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High pressure sensing and dynamics using high speed fiber Bragg grating interrogation systems

机译:使用高速光纤布拉格光栅询问系统进行高压传感和动力学

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摘要

Fiber Bragg gratings (FBGs) are developing into useful sensing tools for measuring high pressure dynamics in extreme environments under shock loading conditions. Approaches using traditional diode array coupled FBG interrogation systems are often limited to readout speeds in the sub-MHz range. For shock wave physics, required detection speeds approaching 100 MHz are desired. We explore the use of two types of FBG sensing systems that are aimed at applying this technology as embedded high pressure probes for transient shock events. Both approaches measure time resolved spectral shifts in the return light from short (few mm long) uniform FBGs at 1550 nm. In the first approach, we use a fiber coupled spectrometer to demultiplex spectral channels into an array (up to 12) of single element InGaAs photoreceivers. By monitoring the detectors during a shock impact event with high speed recording, we are able to track the pressure induced spectral shifting in FBG down to a time resolution of 20 ns. In the second approach, developed at the Special Technologies Lab, a coherent mode-locked fiber laser is used to illuminate the FBG sensor. After the sensor, wavelength-to-time mapping is accomplished with a chromatic dispersive element, and entire spectra are sampled using a single detector at the modelocked laser repetition rate of 50 MHz. By sampling with a 12 GHz InGaAs detector, direct wavelength mapping in time is recorded, and the pressure induced FBG spectral shift is sampled at 50 MHz. Here, the sensing systems are used to monitor the spectral shifts of FBGs that are immersed into liquid water and shock compressed using explosives. In this configuration, the gratings survive to pressures approaching 50 kbar. We describe both approaches and present the measured spectral shifts from the shock experiments.
机译:光纤布拉格光栅(FBG)正在发展成为有用的传感工具,用于在冲击载荷条件下在极端环境中测量高压动态。使用传统二极管阵列耦合的FBG询问系统的方法通常仅限于亚MHz范围内的读出速度。对于冲击波物理学,期望接近100 MHz的所需检测速度。我们探索了两种类型的FBG传感系统的用途,这些系统旨在将该技术用作瞬态冲击事件的嵌入式高压探头。两种方法都测量了1550 nm处短(几毫米长)均匀FBG的返回光中的时间分辨光谱偏移。在第一种方法中,我们使用光纤耦合光谱仪将光谱通道解复用为单元素InGaAs光接收器阵列(最多12个)。通过以高速记录在冲击事件期间监视探测器,我们能够跟踪FBG中压力引起的频谱偏移,直至20 ns的时间分辨率。在特殊技术实验室开发的第二种方法中,相干锁模光纤激光器用于照亮FBG传感器。在传感器之后,使用色散元件完成波长到时间的映射,并使用单个检测器以50 MHz的锁模激光重复率对整个光谱进行采样。通过使用12 GHz InGaAs检测器采样,可以记录时间上的直接波长映射,并在50 MHz下采样压力引起的FBG光谱偏移。在这里,传感系统用于监测FBG的光谱偏移,这些FBG浸入液态水中并被炸药压缩。在这种配置中,光栅可以承受高达50 kbar的压力。我们描述了这两种方法,并介绍了从冲击实验中测得的频谱偏移。

著录项

  • 来源
    《Fiber optic sensors and applications XI》|2014年|90980C.1-90980C.9|共9页
  • 会议地点 Baltimore MD(US)
  • 作者单位

    Los Alamos National Laboratory, P.O. Box 1663, Los Alamos, NM, USA 87545-3502;

    Los Alamos National Laboratory, P.O. Box 1663, Los Alamos, NM, USA 87545-3502;

    National Security Technologies - Special Technologies Lab, 5520 Ekwill, Goleta, CA USA 93111;

    National Security Technologies - Special Technologies Lab, 5520 Ekwill, Goleta, CA USA 93111;

    National Security Technologies - Special Technologies Lab, 5520 Ekwill, Goleta, CA USA 93111;

    National Security Technologies - Special Technologies Lab, 5520 Ekwill, Goleta, CA USA 93111;

    Columbia Gorge Research, PO Box 382, 2555 NE 205th Ave., Fairview, OR USA 97024;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fiber Bragg grating sensors; Shockwave diagnostics; shock physics; pressure measurements;

    机译:光纤布拉格光栅传感器;冲击波诊断;冲击物理压力测量;

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