基于纤维-颗粒干扰的变刚度软体驱动器的设计与实验

Design and Experiment of the Soft Driver with Variable Stiffness Based on Fiber-particle Jamming

  • 摘要: 为提高软体驱动器的承载能力、变刚度性能以及稳定性,结合气动网络驱动结构与干扰变刚度结构的优点,设计了一种基于纤维-颗粒干扰法的软体驱动器,研究了其变刚度机理。首先,利用纤维干扰法较好的稳定性和颗粒干扰法较强的变刚度性能,进行纤维-颗粒干扰软体驱动器结构设计;其次,基于赫兹理论和虚功原理,建立纤维-颗粒干扰变刚度模型,从理论上研究其变刚度机理;最后,制作纤维-颗粒干扰软体驱动器试验样机进行刚度试验、变刚度性能对比试验、稳定性试验。刚度试验结果显示,当纤维半径为1.25 mm、颗粒半径为0.3 mm时,纤维-颗粒干扰软体驱动器的最大刚度为0.1825 N/mm;变刚度性能对比试验结果显示,纤维-颗粒干扰结构的变刚度性能比纯纤维干扰结构提高了88.05%、比纯颗粒干扰结构提高了26.73%;稳定性试验结果显示,纤维-颗粒干扰软体驱动器的稳定性较纯颗粒模式提升67.43%;相比较于基于颗粒干扰与纤维干扰的软体驱动器,纤维-颗粒干扰变刚度软体驱动器的刚度、变刚度性能和稳定性都得到了较高的提升。

     

    Abstract: In order to improve the load carrying capacity, variable-stiffness performance and stability of the soft driver, a fiber-particle jamming based soft driver is designed by combining the advantages of the pneumatic network driving structure and the jamming based variable-stiffness structure, and its variable-stiffness mechanism is studied. Firstly, the structure of the fiber-particle jamming based soft driver is designed by using the better stability of fiber jamming and the stronger variablestiffness performance of particle jamming. Secondly, the fiber-particle jamming based variable-stiffness model is established based on the Hertzian theory and the principle of virtual work to theoretically study its variable-stiffness mechanism. Finally, the prototype of the fiber-particle jamming based soft driver is manufactured to carry out the stiffness test, the comparative test of variable-stiffness performance, and the stability test. The results of stiffness test show that when the fiber radius is 1.25 mm and the particle radius is 0.3 mm, the maximum stiffness of the fiber-particle jamming based soft driver is 0.1825 N/mm. The results of comparative test of variable-stiffness performance show that the variable-stiffness performance of the fiber-particle jamming structure is increased by 88.05% compared with pure fiber jamming structure, and 26.73% compared with pure particle jamming structure. The results of stability test show that the stability of the fiber-particle jamming based soft driver is 67.43% higher than that of the pure particle jamming mode. Compared with the particle jamming and fiber jamming based soft drivers, the stiffness, variable-stiffness performance and stability of the fiber-particle jamming based variable-stiffness soft driver are all highly improved.

     

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