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The use of infrared thermography at high frame rates

机译:在高帧速率下使用红外热成像

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Composite materials are finding increased use in applications where impact and high strain rate loading form a significant part of a component's service loads. It is therefore imperative to fully characterise the thermomechanical response of composite materials at high strain rates. The work described in the paper forms part of a project investigating the thermomechanical response of composite materials at high strain rates. To obtain the temperature evolutions during the high strain rate event (thermoelastic, viscoelastic and fracture energy), full-field infrared thermography is used. In contrast to visible light photography, the measurand in thermography is the intensity of the emitted radiation from the specimen surface, as opposed to reflected radiation. At increasing recording rates, the emittance available for measurement reduces proportional to the exposure time; the faster the data capture the less the exposure time. Hence, signal noise and detector calibration present a major challenge. This is accompanied by challenges arising from controlling an infrared detector that has not been optimised for the purpose of high speed data acquisition. The present paper investigates the possibility of applying infra-red thermography to high strain rate events and discusses the challenges in obtaining reliable values of the temperature changes that occur over very short time scales during high strain rate events.
机译:复合材料在撞击和高应变速率加载的应用中,在应用程序的大部分服务负载的重要组成部分中发现了增加的应用。因此,必须充分表征高应变率的复合材料的热机械响应。本文中描述的工作形成了研究复合材料在高应变率高的项目的一部分。为了在高应变率事件(热弹性,粘弹性和断裂能)期间获得温度演进,使用全场红外热成像。与可见光摄影相比,热成像中的测量是来自样品表面的发射辐射的强度,而不是反射辐射。在记录速率提高时,可用于测量的可用于测量的可用于曝光时间成比例;数据捕获越快越少的曝光时间。因此,信号噪声和探测器校准存在主要挑战。这伴随着控制红外探测器而产生的挑战,该探测器尚未针对高速数据采集的目的进行优化。本文研究了将红外线热成像应用于高应变率事件的可能性,并讨论了在高应变率事件期间在非常短的时间尺度上发生的温度变化的可靠值的挑战。

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