外文翻译---计算机控制插齿刀加工椭圆齿轮齿形
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1、PDF外文:http:/ Computerized tooth profile generation of elliptical gears manufactured by shaper cutters Biing-Wen Bair Department of Mechanical Engineering, National Lien Ho Institute of Technology, Abstract This work simulates an elliptical gear drive, the axis of rotation of which
2、 is coincident with its geometric center, manufactured by shaper cutters. The mathematical model of an elliptical gear is developed based on the theory of gearing and gear generation mechanisms. In addition, the tooth undercutting of the gear is also investigated based on the developed mathematical
3、model of the elliptical gear, its unit normal vectors and a numerical method. A geometric relationship is developed and applied to prevent the occurrence of pointed teeth on elliptical gears. Further, this study also develops computer simulation programs to generate the tooth profile of ellipt
4、ical gears without tooth undercutting and pointed teeth. Comparison of the angular velocity variations of the elliptical gear drives is also made. The results show that the developed elliptical gear drive can be utilized as an oil pump with a larger pumping volume and less angular velocity variation
5、. 2002 Elsevier Science B.V. All rights reserved. Keywords: Elliptical gears; Undercutting; Pointed teeth 1. Introduction An elliptical gear drive, the rotation center of which coincides with one of its foci, is kinematically equivalent to the crossed link, and can be used to produce irr
6、egular rotations. In addition, it is well known for providing excellent characteristics such as accurate transmission, compact size, and ease of dynamic balance. Hence, elliptical gear drives have been applied successfully in various types of automatic machinery, quick-return mechanisms, packaging m
7、achines, and printing presses 1. This type of gearing can also be used to develop non-circular gears, which belong to high-order elliptical pitch curves. Second- order elliptical gear drives, the rotation center of which coincides with one of its foci, can find use in the design of instruments such
8、as pumps and flow meters 1. However, this type of gear set has two speed changes for each revolution, these two-cycle variations inducing a wave fluctuation that is so severe that the second-order elliptical gear set cannot be used as oil pumps for steady oil pumping. The design and manufactur
9、e of an elliptical gear are difficult because the pitch curve of the gear is an ellipse. Some studies 2 6 have focused on kinematic analysis and computer-aided design of elliptical pitch curves. Kuczewski 7 used a spur gear to approximate the profile of an elliptical ge
10、ar. Emura and Arakawa 8 used an elliptical gear to analyze a steering mechanism, where this steering mechan- ism can turn a carrier with a small radius. Also, Freudenstein and Chen 9 developed variable-ratio chain drives (e.g. elliptical gear drives), which were applied to bicycles and variable moti
11、on transmissions involving band drives, tape drives, and time belts with a minimum slack. Moreover, Litvin 10 adopted the concept of evolute curves to form the tooth profile, and also derived the tooth evolute of an ellipse. Chang and Tsay 11 used a shaper cutter and applied the inverse mechanism re
12、lationship and the equation of meshing to produce the mathematical model of elliptical gears, the rotation center of which turns around one of its foci. Also, Chang et al. 12 used a rack cutter and the same method to produce the mathematical model and undercut- ting conditions of the same type of el
13、liptical gears. However, when the elliptical gear surfaces are generated by shaper cutters, pointed teeth may appear and the tooth addendum is reduced. Pedrero et al. 13 proposed an approximation method for modifying the tooth addendum and contact ratio, and
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