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F Shelton

Publications and source records attributed to F Shelton.

3 recordsLinked to original sources

Full-body interface pressure testing as a method for performance evaluation of clinical support surfaces.

A method for evaluating the performance of clinical support surfaces is required by designers in their efforts to produce better clinical support surfaces that will reduce the incidence of pressure ulcers. In this study, a Pressure Index (P(index)) is defined which is derived from an analytical equation used to evaluate the average interface pressure, the peak pressure, the magnitude of the peak pressure, and the number of peak pressures on the entire body. The type of subjects needed to represent a population of users as well as the head of bed elevations necessary to simulate clinical applications were integrated with the P(index) to create a single-value mean pressure index which can be used to evaluate any type of surface. To determine the accuracy and repeatability of the mean pressure index, three surfaces (a standard hospital innerspring, a replacement foam mattress, and a low-airloss surface) were tested and evaluated using this method. The low airloss performed the best and the standard innerspring clearly performed the worst (p < 0.0001). The method appeared to accurately and reproducibly predict the relative performance of the three surfaces in reducing pressure.

Aged↗

The shear behaviour of the rabbit medial collateral ligament.

This study was conducted to determine whether load is transmitted via shear through the matrix between ligament fibres rather than solely as tension in the fibres. Thirty-six rabbit medial collateral ligaments were subjected to uniaxial tension tests. Twenty-four of these ligament complexes were incised laterally to create longitudinal shear planes, while the remaining 12 complexes served as controls. Data were used in conjunction with finite element models to determine how shear transfer, if any, occurred in the ligament. Non-linear, anisotropic, plane stress finite element models were able to simulate the non-linear structural behaviour shown by uncut control ligaments under normal tensile testing. The finite element models were also able to reproduce the ligament load deformation behaviour observed in the shear tests. Results indicated that some load was transferred between the collagen fibres and other constituents in the ground substance of these ligaments and possibly also through fibres missed during the cutting procedure. The exact manner in which the load was transmitted remains unclear and requires further investigation and quantification.

Animals↗