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Rapid Distributed Data Collection with Arrays - the next step beyond Full Waveform Capture

机译:具有阵列的快速分布式数据收集 - 完全波形捕获之外的下一步

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Ultrasonic C-scanning is widely used for large area flaw detection but acquiring the full RF waveform for each surface point -^sFull Waveform Capture (FWC) - offers many advantages. A system that used phased arrays to achieve this without loss of area coverage rate has been reported (1). FWC allows many signal processing operations, previously only possible at acquisition, to be performed off-line. Multiple or time-consuming algorithms can be performed on the same data set without compromising inspection speed but some, such as steering and focusing, must still be performed at acquisition. Although ultrasonic arrays are now widely accepted in imaging systems, their full capability will only be realised when viewed as distributed data collection devices (2). The modular array hardware of DSL's FlawInspecta can now achieve this at real-time rates, significantly extending the post-processing operations that can be performed. These include steering and focusing adjustments; data-dependent adaptive focusing; and multi-array data collection and processing. A flexible data formatting has been devised to provide an interface for end-users to develop customised algorithms. The paper reports on the distributed data acquisition architecture and the data storage format. Specific post-processing operations will be covered elsewhere (3) but some typical options will be outlined.
机译:超声C扫描广泛用于大面积探测检测,但获取每个表面点的完整RF波形 - ^ Sffl波形捕获(FWC) - 提供了许多优点。已经报道了一种使用分阶段阵列实现这一目标而不会损失面积覆盖率的系统(1)。 FWC允许许多信号处理操作,先前仅在获取时执行,以执行离线。可以在同一数据集上执行多个或耗时的算法,而不会影响检查速度,但是必须在采集时执行一些,例如转向和聚焦。尽管现在在成像系统中广泛被广泛接受超声阵列,但是仅在被视为分布式数据收集设备(2)时才能实现它们的完整能力。 DSL普查表的模块化阵列硬件现在可以在实时速率下实现这一目标,显着扩展了可以执行的后处理操作。这些包括转向和聚焦调整;数据依赖性自适应聚焦;和多阵列数据收集和处理。已经设计了灵活的数据格式,为最终用户提供了开发自定义算法的界面。本文报告了分布式数据采集架构和数据存储格式。将涵盖特定的后处理操作(3),但将概述一些典型的选项。

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