期刊文献+

高g光学微腔加速度计的结构设计 被引量:2

Design the Structure of High-g Optical Microcavity Accelerometer
在线阅读 下载PDF
导出
摘要 针对高量程加速度测试需求,提出了一种基于光弹效应的新型光学加速度传感器;利用MATLAB软件和时域差分有限元(FDTD)对微环谐振腔悬臂梁加速度计的结构进行优化设计,详细分析了波导传输模态,传感器灵敏度以及工作带宽与波导尺寸、微悬臂梁尺寸的关系。在优化设计的基础上,通过ANSYS软件对悬臂梁的抗冲击性能进行仿真,其抗冲击可达104gn,灵敏度为10-2pm/gn,能有效满足高冲击、强烈振动场合的特殊测试要求,可以应用于侵彻系统,并为集成小型化高灵敏抗冲击微光机电系统(MOEMS)传感器提供理论参考。 To meet a high g accelerometer test requirements in special situation,a new optical accelerometer structure based on the photo-elastic effect was designed.The micro-ring resonator cantilever accelerometer structure was designed and optimized by MATLAB software and the finite difference time domain software.We get the detailed analysis of the waveguide transmission mode,sensor sensitivity,and operating bandwidth with the relationship between waveguide dimensions and the size of micro-cantilever.Based on the optimal design,we also get the shock resistance by ANSYS software,which is up to 104 gn,a sensitivity of 10-2pm/gn.So the designed accelerometer can effectively meet the special test requirements such as high impact and strong vibration,and it can be applied to the penetration system.And it is also providing a theoretical reference for integrated high-sensitivity small impact MOEMS sensors.
出处 《传感技术学报》 CAS CSCD 北大核心 2012年第8期1049-1053,共5页 Chinese Journal of Sensors and Actuators
基金 国家自然科学基金项目(91123036,61275166,50975266,61178058) 山西省自然科学基金项目(2010011003-2)
关键词 光弹效应 微环谐振腔 加速度计 悬臂梁 photo-elastic effect micro-ring resonators accelerometer cantilever
  • 相关文献

参考文献13

二级参考文献32

共引文献51

同被引文献26

  • 1Vidic A,Then D,Ziegler Ch.A new cantilever system for gas andliquid sensing[J].Ultramicroscopy,2003,97 ;407-416.
  • 2Natsumi Saito,Yusuke Miura,Takuya Oshima,et al.Experimentalstudy of sensitivity dependences on waveguide position and dia-phragm thickness in silicon-based guided-wave optical accelero-meter[J].Optical Engineering,2013,52(2):024604-1-024604-5.
  • 3Bipin Bhola,Willian H Sterier.A novel optical microring resonatoraccelerometer[J]. IEEE Sensors Journal,2007,12(7):1579-1766.
  • 4Andreas Vorckel,Mathias Monster,Wolfgang Henschel,et al.A-symmetrically coupfed silicon-on-insulator microring resonators forcompact add-drop multiplexers [J].IEEE Photonics TechnologyLetters,2003,15(7);921-923.
  • 5Rokhsari H,Kippenberg T J,Cannon T,et al.Theoretical and ex-perimental study of radiation pressure-induced mechanical oscilla-tions(parametric instability)in optical microcavities [J].IEEEJournal of Selected Topics in Quantum Electronics,2006,12(1):96-107.
  • 6Isa Kiyat,Coskun Kocabas,Atilla Aydinli.Integrated micro ringresonator displacement sensor for scanning probe microscopie-s[J].Journal of Micromechanics and Microengineering,2004,14:374-381.
  • 7Bipin Bhola,William H Steier.A novel optical microring resonatoraccelerometer[J].IEEE Sensors Journal,2007,12(7); 1759-1766.
  • 8Katrien D V, Irene B, Etienne S, et al. Silicon-on-Insulator Microring Resonator for Sensitive and Label-Free Biosensing [ J ]. Optics Express,2007,15(12) :7610-7615.
  • 9Chao C Y,Shai A, Huang S W, et al. High-Frequency Ultrasound Sensors Using Polymer Microring Resonators [ J ]. IEEE Trans on Ultrasonics ,2007,54( 5 ) :957-965.
  • 10Tao L,Chen S L, Guo L J. High-Sensitivity and Wide-Directivity Ultrasound Detection Using High Q Polymer Microring Resonators [ J ]. Applied Physics Letters, 2011,98,204103.

引证文献2

二级引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部