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Design and Modeling of an All-Optical Frequency Modulated MEMS Strain Sensor using Nanoscale Bragg Gratings

机译:纳米级布拉格光栅的全光频调制MEMS应变传感器的设计与建模

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We present modeling and design of an all-optical MEMS Bragg grating (half-pitch of 125 nm) strain sensor for single-fiber distributed sensing. Low optical loss and the use of frequency modulation rather than amplitude modulation, makes this sensor better suited for distributed systems than comparable designs, e.g. Fabry-Perot and Mach-Zender. Also, multiplexing of several sensors with different period gratings, allow sensors to be connected to a single fiber, thereby minimizing cabling and simplifying readout We show through analytical analysis and finite element modeling (FEM) that large mechanical amplification can be obtained if using an angled double beam micrometer scale MEMS structure, compared to conventional fiber Bragg grating sensors. An optimized design and fabrication process is presented.
机译:我们呈现了全光学MEMS布拉格光栅(125nm)应变传感器的所有光学MEMS布拉格光栅的建模和设计,用于单纤维分布式感测。低光损耗和使用频率调制而不是幅度调制,使得该传感器更适合分布式系统,而不是可比设计,例如,法布里 - 珀罗和马克纺织品。此外,多个具有不同周期光栅的传感器的多路复用,允许传感器连接到单个光纤,从而最小化通过分析分析和有限元建模(FEM)显示的电缆和简化读出,如果使用倾斜,可以获得大机械放大的有限元模拟(FEM)。与传统的光纤布拉格光栅传感器相比,双光束千分尺刻度MEMS结构。提出了优化的设计和制造工艺。

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