Transcutaneous functional electrical stimulator "Compex Motion"

被引:58
作者
Keller, T
Popovic, MR
Pappas, IPI
Müller, PY
机构
[1] Univ Hosp Balgrist, ParaCare Inst Rehabil & Res, CH-8008 Zurich, Switzerland
[2] Swiss Fed Inst Technol, Automat Control Lab, Zurich, Switzerland
[3] Compex SA, Ecublens, Switzerland
关键词
electrical stimulator; functional electrical stimulation; grasping; neuroprosthesis; spinal cord injuries; walking;
D O I
10.1046/j.1525-1594.2002.06934.x
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Research groups in the field of functional electrical stimulation (FES) are often confronted with the fact that existing and commercially available FES stimulators do not provide sufficient flexibility and cannot be used to perform different FES tasks. The lack of flexibility of the commercial systems until now forced various FES research teams to develop their own stimulators. This paper presents a newly developed firmware and graphical programming software for the commercial Compex 2 stimulator which enhances the versatility and capabilities of the stimulator from a medical and therapeutic device to a neuroprosthesis and research tool. The new stimulator, called Compex Motion, can now be used to develop various custom-made neuroprostheses, neurological assessment devices, muscle exercise systems, and experimental setups for physiological studies. It can be programmed to generate any arbitrary stimulation sequence that can be controlled or regulated by various external sensors, sensory systems, or laboratory equipment. By interconnecting two or more Compex Motion stimulators, the number of stimulation channels can be increased to multiples of four channels, 8, 12, 16, 20, and so forth. The stimulation sequences and the control strategies are programmed and stored on exchangeable credit card-sized memory chip cards. The stimulator has four biphasic current-regulated stimulation channels and two general purpose analog input channels that can be configured to measure the output voltage of a variety of sensors such as goniometers, inclinometers, gyroscopes, or electromyographic (EMG) sensors. For realtime EMG control of the stimulation patterns, an EMG processing algorithm with software stimulation artifact blanking was implemented. The Compex Motion stimulator is manufactured by the Swiss company Compex SA and is currently undergoing clinical trials.
引用
收藏
页码:219 / 223
页数:5
相关论文
共 6 条
[1]  
IJzerman M, 1996, J REHAB SCI, V9, P86
[2]   Grasping in high lesioned tetraplegic subjects using the EMG controlled neuroprosthesis [J].
Keller, T ;
Curt, A ;
Popovic, MR ;
Signer, A ;
Dietz, V .
NEUROREHABILITATION, 1998, 10 (03) :251-255
[3]   MYOSTIM-FES to prevent muscle atrophy in microgravity and bed rest:: Preliminary report [J].
Mayr, W ;
Bijak, M ;
Girsch, W ;
Hofer, C ;
Lanmüller, H ;
Rafolt, D ;
Rakos, M ;
Sauermann, S ;
Schmutterer, C ;
Schnetz, G ;
Unger, E ;
Freilinger, G .
ARTIFICIAL ORGANS, 1999, 23 (05) :428-431
[4]   Surface-stimulation technology for grasping and walking neuroprostheses [J].
Popovic, MR ;
Keller, T ;
Pappas, IPI ;
Dietz, V ;
Morari, M .
IEEE ENGINEERING IN MEDICINE AND BIOLOGY MAGAZINE, 2001, 20 (01) :82-93
[5]  
PROCHAZKA A, 1997, ARCH PHYS MED REHAB, V78, P1
[6]   Clinical use of the Odstock dropped foot stimulator: Its effect on the speed and effort of walking [J].
Taylor, PN ;
Burridge, JH ;
Dunkerley, AL ;
Wood, DE ;
Norton, JA ;
Singleton, C ;
Swain, ID .
ARCHIVES OF PHYSICAL MEDICINE AND REHABILITATION, 1999, 80 (12) :1577-1583