Please wait a minute...
Chinese Journal of Engineering Design  2021, Vol. 28 Issue (6): 701-708    DOI: 10.3785/j.issn.1006-754X.2021.06.005
Design for Quality     
Construction and verification of removal model for carbon brush grinding and forming
MAO Jun, TIAN Bo, XIE Miao, LI Yu-qi
School of Mechanical Engineering, Liaoning Technical University, Fuxin 123000, China
Download: HTML     PDF(1744KB)
Export: BibTeX | EndNote (RIS)      

Abstract  In order to study the grinding accuracy of the carbon brush grinding device, taking the self-developed carbon brush grinding device as the platform, the carbon brush grinding and forming removal model was constructed based on the Archard model, and the prediction formula of carbon brush grinding and forming removal rate was obtained, so as to obtain the grinding times of carbon brushes with different removal lengths in the transverse and longitudinal directions. Then, based on the developed carbon brush grinding device, the orthogonal experiment of carbon brush grinding and forming and the verification experiment of carbon brush grinding and forming removal model were carried out. The results showed that the factors affecting the grinding and forming effect of carbon brush were sorted in descending order of the influence degree, followed by the elastic coefficient of compression spring, the mesh number of sandpaper and the pulse frequency of grinding wheel stepping motor; the carbon brush grinding times obtained based on the established removal rate prediction formula were more accurate, which could ensure the grinding efficiency of carbon brushes. The research results provide theoretical guidance and experimental basis for the further development of different types of carbon brush grinding devices.

Received: 01 February 2021      Published: 28 December 2021
CLC:  TH 117  
Cite this article:

MAO Jun, TIAN Bo, XIE Miao, LI Yu-qi. Construction and verification of removal model for carbon brush grinding and forming. Chinese Journal of Engineering Design, 2021, 28(6): 701-708.

URL:

https://www.zjujournals.com/gcsjxb/10.3785/j.issn.1006-754X.2021.06.005     OR     https://www.zjujournals.com/gcsjxb/Y2021/V28/I6/701


碳刷研磨成形去除模型构建与验证

为研究碳刷研磨装置的研磨精度,以自主研制的碳刷研磨装置为平台,基于Archard模型构建了碳刷研磨成形去除模型,并得到了碳刷研磨成形去除率预测公式,从而获得了横、纵向所需去除长度不同的碳刷的研磨次数。然后,基于所研制的碳刷研磨装置,开展了碳刷研磨成形正交实验以及碳刷研磨成形去除模型验证实验。结果表明,对碳刷研磨成形效果产生影响的因素按影响程度从大到小排序,依次为压下弹簧弹性系数、砂纸目数、砂轮步进电机脉冲频率;基于建立的去除率预测公式所获得的碳刷研磨次数较为准确,可保证碳刷的研磨效率。研究结果为不同型号碳刷研磨装置的进一步研发提供了理论指导和实验依据。
[1] HE Tao, CHEN Qiang-man, CHEN Guo-yu, WANG Chuan-li, HUANG Sen, SHEN Hao. Research on lubrication and bearing characteristics of variable texture on sliding friction pair surface[J]. Chinese Journal of Engineering Design, 2021, 28(5): 585-593.
[2] YU Ru-fei, KOU Xin, CHEN Wei. Simulation analysis of novel surface texture based on CFD[J]. Chinese Journal of Engineering Design, 2021, 28(4): 466-472.
[3] HUANG Chuan-hui, ZHANG Ning, LIU Lei. Comparative analysis of performance of isolator of different materials in slewing bearing[J]. Chinese Journal of Engineering Design, 2020, 27(1): 128-134.
[4] ZHANG Yi-cong, ZHU Wei, WU Yu-guo, SHI Li-ping. Numerical simulation of sealing performance of Reuleaux triangular micro-dimpled textured end face[J]. Chinese Journal of Engineering Design, 2020, 27(1): 103-110.
[5] ZHANG Xu, LIU Su-mei, DING Kai-zhong, LU Kun. Design and research of ITER vacuum insulation cold mass support performance test platform[J]. Chinese Journal of Engineering Design, 2020, 27(1): 121-127.
[6] FENG Wei, LI Mei-wei, HE Shi-zhong, XIE Xiao-peng. Research on oil film thickness online monitoring for thrust bearing of large hydraulic generating units[J]. Chinese Journal of Engineering Design, 2019, 26(6): 652-657.
[7] TANG Dong-lin, LI Mao-yang, DING Chao, WEI Zi-bing, HU Lin, YUAN Bo. Research on steering stability of wheeled wall-climbing robot[J]. Chinese Journal of Engineering Design, 2019, 26(2): 153-161.
[8] FENG Wei, HE Shi-Zhong. Testing study on relationship of characteristic information in tribological system[J]. Chinese Journal of Engineering Design, 2011, 18(4): 288-292.
[9] PENG Jin-Min, LUO Min-Feng. Experimental analysis and optimization of design parameters on water lubricated plastic alloy bearings[J]. Chinese Journal of Engineering Design, 2010, 17(3): 196-200.
[10] NIU Rong-Jun, LIU Hong-Bin, HUANG Ping. Optimization design and numerical analysis on the local structure of magnetic heads[J]. Chinese Journal of Engineering Design, 2010, 17(2): 114-118.
[11] JIA Li-Xiao, ZHANG Yong-Zhen, NIU Yong-Ping, LI Jian, SUN Le-Min. Research progress of human step friction[J]. Chinese Journal of Engineering Design, 2010, 17(1): 61-65.