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Research Articles

Infiltration of Portuguese cobblestone pavements – An exploratory assessment using a double-ring infiltrometer

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Pages 291-297 | Received 22 Dec 2014, Accepted 15 Oct 2015, Published online: 30 Nov 2015

References

  • Abdulkadir, A., Wuddivira, M., Abdu, N., & Mudiare, J., (2011). Use of Horton infiltration model in estimating infiltration characteristics of an alfisol in the Northern Guinea Savanna of Nigeria. Journal of Agricultural Science and Technology A, 1, 925–931.
  • Bagarello, V., & Sgroi, A., (2007). Using the simplified falling head technique to detect temporal changes in field-saturated hydraulic conductivity at the surface of sandy loam soil. Soil & Tillage Research, 94, 283–294.
  • Ball, J., & Rankin, K., (2010). The hydrological performance of permeable pavement. Urban Water Journal, 7 (2), 79–90.
  • Bean, E., Hunt, W., & Bidelspach, D., (2007). Field survey of permeable pavement surface infiltration rates. Journal of Irrigation & Drainage Engineering, 133 (3), 249–255.
  • Bentarzi, Y., Terfou, A., Ghenaim, A., Wanko, A., Hlawka, F., & Poulet, J., (2013). Hydrodynamic characteristics of a new permeable pavement material produced from recycled concrete and organic matter. Urban Water Journal, 10 (4), 260–267.
  • Brattebo, B., & Booth, D., (2003). Long-term stormwater quantity and quality performance of permeable pavement systems. Water Research, 37 (18), 4369–4376.
  • Chow, V.T., Mays, L., & Maidment, D., (1988). Applied Hydrology. New York, NY: McGraw-Hill.
  • Delleur, J. (Ed.). (1999). The handbook of groundwater engineering.Boca Raton, FL: CRC Press LLC.
  • Deng, Z., de Lima, J.L.M.P., & Singh, V.P., (2005). Transport rate-based model for overland flow and solute transport: Parameter estimation and process simulation. Journal of Hydrology, 315, 220–235.
  • Ferguson, B., (2005). Porous pavements. New York, NY: Taylor & Francis Group.
  • Filgueira, R., Soracco, C., Sali, G., & Fournier, L., (2006). Estimación de propiedades hidráulicas de suelos por mediciones a campo y el uso de modelos de flujo estacionario y transitorio. Ciencia del Suelo, 24 (1), 39–48 (in Spanish).
  • González-Angullo, N., Castro, D., Rodríguez-Hernández, J., & Davies, J., (2008). Runoff infiltration to permeable paving in clogged conditions. Urban Water Journal, 5 (2), 117–124.
  • Gregory, J. (2004). Stormwater infiltration at the scale of an individual residential lot north central Florida (MSc Thesis). University of Florida.
  • Gregory, J., Dukes, M., Miller, G., & Jones, P. (2005). Analysis of double-ring infiltration techniques and development of a simple automatic water delivery system. Applied Turfgrass Science, 2 (1). Available from: http://abe.ufl.edu/mdukes/pdf/stormwater/ATS-double-ring-paper.pdf
  • Henriques, A., Moura, A., & Santos, F., (2009). Manual de Calçada Portuguesa. Lisbon: Direcção Geral de Energia e Geologia (in Portuguese).
  • Illgen, M., Harting, K., Schmitt, T., & Welker, A., (2007). Runoff and infiltration characteristics of permeable structures-review of an extensive monitoring program. Water Science & Technology, 56 (10), 133–140.
  • Isidoro, J.M.G.P., & de Lima, J.L.M.P., (2014). Laboratory simulation of the influence of building height and storm movement on the rainfall-runoff process in impervious areas. Journal of Flood Risk Management, 7 (2), 176–181.
  • Isidoro, J.M.G.P., de Lima, J.L.M.P., & Leandro, J., (2012). Influence of wind-driven rain on the rainfall-runoff process for urban areas: Scale model of high-rise buildings. Urban Water Journal, 9 (3), 199–210.
  • Isidoro, J.M.G.P., de Lima, J.L.M.P., & Leandro, J., (2013). The study of rooftop connectivity on the rainfall-runoff process by means of a rainfall simulator and a physical model. Zeitschrift für Geomorphologie, 57 (Suppl. 1), 177–191.
  • Krebs, G., Kokkonen, T., Valtanen, M., Koivusalo, H., & Setala, H., (2013). A high resolution application of a stormwater management model (SWMM) using genetic parameter optimization. Urban Water Journal, 10 (6), 394–410.
  • Letellier, L., Berthier, E., & Darboux, N., (2010). Développement d’un infiltrometer pour mesurer les infiltrations d’eau à la surface des chaussées. Bulletin des Laboratoires des Ponts et Chaussées (BLPC), 277, 19–30.
  • Lucke, T., & Beecham, S., (2011). Field investigation of clogging in a permeable pavement system. Building Research & Information, 39 (6), 603–615.
  • Lucke, T., Floris, B., & Ven, F., (2014). Evaluation of a new experimental test procedure to more accurately determine the surface infiltration rate of permeable pavement systems. Urban, Planning and Transport Research, 2 (1), 22–35.
  • Marta, P. (2006). Exploração de calcários para calçada Portuguesa – um georrecurso educativo para o ensino secundário (MSc Thesis). University Nova de Lisboa ( in Portuguese).
  • Martínez-Zavala, L., & Jordán, A., (2008). Effect of rock fragment cover on interrill soil erosion from bare soils in Western Andalusia, Spain. Soil Use and Management, 24, 108–117.
  • Moura, T. (2005). Estudo experimental de superfícies permeáveis para o controle do escoamento superficial em ambientes urbanos (MSc Thesis). University Brasília ( in Portuguese).
  • Nichols, P., Lucke, T., & Dierkes, T., (2014). Comparing Two Methods of Determining Infiltration Rates of Permeable Interlocking Concrete Pavers. Water, 6 (8), 2353–2366.
  • Oosterbaan, R., & Nijland, H., (1994). Determining the saturated hydraulic conductivity. In: H.P. Ritzema, ed. Drainage Principles and Applications. International Institute for Land Reclamation and Improvement (ILRI): Wageningen, 1–38.
  • Paixão, F., Andrade, A., Azevedo, C., Silva, J., Costa, T., & Regilane, F. (2004). Estimativa da Infiltração da água no solo através de modelos empíricos e funções não lineares. Revista de Biologia e Ciências da Terra, 5 (1) ( in Portuguese). Available from: http://www.redalyc.org/articulo.oa?id=50050115
  • Raghunath, H., (2006). Hydrology – Principles, Analysis, Design (2nd. rev ed. New Delhi: New Age International.
  • Sañudo-Fontaneda, L., Charlesworth, M., Castro-Fresno, D., Andres-Valeri, A., & Rodriguez-Hernandez, J., (2014). Water quality and quantity assessment of pervious pavements performance in experimental car park areas. Water Science and Technology, 69 (7), 1526–1533.
  • Scholz, M., & Grabowiecki, P., (2007). Review of permeable pavements systems. Building and Environment, 42 (11), 3830–3836.
  • Shuster, W., Bonta, J., Thurston, H., Warnemuende, E., & Smith, D., (2005). Impacts of impervious surface on watershed hydrology: A review. Urban Water Journal, 2 (4), 263–275.
  • Yong, C., Deletic, D., Fletcher, T., & Grace, M., (2011). Hydraulic and treatment performance of pervious pavements under variable drying and wetting regimes. Water Science & Technology, 64 (8), 1692–1699.
  • Yong, C., McCarthy, D., & Deletic, A., (2013). Predicting physical clogging of porous and permeable pavements. Journal of Hydrology, 481, 48–55.

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