Literature DB >> 23702044

In vitro spine testing using a robot-based testing system: comparison of displacement control and "hybrid control".

Kevin M Bell1, Robert A Hartman, Lars G Gilbertson, James D Kang.   

Abstract

The two leading control algorithms for in-vitro spine biomechanical testing-"load control" and "displacement control"-are limited in their lack of adaptation to changes in the load-displacement response of a spine specimen-pointing to the need for sufficiently sophisticated control algorithms that are able to govern the application of loads/motions to a spine specimen in a more realistic, adaptive manner. A robotics-based spine testing system was programmed with a novel hybrid control algorithm combining "load control" and "displacement control" into a single, robust algorithm. Prior to in-vitro cadaveric testing, preliminary testing of the new algorithm was performed using a rigid-body-spring model with known structural properties. The present study also offers a direct comparison between "hybrid control" and "displacement control". The hybrid control algorithm enabled the robotics-based spine testing system to apply pure moments to an FSU (in flexion/extension, lateral bending, or axial rotation) in an unconstrained manner through active control of secondary translational/rotational degrees-of-freedom-successfully minimizing coupled forces/moments. The characteristic nonlinear S-shaped curves of the primary moment-rotation responses were consistent with previous reports of the FSU having a region of low stiffness (neutral zone) bounded by regions of increasing stiffness (elastic zone). Direct comparison of "displacement control" and "hybrid control" showed that hybrid control was able to actively minimize off-axis forces and resulted in larger neutral zone and range of motion.
Copyright © 2013 Elsevier Ltd. All rights reserved.

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Year:  2013        PMID: 23702044      PMCID: PMC3718291          DOI: 10.1016/j.jbiomech.2013.04.007

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  37 in total

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2.  A method to simulate in vivo cervical spine kinematics using in vitro compressive preload.

Authors:  Takehiko Miura; Manohar M Panjabi; Peter A Cripton
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5.  Three-dimensional flexibility and stiffness properties of the human thoracic spine.

Authors:  M M Panjabi; R A Brand; A A White
Journal:  J Biomech       Date:  1976       Impact factor: 2.712

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Authors:  M M Panjabi; R A Brand; A A White
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Authors:  K L Markolf
Journal:  J Bone Joint Surg Am       Date:  1972-04       Impact factor: 5.284

8.  Lumbosacral spinal fusion. A biomechanical study.

Authors:  C K Lee; N A Langrana
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9.  The role of secondary variables in the measurement of the mechanical properties of the lumbar intervertebral joint.

Authors:  A F Tencer; A M Ahmed
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10.  The relevance of torsion to the mechanical derangement of the lumbar spine.

Authors:  M A Adams; W C Hutton
Journal:  Spine (Phila Pa 1976)       Date:  1981 May-Jun       Impact factor: 3.468

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6.  Novel use of telescoping growth rods in treatment of early onset scoliosis: An in vivo and in vitro study in a porcine model.

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7.  Assessing the biofidelity of in vitro biomechanical testing of the human cervical spine.

Authors:  Richard A Wawrose; Forbes E Howington; Clarissa M LeVasseur; Clair N Smith; Brandon K Couch; Jeremy D Shaw; William F Donaldson; Joon Y Lee; Charity G Patterson; William J Anderst; Kevin M Bell
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