Cite

[1] D. Jelaska. Gears and gear drives, John Wiley & Sons Ltd, 2012, ISBN 978-1-119-94130-9.10.1002/9781118392393Search in Google Scholar

[2] K. Michaelis, H. Winter. Development of a high temperature FZG-ryder gear lubricant load capacity machine (Wright Research and Development Center, 1989). Identification number F49620-86-C-0081.10.21236/ADA210799Search in Google Scholar

[3] ISO 14635-1:2000 Gears -- FZG test procedures -- Part 1: FZG test method A/8,3/90 for relative scuffing load-carrying capacity of oils.Search in Google Scholar

[4] ISO 14635-2:2004 Gears -- FZG test procedures -- Part 2: FZG step load test A10/16, 6R/120 for relative scuffing load-carrying capacity of high EP oils.Search in Google Scholar

[5] ISO 14635-3:2005 Gears -- FZG test procedures -- Part 3: FZG test method A/2, 8/50 for relative scuffing load-carrying capacity and wear characteristics of semifluid gear greases.Search in Google Scholar

[6] B.R. Höhn, G. Steinberger. Test methods for Lubricant Related Influences on the Gear Load Capacity (Lubricants Russia 2006, 2nd international conference).Search in Google Scholar

[7] T. Kellner. GE Reports website (2016), Fit to print: New Plant Will Assemble World’s First Passenger Jet Engine with 3D printed Fuel Nozzles, Next-Gen Materials, http://www.gereports.com/ (accessed on 1 June 2016).Search in Google Scholar

[8] H. Krueger. Standardization for Additive Manufacturing in Aerospace. Engineering 2017 (3), No. 5: 585. DOI: 10.1016/J.ENG.2017.05.01010.1016/J.ENG.2017.05.010Search in Google Scholar

[9] R. Mitrović, Ž. Mišković, M. Ristivojević, A. Dimić, J. Danko, J. Bucha, M. Rackov. Determination of optimal parameters for rapid prototyping of the involute gears. IOP Conference Series: Materials Science and Engineering 2018 (393). DOI: 10.1088/1757-899X/393/1/01210510.1088/1757-899X/393/1/012105Open DOISearch in Google Scholar

[10] 3Dhubs. PLA vs. ABS: What's the difference? https://www.3dhubs.com/ (accessed on March 2018.)Search in Google Scholar

[11] MakerBot. Replicator 2X-Experimental 3D printer. User Manual. https:// http://downloads.makerbot.com (accessed on March 2018.)Search in Google Scholar

[12] R. Mitrović, Ž. Mišković, M. Ristivojević, A. Dimić, J. Danko, J. Bucha, M. Rackov. Statistical correlation between the printing angle and stress and strain of 3D printed models under static axial loading. ECF22 - Loading and Environmental effects on Structural Integrity, 2018.10.1016/j.prostr.2018.12.079Search in Google Scholar

[13] T. Letcher, B. Rankouhi, S. Javadpour. Experimental study of mechanical properties of additively manufactured abs plastic as a function of layer parameters. Proceedings of the ASME 2015 International Mechanical Engineering Congress and Exposition, Houston, Texas, Nov.13- 19, 2015, 1-8.10.1115/IMECE2015-52634Search in Google Scholar

[14] A. R. T. Perez, D. A. Roberson, R. B. Wicker. Fracture Surface Analysis of 3D-Printed Tensile Specimens of Novel ABS-Based Materials. J Fail. Anal. and Preven. 2014 (14), 343 - 353.Search in Google Scholar

[15] M. Åkerblom. Gear noise and vibration - a literature survey (Volvo Construction Equipment Components AB SE-631 85 Eskilstuna, Sweden).Search in Google Scholar

[16] K. Terashima, N. Tukamoto, N. Nishida. Development of plastic gears for power transmission - Design on load carying capacity. Bulletin of JSME 1986 (29), No. 250, 1326 - 1329.10.1299/jsme1958.29.1326Search in Google Scholar

[17] C. J. Hooke, K. Mao, D. Walton, A. R. Breeds and S. N. Kukureka. Measurement and Prediction of the Surface Temperature in Polymer Gears and Its Relationship to Gear Wear J. Tribol 1993 (115), No. 1, 119 - 124.10.1115/1.2920964Search in Google Scholar

[18] L. Jia-Jun, C. Yu, C. Yin-Qian. The generation of wear debris of different morphology in the running-in process of iron and steels. Wear 1992 (254), 259 - 267.10.1016/0043-1648(92)90158-5Search in Google Scholar

[19] Ž. Mišković, R. Mitrović, Z. Stamenić. Analysis of grease contamination influence on the internal radial clearance of ball bearings by thermographic inspection. Thermal Science 2016 (20), No. 1, 255 - 265.10.2298/TSCI150319083MSearch in Google Scholar

[20] A. Glowacz, Z. Glowacz. Diagnosis of the three-phase induction motor using thermal imaging Infrared Physics & Technology 2017 (81), 7 - 16.10.1016/j.infrared.2016.12.003Search in Google Scholar

[21] M. Fidali. An idea of continuous thermographic monitoring of machinery (9th International Conference on Quantitative InfraRed Thermography, 2008).10.21611/qirt.2008.02_08_14Search in Google Scholar

[22] Extech IRC57 InfraCam SD Thermal Imaging Camera, http://www.instrumentation2000.com/.Search in Google Scholar

[23] Thermowork Inc. Emissivity Table (https://www.thermoworks.com/emissivity_table).Search in Google Scholar

[24] SKF USA Inc. Condition Monitoring Center. The SKF Microlog series catalogue. SKF Group, Livingston, 2018.Search in Google Scholar

[25] SKF USA Inc. Condition Monitoring Center. SKF Microlog Analyzer Accessories Catalog. SKF Group, San Diego, 2018.Search in Google Scholar

[26] R. Jančo, L. Écsi, P. Élesztős. FSW Numerical Simulation of Aluminium Plates by SYSWELD- Part II. Strojnícky časopis - Journal of Mechanical Engineering 2016 (66), No. 2, 29 - 36. DOI: 10.1515/scjme-2016-001610.1515/scjme-2016-0016Open DOISearch in Google Scholar

[27] P. Élesztős, R. Jančo, V. Voštiar. Optimization of Welding Process using a Genetic Algorithm. Strojnícky časopis - Journal of Mechanical Engineering 2018 (68), No. 2, 17 - 24. DOI: 10.2478/scjme-2018-0014.10.2478/scjme-2018-0014Open DOISearch in Google Scholar

eISSN:
2450-5471
Language:
English
Publication timeframe:
2 times per year
Journal Subjects:
Engineering, Mechanical Engineering, Fundamentals of Mechanical Engineering, Mechanics