High Power Density Speed Reducers: A TRIZ Based Classification of Mechanical Solutions
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[1] Wei Xu,et al. The parametric design of double-circular-arc tooth profile and its influence on the functional backlash of harmonic drive , 2014 .
[2] Jonathon W. Sensinger,et al. Unified Approach to Cycloid Drive Profile, Stress, and Efficiency Optimization , 2010 .
[3] Blaza Stojanovic,et al. A New Design of a Two-Stage Cycloidal Speed Reducer , 2011 .
[4] Fathi H. Ghorbel,et al. On the Kinematic Error in Harmonic Drive Gears , 2001 .
[5] Lorenzo Fiorineschi,et al. Abstraction framework to support students in learning creative conceptual design , 2018, Journal of Engineering, Design and Technology.
[6] Marco Tomassini,et al. Exploiting TRIZ Tools for enhancing systematic conceptual design activities , 2018 .
[7] Rathindranath Maiti,et al. A Novel Harmonic Drive With Pure Involute Tooth Gear Pair , 2004 .
[8] Yi-Pei Shih,et al. Design of a two-stage cycloidal gear reducer with tooth modifications , 2014 .
[9] W. Ostapski. Analysis of the stress state in the harmonic drive generator-flexspline system in relation to selected structural parameters and manufacturing deviations , 2010 .
[10] Lorenzo Fiorineschi,et al. Enhancing functional decomposition and morphology with TRIZ: Literature review , 2018, Comput. Ind..
[11] Jonathon W. Sensinger,et al. Cycloid vs. harmonic drives for use in high ratio, single stage robotic transmissions , 2012, 2012 IEEE International Conference on Robotics and Automation.
[12] M. A Parameswaran,et al. Analysis of a cycloid speed reducer , 1983 .
[13] Lorenzo Fiorineschi,et al. A new conceptual design approach for overcoming the flaws of functional decomposition and morphology , 2016 .
[14] Hsin-Hung Lin,et al. Application of a Fuzzy Decision Model to the Design of a Pillbox for Medical Treatment of Chronic Diseases , 2019, Applied Sciences.
[15] Robert J. Youmans,et al. Design fixation: Classifications and modern methods of prevention , 2014, Artificial Intelligence for Engineering Design, Analysis and Manufacturing.
[16] Roland De Guio,et al. OTSM Network of Problems for representing and analysing problem situations with computer support , 2007, IFIP CAI.
[17] Lorenzo Fiorineschi,et al. Systematic design of a new gearbox for concrete mixers , 2020, Journal of Engineering, Design and Technology.
[18] Rathindranath Maiti,et al. Minimum tooth difference in internal-external involute gear pair , 1996 .
[19] FRANCO CONCLI,et al. LUBRICATION OF GEARBOXES: CFD ANALYSIS OF A CYCLOIDAL GEAR SET , 2019, Computational and Experimental Methods in Multiphase and Complex Flow X.
[20] Carlo Gorla,et al. Theoretical and Experimental Analysis of a Cycloidal Speed Reducer , 2008 .
[21] Bingkui Chen,et al. Gear geometry of cycloid drives , 2008 .
[22] Donald R. Riley,et al. Topological Analysis of Single-Degree-of-Freedom Planetary Gear Trains , 1991 .
[23] Jonathon W. Sensinger,et al. Efficiency of High-Sensitivity Gear Trains, Such as Cycloid Drives , 2013 .
[24] Denis Cavallucci,et al. From TRIZ to OTSM-TRIZ: addressing complexity challenges in inventive design , 2007 .
[25] Vladis Kosse. Analytical investigation of the change in phase angle between the wave generator and the teeth meshing zone in high-torque mechanical harmonic drives , 1997 .