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Infrared imaging technology and biological applications

机译:红外成像技术与生物学应用

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Temperature is the most frequently measured physical quantity, second only to time. Infrared (IR) technology has been utilized successfully in astronomy (for a summary, see Hermans-Killam, 2002b) and in industrial and research settings (Gruner, 2002; Madding, 1982, 1989; Wolfe & Zissis, 1993) for decades. However, fairly recent innovations have reduced costs, increased reliability, and resulted in noncontact IR sensors offering mobile, smaller units of measurement (EOI, 2002; Flir, 2000, 2001, 2002). The advantages of using IR imaging are (1) rapidity in the millisecond range, facilitating measurement of moving targets, (2) noncontact procedures, allowing measurements of hazardous or physically inaccessible objects, (3) no interference and no energy lost from the target, (4) no risk of contamination, and (5) no mechanical effect on the surface of the object. All these factors have led to IR technology's becoming an area of interest for new kinds of applications and users. In both manufacturing and quality control, temperature plays an important role as an indicator of the condition of a product or a piece of machinery (EOI, 2002; Flir, 2000, 2001, 2002; Raytek, 2002). In medical and veterinary applications, IR thermometry is increasingly used in organ diagnostics, in the evaluation of sports injuries and the progression of therapy, in disease evaluation (e.g., breast cancer, arthritis, and SARS; Flir, 2003), and in injury and inflammation examinations in horses, livestock (Tivey & Banhazi, 2002), and zoo animals (Hermans-Killam, 2002a; Thiesbrummel, 2002). Lastly, physiological expressions of life processes in animals (Kastberger, Winder, & Steindl, 2001; Stabentheiner, Kovac, & Hagmueller, 1995; Stabentheiner, Kovac, & Schmaranzer, 2002; Stabentheiner & Schmaranzer, 1987) and plants (Bermadinger-Stabentheiner & Stabentheiner, 1995) can be monitored. The most recent field in which IR technology has been applied is animal behavior. This article focuses on the practical options for noncontact IR thermometry―in particular, in biological applications.
机译:温度是最常测量的物理量,仅次于时间。数十年来,红外(IR)技术已成功地用于天文学(摘要请参见Hermans-Killam,2002b)以及工业和研究环境(Gruner,2002; Madding,1982,1989; Wolfe&Zissis,1993)。然而,相当新近的创新降低了成本,提高了可靠性,并导致非接触式红外传感器提供了移动的,更小的测量单位(EOI,2002; Flir,2000,2001,2002)。使用IR成像的优点是:(1)毫秒级的速度,便于测量运动目标;(2)非接触程序,允许测量危险或身体上无法接近的物体;(3)没有干扰,目标没有能量损失, (4)没有污染的危险,并且(5)对物体表面没有机械作用。所有这些因素导致IR技术成为新型应用程序和用户的关注领域。在制造和质量控制中,温度在指示产品或机器状况方面都起着重要作用(EOI,2002; Flir,2000,2001,2002; Raytek,2002)。在医疗和兽医应用中,红外测温法越来越多地用于器官诊断,运动损伤和治疗进展的评估,疾病评估(例如乳腺癌,关节炎和SARS; Flir,2003年)以及损伤和对马,牲畜(Tivey和Banhazi,2002年)和动物园动物(Hermans-Killam,2002a; Thiesbrummel,2002年)进行炎症检查。最后,动物(Kastberger,Winder,&Steindl,2001; Stabentheiner,Kovac,&Hagmueller,1995; Stabentheiner,Kovac,&Schmaranzer,2002; Stabentheiner&Schmaranzer,1987)和植物(Bermadinger-Stabentheiner& Stabentheiner,1995)可以被监测。应用IR技术的最新领域是动物行为。本文重点介绍非接触式红外测温的实用选择,尤其是在生物应用中。

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