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FOS standards and testing method to validate fibre optic strain measurements

机译:FOS标准和测试方法可验证光纤应变测量

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Fiber optic sensors are increasingly used because of their outstanding performance or if special requirements avoid the application of conventional electrical sensors. The scientific background for optical fiber sensors is well developed; however, the characteristic of sensors applied in rather harsh environment are almost always different from characteristics determined in laboratory or before its installation. In order to achieve long-term stable function and reliable measurement data after application and under harsh environmental conditions, guidelines for characterization and specification of sensor components are needed as well as methodologies for testing the sensor performance must be developed. Performance tests carried out revealed that there are still some restrictions with respect to long-term reliable use: first, some sensor products available on the market are not very often appropriately characterized, described and validated; second, application procedures are not always defined due to a lack of understanding the micromechanical issues in the interface zone between sensor and measuring object. Application procedures and profound knowledge of materials behaviour are necessary to get results from the sensor that can be reliably used. The paper describes first guidelines to prove the quality of fiber optic strain sensors, a testing facility developed for unbiased tests and certification of surface-applied sensors as well as result from comparison of commercially available strain sensors.
机译:光纤传感器因其出色的性能或在特殊要求下避免使用常规电传感器而越来越多地被使用。光纤传感器的科学背景已经得到很好的发展。但是,在相当恶劣的环境中使用的传感器的特性几乎总是与实验室或安装前确定的特性不同。为了在应用后以及在恶劣的环境条件下获得长期稳定的功能和可靠的测量数据,需要制定传感器组件的特性和规格准则,还必须开发测试传感器性能的方法。进行的性能测试表明,在长期可靠使用方面仍然存在一些限制:首先,市场上出售的某些传感器产品往往没有得到适当的表征,描述和验证。其次,由于缺乏对传感器和测量对象之间的界面区域中的微机械问题的理解,因此并不总是定义应用程序。要获得可可靠使用的传感器结果,必须要有应用程序和对材料性能的深入了解。本文介绍了证明光纤应变传感器质量的第一份准则,为进行无偏测试和表面应用传感器认证而开发的测试设备,以及通过比较市售应变传感器得出的结果。

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