279
Views
16
CrossRef citations to date
0
Altmetric
Original Articles

Effect of peach shell as lightweight aggregate on mechanics and creep properties of concrete

, ORCID Icon, , &
Pages 2534-2552 | Received 03 Apr 2018, Accepted 20 Aug 2018, Published online: 18 Jan 2019

References

  • Akkaoui, A., Caré, S., & Vandamme, M. (2017). Experimental and micromechanical analysis of the elastic properties of wood-aggregate concrete. Construction and Building Materials, 134, 346–357.
  • Alqahtani, F. K., Ghataora, G., Khan, M. I., & Dirar, S. (2017). Novel lightweight concrete containing manufactured plastic aggregate. Construction and Building Materials, 148, 386–397.
  • Altwair, N. M., & Kabir, S. (2010). Green concrete structures by replacing cement with pozzolanic materials to reduce greenhouse gas emissions for sustainable environment. In Proceedings of 6th International Engineering and Construction Conference (IECC’6), Cairo, Egypt (pp. 28–30).
  • Arvelakis, S., Gehrmann, H., Beckmann, M., & Koukios, E. G. (2005). Preliminary results on the ash behavior of peach stones during fluidized bed gasification: evaluation of fractionation and leaching as pre-treatments. Biomass and Bioenergy, 28(3), 331–338.
  • ASTM C330/C330M-14. (2014). Standard specification for lightweight aggregates for structural concrete.
  • Atimtay, A. T., & Kaynak, B. (2008). Co-combustion of peach and apricot stone with coal in a bubbling fluidized bed. Fuel Processing Technology, 89(2), 183–197.
  • British Standard (BS EN 206-1:2000). (2013). Concrete-Part 1: Specification, performance, production and conformity.
  • Burcak, K., Hqseyin, T., & Aysel, T. A. (2005). Peach and apricot stone combustion in a bubbling fluidized bed. Fuel Processing Technology, 86, 1175–1193.
  • Cai, M. F., He, C. M., & Liu, D. Y. (2002). Rock mechanics and engineering. Beijing: Science Press.
  • Carolina, M. G., Belén, G. F., Fernando, M. A., & Diego, C. L. (2017). Performance of mussel shell as aggregate in plain concrete. Construction and Building Materials, 139, 570–583.
  • CEB/FIP Manual of Design and Technology. (1977). Lightweight Aggregate Concrete. Lancaster, UK: The Construction Press Ltd.
  • Chinese Industry Standard (JGJ51-2002). Technical specification for lightweight aggregate concrete. Beijing: Ministry of Housing and Urban-Rural Development of the People’s Republic of China.
  • Chinese Standard (HJ776-2015). Water quality – Determination of 32 elements – Inductively coupled plasma optical emission spectrometry. Beijing: Ministry of Ecology and Environment of the People’s Republic of China.
  • Colangelo, F., Cioffi, R., Liguori, B., & Iucolano, F. (2016). Recycled polyolefins waste as aggregates for lightweight concrete. Composites Part B: Engineering, 106, 234–241.
  • Dilek, D., Andrzej W. T., & Ülker, B. (2010). A comparison study of peach stone and acrylonitrile-divinylbenzene copolymer based activated carbons as chromium (VI) sorbents. Chemical Engineering Journal, 165, 56–63.
  • Erol, M., Haykiri-Acma, H., & Küçükbayrak, S. (2010). Calorific value estimation of biomass from their proximate analyses data. Renewable Energy, 35(1), 170–173.
  • Fu, J. Q., Huang, X. F., Pan, X. J., Ma, L. P., Liu, H. P., & Ding, X. Y. (2013). Research progress on preparation of ceramisite from sediment. Bulletin of the Chinese Ceramic Society, 32(12), 2514–2527.
  • Hosseini, P., Booshehrian, A., Delkash, M., Ghavami, S., & Zanjani, M. K. (2009). Use of nano-SiO2 to improve microstructure and compressive strength of recycled aggregate concretes. In: Proceeding, nanotechnology in construction (NICOM3), (pp. 215–222). Berlin, Heidelberg: Springer.
  • Huang, C. L., Liu, C. W., Gao, Y. R., & Lu, B. W. (2015). Failure mechanism of concrete under pore water pressure. Journal of Sichuan University (Engineering Science Edition), 47(2), 76–80.
  • Huntzinger, D. N., & Eatmon, T. D. (2009). A life-cycle assessment of Portland cement manufacturing: Comparing the traditional process with alternative technologies. Journal of Cleaner Production, 17, 668–675.
  • Jiang, J. L., & Lu, J. X. (2012). Shrinkage-swelling properties of dried Chinese fir woods. Journal of Central South University of Forestry& Technology, 32(6), 152–157.
  • Kabir, S. A., Alengaram, U. J., Jumaat, M. Z., Yusoff, S., Sharmin, A., & Bashar, I. I. (2017). Performance evaluation and some durability characteristics of environmental friendly palm oil clinker based geopolymer concrete. Journal of Cleaner Production, 161, 477–492.
  • Kanadasan, J., Razak, H. A. (2015). Engineering and sustainability performance of self-compacting palm oil mill incinerated waste concrete. Journal of Cleaner Production, 89, 78–86.
  • Kanojia, A., & Jain, S. K. (2017). Performance of coconut shell as coarse aggregate in concrete. Construction and Building Materials, 140, 150–156.
  • Li, J. P., Qian, J., He, Z. B., Yi, S. L., & Zhao, Z. J. (2018). Effect of heat treatment temperature on dimensional stability and extraction of spondias. Journal of Northeast Forestry University, 46(4), 43–48.
  • Liu, D. F. (2017). Research on damage mechanism and creep properties on the sandstone under combination of axial compression and water pressure (Doctoral dissertation). Sichuan University, China.
  • Liu, P. (2016). Research on the development of peach industry in Heibei Province (Master’s thesis). Hebei Agricultural University, China.
  • Liu, X., Chen, B., & Bai, Y. X. (2015). Study on adsorption of peach core directly as a biological adsorption material on Methylene Blue in aqueous solution. Science Technology and Engineering, 15(12), 118–128.
  • Lo, T. Y., Tang, W., & Cui, H. (2007). The effects of aggregate properties on lightweight concrete. Building and Environment, 428, 3025–3029.
  • Lv, J., Bi, J. F., Zhao, X. Y., Liu, X., & Ding, Y. Y. (2012). Research progress on peach processing technology. Food & Machinery, 28(1), 268–274.
  • Martínez-García, C., González-Fonteboa, B., Martínez-Abella, F., & Carro-López, D. (2017). Performance of mussel shell as aggregate in plain concrete. Construction and Building Materials, 139, 570–583.
  • Mehta, K. P. (2001). Reducing the environmental impact of concrete. Concrete International, 23(10), 61–66.
  • Mehta, P. K., & Monteiro, P. J. (2017). Concrete microstructure, properties and materials. New York: McGraw-Hill Professional.
  • Monteiro, P. (2006). Concrete: Microstructure, properties, and materials. New York: McGraw-Hill Publishing.
  • Neville, A. M., & Brooks, J. J. (2008). Concrete technology. Pearson Education Asia Pte Ltd. Kuala Lumpur: Printed in Malaysia, PP(CTP).
  • Newman, J., & Choo, B. S. (2003). Advanced concrete technology constituent materials. Oxford: Elsevier Ltd.
  • Nguyen, D. H., Boutouil, M., Sebaibi, N., Baraud, F., & Leleyter, L. (2017). Durability of pervious concrete using crushed seashells. Construction and Building Materials, 135, 137–150.
  • Nguyen, D. H., Sebaibi, N., Boutouil, M., Baraud, F., & Leleyter, L. (2012). Valorisation de coproduits coquilliers marins en éco-pavé drainant. In Conférence international francophone de Nouveaux Matériaux et Durabilité, Toulouse, France, 19–20 Novembre.
  • Nguyen, D. H., Sebaibi, N., Boutouil, M., Leleyter, L., & Baraud, F. (2013). The use of seashell by-products in pervious concrete pavers. International Journal of Civil Science and Engineering, 7, 385–392.
  • Paola, S. D. V. M., Virginia, H. M., & Miguel, A. M. M. (2016). Plasma-surface modification vs air oxidation on carbon obtained from peach stone: Textural and chemical changes and the efficiency as adsorbents. Applied Surface Science, 384, 143–151.
  • Pelisser, F., Zavarise, N., Longo, T. A., & Bernardin, A. M. (2011). Concrete made with recycled tire rubber: Effect of alkaline activation and silica fume addition. Journal of Cleaner Production, 19, 757–763.
  • Polat, R., Demirboğa, R., Karakoç, M. B., & Türkmen, I. (2010). The influence of lightweight aggregate on the physico-mechanical properties of concrete exposed to freeze–thaw cycles. Cold Regions Science and Technology, 60(1), 51–56.
  • Sang, D., Wang, A. G., Sun, D. S., Liu, K. W., Guan, Y. M., & Wang, H. (2016). Manufacturing sintering-expanded ceramsite from industrial solid wastes. Materials Review, 30(5), 110–114.
  • Shafigh, P., Ghafari, H., Mahmud, H. B., & Jumaat, M. Z. (2014a). A comparison study of the mechanical properties and drying shrinkage of oil palm shell and expanded clay lightweight aggregate concretes. Materials & Design, 60, 320–327.
  • Shafigh, P., Mahmud, H. B., Jumaat, M. Z. B., Ahmmad, R., & Bahri, S. (2014b). Structural lightweight aggregate concrete using two types of waste from the palm oil industry as aggregate. Journal of Cleaner Production, 80, 187–196.
  • Shen, R. X., Liu, C. W., & Liu, X. F. (2010). Triaxial rheology characteristics and model of carbonaceous shale in pressure water. Chinese Journal of Geotechnical Engineering, 32(7), 1031–1034.
  • Shi, Y. M., Wei, Q., Xu, B. E., & Ren, L. (2009). Development of active carbon from peach shell by phosphoric acid process. Modern Chemical Industry, 29(2), 83–85.
  • Tam, V. W. Y. (2009). Comparing the implementation of concrete recycling in the Australian and Japanese construction industries. Journal of Cleaner Production, 17, 688–702.
  • UNI EN 206. (2014). Concrete-specification, performance, production and conformity.
  • Uysal, T., Duman, G., Onal, Y., Yasa, I., & Yanik, J. (2014). Production of activated carbon and fungicidal oil from peach stone by two-stage process. Journal of Analytical and Applied Pyrolysis, 108, 47–55.
  • Wang, J. Y., Zhao, G. J., & Takato, N. (2001). Change of brightness, chromatism and infra red spectra of compressed China fir wood during heat treatment. Journal of Beijing Forestry University, 23(1), 59–64.
  • Wang, L. R., Zhu, G. R., & Fang, W. C. (2012). Peach genetic resources in China. Beijing: China Agriculture Press.
  • Wu, F., Liu, C. W., Diao, Z. F., Feng, B., Sun, W., Li, X. L., & Zhao, S. (2018). Improvement of mechanical properties in polypropylene- and glass-fibre reinforced peach shell lightweight concrete. Advances in Materials Science and Engineering, 2018, 1–11. doi: 10.1155/2018/6250941.
  • Yang, H. X., Xu, Y., Fang, X., Wu, D. R., Long, H., & Yang, C. (2016). Analysis on element composition, cellulose content and crystallinity of the common nut shells. Journal of Anhui Agricultural Sciences, 44(17), 21–23.
  • Yang, X. S., Wu, H. P., Nayebare, K. P., Rao, J., Zhang, Y., & Sun, F. L. (2018). Preparation of crosslinked chitosan/poly (vinyl alcohol) and its construction in bamboo. Journal of Forestry Engineering, 3(3), 57–62.
  • Yap, S. P., Bu, C. H., Alengaram, U. J., Mo, K. H., & Jumaat, M. Z. (2014). Flexural toughness characteristics of steel–polypropylene hybrid fibre-reinforced oil palm shell concrete. Materials & Design, 57, 652–659.
  • Yew, M. K., Mahmud, H. B., Ang, B. C., & Yew, M. C. (2014). Effects of heat treatment on oil palm shell coarse aggregates for high strength lightweight concrete. Materials & Design (1980-2015), 54, 702–707.
  • Yildiz, S., Emiroğlu, M., & Atalar, O. (2012). Apricot pip shells used as aggregate replacement. Journal of Civil Engineering and Management, 18(3), 318–322.
  • Zhou, F., Lydon, F., & Barr, B. (1995). Effect of coarse aggregate on elastic modulus and compressive strength of high performance concrete. Cement and Concrete Research, 25(1), 177–186.
  • Zhu, H. J., Gao, Z. L., & Jiang, D. M. (2002). Study on non-burning fly ash building ceramisite. Journal of North China University of Technology, 14(1), 93–96.

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.