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Change in engine power in the event of electronic components failures

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In a conventional internal combustion engine, only electrical controls are used to prepare the fuel mixture. All parts must operate flawlessly in order for the vehicle and its components to operate correctly. Road safety may be negatively impacted by the failure of specific components. The purpose of the study was to ascertain how much the malfunction of particular electrical components affects how the vehicle operates. The vehicle’s individual electronic parts were removed, and the engine power was then assessed. The primary determinant of a vehicle’s technical condition is thought to be its engine power. The preparation of the combustion mixture was affected by the individual component disconnections, which reduced the vehicle’s performance. A vehicle with an in-line four-cylinder engine was used for the experiment, which was conducted in a lab setting. This vehicle’s eight components were gradually disengaged. The change in engine power was observed while they were disconnected. The measured values were always evaluated in terms of an automobile that had no defects and was in excellent condition. The study’s findings demonstrate that there are circumstances in which a vehicle’s usual operation is adversely affected when one or more of its electrical components malfunctions.
Rocznik
Strony
40--55
Opis fizyczny
Bibliogr. 34 poz., rys.
Twórcy
  • Faculty of Operation and Economics of Transport and Communications, Department of Road and Urban Transport, University of Zilina, Univerzitná 8215/1, 010 26 Žilina, Slovakia
autor
  • Faculty of Operation and Economics of Transport and Communications, Department of Road and Urban Transport, University of Zilina, Univerzitná 8215/1, 010 26 Žilina, Slovakia
autor
  • Faculty of Operation and Economics of Transport and Communications, Department of Road and Urban Transport, University of Zilina, Univerzitná 8215/1, 010 26 Žilina, Slovakia
  • Faculty of Mechanical Engineering, Technical University of Ostrava, Ostrava, Czech Republic, VSB - Technical University of Ostrava, 17. listopadu 2172/15, 708 00 Ostrava-Poruba, Czech Republic
  • Department of Power Engineering and Transportation, Faculty of Production Engineering, University of Life Sciences in Lublin, Gleboka 28, 20-612 Lublin, Poland
Bibliografia
  • [1] Azzoni P., Cantoni G., Minelli G., Moro D., Rizzoni G., Ceccarani M., et al.: Measurement of Engine Misfire in the Lamborghini 533 V-12 Engine Using Crankshaft Speed Fluctuations. SAE Technical Paper. 1995, 90411, DOI: 10.4271/950837.
  • [2] Beňová D., Settey T., Slávik R., Gnap J.: Examination of possibilities of air quality in-creasing in cities using freight vehicles with an ecology type of drive. Perner’s Contacts. 2019, 14(1), 6–13. https://pernerscontacts.upce.cz/index.php/perner/article/view/392 (accessed on 25.02.2022).
  • [3] Caban J.: Traffic congestion level in 10 selected cities of Poland. Scientific Journal of Silesian University of Technology. Series Transport., 2021, 112, 17–31, DOI: 10.20858/sjsutst.2021.112.2.
  • [4] CO2 emissions from transport: https://www.europarl.europa.eu/news/sk/headlines/society/20190313STO31218/emisie-co2-z-automobilov-fakty-a-cisla-infografika (accessed on: 15.11.2022).
  • [5] Coelho S., Rafael S., Lopes D., Miranda A.I., Ferreira J.: How changing climate may influence air pollution control strategies for 2030? Science of The Total Environment. 2021, 758, 143911, DOI: 10.1016/j.scitotenv.2020.143911.
  • [6] Dynamometer Power Measurement: http://www.profituning.sk/meranie-vykonu-na-valcovej-stolici-maha-lps3000/ (accessed on 15.11.2022).
  • [7] Emission System Fault Diagnosis Part 1: http://www.turbo-tec.eu/cz/blog/aplikacia-vysledkov-emisnej-kontroly-na-diagnostika-poruch-emisneho-systemu-motorov-cast-1/ (accessed on 15.11.2022).
  • [8] Emission System Fault Diagnosis Part 2: http://www.turbo-tec.eu/cz/blog/aplikacia-vysledkov-emisnej-kontroly-na-diagnostika-poruch-emisneho-systemu-motorov-cast-2/ (accessed on 15.11.2022).
  • [9] Fontaras G., Zacharof N.-G., Ciuffo B.: Fuel consumption and CO2 emissions from passenger cars in Europe-Laboratory versus real-world emissions. Progress in Energy and Combustion Science. 2017, 60, 97–131, DOI: 10.1016/j.pecs.2016.12.004.
  • [10] Gnap J., Dočkalik M.: Impact of the operation of LNG trucks on the environment. Open Engineering. 2021, 11(1), 937–947, DOI: 10.1515/eng-2021-0096.
  • [11] Gnap J., Dočkalik M., Dydkowski G.: Examination of the Development of New Bus Registrations with Alternative Powertrains in Europe. LOGI–Scientific Journal on Transport and Logistics. 2021, 12(1), 147–158, DOI: 10.2478/logi-2021-0014.
  • [12] Gür T.M.: Carbon dioxide emissions, capture, storage and utilization: Review of materials, processes and technologies. Progress in Energy and Combustion Science. 2022, 89, 100965, DOI: 10.1016/j.pecs.2021.100965.
  • [13] Harantová V., Hájnik A., Kalašová A., Figlus T.: The Effect of the COVID-19 Pandemic on Traffic Flow Characteristics, Emissions Production and Fuel Consumption at a Selected Intersection in Slovakia. Energies, 2022, 15(6), 2020, DOI: 10.3390/en15062020.
  • [14] Huo H., Yao Z., Zhang Y., Shen X., Zhang Q., He K.: On-board measurements of emissions from diesel trucks in five cities in China. Atmospheric Environment. 2012, 54, 159–167, DOI: 10.1016/j. atmosenv.2012.01.068.
  • [15] Jeanneret B., Buttes A.G.D., Pelluet J., Keromnes A., Pélissier S., Le Moyne L.: Optimal Control of a Spark Ignition Engine Including Cold Start Operations for Consumption/Emissions Compromises. Applied Sciences. 2021, 11(3), 971, DOI: 10.3390/app11030971.
  • [16] Kelly F.J., Fussell J. C.: Air pollution and airway disease. Clinical & Experimental Allergy. 2021, 41(8), 1059–1071, DOI: 10.1111/j.1365-2222.2011.03776.x.
  • [17] Kim H.J., Keoleian G.A., Skerlos S.J.: Economic assessment of greenhouse gas emissions reduction by vehicle lightweighting using aluminum and high‐strength steel. Journal of Industrial Ecology. 2011,15(1), 64–80, DOI: 10.1111/j.1530-9290.2010.00288.x.
  • [18] Kubal’ák S., Hájnik A., Čulík K.: Analysis of the Carsharing System in the Slovak Republic. Communications in Computer and Information Science. 2020, 1289, 110–123, DOI: 10.1007/978-3-030-59270-7_9.
  • [19] Kulkarni P., Rajani P., Varma K.: Development of On Board Diagnostics (OBD) testing tool to scan emission control system. 2016 International Conference on Computing Communication Control and Automation (ICCUBEA). 2016, 1–4, DOI: 10.1109/ICCUBEA.2016.7860098.
  • [20] Liu Y.M., Ao C.K.: Effect of air pollution on health care expenditure: Evidence from respiratory diseases. Health Economics. 2021, 30(4), 858–875, DOI: 10.1002/hec.4221.
  • [21] Mahdinia I., Arvin R., Khattak A.J., Ghiasi A.: Safety, Energy, and Emissions Impacts of Adaptive Cruise Control and Cooperative Adaptive Cruise Control. Transportation Research Record. 2020, 2674(6),253–267, DOI: 10.1177/0361198120918572.
  • [22] Manual Maha MSR 1050: https://www.manualslib.com/manual/1578646/Maha-Powerdyno-Msr-Series.html#page=2-manual (accessed on 15.11.2022).
  • [23] Naik P., Kumbi A., Telkar N., Kotin K., Katti K.C.: An automotive diagnostics, fuel efficiency and emission monitoring system using CAN. 2017 International Conference on Big Data, IoT and Data Science (BID). IEEE, New Jersey, USA, 2017, 2018, 14–17, DOI: 10.1109/BID.2017.8336566.
  • [24] Neeft J.P., Makkee M., Moulijn J.A.: Diesel particulate emission control. Fuel processing technology. 1996, 47(1), 1–69, DOI: 10.1016/0378-3820(96)01002-8.
  • [25] Niazi M.A.K., Nayyar A., Raza A., Awan A.U., Ali M.H., Rashid N., et. al.: Development of an On-Board Diagnostic (OBD) kit for troubleshooting of compliant vehicles. 2013 IEEE 9th International Conference on Emerging Technologies (ICET). IEEE, New Jersey, USA. 2013, 1–4, DOI: 10.1109/ICET.2013.6743551.
  • [26] OBD Diagnostics: https://www.autodiagnostika.jantolak.sk/?%C8l%E1nok-5-%DAvod-do-diagnostiky-obd-obd2-eobd-zariadenia,259 (accessed on 15.11.2022).
  • [27] Organ B., Huang Y., Zhou J.L., Yam Y.-S., Mok W.-C., Chan E.F.: Simulation of engine faults and their impact on emissions and vehicle performance for a liquefied petroleum gas taxi. Science of The Total Environment. 2020, 716, 137066, DOI: 10.1016/j.scitotenv.2020.137066.
  • [28] Perry R., Gee I.: Vehicle emissions in relation to fuel composition. Science of The Total Environment. 1995, 169(1–3), 149–156, DOI: 10.1016/0048-9697(95)04643-f.
  • [29] Poliak M., Poliaková A., Jaśkiewicz M., Hammer J.: The need for integration of public passenger transport. Ekonomski pregled. 2020, 71(5), 512–530, DOI: 10.32910/ep.71.5.4.
  • [30] Pope III C.A., Burnett R.T., Thun M.J., Calle E.E., Krewski D., Ito K., et al.: Lung cancer, cardiopulmonary mortality, and long-term exposure to fine particulate air pollution. The Journal of the American Medical Association. 2002, 287(9), 1132–1141, DOI: 10.1001/jama.287.9.1132.
  • [31] Reşitoğlu İ.A., Altinişik K., Keskin A.: The pollutant emissions from diesel-engine vehicles and exhaust after-treatment systems. Clean Technologies and Environmental Policy. 2015, 17, 15–27, DOI: 10.1007/s10098-014-0793-9.
  • [32] Seifi M.R., Hassan-Beygi S.R., Ghobadian B., Desideri U., Antonelli M.: Experimental investigation of a diesel engine power, torque and noise emission using water–diesel emulsions. Fuel. 2016, 166,392–399, DOI: 10.1016/j.fuel.2015.10.122.
  • [33] Wiśniowski P.K., Slezak M., Niewczas A.: Simulation of road traffic conditions on a chassis dynamometer. The Archives of Automotive Engineering – Archiwum Motoryzacji. 2019, 84(2), 171–178, DOI:10.14669/AM.VOL84.ART12.
  • [34] Zhang J., Peng J., Song C., Ma C., Men Z., Wu J., et al.: Vehicular non-exhaust particulate emissions in Chinese megacities: Source profiles, real-world emission factors, and inventories. Environmental Pollution. 2020, 266, 115268, DOI: 10.1016/j.envpol.2020.115268.
Uwagi
This research was funded by the VEGA project. 1/0426/22 Quantification of the impact of road transport on the environment in urban areas.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-988bd1ac-8509-461f-8938-ba6dac96a874
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