Estimation of methane emission from the risers of urban gas network in the metropolis of Mashhad and evaluation of its economic and environmental effects

  • سال انتشار: 1401
  • محل انتشار: مجله تحلیل فضایی مخاطرات محیطی، دوره: 9، شماره: 3
  • کد COI اختصاصی: JR_JSAEH-9-3_006
  • زبان مقاله: انگلیسی
  • تعداد مشاهده: 133
دانلود فایل این مقاله

نویسندگان

حمیدرضا پرستش

گروه محیط زیست، گرایش آلودگی هوا، دانشکده محیط زیست، دانشگاه تهران، پردیس بین الملل کیش

خسرو اشرفی

دانشکده محیط زیست، دانشگاه تهران

محمدعلی زاهد

دانشکده علوم زیستی، دانشگاه خوارزمی، تهران

چکیده

Energy Information Administration (EIA). ۲۰۲۲.  Natural gas explained. https://www.eia.gov/energyexplained/natural-gas/use-of-natural-gas.php#:~:text=The%۲۰United%۲۰States%۲۰used%۲۰about,of%۲۰U.S.%۲۰total%۲۰energy%۲۰consumption Energy Information Administration (EIA). ۲۰۲۲. Natural Gas Consumption by End Use. https://www.eia.gov/dnav/ng/ng_cons_sum_dcu_nus_a.html IEA. ۲۰۲۰. Gas ۲۰۲۰. https://www.iea.org/reports/gas-۲۰۲۰/۲۰۲۱-۲۰۲۵-rebound-and-beyond Cinq-Mars, TJ.; T. Kropotova, M. Morgunova, A. Tallipova, and S. Yunusov. ۲۰۲۰. Leak Detection and Repair in the Russian Federation and the United States: Possibilities for Convergence. Stanford US-Russia Forum Journal. Weller, ZD.; DK. Yang, and JC. von Fischer. ۲۰۱۹. An open source algorithm to detect natural gas leaks from mobile methane survey data. PLoS One,۱۴(۲):e۰۲۱۲۲۸۷. SHAHEDI, AS.; MJ. ASSARIAN, O. KALATPOUR, E. ZAREI, and I. MOHAMMADFAM. ۲۰۱۶. Evaluation of consequence modeling of fire on methane storage tanks in a gas refinery. Costello, KW. ۲۰۱۴. Lost and unaccounted-for gas: Challenges for public utility regulators. Util Policy,۲۹:۱۷–۲۴. Arpino, F.; M. Dell’Isola, G. Ficco, and P. Vigo. ۲۰۱۴. Unaccounted for gas in natural gas transmission networks: Prediction model and analysis of the solutions. Journal of Natural Gas Science and Engineering,۱۷:۵۸–۷۰. Weller, Z.D.; SP. Hamburg, and JC. von Fischer. ۲۰۲۰. A national estimate of methane leakage from pipeline mains in natural gas local distribution systems. Environmental science & technology, ۵۴(۱۴):۸۹۵۸-۸۹۶۷. Meland, E.; NF. Thornhill, E. Lunde, and M. Rasmussen. ۲۰۱۲. Quantification of valve leakage rates. AIChE journal, ۵۸(۴):۱۱۸۱-۱۱۹۳. Wagner, H. ۲۰۰۴. Innovative techniques to deal with leaking valves. Technical Papers of ISA, ۴۵۴:۱۰۵-۱۱۷. Kaewwaewnoi, W.; A. Prateepasen, and P. Kaewtrakulpong. ۲۰۱۰. Investigation of the relationship between internal fluid leakage through a valve and the acoustic emission generated from the leakage. Measurement, ۴۳(۲):۲۷۴-۲۸۲. Zhu, SB.; ZL. Li, SM. Zhang, and HF. Zhang. ۲۰۱۹. Deep belief network-based internal valve leakage rate prediction approach. Measurement, ۱۳۳:۱۸۲-۱۹۲. Panahi, S.; A. Karimi, and R. Pourbabaki. ۲۰۲۰. Consequence modeling and analysis of explosion and fire hazards caused by methane emissions in a refinery in cold and hot seasons. Journal of Health in the Field. Plant, G.; EA. Kort, C. Floerchinger, A. Gvakharia, I. Vimont, and C. Sweeney. ۲۰۱۹. Large fugitive methane emissions from urban centers along the US East Coast. Geophysical research letters, ۴۶(۱۴):۸۵۰۰–۸۵۰۷. Akhondian, M.; S. MirHasanNia. ۲۰۱۷. Biodiversity of microalgae, a potential capacity in biological and environmental technologies. Journal of Human Environment and Health Promotion,۴۱:۳۹–۷۰. Defratyka, SM.; JD. Paris, C. Yver-Kwok, JM. Fernandez, P. Korben, and P. Bousquet. ۲۰۲۱. Mapping urban methane sources in Paris, France. Environmental Science & Technology,۵۵(۱۳):۸۵۸۳-۸۵۹۱. Mohammadi Ashnani, M.; T. Miremadi, A. Danekar, M. Makhdoom Farkhonde, and V. Majed. ۲۰۲۰. The Policies of Learning Economy to Achieve Sustainable Development. Journal of Environmental Science and Technology,۲۲(۲):۲۵۳–۲۷۴. Gioli, B.; P. Toscano, E. Lugato, A. Matese, F. Miglietta, A. Zaldei, and FP. Vaccari. ۲۰۱۲. Methane and carbon dioxide fluxes and source partitioning in urban areas: The case study of Florence, Italy. Environmental Pollution,۱۶۴:۱۲۵-۱۳۱. Moriizumi, J.; K. Nagamine, T. Iida, and Y. Ikebe. ۱۹۹۸. Carbon isotopic analysis of atmospheric methane in urban and suburban areas: fossil and non-fossil methane from local sources. Atmospheric Environment, ۳۲(۱۷):۲۹۴۷-۲۹۵۵. Zazzeri, G.; D. Lowry, RE. Fisher, JL. France, M. Lanoisellé, CSB. Grimmond, and EG. Nisbet. ۲۰۱۷. Evaluating methane inventories by isotopic analysis in the London region. Scientific reports, ۷(۱):۱-۱۳. Wever, JL.; GJL. Van Orizande, WB. Rademaker, and GJ. Van Schagen. ۲۰۰۲. Applicability of the Hi-Flow sampler in reducing methane emissions from a technical/economical point of view. Feasibility study; Toepasbaarheid Hi-Flow sampler bij reductie methaanemissie op technisch/economische gronden. Haalbaarheidsstudie. Bacharach INC. ۲۰۱۵. Hi flowR sampler for natural gas leak rate measurement. Connolly, JI.; RA. Robinson, and TD. Gardiner. ۲۰۱۹. Assessment of the Bacharach Hi Flow® Sampler characteristics and potential failure modes when measuring methane emissions. Measurement, ۱۴۵:۲۲۶–۲۳۳. Khorasan Razavi Gas Company. ۲۰۱۹. Determining the statistical population and sample size of field measurements to estimate normal emission inventory Greenhouse gases in the gas network of Khorasan Razavi province. Estimation of methane gas leakage from Mashhad urban landfills and evaluation of economic and environmental effects Abstract This study, which was conducted in ۸ urban gas areas of Mashhad; At first, descriptive statistics of the state of Mashhad urban gas regulators and different leakage modes were presented; In order to analyze the collected data and investigate the causes of leakage, the relationship between ۵ variables and the amount of leakage from gas regulators was tested with the Statistical Package for the Social Sciences (SPSS) V.۲۶ software; These ۵ variables are: regulator equipment/connections, regulator operation age, regulator service type (domestic, industrial and commercial), urban area and different seasons of the year. The results of the analysis showed that there was a significant difference between the type of equipment/connections and leakage. (P-Value = ۰.۰۰۰۱). Also, a significant difference was observed among other variables of the research (the operation age of the regulator, the type of regulator service (domestic, industrial and commercial), the urban area and different seasons of the year) with the leakage rate (P-Value=۰.۰۰۰۱); The pressure drop due to the greater demand of gas consumption in the winter season has reduced the amount of leakage compared to other seasons; The influence of the age of distribution network equipment/connections due to wear and tear and longer life will aggravate the amount of methane gas leakage; Also, the amount of leakage in commercial places had a significant difference with other types of uses; Being in an urban area has also increased the amount of methane gas leakage compared to other areas; The type and quality of equipment and connections as the main and influential factor in methane gas leakage should be considered by managers and officials in this field of work. Keyword: Methane, Riser, Urban area, Environmental effects, Economy Effects, Gas, Emission

کلیدواژه ها

Methane, Riser, Urban area, Environmental effects, Economy Effects, Gas, Emission, متان, رایزر, منطقه شهری, تاثیرات محیطی, تاثیرات اقتصادی, گاز, انتشار

اطلاعات بیشتر در مورد COI

COI مخفف عبارت CIVILICA Object Identifier به معنی شناسه سیویلیکا برای اسناد است. COI کدی است که مطابق محل انتشار، به مقالات کنفرانسها و ژورنالهای داخل کشور به هنگام نمایه سازی بر روی پایگاه استنادی سیویلیکا اختصاص می یابد.

کد COI به مفهوم کد ملی اسناد نمایه شده در سیویلیکا است و کدی یکتا و ثابت است و به همین دلیل همواره قابلیت استناد و پیگیری دارد.