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Friction Force Reduction Efficiency in Sliding Motion Under Tangential Vibrations of Elastic Support


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Czon Y, Su H, Qian N, He J, Gu J, Xu J, et al. Ultrasonic vibration assisted grinding of silicone carbide ceramics based on actual amplitude measurement: grinding force and surface quality. Ceramics International. 2021;47(11): 15433–15441. https://doi.org/10.1016/j.ceramint.2021.02.109 Search in Google Scholar

Gao G, Xia Z, Su T, Xiang D, Zhao B. Cutting force model of longitudinal–torsional ultrasonic-assisted milling Ti-6Al-4V based in tool flank wear. Journal of Materials Processing Technology. 2021; 291:117042. https://doi.org/10.1016/j.jmatprotec.2021.117042 Search in Google Scholar

Jamshidi H, Nategh MJ. Theoretical and experimental investigation of the frictional behavior of the tool-chip interface in ultrasonic-vibration assisted turning. International Journal of Machine Tools and Manufacture. 2013;65:1–7. https://doi.org/10.1016/j.ijmachtools.2012.09.004 Search in Google Scholar

Khajehzadeh M, Bootaripour O, Razfar MR. Finite element simulation and experimental investigation of residual stresses in ultrasonic assisted turning. Ultrasonics. 2020;108:106208. https://doi.org/10.1016/j.ultras.2020.106208 Search in Google Scholar

Li D, Tang J, Czen H, Shao W. Study on grinding force model in ultrasonic vibration-assisted grinding alloy structural steel. The International Journal of Advanced Manufacturing Technology. 2019; 101:1467–1479. https://doi.org/10.1007/s00170-018-2929-2 Search in Google Scholar

Liu Y, Geng D, Zhou Z, Jiang X, Zhang D. A study of on strengthening and machining integrated ultrasonic peening drilling of Ti-6Al-4V. Materials & Design. 2021; 212:110238. https://doi.org/10.1016/j.matdes.2021.110238 Search in Google Scholar

Ning F, Cong W. Ultrasonic vibration-assisted (UV-A) manufacturing processes: state of art and future perspectives. Journal of Manufacturing Processes. 2020;51:174–190. https://doi.org/10.1016/j.jmapro.2020.01.028 Search in Google Scholar

Skeleton RC. Effect of ultrasonic vibration on the turning process. International Journal of Machine Tool Design and Research. 1969;9(4):363–374. https://doi.org/10.1016/0020-7357(69)90020-1 Search in Google Scholar

Wang H, Pei ZJ, Cong W. A mechanistic cutting force model based on ductile and brittle fracture material removal modes for edge surface grinding of CFRP composites using rotary ultrasonic machining. International Journal of Mechanical Sciences. 2020;176:105551. https://doi.org/10.1016/j.ijmecsci.2020.105551 Search in Google Scholar

Wang J, Zhang J, Feng P, Guo P. Experimental and theoretical investigation of critical cutting force in rotary ultrasonic drilling of brittle materials and composites. International Journal of Mechanical Sciences. 2018;135:555–564. https://doi.org/10.1016/j.ijmecsci.2017.11.042 Search in Google Scholar

Verma GC, Pandey PM. Machining forces in ultrasonic vibration assisted end milling. Ultrasonics. 2019;94:350–363. https://doi.org/10.1016/j.ultras.2018.07.004 Search in Google Scholar

Aarsnes UJ, Di Meglio F, Shor RJ. Avoiding stick slip vibration in drilling through startup trajectory design. Journal of Process Control. 2018;70:24–35. https://doi.org/10.1016/j.jprocont.2018.07.019 Search in Google Scholar

Barakat ER, Miska S, Mengjlao Y, Simonescu PA, Takch N. The effect of hydraulic vibrations on initiation of buckling and axial force transfer for helically buckled pipes at simulated horizontal wellbore conditions. Proc SPE/IADC Drill Conf Exhib, Amsterdam, The Netherlands, February 2007. Search in Google Scholar

Gee R, Hanley C, Hussain R, Cannel L, Martinez J. Axial oscillations tools vs. lateral vibration tools for friction reduction what’s the best way to shake the pipe. London: Society of Petroleum Engineers, March 2015. Search in Google Scholar

Long Y, Wang X, Wang P, Zhang F. A method of reducing friction and improving the penetration rate by safely vibrating the drill-string at surface. Processes. 2023; 11(4):1242. https://doi.org/10.3390/pr11041242 Search in Google Scholar

Maidla E, Haci M, Jones S, Cluchy M, Alexander M, Warren T. Field proof of the new sliding technology for directionnal drilling. Proceedings of the SPE/IADC Drilling Conference, Amsterdam, The Netherlands, February 2005. Search in Google Scholar

Roper NF, Dellinger TB. Reduction of frictional coefficient in borehole by use of vibration. 1983: US 4384625 1983-05-24. Search in Google Scholar

Skyles LP, Amiraslani YA, Wilhoit JE. Converting static friction to kinetic friction to drill further and faster in directional holes. Proceedings of the IDAC/SPE Drilling Conference and Exhibition. San Diego CA, USA, 6–8 March 2012. Search in Google Scholar

Qiu H, Yang J, Butt S. Investigation on bit stick-slip vibration with random friction coefficients. Journal of Petroleum Science and Engineering. 2018;164:127–139. https://doi.org/10.1016/j.petrol.2018.01.037 Search in Google Scholar

Zhu X, Tang L, Yang Q. A literature review of approaches for stick-slip vibration suppression in oil well drill-string. Advances in Mechanical Engineering. 2014;6:967952. https://doi.org/10.1155/2014/967952 Search in Google Scholar

Leus M, Gutowski P. The analysis of longitudinal contact vibration effect on friction force using Coulomb and Dahl models. Journal of Theoretical and Applied Mechanics. 2008; 46(1):171–84 [in Polish]. Search in Google Scholar

Gutowski P, Leus M. The effect of longitudinal tangential vibrations on friction and driving forces in sliding motion. Tribology International. 2012; 55: 108–118. https://doi.org/10.1016/j.triboint.2012.05.023. Search in Google Scholar

Dahl PR. A solid friction model. Technical Report TOR-158(3107-18), The Aerospace Corporation, El Segundo, CA, 1968. Search in Google Scholar

Dahl PR. Solid friction damping of mechanical vibrations. AIAA Journal. 1976;14(12):1675–1682. https://doi.org/10.2514/3.61511. Search in Google Scholar

Dupont P, Armstrong B, Hayward V. Elasto-plastic friction model: contact compliance and stiction. Proceedings of the American Control Conference, Chicago, Illinois 2000:1072–1077. https://doi.org/10.1109/ACC.2000.876665. Search in Google Scholar

Dupont P, Hayward V, Armstrong B, Altpeter F. Single state elasto-plastic friction models. IEEE Transactions on Automatic Control. 2002; 47(5):787-792. https://doi.org/10.1109/TAC.2002.1000274. Search in Google Scholar

Storck H, Littmann W, Wallaschek J, Mracek M. The effect of friction reduction in presence of ultrasonic vibrations and its relevance to traveling wave ultrasonic motors. Ultrasonic. 2002;40:379–383. http://dx.doi.org/10.1016/S0041-624X(02)00126-9. Search in Google Scholar

Tsai CC, Tseng CH. The effect of friction reduction in presence of in-plane vibrations. Archive of Applied Mechanics. 2006;75:164–76. https://doi.org/10.1007/s00419-005-0427-0. Search in Google Scholar

Gutowski P, Leus M. Computational model for friction force estimation in sliding motion at transverse tangential vibrations of elastic contact support. Tribology International. 2015;90:455–462. https://doi.org/10.1016/j.triboint.2015.04.044. Search in Google Scholar

Gutowski P, Leus M. Computational model of friction force reduction at arbitrary direction of tangential vibrations and its experimental verification. Tribology International. 2020;143:106065. https://doi.org/10.1016/j.triboint.2019.106065. Search in Google Scholar

Godfrey D. Vibration reduces metal to metal contact causes an apparent reduction in friction. ASLE Transactions. 1967;10:183–192. https://doi.org/10.1080/05698196708972178. Search in Google Scholar

Hess DP, Soom A. Normal vibrations and friction under harmonic loads: part I – Hertzian contacts. Journal of Tribology. 1971;113:80–86. https://doi.org/10.1115/1.2920607. Search in Google Scholar

Tolstoi DM, Borisova GA, Grigorova SR. Friction regulation by perpendicular oscillation. Soviet Physics – Doklad. 1973;17(9):907–909. Search in Google Scholar

Canudas de Wit C, Olsson H, Astrom KJ, Lischynsky P. A new model for control of systems with friction. IEEE Transactions of Automatic Control. 1995;40(3):419-425. https://doi.org/10.1109/9.376053. Search in Google Scholar

Olsson H. Control systems with friction. Lund 1996. Search in Google Scholar

Bliman PA. Mathematical study of the Dahl’s friction model. European Journal of Mechanics, A/Solids. 1992;11(66):835–848. Search in Google Scholar