肖奇

肖奇     

讲师

电子邮件:qixiao@ecust.edu.cn  

办公地址:上海市梅陇路130号 科辅一楼

学术主页:https://www.researchgate.net/profile/Qi-Xiao-19

正在招收2027级推免研究生,欢迎对电磁精密测量与柔性超声检测感兴趣的同学报考!


个人简介:

        东北大学电气工程博士,上海科技大学博士后/助理研究员。2026年至今任职于华东理工大学,讲师。作为负责人主持国家自然科学基金青年项目(C类)、国家自然科学基金区域创新发展联合基金重点支持项目子课题、2026年度商用航空发动机产学研联合创新计划项目、传感器国家工程研究中心开放基金、2026年度“教师专业发展工程”项目等国家级项目与企业合作课题。主要从事电磁精密测量与柔性超声检测方面的研究工作,已在IEEE Trans. Ind. Electron.、IEEE Trans. Instrum. Meas.及NDT&E Int.等国际知名期刊发表SCI论文40余篇,申请或授权发明专利10项。获中国仪器仪表学会奖学金、东北大学博士卓越奖学金、中国仪器仪表学术年会优秀学术成果奖、JMSI 2024 年度杰出青年编委、PCMP 2024 年度优秀助理编辑。

教育与工作经历
研究方向

2026.02-至今         华东理工大学     机械与动力工程学院      讲师

2024.01-2026.01    上海科技大学     信息科学与技术学院      博士后、助理研究员

2019.09-2023.12    东北大学             信息科学与工程学院      电气工程        博士学位

2016.09-2019.06    湘潭大学             机械工程与力学学院      机械工程        硕士学位

2012.09-2016.06    湘潭大学             机械工程与力学学院      机械设计制造及其自动化  学士学位

研究方向

1. 电磁超声相控阵检测与成像方法

2. 高温电磁声复合检测与量化方法

3. 柔性电磁超声器件微纳制造工艺

4. 无线传输系统与电磁超声设备研制


授课课程:国家级一流本科课程《现代机械控制工程》

科研项目

1. 国家自然科学基金青年科学基金项目(C类),在研,主持

2. 2026年度商用航空发动机产学研联合创新计划项目,在研,主持

3. 传感器国家工程研究中心开放基金,在研,主持

4. 2026年度“教师专业发展工程”项目,在研,主持

5. 国家自然科学基金区域创新发展联合基金重点支持项目,在研,子课题主持

6. 国家重大科研仪器研制项目,结题,参与

7. 国家自然科学基金面上项目,结题,参与

学术成果

[1Q. Xiao, Q. Li, L. Wang, Z. Hu, L. Liu*, and Y. Xiang*. “An Integrated Pulsed Eddy Current and Magnetic Flux Leakage Method for Defect Detection in Bimetal Structures,” NDT&E International, 2026. (Accepted)

[2] Q. Li#, J. Feng, Q. Xiao#, S. Lu, and Y. Feng. “Integrated Bimodal Electromagnetic Acoustic Transducer with Shared Physical Fields for Multi-Parameter Measurement of Coated Metals,” NDT&E International, vol. 161, 2026. Art. no. 103697.

[3] X. Shi, Q. Li, and Q. Xiao*A Compact Dual-Mode EMAT—ECT Sensor with Lift-Off Compensation for Thickness Gauging of Coated Aluminum Plates,Journal of Measurement Science and Instrumentation, 2026. (Accepted)

[4] Q. Li, Q. Xiao, J. Jiao, C. Ye* and Hao Ren*, “A Microfabricated Multilayer Eddy Current Sensor with Noise Suppression from Long Transmission Cable,” Journal of Micromechanics and Microengineering, vol. 36, no. 8, 2026. Art. no. 085006.

[5L. Ge, Q. Xiao, M. Li, S. Huang, N. Zhang and C. Ye. “Precise Measurement of Oxide Film Thicknesson Fuel Cladding Utilizing a Stacked Array Probe and a SVR Model,” NDT & EInternational, vol. 158, 2026. Art. no. 103591.

[6] X. Shi, L. Zhang, Q. Li* and Q. Xiao*. “A Method for Detecting Defects in Metallic Plates Utilizing Bimodal Electromagnetic Acoustic Transducers,” INSIGHT, vol. 68. no. 5, pp. 312-318, 2026.

[7Q. Xiao, M. Li, S. Huang, X. Li, L. Peng and C. Ye. “A Self Calibration Oxide Film Thickness Measurement Method based on Stacked Array Coils,” IEEETransactions on Instrumentation andMeasurementvol. 74, pp. 1-9, 2025.

[8] Y. Li, Q. Xiao, L. Peng, S. Huang and C. Ye. “A Precise Oxide Film Thickness Measurement Method based on Swept Frequency and Transmission Cable Impedance Correction,” Sensors, vol. 25, no. 2, 2025.

[9] Y. Sun, L. Xue, Z. Zhai, M. Bai, B. Yin*, Q. Xiao*, H. Geng and K. Chen. “Error and Reduced-order Extended State Observer Based Full-State Constrained Tracking Control of Permanent Magnet Synchronous Motor under Multi-Uncertainties,” EngineeringLetters, vol. 33, no. 9, pp. 3739-3744, 2025.

[10Q. Xiao, J. Feng, H. Zhang and Q. Li. “Composite Sensor of EMAT and ECT Using a Shareable Receiver Coil for Detecting Surface and Bottom Defects on the Steel Plate,” IEEETransactionson Industrial Electronics, vol. 71, no. 8, pp. 9855-9864, 2024.

[11J. Feng, Q. Xiao, H. Zhang and K. Li. “Physical Compensation Approach for Feature Enhancement of High-Speed MFL Signals via Magnetic Field Polarization, ” IEEE Transactionson Industrial Electronics, vol. 71, no. 6, pp. 6377-6387, 2024.

[12J. Feng, Q. Xiao, S. Lu and H. Zhang. “A Double Remote Magnetic Field Synthesis Method for Reducing High-Speed MFL Signal Distortion Caused by Velocity Effect,” IEEETransactionson Industrial Electronics, vol. 71, no. 1, pp. 1049-1059, 2024.

[13G. Wang, Y. Li, Q. Xiao* and W. Li. “Finite-element Study of Remote Field Eddy Current Method for Inner Diameter and Outer Diameter Pipe Defects Classification,” INSIGHT, vol. 65. no. 3, pp. 139-145, 2023.

[14Q. Xiao, J. Feng, G. Wang and L. Jiang. “Multi-frequency Balanced Electromagnetic Technology for Detecting Internal and External Defects and Identifying Full-angle Surface Cracks,” Proceedings of the CSEE, vol. 43, no. 14, pp. 5703-5713, 2023.

[15H. Song, Q. Xiao*, G. Wang, J. Zhang and W. Hu. “A Composite Approach of Electromagnetic Acoustic Transducer and Eddy Current for Inner and Outer Corrosion Defects Detection,” IEEE Transactionson Instrumentation and Measurement, vol. 72, pp.1-11, 2023.

[16Q. Xiao, J. Feng, S. Lu, S. Liu and H. Zhang. “Accurate Identification for 3-D Position of Hybrid Defects in Ferromagnetic Pipe Using External Remote Field Eddy Current Testing,” IEEETransactionson Magnetics, vol. 58, no. 3, pp. 1-10, 2022.

[17Q. Xiao, J. Feng, Z. Xu and H. Zhang. “Receiver Signal Analysis on Geometry and Excitation Parameters of Remote Field Eddy Current Probe,” IEEETransactionsonIndustrial Electronics, vol. 69, no. 3, pp. 3088-3098, 2022.

[18G. Wang, Q. Xiao*, Z. Gao, W. Li, L. Jia and C. Liang. “Multifrequency AC Magnetic Flux Leakage Testing for the Detection of Surface and Backside Defects in Thick Steel Plates,” IEEEMagnetics Letters, vol. 13, pp. 1-5, 2022.

[19G. Wang, Q. Xiao*, M. Guo and J. Yang. “Optimal Frequency of AC Magnetic Flux Leakage Testing for Detecting Defect Size and Orientation in Thick Steel Plates,” IEEETransactions on Magnetics, vol. 57, no. 9, pp. 1-8, 2021.

[20徐志远肖奇.  基于脉冲远场涡流的管道缺陷外检测与定量评估[J]. 电子测量与仪器学报2019, 33(02): 80-87. 

[21肖奇徐志远伍权基于远场涡流的碳钢管道缺陷外检测方法[J]. 传感技术学报2018, 31(11): 1684-1689.

[22]  发明专利: 一种基材上膜层厚度的测量方法及测量系统, 申请号: CN202411221416.6.

[23]  发明专利: 一种基于多频同源平衡电磁技术的管道裂纹检测方法, 授权号: ZL202210301011. X.

[24]  发明专利: 一种多线圈微米量级间距层叠微纳加工制备方法, 申请号: CN202510930926.9.

[25]  发明专利: 裂纹检测方法、装置、电子设备及存储介质, 授权号: ZL202211308775.6.


学术主页

https://www.researchgate.net/profile/Qi-Xiao-19








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