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Mechanics of bending, torsion, and variable precurvature in multi-tube active cannulas

机译:多管活动插管的弯曲,扭转和可变曲率力学

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Active cannulas are a relatively new continuum robot subclass characterized by their use of preshaped tubes that transmit bending moments as they slide within one another and are axially rotated. Previous (experimentally vetted) mechanics-based models of active cannula shape assume piecewise constant precurvature of component tubes, and neglect torsion in curved sections of the device. Recently a general, coordinate-free, energy-based framework for active cannula shape has been formulated that relaxes these requirements and includes all prior models as special cases. However, only the 2-tube, constant-precurvature case has thus far been explored in detail using the framework. In this paper we consider the general case of an arbitrary number of component tubes and precurvatures that vary with arc length, deriving a set of differential equations that capture both bending and torsional effects continuously along the active cannula backbone.We then show how to solve these differential equations numerically to describe active cannula shape.
机译:主动插管是一种相对较新的连续机器人子类,其特征在于它们使用预成形管,这些预成形管在彼此滑动并轴向旋转时传递弯矩。先前(经过实验审查)的基于活动插管形状的基于力学的模型假定组件管的分段恒定的预曲率,而忽略了设备弯曲部分的扭转。最近,已经制定了用于活动套管形状的通用,无坐标,基于能量的框架,该框架放宽了这些要求,并包括所有先前的模型作为特殊情况。但是,到目前为止,使用该框架仅详细研究了2管,恒定曲率情况。在本文中,我们考虑了随弧长变化的任意数量的分量管和预曲率的一般情况,推导了一组微分方程,这些微分方程可连续捕获沿活动套管主干的弯曲和扭转效应,然后展示如何解决这些问题用数值微分方程描述活动套管形状。

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