Ring Reinforced Silicone based Steering Head for Endoscopy like Applications: FEM simulation, development and force characterization

Debadrata Sarkar, S. Chakraborty, Aman Arora, Soumen Sen
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Abstract

Physically interactive applications like tissue sampling have become essential in present day minimally invasive endoscopy/colonoscopy applications. This calls for specialized steering heads with force exertion ability, still maintaining simplified actuation mechanisms having inherent softness and steerability. This article presents development of soft hyperelastic material (silicone) based pneumatically actuated steering head with improved performance achieved through O-ring reinforcements. The design attains omnidirectional bending operations as well as extension capability enabling needle insertion by the steering head. The ring reinforcement not only contains the bulging effect but also enhances extension ability and range of bending. Additionally, it improves stiffness, structural stability and force exertion capability. The presented work implements two layer design principle - the inner actuator is made from silicone of harder shore hardness followed by a thin outer layer of softer silicone, embedding the O-rings in between. The steering head has been designed iteratively through in depth Finite Element modeling and analyses after obtaining material models of silicones experimentally. The actuator has undergone detailed characterization through simulation for its workspace and blocked-tip force capabilities at various configurations. The characteristics have been experimentally validated on the developed prototype.
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用于内窥镜的环增强硅基转向头:有限元模拟,开发和力表征
像组织采样这样的物理交互应用在当今微创内窥镜/结肠镜应用中已经变得必不可少。这就要求专门的转向头具有力的发挥能力,仍然保持简化的驱动机构具有固有的柔软性和可转向性。本文介绍了软超弹性材料(硅胶)为基础的气动驱动转向头的发展,通过o型圈增强实现了性能的提高。该设计实现了全方位弯曲作业,以及通过转向头插入针的延伸能力。环形加固既能抑制胀形效应,又能提高延伸能力和弯曲范围。此外,它还提高了刚度、结构稳定性和受力能力。所提出的工作实现了两层设计原理-内部执行器由较硬的肖氏硬度的硅树脂制成,然后是较软的硅树脂薄外层,将o型圈嵌入其中。在实验获得有机硅材料模型的基础上,通过深入的有限元建模和分析,对转向头进行了迭代设计。通过仿真对该驱动器的工作空间和不同配置下的阻塞尖端力能力进行了详细的表征。在研制的样机上进行了实验验证。
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