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Ultrasound array transmitter architecture with high timing resolution using embedded phase-locked loops

机译:超声阵列发射器架构,具有高定时分辨率,使用嵌入式锁相环

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摘要

Coarse time quantization of delay profiles within ultrasound array systems can produce undesirable sidelobes in the radiated beam profile. The severity of these sidelobes is dependent upon the magnitude of phase quantization error - the deviation from ideal delay profiles to the achievable quantized case. This paper describes a method to improve inter channel delay accuracy without increasing system clock frequency by utilising embedded Phase-Locked Loop (PLL) components within commercial Field Programmable Gate Arrays (FPGAs). Precise delays are achieved by shifting the relative phases of embedded PLL output clocks in 208 ps steps. The described architecture can achieve the necessary inter element timing resolution required for driving ultrasound arrays up to 50 MHz. The applicability of the proposed method at higher frequencies is demonstrated by means of extrapolating experimental results obtained using a 5 MHz array transducer. Results indicate an increase in Transmit Dynamic Range (TDR) when using accurate delay profiles generated by the embedded PLL method described, as opposed to using delay profiles quantized to the system clock.
机译:超声阵列系统内延迟轮廓的粗时间量化会在辐射束轮廓中产生不希望的旁瓣。这些旁瓣的严重程度取决于相位量化误差的大小-从理想延迟曲线到可实现的量化情况的偏差。本文介绍了一种通过利用商用现场可编程门阵列(FPGA)中的嵌入式锁相环(PLL)组件来提高通道间延迟精度而不增加系统时钟频率的方法。通过以208 ps的步长偏移嵌入式PLL输出时钟的相对相位,可以实现精确的延迟。所描述的架构可以实现驱动高达50 MHz的超声阵列所需的必要的单元间定时分辨率。通过外推使用5 MHz阵列换能器获得的实验结果,证明了该方法在较高频率下的适用性。结果表明,与使用量化到系统时钟的延迟配置文件相比,使用上述嵌入式PLL方法生成的准确延迟配置文件时,传输动态范围(TDR)有所增加。

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