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Fiber optics for enabling in-situ detection and imaging systems

机译:光纤可实现原位检测和成像系统

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Current generation fiber optic technology is making significant advances for use in a number of air and space in-situ detection and imaging systems (as shown in Figure 1), including fiber optic acoustic sensors, electro-optical distributed aperture systems and integrated diagnostics, prognostics, and health management. These technologies have demonstrated the ability to be located close to the sensor to overcome resistance losses, provide revolutionary situational awareness to platforms and detect opens and shorts and other structural defects. One of the primary advantages of fiber optics is its simplicity. Fiber optics do not require significant power and complex electronics and allows signal processing to be located close to the networked sensors. There are many benefits of fiber-optic systems for air and space applications, including minimal electromagnetic interference (EMI), minimal electromagnetic environmental effects (E3), lightweight cables (compared to Cu), smaller diameter cables (compared to Cu), greater bandwidth (compared to Cu), no grounding or shorting concerns and upgradeable without replacing cable harnesses. There are also some challenges to acceptance including cost, reliability, and perception of difficulty in installation, maintenance, repair, and analog signal quality not yet comparable to copper [2], Fiber optic systems, due to its data rate performance, small size, and lightweight will continue to provide and revolutionize performance for many air and space systems in the future.
机译:当前一代的光纤技术在许多空中和太空原位检测和成像系统(如图1所示)中使用方面取得了重大进展,包括光纤声学传感器,电光分布式孔径系统以及集成的诊断,预测,以及健康管理。这些技术证明了能够靠近传感器放置以克服电阻损失,为平台提供革命性的态势感知以及检测开路和短路以及其他结构缺陷的能力。光纤的主要优点之一是其简单性。光纤不需要大量的功率和复杂的电子设备,并且可以将信号处理放置在靠近网络传感器的位置。光纤系统在航空和航天应用中有许多好处,包括最小的电磁干扰(EMI),最小的电磁环境影响(E3),轻巧的电缆(与Cu相比),直径较小的电缆(与Cu相比),更大的带宽(与Cu相比),无接地或短路问题,无需更换线束即可升级。验收还面临一些挑战,包括成本,可靠性以及对安装,维护,维修和模拟信号质量的认识,这些都无法与铜缆[2],光纤系统相提并论,这是由于其数据速率性能,小尺寸,未来,轻量化将继续为许多航空和航天系统提供并带来革命性的性能。

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