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Optimal Coil Currents in Electromagnetic Flow Tomography

机译:电磁流层析成像中的最佳线圈电流

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Electromagnetic flow meters are a gold standard in measuring the mean flow velocity of conductive liquids and slurries in process industry. A drawback of this approach is that the velocity field cannot be determined. Velocity field information is important for characterizing multiphase flows in the process industry. Recently, electromagnetic flow tomography has been proposed for estimating velocity fields in process pipes. The modality uses multiple magnetic field excitations produced by coils and a set of electrodes attached to the inner surface of the pipe to measure the induced voltages. In earlier studies, a method for reconstructing 2-D velocity field on a pipe cross section has been developed. The method utilizes a finite-element-based computational forward model for computing boundary voltages and a Bayesian framework for inverse problem to reconstruct the velocity field. Magnetic field excitations affect the boundary voltage measurements and, hence, the reconstructed velocity field. Optimization of excitations is especially important when imaging axisymmetric flows, since all axisymmetric velocity fields having the same mean velocity produce the same boundary voltage data when uniform magnetic field excitations are used. In this paper, two methods for optimizing coil currents and resulting magnetic fields are proposed. The methods are based on maximizing the norm of the boundary voltage measurements or minimizing the uncertainty in the reconstructed velocity field estimates. The results show that by optimizing coil currents it is possible to obtain accurate velocity field estimates using just one or two optimal excitations.
机译:电磁流量计是测量过程工业中导电液体和浆料的平均流速的金标准。这种方法的缺点是无法确定速度场。速度场信息对于表征过程工业中的多相流非常重要。近来,已经提出了电磁流层析成像技术来估计过程管道中的速度场。该模态使用由线圈和连接到管道内表面的一组电极产生的多个磁场激励来测量感应电压。在较早的研究中,已经开发出一种在管道横截面上重建二维速度场的方法。该方法利用用于计算边界电压的基于有限元的计算正向模型和用于反问题的贝叶斯框架来重建速度场。磁场激励会影响边界电压测量,从而影响重构的速度场。当对轴对称流成像时,激励的优化尤为重要,因为当使用均匀磁场激励时,所有具有相同平均速度的轴对称速度场都会产生相同的边界电压数据。本文提出了两种优化线圈电流和产生的磁场的方法。这些方法基于最大化边界电压测量的范数或最小化重构速度场估计中的不确定性。结果表明,通过优化线圈电流,仅使用一个或两个最佳激励就可以获得准确的速度场估计。

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