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Double crossed step-down-stress accelerated life testing for pneumatic cylinder based on cumulative damage model

  • Juan Chen
  • , Jia Li
  • , De Yi Wang
  • , Dian Liang Fan
  • , Xiao Ye Qi
  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Double Crossed Step-Down-Stress Accelerated Life Testing (DCSDS-ALT) discussed in this paper was implemented by switch down the double stresses alternately. Compared to constant stress test, step-stress test decreased specimen numbers, time and cost, and eventually well improve the accelerated testing efficiency. For pneumatic cylinder, the step-down-stress testing failure physics can be described as cumulative degradation model. By use of cumulative damage General Log-Linear relationship and Weibull assumption, the failure data obtained were equivalently converted to failure data under constant stress testing. Then the reliability specifications can be derived with better accuracy. The 5% of average lifetime estimation error and 1.85% of the characteristic lifetime error are very satisfying for pneumatic industrial lifetime prediction.

Original languageEnglish
Title of host publicationApplied Mechanics, Fluid and Solid Mechanics
Pages56-63
Number of pages8
DOIs
StatePublished - 2014
Event2013 International Conference on Applied Mechanics, Fluid and Solid Mechanics, AMFSM 2013 - , Singapore
Duration: 15 Nov 201316 Dec 2013

Publication series

NameAdvanced Materials Research
Volume871
ISSN (Print)1022-6680

Conference

Conference2013 International Conference on Applied Mechanics, Fluid and Solid Mechanics, AMFSM 2013
Country/TerritorySingapore
Period15/11/1316/12/13

Keywords

  • Accelerated life testing
  • Cumulative damage model
  • Double crossed step-down-stress
  • Pneumatic cylinder

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