A novel magnetic levitation haptic device for augmentation of tissue stiffness perception

Qianqian Tong, Zhiyong Yuan, Mianlun Zheng, Weixu Zhu, Guian Zhang, Xiangyun Liao
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引用次数: 3

Abstract

In medical training especially in palpation surgery, it is important for surgeons to perceive tissue stiffness. We design a novel magnetic levitation haptic device based on electromagnetic principles to enhance the perception of tissue stiffness in a virtual environment. The user can directly sense virtual tissues by moving a magnetic stylus in the magnetic field generated by the coil array of our device. To fully use the effective magnetic field, we devise an adjustable coil array and provide a reasonable explanation for such design. Moreover, we design a control interface circuit and present a self-adaptive fuzzy proportion integration differentiation (PID) algorithm to precisely control the coil current. The quantitative experiment shows that the experimental and simulation data of our device are consistent and the proposed control algorithm contributes to increasing the accuracy of tissue stiffness perception. In qualitative experiment, we recruit 22 participants to distinguish tissues of different stiffness and detect tissue abnormality. The experimental results demonstrate that our magnetic levitation haptic device can provide accurate perception of tissue stiffness.
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一种增强组织刚度感知的新型磁悬浮触觉装置
在医学培训中,特别是在触诊手术中,外科医生对组织硬度的感知是很重要的。我们设计了一种基于电磁原理的新型磁悬浮触觉装置,以增强虚拟环境中组织刚度的感知。用户可以通过在我们的设备线圈阵列产生的磁场中移动磁性触控笔来直接感知虚拟组织。为了充分利用有效磁场,我们设计了一种可调线圈阵列,并对这种设计进行了合理的解释。设计了控制接口电路,提出了自适应模糊比例积分微分(PID)算法来精确控制线圈电流。定量实验表明,该装置的实验数据与仿真数据一致,所提出的控制算法有助于提高组织刚度感知的准确性。在定性实验中,我们招募了22名参与者来区分不同刚度的组织并检测组织异常。实验结果表明,我们的磁悬浮触觉装置可以提供准确的组织刚度感知。
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