用于玻璃体视网膜手术的微力传感手持机器人的评估。

Berk Gonenc, Marcin A Balicki, James Handa, Peter Gehlbach, Cameron N Riviere, Russell H Taylor, Iulian Iordachita
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引用次数: 45

摘要

高度精确的定位是玻璃体视网膜显微手术的基础。在玻璃体视网膜手术中,由于需要对视网膜组织进行极其精细的操作,膜剥离是最容易发生并发症的手术之一。相关的工具-组织相互作用力通常低于人类感知的阈值,并且手术工具的移动非常缓慢,在0.1-0.5 mm/s的范围内。在手术过程中,无意识的工具运动和过度的力量很容易导致视力下降或对视网膜造成不可逆转的损伤。成功的手术包括两个关键特征:控制无震动的工具运动和控制施加的力。在这项研究中,我们介绍了微力传感机器人在玻璃体视网膜手术中的潜在好处。我们的主要贡献是实现基于光纤布拉格光栅的力传感在一个主动消除震颤的手持式微机械臂,被称为微米,实时测量工具到组织的相互作用力。实施的听觉感官替代有助于减少和限制力量。为了测试Micron力感传感器的功能和性能,我们对Micron力感传感器进行了胶带剥离实验和鸡蛋内壳膜剥离实验。我们的研究结果表明,主动震颤消除与听觉感觉替代相结合是最有希望的辅助手段,可以将剥离力保持在7 mN以下,并显着减少2-20 Hz振荡。
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Evaluation of a Micro-Force Sensing Handheld Robot for Vitreoretinal Surgery.

Highly accurate positioning is fundamental to the performance of vitreoretinal microsurgery. Of vitreoretinal procedures, membrane peeling is among the most prone to complications since extremely delicate manipulation of retinal tissue is required. Associated tool-to-tissue interaction forces are usually below the threshold of human perception, and the surgical tools are moved very slowly, within the 0.1-0.5 mm/s range. During the procedure, unintentional tool motion and excessive forces can easily give rise to vision loss or irreversible damage to the retina. A successful surgery includes two key features: controlled tremor-free tool motion and control of applied force. In this study, we present the potential benefits of a micro-force sensing robot in vitreoretinal surgery. Our main contribution is implementing fiber Bragg grating based force sensing in an active tremor canceling handheld micromanipulator, known as Micron, to measure tool-to-tissue interaction forces in real time. Implemented auditory sensory substitution assists in reducing and limiting forces. In order to test the functionality and performance, the force sensing Micron was evaluated in peeling experiments with adhesive bandages and with the inner shell membrane from chicken eggs. Our findings show that the combination of active tremor canceling together with auditory sensory substitution is the most promising aid that keeps peeling forces below 7 mN with a significant reduction in 2-20 Hz oscillations.

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