Field Study on Water Absorption Capacity of Pervious Concrete Pavement Under Different Discharge Conditions

Pervious concrete (PC), also called porous concrete, is a special type of concrete with high porosity and low compressive strength, which is used for several applications. Even though extensive research is being carried out on PC, the studies on its field applications are meagre. In the present study, an attempt has been made to investigate the water absorption capacity (WAC) of PC pavement laid in the field under different discharge conditions. A footpath was constructed with PC made of the best mix proportions obtained from the previous study (40% of 20 mm, 30% of 12.5 mm and 30% of 10 mm aggregate, 10% Fly ash with 90% OPC and w/c ratio 0.35) having compressive strength 24 MPa and permeability of 1.56 cm/s. It consists of 15 panels of size 1.2 m × 1.2 m and depth 10 cm. The soil characteristics underneath the PC panels are determined before laying PC over it. WAC of PC footpath is determined by applying the different discharges in the lateral and vertical directions in different seasons in a year. In the first season (August-2018), the discharge is applied only in the lateral direction and it is found that the WAC value is 3315.7 litres/m3 , whereas in the second season (January 2019), it is found as 3064.56 litres/m3 . The reduction in WAC from season 1 to season 2 may be due to the accumulation of sediments. The total amount of rain that occurred during season 1 to season 2 is 400.73 mm and the total amount of sediment accumulated is 44.028 kg. Hence, it is concluded that water absorption of PC is time dependent and also the presence of sediments in the runoff water.
Chandrappa, A., Biligiri, K. and K. Prapoorna (2016). Pervious concrete as a sustainable pavement material– Research findings and future prospects: A state-of-the-art review. Constr. Build. Mater, 111: 262-274.
Chopra, M., Kakuturu, S. and C. Ballock (2010). Effect of rejuvenation methods on the infiltration rates of pervious concrete pavements, J. Hydrol. Eng., 15(6): 426-433.
Deo, O. (2011). Influence of material structure on the structural and environmental properties of pervious concretes (Ph.D. Dissertation). Clarkson University, USA.
Deo, O., Sumanasooriya, M. and N. Neithalath (2010). Permeability reduction in pervious concretes due to clogging: Experiments and modeling, J. Mater. Civ. Eng., 22: 741-751.
Eban, B.Z., William, H.F. and D.A. Bidelspach (2007). Field survey of permeable pavement surface infiltration rate, J. Irrig. Drain Engg., 133(3): 249-255.
Haselbach, L.M. (2010). Potential for clay clogging of pervious concrete under extreme conditions, J. Hydrol. Eng., 15(1): 67-69.
Huang, B., Wu, H. and X. Shu (2009). Laboratory evaluation of permeability and strength of polymer-modified pervious concrete. Constr. Build. Mater., 24: 818-823.
Li, H., Kayhanian, M. and J.T. Harvey (2013). Comparative field permeability measurement of permeable pavements using ASTM C1701 and NCAT permeameter methods, Journal of Environmental Management, 118: 144-152.
Li, J., Zhang, Y. and G. Liu (2017). Preparation and performance evaluation of an innovative pervious concrete pavement, Constr. Build. Mater., 138: 479-485.
Maguesvari, M.U. and V.L. Narasimha (2013). Studies on characterization of pervious concrete for pavement applications. Soc. Behav. Sci., 104: 198-207.
Neithalath, N., Milani, S. and S. DeoOmkar (2010). Characterizing pore volume, sizes, and connectivity in pervious concretes for permeability prediction, Mater. Characterization, 61: 802-813.
Nguyen, D.H. and S. Nassim (2014). A modified method for the design of pervious concrete mix. Constr. Build. Mater., 73: 271-282.
Robert, C.W., William, J. and H. von Langsdorff (2001). Stormwater management model for environmental design of permeable pavement. Journal of Water Management Modeling, R207-26: 423-443.
Schaefer, V.R. and J.T. Kevern (2011). An Integrated Study of Pervious Concrete Mixture Design for Wearing Course, Final Report – DTFH61-06-H-00011, National Concrete Pavement Technology Center, lowa State University, 158p.
Starke, P., Wallymeyer, C. and S. Rolver (2011). Development of a new laboratory evaporation measurement device as decision support for evaporation-optimized building. Build. Environ., 46: 2552-2561.
Tennis, P.D., Leming, M.L. and D.J. Akers (2004). Pervious Concrete Pavements, EB302.02, Portland Cement Association, Skokie, Illinois, and National Ready Mixed Concrete Association, Silver Spring, Maryland, USA, p.36.
Vinay V., Chandramouli, S. and G. Pratyusha (2018). Experimental study on strength and permeability properties of pervious concrete blended with mineral admixture and its field application (M.Tech Dissertation). MVGRCE, Vizianagaram.
Xiang, S., Huang, B. and H. Wu (2011). Performance comparison of laboratory and field produced pervious concrete mixtures. Constr. Build. Mater., 25: 3187-3192.
Yang, J. and J.G. Liang (2003). Experimental study on properties of pervious concrete pavement materials, Journal of Cement and Concrete Research, 33: 381-386. https://www.masterbuilder.co.in/pervious-concrete-highpermeability-drainage-capacity/