Dynamic Force Analysis of Single Acting Compressor Based on Angular Velocity
DOI:
https://doi.org/10.59097/jasae.v3i2.65Keywords:
CADCAM, Crankshaft angular velocity, Dynamic force, Inertia force, Single acting compressorAbstract
This paper presents a dynamic force analysis of a single-action piston compressor operating at various crankshaft angular velocities. The analysis was performed using Scilab and CADCAM software tools to evaluate the inertia forces acting on the crankshaft, connecting rod, and piston head. At a crankshaft speed of 1500 rpm, the inertia force on the crankshaft was calculated as 0.03 N, increasing to 0.055 N at 2000 rpm and 0.066 N at 2200 rpm. For the connecting rod, the corresponding forces were 17.51 N, 31.12 N, and 37.66 N, respectively. At the piston head, the inertia force rose from 0.063 N at 1500 rpm to 0.11 N at 2000 rpm, and 0.14 N at 2200 rpm. The results indicate that variatioins in angular velocity significantly affect the magnitude of dynamic forces within the compressor components.
References
Y. C. Dwiaji, “Analisis Pengaruh Efisiensi Isentropik Dan Beban Operasi Terhadap Penggunaan Energi Motor Listrik Kompresor Sentrifugal Di Converting Plant PT XXX,” Injection: Indonesian Journal of Vocational Mechanical Engineering, vol. 2, no. 1, 2022, doi: 10.58466/injection.v2i1.675.
Dhrumilkumar Valand, Dr. K. K. Bhabhor, Dr. D.B. Jani, and Mr.Timir Gandhi, “Parametric Analysis of a Screw Compressor :- A Critical Review,” International Journal of Advanced Research in Science, Communication and Technology, 2023, doi: 10.48175/ijarsct-7836.
S. E. Susilowati, “Penurunan Kinerja Kompresor Untuk Starting Enginee Di Km. Gunung Dempo,” Jurnal Konversi Energi dan Manufaktur, vol. 2, no. 1, 2015, doi: 10.21009/jkem.2.1.4.
F. Fagotti and J. R. S. Fernandes, “Dynamic analysis of piston secondary motion for small reciprocating compressors,” J Tribol, vol. 122, no. 4, 2000, doi: 10.1115/1.1314603.
B. Talikoti, S. N. Kurbet, V. V. Kuppast, and A. M. Yadwad, “Harmonic analysis of a two cylinder crankshaft using ANSYS,” in Proceedings of the International Conference on Inventive Computation Technologies, ICICT 2016, 2016. doi: 10.1109/INVENTIVE.2016.7823219.
J. Lin, “Simulation Analysis of Plane Six-Bar Push Mechanism Based on Matlab,” in 2023 IEEE International Conference on Integrated Circuits and Communication Systems, ICICACS 2023, 2023. doi: 10.1109/ICICACS57338.2023.10099716.
W. Aditama, R. Arman, and Burmawi, “Analisa Dinamik Model Mekanisme Slider Crank Menggunakan Software Matlab,” Jurnal Teknik Mesin 2017, vol. 8, no. 2, 2017.
B. Mănescu, N. D. Stănescu, D. Popa, and N. Pandrea, “Determination of the Dynamic Reactions for a Variable Compression Ratio Mechanism,” in Springer Proceedings in Physics, 2021. doi: 10.1007/978-3-030-54136-1_8.
S. Manavalan, R. Rai, R. R. Kumar, R. K. Chaudhary, and S. K. Chaudhary, “Impact of modified piston - A review,” International Journal of Recent Technology and Engineering, vol. 8, no. 6, 2019.
R. Oliveira, R. Claudino, R. Kalid, T. Fröhlich, L. Gusmão, and H. Lepikson, “Estimate of the inertial torque in rotating shafts - A metrological approach to signal processing,” in Journal of Physics: Conference Series, 2015. doi: 10.1088/1742-6596/648/1/012019.
M. J. Kim and C. G. Kang, “Dynamic Analysis of a Piston Air Compressor in a Railway Vehicle Using Sensor Data,” in International Conference on Control, Automation and Systems, 2023. doi: 10.23919/ICCAS59377.2023.10316800.
S. Takayama and K. Arase, “The stress measurement of the crankshaft for high-performance engine,” in SAE Technical Papers, 2011. doi: 10.4271/2011-32-0653.
J. M. Bergada, J. Watton, and S. Kumar, “Pressure, flow, force, and torque between the barrel and port plate in an axial piston pump,” Journal of Dynamic Systems, Measurement and Control, Transactions of the ASME, vol. 130, no. 1, 2008, doi: 10.1115/1.2807183.
N. G. Chalhoub, H. Nehme, N. A. Henein, and W. Bryzik, “Effects of structural deformations of the crank-slider mechanism on the estimation of the instantaneous engine friction torque,” J Sound Vib, vol. 224, no. 3, 1999, doi: 10.1006/jsvi.1999.2192.
M. Mutlu and M. Kiliç, “Effects of piston speed, compression ratio and cylinder geometry on system performance of a liquid piston,” Thermal Science, vol. 20, no. 5, 2016, doi: 10.2298/TSCI140926146M.
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