Page 220 - New Trends in Eco efficient and Recycled Concrete
P. 220
190 New Trends in Eco-efficient and Recycled Concrete
Sheen, Y., Wang, H., Sun, T., 2014. Properties of green concrete containing stainless steel
oxidizing slag resource materials. Constr. Build. Mater. 50, 22 27.
Sheen, Y., Le, D., Sun, T., 2015. Innovative usages of stainless steel slags in developing self-
compacting concrete. Constr. Build. Mater. 101, 268 276.
Shen, D., Wu, C., Du, J., 2009. Laboratory investigation of basic oxygen furnace slag for
substitution of aggregate in porous asphalt mixture. Constr. Build. Mater. 23, 453 461.
Shen, H., Forssberg, E., Nordstro ¨m, U., 2004. Physicochemical and mineralogical properties
of stainless steel slags oriented to metal recovery. Resour. Conserv. Recycl. 40 (3),
245 271.
Sideris, K.K., Tassos, C., Chatzopoulos, A., 2015. Production of durable self-compacting
concrete using ladle furnace slag (LFS) as filler material. Proc. Eng. 108, 592 597.
IUPAC International Symposium on Macromolecules, 1976. Solid phase synthesis of a min-
eral blockpolymer by low temperature polycondensation of aluminosilicate polymers.
In: IUPAC International Symposium on Macromolecules, Stockholm.
International Conference on Concrete Engineering and Technology, 2004. Study of the
mechanical properties of heavy weight preplaced aggregate concrete using electric arc
furnace slag as aggregate. In: International Conference on Concrete Engineering and
Technology.
Takahiro, N., Nobuaki, O., Hiroki, O., Garba-Say, Z.M., Tomohiro, N., 2015. Some consid-
erations for applicability of seawater as mixing water in concrete. J. Mater. Civil Eng.
27 (7), B4014004.
International Foundrymen Conference, 2012. The significance of iron and steel slag as by-
product for utilization in road construction. In: International Foundrymen Conference.
Tossavainen, M., Engstrom, F., Yang, Q., Menad, N., Lidstrom Larsson, M., Bjorkman, B.,
2007. Characteristics of steel slag under different cooling conditions. Waste Manage.
27, 1335 1344.
Tsakiridis, P.E., Papadimitriou, G.D., Tsivilis, S., Koroneos, C., 2008. Utilization of steel
slag for Portland cement clinker production. J. Hazard. Mater. 152, 805 811.
Tu ¨fekci, M., Demirba¸s, A., Genc, H., 1997. Evaluation of steel furnace slags as cement addi-
¸
tives. Cem. Concr. Res. 27 (11), 1713 1717.
UNESID, 2018. Unio ´n de Empresas Sideru ´rgicas. hwww.unesid.orgi.
US Department of Transportation, 2012. Use of air-cooled blast furnace slag as coarse aggre-
gate in concrete pavements. Report March 2012.
Alizadeh, R., Chini, M., Ghods, P., Hoseini, M., Montazer, S., Shekarchi, M., 2003.
Utilization of electric arc furnace slag as aggregates in concrete environmental issue.
In: Proceedings of the 6th CANMET/ACI International Conference on Recent Advances
in Concrete Technology. Bucharest, Romania.
Waligora, J., Bulteel, D., Degrugilliers, P., Damidot, D., Potdevin, J.L., Measson, M., 2010.
Chemical and mineralogical characterizations of LD converter steel slags: a multi-
analytical techniques approach. Mater. Character. 61, 39 48.
World Steel Association, 2016. Steel Industry By-Products.
World Steel Association, 2018. Web Page.
Xuequan, W., Hong, Z., Xinkai, H., Husen, L., 1999. Study on steel slag and fly ash compos-
ite Portland cement. Cem. Concr. Res. 29, 1103 1106.
Yildirim, I.Z., Prezzi, M., 2011. Chemical, mineralogical, and morphological properties of
steel slag. Adv. Civil Eng. 2011, 13.
Zhang, X., Zhang, H., He, P., Shao, L., Wang, R., Chen, R., 2008. Beneficial reuse of stain-
less steel slag and its heavy metals pollution risk. J. Environ. Sci. 21, 33 37.