• DocumentCode
    9314
  • Title

    Mechanical Evaluation of Unobstructing Magnetic Microactuators for Implantable Ventricular Catheters

  • Author

    Hyowon Lee ; Kolahi, Kameran ; Bergsneider, M. ; Judy, Jack W.

  • Author_Institution
    Biomed. Eng. Interdept. Program, Univ. of California at Los Angeles, Los Angeles, CA, USA
  • Volume
    23
  • Issue
    4
  • fYear
    2014
  • fDate
    Aug. 2014
  • Firstpage
    795
  • Lastpage
    802
  • Abstract
    Here, we report on the development and evaluation of novel unobstructing magnetic microactuators for maintaining the patency of implantable ventricular catheters used in hydrocephalus application. The treatment of hydrocephalus requires chronic implantation of a shunt system to divert excess cerebrospinal fluid from the brain. These shunt systems suffer from a high failure rate (>40%) within the first year of implantation, often due to biological accumulation. Previously, we have shown that magnetic microactuators can be used to remove biological blockage. The new cantilever-based magnetic microactuator presented in this paper improves upon the previous torsional design using a bimorph to induce a postrelease out-of-plane deflection that will prevent the device from occluding the pore at rest. The mechanical evaluations (i.e., postrelease deflection, static and dynamic responses) of fabricated devices are reported and compared with theoretical values.
  • Keywords
    bioMEMS; brain; cantilevers; catheters; magnetic actuators; medical disorders; microactuators; patient treatment; prosthetics; bimorph; biological accumulation; biological blockage; brain; cantilever-based magnetic microactuator; cerebrospinal fluid; chronic implantation; dynamic responses; failure rate; hydrocephalus application; hydrocephalus treatment; implantable ventricular catheter patency; mechanical evaluations; postrelease out-of-plane deflection; shunt system; static responses; torsional design; unobstructing magnetic microactuators; Approximation methods; Catheters; Fabrication; Magnetomechanical effects; Microactuators; Micromagnetics; Silicon; Magnetic microactuator; hydrocephalus; implantable MEMS; ventricular catheter; ventricular catheter.;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2014.2321377
  • Filename
    6817528