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Detection and Reconstruction of Solidification Cracks -Laser Ultrasonic Measurements during the Continuous Casting Process of Aluminum

机译:铝连铸过程中凝固裂缝的检测与重建 - 激铸过程中的超声测量

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In the continuous casting process the avoidance and rapid detection of occurring solidification cracks in the slab is a crucial issue, in particular for the maintenance of a high quality level in further production processes. Due to the elevated temperatures of the slab surface a remote sensing non-destructive tool for quality inspection is required, which is also applicable for the harsh industrial environment. In this work the application of laser ultrasound (LUS) technique during the continuous casting process in industrial environment is shown. The proof of principle of the detection of the centered solidification cracks is shown by pulse-echo measurements with laser ultrasonic equipment for inline quality inspection. Preliminary examinations in the lab of different casted samples have shown the distinguishability of slabs with and without any solidification cracks. Furthermore the damping of the bulk wave has been used for the prediction of the dimension of the crack. With an adapted "synthetic aperture focusing technique" (SAFT) algorithm the image reconstruction of multiple measurements at different positions around the circumference has provided enough information for the estimation of the localization and extension of the centered solidification cracks. Subsequent first measurements using this laser ultrasonic setup during the continuous casting of aluminum were carried out and showed the proof of principle in an industrial environment with elevated temperatures, dust, cooling water and vibrations.
机译:在连续铸造过程中,板坯中发生凝固裂纹的避免和快速检测是至关重要的问题,特别是在进一步生产过程中维持高质量水平。由于板坯表面的升高,需要遥感的不破坏性工具,用于质量检测,这也适用于恶劣的工业环境。在这项工作中,显示了在工业环境中连续铸造过程中的激光超声(LUS)技术的应用。通过具有激光超声波设备的脉冲回波测量来示出了居中凝固裂缝的检测原理的证据,用于内联质量检查。不同铸造样品实验室的初步检查表明板坯与任何凝固裂缝的区别性。此外,散装波的阻尼已经用于预测裂缝的尺寸。通过适应的“合成孔径聚焦技术”(SAFT)算法(SAFT)算法在围绕圆周周围的不同位置处的多次测量的图像重建已经提供了足够的信息,以估计居住的凝固裂缝的定位和延伸。随后进行了在连续铸造铝的连续铸造期间使用该激光超声机的首次测量,并在工业环境中显示了原理的证据,温度高,灰尘,冷却水和振动。

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