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A voxel-based method for designing a numerical biomechanical model patient-specific with an anatomical functional approach adapted to additive manufacturing

机译:基于体素的方法,用于设计患者特定的数值生物力学模型,并采用适合于增材制造的解剖功能方法

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Here, we describe an original and efficient geometry design approach, based on voxels resulting in a validated model for printability in additive manufacturing. The proposed approach is also designed to be accessible to non-specialists as it does not require specialist skills in computer-assisted-design (CAD). It focuses on biomedical applications, particularly the geometry design of a configurable digital biomechanical model with selected anatomical features based on medical imaging compatible with customization, as might be needed for prosthetic elements. The methodology is based on two main steps. First, an accessible parametrization to medical employees of a configurable biomechanical model is matched specifically to the patient. The configurable model is designed to palliate any kind of potential lack of information from the Digital Imaging and Communication in Medicine (DICOM) file of the medical imaging or partial topological defects but with the least and sufficient number of parameters. For this purpose, the configurable model is segmented in topological areas with a complexity facing solely the desired specification, without regards of potential numerical errors prior AM such as boundary edges, intersecting faces and non-manifold edges. The second step is the voxel-based modelling, easily accessible for medical employees unfamiliar with CAD. Voxels stores the geometric information in a discrete format to facilitate customization by topological operations such as addition and subtraction. The voxelization representation coupled with a smoothing filter, results in a more realistic, robust and closed triangulated model, freed from errors of printability. This method is presented in the context of a trapezium replacement prosthesis prior to selective laser melting (SLM) and diverse post-treatments.
机译:在这里,我们描述一种基于体素的原始高效几何设计方法,该方法生成了经过验证的增材制造中可印刷性模型。提议的方法还设计为非专业人员可以使用,因为它不需要计算机辅助设计(CAD)的专业技能。它着重于生物医学应用,尤其是可修复数字化生物力学模型的几何设计,该模型具有基于与定制兼容的医学成像的选定解剖特征,这可能是修复元件所需要的。该方法基于两个主要步骤。首先,可配置的生物力学模型对医务人员的可访问参数特别匹配于患者。可配置模型旨在消除医学成像或部分拓扑缺陷中来自医学数字成像和通信(DICOM)文件的任何类型的潜在信息不足,但参数数量最少且足够。为此,可配置模型在拓扑区域中进行分段,其复杂度仅面向所需的规格,而无需考虑AM之前的潜在数值误差,例如边界边缘,相交面和非歧管边缘。第二步是基于体素的建模,不熟悉CAD的医务人员可以轻松访问。体素以离散格式存储几何信息,以方便通过诸如加法和减法之类的拓扑操作进行自定义。体素化表示与平滑滤镜相结合,可产生更真实,更健壮和更封闭的三角模型,而不会出现可印刷性错误。在选择性激光熔化(SLM)和各种后处理之前的梯形置换假体中介绍了此方法。

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