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Sound-absorption and NOx-removal performances of TiO2-incorporated porous concrete made with bottom ash aggregates

  • Yoon, H.N. (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology) ;
  • Seo, Joonho (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology) ;
  • Kim, Seonhyeok (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology) ;
  • Kil, Taegeon (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology) ;
  • Jang, Daeik (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology) ;
  • Bae, Jin-Ho (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology) ;
  • Lee, H.K. (Department of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology)
  • Received : 2020.11.16
  • Accepted : 2021.05.07
  • Published : 2021.07.25

Abstract

The sound-absorption and NOx-removal performances of TiO2-incorporated porous concrete made with bottom ash aggregates were investigated. Concrete samples made with bottom ash aggregates having different paste-to-aggregate volume ratios (i.e., 0.2, 0.3 and 0.4) and TiO2 contents (i.e., 0%, 1% and 3%) were fabricated. The correlation between the voids and the mechanical strength values of concretes made with bottom ash aggregates was investigated through void ratio measurement and compressive strength tests to derive a proper aggregate size. The influence of target void and TiO2 content on the void ratio, compressive strength, sound-absorption, and NOx-removal performances of the samples was explored through compressive strength, void ratio, sound-absorption, and NOx-removal performance tests. The test results indicated that the sound-absorption and NOx-removal performances of the concrete samples were greatly influenced by the total void ratio, and the NOx-removal efficiency of the concrete samples was further promoted with an increase in the TiO2 content. These coupled effects were possibly attributed to the fact that the photocatalytic reaction is surface-oriented and can be affected by an increase in the total void ratio, increasing the available number of TiO2 particles on the surface that can facilitate the photocatalytic reaction when exposed to light.

Keywords

Acknowledgement

This study was supported by a grant (21SCIP-B149189-04) from Ministry of Land, Infrastructure and Transport (MOLIT) of Korea government and Korea Agency for Infrastructure Technology Advancement (KAIA). The authors acknowledge the use of Thermal Analysis System at the Korea Basic Science Institute Busan Center, and would like to thank Dr. H.G. Kim for assistance with Thermal Analysis System.

References

  1. ASTM C39/C39M-20 (2020), Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens, ASTM International, West Conshohocken, PA.
  2. ASTM E1050-19 (2019), Standard Test Method for Impedance and Absorption of Acoustical Materials Using a Tube, Two Microphones and a Digital Frequency Analysis System, ASTM International, West Conshohocken, PA.
  3. Arenas, C., Leiva, C., Vilches, L.F. and Cifuentes, H. (2013), "Use of co-combustion bottom ash to design an acoustic absorbing material for highway noise barriers", Waste Manage., 33(11), 2316-2321. https://doi.org/10.1016/j.wasman.2013.07.008.
  4. Arenas, C., Leiva, C., Vilches, L.F., Cifuentes, H. and RodriguezGalan, M. (2015), "Technical specifications for highway noise barriers made of coal bottom ash-based sound absorbing concrete", Constr. Build. Mater., 95, 585-591. https://doi.org/10.1016/j.conbuildmat.2015.07.107.
  5. Arenas, C., Leiva, C., Vilches, L.F. and Ganso, J.A.G. (2017), "Approaching a methodology for the development of a multilayer sound absorbing device recycling coal bottom ash", Appl. Acoust., 115, 81-87. https://doi.org/10.1016/j.apacoust.2016.08.021.
  6. Asadi, S., Hassan, M.M., Kevern, J.T. and Rupnow, T.D. (2012), "Development of photocatalytic pervious concrete pavement for air and storm water improvements", Transp. Res. Rec., 2290(1), 161-167. https://doi.org/10.3141/2290-21.
  7. Ballari, M.M. and Brouwers, H. (2013), "Full scale demonstration of air-purifying pavement", J. Hazard. Mater., 254, 406-414. https://doi.org/10.1016/j.jhazmat.2013.02.012.
  8. 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", Constr. Build. Mater., 111, 262-274. https://doi.org/10.1016/j.conbuildmat.2016.02.054.
  9. Chang, J., Yeih, W., Chung, T. and Huang, R. (2016), "Properties of pervious concrete made with electric arc furnace slag and alkali-activated slag cement", Constr. Build. Mater., 109, 34-40. https://doi.org/10.1016/j.conbuildmat.2016.01.049.
  10. Chen, J., Kou, S.C. and Poon, C.S. (2012), "Hydration and properties of nano-TiO2 blended cement composites", Cement Concrete Compos., 34(5), 642-649. https://doi.org/10.1016/j.cemconcomp.2012.02.009.
  11. Chindaprasirt, P., Hatanaka, S., Chareerat, T., Mishima, N. and Yuasa, Y. (2008), "Cement paste characteristics and porous concrete properties", Constr. Build. Mater., 22(5), 894-901. https://doi.org/10.1016/j.conbuildmat.2006.12.007.
  12. Cros, C.J., Terpeluk, A.L., Burris, L.E., Crain, N.E., Corsi, R.L. and Juenger, M.C. (2015), "Effect of weathering and traffic exposure on removal of nitrogen oxides by photocatalytic coatings on roadside concrete structures", Mater. Struct., 48(10), 3159-3171. https://doi.org/10.1617/s11527-014-0388-2.
  13. Guerrini, G.L. (2012), "Photocatalytic performances in a city tunnel in Rome: NOx monitoring results", Constr. Build. Mater., 27(1), 165-175. https://doi.org/10.1016/j.conbuildmat.2011.07.065.
  14. Hassan, M., Asadi, S., Kevern, J.T. and Rupnow, T. (2012). "Nitrogen oxide reduction and nitrate measurements on TiO2 photocatalytic pervious concrete pavement", Construction Research Congress 2012: Construction Challenges in a Flat World.
  15. He, R., Huang, X., Zhang, J., Geng, Y. and Guo, H. (2019), "Preparation and evaluation of exhaust-purifying cement concrete employing titanium dioxide", Mater., 12(13), 2182. https://doi.org/10.3390/ma12132182.
  16. International Organization for Standardization (2016), Fine Ceramics (Advanced Ceramics, Advanced Technical Ceramics)-Test Method for Air-Purification Performance of Semiconducting Photocatalytic Materials-Part1: Removal of Nitric Oxide; ISO 22197-1:2016, International Organization for Standardization: Geneva, Switzerland,.
  17. Jang, J., Kim, H., Park, S. and Lee, H.K. (2015), "The influence of sodium hydrogen carbonate on the hydration of cement", Constr. Build. Mater., 94, 746-749. https://doi.org/10.1016/j.conbuildmat.2015.07.121.
  18. Jang, J.G., Ahn, Y., Souri, H. and Lee, H.K. (2015), "A novel ecofriendly porous concrete fabricated with coal ash and geopolymeric binder: Heavy metal leaching characteristics and compressive strength", Constr. Build. Mater., 79, 173-181. https://doi.org/10.1016/j.conbuildmat.2015.01.058.
  19. Jang, J.G. and Lee, H.K. (2016), "Microstructural densification and CO2 uptake promoted by the carbonation curing of beliterich Portland cement", Cement Concrete Res., 82, 50-57. https://doi.org/10.1016/j.cemconres.2016.01.001.
  20. Juradin, S., Ostojic-Skomrlj, N., Brnas, I. and Prolic, M. (2020), "Influence of binder, aggregate and compaction techniques on the properties of single-sized pervious concrete", Adv. Concrete Cnostr., 10(3), 211-220. https://doi.org/10.12989/acc.2020.10.3.211.
  21. Karanth, S.S., Kumar, U.L. and Danigond, N. (2019), "Porous concrete with optimum fine aggregate and fibre for improved strength", Adv. Concrete Cnostr., 8(4), 305-309. https://doi.org/10.12989/acc.2019.8.4.305.
  22. Karapati, S., Giannakopoulou, T., Todorova, N., Boukos, N., Antiohos, S., Papageorgiou, D., Chaniotakis, E., Dimotikali, D. and Trapalis, C. (2014), "TiO2 functionalization for efficient NOx removal in photoactive cement", Appl. Surf. Sci., 319, 29-36. https://doi.org/10.1016/j.apsusc.2014.07.162.
  23. Kearsley, E. and Wainwright, P. (2002), "The effect of porosity on the strength of foamed concrete", Cement Concrete Res., 32(2), 233-239. https://doi.org/10.1016/S0008-8846(01)00665-2.
  24. Kim, G., Jang, J., Khalid, H.R. and Lee, H.K. (2017), "Water purification characteristics of pervious concrete fabricated with CSA cement and bottom ash aggregates", Constr. Build. Mater., 136, 1-8. https://doi.org/10.1016/j.conbuildmat.2017.01.020.
  25. Kim, G., Jang, J.G., Naeem, F. and Lee, H.K. (2015), "Heavy metal leaching, CO2 uptake and mechanical characteristics of carbonated porous concrete with alkali-activated slag and bottom ash", Int. J. Concrete Struct. Mater., 9(3), 283-294. https://doi.org/10.1007/s40069-015-0111-x.
  26. Kim, H.K., Jeon, J. and Lee, H.K. (2012), "Workability, and mechanical, acoustic and thermal properties of lightweight aggregate concrete with a high volume of entrained air", Constr. Build. Mater., 29, 193-200. https://doi.org/10.1016/j.conbuildmat.2011.08.067.
  27. Kim, H.K. and Lee, H.K. (2010), "Influence of cement flow and aggregate type on the mechanical and acoustic characteristics of porous concrete", Appl. Acoust., 71(7), 607-615. https://doi.org/10.1016/j.apacoust.2010.02.001.
  28. Korea Expressway Corporation (2013), Improvement Method of Quality Standard for Soundproof Materials.
  29. Leiva, C., Vilches, L.F., Arenas, C., Delgado, S. and FernandezPereira, C. (2012), "Potential recycling of bottom and fly ashes in acoustic mortars and concretes", ACI Mater. J., 109(5), 529.
  30. Lian, C., Zhuge, Y. and Beecham, S. (2011), "The relationship between porosity and strength for porous concrete", Constr. Build. Mater., 25(11), 4294-4298. https://doi.org/10.1016/j.conbuildmat.2011.05.005.
  31. Liu, T., Wang, Z., Zou, D., Zhou, A. and Du, J. (2019), "Strength enhancement of recycled aggregate pervious concrete using a cement paste redistribution method", Cement Concrete Res., 122, 72-82. https://doi.org/10.1016/j.cemconres.2019.05.004.
  32. Macphee, D. and Folli, A. (2016), "Photocatalytic concretes-The interface between photocatalysis and cement chemistry", Cement Concrete Res., 85, 48-54. https://doi.org/10.1016/j.cemconres.2016.03.007.
  33. Maggos, T., Plassais, A., Bartzis, J., Vasilakos, C., Moussiopoulos, N. and Bonafous, L. (2008), "Photocatalytic degradation of NOx in a pilot street canyon configuration using TiO2-mortar panels", Environ. Monit. Assess., 136(1-3), 35-44. https://doi.org/10.1007/s10661-007-9722-2.
  34. Mohammed, B.S., Liew, M.S., Alaloul, W.S., Khed, V.C., Hoong, C.Y. and Adamu, M. (2018), "Properties of nano-silica modified pervious concrete", Case Stud. Constr. Mater., 8, 409-422. https://doi.org/10.1016/j.cscm.2018.03.009.
  35. Nazari, A., Riahi, S., Riahi, S., Shamekhi, S.F. and Khademno, A. (2010), "Improvement the mechanical properties of the cementitious composite by using TiO2 nanoparticles", J. Am. Sci., 6(4), 98-101.
  36. Ngohpok, C., Sata, V., Satiennam, T., Klungboonkrong, P. and Chindaprasirt, P. (2018), "Mechanical properties, thermal conductivity, and sound absorption of pervious concrete containing recycled concrete and bottom ash aggregates", KSCE J. Civil Eng., 22(4), 1369-1376. https://doi.org/10.1007/s12205-017-0144-6.
  37. Park, H., Jeong, Y., Jun, Y., Jeong, J.H. and Oh, J.E. (2016), "Strength enhancement and pore-size refinement in clinker-free CaO-activated GGBFS systems through substitution with gypsum", Cement Concrete Compos., 68, 57-65. https://doi.org/10.1016/j.cemconcomp.2016.02.008.
  38. Park, S.B., Seo, D.S. and Lee, J. (2005), "Studies on the sound absorption characteristics of porous concrete based on the content of recycled aggregate and target void ratio", Cement Concrete Res., 35(9), 1846-1854. https://doi.org/10.1016/j.cemconres.2004.12.009.
  39. Park, S.M. and Jang, J. (2018), "Carbonation-induced weathering effect on cesium retention of cement paste", J. Nucl. Mater., 505, 159-164. https://doi.org/10.1016/j.jnucmat.2018.04.015.
  40. Rhee, I., Lee, J.S., Kim, J.B. and Kim, J.H. (2018), "Nitrogen oxides mitigation efficiency of cementitious materials incorporated with TiO2", Mater., 11(6), 877. https://doi.org/10.3390/ma11060877.
  41. Serpone, N. (2018), "Heterogeneous photocatalysis and prospects of TiO2-based photocatalytic DeNOxing the atmospheric environment", Catal., 8(11), 553. https://doi.org/10.3390/catal8110553.
  42. Shen, S.H., Burton, M., Jobson, B. and Haselbach, L. (2012), "Pervious concrete with titanium dioxide as a photocatalyst compound for a greener urban road environment", Constr. Build. Mater., 35, 874-883. https://doi.org/10.1016/j.conbuildmat.2012.04.097.
  43. Singh, M. and Siddique, R. (2014), "Strength properties and micro-structural properties of concrete containing coal bottom ash as partial replacement of fine aggregate", Constr. Build. Mater., 50, 246-256. https://doi.org/10.1016/j.conbuildmat.2013.09.026.
  44. Sobolev, K. (2016), "Modern developments related to nanotechnology and nanoengineering of concrete", Front. Struct. Civil Eng., 10(2), 131-141. https://doi.org/10.1007/s11709-016-0343-0.
  45. Tabatabaei, J. (2019), "The effect of TiO2 nanoparticles in reduction of environmental pollution in concrete structures", Adv. Concrete Cnostr., 7(2), 127. http://doi.org/10.12989/acc.2019.7.2.127.
  46. Takao, N., Xuemei, J., Isao, M. and Shigeo, S. (2001), "The influence of the sound absorption ability by the aggregate size and void ratio of porous concrete about sound absorption characteristics of porous concrete", Proc. JPN Constr. Inst.. 23(1), 163-168.
  47. Tian, B., Liu, Y., Niu, K., Li, S., Xie, J. and Li, X. (2014), "Reduction of tire-pavement noise by porous concrete pavement", J. Mater. Civil Eng., 26(2), 233-239. https://doi.org/10.1061/(ASCE)MT.1943-5533.0000809.
  48. Torres, A., Gaedicke, C., Hu, J., Bejugam, R. and McMasters, S. (2018), "Comparing design void content with actual void content of laboratory prepared pervious concrete", Mater. Sci. Appl., 9(7), 596-613. https://doi.org/10.4236/msa.2018.97043.
  49. Xu, Y., Jin, R., Hu, L., Li, B., Chen, W., Shen, J., Wu, P. and Fang, J. (2020), "Studying the mix design and investigating the photocatalytic performance of pervious concrete containing TiO2-Soaked recycled aggregates", J. Clean. Prod., 248, 119281. https://doi.org/10.1016/j.jclepro.2019.119281.
  50. Yang, L., Hakki, A., Wang, F.Z. and Macphee, D.E. (2018), "Photocatalyst efficiencies in concrete technology: The effect of photocatalyst placement", Appl. Catal. B-Environ., 222, 200-208. https://doi.org/10.1016/j.apcatb.2017.10.013.
  51. Zhang, J., Zhou, P., Liu, J. and Yu, J. (2014), "New understanding of the difference of photocatalytic activity among anatase, rutile and brookite TiO2", Phys. Chem. Chem. Phys., 16(38), 20382-20386. https://doi.org/10.1039/C4CP02201G.
  52. Zhang, M.H. and Li, H. (2011), "Pore structure and chloride permeability of concrete containing nano-particles for pavement", Constr. Build. Mater., 25(2), 608-616. https://doi.org/10.1016/j.conbuildmat.2010.07.032.
  53. Zouzelka, R. and Rathousky, J. (2017), "Photocatalytic abatement of NOx pollutants in the air using commercial functional coating with porous morphology", Appl. Catal. B-Environ.. 217, 466-476. https://doi.org/10.1016/j.apcatb.2017.06.009.