Open Access

Assessing methods for the estimation of response times of stream discharge: the role of rainfall duration


Cite

ADOT (Arizona Department of Transportation), 1993. Highway Drainage Design Manual Hydrology. Phoenix, USA, 336 p.Search in Google Scholar

Amigo, J., Ramírez, C., 1998. A bioclimatic classification of Chile: woodland communities in the temperate zone. Plant Ecol., 136, 1, 9–26.10.1023/A:1009714201917Search in Google Scholar

Argente-Sanz, J.C., 2014. Estudio del comportamiento hídrico de una cuenca hidrológica en Angola. Trabajo Fin de Grado Ingeniería en Geomática y Topografía. Escuela Técnica Superior de Ingeniería Geodésica, Cartográfica y Topográfica, Universidad Politécnica de Valencia, Valencia, España, 61 p.Search in Google Scholar

Bentancor, L., Silveira, L., García-Petillo, M., 2014. Incidencia de la intensidad de lluvia en el tiempo de concentración de microcuencas del Uruguay. Agrociencia-Uruguay, 18, 2, 106–116.10.31285/AGRO.18.471Search in Google Scholar

Bransby-Williams, G., 1922. Flood discharge and the dimensions of spillways in India. The Engineer (London), 121, 321–322.Search in Google Scholar

CDH (California Division of Highways), 1960. California culvert practice: reprint of a series of technical abstracts from California highways and public works. 2nd printing. State of California, Department of Public Works, Division of Highways, Sacramento, USA, 119 p.Search in Google Scholar

Chow, V.T., 1959. Open-Channel Hydraulics. McGraw Hill, New York, USA, 680 p.Search in Google Scholar

Chow, V.T., Maidment, V.R., Mays, L.W., 1988. Applied Hydrology. McGraw-Hill, New York, USA, 572 p.Search in Google Scholar

CIREN (Centro de Información de Recursos Naturales), 2001. Estudio Agrológico X Región. Tomo I. CIREN, Santiago, Chile, 480 p.Search in Google Scholar

CIREN (Centro de Información de Recursos Naturales), 2003. Descripciones de Suelos, Materiales y Símbolos. Estudio Agrológico X Región, Publicación 123. CIREN, Santiago, Chile.Search in Google Scholar

Cuevas, J.G., Arumí, J.L., Zúñiga-Feest, A., Little, C., 2018. An unusual kind of diurnal streamflow variation. J. Hydrol. Hydromech., 66, 1, 32–42.10.1515/johh-2017-0041Search in Google Scholar

de Almeida, I.K., Almeida, A.K, Ayach-Anache, J.A., Steffen, J.L., Alves-Sobrinho, T., 2014. Estimation on time of concentration of overland flow in watersheds: a review. Geociências, 33, 4, 661–671.Search in Google Scholar

de Almeida, I.K., Almeida, A.K., Garcia-Gabas, S., Alves-Sobrinho, T., 2017. Performance of methods for estimating the time of concentration in a watershed of a tropical region. Hydrolog. Sci. J., 62, 14, 2406–2414. DOI: 10.1080/02626667.2017.1384549.10.1080/02626667.2017.1384549Open DOISearch in Google Scholar

DGA (Dirección General de Aguas), 1995. Manual de Cálculo de Crecidas y Caudales Mínimos en Cuencas sin Información Fluviométrica. Dirección General de Aguas, Ministerio de Obras Públicas, Santiago, Chile, 88 p. Available at: http://documentos.dga.cl/FLU398.pdf [Accessed 04 Nov. 2017].Search in Google Scholar

Dörner, J., Dec, D., Zúñiga, F., Horn, R., López, I., Leiva, C., Cuevas, J., 2013. Soil changes in the physical quality of an andosol under different management intensities in Southern Chile. In: Krümmelbein, J., Horn, R., Pagliai, M. (Eds.): Soil Degradation. Adv. Geoecol., 42, 262–281.Search in Google Scholar

Dörner, J., Huertas, J., Cuevas, J.G., Leiva, C., Paulino, L., Arumí, J.L., 2015. Water content dynamics in a volcanic ash soil slope in southern Chile. J. Plant Nutr. Soil Sci., 178, 4, 693–702.10.1002/jpln.201500112Search in Google Scholar

Edwards, R.T., 1998. The hyporheic zone. In: Naiman, R.J., Bilby, R.E. (Eds.): River Ecology and Management, Lessons from the Pacific Coastal Ecoregion. Springer, New York, USA, Chapter 16, pp. 399–429.Search in Google Scholar

Folmar, N.D., Miller, A.C., 2008. Development of an empirical lag time equation. J. Irrig. Drain. E. ASCE, 134, 4, 501–506.10.1061/(ASCE)0733-9437(2008)134:4(501)Search in Google Scholar

Giandotti, M., 1940. Previsione empirica delle piene in base alle precipitazioni meteoriche, alle caratteristiche fisiche e morfologiche dei bacini; Applicazione del metodo ad alcuni bacini dell’Appennino Ligure. Memorie e Studi Idrografici, 10, 5–13. Available at: http://hydrologie.org/redbooks/a025/Potam_Q2_R1 [Accessed 04 Nov. 2017].Search in Google Scholar

Granato, G.E., 2012. Estimating Basin Lagtime and Hydrograph-Timing Indexes Used to Characterize Stormflows for Runoff-Quality Analysis. Scientific Investigations Report 2012–5110. U.S. Department of the Interior, U.S. Geological Survey, Reston, Virginia, USA, 58 p. Available at: https://pubs.usgs.gov/sir/2012/5110/pdf/sir2012-5110_text.pdf [Accessed 04 Nov. 2017].Search in Google Scholar

Gumbel, E.J., 1960. Multivariate extremal distributions. Bull. Inst. Internat. de Statistique 37, 471–475.Search in Google Scholar

Izzard, C.F., 1946. Hydraulics of runoff from developed surfaces. In: Proc. 26th Annual Meeting of the Highway Research Board. Highway Research Board, Washington, USA, pp. 129–146.Search in Google Scholar

Kerby, W.S., 1959. Time of concentration for overland flow. J. Civil Eng., ASCE, 26, 3, 60–68.Search in Google Scholar

Kirpich, Z.P., 1940. Time of concentration of small agricultural watersheds. Civil Eng., 10, 6, 362–368.Search in Google Scholar

Mata-Lima, H., Vargas, H., Carvalho, J., Gonçalves, M., Caetano, H., Marques, A., Raminhos, C., 2007. Comportamento hidrológico de bacias hidrográficas: integração de métodos e aplicação a um estudo de caso. Rem-Rev. Esc. Minas, 60, 3, 525–536.10.1590/S0370-44672007000300014Open DOISearch in Google Scholar

McCuen, R.H., 2009. Uncertainty analyses of watershed time parameters. J. Hydrol. Eng., 14, 5, 490–498. DOI: 10.1061/(ASCE)HE.1943-5584.0000011#sthash.qleAhfH8.dpuf10.1061/(ASCE)HE.1943-5584.0000011#sthash.qleAhfH8.dpufOpen DOISearch in Google Scholar

McCuen, R.H., Spiess, J.M., 1995. Assessment of kinematic wave time of concentration. J. Hydraul. Eng. ASCE, 121, 3, 256–266.10.1061/(ASCE)0733-9429(1995)121:3(256)Search in Google Scholar

McCuen, R.H., Wong, S.L., Rawls, W.J., 1984. Estimating urban time of concentration. J. Hydraul. Eng., 110, 7, 887–904.10.1061/(ASCE)0733-9429(1984)110:7(887)Search in Google Scholar

Morgali, J.R., Linsley, R.K., 1965. Computer analysis of overland flow. J. Hydraul. Div., 95, 81–100.10.1061/JYCEAJ.0001269Search in Google Scholar

NRCS (Natural Resource Conservation Service), 1986. Urban Hydrology for Small Watersheds. Technical Release 55. U.S. Department of Agriculture, Washington, DC, USA, 164 p. Available at: https://www.nrcs.usda.gov/Internet/FSE_DOCUMENTS/stelprdb1044171.pdf [Accessed 04 Nov. 2017].Search in Google Scholar

Papadakis, C., Kazan, N., 1986. Time of Concentration in Small Rural Watersheds. Technical report 101/08/86/CEE. College of Engineering, University of Cincinnati, Cincinnati, USA, 18 p.Search in Google Scholar

Pasini, F., 1914. Relazione sul progettodella bonifica renana, Bologna, Italy.Search in Google Scholar

Sharifi, S., Hosseini, S.M., 2011. Methodology for identifying the best equations for estimating the time of concentration of watersheds in a particular region. J. Irrig. Drain. E. ASCE, 137, 11, 712–719.10.1061/(ASCE)IR.1943-4774.0000373Search in Google Scholar

Sheridan, J.M., 1994. Hydrograph time parameters for flatland watersheds. Trans. of Am. Soc. Agr. Eng., 37, 1, 103–113.10.13031/2013.28059Open DOISearch in Google Scholar

Simas, M., 1996. Lag Time Characteristics in Small Watersheds in The United States. A dissertation submitted to School of Renewable Natural Resources, University of Arizona, Tucson, USA, 174 p.Search in Google Scholar

Singh, N., Singh, K.K., 2017. Geomorphological analysis and prioritization of sub-watersheds using Snyder’s synthetic unit hydrograph method. Appl. Water Sci., 7, 1, 275–283. https://doi.org/10.1007/s13201-014-0243-110.1007/s13201-014-0243-1Open DOISearch in Google Scholar

Soil Survey Staff, 1999. Soil taxonomy: A Basic System of Soil Classification For Making and Interpreting Soil Surveys. 2nd edition. Natural Resources Conservation Service, U.S. Department of Agriculture Handbook 436, Washington, DC, USA, 886 p.Search in Google Scholar

Sokal, R.R., Rohlf, F.J., 1995. Biometry: The Principles and Practice of Statistics in Biological Research. Third edition. W. H. Freeman and Company, New York, USA, 885 p.Search in Google Scholar

Témez, J.R., 1978. Cálculo hidrometeorológico de caudales máximos en pequeñas cuencas naturales. Ministerio de Obras Públicas y Urbanismo (MOPU), Dirección General de Carreteras, Madrid, España, 96 p.Search in Google Scholar

Tucci, C., 2000. Hidrología, Ciência e aplicaçao. Coleção ABRH de Recursos Hídricos 4). Universidade Federal do Rio Grande do Sul, Porto Alegre, Brazil, 944 p.Search in Google Scholar

USDA-NRCS (United States Department of Agriculture-Natural Resources Conservation Service), 2010. Chapter 15: Time of Concentration. In: USDA- NRCS (Ed.): National Engineering Handbook, Part 630 Hydrology. Washington, DC, pp. 15i–15B-3.Search in Google Scholar

Vélez, J.J., Botero, A., 2011. Estimation of the time of concentration and the lag time at San Luis Creek basin, Manizales. Dyna, 78, 165, 58–71. (In Spanish.)Search in Google Scholar

Wondzell, S.M., Gooseff, M.N., McGlynn, B.L., 2007. Flow velocity and the hydrologic behavior of streams during baseflow. Geophys. Res. Lett., 34, L24404. DOI: 10.1029/2007gl031256.10.1029/2007GL031256Open DOISearch in Google Scholar

WRB, 2006. World Reference Base for Soil Resources. A Framework for International Classification, Correlation and Communication. 2nd Edition. FAO, World Soil Resources Reports, 103, Rome, Italy, 142 p.Search in Google Scholar

eISSN:
0042-790X
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other