阎军

个人信息Personal Information

教授

博士生导师

硕士生导师

主要任职:力学与航空航天学院院长、党委副书记

性别:男

毕业院校:大连理工大学

学位:博士

所在单位:力学与航空航天学院

学科:工程力学. 计算力学. 固体力学. 航空航天力学与工程. 船舶与海洋结构物设计制造

办公地点:工程力学系系楼305房间

联系方式:0411-84706832

电子邮箱:yanjun@dlut.edu.cn

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EXPERIMENTAL STUDY ON FRICTION OF STEEL WIRES OF DYNAMIC UMBILICAL FOR FATIGUE LIFE ANALYSIS

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论文类型:会议论文

发表时间:2019-01-01

收录刊物:EI、CPCI-S

卷号:5A-2019

关键字:dynamic umbilical; fatigue life; friction; wear.

摘要:Dynamic umbilicals are widely used in the wet tree development of deep-water field. In the application of dynamic umbilicals, fatigue is a key failure mode which may cause severe economic consequences. The fatigue behavior of dynamic umbilical is complicated by the mechanical properties of the material, the cross-section design and the interaction ofdifferent components. Published studies have shown that the interaction friction stress of steel wires is critical for fatigue analysis. Coefficient offriction were used as a constant during the fatigue life analysis. However, the friction stress and the coefficient of friction may change during the wear of the steel wire. This paper presents a new experiment method and device to evaluate the change of the coefficient offriction of steel wire. Different cycles of reciprocating wear were carried out on samples to simulate interaction of the steel wires during the process offatigue. The samples are pairs of steel wires which were cut on a dynamic umbilical. The interaction stress and friction stress were measured during the test. Micro morphology on the surface of steel wire at the contract zone were measured to investigate the wear of the sample. The test result shows that the coefficient of friction and stress changes during the test. Worn marks were found on the contact zone of the steel wires. The change of the coefficient of friction may affect the accuracy of fatigue life analysis of dynamic umbilical. Conclusions were also presented on the coefficient offriction test and theoretical calculation method to approach a more accurate fatigue life for dynamic umbilical design.