用于经口手术机器人的基于 FBG 的模块化容错三轴力传感技术

IF 7.2 1区 工程技术 Q1 AUTOMATION & CONTROL SYSTEMS
Tianliang Li;Ping'An Huang;Shasha Wang;Liang Qiu;Changsheng Li;Hongliang Ren
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引用次数: 0

摘要

经口机器人手术(TROS)在没有力反馈的情况下,如何精确控制手术器械并降低损伤风险是一项重大挑战。因此,我们开发了一种模块化高精度三轴光纤布拉格光栅(FBG)力传感器,它具有非线性解耦、容错和温度补偿(TC)功能,可无缝集成到经口机器人中。该传感器由一体式弹性体组成,内含四根光纤,每根光纤都刻有 FBG,沿圆周以 90° 的固定间隔排列,通过冗余增强三轴力感知。针对非线性耦合、光纤光栅断裂和温度干扰等难题,提出了一种新颖的屎壳郎优化极端学习机(DBO-ELM)算法,从而实现了准确可靠的卓越测量性能。各维度的最大满量程误差均小于 4%,不同空间角度下的最大 MSE 仅为 1.8 mN。四个冗余 FBG 和 DBO-ELM 容错模型的组合实现了高精度容错,在一个 FBG 损坏的情况下,最大满量程相对误差低于 6%。在 TC 之后,最大测力误差在 4% 范围之内。这些优点证实了所提出的传感器和算法在 TROS 应用中的有效性和可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modular and Fault-Tolerant Three-Axial FBG-Based Force Sensing for Transoral Surgical Robots
Transoral robotic surgery (TROS) has met a significant challenge to precise control of surgical instruments and depress the injury risks without force feedback. Therefore, we develop a modular high-precision three-axial fiber Bragg grating (FBG) force sensor with nonlinear decoupling, fault tolerance, and temperature compensation (TC) for seamless integration into transoral robots. The sensor comprises a one-body elastomer housing four optical fibers engraved with FBG each, arranged at a constant interval of 90° along the circumference to enhance three-axial force perception through redundancy. A novel dung Beetle optimization extreme learning machine (DBO-ELM) algorithm is proposed to tackle nonlinear coupling, FBG fracture, and temperature interference challenges leading to excellent performances of accurate and reliable measurement. The maximum full-scale error is less than 4% in each dimension, and the maximum MSE is only 1.8 mN at various spatial angles. The combination of four redundant FBGs and the DBO-ELM fault-tolerant model enables high-precision fault tolerance with maximum full-scale relative errors below 6% in case of one FBG damage. After TC, the maximum force measurement error is within 4% of the range. These merits confirm the effectiveness and dependability of the proposed sensor and algorithms in TROS applications.
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来源期刊
IEEE Transactions on Industrial Electronics
IEEE Transactions on Industrial Electronics 工程技术-工程:电子与电气
CiteScore
16.80
自引率
9.10%
发文量
1396
审稿时长
6.3 months
期刊介绍: Journal Name: IEEE Transactions on Industrial Electronics Publication Frequency: Monthly Scope: The scope of IEEE Transactions on Industrial Electronics encompasses the following areas: Applications of electronics, controls, and communications in industrial and manufacturing systems and processes. Power electronics and drive control techniques. System control and signal processing. Fault detection and diagnosis. Power systems. Instrumentation, measurement, and testing. Modeling and simulation. Motion control. Robotics. Sensors and actuators. Implementation of neural networks, fuzzy logic, and artificial intelligence in industrial systems. Factory automation. Communication and computer networks.
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