基于磁谐振的预应力钢绞线交变应力监测试验研究

刘惠玲1,2,张洪1,2,张森华1,2,夏俊凤1,2,周建庭1,2

振动与冲击 ›› 2023, Vol. 42 ›› Issue (14) : 189-197.

PDF(2874 KB)
PDF(2874 KB)
振动与冲击 ›› 2023, Vol. 42 ›› Issue (14) : 189-197.
论文

基于磁谐振的预应力钢绞线交变应力监测试验研究

  • 刘惠玲1,2,张洪1,2,张森华1,2,夏俊凤1,2,周建庭1,2
作者信息 +

Experimental research on monitoring the alternating stress of the prestressed steel strand based on the method of magnetic resonance

  • LIU Huiling1,2,ZHANG Hong1,2,ZHANG Senhua1,2,XIA Junfeng1,2,ZHOU Jianting1,2
Author information +
文章历史 +

摘要

预应力钢绞线的交变应力难以测量。为明确磁谐振方法对预应力钢绞线交变应力监测的适用性,基于磁弹效应和磁滞效应,分析了应力交替过程中拉伸应变效应的感应线圈电感变化,开展了交变荷载作用下的钢绞线应力监测试验。研究了不同交变荷载作用下传感器感应电压的变化规律,明晰了传感器感应电压与交变荷载的对应关系,揭示了交变荷载对传感器感应电压的影响机制。结果表明,交变荷载作用下的感应电压与荷载之间存在线性函数关系,其交变应力监测误差小于5%,磁谐振方法可以监测预应力钢绞线的交变应力。

Abstract

The alternating stress of the prestressed steel strand is difficult to measure. In order to clarify the applicability of magnetic resonance method for monitoring the alternating stress of prestressed steel strand, based on the magnetoelastic effect and hysteresis effect, the inductance variation of induction coil induced by tensile strain effect during stress alternation is analyzed, and the steel stranded wire stress monitoring test under the action of the alternation load was carried out. Changes of corresponding sensor induced voltages under different alternating load is researched, the corresponding relationship between the sensor induced voltages and the alternation load is clarified, and the influence mechanism of the alternation load on the sensor induced voltages is revealed. The results show that there is a linear relationship between induced voltage and load, and the stress monitoring error is less than 5%. The magnetic resonance method can monitor the alternating stress of prestressed steel strands.

关键词

交变应力 / 预应力钢绞线 / 磁谐振 / 磁弹效应 / 监测

Key words

alternating stress / prestressed steel strand / magnetic resonance / magnetoelastic effect / monitoring

引用本文

导出引用
刘惠玲1,2,张洪1,2,张森华1,2,夏俊凤1,2,周建庭1,2. 基于磁谐振的预应力钢绞线交变应力监测试验研究[J]. 振动与冲击, 2023, 42(14): 189-197
LIU Huiling1,2,ZHANG Hong1,2,ZHANG Senhua1,2,XIA Junfeng1,2,ZHOU Jianting1,2. Experimental research on monitoring the alternating stress of the prestressed steel strand based on the method of magnetic resonance[J]. Journal of Vibration and Shock, 2023, 42(14): 189-197

参考文献

[1] ZHU W X, SHEN Q X, QIN H Y. Monitoring of prestress and bond stress of self-sensing FBG steel strand [J]. Measurement, 2021,177:109246.
 [2] 刘欣, 封皓, 杨洋, 等. 基于J-A力磁耦合模型的压力磁测系统研究[J]. 电子测量与仪器学报, 2021,35(4):232-238.
LIU Xin, FENG Hao, YANG Yang, et al. Research on pressure magnetic measurement system based on J-A model of force-magnetic coupling [J]. Journal of Electronic Measurement and Instrumentation, 2021,35(4):232-238.
 [3] 胡孝阳, 段元锋, 魏巍, 等. 高钒索索力监测电磁弹传感器的研发与应用[J]. 结构工程师, 2021,37(02):78-83.
HU Xiao-yang, DUAN Yuan-feng, WEI Wei, et al. Development and application of elasto-magneto-electric(EME)sensor for force monitoring of galfan cables [J]. Structural Engineer, 2021,37(02):78-83.
 [4] 柴爱红. 磁通量传感器在桥梁索力监测中的应用[J]. 山西建筑, 2014,40(22):209-211.
CHAI Ai-hong. On application of magnetic flux sensor in supervision of bridge cable force [J]. Shanxi Architecture, 2014,40(22):209-211.
 [5] 刘小锋, 冯志敏, 胡海刚, 等. 基于磁通量法索力测量模型参数的调适研究[J]. 传感技术学报, 2021,34(07):926-931.
LIU Xiao-feng, FENG Zhi-min, HU Hai-gang, et al. Research on adjustment method for model parameters of cable tension measurement based on the elasto-magnetic effect [J]. Chinese Journal of Sensors and Actuators, 2021,34(07):926-931.
 [6] 殷志祥, 宁志扬. 基于磁通量法的空间网架结构无损应力检测的试验方法研究[J]. 防灾减灾工程学报, 2020,40(05):803-810.
YIN Zhi-xiang, NING Zhi-yang. Study on the test method of nondestructive stress test of space truss structure by magnetic flux method [J]. Journal of Disaster Prevention and Mitigation Engineering, 2020,40(05):803-810.
 [7] DUAN Y F, ZHANG R, DONG C Z, et al. Development of elasto-magneto-electric (EME) sensor for in-service cable force monitoring [J]. International Journal of Structural Stability and Dynamics, 2016,16(04):1640016.
 [8] 陈静雯, 张洪, 张森华, 等. 基于逆磁致伸缩的无励磁钢绞线应力量测研究[J]. 仪器仪表学报, 2019,40(10):10-18.
CHEN Jing-wen, ZHANG Hong, ZHANG Sen-hua, et al. Research on stress measurement of non-excited steel strand based on inverse magnetostriction [J]. Chinese Journal of Scientific Instrument, 2019,40(10): 10-18.
 [9] 修成竹, 任亮, 李宏男. 自感式拉力传感器理论模型与实验研究[J]. 仪器仪表学报, 2016,37(12):2797-2804.
XIU Cheng-zhu, REN Liang, LI Hong-nan. Theoretical model and experimental research of self-inductance tension sensor [J]. Chinese Journal of Scientific Instrument, 2016,37(12):2797-2804.
[10] 郭涛. 包络式磁弹索力传感器设计及钢缆索应力试验研究[J]. 失效分析与预防, 2019,14(06):372-377.
GUO Tao. Design of enveloping magneto-elastic cable force sensor and stress test of steel cable [J]. Failure Analysis and Prevention, 2019,14(06):372-377.
[11] NOVIKOV V F, KULAK S M, PARAKHIN A S. Testing uniaxial stresses in steels with allowance for their magnetoelastic sensitivity [J]. Russian Journal of Nondestructive Testing, 2021,57(4):310-319.
[12] 孟凡顺, 王璐, 邓瑞, 等. 电磁法检测石油套管应力的试验研究[J]. 振动与冲击, 2019,38(06):245-248.
MENG Fan-shun, WANG Lu, DENG Rui, et al. Experimental study on the electromagnetic method for detecting stresses in oil casings [J]. Journal of Vibration and Shock, 2019,38(06):245-248.
[13] LIU L, ZHANG S H, QU Y H, et al. Stress monitoring of prestressed steel strand based on magnetoelastic effect under weak magnetic field considering material strain [J]. Progress In Electromagnetics Research C, 2020,104:157-170.
[14] ZHANG S H, ZHOU J T, ZHOU Y, et al. Cable tension monitoring based on the elasto-magnetic effect and the self-induction phenomenon [J]. Materials (Basel), 2019,12(14):2230.
[15] ZHANG S H, ZHOU J T, ZHANG H, et al. Influence of cable tension history on the monitoring of cable tension using magnetoelastic inductance method [J]. Structural Health Monitoring, 2021,20(6):3392-3405.
[16] ZHANG S H, ZHANG H, LIU H L, et al. Resonance enhanced magnetoelastic method with high sensitivity for steel stress measurement [J]. Measurement, 2021,186:110139.
[17] LIU L, YANG Q C, WU J W, et al. Thermodynamic analysis of NH3/CO2 cascade refrigeration system with thermosyphon refrigerant cooling screw compressor motor [J]. International Journal of Refrigeration, 2021,130:1-13.
[18] TANG D D, HUANG S J, CHEN W M, et al. Study of a steel strand tension sensor with difference single bypass excitation structure based on the magneto-elastic effect [J]. Smart Materials and Structures, 2008,17(2):25019.
[19] 虞爱平, 李俊宏, 覃荷瑛. 低周期循环荷载下内嵌式光纤光栅自感知钢绞线的性能[J]. 铁道建筑, 2020,60(03):144-148.
YU Ai-ping, LI Jun-hong, QIN He-ying. Performance of self⁃sensing steel strand under low cycle load measured by embedded fiber bragg grating [J]. Railway Engineering, 2020,60(03):144-148.
[20] ZHANG S H, ZHANG H, ZHOU J T, et al. Alternating prestress monitoring of steel strands based on the magnetoelastic inductance method [J]. Measurement, 2022,194:111024.
[21] 周建庭, 张森华, 张洪. 磁测法在桥梁隐蔽病害检测中的研究进展[J]. 土木工程学报, 2021,54(11):1-10.
ZHOU Jian-ting, ZHANG Sen-hua, ZHANG Hong, et al. Research progress of magnetic-based methods in hidden bridge disease detection [J]. China Civil Engineering Journal, 2021,54(11):1-10.
[22] CHEN C, MIN F, ZHANG Y, et al. Memristive electromagnetic induction effects on hopfield neural network [J]. Nonlinear Dynamics, 2021,106(3):2559-2576.
[23] YIN W L, PEYTON A J. Sensitivity formulation including velocity effects for electromagnetic induction systems [J]. IEEE Transactions on Magnetics, 2010,46(5):1172-1176.
[24] 赵亚宇, 何沁, 张泽宇, 等. 基于电磁感应特性的钢绞线应力检测试验研究[J]. 长江科学院院报, 2020,37(04):146-151.
ZHAO Ya-yu, HE Qin, ZHANG Ze-yu, et al. Experimental study on stress detection of calvanized steel strand based on electromagnetic induction characteristics [J]. Journal of Yangtze River Scientific Research Institute, 2020,37(04):146-151.
[25] 李业辉, 宁致远, 薛邴森, 等. 基于电感式传感器的金属颗粒材质识别及粒径估计[J]. 仪器仪表学报, 2021,41(08):24-33.
LI Ya-hui, NING Zhi-yuan, XUE Bin-seng, et al. Metal particle material identification and size estimation based on the inductive sensor [J]. Chinese Journal of Scientific Instrument, 2021,41(08):24-33.
[26] 邢心魁, 李亚, 雷震霖, 等. 预应力钢绞线动态力学拉伸性能及本构关系[J]. 科学技术与工程, 2018,18(07):228-233.
XING Xin-kui LI Ya, LEI Zhen-lin, et al. Dynamic mechanical tensile properties and constitutive relationship of prestressed steel strand [J]. Science Technology and Engineering, 2018,18(07):228-233.
[27] LIU G F, FAN R H, ZHANG Z D, et al. Magnetic properties and special morphology of barium ferrite via electrospinning [J]. Rare Metals, 2017. 36(2): 113-117.
[28] LIU S, YU G H, YANG M Y, et al. Co/Pt multilayer-based pseudo spin valves with perpendicular magnetic anisotropy [J]. Rare Metals, 2014. 33(6): 646-651.
[29] 赵鹏, 陈铮铮, 胡凯, 等. 交直流电缆混合敷设的基频电磁感应特性计算与分析 [J]. 高电压技术, 2020,46(02):576-585.
ZHAO Peng, CHEN Zheng-zheng, HU Kai, et al. Calculation and Analysis of the Fundamental Frequency Electromagnetic Induction of Hybrid Laying AC and DC Cables [J]. High Voltage Engineering, 2020,46(02):576-585.
[30] 钱骥, 杨金川, 李健斌, 等. 基于导波奇异值向量的钢绞线应力检测方法研究[J]. 仪器仪表学报, 2019,40(09):27-35.
QIAN Ji, YANG Jin-chuan, LI Jian-bin, et al. Research on the stress measurement method of steel strand based on singular value vector of guided wave [J]. Chinese Journal of Scientific Instrument, 2019,40(9):27-35.

PDF(2874 KB)

Accesses

Citation

Detail

段落导航
相关文章

/