4.8 Article

3D Printing Ultraflexible Magnetic Actuators via Screw Extrusion Method

Journal

ADVANCED SCIENCE
Volume 9, Issue 16, Pages -

Publisher

WILEY
DOI: 10.1002/advs.202200898

Keywords

3D print; actuators; magnetic actuation; magnetic materials

Funding

  1. National Natural Science Foundation of China [12072338, 11972343, 12132016]
  2. Fundamental Research Funds for the Central Universities [WK2480000007, WK2480000009]
  3. Joint Fund of USTC-National Synchrotron Radiation Laboratory [KY2090000055]
  4. Anhui's Key R&D Program of China [202104a05020009]

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This paper introduces a novel 3D printing strategy for manufacturing ultraflexible magnetic actuators, which can overcome the problem of filament buckling in flexible materials encountered in traditional printing. The magnetic actuators fabricated using this method have programmable structure design and controllable deformation ability, showing broad prospects in the fields of soft robotics and bionics.
Soft magnetic actuators with programmable structure design and controllable deformation ability based on 3D printing technology have attracted extensive attention. In this paper, a novel 3D printing strategy is developed to manufacture the ultraflexible magnetic actuator, in which the printed material is composed of magnetic particles and thermoplastic rubber materials. Different from the traditional fused deposition printing, this printing strategy introduces screw extrusion technology to the heating components of the printer to overcome the problem of filament buckling in the flexible material. Thus, the tensile modulus of the printed products can be reduced to as low as approximate to 2 MPa. Based on the above method, biomimetic magnetic actuators of the sucker and the pump are constructed for adhering and releasing object and pumping liquid. The contraction performance of the magnetic actuator is studied via a series of experiments and the magnetic field-induced deformation is analyzed by the multiphysics-based finite element model. This work proves that ultraflexible magnetic actuators fabricated by this 3D printing strategy show broad prospects in the fields of soft robotics and bionics.

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