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The coil array method for creating a dynamic imaging volume

机译:用于创建动态成像体积的线圈阵列方法

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摘要

Purpose: Gradient strength and speed are limited by peripheral nerve stimulation (PNS) thresholds. The coil array method allows the gradient field to be moved across the imaging area. This can help reduce PNS and provide faster imaging for image-guided therapy systems such as the magnetic resonance imaging-guided linear accelerator (MRI-linac). Theory: The coil array is designed such that many coils produce magnetic fields, which combine to give the desired gradient profile. The design of the coil array uses two methods: either the singular value decomposition (SVD) of a set of field profiles or the electromagnetic modes of the coil surface. Methods: Two whole-body coils and one experimental coil were designed to investigate the method. The field produced by the experimental coil was compared to simulated results. Results: The experimental coil region of uniformity (ROU) was moved along the axis as shown in simulation. The highest observed field deviation was 16.9% at the edge of the ROU with a shift of 35 mm. The whole-body coils showed a median field deviation across all offsets below 5% with an eight-coil basis when using the SVD design method. Conclusion: Experimental results show the feasibility of a moving imaging region within an MRI with a low number of coils in the array.
机译:目的:梯度强度和速度受周围神经刺激(PNS)阈值的限制。线圈阵列方法允许梯度场在成像区域内移动。这可以帮助减少PNS,并为诸如磁共振成像引导线性加速器(MRI-linac)之类的图像引导治疗系统提供更快的成像。理论:设计线圈阵列时,许多线圈会产生磁场,这些磁场会结合在一起产生所需的梯度曲线。线圈阵列的设计使用两种方法:一组场轮廓的奇异值分解(SVD)或线圈表面的电磁模式。方法:设计了两个全身线圈和一个实验线圈来研究该方法。将实验线圈产生的磁场与模拟结果进行比较。结果:实验线圈的均匀性区域(ROU)沿轴移动,如仿真所示。在ROU边缘观察到的最大场偏差为16.9%,偏移35 mm。当使用SVD设计方法时,全身线圈在8线圈的基础上显示了所有偏移量低于5%的中值磁场偏差。结论:实验结果表明,在MRI内移动成像区域并减少阵列中线圈数量的可行性。

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