Assessing the Environmental Impacts of Municipal Solid Waste Incineration Power Plant Construction in Rasht County based on the Sustainable Development Approach

Document Type : Research Paper

Authors

1 Academic Center for Education, Culture and Research (ACECR), Environmental Research Institute, Guilan, Guilan, Iran. Academic Center for Education, Culture and Research (ACECR), Environmental Research Institute, Guilan, Guilan, Iran.

2 Academic Center for Education, Culture and Research (ACECR), Environmental Research Institute, Guilan, Guilan, Iran.

3 Department of Environmental Sciences, Faculty of Natural Resources, University of Guilan, Guilan, Iran.

4 Ph.D Graduated of Environment, Environmental Assessment and Spatial planning, Faculty of Natural Resources, University of Tehran, Tehran, Iran.

Abstract

Municipal solid waste incineration (MSWI) power plants often have negative, positive and environmental effects. Based on the sustainable development approach, assessing the environmental impact is one of the requirements for the construction of MSWI power plants which can lead to more use of its benefits, lower costs, and frustrate community discontent. In this research, separating the construction and operation phases, the desired and undesirable effects of municipal solid waste incineration power plant in the environment are predicted. Then, the studies on the environmental effects of MSWI based on two selected areas in Rasht County (Lakan and Pasiyekhan districts) were performed using the Rapid Impact Assessment Matrix (RIAM). The findings revealed that the first priority is allocated Lakan district with a score of -142 in the construction phase and a score of -340 at the operation phase. Pasiyekhan district with a score of -146 in the construction phase and a score of   -496 in the operation phase is not a priority. Based on the results, the construction of MSWI power plant in Rasht decreases the need for landfill which can not only have a positive effect on improving the social conditions and the satisfaction of local communities but also prevent Saravan environmental degradation process in Rasht County. Comparing the negative effects of the project implementation and activities indicate that the most negative effect in both phases is related to the physical-chemical environment. This impacts are caused by the severity of construction activities emissions of gases, dioxin and furans, unpleasant smell and MSWI ash. The interactions of environmental parameters affect the intensity and radius of their propagation. Therefore, if environmental management practices are applied, incineration can be a good way to manage waste.
Extended Abstract
1-Introduction
 Nowadays, the amount of waste has increased due to population growth, rapid urbanization and changes in patterns of consumption. In the solid waste management system, there are various options for managing waste according to the amount of waste produced and its composition.
The waste incineration process aimed at reducing waste landfilling and energy recovery is one of the most common methods for waste disposal in some countries. The reasons such as the value of habitat, the lack of suitable lands in terms of meeting the environmental requirements, high level of groundwater and short distances of cities from each other has made the northern provinces of Iran have lots of limitation for sanitary landfilling. One of the proposed waste disposal options is the implementation and operation of the Municipal solid waste incineration (MSWI) power plants. MSWI power plants often have environmental impacts and potential mismatches. Impact assessment of MSWI power plant based on a sustainable development approach, as one of the requirements for the construction of MSWI power plant, will lead to more advantages including reducing costs and eliminating community dissatisfaction. The purpose of this research is to provide an optimal option for managers and planners to construct MSWI power plants in Rasht, in order to minimize the environmental impacts of this development.
2-Materials and Methods
This descriptive-analytic study is based on expert opinions, field and library studies. In this regard, the environmental impact assessment of MSWI power plant in Rasht has been carried out for two proposed options in Rasht (Lakan and Pasiyekhan districts) using Rapid Impact Assessment Matrix (RIAM). At first, the environmental status of the study area is described. The negative and positive impacts of MSWI power plant will be predicted during construction and operation. Then, they have been given a score by separating the environments (physical, chemical, biological, biological, social, cultural, economic, and technical). Being able to convert qualitative features to quantitative ones, RIAM method can evaluate and compares the options in a short time and illustrates the results in charts and tables.
3-Results and Discussion
 Based on the results of this study, the first priority is assigned to Lakan district with a score of -142 in the construction phase and a score of -340 at the operation phase, and the second priority to Pasiyekhan district with a score of -146 in the construction phase and a score of - 496 in the operation phase. Comparison of the effects shows that the most negative effect in both phases is related to the physical-chemical components. Pasiyekhan District has more negative effects than Lakan District due to some reasons such as the remoteness of the city of Rasht and the depth of underground water.
The proper utilization of MSWI power plants due to the reduction of waste landfill and energy recovery improves environmental conditions and the quality of life satisfying people in the indirect district of the present study. In addition, the results indicate that the activities of the construction and operation of MSWI power plants have adverse environmental effects on air quality in the area of deployment, soil, plants, and water resources. The major environmental hazards come from this development including the emissions of gases, dioxins, and furans, unpleasant smell and ash which are intensified, in term of parameters the intensity and radius, by  the Interactions of environmental
4-Conclusion
 Regarding the environmental characteristics of Rasht County, and the findings from the evaluation of the effects of the rapid impact matrix, there are slight differences in the degree of the influence of some parameters in the studied areas. Therefore, it is imperative that management and planners in the field of waste management take the necessary precautions to comply with the required laws and policies. Therefore, compliance with environmental laws and control measures, such as the construction of airborne pollution control systems (Acid scrubbers, Bag filters, Activated carbon systems, etc.), can greatly reduce the severity and risk of hazard occurrence. Designing corrective actions through engineering operations and management plans are effective in reducing the adverse environmental impacts at each stage. If, from the outset, by doing EIA, environmental considerations are taken into account in the development plans by doing EIA and making an integration between the environmental policies and development plans, ay harmful effects will be prevented. Also, in order to understand the environmental performance of waste disposal methods better, it is suggested not only to use other quantitative-maker tools of environmental impact minimization but also to apply far more areas beyond the local scale of projects such as stain methods and environmental risk assessment in future studies.

Keywords


آقاجانی، میترا؛ مجیدی، طاهره؛ فاضلی، ملیحه سادات؛ مهشادنیا، فاطمه؛ آقابابازاده، نوشین؛ رضایی، علیرضا؛ محمودی، معصومه؛ محقق، بهرام؛ حسنلو، عذرا؛ شمس‌پرور، زینب؛ رستگارپور، حامد (1395). نقشة راه علوم زمین و معدن استانگیلان. وزارت صنعت، معدن و تجارت سازمان زمین‌شناسی و اکتشافات معدنی کشور.
احمدی گیوی، امین؛ خان­محمدی، مهرنوش (۱۳۹۴). ارزیابی اثرات زیست‌محیطی احداث کارخانه زباله‌سوز تهران. مجموعه‌مقالات دومین همایش ملّی تغییرات اقلیم و مهندسی توسعة پایدار کشاورزی و منابع طبیعی. تهران: گروه پژوهشی بوعلی.CCASD02_023.
ایمانی، بهرام؛ یارمحمدی، کلثوم؛ اسدپور، زهره (1398). ارزیابی اثرات زیست‌محیطی کارخانة سیمان یاسوج با استفاده از ماتریس (RIAM) و لئوپولد ایرانی (مطالعة موردی: روستای تنگاری شهر یاسوج). مجلّه مخاطرات محیط طبیعی، 8 (21)، 247-266.
خاکپور، امیر؛ سروش، مژده؛ خزاعی، نوشین؛ زاهدی، علی (۱۳۹۱). ارزیابی اثرات زیست‌محیطی نیروگاه زباله‌سوز اردبیل. مجموعه­مقالات ششمین همایش ملّی مهندسی محیط‌زیست. تهران: دانشگاه تهران، دانشکدة محیط‌زیست.
شفیعی ده‌آباد، علیرضا (1394). زباله‌سوزیواستحصالانرژیاززبالةجامدشهری. مرکز مطالعات و برنامه‌ریزی شهر تهران. معاونت مطالعات و برنامه‌ریزی امور زیرساخت و طرح جامع. گزارش 332.
عمرانی، قاسمعلی؛ عتابی، فریده؛ برزگر، خسرو؛ رحیمی، سجاد (۱۳۹۱). بررسی امکان‌سنجی زیست‌محیطی، فنّی و اقتصادی احداث نیروگاه زباله‌سوز در شهر آمل. ششمین همایش ملّی مهندسی محیط‌زیست، تهران: دانشگاه تهران، دانشکدة محیط‌زیست.
کماسی، مهدی؛ بیرانوند، بهرنگ (1398). ارزیابی اثرات زیست‌محیطی سد ایوشان در مرحله ساخت و بهره­برداری با استفاده از روش ماتریس آیکلد و ماتریس ارزیابی سریع. مطالعاتعلوممحیط‌زیست، 4 (2)، 1427- 1442.
منزوی، غزل؛ سلمان ماهینی، عبدالرسول؛ یونسی، حبیب‌الله (1394). ارزیابی اثرات گزینه‌های مکانی پیشنهادی دفن زباله شهر زنجان با استفاده از روش ماتریس ارزیابی اثرات سریع ارتقاءیافته، فصلنامه علوم و تکنولوژی محیط‌زیست، 17 (3)، 127-146.
منوری، مسعود (1381). الگوی ارزیابی اثرات زیست‌محیطی زباله­سوزهای شهری. [به­سفارش] معاونت آموزش و پژوهش سازمان بازیافت و تبدیل موادّ شهرداری تهران، تهران: سینه‌سرخ.
References
Aghajani, M., Majidi, T., Fazeli, M., Mahshadniya, F., Aghababazadeh, N., Rezaei, A., Mahmoodi, M., Mohaghegh, B., Hasanloo, O., Shamsparvar, Z. & Rastgarpoor, H. (2016). Guilan province land and mining science road map. Ministry of Industry, Mine and Commerce Geological Survey of Iran. (In Persian(
Ahmadi givi, A. & Khanmohammadi, M. (2014). Environment impact assessment of solid waste incineration power plant construction in Tehran. The 2th National conference on climet change and sustainable agriculture. Tehran: Boali Research Group. (In Persian(
Chang, N. B., Chang, Y. H. & Chen, H. W. (2009). Fair fund distribution for a municipal incinerator using GIS-based fuzzy analytic hierarchy process. Journal of Environmental Management90 (1), 441-454. https://doi.org/10.1016/j.jenvman.2007.11.003
Daryabeigi Zand, A., Vaeziheir, A. & Hoveidi, H. (2019). Comparative Evaluation of Unmitigated Options for Solid Waste Transfer Stations in North East of Tehran Using Rapid Impact Assessment Matrix and Iranian Leopold Matrix. Environmental Energy and Economic Research3 (3), 189-202. https://dx.doi.org/10.22097/eeer.2019.170979.1069
De Titto, E. & Savino, A. (2019). Environmental and health risks related to waste incineration. Waste Management & Research37 (10), 976-986.
El-Naqa, A. (2005). Environmental impact assessment using rapid impact assessment matrix (RIAM) for Russeifa landfill, Jordan. Environmental Geology, 47 (5), 632-639. https://doi. org/10.1007/s00254-004-1188-8
Feyzi, S., Khanmohammadi, M., Abedinzadeh, N. & Aalipour, M. (2019). Multi-criteria decision analysis FANP based on GIS for siting municipal solid waste incineration power plant in the north of Iran. Sustainable Cities and Society47, 101513. https://doi.org/10.1016/j.scs. 2019.101513
Havukainen, J., Zhan, M., Dong, J., Liikanen, M., Deviatkin, I., Li, X. & Horttanainen, M. (2017). Environmental impact assessment of municipal solid waste management incorporating mechanical treatment of waste and incineration in Hangzhou, China. Journal of cleaner production141, 453-461. https://doi.org/10.1016/j.jclepro.2016.09.146
Hoveidi, H., Pari, M. A., HosseinVahidi, M. P. & Koulaeian, T. (2013). Industrial waste management with application of RIAM environmental assessment: a case study on toos industrial state, Mashhad. Energy Environ4 (2), 142-149.
Hu, H., Li, X., Nguyen, A. & Kavan, P. (2015). A critical evaluation of waste incineration plants in Wuhan (China) based on site selection, environmental influence, public health and public participation. International journal of environmental research and public health12 (7), 7593-7614.
Imani, B., Yarmohammadi, K. & Asadpoor, Z. (2019). Environmental Impact Assessment of Yasuj Cement Factory Using Iranian RIAM and Leopold Matrix (Case Study: Tangary Village of Yasouj City). Journal of Natural Environmental Hazards, 8 (21), 247-266. (In Persian(
Karim, M. A. & Corazzini, B. (2019). The current status of MSW disposal and energy production: a brief review of waste incineration. MOJ Eco Environ Sci4 (1), 34-37.
Karimpour-Fard, M. (2019). Rehabilitation of Saravan dumpsite in Rasht, Iran: geotechnical characterization of municipal solid waste. International Journal of Environmental Science and Technology16 (8), 4419-4436. https://doi.org/10.1007/s13762-018-1847-z
Khakpour, A., Sorush, M., Khazaee, N. & Zahedi, A. (2012). Environment impact assessment of solid waste incineration power plant construction in Ardebil. The 6th national conference & exhibition on environmental engineering. Tehran. CEE06. (In Persian(
komasi, M. & Beiranvand, B. (2019). Environmental Impact Assessment of the Eyvashan earth dam in the construction and exploitation phase using the ICOLD matrix and rapid impact assessment matrix (RIAM). Journal of Environmental Science Studies, 4 (2), 1427-1442. (In Persian)
Luo, H., Cheng, Y., He, D. & Yang, E. H. (2019). Review of leaching behavior of municipal solid waste incineration (MSWI) ash. Science of the total environment. https://doi.org/10.1016/ j.scitotenv.2019.03.004
Mirzazadeh, F., Hadinejad, F. & Roshan, N. A. (2018). Investigating utility level of waste disposal methods using multicriteria decision-making techniques (case study: Mazandaran-Iran). Journal of Material Cycles and Waste Management, 20 (1), 505-515. https://doi.org/ 10.1007/s10163-017-0611-7
Monavari, M. (2002). Environmental impact assessment guideline for municipal incinerators. Tehran: Sinehsorhk. (In Persian)
Monzavi, G., Salmanmahiny, A. & Yunesi, H. (2015). Impact Assessment of Candidate Landfill Sites for Zanjan City Using Improved RIAM Method. Journal of Environmental Science and Technology, 17 (3), 127-146. (In Persian)
Omrani, G., aatabi, F., Barzegar, Kh. & Rahimi., S. (2012). Environmental, Technical and Economic Feasibility Study of solid waste incineration power plant construction in Amol. The 6th national conference & exhibition on environmental engineering. Tehran. CEE06. (In Persian)
Pastakia, C. M. & Jensen, A. (1998). The rapid impact assessment matrix (RIAM) for EIA. Environmental Impact Assessment Review, 18 (5), 461-482. https://doi.org/10.1016/ S0195-9255(98)00018-3
Sarupria, M., Manjare, S. D. & Girap, M. (2019). Environmental impact assessment studies for mining area in Goa, India, using the new approach. Environmental monitoring and assessment191 (1), 18. https://doi.org/10.1007/s10661-018-7135-z
Shafiee Dehabad, A. (2014). Waste incineration and energy extraction from municipal solid waste. Tehran Center for Studies and Planning. Infrastructure Studies and Master Plan. Report Number (332). (In Persian(
Shariatmadari, N., Lasaki, B. A., Eshghinezhad, H. & Alidoust, P. (2018). Effects of Landfill Leachate on Mechanical Behaviour of Adjacent Soil: a Case Study of Saravan Landfill, Rasht, Iran. International Journal of Civil Engineering16 (10), 1503-1513. https://doi.org/ 10.1007/s40999-018-0311-2
Taheri, M., Gholamalifard, M., Ghazizade, M. J. & Rahimoghli, S. (2014). Environmental impact assessment of municipal solid waste disposal site in Tabriz, Iran using rapid impact assessment matrix. Impact Assessment and Project Appraisal32 (2), 162-169. https://doi.org/ 10.1080/14615517.2014.896082
Valizadeh, S. & Hakimian, H. (2019). Evaluation of waste management options using rapid impact assessment matrix and Iranian Leopold matrix in Birjand, Iran. International Journal of Environmental Science and Technology16 (7), 3337-3354. https://doi.org/10.1007/s13762-018-1713-z
Waste Management in China: Issues and Recommendation )2005(.Urban Development Working Papers East Asia Infrastructure Department World Bank.
Wey, W. M. (2005). An integrated expert system/operations research approach for the optimization of waste incinerator siting problems. Knowledge-Based Systems18 (6), 267-278. https://doi. org/10.1016/j.knosys.2005.03.004
Wu, Y., Chen, K., Zeng, B., Yang, M. & Geng, S. (2016). Cloud-based decision framework for waste-to-energy plant site selection–A case study from China. Waste management48, 593-603. https://doi.org/10.1016/j.wasman.2015.11.030
Yin, K., Chan, W. P., Dou, X., Ren, F. & Chang, V. W. C. (2018). Cr, Cu, Hg and Ni release from incineration bottom ash during utilization in land reclamation–based on lab-scale batch and column leaching experiments and a modeling study. Chemosphere197, 741-748. https://doi. org/10.1016/j.chemosphere.2018.01.107.