Mechanisms for force adjustments to unpredictable frictional changes at individual digits during two-fingered manipulation

被引:39
作者
Birznieks, I [1 ]
Burstedt, MKO [1 ]
Edin, BB [1 ]
Johansson, RS [1 ]
机构
[1] Umea Univ, Dept Physiol, SE-90187 Umea, Sweden
关键词
D O I
10.1152/jn.1998.80.4.1989
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Previous studies on adaptation of fingertip forces to local friction at individual digit-object interfaces largely focused on static phases of manipulative tasks in which humans could rely on anticipatory control based on the friction in previous trials. Here we instead analyze mechanisms underlying this adaptation after unpredictable changes in local friction between consecutive trials. With the tips of the right index and middle fingers or the right and left index fingers, subjects restrained a manipulandum whose horizontal contact surfaces were located side by side. At unpredictable moments a tangential force was applied to the contact surfaces in the distal direction at 16 N/s to a plateau at 4 N. The subjects were free to use any combination of normal and tangential forces at the two fingers, but the sum of the tangential forces had to counterbalance the imposed lend. The contact surface of the right index finger was fine-grained sandpaper, whereas that of the cooperating finger was changed between sandpaper and the more slippery rayon. The load increase automatically triggered normal force responses at both fingers. When a finger contacted rayon, subjects allowed slips to occur at this finger during the load force increase instead of elevating the normal force. These slips accounted for a partitioning of the load force between the digits that resulted in an adequate adjustment of the normal:tangential force ratios to the local friction at each digit. This mechanism required a fine control of the normal forces. Although the normal force at the more slippery surface had to be comparatively low to allow slippage, the normal fords applied by the nonslipping digit at the same time had to be high enough to prevent loss of the manipulandum. The frictional changes influenced the normal forces applied before the load ramp as well as the size of the triggered normal force responses similarly at both fingers, that is, with rayon at one contact surface the normal forces increased at both fingers. Thus to independently adapt fingertip forces to the local friction the normal forces were controlled at an interdigital level by using sensory information from both engaged digits. Furthermore, subjects used both short- and long term anticipatory mechanisms in a manner consistent with the notion that the central nervous system (CNS) entertains internal models of relevant object and task properties during manipulation.
引用
收藏
页码:1989 / 2002
页数:14
相关论文
共 42 条
[1]  
Abbs J. H., 1987, HIGHER BRAIN FUNCTIO, P15
[2]   Coordination of fingertip forces during human manipulation can emerge from independent neural networks controlling each engaged digit [J].
Burstedt, MKO ;
Edin, BB ;
Johansson, RS .
EXPERIMENTAL BRAIN RESEARCH, 1997, 117 (01) :67-79
[3]   Control of forces applied by individual fingers engaged in restraint of an active object [J].
Burstedt, MKO ;
Birznieks, I ;
Edin, BB ;
Johansson, RS .
JOURNAL OF NEUROPHYSIOLOGY, 1997, 78 (01) :117-128
[4]   Friction, not texture, dictates grip forces used during object manipulation [J].
Cadoret, G ;
Smith, AM .
JOURNAL OF NEUROPHYSIOLOGY, 1996, 75 (05) :1963-1969
[5]  
COLE KJ, 1993, EXP BRAIN RES, V95, P523
[6]   GRIP FORCE ADJUSTMENTS EVOKED BY LOAD FORCE PERTURBATIONS OF A GRASPED OBJECT [J].
COLE, KJ ;
ABBS, JH .
JOURNAL OF NEUROPHYSIOLOGY, 1988, 60 (04) :1513-1522
[7]   RESPONSES OF CEREBELLAR PURKINJE-CELLS TO SLIP OF A HAND-HELD OBJECT [J].
DUGAS, C ;
SMITH, AM .
JOURNAL OF NEUROPHYSIOLOGY, 1992, 67 (03) :483-495
[8]   INDEPENDENT CONTROL OF HUMAN FINGER-TIP FORCES AT INDIVIDUAL DIGITS DURING PRECISION LIFTING [J].
EDIN, BB ;
WESTLING, G ;
JOHANSSON, RS .
JOURNAL OF PHYSIOLOGY-LONDON, 1992, 450 :547-564
[9]   A PHYSIOLOGICAL METHOD FOR RELAYING FRICTIONAL INFORMATION TO A HUMAN TELEOPERATOR [J].
EDIN, BB ;
HOWE, R ;
WESTLING, G ;
CUTKOSKY, M .
IEEE TRANSACTIONS ON SYSTEMS MAN AND CYBERNETICS, 1993, 23 (02) :427-432
[10]  
FLANAGAN JR, 1995, EXP BRAIN RES, V105, P455