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Research Article

Investigation of boundary layer impact on pervious concrete

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Article: 2111423 | Received 27 Nov 2021, Accepted 03 Aug 2022, Published online: 19 Aug 2022

References

  • Aamer Rafique Bhutta, M., et al., 2013. Properties of porous concrete from waste crushed concrete (recycled aggregate). Construction and Building Materials, 47, 1243–1248.
  • Agar Ozbek, A. S., et al., 2019. Mesoscopic modeling of the impact behavior and fragmentation of porous concrete. Cement and Concrete Composites, 102, 116–133.
  • Ahilash, N., Sajeevan, M., and Subramaniam, D. N, 2021. Optimising pervious concrete design with partial replacement of cement with fly ash. In: 12th international conference on road and airfield pavement technology, Sri Lanka.
  • Aliabdo, A. A., Abd Elmoaty, A. E. M., and Fawzy, A. M, 2018. Experimental investigation on permeability indices and strength of modified pervious concrete with recycled concrete aggregate. Construction and Building Materials, 193, 105–127.
  • Alshareedah, O., et al., 2019. Field performance evaluation of pervious concrete pavement reinforced with novel discrete reinforcement. Case Studies in Construction Materials, 10, e00231.
  • Alshareedah, O., and Nassiri, S, 2021. Pervious concrete mixture optimization, physical, and mechanical properties and pavement design: a review. Journal of Cleaner Production, 288, 125095.
  • Andrew, I. N., and Bradley, J. P, 2010. Effect of aggregate size and gradation on pervious concrete mixtures. ACI Materials Journal, 107, 625–631.
  • Ba, M.-F., et al., 2011. Effects of steam curing on strength and porous structure of concrete with low water/binder ratio. Construction and Building Materials, 25 (1), 123–128.
  • Barnhouse, P. W., and Srubar III, W. V, 2016. Material characterization and hydraulic conductivity modeling of macroporous recycled-aggregate pervious concrete. Construction and Building Materials, 110, 89–97.
  • Bhutta, M. A. R., Tsuruta, K., and Mirza, J, 2012. Evaluation of high-performance porous concrete properties. Construction and Building Materials, 31, 67–73.
  • Bonicelli, A., et al., 2013. Laboratory analysis for investigating the impact of compaction on the properties of pervious concrete mixtures for road pavements. Advanced Materials Research, 723, 409–419.
  • Bonicelli, A., Arguelles, G. M., and Pumarejo, L. G. F, 2016. Improving pervious concrete pavements for achieving more sustainable urban roads. Procedia Engineering, 161, 1568–1573.
  • Bonicelli, A., Giustozzi, F., and Crispino, M, 2015. Experimental study on the effects of fine sand addition on differentially compacted pervious concrete. Construction and Building Materials, 91, 102–110.
  • Brattebo, B. O., and Booth, D. B, 2003. Long-term stormwater quantity and quality performance of permeable pavement systems. Water Research, 37 (18), 4369–4376.
  • Brown, R. A., and Borst, M, 2015. Nutrient infiltrate concentrations from three permeable pavement types. Journal of Environmental Management, 164, 74–85.
  • BS-EN-1097, 2020. Tests for mechanical and physical properties of aggregates. London: British Standards Institution (BSI).
  • BS-EN-933, 2017. Tests for geometrical properties of aggregates London: British Standards Institution (BSI).
  • Carsana, M., Tittarelli, F., and Bertolini, L, 2013. Use of no-fines concrete as a building material: strength, durability properties and corrosion protection of embedded steel. Cement and Concrete Research, 48, 64–73.
  • Chandrappa, A. K., and Biligiri, K. P, 2016. Pervious concrete as a sustainable pavement material – research findings and future prospects: a state-of-the-art review. Construction and Building Materials, 111, 262–274.
  • Chandrappa, A. K., and Biligiri, K. P, 2017. Relationships between structural, functional, and X-ray microcomputed tomography parameters of pervious concrete for pavement applications. Transportation Research Record, 2629 (1), 51–62.
  • Chen, Y., et al., 2013. Strength, fracture and fatigue of pervious concrete. Construction and Building Materials, 42, 97–104.
  • Chen, J., et al., 2019. Analysis of thermal conductivity of porous concrete using laboratory measurements and microstructure models. Construction and Building Materials, 218, 90–98.
  • Chindaprasirt, P., et al., 2008. Cement paste characteristics and porous concrete properties. Construction and Building Materials, 22 (5), 894–901.
  • Chindaprasirt, P., et al., 2009. Effects of binder strength and aggregate size on the compressive strength and void ratio of porous concrete. International Journal of Minerals, Metallurgy and Materials, 16, 714–719.
  • Chung, S.-Y., and Han, T.-S, 2013. Correlation between low-order probability distribution functions and percolation of porous concrete. Magazine of Concrete Research, 65 (7), 448–460.
  • Cui, X., et al., 2020. X-ray CT based clogging analyses of pervious concrete pile by vibrating-sinking tube method. Construction and Building Materials, 262, 120075.
  • Debnath, B., and Pratim Sarkar, P, 2021. Quantification of random pore features of porous concrete mixes prepared with brick aggregate: an application of stereology and mathematical morphology. Construction and Building Materials, 294, 123594.
  • Debnath, B., and Sarkar, P. P, 2019. Permeability prediction and pore structure feature of pervious concrete using brick as aggregate. Construction and Building Materials, 213, 643–651.
  • Deo, O., and Neithalath, N, 2010. Compressive behavior of pervious concretes and a quantification of the influence of random pore structure features. Materials Science and Engineering: A, 528 (1), 402–412.
  • Deo, O., and Neithalath, N, 2011. Compressive response of pervious concretes proportioned for desired porosities. Construction and Building Materials, 25 (11), 4181–4189.
  • Jagadeesh, A., Ong, G. P., and Su, Y.-M, 2022. Selection of image processing algorithms for evaluation of pervious pavement pore network properties. In: H. R. Pasindu, S. Bandara, W. K. Mampearachchi, and T. F. Fwa, eds. Road and airfield pavement technology. Cham. Springer International Publishing, 559–571.
  • Ji, T., et al., 2013. A mix proportion design method of manufactured sand concrete based on minimum paste theory. Construction and Building Materials, 44, 422–426.
  • Khan, M. I, 2002. Factors affecting the thermal properties of concrete and applicability of its prediction models. Building and Environment, 37 (6), 607–614.
  • Li, L. G., et al., 2021. Pervious concrete: effects of porosity on permeability and strength. Magazine of Concrete Research, 73 (2), 69–79.
  • Lian, C., Zhuge, Y., and Beecham, S, 2011. The relationship between porosity and strength for porous concrete. Construction and Building Materials, 25 (11), 4294–4298.
  • Lyu, K., et al., 2019. The effect of rough vs. smooth aggregate surfaces on the characteristics of the interfacial transition zone. Cement and Concrete Composites, 99, 49–61.
  • Martin, W. D., Kaye, N. B., and Putman, B. J, 2014. Impact of vertical porosity distribution on the permeability of pervious concrete. Construction and Building Materials, 59, 78–84.
  • Pradhan, P., et al., 2017. A systematic study of sustainable development goal (SDG) interactions. Earth's Future, 5 (11), 1169–1179.
  • Rinduja, R., et al., 2021. Investigation of porosity distribution in pervious cocnrete. In: 8th international symposium on advances in civil and environmental engineering practice for sustainable development, Sri Lanka.
  • Sajeevan, M., Ahilash, N., and Subramaniam, D. N., 2021. Investigating impact of boundary layer in pervious concrete. In: 12th international conference on road and airfield pavement technology, Sri Lanka.
  • Shen, W., et al., 2013. Investigation on polymer–rubber aggregate modified porous concrete. Construction and Building Materials, 38, 667–674.
  • Subramaniam, D. N., et al., 2014. Significance of drying periods on nitrate removal in experimental biofilters. Journal of Water Management Modeling [Online], 22. Available from: https://www.chijournal.org/C381.
  • Subramaniam, D., et al., 2021. Hydraulic properties of stormwater biofilters during dry phase. Urban Water Journal, 18 (5), 334–341.
  • Subramaniam, D. N., Hareindirasarma, S., and Janarthanan, B, 2022. An alternative approach to optimize aggregate-to-cement ratio and compaction in pervious concrete. Arabian Journal for Science and Engineering.
  • Sumanasooriya, M. S., and Neithalath, N, 2011. Pore structure features of pervious concretes proportioned for desired porosities and their performance prediction. Cement and Concrete Composites, 33 (8), 778–787.
  • Thajani, J., et al., 2021. Investigation on the impact of compaction eergy distribution on porosity of pervious concrete. In: 8th international symposium on advances in civil and environmental engineering practice for sustainable development, Sri Lanka.
  • Yu, F., et al., 2019. Study on the pores characteristics and permeability simulation of pervious concrete based on 2D/3D CT images. Construction and Building Materials, 200, 687–702.
  • Zhang, Y., et al., 2020. Effect of different factors on sound absorption property of porous concrete. Transportation Research Part D: Transport and Environment, 87, 102532.
  • Zhou, H., et al., 2019. Experimental investigation on the effect of pore characteristics on clogging risk of pervious concrete based on CT scanning. Construction and Building Materials, 212, 130–139.
  • Zuo, J., and Zhao, Z.-Y, 2014. Green building research–current status and future agenda: A review. Renewable and Sustainable Energy Reviews, 30, 271–281.

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