2015International Journal of Research in Engineering and TechnologyOpen access

FINITE ELEMENT MODELING AND BENDING STRESS ANALYSIS OF NON STANDARD SPUR GEAR

G. Mallesh

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Abstract

Gears are toothed wheels, transmitting power and motion from one shaft to another by means of successive engagement of teeth.Having a higher degree of reliability, compactness, high velocity ratio and finally able to transmit motion at a very low velocity, gears are gaining importance as the most efficient means for transmitting power.A gearing system is susceptible to problems such as interference, backlash and undercut.The contact portions of tooth profiles that are not conjugate is called interference.Furthermore due to interference and in the absence of undercut, the involute tip or face of the driven gear tends to dig out the non-involute flank of the driver.The response of a spur gear and its wear is an engineering problem that has not been completely overcome yet.With the perspective of overcoming such defects and for increase the efficiency of gearing system, the use of a non-standard spur gear i.e., an asymmetric spur gear having different pressure angles for drive and coast side of the tooth comes into picture.This paper emphasis on the generation of an asymmetric spur gear tooth using modeling software and bending stress at the root of Asymmetric spur gear tooth is estimated by finite element analysis using ANSYS software and results were compared with the standard spur gear tooth.

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Gears are toothed wheels, transmitting power and motion from one shaft to another by means of successive engagement of teeth.Having a higher degree of reliability, compactness, high velocity ratio and finally able to transmit motion at a very low velocity, gears are gaining importance as the most efficient means for transmitting power.A gearing system is susceptible to problems such as interference, backlash and undercut.The contact portions of tooth profiles that are not conjugate is called interference.Furthermore due to interference and in the absence of undercut, the involute tip or face of the driven gear tends to dig out the non-involute flank of the driver.The response of a spur gear and its wear is an engineering problem that has not been completely overcome yet.With the perspective of overcoming such defects and for increase the efficiency of gearing system, the use of a non-standard spur gear i.e., an asymmetric spur gear having different pressure angles for drive and coast side of the tooth comes into picture.This paper emphasis on the generation of an asymmetric spur gear tooth using modeling software and bending stress at the root of Asymmetric spur gear tooth is estimated by finite element analysis using ANSYS software and results were compared with the standard spur gear tooth.

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Available abstract

Gears are toothed wheels, transmitting power and motion from one shaft to another by means of successive engagement of teeth.Having a higher degree of reliability, compactness, high velocity ratio and finally able to transmit motion at a very low velocity, gears are gaining importance as the most efficient means for transmitting power.A gearing system is susceptible to problems such as interference, backlash and undercut.The contact portions of tooth profiles that are not conjugate is called interference.Furthermore due to interference and in the absence of undercut, the involute tip or face of the driven gear tends to dig out the non-involute flank of the driver.The response of a spur gear and its wear is an engineering problem that has not been completely overcome yet.With the perspective of overcoming such defects and for increase the efficiency of gearing system, the use of a non-standard spur gear i.e., an asymmetric spur gear having different pressure angles for drive and coast side of the tooth comes into picture.This paper emphasis on the generation of an asymmetric spur gear tooth using modeling software and bending stress at the root of Asymmetric spur gear tooth is estimated by finite element analysis using ANSYS software and results were compared with the standard spur gear tooth.

Key concepts: Spur gear, Spur, Finite element method, Structural engineering, Stress (linguistics), Bending, Materials science, Engineering

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