張婷

發布者🫱:葉寅發布時間𓀍:2020-01-16瀏覽次數:5000



   個人信息

   姓名🧍🏻:張婷               職稱🧑🏼‍⚖️:副教授

   專業:機械工程       學歷層次:博士研究生

   辦公室地點🧑🏼‍🔧:行政樓1008   辦公電話021-67791193

   電子郵箱zhangt@sues.edu.cn

   研究方向🫡:結構振動控製

   主講課程☕️:《工程力學一》、《工程力學二》🦹🏼‍♂️、《機械振動學》

  

   個人簡介🫄🏼:(教育背景、工作經歷)

張婷,女🙍,副教授。2014年畢業於上海交通大學機械工程專業,獲得工學博士學位。現於意昂平台從事教學與科研工作,主要從事機械振動控製與振動信號傳感等方向的科研工作🤰🏼。近年來主持一項校啟動課研項目1項🧏🏽‍♀️🫰🏻、青培項目1項👨🏽‍🎨、橫項課題1項與青年基金項目1項,並發表有關研究領域的學術論文有20余篇。

  

    主要科研成果🦻🏿✣:代表性論文🙂‍↕️、專利、著作等)

[1] Zhang T,Li HG and Bi Y. Hysteresis characteristics influence on the super-harmonic vibration of a bi-stable piezoelectric energy harvester. Journal of Low Frequency Noise Vibration and Active Control, 2018, 37(4): 1003-1014.

[2] Ting Zhang, Ying Pan, Lijie Cao. Dynamical Model for an Interharmonic Property of a Piezoelectric Bimorph Cantilever Beam with Self-Sensing Function. Shock and Vibration, 2016, 2016:1-9.

[3] Zhang T, Li HG, Zhong ZY, et al. Hysteresis model and adaptive vibration suppression for a smart beam with time delay. Journal of Sound and Vibration, 2015, 358:35-47.

[4] T Zhang, HG Li, GP Cai, FC Li. Experimental Verifications of Vibration Suppression for aSmart Cantilever Beam with a Modified Velocity Feedback Controller, Shock and Vibration, 2014,172570(9pp).

[5] Zhang T, Yang BT, Li HG, Meng G. Dynamic Modeling and Adaptive Control of a GiantMagnetostrictive Actuator for Vibration Control. Sensors and Actuators A: Physical, 2013, 190:96–105.

[6] Zhang T, Li HG. Adaptive Pole Placement Control for Vibration Control of a Smart CantileveredBeam in Thermal Environment. Journal of Vibration and Control, 2013, 19(10) 1460 – 1470.

[7] Zhang T, Li HG, Cai GP. Hysteresis Identification and Adaptive Vibration Control for a SmartCantilever Beam by a Piezoelectric Actuator. Sensors and Actuators A: Physical, 2013, 203:168-175.

[8] T Zhang, HG Li, JJ Zhao. Vibration Control and Dynamical Model of a Thermal-Electrical-Mechanical Coupled Smart Cantilevered Beam, Advanced Engineering Forum, 2012, 2-3:535-540.

[9] Ting Zhang, Hao Lina, Chunlei Wang. The Periodic Output Feedback Control for Creep Characteristics of IPMC. Chinese Control and Decision Conference, 2010, 3992-3997.

[10] Li Jun, Zhang Ting, Wu Zidong et al. A breeze energy harvesting of vibration caused with a cantilevered piezoelectric beam. Vibroengineering Procedia, 2019, 29: 49-53.

[11] Pan Y, Zhang T. Dynamical model of a fault phenomenon and reliability analysis for a circuit breaker in a vibration environment. Vibroengineering Procedia, 2019, 23: 43-48.

[12]胡曉琳, 張婷. 基於自校正PID控製的智能懸臂梁振動控製. 噪聲與振動控製, 2019, 39 (2): 21-26.

[13] Wang RP, Zhang T and Yang Y. Adaptive vibration control for a cantilevered beam using actuating and sensing functions of a piezoelectric bimorph. Vibroengineering Procedia, 2018, 20: 87-90.

[14] Hu X, Zhang T. First two modal adaptive vibration control for a smart beam with two piezoelectric bimorphs by a self-tuning PID control. Journal of Physics Conference Series, 2018, 1074:012044.

[15] Wang CL, Zhang T, Wei XH, et al. Dynamic characteristics and stability criterion of rotary galloping gait with an articulated passive spine joint. Advanced Robotics, 2017, 31(4): 168-183.

[16] Chunlei Wang, Ting Zhang, Xiaohui Wei, et al. Dynamic Imbalance Analysis and Stability Control of Galloping Gait for a Passive Quadruped Robot. Applied Bionics and Biomechanics, 2015, 2015:1-17.

[17] BT Yang, T Zhang, JQ Li, FC Li, HG Li and G Meng. Research on GiantMagnetostrictiveActuator for Low Frequency Adaptive Vibration Control. Advances in Vibration Engineering, 2013, 12(6): 611-622.

[18] BT Yang, QW Liu, T Zhang, Y Cao, ZQ Feng, G Meng. Non-contact Translation-RotationSensor Using Combined Effects of Magnetostriction and Piezoelectricity. Sensors, 2012, 12(10),13829-13841.

[19] Song W, Nazarova, MN, Zhang Y, Zhang T and Li M.Sparse reconstruction based on the admm and lasso-lsqr for bearings vibration signals. IEEE Access. 2017,5:20083-20088.

[20] Zhong ZY, Zhou JP, Zhang HL andZhang T. Effect of the equivalent stiffness of flexible supports on the mems cantilever-based sensors. Computers & Structures, 2016, 169, 101-111.


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