loading...
 This Article 
   
 Share 
   
 Bibliographic References 
   
 Add to: 
 
Digg
Furl
Spurl
Blink
Simpy
Google
Del.icio.us
Y!MyWeb
 
 Search 
   
Particle Flurries: Synoptic 3D Pulsatile Flow Visualization
March/April 2004 (vol. 24 no. 2)
pp. 76-85
Jason S. Sobel, Brown University
Andrew S. Forsberg, Brown University
David H. Laidlaw, Brown University
Robert C. Zeleznik, Brown University
Daniel F. Keefe, Brown University
Igor Pivkin, Brown University
George E. Karniadakis, Brown University
Peter Richardson, Brown University
Sharon Swartz, Brown University

Particle Flurries is an interactive approach to 3D flow visualization. The approach produces a "synoptic visualization" and is used to examine both internal and external flows.

1. 76 G.E. Karniadakis and S.J. Sherwin, Spectral/hp Element Methods for CFD, Oxford Univ. Press, 1999.2. V. Interrante, H. Fuchs, and S.M. Pizer, "Conveying the 3D Shape of Smoothly Curving Transparent Surfaces via Texture," IEEE Trans. Visualization and Computer Graphics, vol. 3, no. 2, Apr.-June 1997, pp. 98-117.3. D. Keefe et al., "Cavepainting: A Fully Immersive 3D Artistic Medium and Interactive Experience," Proc. ACM Symp. Interactive 3D Graphics, ACM Press, 2001, pp. 85-93.4. V. Interrante and C. Grosch, "Strategies for Effectively Visualizing 3D Flow with Volume LIC," Proc. IEEE Visualization, IEEE CS Press, 1997, pp. 421-424.1. N. Woolf, Pathology: Basic and Systemic, W.B. Saunders, 1998.2. W.E. Stehbens and J.T. Lie, Vascular Pathology, Chapman and Hall Medical, 1995.1. M. Zockler, D. Stalling, and H. Hege, "Interactive Visualizations of 3D-Vector Fields using Illuminated Streamlines," Proc. IEEE Visualization, IEEE CS Press, 1996, pp. 107-113.2. A.L. Fuhrmann and E. Groller, "Real-Time Techniques for 3D Flow Visualization," Proc. IEEE Visualization, ACM Press, 1998, pp. 305-312.3. S. Zhang et al., "An Immersive Virtual Environment for DT-MRI Volume Visualization Applications: A Case Study," Proc. IEEE Visualization, IEEE CS Press, 2001, pp. 437-440.4. G. Turk and D. Banks, "Image-Guided Streamline Placement," Proc. Siggraph, Addison-Wesley, 1996, pp. 453-460.5. B. Cabral and L. Leedom, "Imaging Vector Fields using Line Integral Convolution," Proc. Siggraph, ACM Press, 1993, pp. 263-270.6. V. Interrante and C. Grosch, "Strategies for Effectively Visualizing 3D Flow with Volume Lic," Proc. IEEE Visualization, ACM Press, 1997, pp. 421-424.7. D.A. Steinman et al., "Reconstruction of Carotid Bifurcation Hemodynamics and Wall Thickness using Computational Fluid Dynamics and MRI," Magnetic Resonance in Medicine, vol. 47, no. 1, Jan. 2002, pp. 149-159.8. S. Bryson et al., "Visually Exploring Gigabyte Data Sets in Real Time," Comm. ACM, vol. 42, no. 8, 1999, pp. 82-90.9. S. Bryson and C. Levitt, "The Virtual Windtunnel: An Environment for the Exploration of Three-Dimensional Unsteady Flows," Proc. Visualization, IEEE CS Press, 1991, pp. 17-24.10. F. Kuester et al., "Visualization of Particle Traces in Virtual Environments," Proc. Symp. Virtual Reality Software and Technology, ACM Press, 2001, pp. 151-157.11. N. Max, R. Crawfis, and C. Grant, "Visualizing 3D Velocity Fields near Contour Surfaces," Proc. IEEE Visualization, IEEE CS Press, 1994, pp. 248-255.12. D. Stalling and H.C. Hege, "Fast and Resolution-Independent Line Integral Convolution," Proc. Siggraph, Addison-Wesley, 1995, pp. 249-256.13. D. Bauer et al., "A Case Study in Selective Visualization of Unsteady 3D Flow," Proc. IEEE Visualization, IEEE CS Press, 2002, pp. 525-528.14. A.S. Forsberg et al., "Immersive Virtual Reality for Visualizing Flow through an Artery," Proc. Visualization, IEEE CS Press, 2000.

Citation:
Jason S. Sobel, Andrew S. Forsberg, David H. Laidlaw, Robert C. Zeleznik, Daniel F. Keefe, Igor Pivkin, George E. Karniadakis, Peter Richardson, Sharon Swartz, "Particle Flurries: Synoptic 3D Pulsatile Flow Visualization," IEEE Computer Graphics and Applications, vol. 24, no. 2, pp. 76-85, Mar./Apr. 2004, doi:10.1109/MCG.2004.10031
Usage of this product signifies your acceptance of the Terms of Use.