Carbon Monoxide (CO) Analysis in Transportation on The South Ring Road
Abstract
National highways are one of the sources of air pollution. Activities on the highway include organizational, transportation, commercial, and industrial sectors. These activities change air quality. Traffic density results in an increase in air pollution due to vehicle activity in densely populated areas. National roads tend to have traffic crust dominated by motorcycles, light vehicles and heavy vehicles that have the potential to increase carbon monoxide (CO) concentrations. The South Ring Road is one of the national roads in the province and city of Jambi. The number of vehicles passing on the road increases the CO value. The CO value is measured using a Carbon monoxide Meter CO Meter, measurements are carried out for three days, in the morning, afternoon and evening the highest CO value on Tuesday during the day is 8991 µg / Nm3, Thursday afternoon 8991 µg / Nm3 Saturday afternoon 8991 µg / Nm3 according to Indonesian government regulation number 22 of 2021 concerning the implementation of environmental protection and management. The CO is approaching the quality standard for the need for road widening, planting plants in the road median and planting trees on the crossroads, so that it can reduce air pollution on the crossroads.
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References
Adame, J. A., Puentedura, O., Gómez, L., Condorí, L., Carbajal, G., Barlasina, M. E., & Yela, M. (2021). Patterns and trends of ozone and carbon monoxide at Ushuaia (Argentina) observatory. Atmospheric Research, 255: 105551. DOI: https://doi.org/10.1016/j.atmosres.2021.105551
Bakibillah, A. S. M., Kamal, M. A. S., Tan, C. P., Hayakawa, T., & Imura, J. I. (2024). Optimal eco-driving scheme for reducing energy consumption and carbon emissions on curved roads. Heliyon, 10(1): e23586. DOI: https://doi.org/10.1016/j.heliyon.2023.e23586
Campagnolo, D., Borghi, F., Fanti, G., Keller, M., Rovelli, S., Spinazzè, A., Cattaneo, A., & Cavallo, D. M. (2023). Factors affecting in-vehicle exposure to traffic-related air pollutants: A review. Atmospheric environment, 295: 119560. DOI: https://doi.org/10.1016/j.atmosenv.2022.119560
Chen, K., Breitner, S., Wolf, K., Stafoggia, M., Sera, F., Vicedo-Cabrera, A. M., Guo, Y., Tong, S., Lavigne, E., Íñiguez, C., Forsberg, B., Åström, C., Ragettli, MS, Guo, YL, Chen, B., Li, S., Milojevic, A., Zanobetti, A., Schwartz, J., Bell, M.L., Gasparrini, & Schneider, A. (2021). Ambient carbon monoxide and daily mortality: a global time-series study in 337 cities. The Lancet Planetary Health, 5(4): e191-e199. DOI: https://doi.org/10.1016/S2542-5196(21)00026-7
Damara, D. Y., Wardhana, I. W., & Sutrisno, E. (2017). Analisis dampak kualitas udara karbon monoksida (CO) di sekitar Jl. Pemuda akibat kegiatan car free day menggunakan program caline4 dan surfer (studi kasus: Kota Semarang). Jurnal Teknik Lingkungan, 6(1): 1-14.
Dey, S., & Dhal, G. C. (2020). Controlling carbon monoxide emissions from automobile vehicle exhaust using copper oxide catalysts in a catalytic converter. Materials Today Chemistry, 17: 100282. DOI: https://doi.org/10.1016/j.mtchem.2020.100282
Dzhambov, A. M., Dimitrova, V., Germanova, N., Burov, A., Brezov, D., Hlebarov, I., & Dimitrova, R. (2023). Joint associations and pathways from greenspace, traffic-related air pollution, and noise to poor self-rated general health: A population-based study in Sofia, Bulgaria. Environmental Research, 231: 116087. DOI: https://doi.org/10.1016/j.envres.2023.116087
Fadli, M., Herawati, P., Hadrah, Adriansyah, E., Sufra, R., & Syaiful, M. (2022). Analysis of Carbon Monoxide (CO) Quality Due to the Construction of the Miftahun Najah Islamic Boarding School. International Journal of Research in Vocational Studies (IJRVOCAS), 2(2): 36–40. DOI: https://doi.org/10.53893/ijrvocas.v2i2.101
Fermi, M. I., Sasmita, A., Elystia, S., & Alfarobi, M. H. (2021). Analisis Dispersi Karbonmonoksida (CO) dari Transportasi di Jalan HR. Soebrantas Pekanbaru dengan Model Gaussian Line Source. Rekayasa Hijau: Jurnal Teknologi Ramah Lingkungan, 5(3): 218-227. DOI: https://doi.org/10.26760/jrh.v5i3.218-227
Gusrianti, D., & Tarigan, A. P. M. (2017). Analisis Sebaran Karbon Monoksida dari Sumber Transportasi dari Jalan Sisingamangaraja dengan Metode Finite Length Line Source Berbasis Sistem Informasi Geografis. Dampak, 14(1): 41-51. DOI: https://doi.org/10.25077/dampak.14.1.41-51.2017
Joshua, O. H., Asubiojo, O. I., Adebiyi, F. M., Oluwole, A. F., Fasuyan, A. S., & Lewis, G. A. (2023). Ambient air quality measurements along high-and low-density traffic routes in southwestern Nigeria. Aerosol Science and Engineering, 7(4): 427-440. DOI: https://doi.org/10.1007/s41810-023-00197-2
Kwon, D., Paul, K. C., Yu, Y., Zhang, K., Folle, A. D., Wu, J., Bronstein, J.M., & Ritz, B. (2024). Traffic-related air pollution and Parkinson's disease in central California. Environmental research, 240, 117434. DOI: https://doi.org/10.1016/j.envres.2023.117434
Li, B., Cao, R., He, H. D., Peng, Z. R., Qin, H., & Qin, Q. (2022). Three-dimensional diffusion patterns of traffic-related air pollutants on the roadside based on unmanned aerial vehicles monitoring. Building and Environment, 219: 109159. DOI: https://doi.org/10.1016/j.buildenv.2022.109159
López-de Abajo, L., Alberti, M. G., & Gálvez, J. C. (2024). Pollutant concentration prediction from traffic data analysis for concrete durability studies in Madrid Calle 30 urban tunnels. Tunnelling and Underground Space Technology, 144: 105477. DOI: https://doi.org/10.1016/j.tust.2023.105477
Maharani, S., & Aryanta, W. R. (2023). Dampak buruk polusi udara bagi kesehatan dan cara meminimalkan risikonya. Jurnal Ecocentrism, 3(2): 47-58 DOI: https://doi.org/10.36733/jeco.v3i2.7035
Payus, C. M., Thevan, A. V., & Sentian, J. (2019). Impact of school traffic on outdoor carbon monoxide levels. City and Environment Interactions, 4: 100032. DOI: https://doi.org/10.1016/j.cacint.2020.100032
Ramadan, I., El Toukhy, M., Hussien, K. Z., Tosti, F., & Shaaban, I. G. (2022). Effect of road, environment, driver, and traffic characteristics on vehicle emissions in Egypt. International Journal of Civil Engineering, 20(11): 1261-1276. DOI: https://doi.org/10.1007/s40999-022-00729-w
Rizaldi, M. A., Azizah, R., Latif, M. T., Sulistyorini, L., & Salindra, B. P. (2022). Literature Review: Dampak Paparan Gas Karbon Monoksida Terhadap Kesehatan Masyarakat yang Rentan dan Berisiko Tinggi. Jurnal Kesehatan Lingkungan Indonesia, 21(3): 253-265. DOI: https://doi.org/10.14710/jkli.21.3.253-265
Saputra, I. G. K. I., Sari, K. E., Utomo, D. M. (2020). Daya serap tutupan lahan terhadap emisi karbon di koridor jalan pelabuhan celukan bawang. Planning for Urban Region and Environment Journal (PURE), 9(1): 93-100.
Sartori, A., Tiberio, M., Gottardo, R., Del Balzo, G., Vermiglio, E., Raniero, D., & De Leo, D. (2024). Carbon monoxide related deaths: A Verona case series. When cooperation becomes compulsory. Legal Medicine, 67: 102375. DOI: https://doi.org/10.1016/j.legalmed.2023.102375
Setyo, G. A., & Handriyono, R. E. (2021). Analisis penyebaran gas Karbon monoksida (CO) dari sumber transportasi Di Jalan Tunjungan Surabaya. In Prosiding Seminar Nasional Sains dan Teknologi Terapan, 9(1): 360-369. DOI: https://doi.org/10.31284/j.envitats.2021.v1i1.2176
Sharmilaa, G., & Ilango, T. (2022). A review on influence of age of vehicle and vehicle traffic on air pollution dispersion. Materials Today: Proceedings, 60: 1629-1632. DOI: https://doi.org/10.1016/j.matpr.2021.12.188
Singh, A., Obaidat, M. S., Singh, S., Aggarwal, A., Kaur, K., Sadoun, B., Kumar, M., & Hsiao, K. F. (2022). A simulation model to reduce the fuel consumption through efficient road traffic modelling. Simulation Modelling Practice and Theory, 121: 102658. DOI: https://doi.org/10.1016/j.simpat.2022.102658
Turmuzi, M., Suryati, I., Mashaly, E. T., & Batubara, F. (2018). Analysis of carbon monoxide (CO) with Delhi Finite Line Source (DFLS) in MT Haryono Street, Medan City. In IOP Conference Series: Materials Science and Engineering, 309(1): 012108. IOP Publishing. DOI: https://doi.org/10.1088/1757-899X/309/1/012108
Yang, Q., Shen, H., & Liang, Z. (2020). Analysis of particulate matter and carbon monoxide emission rates from vehicles in a Shanghai tunnel. Sustainable Cities and Society, 56: 102104. DOI: https://doi.org/10.1016/j.scs.2020.102104
Yulianti, S., Fitrianingsih, Y., & Jati, D.R. (2014). Analisis konsentrasi gas Karbon Monoksida (CO) pada ruas Jalan Gajah Mada Pontianak. Jurnal Teknologi Lingkungan Lahan Basah, 2(1): 1-10. DOI: https://doi.org/10.26418/jtllb.v2i1.5554
Zhai, C., Xu, Y., Li, K., Zhang, R., Peng, T., Zong, C., & Xu, H. (2023). Periodic intermittent cruise control: An innovative approach for reducing fuel consumption and exhaust emissions in road traffic systems. Process Safety and Environmental Protection, 177: 1197-1210. DOI: https://doi.org/10.1016/j.psep.2023.07.079
Zhang, G., Chang, F., Jin, J., Yang, F., & Huang, H. (2024). Multi-objective deep reinforcement learning approach for adaptive traffic signal control system with concurrent optimization of safety, efficiency, and decarbonization at intersections. Accident Analysis & Prevention, 199: 107451. DOI: https://doi.org/10.1016/j.aap.2023.107451
Zhang, L., Chen, H., Li, S., & Liu, Y. (2023). How road network transformation may be associated with reduced carbon emissions: An exploratory analysis of 19 major Chinese cities. Sustainable Cities and Society, 95: 104575. DOI: https://doi.org/10.1016/j.scs.2023.104575
Zhang, L., Long, R., Li, W., & Wei, J. (2020). Potential for reducing carbon emissions from urban traffic based on the carbon emission satisfaction: Case study in Shanghai. Journal of Transport Geography, 85: 102733. DOI: https://doi.org/10.1016/j.jtrangeo.2020.102733
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