基于fbg的视网膜显微手术横向和轴向力传感微钳。

Berk Gonenc, Iulian Iordachita
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引用次数: 17

摘要

视网膜显微手术通常需要对极其脆弱的组织进行操作。膜剥离是一种典型的任务,其中一层纤维组织从视网膜上剥离,用微型镊子施加非常细微的力,而外科医生几乎察觉不到。之前我们开发了敏化眼科手术工具,可以通过集成光纤布拉格光栅应变传感器精确检测仪器尖端的横向力。本文提出了一种新的设计,它采用了一个额外的传感器来捕获沿工具轴的拉伸力,这在膜剥离中是重要的。我们研究了两种不同的拟合方法来计算基于传感器输出的横向和轴向力。随机样本验证表明,线性方法能较好地预测横向力,但在计算轴向载荷时精度不高。我们的非线性方法解决了这个问题,提供了更一致和准确的横向和轴向力测量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

FBG-Based Transverse and Axial Force-Sensing Micro-Forceps for Retinal Microsurgery.

FBG-Based Transverse and Axial Force-Sensing Micro-Forceps for Retinal Microsurgery.

Retinal microsurgery routinely requires the manipulation of extremely delicate tissues. Membrane peeling is a prototypical task where a layer of fibrous tissue is delaminated off the retina with a micro-forceps by applying very fine forces that are mostly imperceptible to the surgeon. Previously we developed sensitized ophthalmic surgery tools that can precisely detect the transverse forces at the instrument's tip via integrated fiber Bragg grating strain sensors. This paper presents a new design that employs an additional sensor to capture also the tensile force along the tool axis which can be significant in membrane peeling. We investigate two distinct fitting methods to compute the transverse and axial forces based on sensor outputs. Validation with random samples shows that the linear method closely predicts the transverse force but does not provide sufficient accuracy in computing the axial load. Our nonlinear method resolves this problem, providing a more consistent and accurate measurement of both the transverse and axial forces.

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