Zhang Guigen
Micro/Nano Bioengineering Laboratory, Faculty of Engineering, Department of Biological and Agricultural Engineering, Driftmier Engineering Center, The University of Georgia, Athens, GA 30602, USA.
Clin Biomech (Bristol). 2004 Aug;19(7):746-50. doi: 10.1016/j.clinbiomech.2004.04.001.
External fixation devices are widely used for treating unstable bone fractures because of their attractive features including minimal invasiveness, maximum tailorability, and extreme versatility. In one type of these devices (i.e., the fine-wire fixators), these unique features are made possible by the use of tensioned wires to support bone fragments. The major problem with these wires is their yielding. Once the wires yield, the fracture healing process will be adversely affected. A recent study showed that the nonlinear behavior observed in these tensioned wires can be geometric and material, and the geometric nonlinearity will stiffen the wires while the material nonlinearity will cause the wires to yield. This study is to investigate if it is possible to avoid the material nonlinearity in order to retain the elastic and repeatable performance for the wires.
Nonlinear and large deformation finite element analyses were conducted. Models of a bone segment transfixed by pairs of cross-aligned wires subjected to various levels of pre-tension were developed. The bone segment was subjected to a vertical load, and the load-displacement curves, wire tensions and wire tensile stresses were obtained under a full cycle of loading and unloading regime.
Pre-tensioning the wires is beneficial for stiffening a fixation device, but is disadvantageous to maintaining the wire elasticity. By limiting the level of the pre-tension, we can avoid the material nonlinearity. Doing so we will be able to stiffen the fixation device and retain elastic and predictable mechanical performance at the same time.
The findings will lead to a new paradigm toward enhancing the performance of external fixation devices.
外固定装置因其具有微创、高度可定制和极其通用等吸引人的特点,被广泛用于治疗不稳定骨折。在这类装置的一种类型(即细钢丝固定器)中,这些独特的特点是通过使用张紧的钢丝来支撑骨碎片实现的。这些钢丝的主要问题是它们会屈服。一旦钢丝屈服,骨折愈合过程将受到不利影响。最近的一项研究表明,在这些张紧的钢丝中观察到的非线性行为可能是几何和材料方面的,几何非线性会使钢丝变硬,而材料非线性会导致钢丝屈服。本研究旨在探讨是否有可能避免材料非线性,以保持钢丝的弹性和可重复性能。
进行了非线性和大变形有限元分析。建立了由成对交叉排列的钢丝固定的骨段模型,这些钢丝受到不同水平的预张力。对骨段施加垂直载荷,并在加载和卸载的完整循环下获得载荷 - 位移曲线、钢丝张力和钢丝拉应力。
对钢丝进行预张紧有利于使固定装置变硬,但不利于保持钢丝的弹性。通过限制预张紧的程度,可以避免材料非线性。这样做能够使固定装置变硬,同时保持弹性和可预测的力学性能。
这些发现将引领一种提高外固定装置性能的新范式。