Oldfield Matthew, Dini Daniele, Giordano Gianpaolo, Rodriguez Y Baena Ferdinando
Department of Mechanical Engineering Imperial College, Exhibition Road, London SW7 2AZ, UK.
Comput Methods Biomech Biomed Engin. 2013;16(5):530-43. doi: 10.1080/10255842.2011.628448. Epub 2012 Jan 10.
Detailed finite element modelling of needle insertions into soft tissue phantoms encounters difficulties of large deformations, high friction, contact loading and material failure. This paper demonstrates the use of cohesive elements in high-resolution finite element models to overcome some of the issues associated with these factors. Experiments are presented enabling extraction of the strain energy release rate during crack formation. Using data from these experiments, cohesive elements are calibrated and then implemented in models for validation of the needle insertion process. Successful modelling enables direct comparison of finite element and experimental force-displacement plots and energy distributions. Regions of crack creation, relaxation, cutting and full penetration are identified. By closing the loop between experiments and detailed finite element modelling, a methodology is established which will enable design modifications of a soft tissue probe that steers through complex mechanical interactions with the surrounding material.
对软组织模型进行针插入的详细有限元建模面临着大变形、高摩擦、接触载荷和材料失效等困难。本文展示了在高分辨率有限元模型中使用内聚单元来克服与这些因素相关的一些问题。文中给出了实验,能够提取裂纹形成过程中的应变能释放率。利用这些实验数据对内聚单元进行校准,然后在模型中实现以验证针插入过程。成功的建模使得能够直接比较有限元和实验的力-位移图以及能量分布。识别出了裂纹产生、松弛、切割和完全穿透的区域。通过在实验和详细有限元建模之间形成闭环,建立了一种方法,该方法将能够对通过与周围材料复杂机械相互作用进行引导的软组织探头进行设计修改。