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Phased array inspection at elevated temperatures

机译:高温相控阵检查

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Interruption of plant operation can be avoided if non destructive testing inspections are performed on-line at operating temperatures, which may be up to several hundred degrees Celsius in a petrochemical or electric power generating plant. However, there are operational temperature limits for the phased array transducers and associated plastic wedges used for ultrasonic inspections. In this paper, an ultrasonic phased array system is described for inspections at elevated temperatures of up to 350°C. Wedges are built from plastics resistant to high temperature degradation, and equipped with a cooling jacket around the array. A model of the ultrasonic beam skew pattern due to thermal gradients inside a wedge is developed. The model is used in a separate algorithm to calculate transmission and reception time delays on individual array elements for generation of plane waves in a hot test piece, while compensating for thermal gradient effects inside the wedge. The algorithm results for planar wave inspections of test pieces at 150°C demonstrate that application of conventional element time delays can lead to serious phase errors. Experimental trials indicate that plane waves can be generated in a hot test piece using the new focal law algorithm with appropriate timing delays applied to all active array elements.
机译:如果在工作温度下在线进行非破坏性测试检查,则可以避免中断工厂运行,在石化或发电厂中,工作温度可能高达几百摄氏度。但是,用于超声检查的相控阵传感器和相关的塑料楔形物存在操作温度限制。在本文中,介绍了一种超声相控阵系统,用于在最高350°C的高温下进行检查。楔块由耐高温降解的塑料制成,并在阵列周围装有冷却套。建立了由于楔形物内部的热梯度而引起的超声波束偏斜图案的模型。该模型用于单独的算法中,以计算单个阵列元素上的发射和接收时间延迟,以在热试件中生成平面波,同时补偿楔形内部的热梯度效应。在150°C下对试件进行平面波检查的算法结果表明,使用常规元件时延会导致严重的相位误差。实验表明,使用新的聚焦定律算法,可以在热试件中生成平面波,并在所有有源阵列元件上施加适当的定时延迟。

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