Life cycle cost of different pretreatment scenarios to increase biogas production from municipal solid waste in Tehran
الموضوعات :Hossein Heydarian 1 , Roya Mafigholami 2 , Alireza Noorpoor 3 , Hossein Ghanavati 4 , Sanaz Khoramipour 5
1 - Department of Environmental Science and Engineering, West Tehran Branch, Islamic Azad University, Tehran, Iran
2 - Department of Environmental Engineering, West Tehran Branch, Islamic Azad University , Tehran, Iran.
3 - College of environmental Engineering, University of Tehran, Tehran, Iran
4 - Microbial Biotechnology Department, Agricultural Biotechnology Research Institute of Iran (ABRII), Agricultural Research, Extension, and Education Organization (AREEO), Karaj, Iran
5 - Department of Environmental Science and Engineering, West Tehran Branch, Islamic Azad University, Tehran, Iran
الکلمات المفتاحية: waste Management, Municipal solid waste, Biomethane, Life cycle cost,
ملخص المقالة :
Organic wastes constitute a large part of urban solid wastes, which are the main source of environmental problems in waste management, including leachate. A suitable method for organic waste management is to use anaerobic digesters to produce biogas. However, in many cases, the low efficiency of biogas production prevents the use of this method. In this study, three pretreatment methods were used to improve biogas production in an anaerobic digester. The difference of each pretreatment method in terms of biogas production was investigated in four scenarios. Also, the cost-benefit of each scenario was calculated in a financial model based on life cycle cost analysis. The results showed that the yield of methane production without pretreatment was 229 ml/gVS, which increased to 358 ml/gVS using pretreatment methods. The capital costs of the scenario with the highest biogas production were 76% higher than the scenario without pretreatment. In this situation, the income increased up to 61.6%, but the most important impact on the life cycle cost was due to the operating costs, which increased by 140% and 155% in two scenarios of using ozone as part of the pre-treatment. Considering the low effect of using ozone as pretreatment in increasing biogas production compared to other pretreatment, as well as the negative effect of this method on the cost-benefit of the project, thermal and NaOH pretreatment recommended as the best pretreatment for anaerobic digester.
Allesch, A., & Brunner, P. H. (2014). Assessment methods for solid waste management: A literature review. Waste Management & Research, 32(6), 461-473.
Arafat, H. A., Jijakli, K., & Ahsan, A. (2015). Environmental performance and energy recovery potential of five processes for municipal solid waste treatment. Journal of Cleaner Production, 105, 233-240.
Ariunbaatar, J., Panico, A., Esposito, G., Pirozzi, F., & Lens, P. N. (2014). Pretreatment methods to enhance anaerobic digestion of organic solid waste. Applied energy, 123, 143-156.
Burnley, S. J. (2007). A review of municipal solid waste composition in the United Kingdom. Waste management, 27(10), 1274-1285.
Chen, Y. C. (2018). Effects of urbanization on municipal solid waste composition. Waste management, 79, 828-836.
Dasgupta, A., & Chandel, M. K. (2020). Enhancement of biogas production from organic fraction of municipal solid waste using alkali pretreatment. Journal of Material Cycles and Waste Management, 22, 757-767.
Farsani, M. H., Yengejeh, R. J., Mirzahosseini, A. H., Monavari, M., Hassani, A. H., & Mengelizadeh, N. (2022). Effective leachate treatment by a pilot-scale submerged electro-membrane bioreactor. Environmental Science and Pollution Research, 29, 9218–9231.
Fataei, E. (2015). Determining the Best Environmental Suitable Scenario for Municipal Solid Waste Disposal of Ardabil City by Life Cycle Assessment. Indian Journal of Natural Sciences, 5(30), 6833-6846
Gazijahani, F. S., Hosseinzadeh, H., Tagizadeghan, N., & Salehi, J. (2017, 19-20 April 2017). A new point estimate method for stochastic optimal operation of smart distribution systems considering demand response programs. Paper presented at the 2017 Conference on Electrical Power Distribution Networks Conference (EPDC).
Heidari Farsani, M., Jalilzadeh Yengejeh, R., Hajiseyed Mirzahosseini, A., Monavari, M., Hassani, A. H., & Mengelizadeh, N. (2021). Study of the performance of bench-scale electro-membranes bioreactor in leachate treatment. Advances in Environmental Technology, 7(3), 209-220.
Heydariyan, H., Mafigholami, R., Noorpoor, A., Ghanavati, H., & Khoramipour, S. (2022). Simultaneous study of the interaction effect of chemical and hydrothermal pretreatment on the yield of methane produced from municipal waste. Journal of Environmental Science and Health, Part A, 57(6), 494-509.
Hosseinzadeh, H., Jabbari, A., & Razani, A. (2013). Fixed-Point Theorems and Common Fixed-Point Theorems on Spaces Equipped With Vector-Valued Metrics. Ukrainian Mathematical Journal, 65(5), 814-822. doi:10.1007/s11253-013-0819-1
Hsu, E. (2021). Cost-benefit analysis for recycling of agricultural wastes in Taiwan. Waste Management, 120, 424-432.
Khalid, A., Arshad, M., Anjum, M., Mahmood, T., & Dawson, L. (2011). The anaerobic digestion of solid organic waste. Waste management, 31(8), 1737-1744.
Li, J., Xiao, F., Zhang, L., & Amirkhanian, S. N. (2019). Life cycle assessment and life cycle cost analysis of recycled solid waste materials in highway pavement: A review. Journal of Cleaner Production, 233, 1182-1206.
Mahmoodi, P., Karimi, K., & Taherzadeh, M. J. (2018). Hydrothermal processing as pretreatment for efficient production of ethanol and biogas from municipal solid waste. Bioresource Technology, 261, 166-175.
Masoumi, A., & Yengejeh, R. J. (2020). Study of chemical wastes in the Iranian petroleum industry and feasibility of hazardous waste disposal. Journal of Environmental Health Science and Engineering, 18(2), 1037-1044.
Metin, E., Eröztürk, A., & Neyim, C. (2003). Solid waste management practices and review of recovery and recycling operations in Turkey. Waste management, 23(5), 425-432.
Mohammadi, M., & Fataei, E. (2019). Comparative life cycle assessment of municipal wastewater treatment systems: lagoon and activated sludge. Caspian Journal of Environmental Sciences, 17(4), 327-336.
Mohammed, M., Egyir, I. S., Donkor, A. K., Amoah, P., Nyarko, S., Boateng, K. K., & Ziwu, C. (2017). Feasibility study for biogas integration into waste treatment plants in Ghana. Egyptian Journal of Petroleum, 26(3), 695-703.
Mohsenirad, B., & Fataei, E. (2021). Life Cycle Assessment of Ball Bladder Production With and Without Recycled Rubbers. Journal of Advances in Environmental Health Research, 9(3), 183-190.
Morrissey, A. J., & Browne, J. (2004). Waste management models and their application to sustainable waste management. Waste management, 24(3), 297-308.
Parsajou, H., & Fataei, E. (2019). Environmental assessment of the life cycle of sludge treatment systems of ardabil and khalkhal wastewater treatment plants. Amirkabir Journal of Civil Engineering, 51(2), 243-256.
Rasapoor, M., Ajabshirchi, Y., Adl, M., Abdi, R., & Gharibi, A. (2016). The effect of ultrasonic pretreatment on biogas generation yield from organic fraction of municipal solid waste under medium solids concentration circumstance. Energy Conversion and Management, 119, 444-452.
Saad, A. ., Ali, E. ., El-Didamony, M. ., & Azam, M. . (2023). The kinetics of strawberry quality changes during the shelf-life . Current Research in Agricultural Sciences, 10(1), 11–21. https://doi.org/10.18488/cras.v10i1.3304.
Sadeghi, B., Shafaghatian, N., Alayi, R., El Haj Assad, M., Zishan, F., & Hosseinzadeh, H. (2022). Optimization of synchronized frequency and voltage control for a distributed generation system using the Black Widow Optimization algorithm. Clean Energy, 6(1), 105-118.
Salem, Z., Hamouri, K., Djemaa, R., & Allia, K. (2008). Evaluation of landfill leachate pollution and treatment. Desalination, 220(1-3), 108-114.
Sharma, B. K., & Chandel, M. K. (2021). Life cycle cost analysis of municipal solid waste management scenarios for Mumbai, India. Waste Management, 124, 293-302.
Torkashvand, J., Emamjomeh, M. M., Gholami, M., & Farzadkia, M. (2021). Analysis of cost–benefit in life-cycle of plastic solid waste: combining waste flow analysis and life cycle cost as a decision support tool to the selection of optimum scenario. Environment, Development and Sustainability, 1-19.
Troschinetz, A. M., & Mihelcic, J. R. (2009). Sustainable recycling of municipal solid waste in developing countries. Waste management, 29(2), 915-923.
Varjani, S., Sivashanmugam, P., Tyagi, V. K., & Gunasekaran, M. (2022). Breakthrough in hydrolysis of waste biomass by physico-chemical pretreatment processes for efficient anaerobic digestion. Chemosphere, 294, 133617.
Wijekoon, P., Koliyabandara, P. A., Cooray, A. T., Lam, S. S., Athapattu, B. C., & Vithanage, M. (2022). Progress and prospects in mitigation of landfill leachate pollution: Risk, pollution potential, treatment and challenges. Journal of hazardous materials, 421, 126627.
Zheng, R., Zhao, S., Khayyatnezhad, M. & Shah, S. A. 2021. Comparative study and genetic diversity in Salvia (Lamiaceae) using RAPD Molecular Markers. Caryologia, 74, 45-56.
Zhu, K., Liu, L., Li, S., Li, B., Khayatnezhad, M. & Shakoor, A. 2021. Morphological method and molecular marker determine genetic diversity and population structure in Allochrusa. Caryologia, 74, 121-130.
Zulkepli, N. E., Muis, Z. A., Mahmood, N. A. N., Hashim, H., & Ho, W. S. (2017). Cost benefit analysis of composting and anaerobic digestion in a community: a review. Chemical Engineering Transactions, 56, 1777-1782.