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Research Article

Characterisation of pervious interlocking pavers for durable pavements: a laboratory study

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Article: 2270764 | Received 25 May 2023, Accepted 09 Oct 2023, Published online: 07 Nov 2023

References

  • Aman, Aan Mohammad Nusrat, et al., 2022. Comparative life cycle assessment of pervious concrete production in Malaysia with natural and recycled aggregate. Innovative Infrastructure Solutions, 7 (3), 1–16. doi:10.1007/s41062-022-00801-3.
  • American Society For Testing And Materials. ASTM C1747, 2013. “Standard Test Method for Determining Potential Resistance to Degradation of Pervious Concrete by Impact and Abrasion.” Astm C1747/C1747M-13: 2–5.
  • Aoki, Y., Sri Ravindrarajah, R., and Khabbaz, H., 2012. Properties of pervious concrete containing fly ash. Road Materials and Pavement Design, 13 (1), 1–11. doi:10.1080/14680629.2011.651834.
  • ASTM C 128-01, 2001. “Standard Test Method for Density, Relative Density (Specific Gravity), and Absorption.” ASTM International 88: 1–6.
  • ASTM C131M-20, 2014. “C131/C131M-14 Standard Test Method for Resistance to Degradation of Small-Size Coarse Aggregate by Abrasion and Impact in the Los Angeles Machine.” C 04(Note 2): 5–8.
  • ASTM C666/C666M - 03, 2008. “Astm C666/C666M - 03.” Standard Test Method for Resistance of Concrete to Rapid Freezing and Thawing 03: 1–6.
  • Atoyebi, O. D., et al., 2020. Effect of curing methods on the strength of interlocking paving blocks. Cogent Engineering, 7 (1), 1770914. doi:10.1080/23311916.2020.1770914.
  • Aydin, Serdar, and Yazici, Halit, 2010. Effect of aggregate type on mechanical properties of RPC. ACI Materials, 107 (5), 441–449.
  • Bajpai, Rishabh, et al., 2023. Experimental investigation on paver blocks of fly ash-based geopolymer concrete containing silica fume. Road Materials and Pavement Design, 24 (1), 138–155. doi:10.1080/14680629.2021.2012236.
  • Bureau of Indian Standard(BIS), 2013. IS: 8112–1989, specification for 43 grade ordinary Portland cement. Bureau of Indian Standards, New Delhi, 1–17.
  • Bureau of Indian Standards (BIS), 2002. IS:2386 (part V)-1963 : methods of test for aggregates for concrete, part V: soundness. Indian Standards, 1–14.
  • Chang, J. J., et al., 2016. Properties of pervious concrete made with electric arc furnace slag and alkali-activated slag cement. Construction and Building Materials, 109, 34–40. doi:10.1016/j.conbuildmat.2016.01.049.
  • Chen, Yuanyuan, et al., 2016. Pavement induced soil warming accelerates leaf budburst of ash trees. Urban Forestry and Urban Greening, 16, 36–42. doi:10.1016/j.ufug.2016.01.014.
  • Chockalingam, T, Vijayaprabha, C, and Raj, JL, 2023. Experimental study on size of aggregates, size and shape of specimens on strength characteristics of pervious concrete. Construction and Building Materials, 385 (January), 131320. doi:10.1016/j.conbuildmat.2023.131320.
  • Committee, A C I, 2015. 10 ACI 522R-10 Report on Pervious Concrete.
  • Crucho, João, Picado-Santos, Luís, and Neves, José, 2022. Cement-treated pavement layers incorporating construction and demolition waste and coconut fibres: A review. International Journal of Pavement Engineering, 23 (14), 4877–4896. doi:10.1080/10298436.2021.1984475.
  • Dai, Zhen, et al., 2020. Multi-Modified effects of varying admixtures on the mechanical properties of pervious concrete based on optimum design of gradation and cement-aggregate ratio. Construction and Building Materials, 233, 117178. doi:10.1016/j.conbuildmat.2019.117178.
  • Daniel, De la Mota, Javier, Francisco, et al., 2018. Porous-Permeable pavements promote growth and establishment and modify root depth distribution of platanus × acerifolia (aiton) willd. in simulated urban tree pits. Urban Forestry and Urban Greening, 33 (February), 27–36. doi:10.1016/j.ufug.2018.05.003.
  • El-Hassan, Hilal, Kianmehr, Peiman, and Zouaoui, Souhail, 2019. Properties of pervious concrete incorporating recycled concrete aggregates and slag. Construction and Building Materials, 212, 164–175. doi:10.1016/j.conbuildmat.2019.03.325.
  • Gaedicke, Cristián, Marines, Armando, and Miankodila, Farel, 2014. Assessing the abrasion resistance of cores in virgin and recycled aggregate pervious concrete. Construction and Building Materials, 68, 701–708. doi:10.1016/j.conbuildmat.2014.07.001.
  • Hanh, Dang, et al., 2014. A modified method for the design of pervious concrete mix. Construction and Building Materials, 73, 271–282. doi:10.1016/j.conbuildmat.2014.09.088.
  • Haselbach, Liv M., Valavala, Srinivas, and Montes, Felipe, 2006. Permeability predictions for sand-clogged Portland cement pervious concrete pavement systems. Journal of Environmental Management, 81 (1), 42–49. doi:10.1016/j.jenvman.2005.09.019.
  • Hu, Nian, et al., 2020. A field performance evaluation of the periodic maintenance for pervious concrete pavement. Journal of Cleaner Production, 263, 121463. doi:10.1016/j.jclepro.2020.121463.
  • Huang, Jinlin, Luo, Zhibin, and Ehsan Khan, Muhammad Basit, 2020. Impact of aggregate type and size and mineral admixtures on the properties of pervious concrete: An experimental investigation. Construction and Building Materials, 265, 120759. doi:10.1016/j.conbuildmat.2020.120759.
  • Hung, V.V., et al., 2021. Permeability and strength of pervious concrete according to aggregate size and blocking material. Sustainability, 13, 426. doi:10.3390/su13010426.
  • Ibrahim, Ahmed, et al., 2014. Experimental study on Portland cement pervious concrete mechanical and hydrological properties. Construction and Building Materials, 50, 524–529. doi:10.1016/j.conbuildmat.2013.09.022.
  • IS:15658-2006, 2006. Indian standard precast concrete block for paving-specification. Bureau of Indian Standards, 1–27.
  • IS : 2386 (Part IV), 2016. Methods of test for aggregates for concrete, part 4 : mechanical properties. Bureau of Indian Standards, New Delhi, 1–37.
  • IS-516, 2018. Method of tests for strength of concrete. Indian Standard, 1–30.
  • Jamshidi, Ali, et al., 2019. State-of-the-Art of interlocking concrete block pavement technology in Japan as a post-modern pavement. Construction and Building Materials, 200, 713–755. doi:10.1016/j.conbuildmat.2018.11.286.
  • Jessup, Kelsey, et al., 2021. Planting stormwater solutions: A methodology for siting nature-based solutions for pollution capture, habitat enhancement, and multiple health benefits. Urban Forestry and Urban Greening, 64, 127300. doi:10.1016/j.ufug.2021.127300.
  • Johnson, Timothy, et al., 2019. An investigation of tree growth in permeable paving. Urban Forestry and Urban Greening, 43 (March), 126374. doi:10.1016/j.ufug.2019.126374.
  • Kayhanian, Masoud, et al., 2012. Permeability measurement and scan imaging to assess clogging of pervious concrete pavements in parking lots. Journal of Environmental Management, 95 (1), 114–123. doi:10.1016/j.jenvman.2011.09.021.
  • Kia, Alalea, Wong, Hong S., and Cheeseman, Christopher R., 2017. Clogging in permeable concrete: A review. Journal of Environmental Management, 193, 221–233. doi:10.1016/j.jenvman.2017.02.018.
  • Lee, Jin-Wook, et al., 2022. Effect of clogging and cleaning on the permeability of pervious block pavements. International Journal of Pavement Engineering, 23 (9), 3147–3156. DOI: 10.1080/10298436.2021.1884861.
  • Liu, Ruyan, et al., 2020. Influence of pore structure characteristics on the mechanical and durability behavior of pervious concrete material based on image analysis. International Journal of Concrete Structures and Materials, 14 (1), 1–16. doi:10.1186/s40069-019-0376-6.
  • Lu, Guoyang, et al., 2019. Development of a sustainable pervious pavement material using recycled ceramic aggregate and bio-based polyurethane binder. Journal of Cleaner Production, 220, 1052–1060. doi:10.1016/j.jclepro.2019.02.184.
  • Monrose, John, et al., 2020. Effect of carbon-negative aggregates on the strength properties of concrete for permeable pavements. International Journal of Pavement Engineering, 21 (14), 1823–1831. doi:10.1080/10298436.2019.1567924.
  • Monrose, John, Tota-Maharaj, K., and Mwasha, A., 2021. Assessment of the physical characteristics and stormwater effluent quality of permeable pavement systems containing recycled materials. Road Materials and Pavement Design, 22 (4), 779–811. doi:10.1080/14680629.2019.1643397.
  • Moruza, Gail M, Celik Ozyildirim, H, and Culver, Teresa B, 2017. “Development of a Special Provision on the Use of Pervious Concrete As a Stormwater Management Tool in Parking Lots.”.
  • Nandi, Sumit, and Ransinchung, G. D.R.N., 2022. Laboratory investigation of Portland cement concrete paver blocks made with reclaimed asphalt pavement aggregates. Road Materials and Pavement Design, 23 (3), 546–564. doi:10.1080/14680629.2020.1830153.
  • Nguyen, Dang Hanh, et al., 2017. Durability of pervious concrete using crushed seashells. Construction and Building Materials, 135 (2017), 137–150. doi:10.1016/j.conbuildmat.2016.12.219.
  • Nielsen, Anders Busse, 2010. Urban forestry & urban greening. Urban Forestry & Urban Greening, 9 (1), 65–66. doi:10.1016/j.ufug.2009.11.002.
  • Patil, Praveenkumar, 2014. Study on the properties of pervious concrete. International Journal of Engineering Research & Technology, 3 (5), 819–823.
  • Randall, Mark, et al., 2020. Comparison of SWMM evaporation and discharge to In-field observations from lined permeable pavements. Urban Water Journal, 17 (6), 491–502. doi:10.1080/1573062X.2020.1776737.
  • Rao, Yunkang, et al., 2021. Effect of drying on clay clogging of pervious concrete. Journal of Materials in Civil Engineering, 33 (7), 1–10. doi:10.1061/(ASCE)MT.1943-5533.0003790.
  • Rezaei Lori, Ali, Bayat, Arash, and Azimi, Amirmokhtar, 2021. Influence of the replacement of fine copper slag aggregate on physical properties and abrasion resistance of pervious concrete. Road Materials and Pavement Design, 22 (4), 835–851. doi:10.1080/14680629.2019.1648311.
  • Saboo, N, et al., 2020. Effect of the use of recycled asphalt pavement (RAP) aggregates on the performance of pervious paver blocks (PPB). Construction and Building Materials, 262, 120581. doi:10.1016/j.conbuildmat.2020.120581.
  • Sahak, B., et al., 2021. Sustainable soil stabilization using combination of geotextile, fly-ash and saw dust for pavement subgrade. Archives of Materials Science and Engineering, 1 (1), 17–28. doi:10.5604/01.3001.0015.0511.
  • Seifeddine, Khaled, Amziane, Sofiane, and Toussaint, Evelyne, 2022. State of the art on the mechanical properties of pervious concrete. European Journal of Environmental and Civil Engineering, 26 (0), 7727–7755. doi:10.1080/19648189.2021.2008511.
  • Sherwani, Aryan Far H., et al., 2021. Strength, abrasion resistance and permeability of artificial fly-ash aggregate pervious concrete. Case Studies in Construction Materials, 14, e00502. doi:10.1016/j.cscm.2021.e00502.
  • Sun, Zengqing, Lin, Xiaochen, and Vollpracht, Anya, 2018. Pervious concrete made of alkali activated slag and geopolymers. Construction and Building Materials, 189, 797–803. doi:10.1016/j.conbuildmat.2018.09.067.
  • Suozzo, Mark, and Dewoolkar, Mandar M., 2014. Evaluation of strength and hydraulic testing methods of pervious concrete. ACI Materials Journal, 111 (1), 23–33. Title No. 111-M03.
  • Tang, Zhenghao, Ali, Majid, and Chouw, Nawawi, 2014. Residual compressive and shear strengths of novel coconut-fibre-reinforced- concrete interlocking blocks. Construction and Building Materials, 66, 533–540. doi:10.1016/j.conbuildmat.2014.05.094.
  • Volder, Astrid, Watson, Todd, and Viswanathan, Bhavana, 2009. Potential use of pervious concrete for maintaining existing mature trees during and after urban development. Urban Forestry and Urban Greening, 8 (4), 249–256. doi:10.1016/j.ufug.2009.08.006.
  • Wang, Hanbing, et al., 2019. Investigation on the mechanical properties and environmental impacts of pervious concrete containing fly ash based on the cement-aggregate ratio. Construction and Building Materials, 202, 387–395. doi:10.1016/j.conbuildmat.2019.01.044.
  • Wani, Ubair Nazir, and Nazeer, Mudasir, 2020. Study on strength and hydraulic conductivity of gap graded concrete. International Journal Of Scientific & Technology Research, 9, 3160–3163.
  • Ye, Xueyan, et al., 2010. Study on clogging mechanism and control methods of artificial recharge. In: International conference on challenges in environmental science and computer engineering, CESCE 2010 2, 29–32.
  • Zhang, Guofang, et al., 2020. Properties of pervious concrete with steel slag as aggregates and various mineral admixtures as binders. Construction and Building Materials, 257, 119543. doi:10.1016/j.conbuildmat.2020.119543.
  • Zhong, Rui, and Wille, Kay, 2015. Material design and characterization of high performance pervious concrete. Construction and Building Materials, 98, 51–60. doi:10.1016/j.conbuildmat.2015.08.027.

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