BIOMARKERS

Molecular Biopsy of Human Tumors

- a resource for Precision Medicine *

304 related articles for article (PubMed ID: 25835787)

  • 1. Computational study of false vocal folds effects on unsteady airflows through static models of the human larynx.
    Farbos de Luzan C; Chen J; Mihaescu M; Khosla SM; Gutmark E
    J Biomech; 2015 May; 48(7):1248-57. PubMed ID: 25835787
    [TBL] [Abstract][Full Text] [Related]  

  • 2. The Effect of False Vocal Folds on Laryngeal Flow Resistance in a Tubular Three-dimensional Computational Laryngeal Model.
    Xue Q; Zheng X
    J Voice; 2017 May; 31(3):275-281. PubMed ID: 27178452
    [TBL] [Abstract][Full Text] [Related]  

  • 3. Unsteady laryngeal airflow simulations of the intra-glottal vortical structures.
    Mihaescu M; Khosla SM; Murugappan S; Gutmark EJ
    J Acoust Soc Am; 2010 Jan; 127(1):435-44. PubMed ID: 20058989
    [TBL] [Abstract][Full Text] [Related]  

  • 4. Quantification of the Intraglottal Pressure Induced by Flow Separation Vortices Using Large Eddy Simulation.
    Farbos de Luzan C; Oren L; Gutmark E; Khosla SM
    J Voice; 2021 Nov; 35(6):822-831. PubMed ID: 32273211
    [TBL] [Abstract][Full Text] [Related]  

  • 5. Time-Dependent Pressure and Flow Behavior of a Self-oscillating Laryngeal Model With Ventricular Folds.
    Alipour F; Scherer RC
    J Voice; 2015 Nov; 29(6):649-59. PubMed ID: 25873541
    [TBL] [Abstract][Full Text] [Related]  

  • 6. Flow visualization and acoustic consequences of the air moving through a static model of the human larynx.
    Kucinschi BR; Scherer RC; DeWitt KJ; Ng TT
    J Biomech Eng; 2006 Jun; 128(3):380-90. PubMed ID: 16706587
    [TBL] [Abstract][Full Text] [Related]  

  • 7. Unsteady behavior of flow in a scaled-up vocal folds model.
    Krane M; Barry M; Wei T
    J Acoust Soc Am; 2007 Dec; 122(6):3659-70. PubMed ID: 18247773
    [TBL] [Abstract][Full Text] [Related]  

  • 8. A computational study of the effect of false vocal folds on glottal flow and vocal fold vibration during phonation.
    Zheng X; Bielamowicz S; Luo H; Mittal R
    Ann Biomed Eng; 2009 Mar; 37(3):625-42. PubMed ID: 19142730
    [TBL] [Abstract][Full Text] [Related]  

  • 9. Effect of the ventricular folds in a synthetic larynx model.
    Kniesburges S; Birk V; Lodermeyer A; Schützenberger A; Bohr C; Becker S
    J Biomech; 2017 Apr; 55():128-133. PubMed ID: 28285747
    [TBL] [Abstract][Full Text] [Related]  

  • 10. Direct-numerical simulation of the glottal jet and vocal-fold dynamics in a three-dimensional laryngeal model.
    Zheng X; Mittal R; Xue Q; Bielamowicz S
    J Acoust Soc Am; 2011 Jul; 130(1):404-15. PubMed ID: 21786908
    [TBL] [Abstract][Full Text] [Related]  

  • 11. Ventricular pressures in phonating excised larynges.
    Alipour F; Scherer RC
    J Acoust Soc Am; 2012 Aug; 132(2):1017-26. PubMed ID: 22894222
    [TBL] [Abstract][Full Text] [Related]  

  • 12. Analysis of flow-structure interaction in the larynx during phonation using an immersed-boundary method.
    Luo H; Mittal R; Bielamowicz SA
    J Acoust Soc Am; 2009 Aug; 126(2):816-24. PubMed ID: 19640046
    [TBL] [Abstract][Full Text] [Related]  

  • 13. Intraglottal geometry and velocity measurements in canine larynges.
    Oren L; Khosla S; Gutmark E
    J Acoust Soc Am; 2014 Jan; 135(1):380-8. PubMed ID: 24437778
    [TBL] [Abstract][Full Text] [Related]  

  • 14. An experimental analysis of the pressures and flows within a driven mechanical model of phonation.
    Kucinschi BR; Scherer RC; Dewitt KJ; Ng TT
    J Acoust Soc Am; 2006 May; 119(5 Pt 1):3011-21. PubMed ID: 16708957
    [TBL] [Abstract][Full Text] [Related]  

  • 15. Computational modeling of phonatory dynamics in a tubular three-dimensional model of the human larynx.
    Xue Q; Mittal R; Zheng X; Bielamowicz S
    J Acoust Soc Am; 2012 Sep; 132(3):1602-13. PubMed ID: 22978889
    [TBL] [Abstract][Full Text] [Related]  

  • 16. A computational study of asymmetric glottal jet deflection during phonation.
    Zheng X; Mittal R; Bielamowicz S
    J Acoust Soc Am; 2011 Apr; 129(4):2133-43. PubMed ID: 21476669
    [TBL] [Abstract][Full Text] [Related]  

  • 17. The effects of the false vocal fold gaps on intralaryngeal pressure distributions and their effects on phonation.
    Li S; Wan M; Wang S
    Sci China C Life Sci; 2008 Nov; 51(11):1045-51. PubMed ID: 18989648
    [TBL] [Abstract][Full Text] [Related]  

  • 18. Optimized transformation of the glottal motion into a mechanical model.
    Triep M; Brücker C; Stingl M; Döllinger M
    Med Eng Phys; 2011 Mar; 33(2):210-7. PubMed ID: 21115384
    [TBL] [Abstract][Full Text] [Related]  

  • 19. Numerical analysis and comparison of flow fields in normal larynx and larynx with unilateral vocal fold paralysis.
    Bagheri Sarvestani A; Goshtasbi Rad E; Iravani K
    Comput Methods Biomech Biomed Engin; 2018 Jun; 21(8):532-540. PubMed ID: 30024283
    [TBL] [Abstract][Full Text] [Related]  

  • 20. Intraglottal pressure profiles for a symmetric and oblique glottis with a divergence angle of 10 degrees.
    Scherer RC; Shinwari D; De Witt KJ; Zhang C; Kucinschi BR; Afjeh AA
    J Acoust Soc Am; 2001 Apr; 109(4):1616-30. PubMed ID: 11325132
    [TBL] [Abstract][Full Text] [Related]  

    [Next]    [New Search]
    of 16.