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Theory of gradient coil design methods for magnetic resonance imaging

机译:磁共振成像梯度线圈设计方法理论

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The process to produce an MR image includes nuclear alignment, RF excitation, spatial encoding, and image formation. In simple terms, an magnetic resonance imaging (MRI) system consists of five major components: a magnet, gradient systems, an RF coil system, a receiver, and a computer system. To form an image, it is necessary to perform spatial localization of the MR signals, which is achieved using gradient coils. In modern MRI, gradient coils able to generate high gradient strengths and slew rates are required to produce high imaging speeds and improved image quality. MRI also requires the use of gradient coils that generate magnetic fields, which vary linearly with position over the imaging volume. Gradient coils for MRI must therefore have high current efficiency (defined as the ratio of gradient generated to current drawn), short switching time (i.e., low inductance), gradient linearity over a large volume, low power consumption, and minimal interaction with any other equipment, which would otherwise result in eddy currents. Over the last two decades new methods of gradient coil design have been developed, and a combination of these methods can be a mixture of them trying to avoid discomforts to patients that at the end is the center of all the technological efforts in the art of MRI. ? 2010 Wiley Periodicals, Inc. Concepts Magn Reson Part A 36A: 223–242, 2010.
机译:产生MR图像的过程包括核对准,RF激励,空间编码和图像形成。简而言之,磁共振成像(MRI)系统由五个主要组件组成:磁体,梯度系统,RF线圈系统,接收器和计算机系统。为了形成图像,需要执行MR信号的空间定位,这是使用梯度线圈来实现的。在现代MRI中,需要能够产生高梯度强度和压摆率的梯度线圈以产生高成像速度和改善的图像质量。 MRI还需要使用产生磁场的梯度线圈,该磁场随成像体积上的位置线性变化。因此,用于MRI的梯度线圈必须具有高电流效率(定义为所产生的梯度与所汲取的电流之比),短的切换时间(即低电感),大体积上的梯度线性,低功耗以及与任何其他相互作用的最小化设备,否则会导致涡流。在过去的二十年中,已经开发出了梯度线圈设计的新方法,并且可以将这些方法结合起来使用,以试图避免给患者带来不适,这些患者最终是MRI技术领域所有技术工作的中心。 ? 2010 Wiley Periodicals,Inc.概念Magn Reson A部分36A:223–242,2010年。

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