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Vibrational response of a MRI gradient coil cylinder to time-harmonic Lorentz-force excitations: An exact linear elastodynamic model for shielded longitudinal gradient coils

机译:MRI梯度线圈圆柱体对时谐洛伦兹力激励的振动响应:屏蔽纵向梯度线圈的精确线性弹性动力学模型

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The reduction of gradient coil (GC) vibration continues to be a challenging problem in the optimization of magnetic resonance imaging systems. A key deficiency for passive reduction strategies is that, under realistic thick-shell conditions, there are no existing mathematical models that can provide reliable theoretical predictions about the parametrical behaviors of the vibration response. In this paper, we introduce a simple linear elastodynamic model of a shielded longitudinal GC that can serve as a baseline theoretical model for studying the steady-state linear vibration response of an undamped GC cylinder under the condition that only the Z-coil windings are excited by Lorentz forces. The exact three-dimensional theory of linear elasticity is used to formulate the model, and hence, there are no built-in geometrical constraints. An exact closed-form solution for the steady-state displacement field of the GC cylinder is given, and the solution is then used to numerically investigate the frequency response of a typical whole-body GC cylinder. A core prediction of the model is that the frequency response is essentially governed by the Fourier decomposition of a dimensionless "profile function" that specifies how the current density varies along the GC cylinder axis. An interesting corollary is that generally the same set of resonant modes are excited independent of how the currents are spatially distributed. The model also predicts that the widths of all resonances are substantially decreased when shielding currents are present. Numerical results obtained using generic profile functions are found to be remarkably consistent with available in-situ experimental data and existing numerical models. The model is therefore well-suited for parametric studies of the steady-state linear vibration response assuming that Z-coil windings are excited exclusively. (C) 2019 Elsevier Inc. All rights reserved.
机译:在优化磁共振成像系统中,减小梯度线圈(GC)的振动仍然是一个具有挑战性的问题。被动减速策略的关键缺陷在于,在现实的厚壳条件下,没有现有的数学模型可以提供有关振动响应的参数行为的可靠理论预测。在本文中,我们介绍了一个屏蔽的纵向GC的简单线性弹性动力学模型,该模型可以用作研究只有Z线圈绕组的情况下无阻尼GC气缸的稳态线性振动响应的基线理论模型。洛伦兹部队。线性弹性的精确三维理论用于公式化模型,因此,没有内置的几何约束。给出了GC气瓶稳态位移场的精确封闭形式解,然后将其用于数值研究典型的整体GC气瓶的频率响应。该模型的核心预测是,频率响应基本上由无量纲“轮廓函数”的傅立叶分解支配,该傅立叶分解指定了电流密度沿GC圆柱轴的变化方式。一个有趣的推论是,通常会激发相同的一组共振模式,而与电流在空间上的分布方式无关。该模型还预测,当存在屏蔽电流时,所有谐振的宽度都会大大减小。发现使用通用轮廓函数获得的数值结果与可用的现场实验数据和现有数值模型非常一致。因此,该模型非常适合稳态线性振动响应的参数研究,假设Z线圈绕组仅受激。 (C)2019 Elsevier Inc.保留所有权利。

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