Blanc, P., Lempérière, F. (2001). Labyrinth spillways have a promising future. International Journal on Hydropower and Dams, 8(4), 129-131.
Codina, R. (2000). Stabilization of incompressibility and convection through orthogonal sub-scales in finite element method. Computer Methods in Applied Mechanics and Engineering, 190(13-14), 1579-1599. doi:10.1016/S0045-7825(00)00254-1
Cordero, D., Elviro, V., Granell, C. (2007). Aliviaderos en laberinto: presa de María Cristina. Revista de Ingeniería Civil. ISSN: 0213-8468, 146, 5-20.
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Blanc, P., Lempérière, F. (2001). Labyrinth spillways have a promising future. International Journal on Hydropower and Dams, 8(4), 129-131.
Codina, R. (2000). Stabilization of incompressibility and convection through orthogonal sub-scales in finite element method. Computer Methods in Applied Mechanics and Engineering, 190(13-14), 1579-1599. doi:10.1016/S0045-7825(00)00254-1
Cordero, D., Elviro, V., Granell, C. (2007). Aliviaderos en laberinto: presa de María Cristina. Revista de Ingeniería Civil. ISSN: 0213-8468, 146, 5-20.
Crookston, B., Tullis, B. (2012). Labyrinth weirs: Nappe interference and local submergence. Journal of Irrigation and Drainage Engineering, 138(8), 757-765. doi:10.1061/(ASCE)IR.1943-4774.0000466
Crookston, B., Tullis, B. (2013). Hydraulic design and analysis of labyrinth weirs. I: Discharge relationships. Journal of Irrigation and Drainage Engineering, 139(5), 363-370. doi:10.1061/(ASCE)IR.1943-4774.0000558
Dadvand, P., Rossi, R., Oñate, E. (2010). An object-oriented environment for developing finite element codes for multi-disciplinary applications. Archives of Computational Methods in Engineering, 17(3), 253-297. doi:10.1007/s11831-010-9045-2
Kratos, multiphysics open source FEM code, (2012). http://www.cimne.com/kratos [Acceso: junio 2016].
Larese, A., Rossi, R., Oñate, E. (2015). Finite element modeling of free surface flow in variable porosity media. Archives of Computational Methods in Engineering, 22(4), 637-653. doi:10.1007/s11831-014-9140-x
Osher, S., Fedkiw, R.P. (2001). Level set methods: An overview and some recent results. Journal of Computational Physics, 169(2), 463-502. doi:10.1006/jcph.2000.6636
Pfister, M., Battisacco, E., De Cesare, G., Schleiss, A. J. (2013). Scale effects related to the rating curve of cylindrically crested Piano Key weirs. Labyrinth and Piano Key Weirs II, 73. CRC BALKEMA. ISBN: 9781138000858
Principe, J., Codina, R., Henke, F. (2010). The dissipative structure of variational multiscale methods for incompressible flows. Computer Methods in Applied Mechanics and Engineering, 199(13), 791-801. doi:10.1016/j.cma.2008.09.007
Rossi, R., Larese, A., Dadvand, P., Oñate, E. (2013). An efficient edge-based level set finite element method for free surface flow problems. International Journal of Numerical Methods in Fluids, 71(6), 687-716. doi:10.1002/fld.3680
Salazar, F., Morán, R., Rossi, R., y Oñate, E. (2013). Analysis of the discharge capacity of radial-gated spillways using CFD and ANN-Oliana Dam case study. Journal of Hydraulic Research, 51(3), 244-252. Doi: 10.1080/00221686.2012.755714
Salazar, F., San Mauro, J., Oñate, E. y Toledo, M.A. (2015). CFD analysis of flow pattern in labyrinth weirs. Dam Protections against Overtopping and Accidental Leakage, 287. CRC BALKEMA. ISBN: 9781138028081
Vasquez, V., Boyd, M., Wolfhope, J., Garret, R. (2007). A labyrinth rises in the heart of Texas. Proc., 28th Annual USSD Conf., USSD, Denver, CO, 813-826. Disponible en: http://ussdams.com/proceedings/2008Proc/813-826.pdf [Acceso: junio 2016].
Zienkiewicz, O.C., Taylor, R.L., Nithiarasu, P. (2005). The finite element method for fluid dynamics, ed. 6. Elsevier Butterworth-Heinemann, Oxford, UK. ISBN: 978-0-7506-6431-8
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