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Establishing the appropriate pressure exerted by the shoe upper over the foot surface is fundamental for the design of specific footwear, although measuring the dorsal pressures can also provide important additional information.
Measurement of mechanical withdrawal thresholds or thermal stimulation of the foot surface has often been used, with the former indicating mechanical allodynia and the latter revealing thermal hyperalgesia.
A radial basis function (RBF -type RBF -typeation scheme is employed to obtain quality images by regularization noischemeh as artisacts nemployedfootosurface.
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One important point is that a minimum of 4 min during any run has been suggested to optimise the foot-surface interaction [52], and so initial increases should be no less than this duration.
With an average muscle stress of 200 kPa, assuming 1 μm of the foot-surface contact area and taking adhesive forces per unit area of 1 MPa into account, a minimum muscle cross section of 5 μm is needed to overcome adhesion for every single step.
Activation of the foot dorsum, the lateral foot margin (sural nerve) and the plantar foot surface (tibial nerve) show differential responses [ 4, 5, 9- 11].
The footwear's primary goal is to redistribute pressure on the plantar foot surface to relieve pressure at locations that are at risk for (re)ulceration.
The rats were placed on an elevated grid rack under individual polycarbonate cages allowing easy access to the plantar foot surface.
Discrete measurements are performed using individual sensors (commonly up to eight sensors) placed at specific locations on the plantar foot surface (usually in-shoe).
It is typically thought to affect the big toe, but it affects other parts of the feet as well, including the bottom of the foot (plantar surface).
Thus, the shins and dorsum of the feet (upper surface of the feet) will touch the floor.
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