參考文獻 |
[1] O’Brien, J. F., Zordan, V. B., and Hodgins, J. K., “Combining active and passive simulations for secondary motion.”, IEEE Computer Graphics and Applications 20, 4, 86–96, 2000.
[2] Liu, P.L.-F., Wu, T. R., Raichlen, F., Synolakis, C., and Borrero, J., “Runup and rundown from three-dimensional sliding masses.”, Journal of Fluid Mechanics, 536, 107-144, 2005.
[3] 丁承先, 王仲宇, 吳東岳, 王仁佐, 莊清鏘, V-5研究組,運動解析與向量式有限元(2.0版),中央大學工學院,橋梁工程研究中心 (2007)。
[4] 丁承先, 王仲宇, 向量式固體力學,中央大學工學院,橋梁工程研究中心(2008)。
[5] Cundall, P. A., “Formulation of three-dimensional distinct element model-Part I: A scheme to detect and represent contacts in a system composed of many polyhedral blocks.”, Int. J. Rock Mech. Min. Sci. & Geomech. Abstr., 25, 107-116, 1988.
[6] Cundall, P. A., “Formulation of a three-dimensional distinct element model-Part II: Mechanical calculations for motion and interaction of a system composed of many polyhedral blocks.”, Int. J. Rock Mech. Min. Sci. & Geomech. Abstr., 25, 117-125, 1988.
[7] Chen, J., da Vitoria Lobo, N., “Toward interactive-rate simulation of fluids with moving obstacles using Navier-Stokes equations.”, Graphical Models and Image Processing, 57, 107-116, 1995.
[8] Foster, N., Metaxas, D., “Realistic animation of liquids.”, Graphical Models and Image Processing, 58, 471-483, 1996.
[9] Foster, N., Metaxas, D., “Controlling fluid animation.”, Computer Graphics International, 97, 178-188, 1997.
[10] Foster, N., and Fedki, R., “Practical animation of liquids.”, In Proceedings of ACM SIGGRAPH, Computer Graphics Proceedings, Annual Conference Series, 23–30, 2001.
[11] Foster, N., and Metaxas, D., “Realistic animation of liquids.”, Graphical Models and Image Processing58,5, 471–483, 1996.
[12] O’Brien, J. F. and Hodgins, J. K., “Dynamic simulation of splashing fluids.”, Computer Animation, 95, 198-205, 1995.
[13] Wu, T. R., “A numerical study of three-dimensional breaking waves and turbulence effects.” Ph.D. Dissertation, Cornell University, 2004
[14] Takahashi, T., Fujii, H., Kunimatsu, A, Hiwada, K., Saito, T., Tanaka, K., Ueki, H., “Realistic animation of fluid with splash and foam.”, Computer Graphics Forum, 22, 391-401, 2002.
[15] Takahashi T., Heihachi U., Kunimatsu A., “The simulation of fluid-rigid body interaction.”, SIGGRAPH Sketches & Applications, 266, 2003.
[16] G´enevaux, O., Habibi A., and Dischler, J. M., “Simulating fluid-solid interaction.”, In Graphics Interface, CIPS, Canadian Human-Computer Communication Society, 31–38, 2003.
[17] Singh, P., Hesla, T. I., and Joseph, D. D., “Distributed Lagrange multiplier method for particulate flows with collisions.” International Journal of Multiphase Flow 29, 3, 495–509, 2003.
[18] Hirt, C., Amsden, A., and Cook, J., “An arbitrary Lagrangian-Eulerian computing method for all flow speeds.”, Journal of Computational Physics 14, 227–253, 1974.
[19] Shen, L., Chan, E. S., “Numerical simulation of fluid-structure interaction using a combined volume of fluid and immersed boundary method.”, Ocean Eng, 35, 939-52, 2008.
[20] Yngve, G., O’Brien, J., and Hodgins J., “Animating explosions.”, In Proceedings of ACM SIGGRAPH 2000, pages 29–36, August 2000.
[21] Carlson, M., Mucha, P. J., and Turk, G., “Rigid fluid: Animating the interplay between rigid bodies and fluid.”, ACM Trans. Graph. (SIGGRAPH Proc.) 23, 377–384, 2004.
[22] Guendelman, E., Selle, A., Losasso, F., and Fedkiw, R., “Coupling water and smoke to thin deformable and rigid shells.”, ACM Trans. Graph. (SIGGRAPH Proc.) 24, 3, 973–981, 2005.
[23] Losasso, F., Shinar, T., Shelle., and Fedkiw, R., “Multiple interacting liquids.”, ACM Trans. Graph. (SIGGRAPH Proc.) 25, 3, 812–819, 2006.
[24] Robinson-Mosher, A., Shinar, T., Gretarsson, J., Su, J., and Fedkiw, R., “Two-way coupling of fluids to rigid and deformable solids and shells.”, ACM Trans. Graph. (SIGGRAPH Proc.) 27, 46:1–46:9, 2008.
[25] Monaghan, J. J., “Smoothed particle hydrodynamics.”, Annual Review of Astronomy and Astrophysics 30, 1 , 543–574, 1992.
[26] Muller, M., Charypar, D., Gross, M., “Particle-based fluid simulation for interactive applications.” In Proceedings of the 2003 ACM SIGGRAPH/ Eurographics Symposium on Computer Animation, SCA ’03, Eurographics Association, pp. 154–159, 2003.
[27] Oger, G., Doring, M., Alessandrini, B., and Ferrant, P., “Two-dimensional SPH simulations of wedge water entries.”, Journal of Computational Physics 213, 2, 803–822, 2006.
[28] Muller, M., Schirm, S., Teschner, M., Heidelber, B., and Gross, M., “Interaction of fluids with deformable solids.”, Computer Animation and Virtual Worlds 15, 34, 159–1712, 2004.
[29] Lenaerts, T., Adams, B., and Dutre, P., “Porous flow in particle-based fluid simulations. “ ,In SIGGRAPH ’08: ACM SIGGRAPH 2008 papers, ACM, New York, NY, USA, 1–8, 2008.
[30] Solenthaler, B., and Gross, M., “Two-scale particle simulation.”, ACM Trans. on Graphics (SIGGRAPH Proc.) 30, 4,81:1–81:8, 2011.
[31] Akinci, N., Ihmsen, M., Akinci, G., Solenthaler, B., Teschner, M., “Versatile Rigid-Fluid Coupling for Incompressible SPH.”, In ACM SIGGRAPH 2012, To appear. 2,3 , 2012.
[32] Ihmsen, M., Akinci, N., Becker, M., Techner, M., “A parallel SPH implementation on multi-core cpus.” Comput. Graph. Forum 30, 1 , 99–112, 2011.
[33] Chuang, M. H., “Developing a Two-way Coupled of Moving Solid Method for Solving Landslide Generated Tsunamis,” master’s thesis, National Central University, 2009.
[34] Wu, T. R., Huang, C. J., Chuang, M. H., Wang C. Y., Chu, C. R., “Dynamic Coupling of Multi-phase Fluids with a Moving Obstacle.” Journal of Materials Sciences and Technology, Vol. 19, No. 6, pp. 643-650, 2011.
[35] Shi, G. H., “Discontinuous deformation analysis-a new numerical model for the statics and dynamics of block system.”, Ph. D. Dissertation, University of California, Berkeley, 1988.
[36] Shi, G. H.., “Manifold method of material analysis. Transactions of the Ninth Army Conference on Applied mathematics and Computing.”, Minneapolis, Minnesota, USA, 51-76, 1992.
[37] Wang, C. Y., and Liang, V. C., “A Packing Generation Scheme for the Granular Assemblies with Planar Elliptical Particles,”International Journal for Numerical and Analytical Methods in Geomechanics, Vol. 21, pp. 347-358,1997.
[38] Wang, C. Y., Wang, C. F. and Sheng, J., “A Packing Generation Scheme for the Granular Assemblies with 3D Ellipsoidal Particles.”, International Journal for Numerical and Analytical Methods in Geomechanics , 23: 815-828, 1999.
[39] 許秀真,「剛性多面體系統之數值模擬」,碩士論文,國立中央大學土木工程研究所,中壢(2000) 。
[40] Matthew, R. K., “Smooth Convex Three-Dimensional Particle for the Discrete-Element Method,” Journal of Engineering Mechanics, 10.1061(ASCE) 0733-9399 129:5(539), 2004.
[41] Ting, E. C., Shih, C. and Wang, Y. K.,“Fundamentals of a vector form intrinsic finite element: Part I. basic procedure and a plane frame element.”, J. Mech., 20(2), pp. 113-122, 2004.
[42] Ting, E. C., Shih, C. and Wang, Y. K.,“Fundamentals of a vector form intrinsic finite element: Part II. plane solid elements,” J. Mech., 20(2), pp. 123-132, 2004.
[43] Shih, C., Wang, Y. K. and Ting, E. C.,“Fundamentals of a vector form intrinsic finite element: Part III. Convected material frame and examples,” J. Mech., 20(2), pp. 133-143 , 2004.
[44] Wang, R. Z., Tsai, K. C., Lin, B. Z., “Extremely large displacement dynamic analysis of elastic–plastic plane frames.”, Earthquake Engineering & Structural Dynamics 2011;40: 1515–33.
[45] Wang, C. Y., Wang, R. Z., Chuang, C. C., and Wu, T. Y., “Nonlinear Analysis of Reticulated Space Truss Structures,” Journal of Mechanics, Vol. 22, No. 3, pp. 235-248, 2006.
[46] Wu, T. Y., Wang, C. Y., Chuang C. C., Ting. E. C., “Motion analysis of 3D membrane structures by a vector form intrinsic finite element.”, Journal of the Chinese Institute of Engineers , 30:961–76, 2007.
[47] Wu, T. Y., Ting, E. C., “Large deflection analysis of 3D membrane structures by a 4-node quadrilateral intrinsic element.”, Thin-Walled Structures 2008;46:261–75.
[48] Wu, T. Y., Wu, J. H., Ho, J. M., Chuang, C. C., Wang, R. Z., and Wang, C. Y., “A Study on Motion Analysis of 3D Solids by a Vector Form Intrinsic Finite Element.”, Journal Chinese Institute of Civil and Hydraulic Engineering, Vol. 19, No.1, pp. 79-89, 2007.
[49] 叶正寅, 张伟伟, 史爱明。流固耦合力學基礎及其應用。哈爾濱工業大學出版社,2010。
[50] 宋學官(2012)。ANSYS流固耦合分析與工程實例。北京:中國水利水電出版社。
[51] Li, Q. Y., Zheng, J. R., Liao, G., Jin, Y., “Approach on Area Coordinate, Volume Coordinate and Their Application in True 3DGIS.”, Journal of Earth Science and Engineering., vol , pp. 53-60 , 2011.
[52] Chu, C.-R., Chang, C.Y., Huang, C. J., Wu, T. R., Wang, C.Y., and Liu, M. Y., “Windbreak protection for road vehicles against crosswind.”, J. of Wind Engineering and Industrial Aerodynamics., (Accepted) February 16, 2013.
[53] Yang, T. Y., Saigal, S., “A simple element for static and dynamic response of beams with material and geometric nonlinearities.”, International Journal for Numerical Methods in Engineering Vol 20, Issue 5, pp. 851-867 ,1984.
[54] 賴姿妤,「樁基礎沖刷橋梁模型之振動台試驗研究」,碩士論文,國立台灣大學土木工程研究所,台北(2011) 。
[55] Antoci, T. C., Gallati M., Sibilla S., “Numerical simulation of fluid–structure interaction by SPH.”, Computers & Structures, Vol 88, pp. 879-890 (2007).
[56] Deardorff, J. W., “A numerical study of three-dimensional turbulent channel flow at large Reynolds numbers.”, J. Fluid Mech. 41:453–80, 1970.
[57] Kothe, D. B., Rider W. J., Mosso, S. J., Brock, J. S., and Hochstein, J. I., “Volume tracking of interfaces having surface tension in two and three dimensions.”, Technical Report, AIAA 96-0859, 1996.
[58] Rider, W. J. and Kothe, D. B., “Reconstructing Volume Tracking.”, J. Comp.Phys., 141, 112-152, 1998.
[59] Chorin, A. J., “Numerical solution of the Navier-Stokes equations.”, Math. Comp., 22, 745-762, 1968.
[60] Chorin, A. J., “On the convergence of discrete approximations of the Navier-Stokes equations. Math. Comp., 23, 341-353, 1969. |