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Effects of micro-vibratory modulation during robot-assisted membrane peeling

机译:机器人辅助膜剥离过程中微振动调制的影响

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In retinal microsurgery, membrane peeling is a standard procedure requiring the delamination of a thin fibrous membrane adherent to the retina surface by applying very small forces. Robotic devices with combined force-sensing instruments have significant potential to assist this procedure by facilitating membrane delamination through induced micro-vibrations. However, defining the optimal frequency and amplitude for generating such vibrations, and updating these parameters during the procedure is not trivial. Automatic adjustment of these parameters via an adaptive control scheme is possible only if the individual parameter effects on delamination behavior are known. This study presents an experimental exploration of how micro-vibration amplitude and frequency affect membrane peeling forces alone. Combining a micromanipulator and a force-sensing micro-forceps, several peeling experiments were done on artificial phantoms (bandages) and inner shell membrane of raw chicken eggs. In the tested range of micro-vibration frequencies (10–50 Hz) the average delamination force was minimized mostly at 30 Hz for the bandages and at 50 Hz for the egg membranes. Increasing the micro-vibration amplitude from 50 µm up to 150 µm provided further reduction in average force, thus facilitated membrane delamination.
机译:在视网膜显微外科手术中,膜剥离是一种标准程序,需要通过施加很小的力使粘附在视网膜表面的薄纤维膜分层。带有组合式力传感仪器的机器人设备具有巨大的潜力,可通过诱发的微振动促进膜的分层,从而辅助此过程。但是,定义最佳频率和振幅以产生此类振动并在操作过程中更新这些参数并非易事。仅当知道各个参数对分层行为的影响时,才可以通过自适应控制方案自动调整这些参数。这项研究提出了一个实验探索,即微振动的振幅和频率如何单独影响膜剥离力。将微操纵器和力感测微型镊子组合在一起,对生鸡蛋的仿真体模(绷带)和内壳膜进行了几次剥皮实验。在微振动频率(10–50 Hz)的测试范围内,绷带的平均分层力在30 Hz时最大,蛋膜在50 Hz时最大。将微振动幅度从50 µm增加到150 µm,可以进一步减小平均力,从而促进膜的分层。

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