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A Modular FPGA-based Ultrasonic Array System for Applications including Non-Destructive Testing

机译:用于基于模块化的基于FPGA的超声波阵列系统,包括非破坏性测试

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This paper reports work aimed at the development of an ultrasonic imaging system comprising modular, reprogrammable, building blocks, or 'tiles', which can be customised by the user for multiple applications, including and within non-destructive testing (NDT). The key component is an autonomous module containing the ultrasonic array and all the electronics necessary to operate it, including features such as coded excitation. This contrasts with most previous research on system integration which has focused only on the transducer and front end electronics. In the present work, a 4×4 element 2D piezoelectric array with a 16 mm×16 mm aperture has been produced, with the entire transmission and reception electronics within the same footprint. The proximity of the transducer array and electronics removes the need for cabling, reducing signal degradation due to cross talk and interference. In addition, it avoids the problem of electrical impedance matching of cable between the array elements and the electronics. Pulse-echo insertion loss of 48 dB has been measured from back wall reflections in 73 mm thick aluminium without decoding, and results with decoded signals show adequate signal to noise ratio (SNR) with ±3.3V excitation at an operating frequency of 1.2MHz, within the range required for deep penetration in nuclear power plant. Crucially, the ability to construct 2D arrays of any size and shape from generic building blocks represents a departure from almost all previous work in ultrasound, which has traditionally been highly application specific. This may allow ultrasonic NDT to be used in applications for which the investment in customised devices could not previously be justified.
机译:本文报告了旨在开发包含模块化,可再编程,构建块或“瓷砖”的超声成像系统的工作,该系统可以由用户定制多个应用程序,包括并在非破坏性测试中(NDT)。关键组件是一种包含超声波阵列的自主模块和操作它所需的所有电子器件,包括诸如编码激励的特征。这对对比换能器和前端电子设备仅集中的系统集成研究形成了鲜明对比。在本作工作中,已经产生了4×4元件2D压电阵列,其具有16mm×16mm孔的孔,在相同的占地面积内。换能器阵列和电子器件的接近消除了对布线的需求,降低了由于交叉口交和干扰引起的信号劣化。此外,它避免了阵列元件和电子设备之间电缆的电阻抗匹配问题。 48 dB的脉冲回波插入损耗已经从73mm厚的铝中的后壁反射测量而没有解码,并且解码信号的结果显示出足够的信噪比(SNR),以±3.3V激励为1.2MHz的工作频率。在核电站深度渗透所需的范围内。至关重要的是,从通用构建块构造任何大小和形状的2D阵列的能力代表了几乎所有先前的超声波工作的偏离,传统上是专用的高度应用。这可以允许超声波NDT用于定制设备无法以前无法理解的应用。

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