Suppr超能文献

一种经济实惠的 3D 打印技术用于脊柱物理模型的几何精度评估。

Geometrical accuracy evaluation of an affordable 3D printing technology for spine physical models.

机构信息

In Silico Biomechanics Laboratory, National Center for Spinal Disorders, Királyhágó u. 1-3, H-1126 Budapest, Hungary; Semmelweis University School of Ph.D. Studies, Üllői u. 26. fszt. 9, H-1085 Budapest, Hungary.

In Silico Biomechanics Laboratory, National Center for Spinal Disorders, Királyhágó u. 1-3, H-1126 Budapest, Hungary; Semmelweis University School of Ph.D. Studies, Üllői u. 26. fszt. 9, H-1085 Budapest, Hungary.

出版信息

J Clin Neurosci. 2020 Feb;72:438-446. doi: 10.1016/j.jocn.2019.12.027. Epub 2020 Jan 3.

Abstract

OBJECTIVE

The aim of the study is to develop a workflow to establish geometrical quality criteria for 3D printed anatomical models as a guidance for selecting the most suitable 3D printing technologies available in a clinical environment.

METHODS

We defined the 3D geometry of a 25-year-old male patient's L4 vertebra and the geometry was then printed using two technologies, which differ in printing resolution and affordability: Fused Deposition Modelling (FDM) and Digital Light Processing (DLP). In order to measure geometrical accuracy, the 3D scans of two physical models were compared to the virtual input model. To compare surface qualities of these printing technologies we determined surface roughness for two regions of interest. Finally, we present our experience in the clinical application of a physical model in a congenital deformity case.

RESULTS

The analysis of the distribution of the modified Hausdorff distance values along the vertebral surface meshes (99% of values <1 mm) of the 3D printed models provides evidence for high printing accuracy in both printing techniques. Our results demonstrate that the surface qualities, measured by roughness are adequate (~99% of values <0.1 mm) for both physical models. Finally, we implemented the FDM physical model for surgical planning.

CONCLUSION

We present a workflow capable of determining the quality of 3D printed models and the application of a high quality and affordable 3D printed spine physical model in the pre operative planning. As a result of the visual guidance provided by the physical model, we were able to define the optimal trajectory of the screw insertion during surgery.

摘要

目的

本研究旨在建立 3D 打印解剖模型的几何质量标准,为临床环境中选择最合适的 3D 打印技术提供指导。

方法

我们定义了一名 25 岁男性患者 L4 椎体的 3D 几何形状,然后使用两种技术打印该几何形状,这两种技术在打印分辨率和价格方面存在差异:熔融沉积成型(FDM)和数字光处理(DLP)。为了测量几何精度,将两个物理模型的 3D 扫描与虚拟输入模型进行比较。为了比较这两种打印技术的表面质量,我们确定了两个感兴趣区域的表面粗糙度。最后,我们介绍了在先天性畸形病例中应用物理模型的临床经验。

结果

对 3D 打印模型表面网格(99%的数值<1mm)的修正 Hausdorff 距离值分布进行分析,为两种打印技术提供了高精度打印的证据。我们的结果表明,两种物理模型的表面质量(粗糙度测量值~99%<0.1mm)都足够好。最后,我们实施了 FDM 物理模型进行手术规划。

结论

我们提出了一种能够确定 3D 打印模型质量的工作流程,并应用高质量、价格合理的 3D 打印脊柱物理模型进行术前规划。由于物理模型提供的直观指导,我们能够在手术中确定螺钉插入的最佳轨迹。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验