机械动力学

高强度钢板残余应力振动时效消减技术试验研究*

  • 张清东 ,
  • 曾杰伟 ,
  • 罗晓明 ,
  • 张晓峰 ,
  • 陈兵
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  • 1. 北京科技大学机械工程学院 北京 100083;
    2. 国防科技大学磁悬浮技术研究中心 长沙 410073
张清东,男,1965年出生,博士,教授,博士研究生导师。主要研究方向为板带钢板形的自动控制与检测的理论、方法和技术,薄宽板带钢的屈曲与皱曲变形。E-mail:zhang_qd@me.ustb.edu.cn曾杰伟(通信作者),男,1985年出生,博士研究生。主要研究方向为电磁检测技术研究与振动时效控制。E-mail:yunsong118@163.com

网络出版日期: 2017-01-05

基金资助

* 国家科技支撑计划重点(2011BAE13B05)和国家自然科学基金(51075031)资助项目; 20160221收到初稿,20160918收到修改稿;

Experimental Study on Residual Stress Reduction for the High-strength Steel Based on Vibration Stress Relief

  • ZHANG Qingdong ,
  • ZENG Jiewei ,
  • LUO Xiaoming ,
  • ZHANG Xiaofeng ,
  • CHEN Bing
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  • 1. School of Mechanical Engineering, University of Science and Technology Beijing, Beijing 100083;
    2. Engineering Research Center of Maglev, National Universily of Defense Technology, Changsha 410073

Online published: 2017-01-05

摘要

根据振动时效(Vibration stress relief, VSR)原理,采用高频振动台作为振动时效的激振装置,设计安装于振动试验台、用于给钢板施加面内拉伸载荷的钢板张力加载机构,在实验室搭建出钢板振动时效试验研究平台,对振动时效消除高强度钢板残余应力的有效性进行试验研究。在VSR处理前后采用X射线衍射方法对马氏体高强度钢板和试验对照用T2镀锡基板的表面残余应力分布进行测量表征,并同时对试样的板形瓢曲和翘曲程度做了测量。研究结果表明,所设计的振动时效试验平台可以实现带张力工况下的钢板同频激振;在一定的激振频率和时间的振动时效处理后,两种试验钢板的残余应力均得到一定程度的消减和均匀化,但是对于板形瓢曲和翘曲缺陷基本没有改变;相对而言,马氏体高强度钢板的时效效果明显弱于T2镀锡基板;试验结果可以反映材料强度对于振动时效效应的显著影响和振动时效对于板形瓢曲及翘曲缺陷的微弱影响。

本文引用格式

张清东 , 曾杰伟 , 罗晓明 , 张晓峰 , 陈兵 . 高强度钢板残余应力振动时效消减技术试验研究*[J]. 机械工程学报, 2017 , 53(1) : 86 -92 . DOI: 10.3901/JME.2017.01.086

Abstract

Based on the principle of vibration stress relief (VSR), the effectiveness of the residual stress of high-strength steel plate is studied. The high frequency vibration table is selected as excitation device, and a steel in-plane tension loading device is designed and set up. Before and after the VSR process, X-ray diffraction method is utilized to measure the surface residual stress of Martensitic high strength steel plate and the control group-T2 tin plating board, and the possible deformations of strip buckling and warping of the steel plates are measured. Research results demonstrate that the high frequency vibration table and the loading tension strip steel can be implemented in the same vibration frequency. After being vibrated in a particular vibration frequency and a period of time, the residual stress of the two material steel is reduced and homogenized, but the strip buckling defects and warping defects of the steel plates has not changed and the residual stress reduction of high-strength steel is comparatively weaker than the control group. The experimental results can reflect that the strength of materials has significantly influence on vibration stress relief effect and vibration stress relief has limit influence on the strip buckling defects and warping defects of the steel plates.

 

参考文献

 [1]张清东,张勃洋,李瑞. 钢板微观表面质量控制理论与技术研究进展[J]. 机械工程学报,201652(10)32-45.

        ZHANG QingdongZHANG BoyangLI Rui. Advances in theory and technology for microscopic surface quality  control of steel strip[J]. Journal of Mechanical Engineering201652(10)32-45.

 [2]  张清东,张勃洋,李瑞. 镀锡钢板表面光泽度轧制转印控制[J]. 机械工程学报,201654(14)48-57.

        ZHANG QingdongZHANG BoyangLI Rui. Control of surface glossiness during temper rolling aimed at improving visual aesthetics of tinplate[J]. Journal of Mechanical Engineering201654(14)48-57.

 [3]  缪霞,钱东升,宋燕利. 磁处理对GCr15 轴承环冷轧淬火残余应力影响规律[J]. 机械工程学报,201450(16)112-118.

        MIAO XiaQIAN DongshengSONG Yanli. Influence rule of steel GCr15 in process of cold ring rolling-quenching by magnetic treatment[J]. Journal of Mechanical Engineering201450(16)112-118.

 [4]  黄欣泉,蔡志鹏. 电磁复合处理降低焊接残余应力增益效应的初步研究[J]. 机械工程学报,201147(4)88-92.

        HUANG XinquanCAI Zhipeng. Enhancement effect of reducing welding residual stress by composite electromagnetic treatment[J]. Journal of Mechanical Engineering201147(4)88-92.

 [5]  HE WMA Z YWANG X L. Technology of quantitative analysis on vibratory stress relief based on ultrasonic time-of-arrival method[J]. Journal of Mechanical Engineering200518(3)461-463.

 [6]  张勇. 二十一世纪高效节能环保高新技术-振动消除应力技术[J]. 中国机械工程,200213(19)1640-1642.

        ZHANG Yong. New technology with efficient, energy saving and environmental protection in the 21st century—the stress relief technology by vibration[J]. China Mechanical Engineering200213(19)1640-1642.

 [7]  YANG Y P. Understanding of vibration stress relief with computation modeling[J]. Journal of Materials Engineering and Performance200918(7)856-862.

 [8]  SEDEK PBROZDA JWANG Let al. Residual stress relief in MAG welded joints of dissimilar steels[J].  International Journal of Pressure Vessels and Piping200380 (10)705-713.

 [9]  WALKER C AWADDELL A JJOHNSTON U. Vibratory stress relief-an investigation of the underlying processes[J]. Process Mechanical Engineering199520(9)51-58.

[10]  WANG J SHSIEH C CLIN C M. Texture evolution and residual stress relaxation in a Cold-Rolled Al-Mg-Si-Cu alloy using vibratory stress relief technique[J]. Metallurgical and Materials Transactions A201344(1)806-818.

[11]  CAO L MHOU S QZENG Q L. Study on vibratory stress relief technology for the structural parts of hydraulic support[J]. Advanced Research on Electronic CommerceWeb Application, and Communication201114(1)340-345.

[12]  HE WGU B PZHENG J Y. Research on high-frequency vibratory stress relief of small Cr12MoV quenched specimens[J]. Applied Mechanics and Materials201215(1)1157-1161.

[13]  DJURIC DVALLANT RKERSCH K. Vibration stress relief treatment of welded high-strength martensitic steel[J]. Welding in the World201155(2)86-93.

[14]  韩衍昭,刘爱敏. 振动时效技术的研究现状与发展[J]. 铸造技术,201334(4)479-481.

        HAN YanzhaoLIU Aimin. Research situation and development of vibration stress relief technology[J]. Foundry Technology201334(4)479-481.

[15]  杨君宝. 基于位错理论的振动消应力的机理研究[J]. 机械研究与应用,200720(2)62-64.

        YANG Junbao. Research on mechanism of vibration time effect based on dislocation theory[J]. Mechanical Research & Application200720(2)62-64.

[16]  饶德林,陈立功,倪纯珍. 振动时效技术的研究状况[J].焊接,2004(11)4-7.

        RAO DelinCHEN LigongNI Chunzhen. Research state of vibratory stress relief[J]. Welding & Joining2004(11)4-7.

[17]  SCHAJER G SPRIME M B. Use of inverse solutions for residual stress measurement[J]. Journal of Engineering Materials and Technology2006128(3)375-382

[18]  SUN M CSUN Y HWANG R K. Vibratory stress relieving of welded sheet steels of low alloy high strength steel[J]. Materials Letters200358 (7)1396-1399.

[19]  RAO DWANG DCHEN Let al. The effectiveness evaluation of 314L stainless steel vibratory stress relief by dynamic stress[J]. International Journal of Fatigue200714(1)192-196.

[20]  中华人民共和国国家发展和改革委员会,中国国家标准化管理委员会. JB/T5926-2005  振动时效效果评定方法[S]. 北京:中国标准出版社,2005.

        National Development and Reform Commission of the People’s Republic of ChinaStandardization Administration of the People’s Republic of China. JB/T5926-2005 Vibrating stress relief effect-evaluation methods[S]. BeijingStandards Press of China2005.

[21]  房德馨,姚培勤. 用振动消除金属构件残余应力的原理和应用[J]. 大连工学院学报,198322(3)77- 80.

        FANG DexinYAO Peiqin. The principles and applications of residual stress elimination by means of vibration[J]. Journal of Dalian University of Technology198322(3)77-80.

[22]  芦亚萍,马振宇,贾权仕.振动时效机理的研究[J].机械科学与技术,200120(4)587-589

        LU YapingMA ZhenyuJIA Quanshi. Research on vibratory stress relief mechanism[J]. Mechanical Science and Technology200120(4)587-589.

[23]  马振宇,芦亚萍,贾叔仕.振动时效微观机理研究[J].机械工程师,2003(2)30-32

        MA ZhenyuLU YapingJIA Shushi. The study of VSR’s micro mechanism[J]. Mechanical Engineer2003(2)30-32.

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