DocumentCode
126984
Title
Research on degradation behavior propagation model based on wear
Author
Jinyong Yao ; Ruimeng Luo ; Xizhong Yin
Author_Institution
Sch. of Reliability & Syst. Eng., Beihang Univ., Beijing, China
fYear
2014
fDate
27-30 Jan. 2014
Firstpage
1
Lastpage
7
Abstract
The failure modes and failure mechanisms of Jet pipe electro-hydraulic servo valve (JPEHSV) have been analyzed, knowing that the weak links were the receiver of fluidic amplifier, edges of spool valve amplifier and radial clearance of the valve core and the valve sleeve. By studying the wear mechanisms of the weak links, effects of geometric size on wear and effects of performance of servo valve on geometry size, we determined that as the distance between nozzle and receiver increases, edge fillet radii increase and radial clearance of the valve core and the valve sleeve increase, due to wear in the work process of JPEHSV. Changing geometric size made the flow gains and the pressure gains of two amplifiers reduce, and leakage increase. At the same time, variations in performance parameters of the two amplifiers result in a reduction of flow gain and pressure gain of the servo valve, again causing leakage to increase. The mapping relationships between wear degradation and performance parameters have been analyzed and a double network structure established. To determine the propagation mechanism from the inherent network structure, statistical properties of the network structure were analyzed with small world network theory, and a degradation behavior propagation model based on the small world clustering is proposed. An Ant Colony optimization algorithm was adopted in order to obtain the degradation propagation path with the strong pervasion ability. Finally, an AMESim simulation model of JPEHSV has been built to verify the validity of the propogation model of wear dependent behavior.
Keywords
ant colony optimisation; digital simulation; failure analysis; mechanical engineering computing; reliability; servomechanisms; statistical analysis; valves; wear; AMESim simulation; ant colony optimization; degradation behavior propagation model; failure mechanisms; failure modes; flow gain; jet pipe electrohydraulic servo valves; nozzle; pressure gain; statistical analysis; wear degradation; Analytical models; Atmospheric modeling; Degradation; Failure analysis; Receivers; Servomotors; Valves; degradation behavior; jet pipe electro-hydraulic servo valve; propagation model; simulation; wear;
fLanguage
English
Publisher
ieee
Conference_Titel
Reliability and Maintainability Symposium (RAMS), 2014 Annual
Conference_Location
Colorado Springs, CO
Print_ISBN
978-1-4799-2847-7
Type
conf
DOI
10.1109/RAMS.2014.6798439
Filename
6798439
Link To Document