TY - JOUR
T1 - A delay time model for a mission-based system subject to periodic and random inspection and postponed replacement
AU - Yang, Li
AU - Ma, Xiaobing
AU - Zhai, Qingqing
AU - Zhao, Yu
N1 - Publisher Copyright:
© 2016 Elsevier Ltd. All rights reserved.
PY - 2016/6
Y1 - 2016/6
N2 - We propose an inspection and replacement policy for a single component system that successively executes missions with random durations. The failure process of the system can be divided into two states, namely, normal and defective, following the delay time concept. Inspections are carried out periodically and immediately after the completion of each mission (random inspections). The failed state is always identified immediately, whereas the defective state can only be revealed by an inspection. If the system fails or is defective at a periodic inspection, then replacement is immediate. If, however, the system is defective at a random inspection, then replacement will be postponed if the time to the subsequent periodic inspection is shorter than a pre-determined threshold, and immediate otherwise. We derive the long run expected cost per unit time and then investigate the optimal periodic inspection interval and postponement threshold. A numerical example is presented to demonstrate the applicability of the proposed maintenance policy.
AB - We propose an inspection and replacement policy for a single component system that successively executes missions with random durations. The failure process of the system can be divided into two states, namely, normal and defective, following the delay time concept. Inspections are carried out periodically and immediately after the completion of each mission (random inspections). The failed state is always identified immediately, whereas the defective state can only be revealed by an inspection. If the system fails or is defective at a periodic inspection, then replacement is immediate. If, however, the system is defective at a random inspection, then replacement will be postponed if the time to the subsequent periodic inspection is shorter than a pre-determined threshold, and immediate otherwise. We derive the long run expected cost per unit time and then investigate the optimal periodic inspection interval and postponement threshold. A numerical example is presented to demonstrate the applicability of the proposed maintenance policy.
KW - Delay time
KW - Expected cost per unit time
KW - Maintenance modeling
KW - Periodic and random inspection
KW - Postponed replacement
UR - https://www.scopus.com/pages/publications/84961215910
U2 - 10.1016/j.ress.2016.01.016
DO - 10.1016/j.ress.2016.01.016
M3 - 文章
AN - SCOPUS:84961215910
SN - 0951-8320
VL - 150
SP - 96
EP - 104
JO - Reliability Engineering and System Safety
JF - Reliability Engineering and System Safety
ER -