307
Views
13
CrossRef citations to date
0
Altmetric
Original Articles

Preparation of shale ceramsite vegetative porous concrete and its performance as a planting medium

, , , , &
Pages 2111-2126 | Received 17 May 2018, Accepted 02 May 2019, Published online: 22 May 2019

References

  • Abderrazak, Z. (2002). Technological problems of multi-performance porous concrete. Development of New Materials Session, 7, 233–241.
  • Agar-Ozbek, A. S., Weerheijm, J., Schlangen, E., & van Breugel, K. (2013). Investigating porous concrete with improved strength: Testing at different scales. Construction and Building Materials, 41, 480–490. doi:https://doi.org/10.1016/j.conbuildmat.2012.12.040
  • Ang, J., & Lihndal, E. (2017). Porous concrete design. California: Santa Clara University.
  • Azad, A., Mousavi, S. F., & Karami, H. (2018). Application of talc as an eco-friendly additive to improve the structural behavior of porous concrete. Iranian Journal of Science and Technology, Transactions of Civil Engineering, 1–11.
  • Bazhenov, Y. M., Erofeev, V. T., & Rimshin, V. I. (2016). Changes in the topology of a concrete porous space in interactions with the external medium. Engineering Solid Mechanics, 4(4), 219–225. doi:https://doi.org/10.5267/j.esm.2016.5.001
  • Betonov, V. E., & Pepel, K. I. V. (2018). Investigation of the freeze-thaw resistance of eco-porous concrete containing fly ash. Materiali in Tehnologije, 52(2), 183–188. doi:https://doi.org/10.17222/mit.2017.073
  • Bhutta, M. A. R., Tsuruta, K., & Mirza, J. (2012). Evaluation of high performance porous concrete properties. Construction and Building Materials, 31, 67–73. doi:https://doi.org/10.1016/j.conbuildmat.2011.12.024
  • Carbajo, J., Esquerdo-Lloret, T. V., & Ramis, J. (2015). Acoustic properties of porous concrete made from arlite and vermiculite lightweight aggregates. Materiales de Construcción, 65(320), 1–11.
  • Chen, S. H., Wang, H. Y., & Jhou, J. W. (2013). Investigating the properties of lightweight concrete containing high contents of recycled green building materials. Construction and Building Materials, 48, 98–103. doi:https://doi.org/10.1016/j.conbuildmat.2013.06.040
  • Chindaprasirt, P., Hatanaka, S., Chareerat, T., Mishima, N., & Yuasa, Y. (2008). Cement paste characteristics and porous concrete properties. Construction and Building Materials, 22(5), 894–901. doi:https://doi.org/10.1016/j.conbuildmat.2006.12.007
  • Choudhary, P., Nagar, B., & Chaudhary, M. (2017). Performance and manufacturing of pervious concrete. International Journal of Modern Trends in Engineering and Research, 7(4), 76–85.
  • Donald, F. B., & Peter, J. J. (1988). The release of alkalis from pulverized-fuel ashes and ground granulated blast furnace slags in the presence of Portland cements. Cement and Concrete Research, 18(2), 235–248.
  • Edvardsen, C. (2000). Green concrete-sustainable design and maintenance of concrete structures. Paper presented at Fifth Cement/ACI Inter-National Conference on Durability of Concrete, Barcelone, Vol. 6, pp. 607–617.
  • FIP. (1983). FIP manual of lightweight aggregate concrete (2nd ed.). London: Surrey University Press.
  • GB 50164-2011. (2011) Standard for quality control of concrete. Beijing: China Architecture & Building Press.
  • He, J., Huang, J., & Valeo, C. (2015). Water quality treatment efficacy model of porous concrete pavement. Journal of Water Resource and Hydraulic Engineering, 4(1–2), 159–168.
  • Hu, S. G., Wang, F. Z., & Ding, Q. J. (2002). Influence of water absorption and pre-wetted method of lightweight aggregate on the workability of concrete. Journal of Huazhong University of Science and Technology (Urban Science), 19(2), 1–4.
  • Huang, J. P. (2011). Research on preparation and properties of planting concrete of the slope protection adaptive to urban rivers in south china. Guangzhou: South China University of Technology.
  • Huo, J. F. (2009). Statusquo and development of research on lightweight aggregate concrete. Architecture Technology, 40(04), 363–365.
  • Ibrahim, A., Mahmoud, E., Yamin, M., & Patibandla, V. C. (2014). Experimental study on Portland cement pervious concrete mechanical and hydrological properties. Construction and Building Materials, 50, 524–529. doi:https://doi.org/10.1016/j.conbuildmat.2013.09.022
  • Jiang, D. M., & Wang, F. C. (2004). Application of orthogonal design in planting of environmental protection concrete. Concrete, (11), 74–77.
  • Jiang, Y. X. (2008). Research of plant growth adaptability in green growing porous concrete. Subgrade Engineering, (3), 52–55.
  • Jiang, Z. W., Sun, Z. P., & Wang, P. M. (2003). Study on autogenous relative humidity change and autogenous shrinkage of cement paste. Journal of Building Materials, 6(4), 345–349.
  • Kim, H. H., & Park, C. G. (2016). Plant growth and water purification of porous vegetation concrete formed of blast furnace slag, natural jute fiber and styrene butadiene latex. Sustainability, 8(4), 386–402. doi:https://doi.org/10.3390/su8040386
  • Klepel, O., & Taubert, M. (2019). Attempts to design porous carbon monoliths using porous concrete as a template. II. Some aspects of the pore formation mechanism. Microporous and Mesoporous Materials, 280, 243–247. doi:https://doi.org/10.1016/j.micromeso.2019.02.024
  • Koenders, E. A. B. (1997). Simulation of volume changes in hardening cement-based materials (pp. 97–99). Delft: Delft University Press.
  • Lee, K. H., & Yang, K. H. (2016). Development of a neutral cementitious material to promote vegetation concrete. Construction and Building Materials, 127, 442–449. doi:https://doi.org/10.1016/j.conbuildmat.2016.10.032
  • Li, C. Y., Lu, C. H., & Liu, R. G. (2017). Optimization of porous concrete containing admixtures on lighten road. Paper presented at Proceedings of the Second International Conference on Mechanics, Materials and Structural Engineering (ICMMSE 2017). Advances in Engineering Research, 102, 159–166.
  • Lian, C., & Zhuge, Y. (2010). Optium mix design of enhanced permeable concrete – An experimental investigation. Construction and Building Materials, 24(12), 2664–2671. doi:https://doi.org/10.1016/j.conbuildmat.2010.04.057
  • Lian, C., Zhuge, Y., & Beecham, S. (2011). The relationship between porosity and strength for porous concrete. Construction and Building Materials, 25(11), 4294–4298. doi:https://doi.org/10.1016/j.conbuildmat.2011.05.005
  • Lim, G.-G., Hong, S.-S., Kim, D.-S., Lee, B.-J., & Rho, J.-S. (1999). Slump loss control of cement paste by adding polycarboxylic type slump-releasing dispersant. Cement and Concrete Research, 29(2), 223–229. doi:https://doi.org/10.1016/S0008-8846(98)00188-4
  • Liu, H. F. (2004). Research and application of environmentally friendly VPC. Nanjing: Southeast University.
  • Lo, T. Y., & Cui, H. Z. (2004). Effect of porous lightweight aggregate on strength of concrete. Materials Letters, 58(6), 916–919. doi:https://doi.org/10.1016/j.matlet.2003.07.036
  • Malhotra, V. M. (1976). No-fines concrete-its properties and applications. Journal Proceedings, 73(11), 628–644.
  • Motoharu, T., Hiroyuki, M., & Shigemitsu, H. (2003). Design, construction and recent application of porous concrete in Japan. Paper presented at Proceedings of the JCI Symposium on Design, Construction, and Recent Applications of Porous Concrete, Japan Concrete Institute.
  • Mzuguchih, H. (1998). A review of environmentally friendly concrete. Concrete Journal, 36(3), 257–263.
  • Oh, R.-O., Cha, S.-S., Park, S.-Y., Lee, H.-J., Park, S.-W., & Park, C.-G. (2014). Mechanical properties and water purification characteristics of natural jute fiber-reinforced non-cement alkali-activated porous vegetation blocks. Paddy and Water Environment, 12(Suppl 1), 149–156. doi:https://doi.org/10.1007/s10333-014-0433-3
  • Omkar, D., & Narayanan, N. (2011). Compressive response of pervious concrete proportioned for desired porosities. Construction and Building Materials, 25(11), 4181–4189.
  • Park, S. B., & Tia, M. (2004). An experiment study on the water-purification properties of porous concrete. Cement and Concrete Research, 34(2), 177–184. doi:https://doi.org/10.1016/S0008-8846(03)00223-0
  • Saghaian Nejad, S., Abedi-Koupai, J., Mostafazadeh-Fard, S., & Behfarnia, K. (2017). Treatment of urban storm water using adsorbent porous concrete. Proceedings of the Institution of Civil Engineers-Water Management, 171(6), 328–334. doi:https://doi.org/10.1680/jwama.15.00127
  • Sumanasooriya, M. S., & 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. doi:https://doi.org/10.1016/j.cemconcomp.2011.06.002
  • Sun, D. Q., Ding, J. T., & Guo, Y. S. (2005). Comparison of water permeability and chloride penetrability between normal-weight concrete and lightweight concrete made with different lightweight aggregates. Concrete, (2), 36–38.
  • Sung, C. Y. (2006). Freezing and thawing properties of polypropylene fiber reinforced eco-concrete. Journal of the Korean Society of Agricultural Engineers, 48(2), 59–66. doi:https://doi.org/10.5389/KSAE.2006.48.2.059
  • Sung, C. Y., & Kim, Y. I. (2010). Void ratio and strength of porous polymer concrete and initial growth properties within planting block with binder contents. Journal of the Korean Society of Agricultural Engineers, 52(6), 101–110. doi:https://doi.org/10.5389/KSAE.2010.52.6.101
  • Wang, C. M. (2014). Study on preparation technology and engineering application of recycled brick planting eco-concrete. Jinan: Shandong Agricultural University.
  • Wekde. (1983). Porous concrete slabs and pavement drain water. Concrete Construction, 2012(11), 685–688.
  • Wu, L. (2011). Study on engineering application of planting grass eco-concrete. Wuhan: Wuhan University of Technology.
  • Xi, X. G., & Xu, Z. Z. (2013). Preparation of porous concrete using clay ceramsite. Architecture Technology, 44(11), 1028–1030.
  • Xu, Y. L., & Li, R. W. (2009). Planting experiment and preparation of porous concrete adapt to plants growing. New Building Materials, (2), 16–20.
  • Yanagibashi, K., & Yonezawa, T. (1998). Properties and performance of green concrete. Recent Advances in Concrete Technology, 179, 141–158.
  • Yang, J., & Jiang, G. L. (2003). Experimental study on properties of pervious concrete pavement materials. Cement and Concrete Research, 33(3), 381–386. doi:https://doi.org/10.1016/S0008-8846(02)00966-3
  • Yang, J. W., Gao, T., Yin, J., Wu, S. Y., & Liang, Q. (2018). Investigation on alkalinity reduction methods of eco-porous. Materialwissenschaft Und Werkstofftechnik, 49(9), 1108–1116. doi:https://doi.org/10.1002/mawe.201700114
  • Yang, Y. (2009). Research on the certain behavior of ceramsite concrete and the members degree of carrying capacity reliability. Changsha: Changsha University of Technology.
  • Zhang, S. B. (2011). Study on the technology of ecological slope for urban river. Guangzhou: Jinan University.
  • Zhang, W. (2012). Research on planting structure of planting concrete and formulating nutrition soil. Concrete, (11), 124–128.
  • Zheng, X. H., & Zhang, B. S. (2005). Influence of pre-wetting degree on frost-resistance of shale ceramsite concrete. Journal of Wuhan University of Technology, 27(2), 13–16.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.