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磁共振成像中创建和控制运动的方法。

Approaches to creating and controlling motion in MRI.

作者信息

Fischer Gregory S, Cole Gregory, Su Hao

机构信息

Automation and Interventional Medicine Laboratory, Department of Mechanical Engineering, Worcester Polytechnic Institute, Worcester, MA, USA.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2011;2011:6687-90. doi: 10.1109/IEMBS.2011.6091649.

Abstract

Magnetic Resonance Imaging (MRI) can provide three dimensional (3D) imaging with excellent resolution and sensitivity making it ideal for guiding and monitoring interventions. The development of MRI-compatible interventional devices is complicated by factors including: the high magnetic field strength, the requirement that such devices should not degrade image quality, and the confined physical space of the scanner bore. Numerous MRI guided actuated devices have been developed or are currently being developed utilizing piezoelectric actuators as their primary means of mechanical energy generation to enable better interventional procedure performance. While piezoelectric actuators are highly desirable for MRI guided actuation for their precision, high holding force, and non-magnetic operation they are often found to cause image degradation on a large enough to scale to render live imaging unusable. This paper describes a newly developed piezoelectric actuator driver and control system designed to drive a variety of both harmonic and non-harmonic motors that has been demonstrated to be capable of operating both harmonic and non-harmonic piezoelectric actuators with less than 5% SNR loss under closed loop control. The proposed system device allows for a single controller to control any supported actuator and feedback sensor without any physical hardware changes.

摘要

磁共振成像(MRI)能够提供具有出色分辨率和灵敏度的三维(3D)成像,使其成为引导和监测介入操作的理想选择。MRI兼容介入设备的开发受到多种因素的困扰,包括:高磁场强度、此类设备不应降低图像质量的要求以及扫描仪孔的有限物理空间。目前已经开发出或正在开发许多MRI引导的驱动设备,它们利用压电致动器作为产生机械能的主要手段,以实现更好的介入操作性能。虽然压电致动器因其精度、高保持力和非磁性操作而非常适合MRI引导驱动,但人们经常发现它们会导致图像退化,严重到足以使实时成像无法使用。本文描述了一种新开发的压电致动器驱动器和控制系统,该系统旨在驱动各种谐波和非谐波电机,并且已经证明在闭环控制下能够以小于5%的信噪比损失运行谐波和非谐波压电致动器。所提出的系统设备允许单个控制器控制任何支持的致动器和反馈传感器,而无需进行任何物理硬件更改。

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