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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Force sensing using 3D displacement measurements in linear elastic bodies
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Force sensing using 3D displacement measurements in linear elastic bodies

机译:在线性弹性体中使用3D位移测量进行力感测

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In cell traction microscopy, the mechanical forces exerted by a cell on its environment is usually determined from experimentally measured displacement by solving an inverse problem in elasticity. In this paper, an innovative numerical method is proposed which finds the "optimal" traction to the inverse problem. When sufficient regularization is applied, we demonstrate that the proposed method significantly improves the widely used approach using Green's functions. Motivated by real cell experiments, the equilibrium condition of a slowly migrating cell is imposed as a set of equality constraints on the unknown traction. Our validation benchmarks demonstrate that the numeric solution to the constrained inverse problem well recovers the actual traction when the optimal regularization parameter is used. The proposed method can thus be applied to study general force sensing problems, which utilize displacement measurements to sense inaccessible forces in linear elastic bodies with a priori constraints.
机译:在细胞牵引显微镜中,通常通过解决弹性反问题,由实验测量的位移确定细胞在其周围环境上施加的机械力。在本文中,提出了一种创新的数值方法,该方法找到了反问题的“最优”牵引力。当应用足够的正则化时,我们证明了所提出的方法大大改善了使用格林函数的广泛使用的方法。受实际细胞实验的推动,缓慢迁移的细胞的平衡条件作为一组相等约束施加于未知牵引力上。我们的验证基准表明,使用最佳正则化参数时,约束反问题的数值解可以很好地恢复实际牵引力。所提出的方法因此可以被用于研究一般的力感测问题,其利用位移测量来感测具有先验约束的线性弹性体中不可访问的力。

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