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Rapid Transient Pressure Field Computations in the Nearfield of Circular Transducers using Frequency Domain Time-Space Decomposition

机译:快速的瞬态压力采用频域时空分解电磁场计算在环形转换器的近场

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摘要

The fast nearfield method, when combined with time-space decomposition, is a rapid and accurate approach for calculating transient nearfield pressures generated by ultrasound transducers. However, the standard time-space decomposition approach is only applicable to certain analytical representations of the temporal transducer surface velocity that, when applied to the fast nearfield method, are expressed as a finite sum of products of separate temporal and spatial terms. To extend time-space decomposition such that accelerated transient field simulations are enabled in the nearfield for an arbitrary transducer surface velocity, a new transient simulation method, frequency domain time-space decomposition (FDTSD), is derived. With this method, the temporal transducer surface velocity is transformed into the frequency domain, and then each complex-valued term is processed separately. Further improvements are achieved by spectral clipping, which reduces the number of terms and the computation time. Trade-offs between speed and accuracy are established for FDTSD calculations, and pressure fields obtained with the FDTSD method for a circular transducer are compared to those obtained with Field II and the impulse response method. The FDTSD approach, when combined with the fast nearfield method and spectral clipping, consistently achieves smaller errors in less time and requires less memory than Field II or the impulse response method.
机译:当与时空分解结合使用时,快速近场方法是一种用于计算超声换能器产生的瞬态近场压力的快速而准确的方法。但是,标准时空分解方法仅适用于时间换能器表面速度的某些分析表示,当将其应用于快速近场方法时,表示为单独的时间和空间项的乘积的有限和。为了扩展时空分解,以便在近场中针对任意换能器表面速度启用加速瞬态场仿真,推导了一种新的瞬态仿真方法,即频域时空分解(FDTSD)。使用这种方法,将时间传感器表面速度转换到频域,然后分别处理每个复数值项。通过频谱削波可以实现进一步的改进,从而减少项数和计算时间。在FDTSD计算中建立了速度与精度之间的权衡,并将通过FDTSD方法获得的圆形传感器压力场与通过Field II和脉冲响应方法获得的压力场进行了比较。与快速近场方法和频谱削波相结合时,FDTSD方法始终比Field II或脉冲响应方法在更短的时间内获得更小的误差,并且所需的存储空间更少。

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