Actuation methods for applications in MR environments
Roger Gassert, Akio Yamamoto, D. Chapuis, Ludovic Dovat, Hannes Bleuler, Etienne Burdet
- 发表年份
- 2006
- 引用次数
- 113
摘要
Abstract The choice of an adequate actuation method is a central issue in the development of any mechatronic device and strongly determines the dynamic performances of the system. This choice is particularly difficult for robotic systems working within a magnetic resonance (MR) environment because of the safety and compatibility constraints imposed by the high magnetic field, switching gradients, electromagnetic pulses, and sensitive measuring equipment involved. This article analyzes actuation methods for robotic systems to be used within a magnetic resonance environment, such as systems for diagnostic and interventional MRI, neuroscience studies during functional MRI, and diagnostic fMRI. In the case of functional MRI, actuation is also required during imaging, whereas current MR‐compatible interventional systems are typically moved between imaging phases. Our analysis is based on a variety of actuation principles that we have tested both for MR compatibility and for the quality of force feedback that can be realized, including hydrostatic, belt, and cable transmissions as well as electrostatic and piezoelectric actuators. The results are completed with developments of other groups. A good solution to a given application often involves a combination of several actuation principles. A synthesis of characteristics and three comparative tables aid in the choice of an adequate actuation method for a given task or application. © 2006 Wiley Periodicals, Inc. Concepts Magn Reson 29B: 191–209, 2006.
关键词
相关论文
Statistical Learning Theory
Yuhai Wu, Vladimir Vapnik
1999
Artificial intelligence: a modern approach
1995
Fractional Differential Equations
Igor Podlubný
2025
Applied Nonlinear Control
Jean-Jacques Slotine, Weiping Li
1991