Title :
Fault simulation and abrasion failure life forecast of key components for breech mechanism based on virtual prototype
Author :
Cao, Lijun ; Hu, Huibin ; Liu, Guangsheng ; Yuan, Zhanjie ; Ma, Qiao ; Zhi, Jianzhuang
Author_Institution :
Shijiazhuang Mech. Eng. Coll., Shijiazhuang, China
Abstract :
Breech mechanism is the key and important device to improve reliability and maintenance for large caliber guns. It´s major fault mode is grain abrasion caused by dry sliding friction. There are no feasible and practical technologies to simulate and predict the abrasion failure life of key components for breech mechanism. A new simulation and prediction method is firstly put forward in this paper. Based on Pro/E and ADAMS, the virtual prototype of breech mechanism of semiautomatic vertical sliding-wedge type is established. To validate its precision and affectivity, qualitative and quantitative verification methods are adopted to check the virtual prototype of breech mechanism. Virtual prototype produces key components´ load spectrums and failure thresholds. Dry sliding friction and abrasion experiment provides abrasion rules of typical materials. Finial simulation and prediction results are given as abrasion thresholds and operating items, which provide sufficient references for breech mechanism´s maintenance and safeguard.
Keywords :
abrasion; failure analysis; fault diagnosis; maintenance engineering; military computing; military equipment; reliability; sliding friction; virtual prototyping; weapons; ADAMS; Pro/E; abrasion failure life forecast; abrasion rule; breech mechanism; dry sliding friction; failure threshold; fault mode; fault simulation; grain abrasion; large caliber gun; load spectrums; maintenance; prediction method; qualitative verification method; quantitative verification method; reliability; safeguard; semiautomatic vertical sliding-wedge type; simulation method; virtual prototype; Computational modeling; Load modeling; Mathematical model; Predictive models; Prototypes; Shafts; Solid modeling; abrasion; breech mechanism; forecast; simulation; virtual prototype;
Conference_Titel :
Quality, Reliability, Risk, Maintenance, and Safety Engineering (ICQR2MSE), 2012 International Conference on
Conference_Location :
Chengdu
Print_ISBN :
978-1-4673-0786-4
DOI :
10.1109/ICQR2MSE.2012.6246382