首页> 外文会议>AIAA aerospace sciences meeting including the new horizons forum and aerospace exposition >A Miniature, High Temperature, High Frequency Fiber Optic Pressure Sensor for Scramjet Flow Characterization
【24h】

A Miniature, High Temperature, High Frequency Fiber Optic Pressure Sensor for Scramjet Flow Characterization

机译:用于扰流性流量表征的微型,高温,高频光纤压力传感器

获取原文

摘要

A miniature high temperature, high frequency, fiber optic pressure sensor capable of operation above 1000K and frequencies above 1MHz has been developed and tested. The sensor accuracy, pressure resolution, temporal resolution and high temperature capability were first demonstrated through a series of laboratory experiments. The sensors were then tested on the forebody and inside the combustor of a full-scale X-51 configuration at fully duplicated flight conditions in the LENS II reflected shock tunnel at the CUBRC facility in Buffalo, NY. The pressure sensors displayed good run-to-run repeatability and durability during the 10 run test program. Forebody and tar combustor pressure measurements respectively displayed a ω~(-0.8) and ω~(-1) decay in the power spectrum for frequencies related to fluctuations within the log layer. At low frequency, the spectra were essentially flat. In the combustor, a significant increase in the power-law decay was observed for combusting runs. On the forebody, good spectral agreement was obtained at moderate frequencies between the fiber optic and Kulite piezoresistive pressure sensors. This sensing technology enables improved measurement capabilities during ground testing where high frequency pressure measurements in high temperature high speed flows are required.
机译:在1000K以上的微型高温,高频,光学压力传感器,并且已经开发并测试了1MHz以上的频率。首先通过一系列实验室实验证明了传感器精度,压力分辨率,时间分辨率和高温能力。然后在Buffalo,NY的CUBRC设施的镜头II反射冲击隧道的完全重复的飞行条件下在前体和全级X-51配置的燃烧器内测试传感器。压力传感器在10个运行测试程序期间显示出良好的运行重复性和耐用性。前体和焦油燃烧器压力测量分别在功率谱中分别显示ω〜(-0.8)和ω〜(-1)衰减,用于与日志层内的波动有关的频率。在低频时,光谱基本上是平坦的。在燃烧器中,观察到用于燃烧的燃烧衰减的显着增加。在前置体内,在光纤和谨慎压阻压力传感器之间的中等频率下获得良好的光谱协议。该传感技术可以在接地测试期间改进的测量能力,需要高温高速流动的高频压力测量。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号