Life cycle assessment of agricultural waste recycling for sustainable environmental impact

سال انتشار: 1403
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 89

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شناسه ملی سند علمی:

JR_GJESM-10-2_030

تاریخ نمایه سازی: 8 بهمن 1402

چکیده مقاله:

Agricultural waste recycling is crucial for sustainable farming operations and farming practices. Life cycle assessment has emerged as an innovative and comprehensive viewpoint that considers the entire recycling process to evaluate the potential and true implications of agricultural waste recycling. This study considered methods for recycling different agricultural waste streams, such as crop waste, animal manure, pruning materials, and by-products and subsequent uses. Furthermore, the life cycle assessment method was used to investigate the process of handling agricultural waste, from collection and recycling to final usage in the agricultural system. Environmental impact categories, including greenhouse gas emissions, energy usage, eutrophication, acidification, and land use, were evaluated to determine their potential effects on climate change, resource depletion, and ecosystem health. The results were compared with those of ۳۱ studies that analyzed the potential environmental impacts of agricultural waste management. Various methods initially developed and implemented for agricultural waste landfilling methods have now changed to energy-generating sources, such as biochar, biogas, briquettes, and various energy production methods. Furthermore, composting, a popular method of recycling agricultural waste, significantly lowers greenhouse gas emissions and energy use compared to traditional waste disposal techniques. The study also examines cutting-edge technologies, such as anaerobic digestion and biomass-to-energy conversion, highlighting their potential to manage agricultural waste and being a sustainable energy source. These findings indicate potential environmental advantages in terms of decreased greenhouse gas emissions and fossil fuel consumption, leading to a circular economic approach for agriculture. When integrating agricultural waste, including composting, anaerobic digestion, and pyrolysis, biochar is highlighted as a waste recycling method that is promising for sustainable waste management. In addition to efficiently managing agricultural waste, these technologies help generate electricity and sequester carbon, thereby advancing the objectives of climate change mitigation and circular economy. Although life cycle assessment has been used to analyze several waste management strategies, including those specific to agricultural waste, certain significant gaps and discoveries still require attention for a more thorough analysis. It might be challenging to gather complete and accurate data to assess the entire lifecycle of agricultural waste management technology. The direct environmental effects of waste management are frequently the focus of life cycle assessment studies, but they may overlook secondary effects such as indirect land use change, habitat damage, and biodiversity effects. It is crucial to consider these secondary effects in a more comprehensive analysis.

نویسندگان

S. Sumiyati

Department of Environmental Engineering, Universitas Diponegoro, Jl. Professor Sudarto SH., Semarang, Indonesia

B.P. Samadikun

Department of Environmental Engineering, Universitas Diponegoro, Jl. Professor Sudarto SH., Semarang, Indonesia

A. Widiyanti

Environmental Science Department, University of Mataram, Jl Majapahit, Mataram, Indonesia

M.A. Budihardjo

Department of Environmental Engineering, Universitas Diponegoro, Jl. Professor Sudarto SH., Semarang, Indonesia

S. Al Qadar

Environmental Science Department, University of Mataram, Jl Majapahit, Mataram, Indonesia

A.S. Puspita

Environmental Sustainability Research Group, Universitas Diponegoro, Jl. Professor Sudarto Sudarto SH., Semarang, Indonesia

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  • Abbasi, R.; Martinez, P.; Ahmad, R., (۲۰۲۲). The digitization of ...
  • Aberilla, J.M.; Gallego-Schmid, A.; Azapagic, A., (۲۰۱۹). Environmental sustainability of ...
  • Adekomaya, O.; Majozi, T., (۲۰۲۲). Promoting natural cycle and environmental ...
  • Ahmed, F.; Hasan, S.; Rana, M.; Sharmin, N., (۲۰۲۳). A ...
  • Al-Rumaihi, A.; McKay, G.; Mackey, H.R.; Al-Ansari, T., (۲۰۲۰). Environmental ...
  • Arena, N.; Lee, J.; Clift, R., (۲۰۱۶). Life Cycle Assessment ...
  • Awasthi, M.K.; Sindhu, R.; Sirohi, R.; Kumar, V.; Ahluwalia, V.; ...
  • Badawi, M.A., (۲۰۲۳). Composting farm waste for production of high ...
  • Baldi, A.; Bruschi, P.; Campeggi, S.; Egea, T.; Rivera, D.; ...
  • Bhatt, A.H.; Zhang, Y.; Milbrandt, A.; Newes, E.; Moriarty, K.; ...
  • Blum, D., (۲۰۲۰). Ways to reduce restaurant industry food waste ...
  • Bonilla-Alicea, R.J.; Fu, K., (۲۰۱۹). Systematic map of the social ...
  • Budihardjo,M.A.; Huboyo, H.S.; Puspita, A.S.; Hutagaol, J.D.C., (۲۰۲۳a). Utilization of ...
  • Budihardjo, M.A.; Priyambada, I.B.; Chegenizadeh, A.; Al Qadar, S.; Puspita, ...
  • Bureau, J.C.; Antón, J., (۲۰۲۲). Agricultural Total factor productivity and ...
  • Chaudhary, A.; Timsina, P.; Karki, E.; Sharma, A.; Suri, B.; ...
  • Chen, B.; Chen, S., (۲۰۱۳). Life cycle assessment of coupling ...
  • Chen, H.L.; Nath, T.K.; Chong, S.; Foo, V.; Gibbins, C.; ...
  • Chen, S.; Chen, B.; Song, D., (۲۰۱۲). Life-cycle energy production ...
  • Chepeliev, M.; Hertel, T.W.; van der Mensbrugghe, D., (۲۰۲۲). Cutting ...
  • Chimi, P.M.; Mala, W.A.; Fobane, J.L.; Essouma, F.M.; Mbom II, ...
  • Clare, A.; Shackley, S.; Joseph, S.; Hammond, J.; Pan, G.; ...
  • Corominas, L.; Byrne, D.M.; Guest, J.S.; Hospido, A.; Roux, P.; ...
  • D’Agaro, E.; Gibertoni, P.; Esposito, S., (۲۰۲۲). Recent trends and ...
  • Dahiya, S.; Katakojwala, R.; Ramakrishna, S.; Mohan, S.V., (۲۰۲۰). Biobased ...
  • Dai, Y.; Zheng, H.; Jiang, Z.; Xing, B., (۲۰۲۰). Comparison ...
  • Deepak, A.; Sharma, V.; Kumar, D., (۲۰۲۲). Life cycle assessment ...
  • Eyhorn, F.; Muller, A.; Reganold, J.P.; Frison, E.; Herren, H.R.; ...
  • Ezugwu, A.E.; Ikotun, A.M.; Oyelade, O.O.; Abualigah, L.; Agushaka, J.O.; ...
  • Farooq, M.; Cheng, J.; Khan, N.U.; Saufi, R.A.; Kanwal, N.; ...
  • Fielke, S.; Taylor, B.M.; Coggan, A.; Jakku, E.; Davis, A.M.; ...
  • Ganesan, K.; Valderrama, C., (۲۰۲۲). Anticipatory life cycle analysis framework ...
  • Gilani, H.R.; Ibrik, K.; Sanchez, D.L., (۲۰۲۳). Techno‐economic and policy ...
  • Haga, K., (۲۰۲۱). Sustainable recycling of livestock wastes by composting ...
  • Haque, F.; Fan, C.; Lee, Y.-y., (۲۰۲۳). From waste to ...
  • Haumahu, S.A.Q.; Budihardjo, M.A.; Priyambada, I.B.; Puspita, A.S., (۲۰۲۳). Review ...
  • Hauschild, M.Z.; Kara, S.; Røpke, I., (۲۰۲۰). Absolute sustainability: Challenges ...
  • Hemidat, S.; Achouri, O.; El Fels, L.; Elagroudy, S.; Hafidi, ...
  • ISO ۱۴۰۴۰., (۲۰۰۶). Environmental management. Life cycle assessment principles and ...
  • ISO ۱۴۰۴۴., (۲۰۰۶). Environmental management. Life cycle assessment requirements and ...
  • Iwuozor, K.O.; Emenike, E.C.; Ighalo, J.O.; Eshiemogie, S.; Omuku, P.E.; ...
  • Kajtaz, M., (۲۰۱۹). Unconstrained shape optimisation of a lightweight side ...
  • Kannan, M.; Bojan, N.; Swaminathan, J.; Zicarelli, G.; Hemalatha, D.; ...
  • Karić, N.; Maia, A.S.; Teodorović, A.; Atanasova, N.; Langergraber, G.; ...
  • Kenett, R.S.; Zacks, S.; Gedeck, P., (۲۰۲۳). Industrial statistics: A ...
  • Keng, Z.X.; Chong, S.; Ng, C.G.; Ridzuan, N.I.; Hanson, S.; ...
  • Khanali, M.; Ghasemi-Mobtaker, H.; Varmazyar, H.; Mohammadkashi, N.; Chau, K.-w.; ...
  • Khandelwal, H.; Dhar, H.; Thalla, A.K.; Kumar, S., (۲۰۱۹). Application ...
  • Kharola, S.; Ram, M.; Mangla, S.K.; Goyal, N.; Nautiyal, O.; ...
  • Koido, K.; Takeuchi, H.; Hasegawa, T., (۲۰۱۸). Life cycle environmental ...
  • Koul, B.; Yakoob, M.; Shah, M.P., (۲۰۲۲). Agricultural waste management ...
  • Kountios, G.; Konstantinidis, C.; Antoniadis, I., (۲۰۲۳). Can the adoption ...
  • Kovacs, E.; Hoaghia, M.-A.; Senila, L.; Scurtu, D.A.; Varaticeanu, C.; ...
  • Kumar Sarangi, P.; Subudhi, S.; Bhatia, L.; Saha, K.; Mudgil, ...
  • Kurniawan, T.A.; Othman, M.H.D.; Hwang, G.H.; Gikas, P., (۲۰۲۲). Unlocking ...
  • Laurent, A.; Weidema, B.P.; Bare, J.; Liao, X.; Maia de ...
  • Lee, S.Y.; Sankaran, R.; Chew, K.W.; Tan, C.H.; Krishnamoorthy, R.; ...
  • Li, Y.; Manandhar, A.; Li, G.; Shah, A., (۲۰۱۸). Life ...
  • Llorach-Massana, P.; Cirrincione, L.; Sierra-Perez, J.; Scaccianoce, G.; La Gennusa, ...
  • Ma, H.; Li, M.; Tong, X.; Dong, P., (۲۰۲۳). Community-Level ...
  • Manco, P.; Caterino, M.; Rinaldi, M.; Fera, M., (۲۰۲۳). Additive ...
  • Manikandan, S.; Vickram, S.; Sirohi, R.; Subbaiya, R.; Krishnan, R.Y.; ...
  • Marmiroli, B.; Rigamonti, L.; Brito-Parada, P.R., (۲۰۲۱). Life cycle assessment ...
  • Mazzi, A., ۲۰۲۰. Introduction. Life cycle thinking. in: Life cycle ...
  • McAuliffe, G.A.; Takahashi, T.; Lee, M.R., (۲۰۲۰). Applications of nutritional ...
  • Mehmood, Y.; Arshad, M.; Kächele, H., (۲۰۲۲). Effects of wastewater ...
  • Mio, A.; Fermeglia, M.; Favi, C., (۲۰۲۲). A critical review ...
  • Mizik, T., (۲۰۲۳). How can precision farming work on a ...
  • Mo, W.; Xiong, Z.; Leong, H.; Gong, X.; Jiang, L.; ...
  • Mohammadi, A.; Cowie, A.; Anh Mai, T.L.; de la Rosa, ...
  • Mohammadi, A.; Cowie, A.L.; Anh Mai, T.L.; Brandão, M.; Anaya ...
  • Mondal, S.; Palit, D. (۲۰۲۲). Challenges in natural resource management ...
  • Mufti, M.; Fathurahman, M.R., (۲۰۲۲). Penyuluhan pemanfaatan limbah pertanian untuk ...
  • Muhie, S.H., (۲۰۲۲). Novel approaches and practices to sustainable agriculture. ...
  • Mujtaba, M.; Fraceto, L.; Fazeli, M.; Mukherjee, S.; Savassa, S.M.; ...
  • Nasution, M.A.; Wibawa, D.S.; Ahamed, T.; Noguchi, R., (۲۰۱۸). Comparative ...
  • Nayal, F.S.; Mammadov, A.; Ciliz, N., (۲۰۱۶). Environmental assessment of ...
  • Nguyen, T.D.P.; Le, T.V.A.; Show, P.L.; Nguyen, T.T.; Tran, M.H.; ...
  • Nigussie, Z.; Tsunekawa, A.; Haregeweyn, N.; Tsubo, M.; Adgo, E.; ...
  • Onat, N.C.; Kucukvar, M., (۲۰۲۲). A systematic review on sustainability ...
  • Onyeaka, H.; Tamasiga, P.; Nwauzoma, U.M.; Miri, T.; Juliet, U.C.; ...
  • Pantusa, D.; Saponieri, A.; Tomasicchio, G.R., (۲۰۲۳). Assessment of coastal ...
  • Petrillo, A.; Colangelo, F.; Farina, I.; Travaglioni, M.; Salzano, C.; ...
  • Phuang, Z.X.; Lin, Z.; Liew, P.Y.; Hanafiah, M.M.; Woon, K.S., ...
  • Pratibha, G.; Srinivas, I.; V. Rao, K.; M.K. Raju, B.; ...
  • Priyambada, I.; Budihardjo, M.; Al Qadar, S.; Puspita, A., (۲۰۲۳). ...
  • Puspita, A.S.; Budihardjo, M.A.; Samadikun, B.P., (۲۰۲۳). Evaluating coconut fiber ...
  • Qin, T.; She, L.; Wang, Z.; Chen, L.; Xu, W.; ...
  • Rahimi, Z.; Anand, A.; Gautam, S., (۲۰۲۲). An overview on ...
  • Rani, G.M.; Pathania, D.; Umapathi, R.; Rustagi, S.; Huh, Y.S.; ...
  • Rashedi, A.; Gul, N.; Hussain, M.; Hadi, R.; Khan, N.; ...
  • Read, Q.D.; Muth, M.K., (۲۰۲۱). Cost-effectiveness of four food waste ...
  • Robb, S.; Dargusch, P., (۲۰۱۸). A financial analysis and life-cycle ...
  • Sabet, H.; Moghaddam, S.S.; Ehteshami, M., (۲۰۲۳). A comparative life ...
  • Samela, C.; Imbrenda, V.; Coluzzi, R.; Pace, L.; Simoniello, T.; ...
  • Saravanan, A.; Kumar, P.S.; Jeevanantham, S.; Karishma, S.; Tajsabreen, B.; ...
  • Shaheen, J.; Fseha, Y.H.; Sizirici, B., (۲۰۲۲). Performance, life cycle ...
  • Shaikh, T.A.; Rasool, T.; Lone, F.R., (۲۰۲۲). Towards leveraging the ...
  • Sharma, H.; Kumar, H.; Mangla, S.K., (۲۰۲۳a). Enablers to computer ...
  • Sharma, P.; Bano, A.; Verma, K.; Yadav, M.; Varjani, S.; ...
  • Shokri, A.; Fard, M.S., (۲۰۲۳). Water-energy nexus: Cutting edge water ...
  • Smith, J.; Yeluripati, J.; Smith, P.; Nayak, D.R., (۲۰۲۰). Potential ...
  • Sparrevik, M.; Lindhjem, H.; Andria, V.; Fet, A.M.; Cornelissen, G., ...
  • Starek-Wójcicka, A.; Stoma, M.; Osmólska, E.; Rydzak, L.; Sobczak, P. ...
  • Tedesco, D.; de Almeida Moreira, B.R.; Júnior, M.R.B.; Maeda, M.; ...
  • Tong, H.; Shen, Y.; Zhang, J.; Wang, C.-H.; Ge, T.S.; ...
  • Torkayesh, A.E.; Rajaeifar, M.A.; Rostom, M.; Malmir, B.; Yazdani, M.; ...
  • Trummer, P.; Ammerer, G.; Scherz, M., (۲۰۲۲). Sustainable consumption and ...
  • Tseng, M.L.; Ha, H.M.; Tran, T.P.T.; Bui, T.D.; Chen, C.C.; ...
  • Vasseghian, Y.; Arunkumar, P.; Joo, S.-W.; Gnanasekaran, L.; Kamyab, H.; ...
  • Vu, T.; Vu, D.; Jensen, L.; Sommer, S.; Bruun, S., ...
  • Wahyono, Y.; Hadiyanto, H.; Gheewala, S.H.; Budihardjo, M.A.; Adiansyah, J.; ...
  • Wang, Q.-L.; Li, W.; Gao, X.; Li, S.-J., (۲۰۱۶). Life ...
  • Wang, Y.; Wu, X.; Tong, X.; Li, T.; Wu, F., ...
  • Wu, L.; Elshorbagy, A.; Pande, S.; Zhuo, L., (۲۰۲۱). Trade-offs ...
  • Yadav, P.; Samadder, S.R., (۲۰۱۸). A critical review of the ...
  • Yang, X.; Han, D.; Zhao, Y.; Li, R.; Wu, Y., ...
  • Zeug, W.; Bezama, A.; Thrän, D., (۲۰۲۳). Life cycle sustainability ...
  • Zhu, X.; Labianca, C.; He, M.; Luo, Z.; Wu, C.; ...
  • Zoppi, G.; Tito, E.; Bianco, I.; Pipitone, G.; Pirone, R.; ...
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