Khanicheh Azadeh, Mintzopoulos Dionyssios, Weinberg Brian, Tzika A Aria, Mavroidis Constantinos
Department of Mechanical and Industrial Engineering, Northeastern University, Boston, MA 02115, USA.
IEEE Trans Neural Syst Rehabil Eng. 2008 Feb;16(1):91-8. doi: 10.1109/TNSRE.2007.910286.
This paper presents the design, fabrication, and testing of a novel, one degree-of-freedom, magnetic resonance compatible smart hand interfaced rehabilitation device (MR_CHIROD v.2), which may be used in brain magnetic resonance (MR) imaging during handgrip rehabilitation. A key feature of the device is the use of electrorheological fluids (ERFs) to achieve computer controlled, variable, and tunable resistive force generation. The device consists of three major subsystems: 1) an ERF based resistive element, 2) handles, and c) two sensors, one optical encoder and one force sensor, to measure the patient induced motion and force. MR_CHIROD v.2 is designed to resist up to 50% of the maximum level of gripping force of a human hand and be controlled in real time. Our results demonstrate that the MR environment does not interfere with the performance of the MR_CHIROD v.2, and, reciprocally, its use does not cause fMR image artifacts. The results are encouraging in jointly using MR_CHIROD v.2 and brain MR imaging to study motor performance and assess rehabilitation after neurological injuries such as stroke.
本文介绍了一种新型的、单自由度的、与磁共振兼容的智能手部接口康复设备(MR_CHIROD v.2)的设计、制造和测试,该设备可用于手部抓握康复过程中的脑部磁共振(MR)成像。该设备的一个关键特性是使用电流变流体(ERF)来实现计算机控制的、可变的和可调的阻力生成。该设备由三个主要子系统组成:1)基于ERF的电阻元件,2)手柄,以及3)两个传感器,一个光学编码器和一个力传感器,用于测量患者引起的运动和力。MR_CHIROD v.2的设计目的是抵抗高达人类手部最大抓握力50%的力量,并进行实时控制。我们的结果表明,MR环境不会干扰MR_CHIROD v.2的性能,反之,其使用也不会导致功能磁共振成像(fMR)图像伪影。这些结果对于联合使用MR_CHIROD v.2和脑部MR成像来研究运动性能以及评估中风等神经损伤后的康复情况是令人鼓舞的。