Study on Wear of Bionic Roller Based on Arca Subcrenala Lischke

Article Preview

Abstract:

Based on the Arca subcrenala Lischke’s surface morphology and its excellent wear resistance, we designed and processed the cement roller stripe-shaped surface. We used test optimization and regression analysis techniques, made the number of stripes and stripe’s depth as the experimental factors, and have studied the stripe-shaped cement roller wear mechanism. We received the relationship function between roller wear with the depth and number of stripes, explored the influence of resistance about wear based on the various test factors, and made a simple analysis about the wearable mechanism of the stripe-shaped Bionic roller.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

37-43

Citation:

Online since:

November 2013

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Maolin Li. Analyses on metal wearable materials consumption in domestic cement industry[J]. Cement Guide for New Epoch, 2011(5): 32-39.

Google Scholar

[2] Chang-ming Gao. Type Selection Trend of Grinding Installations in Present Cement Industry [J]. Cement Technology, 2006(2): 18-22.

Google Scholar

[3] Gan-nian Luo. Form and choice of wear surface on roller press's roller [J]. Cement Guide for New Epoch, 2010 (4): 36-38.

Google Scholar

[4] Ji-sheng Wang, Guang-yu Zhang, Su-ling Wang. Roller press technology and the development [J]. Cement engineering, 2011(2): 45-49.

Google Scholar

[5] Jian-jun Wei, Jian Pan, Zhi-quan Huang. Failure types and repair method of roller press surface[J]. Cement Guide for New Epoch, 2007, 5(5): 35-37.

Google Scholar

[6] Schumacher, Tyson. A new wear protection of roller presses. Cement Technology, 1999(2): 21-26.

Google Scholar

[7] Wei HU, Qing-bo Wang, Bing Li, Qian Cong, Bo Qu. Cement Grinding System Status of Roller Press[J]. Agricultural Science & Technology, 2012, 13(6): 1328-1330.

Google Scholar

[8] Bao-jun Rong. Biomimetic Geometrical Structure Surfaces with Anti-abrasion Function and Their Abrasive Wear Against Soil [D]. Jilin University, (2008).

Google Scholar

[9] Guang-ming Chen. DEM simulation in wear behaviors of bionic structures based on four wear-resistant biological surface morphologies[D]. Jilin University, (2008).

Google Scholar

[10] Fei-qing Wu, Hang Gao, Xiao-he Xu. The measures improving the life of surface of HP grinding roll. Mining & Processing Equipment, 2000(1): 23-25.

Google Scholar

[11] Rechenberg I, Khyari A R E. The sandskink of the sahara-A model for friction and wear reduction[C]. Proceedings of the International Conference of Bionic Engineering ICBE'06, Changchun, P R China, 2006, 213-216.

Google Scholar

[12] Lu-quan Ren, Yun-hong Liang. Coupling Bionics[M], Beijing: Science Press, (2011).

Google Scholar

[13] Zhuo-juan Yang, Zhi-wu Han, Luquan Ren. Experiment on Wear Resistance of 55 Steel Bionic Non-smoothed Surfaces at High Temperature[J]. Transactions of the Chinese Society for Agricultural Machinery, 2008, 39(12): 196-199.

Google Scholar

[14] Xin Wang, Yong-sheng Zhang, Zhi-quan Huang, Jian Xu. Welding restoration of roller surface [J]. Cement engineering, 2004(1): 37-39.

Google Scholar