首页|基于超高Q值回音壁模式微管腔的非接触式电流传感器研究

基于超高Q值回音壁模式微管腔的非接触式电流传感器研究

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研发低功耗、微型化的电流传感器有利于实现电流状态的智能监测,在风力发电、智能电网以及电动汽车等领域有着潜在应用前景。提出一种基于回音壁模式微管腔的非接触式电流传感器。首先通过电弧放电法在薄壁石英管中制备了回音壁模式微管腔,模式谱稳定激发且规则,品质因子Q值达到3。45× 107。其次,在微管腔中填充Fe3O4纳米粒子磁流体并插入Cu丝,构建非接触式电流检测环境,当通入的电流强度发生改变时,与Fe3O4纳米粒子的相互作用引起微管腔的磁热效应,进而影响微管腔的折射率与体积。实验结果表明:测试电流从0增加到30 mA时,微管腔的谐振波长漂移了 0。0973 nm,谐振波长的相对漂移量与电流的平方成线性关系,灵敏度达到10。811 nm/A2,探测极限达到2。936×10-9 A2/nm。所设计的电流传感器具有结构简单、灵敏度高、探测极限低、体积小、不受电磁干扰影响等优势,为微腔在非接触式电流检测中的应用提供了新路径。
Research of Non-Contact Current Sensor Based on Ultra-High Q-Factor Whispering-Gallery Mode Microcapillary Resonator
Objective Current sensors are widely used in modern power electronic systems due to their advantages including high sensitivity,great precision,excellent stability,etc.In the electric power industry,they are extremely important in power measurement,electrical protection and control systems.However,due to the low sensitivity of current transformers,Roche coils and Hall sensors,optical systems seem ideal for current sensing because of their resistance to electro-magnetic interference and fast response.In addition,the problems of miniaturization,process simplicity and high sensitivity of current sensors have not yet been solved.Non-contact current sensors based on whispering-gallery mode(WGM)optical microcavities have the advantages of simplified structure,high sensitivity,low detection limit and small size.The sensor designed has the potential in realizing the intelligent monitoring of the current status for practical applications in the fields of wind power generation,smart grids as well as electric vehicles.Methods A section of thin-walled quartz tube is intercepted to prepare a whispering-gallery mode microcapillary cavity by the method of arc discharge.The microcapillary cavity has a tiny curvature with a surface nanoscale axial photonic structure,which is able to bind more optical modes and improve the storage time of the optical modes,so that the microcapillary cavity with ultra-high quality(Q)factor is prepared.A tapered fiber with a waist diameter of 2 μm is prepared for excitation of whispering-gallery modes in the microcapillary cavity using the heat-and-pull technique.Subsequently,we propose a non-contact current sensor based on the ultra-high Q-factor microcapillary cavity.The copper wire with the diameter of 80 μm is put in the center of the microcapillary cavity,and 50%Fe3O4 and 100%Fe3O4 are filled into the microcapillary cavity,respectively,for comparative study.Subsequently,the optical instrument is adjusted to make the microcapillary cavity coupled with the tapered optical fiber and the measurement circuit is connected.The time interval is set as 90 s.The resonant wavelength shift of the microcapillary cavity with the change of the current can be observed and recorded by the oscilloscope.Finally,the sensitiveness of the microcapillary cavity and its detection limit for the three cases,i.e.,the hollow microcapillary cavity,the microcapillary cavity with 50%Fe3O4,and the microcapillary cavity with 100%Fe3O4,are compared.Results and Discussions The resonance spectrum of the microcapillary cavity is measured using the experimental device,and the highest Q-factor of 3.45× 107 is obtained by Lorentz fitting(Fig.5).The hollow microcapillary cavity is tested by setting the current interval to 20 mA.Firstly,when the current is increased from 0 to 300 mA,the resonant wavelength is shifted by 0.1393 nm,and the sensitivity is calculated to be 1.547 nm/A2 with a current detection limit of 1.874× 10-8 A2/nm(Fig.6).Secondly,by adding 50%magnetic nanoparticles of Fe3O4 into the microcapillary cavity,the resonant wavelength is shifted by 0.1034 nm,with a sensitivity of 4.039 nm/A2 and a current detection limit of 7.176×10-9 A2/nm when the current is increased from 0 to 160 mA,showing an enhanced sensitivity and a higher precision of detection limit(Fig.7).Finally,by increasing the magnetic nanoparticles in the microcapillary cavity to 100%,when the current is increased from 0 to 30 mA,the resonant wavelength is shifted by 0.0973 nm,the sensitivity is 10.811 nm/A2,and the current detection limit is 2.94× 10-9 A2/nm.The sensor sensitivity and current detection limit show nearly one order of magnitude improvement with respect to the hollow microcapillary cavity,and also have a significant enhancement in comparison with the case of 50%nanoparticles.Conclusions A non-contact current sensor based on ultra-high Q-factor whispering-gallery mode microcapillary cavity is investigated.The mode spectrum of microcapillary cavity is stably excited and regular,and the highest Q-factor value reaches 3.45× 107.By filling the microcapillary cavity with Fe3O4 nanoparticle magnetic fluids,the current sensing sensitivity can reach up to 10.811 nm/A2,and the current detection limit reaches 2.936× 10-9 A2/nm,showing a very high current sensing detection performance.The proposed microcapillary cavity non-contact current sensor has the advantages of high sensitivity,high precision,good signal linearity and fast response.The sensor has a simple structure,small size,and low power consumption,and it is not subject to electromagnetic interference,which provides a new path for the application of microcavity in non-contact current detection.It can be applied to the condition assessment of equipment such as smart transformers,switchgear circuit breakers and insulating devices,etc.It can be used for online monitoring of partial discharges,harmonic currents,faults and leakage currents,etc.It provides a new path for current sensing in the power industry and consumer electronics.

sensorsoptical microresonatormicrocapillary resonatormagneto-caloric effectcurrent detectionmicroresonator sensing

胡建鹏、柴明钢、王梦宇、薛彩军、谢成峰、谭庆贵、魏斌、吴凌峰、吴涛、伏燕军

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南昌航空大学江西省光电信息科学技术重点实验室,江西南昌 330063

南昌航空大学无损检测教育部重点实验室,江西南昌 330063

南京航空航天大学航空学院,江苏南京 210016

中国空间技术研究院西安分院,陕西西安 710199

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传感器 光学微腔 微管腔 磁热效应 电流检测 微腔传感

国家自然科学基金国家自然科学基金国家自然科学基金江西省自然科学基金江西省自然科学基金江西省自然科学基金江西省自然科学基金江西省自然科学基金重点实验室项目江西省教育厅科技项目

62101230122051364217513020224BAB20200620203BBG7303920232BAB21201620232BCJ2309620232ACB2120082021-JCJQ-LB-0066142411512108GJJ200915

2024

中国激光
中国光学学会 中科院上海光机所

中国激光

CSTPCD北大核心
影响因子:2.204
ISSN:0258-7025
年,卷(期):2024.51(5)