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Time-dependent topology optimization of bone plates considering bone remodeling

机译:考虑骨重塑的骨板的时间依赖性拓扑优化

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Bone plates have been widely used for the treatment of bone defects and trauma. These fixation plates can stabilize or replace bone tissue to restore appropriate load-bearing functionality. Nevertheless, the use of bone plates may lead to the stress shielding, thereby weakening prosthetic bone substitutes (e.g. bone graft or scaffolds) due to significant change in the biomechanical environment after implantation. To address this issue, we propose a time-dependent topology optimization procedure for the design of bone plates by taking into account bone remodeling. A solid isotropic material penalization (SIMP) model is used to interpolate design variables. The objective is to maximize total bone density within a reconstruction area at the final stage of bone remodeling, subject to a volume constraint of the bone plate and maximum allowable compliance of the prosthetic system. The sensitivity of bone density at the final stage is derived with respect to the topological variables of the plate in a step-wise manner. To facilitate sensitivity analysis, a bone remodeling rule is formulated in two different ways to accommodate a C-1 continuity. A jaw reconstruction problem is exemplified in this study to demonstrate the effectiveness of the proposed approach. Through this specific case, the non-differentiability issue due to the lazy zone of a remodeling rule is smoothed; and the proposed approach is also compared with that of a time-independent design. The effects of volume fraction and compliance constraints are also investigated to gain further insights into the design of prosthetic substitutes. Together with additive manufacturing technology, the proposed time-dependent topology optimization procedure is expected to form a useful tool for the design of implantable devices ensuring favorable long-term treatment outcomes. (C) 2019 Elsevier B.V. All rights reserved.
机译:骨板已广泛用于治疗骨缺损和创伤。这些固定板可以稳定或替代骨组织以恢复适当的承载功能。然而,使用骨板可能导致应力屏蔽,从而由于植入后生物力学环境的显着变化而减弱了假体骨代替(例如骨移植物或支架)。为了解决这个问题,我们通过考虑骨改造,提出了一个时间依赖的拓扑优化程序,用于设计骨板。固体各向同性物质损失(SIMP)模型用于插入设计变量。目的是在骨压模的最终阶段的重建区域内最大化骨密度的总骨密度,受到骨板的体积约束和假体系的最大允许依从性。最终阶段的骨密度的敏感性以逐步的方式相对于板的拓扑变量来得出。为了促进灵敏度分析,以两种不同的方式配制骨重塑规则以适应C-1连续性。在本研究中举例说明了钳口重建问题,以证明所提出的方法的有效性。通过这种特定情况,由于重塑规则的惰性区域引起的非差异性问题被平滑;并且所提出的方法也与一个无关的设计的方法进行了比较。还研究了体积分数和合规限制的影响,以进一步了解假体替代品的设计。与添加剂制造技术一起,预计所提出的时间依赖性拓扑优化程序将形成用于设计可植入设备的有用工具,确保有利的长期治疗结果。 (c)2019 Elsevier B.v.保留所有权利。

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