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Non-contact charge temperature measurement on industrial continuous furnaces and steel charge emissivity analysis

机译:工业连续炉的非接触装料温度测量和钢装料发射率分析

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Continuous furnaces are commonly used for steel billet reheating before a rolling operation. It is necessary to perform a number of measurements to set-up and operate the optimization system of the furnaces correctly. A charge temperature measurement using infrared detectors can be one of the usable measurement techniques. This non-contact measurement method is based on the detection of infrared radiation emitted from a measured surface. The radiation intensity depends on the surface temperature and emissivity, which is one of the most important parameters for infrared measurements. Advantages of the non-contact temperature measurement, as well as some problems regarding the surface emissivity, are presented. The direct steel billet temperature measurement procedure using infra-red detectors, emissivity determination procedures, and example results are introduced. It is shown that steel emissivity can vary from approx. 0.17 to 0.8, depending on the surface state, scale formation, and wavelength interval. These problems are critical for the charge temperature measurement using the infra-red detectors, and are discussed in this paper.
机译:连续炉通常用于轧制之前的钢坯加热。必须执行许多测量以正确设置和运行熔炉的优化系统。使用红外探测器的充电温度测量可以是可用的测量技术之一。这种非接触式测量方法基于对从被测表面发出的红外辐射的检测。辐射强度取决于表面温度和发射率,这是红外测量最重要的参数之一。提出了非接触温度测量的优点,以及有关表面发射率的一些问题。介绍了使用红外探测器的直接钢坯温度测量程序,发射率确定程序以及示例结果。结果表明,钢的发射率可以在大约5%至5%之间变化。 0.17至0.8,取决于表面状态,水垢形成和波长间隔。这些问题对于使用红外检测器测量充电温度至关重要,本文将对此进行讨论。

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