參考文獻 |
Ahmed, Y.H., and Buenfeld, N.R., “An investigation of ground granulated blastfurnace slag as a toxic waste solidification/stabilization reagent,” Environ. Eng. Sci., 14, pp. 113-132 (1997).
Aldeeb, A.A., Qasim, S.R., Puppala, A.J., and Anderson, C. F., “Physical and Engineering Properties of Treatment Plant Residuals and Disposal,” J. Am. Water Work Assoc., 95, pp. 127-137 (2003)
Ampadu, K.O., and Torii, K., “Characterization of ecocement pastes and mortars produced from incinerated ashes,” Cem. Concr. Res., 31, pp. 431-436 (2001).
Brentrup, F., Küsters, J., Kuhlmann, H., and Lammel, J., “Application of the Life Cycle Assessment methodology to agricultural production: an example of sugar beet production with different forms of nitrogen fertilizers,” Eur. J. Agron., 14, pp. 221-233 (2001).
Chancey, R.T., Stutzman, P., Juenger, M.C.G., and Fowler, D.W., “Comprehensive phase characterization of crystalline and amorphous phases of a Class F fly ash,” Cem. Concr. Res., 40, pp. 146-156 (2010).
Chen, H.X., Ma, X.W., and Dai, H.J., “Reuse of water purification sludge as raw material in cement production,” Cem. Concr. Compos., 32, pp. 436-439 (2010).
Chiang, K.Y., Chou, P.H., Hua, C.R., Chien, K.L., and Cheeseman, C., “Lightweight bricks manufactured from water treatmaent sludge and rice husks,” J. Hazard. Mater., 171, pp. 76-82 (2009).
Damineli, B.L., Kemeid, F.M., Aguiar, P.S., and John, V.M.,“Measuring the eco-efficiency of cement use,” Cem. Concr. Compos., 32, pp. 555-562 (2010).
Donatello, S., Tyrer, M., and Cheeseman, C.R., “Comparison of test methods to assess pozzolanic activity,” Cem. Concr. Compos., 32, pp. 121-127 (2010).
Eaton, A.D., Clesceri, L.S., Rice, E.W., and Greenberg, A.E., Standard Methods for the Examination of Water and Wastewater. American Public Health Association, Washington DC, USA (2005).
El-Didamony, H., Sharara, A.M., Helmy, I.M., and El-Aleem, S.A., “Hydration characteristics of β-C2S in the presence of some accelerators,” Cem. Concr. Res., 26, pp. 1179-1187 (1996).
Gallé, C., “Effect of drying on cement-based materials pore structure as identified by mercury intrusion porosimetry: A comparative study between oven-, vacuum-, and free-drying,” Cem. Concr. Res., 31, pp. 1467-1525 (2001).
Garcés, P., Carrión, M.P., García-Alcocel, E., Payá, J., Monzó, J., and Borrachero, M.V., “Mechanical and physical properties of cement blended with sewage sludge ash,” Waste Manage., 28, pp. 2495-2502 (2008).
Goedkoop, M.J., Eco-indicator 95, Final report; NOH report 9523, PRé consultants, Amersfoort, NL (1995).
Güneyisi, E., Gesoğlu, M., and Özbay, E., “Strength and drying shrinkage properties of self-compacting concretes incorporating multi-system blended mineral admixtures,” Constr. Build. Mater., 24, pp. 1878-1887 (2010).
Haselbach, L., “Potential for carbon dioxide absorption in concrete,” J. Environ. Eng., 135, pp. 465-472 (2009).
Hong, J.L., and Li, X.Z., “Environmental assessment of sewage sludge as secondary raw material in cement production– A case study in China,” Waste Manage., 31, pp. 1364-1371 (2011).
Houillon, G., and Jolliet, O., “Life cycle assessment of processes for the treatment of wastewater urban sludge: energy and global warming analysis,” J. Clean Prod., 13, pp. 287-299 (2005).
Huang, Y., and Lin, Z.S., “Investigation on phosphogypsum-steel slag-granulated blast-furnace slag-limestone cement,” Constr. Build. Mater., 24, pp. 1296-1301 (2010).
Huntzinger, D.N., and Eatmon, T.D., “A life-cycle assessment of Portland cement manufacturing: comparing the traditional process with alternative technologies,” J. Clean Prod., 17, pp. 668-675 (2009).
Isaia, G.C., Gastaldini, A.L.G., and Moraes, R., “Physical and pozzolanic action of mineral additions on the mechanical strength of high-performance concrete,” Cem. Concr. Compos., 25, pp. 69-76 (2003)
Jolliet, O., Margni, M., Charles, R., Humbert, S., Payet, J., Rebitzer, G. and Rosenbaum, R., “IMPACT 2002+: A new life cycle impact assessment methodology,” Int. J. Life Cycle Assess., 8 (6), pp. 324-330 (2003).
Josa, A., Aguado, A., Cardim, A., and Byars, E., “Comparative analysis of the life cycle impact assessment of available cement inventories in the EU,” Cem. Concr. Res., 37, pp. 781-788 (2007).
Kakali, G., Tsivilis, S., Aggeli, E., and Bati, M., “Hydration products of C3A, C3S and Portland cement in the presence of CaCO3,” Cem. Concr. Res., 30, pp. 1073-1077 (2000).
Katz, A., “Microscopic study of alkali-activated fly ash,” Cem. Concr. Res., 28, pp. 197-208 (1998).
Krammart, P., and Tangtermsirikul, S., “Properties of cement made by partially replacing cement raw materials with municipal solid waste ashes and calcium carbide waste,” Constr. Build. Mater., 18, pp. 579-583 (2004).
Lee, W.K.W., and van Deventer, J.S.J., “Chemical interactions between siliceous aggregates and low-Ca alkali-activated cements,” Cem. Concr. Res., 37, pp. 844-855 (2007).
Li, D.X., Xu, Z.Z., Luo, Z.M., Pan, Z.H., and Lin, C., “The activation and hydration of glassy cementitious materials,” Cem. Concr. Res., 32, pp. 1145-1152 (2002).
Li, G.Y., and Zhao, X.H., “Properties of concrete incorporating fly ash and ground granulated blast-furnace slag,” Cem. Concr. Compos., 25, pp. 293-299 (2003).
Li, Y.X., Chen, Y.M., Wei, J.X., He, X.Y., Zhang, H.T., and Zhang, W.S., “A study on the relationship between porosity of the cement paste with mineral additives and compressive strength of mortar based on this paste,” Cem. Concr. Res., 36, 1740-1743 (2006).
Lin, K.L., and Lin, C.Y., “Hydration characteristics of waste sludge ash utilized as raw cement material,” Cem. Concr. Res., 35, pp. 1999-2007 (2005).
Lin, K.L., Chiang, K.Y., and Lin, C.Y., “Hydration characteristics of waste sludge ash utilized that is reused in eco-cement clinkers,” Cem. Concr. Res., 35, pp. 1074-1081 (2005).
Lin, K.L., Lin, D.F., and Chao, S.J., “Effects of municipal solid waste incinerator fly ash slag on the strength and porosity of slag-blended cement pastes,” Environ. Eng. Sci., 26, pp. 1081-1086 (2009).
Lippiatt, B., and Ahmad, S., “Measuring the life-cycle environmental and economic performance of concrete: the BEES approach,” International workshop on sustainable development and concrete technology, Beijing (2004).
Liu, C.H., Lin, S.J., and Lewis, C., “Life cycle assessment of DRAM in Taiwan’s semiconductor industry,” J. Clean Prod., 18, pp. 419-425 (2010).
Lundie, S., and Peters, G..M., “Life cycle assessment of food waste management options,” J. Clean Prod., 13, pp. 275-286 (2005).
Malliou, O., Katsioti, M., Georgiadis, A., and Katsiri, A., “Properties of stabilized/solidified admixtures of cement and sewage sludge,” Cem. Concr. Compos., 29, pp. 55-61 (2007).
Mangialardi, T., Piga, L., Schena, G., and Sirini, P., “Characteristics of MSW incinerator ash for use in concrete,” Environ. Eng. Sci., 15, 291-297 (1998).
Martinez-Aguilar, O.A., Castro-Borges, P., and Escalante-García, J.I., “Hydraulic binders of Fluorgypsum-Portland cement and blast furnace slag, stability and mechanical properties,” Constr. Build. Mater., 24, pp. 631-639 (2010).
Masanet, E., Price, L., de la Rue du Can, S., and Brown, R., “Reducing greenhouse gas emissions from products manufactured in California,” Second annual climate change research conference, Sacramento, CA (2005).
Mehta, P.K., and Monteiro, P.J.M., Concrete-Structure, Properties, and Materials, 2nd ed. Prentice Hall, New Jersey (1993).
Mindess, S., Young, J.F., and Darwin, D., Concrete, 2nd ed. Prentice Hall, New Jersey, USA (2003).
Miranda, R.M., “Structural analysis of the heat affected zone of marble and limestone tiles cut by CO2 laser,” Mater. Charact., 53, pp. 411-417 (2004).
Monzó, J., Payá, J., Borrachero, M.V., and Córcoles, A., “Use of sewage sludge ash (SSA)-cement admixtures in mortars,” Cem. Concr. Res., 26, pp. 1389-1398 (1996).
Oner, A., and Akyuz, S., “An experimental study on optimum usage of GGBS for the compressive strength of concrete,” Cem. Concr. Compos., 29, pp. 505-514 (2007).
Ortiz, O., Castells, F., and Sonnemann, G., “Sustainability in the construction industry: A review of recent developments based on LCA,” Constr. Build. Mater., 23, pp. 28-39 (2009).
Ozturk, A.U., and Baradan, B., “A comparison study of porosity and compressive strength mathematical models with image analysis,” Comput. Mater. Sci., 43, pp. 974-979 (2008).
Pan, S.C., and Tseng, D.H., “Sewage sludge ash characteristics and its potential applications,” Water Sci. Technol., 44(10), pp. 261-267 (2001).
Pan, S.C., The characteristics of sewage sludge ash and its applications in cement mortar, PhD dissertation, National Central University (2002).
Pan, S.C., Tseng, D.H., and Lee, C., “Use of sewage sludge ash as fine aggregate and pozzolan in Portland cement mortar,” J. Solid Waste Technol. Manage., 28, pp. 121-130 (2002).
Papayianni, I., and Anastasiou, E., “Production of high-strength concrete using high volume of industrial by-products,” Constr. Build. Mater., 24, pp. 1412-1417 (2010).
Papayianni, I., and Stefanidou, M., “Strength-porosity relationships in lime-pozzolan mortars,” Constr. Build. Mater., 20, pp. 700-705 (2006).
Payá, J., Monzó, J., Borrachero, M.V., Mellado, A., and Ordoñez, L.M., “Determination of amorphous silica in rice husk ash by a rapid analytical method,” Cem. Concr. Res., 31, pp. 227-231 (2001).
Payá, J., Monzó, J., Borrachero, M.V., Perris, E., and Amahjour, F., “Thermogravimetric methods for determining carbon content in fly ashes,” Cem. Concr. Res., 28, pp. 675-686 (1998).
Pennington, D.W., Potting, J., Finnveden, G., Lindeijer, E., Jolliet, O., Rydberg,T., and Rebitzer, G., “Life cycle assessment Part 2: Current impact assessment practice,” Environ. Int., 30, pp. 721-739 (2004).
Pizzol, M., Christensen, P., Schmidt, J., and Thomsen, M., “Impacts of metals on human health: a comparison between nine different methodologies for Life Cycle Impact Assessment (LCIA),” J. Clean Prod., 19, pp. 646-656 (2011).
Puertas, F., García-Díaz, I., Barba, A., Gazulla, M.F., Palacios, M., Gómez, M.P., and Martínez-Ramírsz, S., “Ceramic wastes as alternative raw materials for Portland cement clinker production,” Cem. Concr. Compos., 30, pp. 798-805 (2008).
Raupp-Pereira, F., Ball, R.J., Rocha, J., Labrincha, J.A., and Allen, G.C., “New waste based clinkers: Belite and lime formulations,” Cem. Concr. Res., 38, pp. 511-521 (2008).
Rebitzer, G., Ekvall, T., Frischknecht, R., Hunkeler, D., Norris, G., Rydberg, T., Schmidt, W.-P., Suh, S., Weidema, B.P., and Pennington, D.W., “Life cycle assessment Part 1: Framework, goal and scope definition, inventory analysis, and applications,” Environ. Int., 30, pp. 701-720 (2004).
Rendek, E., Ducom, G., and Germain, P., “Influence of organic matter on municipal solid waste incinerator bottom ash carbonation,” Chemosphere, 64, pp. 1212-1218 (2006).
Rodríguez, N. H., Martínez-Ramírez, S., Blanco-Varela, M.T., Guillem, M., Puig, J., Larrotcha, E., and Flores, J., “Evaluation of spray-dried sludge from drinking water treatment plants as a prime material for clinker manufacture,” Cem. Concr. Compos., 33, pp. 267-275 (2011).
Rodríguez, N.H., Martínez Ramírez, S., Blanco-Varela, M.T., Guillem, M., Puig, J., Larrotcha, E., and Flores, J., “Re-use of drinking water treatment plant (DWTP) sludge: Characterization and technological behaviour of cement mortars with atomized sludge additions,” Cem. Concr. Res., 40, pp. 778-786 (2010).
Röβler, M., and Odler, I., “Investigations on the relationship between porosity, structure and strength of hydrated Portland cement pastes: I. Effect of porosity,” Cem. Concr. Res., 15, pp. 320-330 (1985).
Sajedi, F., and Razak, H.A., “The effect of chemical activators on early strength of ordinary Portland cement-slag mortars,” Constr. Build. Mater., 24, pp. 1944-1951 (2010).
Sakai, E., Miyahara, S., Ohsawa, S., Lee, S.H., and Daimon, M., “Hydration of fly ash cement,” Cem. Concr. Res., 35, pp. 1135-1140 (2005).
Scharai-Rad, M., and Welling, J., Environmental and energy balances of wood products and substitutes, Forestry Department, Rome (2002).
Schneider, M., Romer, M., Tschudin, M., and Bolio, H., “Sustainable cement production–present and future,” Cem. Concr. Res., 41, pp. 642-650 (2011).
Shih, P.H., Chang, J.E., and Chiang, L.C., “Replacement of raw mix in cement production by municipal solid waste incineration ash,” Cem. Concr. Res., 33, pp. 1831-1836 (2003).
Shih, P.H., Chang, J.E., Lu, H.C., and Chiang, L.C., “Reuse of heavy metal-containing sludges in cement production,” Cem. Concr. Res., 35, pp. 2110-2115 (2005).
Taylor, H.F.W., Cement Chemistry, 2nd ed. Academic Press, New York, USA (1997).
Torii, K., Tomotake, H., Osafo, A.K., and Echigo, T., “Compatibility between ecocement produced from incinerator ash and reactive aggregates in ASR expansion of mortars,” Cem. Concr. Res., 33, pp. 571-577 (2003).
Tsakiridis, P.E., Papadimitriou, G.D., Tsivilis, S., and Koroneos, C., “Utilization of steel slag for Portland cement clinker production,” J. Hazard. Mater., 152, pp. 805-811 (2008).
Valls, S., Yague, A., Vázquez, E., and Mariscal, C., “Physical and mechanical properties of concrete with added dry sludge from a sewage treatment plant,” Cem. Concr. Res., 34, pp. 2203-2208 (2004).
Wang, K.S., Chiou, I.J., Chen, C.H., and Wang, D., “Lightweight properties and pore structure of foamed material made from sewage sludge ash,” Constr. Build. Mater., 19, pp. 627-633 (2005).
Wang, S.D., and Scrivener, K.L., “Hydration products of alkali activated slag cement,” Cem. Concr. Res., 25, pp. 561-571 (1995).
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