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Biomedical subjects

M A Holbein

Publications and source records attributed to M A Holbein.

2 recordsLinked to original sources

Functional stability limits while holding loads in various positions.

Stability of the body during manual material handling is an important issue in the prevention of falls and over-exertion injuries. This research investigated stability limits while standing and holding loads in different positions relative to the body. Theoretically, the stability region is the full base of support defined by the perimeter of the foot contact area. However, the functional stability region may be smaller. The purpose of this study was to locate functional stability limits with respect to the base of support. Fifteen male subjects leaned as far as possible in four directions in the sagittal and frontal planes. Their center of gravity location at these extremes determined the stability limit. The results showed that functional stability limits reached only about 60% of the distance to the maximum base of support limits under the conditions of this study. The sway angles reached at the stability limits averaged 9.2 degrees anteroposteriorly and 15.3 degrees laterally. External load positions which lowered the center of gravity of the body-and-load system extended those stability limits. This study provides a postural stability perspective of load-holding which may be applied in establishing safe lifting and reach limits.

Accident Prevention↗

Stability limits in extreme postures: effects of load positioning, foot placement, and strength.

Although injuries related to postural stability are prevalent, ergonomic job analyses traditionally have not addressed stability issues. In this research functional stability limits are quantified for persons standing in extreme postures under various external load and foot positioning conditions. Participants were asked to lean and displace their center of gravity (COG) as far as possible in eight directions to the sides and front of the body. Stability measures based on these COG displacements were calculated. All controlled variables significantly affected the stability measures. When standing unladen, participants extended their COG to within 99% of their theoretical maximum. Movement was much more restricted when handling a load (89%), especially when holding it with one hand on the shoulder (84%). On average, increased separation of the feet in a particular direction resulted in larger COG displacements in that direction. The results are discussed relative to their effects on balance and stability modeling.

Adult↗