Reuse of copper slag in high-strength building ceramics containing spodumene tailings as fluxing agent
暂无分享,去创建一个
J. Roning | M. Illikainen | P. Kinnunen | Elijah Adesanya | J. Yliniemi | Patrick N. Lemougna | P. Tanskanen | P. N. Lemougna
[1] C. Sheridan,et al. Basic oxygen furnace slag: Review of current and potential uses , 2020 .
[2] J. Roning,et al. Recycling lithium mine tailings in the production of low temperature (700–900 °C) ceramics: Effect of ladle slag and sodium compounds on the processing and final properties , 2019, Construction and Building Materials.
[3] Jittra Rukijkanpanich,et al. Burned brick production from residues of quarrying process in Thailand , 2019, Journal of Building Engineering.
[4] J. Roning,et al. Spodumene tailings for porcelain and structural materials: Effect of temperature (1050–1200 °C) on the sintering and properties , 2019, Minerals Engineering.
[5] Hindavi R. Gavali,et al. Development of sustainable alkali-activated bricks using industrial wastes , 2019, Construction and Building Materials.
[6] Y. Li,et al. The microstructure and properties of ceramic tiles from solid wastes of Bayer red muds , 2019, Construction and Building Materials.
[7] Zhen Huang,et al. Evaluation of calcined copper slag as an oxygen carrier for chemical looping gasification of sewage sludge , 2019, International Journal of Hydrogen Energy.
[8] Jagmeet Singh,et al. Development of Alkali-activated Cementitious Material using Copper Slag , 2019, Construction and Building Materials.
[9] Mingkai Zhou,et al. Effects of flux components on the properties and pore structure of ceramic foams produced from coal bottom ash , 2019, Ceramics International.
[10] R. A. F. Peixoto,et al. Assessment of the use potential of iron ore tailings in the manufacture of ceramic tiles: From tailings-dams to “brown porcelain” , 2019, Construction and Building Materials.
[11] Gijsbert Korevaar,et al. Industrial Symbiosis: towards a design process for eco-industrial clusters by integrating Circular Economy and Industrial Ecology perspectives , 2019, Journal of Cleaner Production.
[12] Abolfazl Hassani,et al. Investigating the mechanical and hydraulic characteristics of pervious concrete containing copper slag as coarse aggregate , 2019, Construction and Building Materials.
[13] K. Arunachalam,et al. Assessment of strength and durability characteristics of copper slag incorporated ultra high strength concrete , 2019, Journal of Cleaner Production.
[14] Mohd Shahir Liew,et al. Incorporation of waste materials in the manufacture of masonry bricks: An update review , 2019, Journal of Building Engineering.
[15] Yue-hua Hu,et al. Systematic review of feldspar beneficiation and its comprehensive application , 2018, Minerals Engineering.
[16] De‐qing Zhu,et al. Green and efficient utilization of waste ferric-oxide desulfurizer to clean waste copper slag by the smelting reduction-sulfurizing process , 2018, Journal of Cleaner Production.
[17] J. Labrincha,et al. Synthesis of ceramic pigments from industrial wastes: Red mud and electroplating sludge. , 2018, Waste management.
[18] Mohit Verma,et al. Sustainable cleaner production of concrete with high volume copper slag , 2018, Journal of Cleaner Production.
[19] A. Zocca,et al. 3D printing of porcelain by layerwise slurry deposition , 2018 .
[20] G. Zhengqi,et al. Innovative methodology for comprehensive and harmless utilization of waste copper slag via selective reduction-magnetic separation process , 2018, Journal of Cleaner Production.
[21] Liping Huang,et al. Performance of copper slag contained mortars after exposure to elevated temperatures , 2018 .
[22] R. Heijungs,et al. Estimating global copper demand until 2100 with regression and stock dynamics , 2018 .
[23] A. Patel,et al. Towards sustainable bricks production: An overview , 2018 .
[24] Yufeng Wu,et al. Characteristics and properties of glass-ceramics using lead fuming slag , 2018 .
[25] Zhiyong Liu,et al. Effect of sintering additives on the densification, crystallization and flexural strength of sintered glass-ceramics from waste granite powder , 2018, Materials Chemistry and Physics.
[26] E. Levänen,et al. Recycling mine tailings in chemically bonded ceramics : a review , 2018 .
[27] Weilin Zhang,et al. Copper slag as a catalyst for mercury oxidation in coal combustion flue gas. , 2017, Waste management.
[28] Gary F. Wyss,et al. Recovery of metal values from copper slag and reuse of residual secondary slag. , 2017, Waste management.
[29] E. Mohammadi,et al. Barriers and facilitators related to the implementation of a physiological track and trigger system: A systematic review of the qualitative evidence , 2017, International journal for quality in health care : journal of the International Society for Quality in Health Care.
[30] Rahul Sharma,et al. Durability assessment of self compacting concrete incorporating copper slag as fine aggregates , 2017 .
[31] J. Brito,et al. The role of glass waste in the production of ceramic-based products and other applications: A review , 2017 .
[32] M. Achimovičová,et al. New residue-free processing of copper slag from smelter , 2017 .
[33] Mostafa Benzaazoua,et al. Coal mine wastes recycling for coal recovery and eco-friendly bricks production , 2017 .
[34] M. Fadaee,et al. Mechanical properties of concrete with Sarcheshmeh mineral complex copper slag as a part of cementitious materials , 2017 .
[35] N.V. Boltakova,et al. Utilization of inorganic industrial wastes in producing construction ceramics. Review of Russian experience for the years 2000-2015. , 2017, Waste management.
[36] X. Cui,et al. Synthesis and characterization of low temperature (<800 °C) ceramics from red mud geopolymer precursor , 2017 .
[37] Her-Yung Wang,et al. A study of the engineering properties of alkali-activated waste glass material (AAWGM) , 2016 .
[38] A. B. M. Saiful Islam,et al. Engineering properties and carbon footprint of ground granulated blast-furnace slag-palm oil fuel ash-based structural geopolymer concrete , 2015 .
[39] Jae-chun Lee,et al. A physico-chemical separation process for upgrading iron from waste copper slag , 2013 .
[40] Ali Ahmed Mohammed,et al. Manufacturing of Bricks in the Past, in the Present and in the Future: A state of the Art Review , 2013 .
[41] Patrick N. Lemougna,et al. Industrial Potentiality of Alluvial Clays Deposits from Cameroon: Influence of Lateritic Clayey Admixture for Fired Bricks Production , 2013 .
[42] E. Karamanova,et al. Post-treated incinerator bottom ash as alternative raw material for ceramic manufacturing , 2012 .
[43] G. Power,et al. Bauxite residue issues: II. options for residue utilization , 2011 .
[44] Christian Meyer,et al. Utilization of copper slag in cement and concrete , 2008 .
[45] Ana C. S. Alcântara,et al. Characterization of ceramic tiles prepared from two clays from Sergipe — Brazil , 2008 .
[46] Premchand,et al. Characteristics and utilisation of copper slag—a review , 2003 .
[47] F. Puertas,et al. Mineralogical and microstructural characterisation of alkali-activated fly ash/slag pastes , 2003 .
[48] Vahak Marghussian,et al. Fabrication of unglazed floor tiles containing Iranian copper slags , 1999 .
[49] K. Rashid,et al. Influence of fluxing oxides from waste on the production and physico-mechanical properties of fired clay brick: A review , 2020 .
[50] E. Karamanova,et al. New ceramic materials from MSWI bottom ash obtained by an innovative microwave-assisted sintering process , 2017 .
[51] Cheeseman,et al. Ceramic technology and sustainable development , 2007 .
[52] J. Holanda,et al. Densification behaviour of a red firing Brazilian kaolinitic clay , 2005 .
[53] J. M. Alexander,et al. Microstructure and Properties , 1990 .