Abstract Distribution of contact pressure and forces between the seated human subjects and a visco-elastic seat is experimentally investigated under vertical vibration. The dynamic pressure on the elastic seat is measured under sinusoidal vertical vibration of different magnitudes in the 1–10 Hz frequency range, using a flexible grid of pressure sensors. The human–seat interface pressure data acquired with a total of six subjects is analyzed to illustrate the influence of magnitude and frequency of vibration excitations on the maximum ischium pressure, effective contact area and contact force distribution. The results are discussed to illustrate the influence of seated posture and the subject build on the contact force and area. Alternately, the contour maps of static pressure distribution, and time histories of the ischium pressure and the effective contact area measured under vibration are compared with those determined while using a rigid seat. The results show that the maximum variations in the ischium pressure and the effective contact area on a soft seat occur near the resonant frequency of the coupled human–seat system (2.5–3.0 Hz). The maximum ischium pressure and effective contact area on a soft seat tend to increase considerably with increase in the magnitude of vibration excitation. Relevance to industry Pressure distribution at the human–seat interface has been found to be an important factor affecting the seating comfort and possibly the work efficiency of various workers. The study of human–seat interface pressure distribution under vibration is of relevance to seated vehicle drivers who are regularly exposed to vibration. The results reported in this paper may find some use for designing seat cushions with enhanced postural support abilities while taking account of the dynamic pressure distribution under vehicular vibration.
[1]
D Ng,et al.
Evaluation of an intelligent seat system.
,
1995,
Applied ergonomics.
[2]
William S. Marras,et al.
Measurement of Seat Pressure Distributions
,
1987
.
[3]
G. J. Gouw,et al.
A study of hand grip pressure distribution and EMG of finger flexor muscles under dynamic loads.
,
1995,
Ergonomics.
[4]
Kuntal Thakurta,et al.
Evaluating Short and Long Term Seating Comfort
,
1995
.
[5]
D S Drummond,et al.
A study of pressure distributions measured during balanced and unbalanced sitting.
,
1982,
The Journal of bone and joint surgery. American volume.
[6]
E. Stauffer,et al.
Comparison of pressure distribution qualities in seat cushions.
,
1971,
Bulletin of prosthetics research.
[7]
Subhash Rakheja,et al.
Study of human–seat interface pressure distribution under vertical vibration
,
1998
.
[8]
Tim Carnahan,et al.
User Perspectives on Seat Design
,
1995
.
[9]
O. Lindan,et al.
PRESSURE DISTRIBUTION ON THE SURFACE OF THE HUMAN BODY. I. EVALUATION IN LYING AND SITTING POSITIONS USING A "BED OF SPRINGS AND NAILS".
,
1965,
Archives of physical medicine and rehabilitation.
[10]
M. Manley,et al.
Pressure redistribution in wheelchair cushion for paraplegics: its application and evaluation
,
1979,
Paraplegia.
[11]
Paul-Émile Boileau.
A study of secondary suspensions and human driver response to whole-body vehicular vibration and shock
,
1995
.
[12]
Michael J. Griffin,et al.
Handbook of Human Vibration
,
1990
.