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This article describes the results of a study of the effect of a shock absorber on the vibration of an electric axle in a semi-trailer. The dynamic characteristics of three shock absorbers from different manufacturers were determined. They were then installed on the electric axle of a semi-trailer equipped with a measuring apparatus. Test runs were carried out on two types of road surface - a test track with a defined profile and a local road. Each run was repeated for a fully loaded and an empty semi-trailer. These tests were designed to determine the values of the dynamic parameters of the electric axle during operation of the semi-trailer depending on the shock absorber used.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
119--132
Opis fizyczny
Bibliogr. 23 poz., rys., tab.
Twórcy
autor
- Faculty of Mechanical Engineering, Department of Machine Tools and Mechanical Technologies, Wroclaw University Science of Technology, Poland
autor
- Department of Vehicles and Fundamentals of Machine Design, Lodz University of Technology, Poland
autor
- Wielton S.A., 98-300 Wielun, Poland
Bibliografia
- [1] https://psnm.org/wpcontent/uploads/2024/01/PSPA_Rok_2023_w_polskiej_elektromobilnosci_Raport.pdf.
- [2] https://elektromobilni.pl/samochody-elektryczne-na-stabilnym-poziomie-w-ue/.
- [3] CHOWDHURY H., MORIA H., ALI A., KHAN I., 2013, A Study on Aerodynamic Drag of a Semi–Trailer Truck, Procedia Engineering, 56, 201–205.
- [4] VAN RAEMDONCK G., VON TOOREN M., 2008, Design of an Aerodynamic Aid for the Underbody of a Trailer Within a Tractor–Trailer Combination, BBAA VI International Colloquium on Bluff Bodies Aerodynamic & Application, 20–24.
- [5] https://safholland.com/mide/en/downloadcenter/document/resource/environment/project1_p/documents/documentationP/2022/2022_09/SAF-HOLLAND_E-Axles_en-DE.pdf.
- [6] https://www.bpw.de/en/products/axle-running-gears/epower.
- [7] ZEMANEK T., PROCHAZKA P., PAZDERA I., NERUDA J., MERGL V., VITEK O., ULRICH R., STANEK L., 2022, Operating Characteristics of a Timber Trailer with a Hybrid Drive, Forests, 13/8, 1317, https://doi.org/10.3390/f13081317.
- [8] JANULEVICIUS A., PUPINIS G., 2013, Power Circulation in Driveline System when the Wheels of Tractor and Trailer are Driven, Transport, 28/3, 313-321, https://doi.org/10.3846/16484142.2013.832378.
- [9] KOROMA M.S., COSTA D., PURICELLI S., MESSAGIE M.,2023, Life Cycle Assessment of a Novel Functionally Integrated E-Axle Compared with Powertrains for Electric and Conventional Passenger Cars, Science of the Total Environment, 904, 166860.
- [10] DE GENNAROA M., PAGEA J.H., WELLERDIECKB T., et al., 2023, Designing, Prototyping, and Testing an Integrated E-Axle for Third-Generation Electric Vehicles, Transportation Research Procedia, 72, 101–108.
- [11] CALVO J.A., LOPEZ-BOADA B., ROMAN J.L.S., GAUCHIA A., 2009, Influence of a Shock Absorber Model on Vehicle Dynamic Simulation, Proc. Inst. Mech. Eng. D: J. Automob. Eng., 223/2, 189–203, https://doi.org/ 10.1243/09544070jauto990.
- [12] MIRAGLIA M., TANNOUS M., INGLESE F., BRAMER B., MILAZZO M., STEFANINI C., 2022, Energy Recovery from Shock Absorbers Through a Novel Compact Electro-Hydraulic System Architecture, Mechatronics, 81, 102701.
- [13] TIWARI S., SINGH M., KUMAR A., 2020, Regenerative Shock Absorber: Research Review, International Journal of Engineering Research & Technology (IJERT), 9/5.
- [14] ALI A., QI L., ZHANG T., LI H., AZAM A., ZHANG Z., 2021, Design of Novel Energy-Harvesting Regenerative Shock Absorber Using Barrel Cam Follower Mechanism to Power the Auxiliaries of a Driverless Electric Bus, Sustainable Energy Technologies and Assessments, 48, 101565, https://doi.org/10.1016/j.seta. 2021.101565.
- [15] GALLUZZI R., CIRCOSTA S., AMATI N., TONOLI A., 2021, Rotary Regenerative Shock Absorbers for Automotive Suspensions, Mechatronics, 77, 102580, https://doi.org/10.1016/j.mechatronics.2021.102580.
- [16] TAE DONG K., JIN HO K., 2020, Shock-Absorber Rotary Generator for Automotive Vibration Energy Harvesting, Appl. Sci. 10/18, 6599, https://doi.org/10.3390/app10186599.
- [17] KUBO P., PAIVA C., FERREIRA A., LAROCCA A., 2015, Influence of Shock Absorber Condition on Pavement Fatigue Using Relative Damage Concept, Journal of Traffic and Transportation Engineering, 2/6, 406–413.
- [18] LI Y., LI D., 2021, The Dynamics Analysis of a Magnetic Fluid Shock Absorber with Different Inner Surface Materials, Journal of Magnetism and Magnetic Materials, 542, 168473, https://doi.org/10.1016/j.jmmm. 2021.168473.
- [19] LUCZKO J., FERDEK U., 2019, Non-Linear Analysis of a Quarter-Car Model with Strokedependent Twin-Tube Shock Absorber, Mechanical Systems and Signal Processing, 115, 450–468, https://doi.org/10.1016/j. ymssp.2018.06.008.
- [20] GUAN D., JING X., SHEN H., JING L., GONG J., 2019, Test and Simulation the Failure Characteristics of Twin Tube Shock Absorber, Mechanical Systems and Signal Processing, 122, 707–719.
- [21] KARASSAYEVA A., ADILKHANOV Y., SEKEROVA S., JAPAYEV S., ZHAUYT A., ZHUNISBEK S., TERGEMES K., 2021, Analysis of Dynamic Properties and Movement Safety of Bogies with Diagonal Links and Rubber-Metal Vibration Absorbers Between the Rubbing Elements of Freight Cars, Journal of Machine Engineering, 2021, 21/3, 124–143.
- [22] DONG L., YANG F., HE A., GUO Z., YU J., ZUO J., 2022, Investigation on Energy-Regenerative Shock Absorber with Adjustable Damping and Power for Freight Wagons, Energy Conversion and Manegement, 254, 115228.
- [23] https://www.instron.com/en/products/testing-systems/dynamic-and-fatigue-systems/servohydraulic-fatigue/ 8872–8874.
Typ dokumentu
Bibliografia
Identyfikator YADDA
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