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Research Article

Experimental analysis of the heat transfer generated during the operation of an automotive disc brake

ORCID Icon, ORCID Icon & ORCID Icon
Pages 1247-1258 | Received 08 Feb 2021, Accepted 26 Aug 2021, Published online: 04 Oct 2021

References

  • Asim, R. 2014. “Overview of Disc Brakes and Related Phenomena.” International Journal of Vehicle Noise and Vibration 10 (4): 257–301. doi:10.1504/IJVNV.2014.065634.
  • Atkins, M., F. W. Kienhofer, T. J. Lu, and T. Kim. 2020. “Local Heat Transfer Distributions within a Rotating Pin-Finned Brake Disc.” Journal of Heat Transfer 142. July. doi:10.1115/1.4047836.
  • Belhocine, A., and A. Afzal. 2019. “FEA Analysis of Coupled Thermo-mechanical Response of Grey Cast Iron Material Used in Brake Discs.” Revista científica 3 (36): 280–296. doi:10.14483/23448350.14827.
  • Belhocine, A., and M. Bouchetara. 2013a. “Investigation of Temperature and Thermal Stress in Ventilated Disc Brake Based on 3D Thermomechanical Coupling Model.” Ain Shams Engineering Journal 4 (3): 475–483. doi:10.1016/j.asej.2012.08.005.
  • Belhocine, A., and M. Bouchetara. 2013b. “Thermomechanical Behavior of Dry Contacts in Disc Brake Rotor with a Grey Cast Iron Composition.” Thermal Science 17 (2): 599–609. doi:10.2298/TSCI110826141B.
  • Belhocine, A., and M. Bouchetara. 2013c. “Transient Analysis of Thermoelastic Contact Problem of Disk Brakes.” Frontiers of Mechanical Engineering 8 (2): 150–159. doi:10.1007/s11465-013-0266-6.
  • Blau, P. J. 2001. “Compositions, Functions, and Testing of Friction Brake Materials and Their Additives.” Energy 27 (September): 1–38. doi:10.2172/788356.
  • Cengel, Y. 2007. Tranferencia de calor y masa tercera edicion.
  • Cristol-Bulthé, A.-L., Y. Desplanques, G. Degallaix, and Y. Berthier. 2008. “Mechanical and Chemical Investigation of the Temperature Influence on the Tribological Mechanisms Occurring in OMC/cast Iron Friction Contact.” Wear 264 (9–10): 815–825. April. doi:10.1016/j.wear.2006.12.080.
  • García-León, R. A. 2017. “Thermal Study in Three Vented Brake Discs, Using the Finite Element Analysis.” DYNA 84 (200): 19–27. doi:10.15446/dyna.v84n200.55663.
  • García-León, R. A., C. H. Acevedo-Peñaloza, and J. Rojas-Suarez. 2019. Análisis metalográfico y materiales de los frenos de disco. Bogota, Colombia: ECOE.
  • García-León, R. A., and E. Flórez-Solano. 2017. “Dynamic Analysis of Three Autoventilated Disc Brakes.” Ingeniería E Investigación 37 (3). doi:10.15446/ing.investig.v37n3.63381.
  • García-León, R. A., E. Flórez-Solano, and Á. Suárez-Quiñones. 2019. “Brake Discs: A Technological Review from Its Analysis and Assessment.” Informador Técnico 83 (2): 217–234. doi:10.23850/22565035.1766.
  • García-León, R. A., E. Flórez-Solano, and C. Acevedo-Peñaloza. 2018. Análisis termodinámico en frenos de disco. Bogota, Colombia: ECOE Ediciones.
  • García-León, R. A., E. Flórez-Solano, and M. M. Rodríguez-Castilla. 2019. “Thermo-mechanical Assessment in Three Auto-ventilated Disc Brake by Implementing Finite Elements.” Journal of Physics: Conference Series 11: 1129. doi:10.1088/1742-6596/1129.
  • García-León, R. A., and E. Perez Rojas. 2017. “Analysis of the Amount of Heat Flow between Cooling Channels in Three Vented Brake Discs.” Ingeniería Y Universidad 21 (1). doi:10.11144/Javeriana.iyu21-1.aahf.
  • García-León, R. A., J. Gomez-Camperos, and H. Jaramillo. 2021. “Bibliometric Analysis in Brake Disc: An Overview.” DYNA 88 (217): 23–31. May. doi:10.15446/dyna.v88n217.91091.
  • García-Léon, R. A., J. Martínez-Trinidad, and I. Campos-Silva. 2021. “Historical Review on the Boriding Process Using Bibliometric Analysis.” Transactions of the Indian Institute of Metals 74: 541–557. doi:10.1007/s12666-020-02174-6.
  • García-León, R. A., N. Afanador-García, and J. A. Gómez-Camperos. 2021. “Numerical Study of Heat Transfer and Speed Air Flow on Performance of an Auto-Ventilated Disc Brake.” Fluids 6 (4): 160 (1–24). MDPI, Switzerland. doi10.3390/fluids6040160.
  • García-León, R. A., R. Echavez-Díaz, and E. Flórez-Solano. 2018. “Análisis termodinámico de un disco de freno automotriz con pilares de ventilación tipo NACA 66-209.” INGE CUC 14: 9–18. doi:10.17981/ingecuc.14.2.2018.01. September.
  • Ibhadode, A. O. A., and I. M. Dagwa. 2008. “Development of Asbestos-free Friction Lining Material from Palm Kernel Shell.” Journal of the Brazilian Society of Mechanical Sciences and Engineering 30 (2): 166–173. doi:10.1590/S1678-58782008000200010.
  • Jiménez García, C. A., G. J. Gutiérrez Paredes, J. E. Rivera López, A. López Villa, and J. M. Casillas Navarrete. 2016. “Flow Measurement at the Inlet and Outlet Zones of an Automotive Brake Disc with Ventilation Post Pillars, Using Particle Image Velocimetry Technique.” 1st Conference on Spring School Enzo Levi, 2014, 323–332. Mexico City: Kluwer Academic Publishers. doi: 10.1007/978-3-319-27965-7_24.
  • Lakkam, S., K. Suwantaroj, P. Puangcharoenchai, S. Mongkonlerdmanee, and S. Koetniyom. 2013. “Study of Heat Transfer on Front-and Back-vented Brake Discs.” Songklanakarin Journal of Science and Technology 35 (6): 671–681.
  • Mazidi, H., S. Jalalifar, S. Jalalifar, and J. Chakhoo. 2011. “Mathematical Modeling of Heat Conduction in a Disk Brake System during Braking.” Asian Journal of Applied Sciences 4 (2): 119–136. doi:10.3923/ajaps.2011.119.136.
  • McPhee, A. D., and D. A. Johnson. 2008. “Experimental Heat Transfer and Flow Analysis of a Vented Brake Rotor.” International Journal of Thermal Sciences 47 (4): 458–467. doi:10.1016/j.ijthermalsci.2007.03.006.
  • Porta, D., C. Echeverría, A. Aguayo, J. E. H. Cardoso, and C. Stern. 2016. Recent Advances in Fluid Dynamics with Environmental Applications.
  • Reddy, S. M., J. M. Mallikarjuna, and V. Ganesan. 2008. “Flow and Heat Transfer Analysis of a Ventilated Disc Brake Rotor Using CFD.” SAE Technical Paper. doi: 10.4271/2008-01-0822.
  • SN. 2020. “Descripción y eficacia del sistema de frenado.” Kashima University. http://kashima.campuseina.com/mod/book/view.php?id=7679
  • Stachowiak, G. W. 2005. Wear: Materials, Mechanisms and Practice. England: Wiley.
  • Talati, F., and S. Jalalifar. 2009. “Analysis of Heat Conduction in a Disk Brake System.” Heat and Mass Transfer 45 (8): 1047–1059. January. doi:10.1007/s00231-009-0476-y.
  • Topouris, S., D. Stamenković, M. Olphe-Galliard, V. Popović, and M. Tirovic. 2019. “Heat Dissipation from Stationary Passenger Car Brake Discs.” Strojniški Vestnik – Journal of Mechanical Engineering 66 (1): 15–28. doi:10.5545/SV-JME.2019.6002.
  • Wahlström, J. 2011. A Study of Airborne Wear Particles from Automotive Disc Brakes, KTH. Royal Institute of Techology.

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