Main Article Content

Abstract

Continuous Variable Transmission (CVT) is a transmission system that does not have gears like in manual transmission cars or conventional automatic transmission cars. CVT has the advantage of being able to maintain the proper rotational speed at any time in terms of engine efficiency by changing the speed ratio flexibly and continuously. A continuously variable transmission (CVT) is a transmission that can change steplessly through an infinite effective gear ratio between maximum and minimum. This is in contrast to other mechanical transmissions which only allow a few different gear ratios to choose. The flexibility of the CVT allows the drive shaft to maintain a constant angular speed over the output speed range. Torque is transmitted from the drive to the pulley which is driven by friction acting between the belt and pulley surfaces. Tests were carried out using a dynotest to obtain wheel rotation data and the resulting torque. The loading is given from 3 kg, 5 kg, 7 kg and 8 kg, the engine rpm used is 5500 rpm, 6000 rpm, 6500 rpm, 7000 rpm and 8000 rpm. Rear wheel rotation is inversely proportional to the load, the greater the load the rotation will decrease. Load is directly proportional to torque, the greater the load given the torque will increase. The CVT system is still effective for use as a power successor. The power that can be transmitted is still greater than 50%, namely 68%.

Keywords

CVT Rotation Load Effectivity

Article Details

How to Cite
Darmawa, I., Adiaksa, I. M., Indra, I., & Wibawa, I. W. (2023). The Effectiveness of Using Continuous Variable Transmission (CVT) in 2WD Buggy Vehicles. INVOTEK: Jurnal Inovasi Vokasional Dan Teknologi, 23(1), 53-60. https://doi.org/https://doi.org/10.24036/invotek.v23i1.1109

References

  1. M. A. Hakim, E. Heriana, and I. Iwanto, “Kajian sistem transmisi CVT untuk sepeda motor Honda Spacy pada putaran rendah, menengah, tinggi serta beban menanjak,” Tek. J. Sains Dan Teknol., vol. 15, no. 2, pp. 112–118, 2019, doi: http://dx.doi.org/10.36055/tjst.v15i2.6817.
  2. C. D. Naiju, K. Annamalai, B. Bevin, and P. Nikhil, “Analysis of All Terrain Vehicle (ATV) for Impact Loading and Roll Over Considering the Safety of Occupants,” Appl. Mech. Mater., vol. 232, pp. 878–881, 2012, doi: https://doi.org/10.4028/www.scientific.net/AMM.232.878.
  3. S. Ariyono, B. Supriyo, B. Cahyono, and D. R. Harahap, “Desain Sistem Mekanik pada Transmisi Motor Matik untuk Keselamatan Pengendara,” SINTEK J. J. Ilm. Tek. Mesin, vol. 13, no. 2, pp. 59–64, 2019, doi: s://doi.org/10.24853/sintek.13.2.59-64.
  4. A. Syaifudin, “Design of a CVT Push-Belt Using a Governor Mechanism as a Variator Pulley Drive.”
  5. S. Nomura, K. Okubo, and T. Fujii, “Shifting Speed and Belt Behavior of Model CVT (Continuously Variable Transmission) with Push and Pull Type V-belt Driven on Semi-Transparent Pulleys-Influence of Stiffness of V-belt in Clamping Direction.,” in Proceedings of the 4th International Conference on Vehicle Technology and Intelligent Transport Systems (VEHITS), 2018, pp. 474–480. doi: 10.5220/0006781604740480.
  6. M. Waleed, O. Qasim, and M. Ali, “Design and Analysis of Continuously Variable Transmission for 1000cc Automobile,” Mar. 2021. doi: 10.13140/RG.2.2.19580.67208.
  7. S. K. Panda, D. Chakrabarti, O. Stress, and W. Facilitation, “Ergonomics in Caring for People,” 2018. doi: 10.1007/978-981-10-4980-4.
  8. E. Edison and D. Delwita, “PERANCANGAN RANGKA BODY MOBIL BUGGY UNTUK SATU ORANG PENUMPANG,” Rang Tek. J., vol. 2, no. 2, 2019, doi: 10.31869/rtj.v2i2.1433.
  9. E. M. Pour and S. Golabi, “Design of continuously variable transmission (CVT) with metal pushing belt and variable pulleys,” Int. J. Automot. Eng., vol. 4, no. 2, pp. 699–717, 2014.
  10. A. M. Kusuma and P. Mahardi, “ANALISIS DESKRIPTIF TERHADAP PENGEMBANGAN MEDIA PEMBELAJARAN E-MODUL INTERAKTIF BERBASIS SOFTWARE APLIKASI LECTORA INSPIRE,” J. Kaji. Pendidik. Tek. Bangunan, vol. 7, no. 2, pp. 1–11, 2021.
  11. L. M. Nasution, “Statistik deskriptif,” Hikmah, vol. 14, no. 1, pp. 49–55, 2017.
  12. W. Sumbodo, R. D. Widodo, and S. Sunyoto, “EFEKTIFITAS PENGGUNAAN CVT (CONTINUES VARIABLE TRANSMISSION) PADA MICROCAR RODA TIGA UNTUK PARA PENYANDANG CACAT KAKI,” Sainteknol J. Sains dan Teknol., vol. 9, no. 1, pp. 63–68, 2011, doi: https://doi.org/10.15294/sainteknol.v9i1.5526.
  13. T. Rokhman, “Pendekatan Numerik Polinomial Derajad 3 Untuk Perhitungan Unjuk Kerja Mesin Kendaraan Bermotor Yamaha Vega Zr Pabrikan 2009,” J. Teknol., vol. 7, no. 2, pp. 104–113, 2015, doi: https://doi.org/10.24853/jurtek.7.2.104-113.
  14. S. Mahendra and D. Rohmantoro, “PENGARUH PERFORMA MESIN SEPEDA MOTOR MATIK 4 TAK 110 CC TERHADAP PENGGUNAAN PIGGYBACK FUEL ADJUSTER IQUTECHE,” J. Automot. Technol. Vocat. Educ., vol. 2, no. 2, pp. 1–9, 2021, doi: https://doi.org/10.31316/jatve.v2i2.2062.
  15. T. C. Wahyudi and E. Nugroho, “Hubungan siklus putaran dan beban terhadap kekuatan bahan pada uji fatik bending,” Turbo J. Progr. Stud. Tek. Mesin, vol. 3, no. 1, 2014, doi: 10.24127/trb.v3i1.23.
  16. F. M. Bere, V. A. Koehuan, and J. U. Jasron, “Analisis Performansi Turbin Angin Poros Horisontal Model Double Rotor Contra Rotating dengan Posisi Rotor Saling Berhimpitan,” LONTAR J. Tek. Mesin Undana, vol. 2, no. 1, pp. 15–22, 2015, doi: 10.0001/ljmtu.v2i1.34.
  17. A. Susanto, “ANALISISDAYA DAN TORSI SISTEM PENGGERAK CONTINUOSLY VARIABLE TRANSMISSION (CVT) PADA SEPEDA MOTOR VARIO110,” 2017.
  18. G. J. Mingkid, D. Liando, and J. Lengkong, “Efektivitas Penggunaan Dana Desa Dalam Peningkatan Pembangunan (Suatu Studi Di Desa Watutumou Dua Kecamatan Kalawat Kabupaten Minahasa Utara),” J. Eksek., vol. 2, no. 2, pp. 1–11, 2017.
  19. S. Sugianto, A. S. Fahrezi, and P. Oetomo, “PERENCANAAN INSTALASI LISTRIK PADA GEDUNG RUMAH SAKIT,” SINUSOIDA, vol. 24, no. 2, pp. 18–25, 2022, doi: https://doi.org/10.37277/s.v24i2.1464.