The effect of shear forces externally applied to skin surface on underlying tissues

Ming Zhang, V.C. Roberts
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引用次数: 62

Abstract

The effects of shear forces externally applied to the skin surface on the underlying tissues have been investigated. An analysis of the internal stresses and strains was conducted using a simplified model incorporating elasticity theory. Skin blood flow was measured using laser Doppler flowmetry while variable shear forces over a range of 0–250g were applied to the skin surface. The theoretical model predicts that the application of surface shear forces alters the internal stress distribution and makes the shear and compressive components of stresses increase ahead of the surface force application point. The force resulting from concomitant application of shear and normal force determines the internal maximum stress and strain. Theoretically, the shear force should have the same effects on the underlying tissues as normal force. The experimental investigations revealed that the skin blood flow decreased roughly linearly with the increase of shear forces. When a shear force equal to the normal force was applied, the flux decreased by 45%, nearly equal to the increasing magnitude (41%) of resultant of normal and shear forces.

外部施加于皮肤表面的剪切力对下层组织的影响
研究了皮肤表面外部施加的剪切力对皮下组织的影响。采用结合弹性理论的简化模型进行了内应力和应变分析。使用激光多普勒血流仪测量皮肤血流,同时在皮肤表面施加0-250g范围内的可变剪切力。理论模型预测,施加表面剪力改变了内应力分布,使应力的剪切分量和压缩分量在施加表面力点之前增大。剪切力和法向力共同作用产生的力决定了内部最大应力和应变。从理论上讲,剪力对底层组织的作用应与法向力相同。实验研究表明,随着剪切力的增大,皮肤血流量大致呈线性下降。当施加与法向力相等的剪切力时,通量减少了45%,几乎等于法向力和剪力合力的增加幅度(41%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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