TY - JOUR
T1 - Numerical Simulation Study on Wear of Spur Gears under Dynamic Conditions
AU - Zheng, Changsong
AU - Zhang, Zhouli
AU - He, Chunping
AU - Lou, Weipeng
AU - Li, Huizhu
AU - Du, Qiu
N1 - Publisher Copyright:
© 2019 Editorial Department of Journal of Beijing Institute of Technology .
PY - 2019/3/1
Y1 - 2019/3/1
N2 - A numerical simulation model is proposed to predict the wear depth of gears, where Archard's wear equation and a nonlinear dynamic model are combined to establish a wear calculation model under dynamic conditions. The dynamic meshing force, determined by the non-linear dynamic model, and the sliding coefficient are used by Archard's wear equation to calculate the surface wear. Then the dynamic meshing force and sliding coefficient would be recalculated according to the surface wear state. After repeated iterations, the simulation results show that the peak and fluctuation of the meshing force increase first, then decrease, and eventually maintain stability during the process of wear. As for the distribution of wear depth, its fluctuation also increases first and then declines. Finally, the distribution of wear depth becomes V-shaped. Comparing the trends of the two factors, it is clear that the meshing force and wear depth are closely related. Moreover, the wear rate maintains a higher constant value first and then declines to a lower constant value.
AB - A numerical simulation model is proposed to predict the wear depth of gears, where Archard's wear equation and a nonlinear dynamic model are combined to establish a wear calculation model under dynamic conditions. The dynamic meshing force, determined by the non-linear dynamic model, and the sliding coefficient are used by Archard's wear equation to calculate the surface wear. Then the dynamic meshing force and sliding coefficient would be recalculated according to the surface wear state. After repeated iterations, the simulation results show that the peak and fluctuation of the meshing force increase first, then decrease, and eventually maintain stability during the process of wear. As for the distribution of wear depth, its fluctuation also increases first and then declines. Finally, the distribution of wear depth becomes V-shaped. Comparing the trends of the two factors, it is clear that the meshing force and wear depth are closely related. Moreover, the wear rate maintains a higher constant value first and then declines to a lower constant value.
KW - Archard's wear equation
KW - Dynamic meshing force
KW - Gear
KW - Reconstruction of tooth profile
KW - Wear
UR - http://www.scopus.com/inward/record.url?scp=85067423335&partnerID=8YFLogxK
U2 - 10.15918/j.jbit1004-0579.17127
DO - 10.15918/j.jbit1004-0579.17127
M3 - Article
AN - SCOPUS:85067423335
SN - 1004-0579
VL - 28
SP - 146
EP - 154
JO - Journal of Beijing Institute of Technology (English Edition)
JF - Journal of Beijing Institute of Technology (English Edition)
IS - 1
ER -