Advanced Search
HUANG Gang, ZHANG Qingdong, WANG Chunhai, ZHANG Boyang, KONG Ning. Experimental research on the blind hole-drilling method for measuring residual stress of steel plate[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2020, 41(9): 49-59, 80. DOI: 10.12073/j.hjxb.20200403002
Citation: HUANG Gang, ZHANG Qingdong, WANG Chunhai, ZHANG Boyang, KONG Ning. Experimental research on the blind hole-drilling method for measuring residual stress of steel plate[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2020, 41(9): 49-59, 80. DOI: 10.12073/j.hjxb.20200403002

Experimental research on the blind hole-drilling method for measuring residual stress of steel plate

More Information
  • Received Date: April 02, 2020
  • Available Online: November 06, 2020
  • The blind hole method is the most widely non-destructive measurement method to measure the residual stress. In order to use the blind hole method more reasonable and achieve the higher measurement accuracy, the tensile and compressive force is applied to the steel sheet sample and the internal stress of the sample is measured through the blind hole method, then compare with the theoretical values and analyze the measurement accuracy. The experimental results show that the minimum resolution of the blind hole method is about 1 MPa; the residual stress values which are measured by the blind hole method have some deviation under the different internal stress levels; as the tensile stress increases, the measurement accuracy of the blind hole method are increased, which becomes stable after the tensile stress is more than 60 MPa; as the absolute value of the compressive stress increases, the measurement accuracy are increased, which becomes stable after the compressive stress is less than −35 MPa; when the stress is between −10 MPa and 25 MPa, the measurement accuracy is relatively poor. According to the experimental measurement results, the compensation correction mode for the blind hole method is established, and after correction the measurement accuracy of the blind hole method under high stress conditions (tensile stress greater than 25 MPa, compressive stress less than −10 MPa) could be significantly improved. However, under the low stress conditions (tensile stress is less than 25 MPa, compressive stress is greater than −10 MPa), after correction the improvement of the measurement accuracy is still limited. It is recommended to increase measurement number to ensure the measurement accuracy. The compensation correction mode is applied to the actual measurement of residual stress of hot rolled automobile beam steel plate, the experimental results show that the transverse residual stress is greater than the longitudinal residual stress exists in the hot rolled steel plate with sliver warping defects, which provide a support for solving the slicing warpage problem.
  • 米谷茂. 残余应力的产生和对策[M]. 北京: 机械工业出版社, 1983.

    Shigeru Yonetani. The generation of residual stress and countermeasures [M]. Beijing: China Machine Press, 1983.
    张铁浩, 王洋, 方喜风, 等. 残余应力检测与消除方法的研究现状及发展[J]. 精密成形工程, 2017, 9(5): 122 − 127. doi: 10.3969/j.issn.1674-6457.2017.05.017

    Zhang Tiehao, Wang Yang, Fang Xifeng, et al. Research status and development of residual stress detection and elimination methods[J]. Journal of Netshape Forming Engineering, 2017, 9(5): 122 − 127. doi: 10.3969/j.issn.1674-6457.2017.05.017
    王楠, 罗岚, 刘勇, 等. 金属构件残余应力测量技术进展[J]. 仪器仪表学报, 2017, 38(10): 2508 − 2517. doi: 10.3969/j.issn.0254-3087.2017.10.020

    Wang Nan, Luo Lan, Liu Yong, et al. Research progress on stress measurement technology for metal components[J]. Chinese Journal of Scientific Instrument, 2017, 38(10): 2508 − 2517. doi: 10.3969/j.issn.0254-3087.2017.10.020
    徐春广, 宋文涛, 潘勤学, 等. 残余应力的超声检测方法[J]. 无损检测, 2014, 36(7): 25 − 31.

    Xu Chunguang, Song Wentao, Pan Qinxue, et al. Residual stress nondestructive testing method using ultrasonic[J]. Nondestructive Testing, 2014, 36(7): 25 − 31.
    曾杰伟, 张清东, 缪存孝, 等. 透射式磁弹性带钢应力无损检测[J]. 工程科学学报, 2015, 37(S1): 12 − 17.

    Zeng Jiewei, Zhang Qingdong, Miao Cunxiao, et al. Stress nondestructive testing of strip steel based on transmissive magnetoelastic effect[J]. Chinese Journal of Engineering, 2015, 37(S1): 12 − 17.
    段能全, 任建亮, 庞瑞强, 等. 3003铝合金X射线法表面残余应力的检测[J]. 中国表面工程, 2012, 25(6): 79 − 84. doi: 10.3969/j.issn.1007-9289.2012.06.013

    Duan Nengquan, Ren Jianliang, Pang Ruiqiang, et al. Measurement of surface residual stress of 3003 aluminum alloy by X-ray diffraction[J]. China Surface Engineering, 2012, 25(6): 79 − 84. doi: 10.3969/j.issn.1007-9289.2012.06.013
    沈军, 林波, 迟永刚, 等. 残余应力物理法测量技术研究状况[J]. 材料导报, 2012, 26(S1): 120 − 125.

    Shen Jun, Lin Bo, Chi Yonggang, et al. Research status of residual stress physical method measurement techniques[J]. Materials Review, 2012, 26(S1): 120 − 125.
    Mathar J. Determination of inherent stresses by measuring deformations of drilled holes[J].Archiv fur das Esenintittenwesen, 1933,6(7):2−15.
    吕国坤, 陈黎卿, 陈永新, 等. 盲孔法测量残余应力试验中塑性修正的插值方法[J]. 热加工工艺, 2014, 43(9): 185 − 187.

    Lü Guokun, Chen Liqing, Chen Yongxin, et al. Interpolation method in plastic correction in blind Hole method for residual stress measurement[J]. Hot Working Technology, 2014, 43(9): 185 − 187.
    黄超群, 李桓, 罗传光, 等. 盲孔法与压痕法测量2219铝合金熔焊焊缝残余应力的对比分析[J]. 焊接学报, 2017, 38(7): 54 − 58. doi: 10.12073/j.hjxb.20150710004

    Huang Chaoqun, Li Huan, Luo Chuanguang, et al. Comparative study of blind hole method and indentation method in measuring residual stress of 2219 aluminum alloy arc-welded joint[J]. Transactions of the China Welding Institution, 2017, 38(7): 54 − 58. doi: 10.12073/j.hjxb.20150710004
    丁斌彦, 曹新民. 小孔释放法测量焊接残余应力的精度分析[J]. 焊接, 1983(12): 4 − 7.

    Ding Binyan, Cao Xinmin. Accuracy analysis of measurement of welding residual stress by small hole release method[J]. Welding & Joining, 1983(12): 4 − 7.
    谭明鹤, 王荣辉, 黄永辉. 盲孔法测残余应力中应变释放系数的修正方法[J]. 热加工工艺, 2007, 36(19): 65 − 68. doi: 10.3969/j.issn.1001-3814.2007.19.024

    Tan Minghe, Wang Ronghui, Huang Yonghui. Correctional method of strain release coefficients by blind-hole technique to measure residual stress[J]. Hot Working Technology, 2007, 36(19): 65 − 68. doi: 10.3969/j.issn.1001-3814.2007.19.024
    孙渊. 预应力下试验标定的盲孔法测试技术[J]. 上海电机学院学报, 2011, 14(3): 141 − 145. doi: 10.3969/j.issn.2095-0020.2011.03.001

    Sun Yuan. Blind hole-driling by calibration experiment under pre-stress[J]. Journal of Shanghai Dianji University, 2011, 14(3): 141 − 145. doi: 10.3969/j.issn.2095-0020.2011.03.001
    李法庭. 盲孔法应变释放系数若干影响因素的敏感性分析研究[J]. 公路交通科技(应用技术版), 2017, 13(8): 207 − 209.

    Li Fating. Sensitivity analysis of several influencing factors of strain release coefficient of blind hole method[J]. Journal of Guizhou University of Finance and Economics, 2017, 13(8): 207 − 209.
    裴怡, 包亚峰, 唐慕尧, 等. 盲孔法测量精度的研究─—边界及孔间距的影响[J]. 焊接学报, 1994, 15(3): 191 − 196. doi: 10.3321/j.issn:0253-360X.1994.03.002

    Pei Yi, Bao Yafeng, Tang Muyao, et al. Study on measurement accuracy of blind hole method--effect of boundary and hole spacing[J]. Transactions of the China Welding Institution, 1994, 15(3): 191 − 196. doi: 10.3321/j.issn:0253-360X.1994.03.002
    游敏, 郑小玲, 王福德, 等. 盲孔法测定焊接残余应力适宜测试时间研究[J]. 武汉水利电力大学(宜昌)学报, 1999(1): 57 − 60.

    You Min, Zhen Xiaoling, Wang Fude, et al. On suitable testing time of blind hole technique for measuring residual stress[J]. Journal of China Three Gorges University (Natural Sciences), 1999(1): 57 − 60.
    王娜. 中厚板焊接残余应力测试的盲孔法研究[D]. 大连: 大连理工大学, 2007.

    Wang Na. Research on measuring welding residual stress of plate of moderate thickness using blind-hole method[D]. Da Lian: Dalian University of Technology, 2007.
    郑建毅, 庄明凤, 郑高峰, 等. 用逐层钻孔的小孔法测量非均匀残余应力[J]. 振动. 测试与诊断, 2014, 34(3): 420 − 425.

    Zhen Jianyi, Zhuang Mingfeng, Zhen Gaofeng, et al. Measurement of non-uniform residual stresses by incremental hole-drilling method[J]. Journal of Vibration, Measurement & Diagnosis, 2014, 34(3): 420 − 425.
    陈岚树, 董军, 彭洋, 等. 用于残余应力现场检测的DIC-盲孔法研究进展[J]. 建筑钢结构进展, 2014, 16(3): 37 − 44. doi: 10.3969/j.issn.1671-9379.2014.03.007

    Chen Lanshu, Dong Jun, Peng Yang, et al. An overview on field residual stress detection using DIC-Hole drilling Methodology[J]. Progress in Steel Building Structures, 2014, 16(3): 37 − 44. doi: 10.3969/j.issn.1671-9379.2014.03.007
    Brynk T, Romelczyk-Baishya B. Residual stress estimation based on 3D DIC displacement filed measurement around drilled holes[J]. Procedia Structural Integrity, 2018, 13: 1267 − 1272. doi: 10.1016/j.prostr.2018.12.259
    陈玲玲, 杨吟飞, 何宁, 等. 基于电子散斑干涉术的残余应力测量[J]. 传感器与微系统, 2010, 29(1): 108 − 110. doi: 10.3969/j.issn.1000-9787.2010.01.034

    Chen Lingling, Yang Yinfei, He Ning, et al. Residual stress measurement based on electronic speckle pattern interferometry[J]. Transducer and Microsystem Technologies, 2010, 29(1): 108 − 110. doi: 10.3969/j.issn.1000-9787.2010.01.034
    Pisarev V, Odintsev I, Eleonsky S, et al. Residual stress determination by optical interferometric measurements of hole diameter increments[J]. Optics and Lasers in Engineering, 2018, 110: 437 − 456. doi: 10.1016/j.optlaseng.2018.06.022
    Shokrieh M M, Jalili S M, Kamangar M A. An eigen-strain approach on the estimation of non-uniform residual stress distribution using incremental hole-drilling and slitting techniques[J]. International Journal of Mechanical Sciences, 2018, 148: 383 − 392. doi: 10.1016/j.ijmecsci.2018.08.035
    张清东, 陈先霖, 王长松, 等. 冷轧宽带钢横向内应力分布的试测与计算[J]. 北京科技大学学报, 1994(s2): 81 − 85.

    Zhang Qingdong, Chen Xianlin, Wang Changsong, et al. Measurement and calculation of transversal internal stress distribution in the Off-line cold rolled strip[J]. Journal of University of Science and Technology Beijing, 1994(s2): 81 − 85.
    李博, 张清东, 张晓峰. 带钢平整轧制残余应力场的二维数值模拟[J]. 轧钢, 2014, 31(1): 14 − 18. doi: 10.3969/j.issn.1003-9996.2014.01.004

    Li Bo, Zhang Qingdong, Zhang Xiaofeng, et al. Two-dimensional numerical simulation of residual stress of strip in temper rolling process[J]. Steel Rolling, 2014, 31(1): 14 − 18. doi: 10.3969/j.issn.1003-9996.2014.01.004
    翟传明, 邸小坛, 白伟亮, 等. 盲孔法检测既有金属结构应力的研究[J]. 建筑科学, 2011, 27(s1): 116 − 120.

    Zhai Chuanming, Di Xiaotan, Bai Weiliang, et al. Research on stress inspected by blind hole method in the existing metal structures[J]. Bulding Science, 2011, 27(s1): 116 − 120.
  • Related Articles

    [1]WU Xiangyang, SU Hao, SUN Yan, CHEN Ji, WU Chuanong. Thermal-mechanical coupled numerical analysis of laser + GMAW hybrid heat source welding process[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2021, 42(1): 91-96. DOI: 10.12073/j.hjxb.20200708001
    [2]WANG Wei, JIN Cheng, SHI Chunyuan. Effect of mesh size on weld temperature field of double ellipsoidal power density distribution heat source model[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2016, 37(7): 39-43.
    [3]LI Ruiying, ZHAO Ming, WU Chunmei. Determination of shape parameters of double ellipsoid heat source model in numerical simulation based on SYSWELD software[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2014, 35(10): 93-96.
    [4]LI Peilin, LU Hao. Sensitivity analysis and prediction of double ellipsoid heat source parameters[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2011, (11): 89-91,95.
    [5]CHEN Zhanglan, XIONG Yunfeng. Numerical analysis on deformation of welded construction[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2011, (5): 77-80.
    [6]LI Ruiying, ZHAO Ming, ZHOU Hongyan. Finite element analysis on 3-D molten pool geometry for GTAW based on SYSWELD software[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2011, (4): 41-44.
    [7]YANG Jianguo, CHEN Xuhui, ZHANG Xueqiu. Numerical modeling of new alterable heat source based on high energy welding beam[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2010, (2): 25-28.
    [8]LIU Wang-lan, HU Sheng-sun, MA Li. Numerical simulation of fluid flow field in plasma arc welding with 3-D static conical heat source[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2006, (6): 33-36.
    [9]LEI Yong-ping, HAN Feng-juan, Xia Zhi-dong, FENG Ji-cai. Numerical analysis of residual stress in ceramics/metal brazed joints[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2003, (5): 33-36,41.
    [10]WANG Yu, ZHAO Hai yan, WU Su, ZHANG Jian qiang. Shape parameter determination of double ellipsoid heat source model in numerical simulation of high energy beam welding[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2003, (2): 67-70.

Catalog

    Article views (512) PDF downloads (35) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return