一种用于微创外科电手术过程实时模拟的物理算法。

Zhonghua Lu, Venkata S Arikatla, Zhongqing Han, Brian F Allen, Suvranu De
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引用次数: 15

摘要

背景:高频电在大多数外科手术中使用。然而,现代基于计算机的训练和模拟系统依赖于物理上不现实的模型,这些模型无法捕捉生物组织的电、机械和热特性之间的相互作用。方法:将电外科手术的电学、热学和力学性能建模为三个迭代求解的有限元模型,进行实时和物理逼真的模拟。为了提供蒸发组织的亚有限元图形绘制,提出了一种基于等温线的双网格动态三角剖分算法。块压缩行存储(BCRS)结构在允许组织拓扑结构由于蒸发而发生计算效率变化方面是至关重要的。结果:我们通过各种实例证明了基于物理的电切算法。我们针对拓扑变化设计的矩阵处理算法计算成本较低。结论:与之前使用简单几何热表征的模拟器相比,我们的模拟器提供了更高的物理保真度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A physics-based algorithm for real-time simulation of electrosurgery procedures in minimally invasive surgery.

A physics-based algorithm for real-time simulation of electrosurgery procedures in minimally invasive surgery.

A physics-based algorithm for real-time simulation of electrosurgery procedures in minimally invasive surgery.

A physics-based algorithm for real-time simulation of electrosurgery procedures in minimally invasive surgery.

Background: High-frequency electricity is used in the majority of surgical interventions. However, modern computer-based training and simulation systems rely on physically unrealistic models that fail to capture the interplay of the electrical, mechanical and thermal properties of biological tissue.

Methods: We present a real-time and physically realistic simulation of electrosurgery by modelling the electrical, thermal and mechanical properties as three iteratively solved finite element models. To provide subfinite-element graphical rendering of vaporized tissue, a dual-mesh dynamic triangulation algorithm based on isotherms is proposed. The block compressed row storage (BCRS) structure is shown to be critical in allowing computationally efficient changes in the tissue topology due to vaporization.

Results: We have demonstrated our physics-based electrosurgery cutting algorithm through various examples. Our matrix manipulation algorithms designed for topology changes have shown low computational cost.

Conclusions: Our simulator offers substantially greater physical fidelity compared to previous simulators that use simple geometry-based heat characterization.

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CiteScore
5.30
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