• DocumentCode
    902656
  • Title

    Implementation of an optical method for the real-time determination of uniaxial strain and vessel mechanics

  • Author

    Elhadj, Selim ; Chan, Riley ; Forsten-Williams, Kimberly

  • Author_Institution
    Dept. of Chem. Eng., State Univ., Blacksburg, VA, USA
  • Volume
    51
  • Issue
    3
  • fYear
    2004
  • fDate
    3/1/2004 12:00:00 AM
  • Firstpage
    536
  • Lastpage
    538
  • Abstract
    The determination of the mechanical properties of vascular growth substrates has seen increasing interest in the bioengineering field. Mechanical features such as rupture strength, compliance characteristics, and viscoelastic properties of vascular grafts are important for their design and are indicative of their success in vivo. Thus a simple inexpensive measurement technique for these parameters would be useful. In this report we describe the implementation of an optical method for the measurement of vessel distention under a transluminal pressure gradient. It is based on the concept of laser light occlusion and allows for real time noncontact diameter measurements of hollow vessels ≤2 cm. We demonstrate precise and reproducible measurements of diameter changes of less than 10 μm and, further, with the simultaneous determination of both strain and luminal pressure, were able to determine the elastic modulus of commercially available polymeric vessels. Comparison of the manufacturer specifications and our own measurement of the elastic modulus of these vessels, validate the effectiveness of our system. The advantages of this technique are its relative low cost, ease of implementation, high resolution, and flexibility stemming from its modular setup.
  • Keywords
    biomechanics; biomedical measurement; blood vessels; cellular biophysics; diameter measurement; elastic moduli; fracture; laser applications in medicine; photodiodes; pressure measurement; viscoelasticity; bioengineering; compliance characteristics; elastic modulus; laser light occlusion; luminal pressure; noncontact diameter measurements; rupture strength; transluminal pressure gradient; uniaxial strain; vascular growth substrates; vessel distention measurement; vessel mechanics; viscoelastic properties; Biomedical engineering; Biomedical optical imaging; Elasticity; In vivo; Measurement techniques; Mechanical factors; Pressure measurement; Strain measurement; Uniaxial strain; Viscosity; Animals; Blood Pressure; Blood Vessel Prosthesis; Blood Vessels; Elasticity; Equipment Design; Equipment Failure Analysis; Feasibility Studies; Humans; Online Systems; Photometry; Stress, Mechanical; Tomography, Optical;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2003.821041
  • Filename
    1268223