Optimum length of muscle contraction

被引:62
作者
Chang, YW
Su, FC
Wu, HW
An, KN
机构
[1] Mayo Clin & Mayo Fdn, Biomech Lab, Div Orthoped Res, Rochester, MN 55905 USA
[2] Natl Cheng Kung Univ, Inst Biomed Engn, Tainan 70101, Taiwan
关键词
optimum muscle length; length-tension relationship; muscle stress; elbow joint; optimization;
D O I
10.1016/S0268-0033(99)00014-5
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Objective. The purpose of this study was to develop a mathematical method to determine optimum muscle length and muscle stress based on the measurable physiological and biomechanical data. Design. The values of optimum muscle length and muscle stress are investigated. Background. Understanding the characteristics of muscle function in vivo is important for assisting the design of the tendon transfer and other rehabilitation procedures. In vivo determination of the physiological and anatomical parameters of muscle contraction is difficult but not impossible. Optimum muscle length and muscle stresses are important parameters for understanding muscle function. Methods. A Cybex dynamometer was used to measure isometric elbow flexion torque in eight different joint positions in seven subjects. Then the optimization method was used to determine optimum muscle length and muscle stress of three major elbow flexors, the biceps brachii, the brachialis, and the brachioradialis based on the model and joint torque data. Results. The calculated muscle stress for each subject was on average 109 N/cm(2), while the optimum muscle length for the biceps brachii, the brachialis, and the brachioradialis was on average 14.05, 6.53, 17.24 cm, respectively. The joint angles corresponding to these optimum muscle lengths are 110 degrees, 100 degrees and 50 degrees of elbow flexion, respectively. Conclusions. Optimum muscle length and muscle stress can be properly predicted using an analytical mathematical model along with an experimentally measured joint torque.
引用
收藏
页码:537 / 542
页数:6
相关论文
共 18 条
[1]  
Alexander R. M., 1975, J HUMAN MOVEMENT STU, V1, P115
[2]   PHYSIOLOGICAL CONSIDERATIONS OF MUSCLE FORCE THROUGH THE ELBOW JOINT [J].
AN, KN ;
KAUFMAN, KR ;
CHAO, EYS .
JOURNAL OF BIOMECHANICS, 1989, 22 (11-12) :1249-1256
[3]   MUSCLES ACROSS THE ELBOW JOINT - A BIOMECHANICAL ANALYSIS [J].
AN, KN ;
HUI, FC ;
MORREY, BF ;
LINSCHEID, RL ;
CHAO, EY .
JOURNAL OF BIOMECHANICS, 1981, 14 (10) :659-+
[4]   RELATIVE TENSION AND POTENTIAL EXCURSION OF MUSCLES IN THE FOREARM AND HAND [J].
BRAND, PW ;
THOMPSON, DE .
JOURNAL OF HAND SURGERY-AMERICAN VOLUME, 1981, 6 (03) :209-219
[5]   EVIDENCE THAT MAXIMUM MUSCLE STRESS IS NOT A CONSTANT - DIFFERENCES IN SPECIFIC TENSION IN ELBOW FLEXORS AND EXTENSORS [J].
BUCHANAN, TS .
MEDICAL ENGINEERING & PHYSICS, 1995, 17 (07) :529-536
[6]   GRAPHICAL INTERPRETATION OF SOLUTION TO REDUNDANT PROBLEM IN BIOMECHANICS [J].
CHAO, EY ;
AN, KN .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1978, 100 (03) :159-167
[7]   A PHYSIOLOGICALLY BASED CRITERION OF MUSCLE FORCE PREDICTION IN LOCOMOTION [J].
CROWNINSHIELD, RD ;
BRAND, RA .
JOURNAL OF BIOMECHANICS, 1981, 14 (11) :793-801
[8]   AN INTERACTIVE GRAPHICS-BASED MODEL OF THE LOWER-EXTREMITY TO STUDY ORTHOPEDIC SURGICAL-PROCEDURES [J].
DELP, SL ;
LOAN, JP ;
HOY, MG ;
ZAJAC, FE ;
TOPP, EL ;
ROSEN, JM .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1990, 37 (08) :757-767
[9]   Absolute muscle force in the ankle flexors of man [J].
Haxton, HA .
JOURNAL OF PHYSIOLOGY-LONDON, 1944, 103 (03) :267-273
[10]  
IKAI MICHIO, 1968, INT Z ANGEW PHYSIOL ARBEITSPHYSIOL, V26, P26