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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Numerical Simulation of Transit-Time Ultrasonic Flowmeters by a Direct Approach
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Numerical Simulation of Transit-Time Ultrasonic Flowmeters by a Direct Approach

机译:超声时差法流量计的数值模拟

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This paper deals with the development of a computational code for the numerical simulation of wave propagation through domains with a complex geometry consisting in both solids and moving fluids. The emphasis is on the numerical simulation of ultrasonic flowmeters (UFMs) by modeling the wave propagation in solids with the equations of linear elasticity (ELE) and in fluids with the linearized Euler equations (LEEs). This approach requires high performance computing because of the high number of degrees of freedom and the long propagation distances. Therefore, the numerical method should be chosen with care. In order to minimize the numerical dissipation which may occur in this kind of configuration, the numerical method employed here is the nodal discontinuous Galerkin (DG) method. Also, this method is well suited for parallel computing. To speed up the code, almost all the computational stages have been implemented to run on graphical processing unit (GPU) by using the compute unified device architecture (CUDA) programming model from NVIDIA. This approach has been validated and then used for the two-dimensional simulation of gas UFMs. The large contrast of acoustic impedance characteristic to gas UFMs makes their simulation a real challenge.
机译:本文涉及计算代码的开发,该计算代码用于对波通过具有复杂几何形状(包含固体和运动流体)的区域的波传播进行数值模拟。重点是通过使用线性弹性方程(ELE)建模固体中的波传播以及通过线性Euler方程(LEEs)建模流体中的波传播来对超声波流量计(UFM)进行数值模拟。由于大量的自由度和长的传播距离,这种方法需要高性能的计算。因此,应谨慎选择数值方法。为了最小化在这种配置中可能发生的数值耗散,此处采用的数值方法是节点不连续伽勒金(DG)方法。而且,此方法非常适合于并行计算。为了加快代码的速度,通过使用NVIDIA的计算统一设备架构(CUDA)编程模型,几乎所有计算阶段都已实现在图形处理单元(GPU)上运行。该方法已经过验证,然后用于气体UFM的二维模拟。声阻抗特性与气体UFM的巨大对比使它们的仿真成为真正的挑战。

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