice straw compost in Northeastern Thailand. JARTS, 114(1), 21–27. Surdianto, Y. dan & Sutrisna, N. (2015). Petunjuk Teknis Budidaya Padi Organik. In Paper Knowledge . Toward a Media History of Documents, 3. Tangkesalu, D., Lakani, I., Pasaru, F. & Duis, I. K. (2021). Application of Low External Input Sustainable Agriculture (LEISA) Technology to Produce Healthy Food and Sustain Agricultural Land Productivity in Sigi Regency - Central Sulawesi. Proceedings of the National Seminar on Community Service at Ma Chung University, 3(43), 189–199. Tiwari, H., Naresh, R. & Pal, R. (2020). Low external inputs in sustainable Agriulture (LEISA). Curr. Agri.Tren, 1(5), 11–13. www.vitalbiotech.org/currentagriculturetrends/%0AISSN. Wahyono, T., Sasongko, W. T., Sugoro, I. & Firsoni (2021). Nutrient Value and Digestibility Variation of Five Rice Straw Cultivars in Indonesia As Ruminant Roughage. Advances in Animal and Veterinary Sciences, 9(1), 73–81. https://doi.org/10.17582/JOURNAL.AAVS/2021/9.1.73.81. Wahyuni, W. S. & Hoesain, M. (2017). Biopesticide Made from Rice Straw. The International Conference of FoSSA, 137–140. https://repository.unej.ac.id/handle/123456789/101851%0Ahttps://repository.unej.ac.id/bitstream/handle/123456789/101851/F. P_Prosiding_Moh. Hoesain_BIOPESTICIDE MADE FROM RICE STRAW.pdf?sequence=1&isAllowed=y. Yuanita (2020). Making of Bokashi Fertilizer from Rice Straw ( Oryza sativa L.) by Using the Activator Effective Microorganisms ( EM4 ). Int. j. Innov. Sci. Res. Technol., 5(10), 1138–1142. Zang, D., Hu, Z., Yang, Y. & He, S. (2022). Research on the Relationship between Agricultural Carbon Emission Intensity, Agricultural Economic Development and Agricultural Trade in China. Sustainability (Switzerland), 14(18), 11694. https://doi.org/10.3390/su141811694. Zhang, T., Shi, J., Wu, X., Shu, S. & Lin, H. (2022). Simulation of heat transfer in a landfill with layered new and old municipal solid waste. Scientific Reports, 12(1), 2970. https://doi.org/10.1038/s41598-022-06722-6.
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| Date published: 2024-10-24
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