Literature DB >> 1422438

Rigidity of half-pins for the Ilizarov external fixator.

J H Calhoun1, F Li, W L Bauford, T Lehman, B R Ledbetter, R Lowery.   

Abstract

The success of the Ilizarov technique is due to the combination of the biomechanics of its external fixator and the biology of distraction osteogenesis. The stability and stiffness of the conventional Ilizarov fixator is attributed to its use of a K-wire cross structure. The disadvantages of this structure include pain, and possible neurologic and vascular injuries when the wires are introduced into crucial neurovascular areas, as well as increased frame complexity and construction. Reducing the number of wires decreases these problems, but also decreases the stiffness of the system. Hybrid (wire and half-pins) Ilizarov fixators and half-pin fixators are also being used in an attempt to alleviate these problems. Half-pins have been described by Fleming et al. and Green as causing minimal transfixation of the surrounding soft tissues and capable of and being inserted into anatomically safe areas. The stiffnesses of the hybrid systems have not been measured. This study reports on the stiffness of different wire and half-pin systems that were biomechanically tested in axial loading, anterior-posterior bending, medial-lateral bending, and torsional loading. The results demonstrated that the conventional Ilizarov fixator with wires possesses a high axial stiffness, whereas the fixator with half-pins possesses higher stiffness under bending and torsional loads. To obtain adequate stability, the use of hybrid Ilizarov frames with one wire and two or more half-pins (5 or 6 mm in diameter), or larger half-pin frames (5 or 6 mm) with three pins is recommended.

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Year:  1992        PMID: 1422438

Source DB:  PubMed          Journal:  Bull Hosp Jt Dis        ISSN: 0018-5647


  8 in total

1.  The mechanics of external fixation.

Authors:  Austin T Fragomen; S Robert Rozbruch
Journal:  HSS J       Date:  2007-02

Review 2.  Ilizarov principles of deformity correction.

Authors:  B Spiegelberg; T Parratt; S K Dheerendra; W S Khan; R Jennings; D R Marsh
Journal:  Ann R Coll Surg Engl       Date:  2010-03       Impact factor: 1.891

3.  Ilizarov methodology for infected non union of the Tibia: Classic circular transfixion wire assembly vs. hybrid assembly.

Authors:  Ranjit Kr Baruah
Journal:  Indian J Orthop       Date:  2007-07       Impact factor: 1.251

4.  What Are the Biomechanical Effects of Half-pin and Fine-wire Configurations on Fracture Site Movement in Circular Frames?

Authors:  Daniel J Henderson; Jeremy L Rushbrook; Todd D Stewart; Paul J Harwood
Journal:  Clin Orthop Relat Res       Date:  2015-12-07       Impact factor: 4.176

5.  The influence of a weight-bearing platform on the mechanical behavior of two Ilizarov ring fixators: tensioned wires vs. half-pins.

Authors:  Jan Gessmann; Mustafa Citak; Birger Jettkant; Thomas A Schildhauer; Dominik Seybold
Journal:  J Orthop Surg Res       Date:  2011-12-12       Impact factor: 2.359

6.  Stability at the half pin-frame interface on external fixation constructs.

Authors:  Alexios Dimitrios Iliadis; Parag Kumar Jaiswal; Jay Meswania; Gordon Blunn; David Goodier; Peter Calder
Journal:  Strategies Trauma Limb Reconstr       Date:  2016-10-13

7.  Influence of Different Connecting Rod Configurations on the Stability of the Ilizarov/TSF Frame: A Biomechanical Study.

Authors:  Gerhard Thiart; Christopher Herbert; Sudesh Sivarasu; Saadiq Gasant; Maritz Laubscher
Journal:  Strategies Trauma Limb Reconstr       Date:  2020 Jan-Apr

8.  Comparative Stiffness Characteristics of Ilizarov- and Hexapod-type External Frame Constructs.

Authors:  Carl Fenton; Daniel Henderson; Mikhail Samchukov; Alexander Cherkashin; Hemant Sharma
Journal:  Strategies Trauma Limb Reconstr       Date:  2021 Sep-Dec
  8 in total

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