ACQUISITION OF 3-D ARTERIAL GEOMETRIES AND INTEGRATION WITH COMPUTATIONAL FLUID DYNAMICS

被引:16
作者
Hammer, Steven [1 ]
Jeays, Adam [3 ]
Allan, Paul L. [2 ]
Hose, Rod [3 ]
Barber, David [3 ]
Easson, William J. [1 ]
Hoskins, Peter R.
机构
[1] Univ Edinburgh, Edinburgh, Midlothian, Scotland
[2] Royal Edinburgh Infirm, Dept Radiol, Edinburgh, Midlothian, Scotland
[3] Univ Sheffield, Sheffield, S Yorkshire, England
基金
英国工程与自然科学研究理事会;
关键词
3-D; Artery; Computational fluid dynamics; Flow-field; Optical tracking; Segmentation; Ultrasound; Wall shear stress; WALL SHEAR-STRESS; NONPLANAR CAROTID BIFURCATION; CLINICAL ULTRASOUND SCANNER; ANATOMICAL FLOW PHANTOMS; FREEHAND 3D ULTRASOUND; VULNERABLE PLAQUES; DOPPLER ULTRASOUND; BLOOD-FLOW; VELOCITY; PRESSURE;
D O I
10.1016/j.ultrasmedbio.2009.06.1099
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A system for acquisition of 3-D arterial ultrasound geometries and integration with computational fluid dynamics (CFD) is described. The 3-D ultrasound is based on freehand B-mode imaging with positional information obtained using an optical tracking system. A processing chain was established, allowing acquisition of cardiac-gated 3-D data and segmentation of arterial geometries using a manual method and a semi-automated method, 3D meshing and CFD. The use of CFD allowed visualization of flow streamlines, 2-D velocity contours and 3-D wall shear stress. Three-dimensional positional accuracy was 0.17-1.8 mm, precision was 0.06-0.47 mm and volume accuracy was 4.4-15%. Patients with disease and volunteers were scanned, with data collection from one or more of the carotid bifurcation, femoral bifurcation and abdominal aorta. An initial comparison between a manual segmentation method and a semi-automated method suggested some advantages to the semi-automated method, including reduced operator time and the production of smooth surfaces suitable for CFD, but at the expense of over-smoothing in the diseased region. There were considerable difficulties with artefacts and poor image quality, resulting in 3-D geometry data that was unsuitable for CFD. These artefacts were exacerbated in disease, which may mean that future effort, in the integration of 3-D arterial geometry and CFD for clinical use, may best be served using alternative 3-D imaging modalities such as magnetic resonance imaging and computed tomography. (E-mail: P.Hoskins@ed.ac.uk) (C) 2009 World Federation for Ultrasound in Medicine & Biology.
引用
收藏
页码:2069 / 2083
页数:15
相关论文
共 51 条
[31]   Anatomical flow phantoms of the nonplanar carotid bifurcation, part II: Experimental validation with Doppler ultrasound [J].
Meagher, S. ;
Poepping, T. L. ;
Ramnarine, K. V. ;
Black, R. A. ;
Hoskins, P. R. .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2007, 33 (02) :303-310
[32]   A review of calibration techniques for freehand 3-D ultrasound systems [J].
Mercier, L ;
Lango, T ;
Lindseth, F ;
Collins, DL .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2005, 31 (04) :449-471
[33]   Quantitation of circumferential subpixel vessel wall position and wall shear stress by multiple sectored three-dimensional paraboloid modeling of velocity encoded cine MR [J].
Oyre, S ;
Ringgaard, S ;
Kozerke, S ;
Paaske, WP ;
Scheidegger, MB ;
Boesiger, P ;
Pedersen, EM .
MAGNETIC RESONANCE IN MEDICINE, 1998, 40 (05) :645-655
[34]  
Pedley T., 1980, The Fluid Mechanics of Large Blood Vessels, V1, DOI 10.1017/cbo9780511896996
[35]  
Powell JT, 1998, LANCET, V352, P1649
[36]   Freehand 3D ultrasound without voxels: volume measurement and visualisation using the Stradx system [J].
Prager, R ;
Gee, A ;
Treece, G ;
Berman, L .
ULTRASONICS, 2002, 40 (1-8) :109-115
[37]   Rapid calibration for 3-D freehand ultrasound [J].
Prager, RW ;
Rohling, RN ;
Gee, AH ;
Berman, L .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1998, 24 (06) :855-869
[38]   Is it an animal?: Is it a human face?: Fast processing in upright and inverted natural scenes [J].
Rousselet, GA ;
Macé, MJM ;
Fabre-Thorpe, M .
JOURNAL OF VISION, 2003, 3 (06) :440-455
[39]   The role of shear stress in the generation of rupture-prone vulnerable plaques [J].
Slager, CJ ;
Wentzel, JK ;
Gijsen, FJH ;
Schuurbiers, JCH ;
van der Wal, AC ;
van der Steen, AFW ;
Serruys, PW .
NATURE CLINICAL PRACTICE CARDIOVASCULAR MEDICINE, 2005, 2 (08) :401-407
[40]   The role of shear stress in the destabilization of vulnerable plaques and related therapeutic implications [J].
Slager, CJ ;
Wentzel, JJ ;
Gijsen, FJH ;
Thury, A ;
van der Wal, AC ;
Schaar, JA ;
Serruys, PW .
NATURE CLINICAL PRACTICE CARDIOVASCULAR MEDICINE, 2005, 2 (09) :456-464