References

Abali Y, Yurdusev M.A, Zeybek M.S, Kumanlioglu A.A. Using phosphogypsume and boron concentrator wastes in light brick production. Construction and Building Materials. 2007;21(1):52–56.

Abu Bakar B.H, Wan Ibrahim M.H, Megat Johari M.A. A review: durability of fired clay brick masonry wall due to salt attack. International Journal of Integrated Engineering (Issue on Civil and Environmental Engineering). 2009;1(2):52–56.

Acchar W, Dultra E.J.V, Segadães A.M. Untreated coffee husk ashes used as flux in ceramic tiles. Applied Clay Science. 2013;75–76:141–147.

Acchar W, Rulff B.M, Segadães A.M. Effect of the incorporation of a spent catalyst reject from the petroleum industry in clay products. Applied Clay Science. 2009;42(3–4):657–660.

Acchar W, Vieira F.A, Hotza D. Effect of marble and granite sludge in clay materials. Materials Science and Engineering. 2006;419(1–2):306–309.

Acosta A, Iglesias I, Aineto M, Romero M, Rincón J.M. Utilisation of IGCC slag and clay steriles in soft mud bricks (by pressing) for use in building bricks manufacturing. Waste Management. 2002;22(8):887–891.

Adie G.U, Osibanjo O. Reusability of slag from automobile battery manufacturing in fired clay building bricks: a waste-to-wealth initiative. Journal of Solid Waste Technology and Management. 2013;39(1):35–42.

Adylov G.T, Menosmanova G.S, Riskiev T.T, Rumi M.K, Faiziev S.A. Prospects for expanding the raw materials resources for ceramic production. Glass and Ceramics (English translation of Steklo i Keramika). 2010;67(1–2):63–65.

Aeslina A.K, Mohajerani A. Leachability of heavy metals from fired clay bricks incorporated with cigarette butts. Symposium on Business, Engineering and Industrial Applications. 2012:872–877.

Alonso-Santurde R, Andrés A, Viguri J.R, Raimondo M, Guarini G, Zanelli C, et al. Technological behaviour and recycling potential of spent foundry sands in clay bricks. Journal of Environmental Management. 2011;92(3):994–1002.

Alonso-Santurde R, Coz A, Quijorna N, Viguri J.R, Andrés A. Valorization of Foundry Sand in Clay Bricks at industrial scale. Journal of Industrial Ecology. 2010;14(2):217–230.

Anderson M, Elliott M, Hickson C. Factory-scale proving trials using combined mixtures of three by-product wastes (including incinerated sewage sludge ash) in clay building bricks. Journal of Chemical Technology and Biotechnology. 2002;77(3):345–351.

Aripin H, Lestari L, Agusu L, Sudiana I.N, Jumsiah N, Rahmatia I, Sunendar B, Nurdiwijayanto L, Mitsudo S, Sabchevski S. Preparation of porous ceramic with controllable additive and firing temperature. Advanced Materials Research. 2011;277:151–158.

Arsenovic M, Radojevic Z, Stankovic S. Removal of toxic metals from industrial sludge by fixing in brick structure. Construction and Building Materials. 2012;37:7–14.

Bantsis G, Sikalidis C, Betsiou M, Yioultsis T, Bourliva A. Ceramic building materials for electromagnetic interference shielding using metallurgical slags. Advances in Applied Ceramics. 2011;110(4):233–237.

Barbieri L, Andreola F, Lancellotti I, Taurino R. Management of agricultural biomass wastes: preliminary study on characterization and valorisation in clay matrix bricks. Waste Management. 2013;33(11):2307–2315.

Baruzzo D, Minichelli D, Bruckner S, Fedrizzi L, Bachiorrini A, Maschio S. Possible production of ceramic tiles from marine dredging spoils alone and mixed with other waste materials. Journal of Hazardous Materials. 2006;134(1–3):202–210.

Basegio T, Berutti F, Bernardes A, Bergmann C.P. Environmental and technical aspects of the utilisation of tannery sludge as a raw material for clay products. Journal of the European Ceramic Society. 2002;22(13):2251–2259.

Baspinar M.S, Demir I, Orhan M. Utilization potential of silica fume in fired clay bricks. Waste Management and Research. 2010;28(2):149–157.

Baspinar M.S, Kahraman E, Gökhan G, Demir I. Production of fired construction brick from high sulfate-containing fly ash with boric acid addition. Waste Management and Research. 2010;28(1):4–10.

Blanco I, Rodas M, Sánchez C.J, Dondi M, Alonso-Azcárate J. Technological characterization and ceramic application of gravel pit by-products from middle-course Jarama river deposits (central Spain). Applied Clay Science. 2005;28(1–4):283–295.

BREF. European Commission. Reference document on best available techniques in the ceramic manufacturing industry. 2007 Information on http://eippcb.jcr.es.

Campos L.F.A, Menezes R.R, Lisboa D, Santana L.N.L, Neves G.A, Ferreira H.C. Experimental design to maximize the waste content in ceramic bricks and tiles. Cerâmica. 2007;53:373–380.

Campos M, Velasco F, Martínez M.A, Torralba J.M. Recovered slate waste as raw material for manufacturing sintered structural tiles. Journal of European Ceramic Society. 2004;24(5):811–819.

Chan C. Effect of natural fibres inclusion in clay bricks: physico-mechanical properties. World Academy of Science, Engineering and Technology. 2011;73:51–57.

Chidiac S.E, Federico L.M. Effects of waste glass additions on the properties and durability of fired clay brick. Canadian Journal of Civil Engineering. 2007;34(11):1458–1466.

Christogerou A, Kavas T, Pontikes Y, Koyas S, Tabak Y, Angelopoulos G.N. Use of boron wastes in the production of heavy clay ceramics. Ceramics International. 2009;35(1):447–452.

Construction Products Association (CPA)the British Board of Agreement (BBA)British Standards Institution (BSI)FBE Management Limited in consultation with the Trading Standards Institute (TSI). Guidance on products regulations (2012). 2012 Information on http://www.constructionproducts.org.uk.

Construction Products Regulation (CPR). Methods of the performance of construction products, 305/2011/EC.

Corpas-Iglesias F.A, Pérez-Villarejo L, Benítez Guerrero M, Artiaga Díaz R, Pascual Cosp J. Use of mud from metallic surface treatment industries as additive to ceramic matrices. Boletín de la Sociedad Española de Cerámica y Vidrio. 2011;50(3):117–124.

Correia S.L, Hotza D, Segadães A.M. Simultaneous optimization of linear firing shrinkage and water absorption of triaxial ceramic bodies using experiments design. Ceramic International. 2004;30(6):917–922.

Correia S.L, Hotza D, Segadães A.M. Optimizing mechanical strength and bulk density of dry ceramic bodies through mixture design. Boletin de la Sociedad Espanola de Cerámica y Vidrio. 2005;44(1):53–58.

Correia S.L, Dienstmann G, Folgueras M.V, Segadães A.M. Effect of quartz sand replacement by agate rejects in triaxial porcelain. Journal of Hazardous Materials. 2009;163(1):315–322.

Correia S.L, Hotza D, Segadães A.M. Predicting porosity content in triaxial porcelain bodies as a function of raw materials contents. Journal of Materials Science. 2008;43(2):696–701.

Couto D.M.S, Silva R.F, Castro F, Labrincha J.A. Attempts of incorporation of metal plating sludges in ceramic products. Industrial Ceramics. 2001;21(3):163–168.

Cultrone G, Sebastián E. Fly ash addition in clayey materials to improve the quality of solid bricks. Construction and Building Materials. 2009;23(2):1178–1184.

Cusidó J.A, Cremades L.V, González M. Gaseous emissions from ceramics manufactured with urban sewage sludge during firing processes. Waste Management. 2003;23(3):273–280.

Cusidó J.A, Soriano C. Valorization of pellets from municipal WWTP sludge in lightweight clay ceramics. Waste Management. 2011;31(6):1372–1380.

Demir I. An investigation on the production of construction brick with processed waste tea. Building and Environment. 2006;41(9):1274–1278.

Demir I. Effect of organic residues addition on the technological properties of clay bricks. Waste Management. 2008;28(3):622–627.

Demir I, Baspinar M.S, Orhan M. Utilization of kraft pulp production residues in clay brick production. Building and Environment. 2005;40(11):1533–1537.

Demir I, Orhan M. Reuse of waste bricks in the production line. Building and Environment. 2003;38(12):1451–1455.

Deutches Institut fur Bautechnik (DIBt). Principles for assessing the effects of building products on soil and groundwater. 2009.

Devant M, Cusidó J.A, Soriano C. Custom formulation of red ceramics with clay, sewage sludge and forest waste. Applied Clay Science. 2011;53(4):669–675.

Dhanapandian S, Shanthi M. Utilization of marble and granite wastes in brick products. Journal of Industrial Pollution Control. 2009;25(2):155–160.

Dondi M, Ercolani G, Guarini G, Raimondo M, Ruffini A. Orimulsion fly ash in clay bricks–part 2: prospects and limitations. Waste Management and the Environment. 2002:547–556.

Dondi M, Ercolani G, Guarini G, Raimondo M, Ruffini A. Orimulsion fly ash in clay bricks–part 3: chemical stability of ash-bearing products. Waste Management and the Environment. 2002:547–556.

Dondi M, Guarini G, Raimondo M, Zanelli C. Recycling PC and TV waste glass in clay bricks and roof tiles. Waste Management. 2009;29(6):1945–1951.

Dondi M, Guarini G, Raimondo M, Zanelli C, Fabbriche D.D, Agostini A. Recycling the insoluble residue from titania slag dissolution (tionite) in clay bricks. Ceramics International. 2010;36(8):2461–2467.

Ducman V, Kopar T, Sanchez E. Possible use of the rejects from the polishing of granite in the production of bricks. Applied Clay Science. 2005;36(1):1–6.

Das S.K, Kumar S, Ramachandrarao P. Exploitation of iron ore tailing for the development of ceramic tiles. Waste Management. 2000;20(8):725–729.

De La Casa J.A, Lorite M, Jiménez J, Castro E. Valorisation of wastewater from two-phase olive oil extraction in fired clay brick production. Journal of Hazardous Materials. 2009;169(1–3):271–278.

Eco-Innovation Observatory. The eco-innovation challenge. 2010 Annual report 2010. Information on http://www.eco-innovation.eu.

Elías X. Reciclaje de residuos industriales, Residuos sólidos urbanos y fangos de depuradora. Ed. Díaz de Santos. 2009 Spain, p. 1295.

Eliche-Quesada D, Martínez-García C, Martínez-Cartas M.L, Cotes-Palomino M.T, Pérez-Villarejo L, Cruz-Pérez N, Corpas-Iglesias F.A. The use of different forms of waste in the manufacture of ceramic bricks. Applied Clay Science. 2011;52(3):270–276.

Eliche-Quesada D, Martínez-Martínez S, Pérez-Villarejo L, Iglesias-Godino F.J, Martínez-García C, Corpas-Iglesias F.A. Valorization of biodiesel production residues in making porous clay brick. Fuel Processing Technology. 2012;103:166–173.

El-Mahllawy M.S. Characteristics of acid resisting bricks made from quarry residues and waste steel slag. Construction and Building Materials. 2008;22(8):1887–1896.

EU. European Comminication from the Commision to the European Parliament, the Council, the European Economic and Social Committee, the Committee of the Regions. A resource-efficient Europe-Flagship initiative under the Europe 2020 strategy. COM. 2011;2011:21 Brussels, 26.1.2011a.

European Commission. Harmonised European standards. Declaration of performance (DoP) and CE marking. 2013 Information on http://ec.europa.eu/enterprise/sectors/construction/declaration-of-performance/european-standards/index_en.htm.

EWC. The European waste catalogue. Environmental protection agency; 2002 Information on http://www.epa.ie.

Faria Jr. R.T, Souza V.P, Cosin S, Toledo R, Vargas H. Characterization of clay ceramics based on the recycling of industrial residues – on the use of photothermal techniques to determine ceramic thermal properties and gas emissions during the clay firing process. In: Sikalidis C, ed. Advances in ceramics – Characterization, raw Materials, processing, properties, degradation and healing. 2011 ISBN:978-953-307-504-4.

Faria Jr. R.T, Souza V.P, Cosin S, Toledo R, Vargas H. Gas emission and structural changes in the firing of red clay ceramics with addition of sanitary ware mass wastes. Advances in Ceramics. 2012;11:225–228.

Fernández-Pereira C, De La Casa J.A, Gómez-Barea A, Arroyo F, Leiva C, Luna Y. Application of biomass gasification fly ash for brick manufacturing. Fuel. 2011;90(1):220–232.

Furlani E, Tonello G, Maschio S. Recycling of steel slag and glass cullet from energy saving lamps by fast firing production of ceramics. Waste Management. 2010;30(8-9):1714–1719.

Furlani E, Tonello G, Aneggi E, Maschio S. Possible use of waste olivine powders from a foundry process into the ceramic industry: sintering behaviour of olivine, kaolin and their blends. Ceramics International. 2013;39(2):1257–1263.

Gao. Method for manufacturing water permeable brick by using sugar filter mud. 2012 CN patent application 102557712.

Garcia-Ubaque C.A, Giraldo L, Moreno-Piraján J.C. Quality study of ceramic bricks manufacture with clay and ashes from the incineration of municipal solid wastes. Afinidad. 2013;70(561):57–63.

González I, Galán E, Miras A. Fluorine, chlorine and sulphur emissions from the Andalusian ceramic industry (Spain)–proposal for their reduction and estimation of threshold emission values. Applied Clay Science. 2006;32:153–171.

Green Leaf Bricks. (2014). Information on http://www.greenleafbrick.com/.

Haiying Z, Youcai Z, Jingyu Q. Utilization of municipal solid waste incineration (MSWI) fly ash in ceramic brick: product characterization and environmental toxicity. Waste Management. 2011;31(2):331–341.

Hamer K, Karius V. Brick production with dredged harbour sediments. An industrial-scale experiment. Waste Management. 2002;22:521–530.

He H, Yue Q, Qi Y, Gao B, Zhao Y, Yu H, et al. The effect of incorporation of red mud on the properties of clay ceramic bodies. Applied Clay Science. 2012;70:67–73.

Herek L.C.S, Hori C.E, Reis M.H.M, Mora N.D, Tavares C.R.G, Bergamasco R. Characterization of ceramic bricks incorporated with textile laundry sludge. Ceramics International. 2012;38(2):951–959.

Ibanga E.J, Ahmed A.D. Influence of particle size and firing temperature on burnt properties of rice/clay mix. The Pacific Journal of Science and Technology. 2007;8(2):267–271.

IPPC. Reference document on best available techniques in the ceramic manufacturing industry. 2007.

IPPC. Directive 2008/1/EC of the European Parliament and of the Council of 15 January 2008 concerning integrated pollution prevention and control. 2008.

Jianshun L. Archaized bricks produced by using polished brick factory waste materials and preparation method thereof. April 17, 2013 CN patent application 20121576952 A.

Jiun-Rung C, Takahiro N, Hocheng Corp. The sintered body of continuous through holes using industrial waste and unused resources as major raw materials. July 11, 2000 TW patent application 397718 B.

Jordán M.M, Almendro-Candel M.B, Romero M, Rincón J.M. Application of sewage sludge in the manufacturing of ceramic tile bodies. Applied Clay Science. 2005;30(3–4):219–224.

Junkes J.A, Carvalho M.A, Segadães A.M, Hotza D. Ceramic tile formulations from industrial waste. InterCeram: International Ceramic Review. 2011;60(1):36–41.

Junnosuke K, Junnosuke Yasuhiro. Manufacturing method of board such as laminated tile, brick, tile and board such as laminated tile, brick, tile. September 02, 2004 JP patent applicant 2004243714 A.

Kadir A.A, Mohajerani A. Possible utilization of cigarette butts in lightweight fired clay bricks. Proceeding of World Academy of Science, Engineering and Technology. 2010;35 pp. 153–155.

Kadir A.A, Mohajerani A. Recycling cigarette butts in lightweight fired clay bricks. Proceedings of Institution of Civil Engineers: Construction Materials. 2011;164(5):219–229.

Karamanova E, Avdeev G, Karamanov A. Ceramics from blast furnace slag, kaolin and quartz. Journal of the European Ceramic Society. 2011;31(6):989–998.

Karius V, Hamer K. pH and grain-size variation in leaching tests with bricks made of harbour sediments compared to commercial bricks. Science of the Total Environment. 2001;278(1–3):73–85.

Kavas T. Use of boron waste as a fluxing agent in production of red mud brick. Building and Environment. 2006;41(12):1779–1783.

Kizinievic O, Žurauskiene R, Kizinievic V, Žurauskas R. Utilisation of sludge waste from water treatment for ceramic products. Construction and Building Materials. 2013;41:464–473.

Koukouzas N, Ketikidis C, Itskos G, Spiliotis X, Karayannis V, Papapolymerou G. Synthesis of CFB-coal fly ash clay bricks and their characterisation. Waste and Biomass Valorization. 2011;2(1):87–94.

Kurama S, Kara A, Kurama H. The effect of boron waste in phase and microstructural development of a terracotta body during firing. Journal of the European Ceramic Society. 2006;26(4–5):755–760.

Kurama S, Kara A, Kurama H. Investigation of borax waste behaviour in tile production. Journal of the European Ceramic Society. 2007;27(2–3):1715–1720.

Kute S, Deodhar S.V. Effect of fly ash and temperature on properties of burnt clay bricks. Journal of the Institution of Engineers (India): Civil Engineering Division. 2002;84(2):82–85.

Lafhaj Z, Samara M, Agostini F, Boucard L, Skoczylas F, Depelsenaire G. Polluted river sediments from the North region of France: treatment with Novosol® process and valorization in clay bricks. Construction and Building Materials. 2008;22(5):755–762.

La Rubia M.D, Rodríguez A.Y, Eliche-Quesada D, Corpas-Iglesias F.A. Efecto de la incorporación de alpeorujo en la fabricación de ladrillos de arcilla. Revista de la Sociedad Española de Mineralogía. 2010;13:135–136.

Lemeshev V.G, Gubin I.K, Savelev Y.A, Tumanov D.V, Lemeshev D.O. Utilization of coal-mining waste in the production of building ceramic materials. Glass and Ceramics (English translation of Steklo i Keramika). 2004;61(9–10):308–311.

Life Project. EcoBrick – Manufacturing sand-limestone. Bricks, recycling energy and organics from sewage sludge (2008). 2008 LIFE08 ENV/D/000029. Information on http://ec.europa.eu/environment/life/project/Projects/index.cfm?fuseaction=search.dspPage&n_proj_id=3447.

Lin C, Huizhou O Meet Environmental. Sludge brick and preparing method thereof. December 16, 2009 CN patent application 101603346 A.

Lin D, Weng C. Use of sewage sludge ash as brick material. Journal of Environmental Engineering. 2001;127(10):922–927.

Lin K.L. Feasibility study of using brick made from municipal solid waste incinerator fly ash slag. Journal of Hazardous Materials. 2006;137(3):1810–1816.

Lingling X, Wei G, Tao W, Nanru Y. Study on fired bricks with replacing clay by fly ash in high volume ratio. Construction and Building Materials. 2005;19(3):243–247.

Little M.R, Adell V, Boccaccini A.R, Cheeseman C.R. Production of novel ceramic materials from coal fly ash and metal finishing wastes. Resources, Conservation and Recycling. 2008;52(11):1329–1335.

Liu Y, Gu X, Jingdezhen Ceramic Inst. Method for preparing water permeable brick with vitrified tile waste and product obtained. September 09, 2009 CN patent applicant 101525241 A.

Loryuenyong V, Panyachai T, Kaewsimork K, Siritai C. Effects of recycled glass substitution on the physical and mechanical properties of clay bricks. Waste Management. 2009;29(10):2717–2721.

Malaiskiene J, Maciulaitis R, Kicaite A. Dependence of ceramics physical – mechanical properties on chemical and mineralogical composition. Construction and Building Materials. 2011;25(8):3168–3174.

Martelon E, Jarrige J, Ribeiro M.J, Ferreira J.M, Labrincha J.A. New clay-based ceramic formulations containing different solid wastes. Industrial Ceramics. 2000;20(2):75–76.

Martínez M.L, Eliche D, Cruz N, Corpas F.A. Utilization of bagasse from the beer industry in clay brick production for building. Materiales de Construcción. 2012;62(306):199–212.

Martínez-García C, Eliche-Quesada D, Pérez-Villarejo L, Iglesias-Godino F.J, Corpas-Iglesias F.A. Sludge valorization from wastewater treatment plant to its application on the ceramic industry. Journal of Environmental Management. 2012;95:S343–S348.

Maschio S, Furlani E, Tonello G, Faraone N, Aneggi E, Minichelli D, Fedrizzi L, Bachiorrini A, Bruckner S. Fast firing of tiles containing paper mill sludge, glass cullet and clay. Waste Management. 2009;29(11):2880–2885.

Mekki H, Anderson M, Benzina M, Ammar E. Valorization of olive mill wastewater by its incorporation in building bricks. Journal of Hazardous Materials. 2008;158(2–3):308–315.

Menezes R.R, De Almeida R.R, Santana L.N.L, Neves G.A, Lira H.L, Ferreira H.C. Analysis of the use of kaolin processing waste and granite sawing waste together for the production of ceramic bricks and roof tiles. Cerâmica. 2007;53(326):192–195.

Menezes R, Farias F, Oliveira M.F, Santana L.N.L, Neves G.A, Lira H.L, Ferreira H.C. Kaolin processing waste applied in the manufacturing of ceramic tiles and mullite bodies. Waste Management and Research. 2009;27(1):78–86.

Menezes R.R, Ferreira H.S, Neves H.C, Ferreira H.C. Uso de rejeitos de granitos como matérias-primas cerámicas. Cerâmica. 2002;48(306):92–101.

Menezes R.R, Ferreira H.S, Neves G.A, Lira H.D.L, Ferreira H.C. Use of granite sawing wastes in the production of ceramic bricks and tiles. Journal of the European Ceramic Society. 2005;25(7):1149–1158.

Menezes R.R, Neto H.G.M, Santana L.N.L, Lira H.L, Ferreira H.S, Neves G.A. Optimization of wastes content in ceramic tiles using statistical design of mixture experiments. Journal of the European Ceramic Society. 2008;28(16):3027–3039.

Merino I, Arévalo L.F, Romero F. Preparation and characterization of ceramic products by thermal treatment of sewage sludge ashes mixed with different additives. Waste Management. 2007;27(12):1829–1844.

Methods of test of burnt clay building bricks. 1992 IS, 3495.

Monteiro R.C.C, Lima M.M.R.A, Alves S. Mechanical characteristics of clay structural ceramics containing coal fly ash. International Journal of Mechanics and Materials in Design. 2008;4(2):213–220.

Monteiro S.N, Alexandre J, Margem J.I, Sánchez R, Vieira C.M.F. Incorporation of sludge waste from water treatment plant into red ceramic. Construction and Building Materials. 2008;22(6):1281–1287.

Monteiro S.N, Peçanha L.A, Vieira C.M.F. Reformulation of roofing tiles body with addition of granite waste from sawing operations. Journal of the European Ceramic Society. 2004;24(8):2349–2356.

Monteiro S.N, Silva F.A.N, Vieira C.M.F. Microstructural evaluation of a clay ceramic incorporated with petroleum waste. Applied Clay Science. 2006;33(3–4):171–180.

Montero M.A, Jordán M.M, Hernández-Crespo M.S, Sanfeliu T. The use of sewage sludge and marble residues in the manufacture of ceramic tile bodies. Applied Clay Science. 2009;46(4):404–408.

Moon L.S. Construction materials, tripods for breakwater and cubstones using bio-balls made of waste limestone and sludge, and manufacture thereof. May 22, 2003 KR patent application 20030039390 A.

Moreira J.M.S, Manhães J.P.V.T, Holanda J.N.F. Processing of red ceramic using ornamental rock powder waste. Journal of Materials Processing Technology. 2008;196(1–3):88–93.

Mothé C.G, Ambrósio M.C.R. Processes occurring during the sintering of porous ceramic materials by TG/DSC. Journal of Thermal Analysis and Calorimetry. 2007;87(3):819–822.

OJEU. Official Journal of the European Communities (1989) Council Directive 89/106/EEC of 21 December 1989 on the approximation of laws, regulations and administrative provisions of the Member States relating to construction products. Official Journal of the European Communities. February 11, 1989 L40.

OJEU. Official Journal of the European Unions (2011) Regulation (EU) No 305/2011 of the European Parliament and of the Council of 9 March 2011 laying down harmonized conditions for the marketing of construction products and repealing Council Directive 89/106/EEC. Official Journal of the European Union. April 4, 2011 L 8875–43.

Olgun A, Erdogan Y, Ayhan Y, Zeybek B. Development of ceramic tiles from coal fly ash and tincal ore waste. Ceramics International. 2005;31(1):153–158.

Oliveira G.E, Holanda J.N.F. Análise do impacto ambiental causado pela utiliçao de residuo sólido do sector siderúrgico em cerámica vermelha. Cerâmica. 2004;50:185–189.

Ozdemir I, Yilmaz S. Processing of unglazed ceramic tiles from blast furnace slag. Journal of Materials Processing Technology. 2007;183(1):13–17.

Özkan I, Çolak M, Oyman R.E. Characterization of waste clay from the Sardes (Salihli) placer gold mine and its utilization in floor-tile manufacture. Applied Clay Science. 2010;49(4):420–425.

Pérez-Villarejo L, Eliche-Quesada D, Iglesias- Godino F.J, Martínez-García C, Corpas-Iglesias F.A. Recycling of ash from biomass incinerator in clay matrix to produce ceramic bricks. Journal of Environmental Management. 2012;95:S349–S354.

Petavratzi E, Barton. Characterization of mineral wastes, resources and processing technologies Heavy ceramic (brick). School of Civil Engineering. University of Leeds; 2007.

Pinheiro B.C.A, Holanda J.N.F. Processing of red ceramics incorporated with encapsulated petroleum waste. Journal of Materials Processing Technology. 2009;209(15–16):5606–5610.

Quaranta N.E, Lalla N.S, Caligaris M.G, Boccaccini A.R, Vieira C.M. Ceramic tiles adding waste foundry sand to different clays. WIT Transactions on Ecology and the Environment. 2010;140:99–108.

Quijorna N, Andrés A. Incorporación de escoria Waelz al sector cerámico al sector cerámico: ejemplo de ecología industrial (Ph.D. thesis). Departamento de Ingeniería Química y Química Inorgánica. Universidad de Cantabria; 2013.

Quijorna N, Coz A, Andrés A. Recycling of Waelz slag and waste foundry sand in red clay bricks. Resources, Conservation and Recycling. 2012;65:1–10.

Quijorna N, de Pedro M, Romero M, Andrés A. Characterisation of the sintering behaviour of Waelz slag from electric arc furnace (EAF) dust recycling for use in the clay ceramics industry. Journal of Environmental Management. 2014;65:1–10.

Quijorna N, Miguel G.S, Andrés A. Incorporation of Waelz slag into commercial ceramic bricks: a practical example of industrial ecology. Industrial and Engineering Chemistry Research. 2011;50(9):5806–5814.

Ramadan A.M, Saleh A.M, Taha T.A, Moharam M.R. An attempt to improve mechanical properties of brick produced from El-Maghara coal washing plant waste. Physicochemical Problems of Mineral Processing. 2001;35:153–160.

Rego S. Utilisation of industrial waste flyash as an adulterant to clay for the manufacture of mangalore roofing tiles. Journal of Solid Waste Technology and Management. 2009;35(3):169–180.

Romero M, Andrés A, Alonso R, Viguri J, Rincón J.M. Sintering behaviour of ceramic bodies from contaminated marine sediments. Ceramics International. 2008;34(8):1917–1924.

Romero M, Andrés A, Alonso R, Viguri J, Rincón J.M. Phase evolution and microstructural characterization of sintered ceramic bodies from contaminated marine sediments. Journal of the European Ceramic Society. 2009;29(1):15–22.

Ruan K. Red mud and fly ash fireproof insulation brick. August 26, 2009 CN patent application 101514110 A.

Saboya Jr. F, Xavier G.C, Alexandre J. The use of the powder marble by-product to enhance the properties of brick ceramic. Construction and Building Materials. 2007;21(10):1950–1960.

Samara M, Lafhaj Z, Chapiseau C. Valorization of stabilized river sediments in fired clay bricks: factory scale experiment. Journal of Hazardous Materials. 2009;163(2–3):701–710.

Sarani A.A, Kadir A.A. Thermal conductivity of fired clay bricks incorporated with cigarette butts. Advanced Materials Research. 2013;690–693:919–924.

Segadães A.M, Carvalho M.A, Acchar W. Using marble and granite rejects to enhance the processing of clay products. Applied Clay Science. 2005;30(1):42–52.

Segadães A.M. Use of phase diagrams to guide ceramic production from wastes. Advanced Applied Ceramic. 2006;105(1):46–54.

Shih P, Wu Z, Chiang H. Characteristics of bricks made from waste steel slag. Waste Management. 2004;24(10):1043–1047.

Shin D, Kim K. Preparation of fired bricks as construction materials by replacing clay with municipal incinerator residue slag. Journal of Ceramic Processing Research. 2009;10(6):739–743.

Shukla S.K, Kumar V, Mudgal M, Morchhale R.K, Bansal M.C. Utilization of concentrate of membrane filtration of bleach plant effluent in brick production. Journal of Hazardous Materials. 2010;184(1–3):585–590.

Sikalidis C, Zaspalis V. Utilization of Mn-Fe solid wastes from electrolytic MnO2 production in the manufacture of ceramic building products. Construction and Building Materials. 2007;21(5):1061–1068.

Singh I.B, Chaturvedi K, Morchhale R.K, Yegneswaran A.H. Thermal treatment of toxic metals of industrial hazardous wastes with fly ash and clay. Journal of Hazardous Materials. 2007;141(1):215–222.

Smith A, Materials from Alternative, Recycled and Secondary Sources (MARSS). A review of the use of non-primary clay raw materials in the UK brick manufacturing sector. 2005–2010.

Souza G.P, Santos R.S, Holanda J.N.F. Recycling of a petroleum waste in ceramic bodies. Materials Science Forum. 2003;416:743–747.

Souza V.P, Toledo R, Holanda J.N.F, Vargas H, Faria Jr.R.T. Pollutant gas analysis evolved during firing of red ceramic incorporated with water treatment plant sludge. Ceramica. 2008;54(331):351–355.

Suk L.J. Preparation method of bricks using marine clay. February 26, 2001 KR patent application 20010014496 A.

Sutcu M, Akkurt S. The use of recycled paper processing residues in making porous brick with reduced thermal conductivity. Ceramics International. 2009;35(7):2625–2631.

Svatovskaja L.B, Maslennikova L.L, Zueva N.A, Abu-Khasan M. Ceramic mass. October 20, 2007 RU patent application 2308439 C1.

Sviderskii V.A, Strashnenko S.V, Chernyak L.P. Ceramics from mining by-products and alumina production wastes. Glass and Ceramic. 2007;64(2):51–54.

Szoke A, Muntean M. Sludge recycling in ceramic matrix. Environmental Engineering and Management Journal. 2009;8(4):907–909.

Tang Q, Lu B, Foshan Oceano Ceramics Co Ltd. Method for producing ceramic tile by metallurgical steel slag. April 18, 2009 CN patent application 101386528 A.

Teixeira S.R, De Souza A.E, De Almeida Santos G.T, Peña A.F.V, Miguel A.G. Sugarcane bagasse ash as a potential quartz replacement in red ceramic. Journal of the American Ceramic Society. 2008;91(6):1883–1887.

Teixeira S.R, Santos G.T.A, Souza A.E, Alessio P, Souza S.A, Souza N.R. The effect of incorporation of a Brazilian water treatment plant sludge on the properties of ceramic materials. Applied Clay Science. 2011;53(4):561–565.

Torres P, Manjate R.S, Quaresma S, Fernandes H.R, Ferreira J.M.F. Development of ceramic floor tile compositions based on quartzite and granite sludges. Journal of the European Ceramic Society. 2007;27(16):4649–4655.

Uslu T, Arol A.I. Use of boron waste as an additive in red bricks. Waste Management. 2004;24(2):217–220.

Valanciene V. Utilization of meat and bone meal bottom ash in ceramics. Medziagotyra. 2011;17(1):86–92.

Vichaphund S, Intiya W, Kongkaew A, Loykulnant S, Thavorniti P. Utilization of sludge waste from natural rubber manufacturing process as a raw material for clay-ceramic production. Environmental Technology (United Kingdom). 2012;33(22):2507–2510.

Vieira C.M.F, De Souza E.T.A, Monteiro S.N. Influence of grog addition on a clay body used in red ceramic products. Industrial Ceramics. 2004;24(2):85–89.

Vieira C.M.F, Monteiro S.N. Characterization of granite waste for incorporation in red ceramic. Materials Science Forum. 2004;498:728–733.

Vieira C.M.F, Monteiro S.N. Effect of grog addition on the properties and microstructure of a red ceramic body for brick production. Construction and Building Materials. 2007;21(8):1754–1759.

Vladimirovich E.G, Georgievich V.G, Karpovna S.N, Nikolaevic K.A, Aleksandrovich B.P. Raw material mix for manufacture of ash-ceramic tiles and brick. October 20, 2007 RU patent application 2308439 C1.

Vieira C.M.F, Monteiro S.N. Incorporation of solid wastes in red ceramics–an updated review. Revista Materia. 2009;14(3):881–905.

VROM – Ministry of Spatial Planning Housing and the Environment. Agency, regulator or other governmental or inter-governmental body, Netherlands 2007.

Vu D, Wang K, Bac B.H. Humidity control porous ceramics prepared from waste and porous materials. Materials Letters. 2011;65(6):940–943.

Vu D, Wang K, Nam B.X, Bac B.H, Chu T. Preparation of humidity-controlling porous ceramics from volcanic ash and waste glass. Ceramics International. 2011;37(7):2845–2853.

Wen J, Liao Y, Zhao Y, Wen Z, Sichuan Baita Xinlianxing Ceramic Group Co Ltd. Light environment-friendly brick prepared from waste brick powder, and preparation method for light environment-friendly brick. June 27, 2012 CN patent aplication 102515691 A.

Wang Y, Chen K, Wang F, Wang Z. Brick making method capable of saving land resources. May 02, 2012 CN patent application 102432267 A.

Wang Z, Huang Y, Xinmi Wanli Industry Dev Co Ltd. Process for preparing low porosity clay brick from waste sagger. October 15, 2008 CN patent application 101284723 A.

Weng C, Lin D, Chiang P. Utilization of sludge as brick materials. Advances in Environmental Research. 2003;7(3):679–685.

Won L.E, Woosung Ceramics Ind Co. Ltd. Porous and lightweight clay bricks sintered at low temperature by using solid wastes and manufacture method thereof. December 02, 2004 KR patent application 20040099677 A.

Yuan M. Method for sintering bricks by high-doping aluminium hydroxide industrial sludge clay. September 03, 2008 CN patent applicant 101255050 A.

Xu. Solid wall insulating brick made by calcining fly ash coal gangue. 2008 CN patent application CN 101279839 A.

Zhu P, Cao Z.B, Wang L.Y, YE Y.L, Qian G.R, Cao T.H, et al. Recycling of calcium fluoride sludge as ceramic material using low temperature sintering technology. Journal of Material Cycles and Waste Management. 2013;16(1):156–161.

Zimmer A, Bergmann C.P. Fly ash of mineral coal as ceramic tiles raw material. Waste Management. 2007;27(1):59–68.

..................Content has been hidden....................

You can't read the all page of ebook, please click here login for view all page.
Reset