Slag

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Define slag. slag synonyms, slag pronunciation, slag translation, English dictionary definition of slag. n. 1. The vitreous mass left as a residue by the smelting of metallic ore. 2. MSDS: Slag Page 1 of 6 Revised: MATERIAL SAFETY DATA SHEET SECTION 1: PRODUCT AND COMPANY IDENTIFICATION Product Name: Slag Product Identities: Granulated Blast-Furnace Slag, Iron Slag, Granular Pig Iron Slag, WaterGranulated Slag, Water Granulated Blast-Furnace Slag, Slag cement. Supplier: Diversified Minerals Inc.

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Worldsteel Association (2019) Steel statistical yearbook. Accessed 9 Mar 2021Worldsteel Association (2018) Steel industry co-products. Accessed 23 May 2020Worldsteel Association (2011) Steel statistical yearbook. Accessed 23 May 2020Makhija D, Rath RK, Chakravarty K, Patra AS, Mukherjee AK, Dubey AK (2016) Phosphorus partitioning and recovery of low-phosphorus iron-rich compounds through physical separation of Linz–Donawitz slag. Int J Miner Metall Mater 23(7):751–759. CAS Google Scholar Guo J, Bao Y, Wang M (2018) Steel slag in China: treatment, recycling, and management. Waste Manag 78:318–330. Google Scholar Kambole C, Paige-Green P, Kupolati WK, Ndambuki JM, Adeboje AO (2017) Basic oxygen furnace slag for road pavements: a review of material characteristics and performance for effective utilisation in southern Africa. Constr Build Mater 148:618–631. CAS Google Scholar Kanda K, Morisita S, Hamasaki T (2013) Pressurized steam aging process for steel slag. In: SEAISI conference, 2013.Meshram RB, Kumar S, Nath SK, Alex TC, Sahoo DP, Venugopalan T (2017) Pressurised vessel design for hydration of free calcium oxide bearing slag.Han F, Zhang Z, Wang D, Yan P (2015) Hydration heat evolution and kinetics of blended cement containing steel slag at different temperatures. Thermochim Acta 605:43–51. CAS Google Scholar Kriskova L, Eroli M, Iacobescu RI, Onisei S, Vecchiocattivi F, Pontikes Y (2018) Transformation of stainless steel slag toward a reactive cementitious binder. J Am Ceram Soc 101:1727–1736. CAS Google Scholar Wang Q, Yan P, Feng J (2011) A discussion on improving hydration activity of steel slag by altering its mineral compositions. J Hazard Mater 186:1070–1075. CAS Google Scholar Qiang W, Mengxiao S, Jun Y (2016) Influence of classified steel slag with particle sizes smaller than 20 μm on the properties of cement and concrete. Constr Build Mater 123:601–610. CAS Google Scholar Alanyali H, Çol M, Yilmaz M, Karagöz Ş (2009) Concrete produced by steelmaking slag (basic oxygen furnace) addition in portland cement. Int J Appl Ceram Technol 6:736–748. CAS Google Scholar Zhang T, Yu Q, Wei J, Li J, Zhang P (2011) Preparation of high performance blended cements and reclamation of iron concentrate from basic oxygen furnace steel slag. Resour Conserv Recycl 56:48–55. Google Scholar Menad N, Kanari N, Save M (2014) Recovery of high grade iron compounds from LD slag by enhanced magnetic separation techniques. Int J Miner Process 126:1–9. CAS Google Scholar Fang H, Hwang J, Xue G, Lu L, Liu Y (2014) Concrete of steel slag composite for paved road and its hydration microstructure. In: Carpenter JS, Bai C, Hwang JY, Ikhmayies S, Li B, Monteiro SN, Peng Z, Zhang M (eds) Characterization of Minerals, Metals, and Materials 2014, TMS. pp 121–130Zhao J, Wang D, Yan P, Zhang D, Wang H (2016) Self-cementitious property of steel slag powder blended with gypsum. Constr Build Mater 113:835–842. CAS Define slag. slag synonyms, slag pronunciation, slag translation, English dictionary definition of slag. n. 1. The vitreous mass left as a residue by the smelting of metallic ore. 2. Google Scholar Wang Q, Yan P (2010) Hydration properties of basic oxygen furnace steel slag. Constr Build Mater 24:1134–1140. Google Scholar Duda A (1989) Hydraulic reactions of LD steelwork slags. Cem Concr Res 19:793–801Article CAS Google Scholar Kriskova L, Pontikes Y, Cizer Ö, Mertens G, Veulemans W, Geysen D, Jones PT, Vandewalle L, Van Balen K, Blanpain B (2012) Effect of mechanical activation on the hydraulic properties of stainless steel slags. Cem Concr Res 42:778–788. CAS Google Scholar Gupta A (2019) Use of LD slag in blended cement by altering the reactivity and its influence on hydraulic and mechanical behaviour. (M Tech Thesis). National Institute of Technology, Jamshedpur, IndiaWang Q, Yang J, Yan P (2013) Cementitious properties of super-fine steel slag. Powder Technol 245:35–39. CAS Google Scholar Engström F, Adolfsson D, Yang Q, Samuelsson C, Björkman B (2010) Crystallization behaviour of some steelmaking slags. Steel Res Int 81:362–371. CAS Google Scholar Reddy AS, Pradhan RK, Chandra S (2006) Utilization of basic oxygen furnace (BOF) slag in the production of a hydraulic cement binder. Int J Miner Process 79:98–105Article CAS Google Scholar Kriskova L, Pontikes Y, Pandelaers L, Cizer Ö, Jones PT, Van Balen K, Blanpain B (2013) Effect of high cooling rates on the mineralogy and hydraulic properties of stainless steel slags. Metall Mater Trans B 44:1173–1184. CAS Google Scholar Li J, Yu Q, Wei J, Zhang T (2011) Structural characteristics and hydration kinetics of modified steel slag. Cem Concr Res 41:324–329. CAS Google Scholar Ferreira Neto JB, Faria JOG, Fredericci C, Chotoli FF, Silva ANL, Ferraro BB, Ribeiro TR, Malynowskyj A, Quarcioni VA, Lotto AA (2016) Modification of molten steelmaking slag for cement application. J Sustain Metall 2:13–27. Google Scholar Murphy JN, Meadowcroft TR, Barr PV (1997) Enhancement of the cementitious properties of steelmaking slag. Can Metall Q 36:315–331. CAS Google Scholar Su TH, Yang HJ, Lee YC, Shau YH, Takazawa E, Lin MF, Mou JL, Jiang WT (2016) Reductive heating experiments on BOF-Slag: simultaneous phosphorus re-distribution and volume stabilization for recycling. Steel Res Int 87:1511–1526. CAS Google Scholar Chaudhary PN, Kumar P, Kumar S, Mishra IB (2016) Scaling up of process developed for utilization of LD slag as flux. CSIR-National Metallurgical Laboratory, Jamshedpur (Report CLP-139).Chaudhary PN, Pal J, Singh D, Prasad S, Singh M (2014) Utilization of LD slag as flux. CSIR-National Metallurgical Laboratory, Jamshedpur (Investigation Report No. CLP-126).Kumar P, Singh SD, Chaudhary PN, Mishra IB, Mehta KD (2017) Production of DELF in bulk for recycling. Internal Report. CLP-164, CSIR-National Metallurgical Laboratory, Jamshedpur, IndiaHou J, Liu Q, Liu J, Wu Q (2018) Material properties of steel slag-cement binding materials prepared by precarbonated steel slag. J Mater Civ Eng 30:1–10. Google Scholar Kumar S, Sahoo DP, Nath SK, Alex

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Worldsteel Association (2019) Steel statistical yearbook. Accessed 9 Mar 2021Worldsteel Association (2018) Steel industry co-products. Accessed 23 May 2020Worldsteel Association (2011) Steel statistical yearbook. Accessed 23 May 2020Makhija D, Rath RK, Chakravarty K, Patra AS, Mukherjee AK, Dubey AK (2016) Phosphorus partitioning and recovery of low-phosphorus iron-rich compounds through physical separation of Linz–Donawitz slag. Int J Miner Metall Mater 23(7):751–759. CAS Google Scholar Guo J, Bao Y, Wang M (2018) Steel slag in China: treatment, recycling, and management. Waste Manag 78:318–330. Google Scholar Kambole C, Paige-Green P, Kupolati WK, Ndambuki JM, Adeboje AO (2017) Basic oxygen furnace slag for road pavements: a review of material characteristics and performance for effective utilisation in southern Africa. Constr Build Mater 148:618–631. CAS Google Scholar Kanda K, Morisita S, Hamasaki T (2013) Pressurized steam aging process for steel slag. In: SEAISI conference, 2013.Meshram RB, Kumar S, Nath SK, Alex TC, Sahoo DP, Venugopalan T (2017) Pressurised vessel design for hydration of free calcium oxide bearing slag.Han F, Zhang Z, Wang D, Yan P (2015) Hydration heat evolution and kinetics of blended cement containing steel slag at different temperatures. Thermochim Acta 605:43–51. CAS Google Scholar Kriskova L, Eroli M, Iacobescu RI, Onisei S, Vecchiocattivi F, Pontikes Y (2018) Transformation of stainless steel slag toward a reactive cementitious binder. J Am Ceram Soc 101:1727–1736. CAS Google Scholar Wang Q, Yan P, Feng J (2011) A discussion on improving hydration activity of steel slag by altering its mineral compositions. J Hazard Mater 186:1070–1075. CAS Google Scholar Qiang W, Mengxiao S, Jun Y (2016) Influence of classified steel slag with particle sizes smaller than 20 μm on the properties of cement and concrete. Constr Build Mater 123:601–610. CAS Google Scholar Alanyali H, Çol M, Yilmaz M, Karagöz Ş (2009) Concrete produced by steelmaking slag (basic oxygen furnace) addition in portland cement. Int J Appl Ceram Technol 6:736–748. CAS Google Scholar Zhang T, Yu Q, Wei J, Li J, Zhang P (2011) Preparation of high performance blended cements and reclamation of iron concentrate from basic oxygen furnace steel slag. Resour Conserv Recycl 56:48–55. Google Scholar Menad N, Kanari N, Save M (2014) Recovery of high grade iron compounds from LD slag by enhanced magnetic separation techniques. Int J Miner Process 126:1–9. CAS Google Scholar Fang H, Hwang J, Xue G, Lu L, Liu Y (2014) Concrete of steel slag composite for paved road and its hydration microstructure. In: Carpenter JS, Bai C, Hwang JY, Ikhmayies S, Li B, Monteiro SN, Peng Z, Zhang M (eds) Characterization of Minerals, Metals, and Materials 2014, TMS. pp 121–130Zhao J, Wang D, Yan P, Zhang D, Wang H (2016) Self-cementitious property of steel slag powder blended with gypsum. Constr Build Mater 113:835–842. CAS

2025-04-08
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Google Scholar Wang Q, Yan P (2010) Hydration properties of basic oxygen furnace steel slag. Constr Build Mater 24:1134–1140. Google Scholar Duda A (1989) Hydraulic reactions of LD steelwork slags. Cem Concr Res 19:793–801Article CAS Google Scholar Kriskova L, Pontikes Y, Cizer Ö, Mertens G, Veulemans W, Geysen D, Jones PT, Vandewalle L, Van Balen K, Blanpain B (2012) Effect of mechanical activation on the hydraulic properties of stainless steel slags. Cem Concr Res 42:778–788. CAS Google Scholar Gupta A (2019) Use of LD slag in blended cement by altering the reactivity and its influence on hydraulic and mechanical behaviour. (M Tech Thesis). National Institute of Technology, Jamshedpur, IndiaWang Q, Yang J, Yan P (2013) Cementitious properties of super-fine steel slag. Powder Technol 245:35–39. CAS Google Scholar Engström F, Adolfsson D, Yang Q, Samuelsson C, Björkman B (2010) Crystallization behaviour of some steelmaking slags. Steel Res Int 81:362–371. CAS Google Scholar Reddy AS, Pradhan RK, Chandra S (2006) Utilization of basic oxygen furnace (BOF) slag in the production of a hydraulic cement binder. Int J Miner Process 79:98–105Article CAS Google Scholar Kriskova L, Pontikes Y, Pandelaers L, Cizer Ö, Jones PT, Van Balen K, Blanpain B (2013) Effect of high cooling rates on the mineralogy and hydraulic properties of stainless steel slags. Metall Mater Trans B 44:1173–1184. CAS Google Scholar Li J, Yu Q, Wei J, Zhang T (2011) Structural characteristics and hydration kinetics of modified steel slag. Cem Concr Res 41:324–329. CAS Google Scholar Ferreira Neto JB, Faria JOG, Fredericci C, Chotoli FF, Silva ANL, Ferraro BB, Ribeiro TR, Malynowskyj A, Quarcioni VA, Lotto AA (2016) Modification of molten steelmaking slag for cement application. J Sustain Metall 2:13–27. Google Scholar Murphy JN, Meadowcroft TR, Barr PV (1997) Enhancement of the cementitious properties of steelmaking slag. Can Metall Q 36:315–331. CAS Google Scholar Su TH, Yang HJ, Lee YC, Shau YH, Takazawa E, Lin MF, Mou JL, Jiang WT (2016) Reductive heating experiments on BOF-Slag: simultaneous phosphorus re-distribution and volume stabilization for recycling. Steel Res Int 87:1511–1526. CAS Google Scholar Chaudhary PN, Kumar P, Kumar S, Mishra IB (2016) Scaling up of process developed for utilization of LD slag as flux. CSIR-National Metallurgical Laboratory, Jamshedpur (Report CLP-139).Chaudhary PN, Pal J, Singh D, Prasad S, Singh M (2014) Utilization of LD slag as flux. CSIR-National Metallurgical Laboratory, Jamshedpur (Investigation Report No. CLP-126).Kumar P, Singh SD, Chaudhary PN, Mishra IB, Mehta KD (2017) Production of DELF in bulk for recycling. Internal Report. CLP-164, CSIR-National Metallurgical Laboratory, Jamshedpur, IndiaHou J, Liu Q, Liu J, Wu Q (2018) Material properties of steel slag-cement binding materials prepared by precarbonated steel slag. J Mater Civ Eng 30:1–10. Google Scholar Kumar S, Sahoo DP, Nath SK, Alex

2025-04-12
User7125

TC, Kumar R (2012) From grey waste to green geopolymer. Sci Cult 78:511–516 Google Scholar Kumar A, Kumar S (2013) Development of paving blocks from synergistic use of red mud and fly ash using geopolymerization. Constr Build Mater 38:865–871. CAS Google Scholar Kumar S (2011) Development of paving blocks from steel slag. CSIR-National Metallurgical Laboratory, Jamshedpur (Project Report CLP-059).Kumar, S., Alex, T.C., 2013. Pilot scale development of paving blocks from steel slag. CSIR-National Metallurgical Laboratory, Jamshedpur (Internal Report CLP-084).Bai T, Song ZG, Wu YG, Hu X, Di BH (2018) Influence of steel slag on the mechanical properties and curing time of metakaolin geopolymer. Ceram Int 44:15706–15713. CAS Google Scholar Chen YL, Chang JE, Lai YC, Ko MS, Chen YH (2018) Recycling of steel slag fines for the production of autoclaved aerated concrete (AAC). Ce/Papers 2:445–449. Google Scholar Wang D, Jiang M, Liu C, Min Y, Cui Y, Liu J, Zhang Y (2012) Enrichment of Fe-containing phases and recovery of iron and its oxides by magnetic separation from BOF slags. Steel Res Int 83:189–196. CAS Google Scholar Harada T, Hirata H, Arai T, Toh T, Yamada T (2018) Development of the molten slag reduction process -1 characteristics of closed type DC arc furnace for molten slag reduction. ISIJ Int 58:1934–1942. CAS Google Scholar Guo H, Yin S, Yu Q, Yang X, Huang H, Yang Y, Gao F (2018) Iron recovery and active residue production from basic oxygen furnace (BOF) slag for supplementary cementitious materials. Resour Conserv Recycl 129:209–218. Google Scholar Sun Y, Sridhar S, Liu L, Wang X, Zhang Z (2015) Integration of coal gasification and waste heat recovery from high temperature steel slags: an emerging strategy to emission reduction. Sci Rep 5:1–11. CAS Google Scholar Sun Y, Sridhar S, Seetharaman S, Wang H, Liu L, Wang X, Zhang Z (2016) A Fe-C-Ca big cycle in modern carbon-intensive industries: toward emission reduction and resource utilization. Sci Rep 6:22323. CAS Google Scholar Fernández-González D, Prazuch J, Ruiz-Bustinza I, González-Gasca C, Piñuela-Noval J, Verdeja LF (2019) The treatment of basic oxygen furnace (BOF) slag with concentrated solar energy. Sol Energy 180:372–382. CAS Google Scholar Li HJ, Suito H, Tokuda M (1995) Thermodynamic of slag recycling using a slag regenerator. ISIJ Int 35:1079–1088. CAS Google Scholar Ökvist LS (2004) High temperature properties of BOF slag and its behaviour in the blast furnace. Steel Res Int 75:792–799. Google Scholar Kuroki T, Kabeya K, Makino K, Kajihara T, Kaibe H, Hachiuma H, Matsuno H, Fujibayashi A (2014) Thermoelectric generation using waste heat in steel works. J Electron Mater 43:2405–2410. CAS Google Scholar Quader MA, Shamsuddin A, Ghazilla RAR, Shameem A, Dahari M (2015) A comprehensive review on energy efficient CO2 breakthrough technologies for sustainable green iron

2025-04-18
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A, Zingaretti D (2017) Energetic assessment of CO2 sequestration through slurry carbonation of steel slag: a factorial study. Greenh Gases Sci Technol 7:530–541. CAS Google Scholar Eloneva S, Teir S, Revitzer H, Salminen J, Said A, Fogelholm CJ, Zevenhoven R (2009) Reduction of CO2 emissions from steel plants by using steelmaking slags for production of marketable calcium carbonate. Steel Res Int 80:415–421. CAS Google Scholar Mattila HP, Zevenhoven R (2014) Design of a continuous process setup for precipitated calcium carbonate production from steel converter slag. Chemsuschem 7:903–913. CAS Google Scholar Tian S, Jiang J, Yan F, Li K, Chen X, Manovic V (2016) Highly efficient CO2 capture with simultaneous iron and CaO recycling for the iron and steel industry. Green Chem 18:4022–4031. CAS Google Scholar Tian S, Jiang J, Hosseini D, Kierzkowska AM, Imtiaz Q, Broda M, Müller CR (2015) Development of a steel-slag-based, iron-functionalized sorbent for an autothermal carbon dioxide capture process. Chemsuschem 8:3839–3846. CAS Google Scholar Di Z, Cao Y, Yang F, Cheng F, Zhang K (2018) Studies on steel slag as an oxygen carrier for chemical looping combustion. Fuel 226:618–626. CAS Google Scholar Malvoisin B, Brunet F, Carlut J, Montes-Hernandez G, Findling N, Lanson M, Vidal O, Bottero JY, Goffé B (2013) High-purity hydrogen gas from the reaction between BOF steel slag and water in the 473–673 K range. Int J Hydrog Energy 38:7382–7393. CAS Google Scholar Ning D, Liang Y, Liu Z, Xiao J, Duan A (2016) Impacts of steel-slag-based silicate fertilizer on soil acidity and silicon availability and metals-immobilization in a paddy soil. PLoS ONE 11:1–15. CAS Google Scholar Wang W, Sardans J, Lai DYF, Wang C, Zeng C, Tong C, Liang Y, Peñuelas J (2015) Effects of steel slag application on greenhouse gas emissions and crop yield over multiple growing seasons in a subtropical paddy field in China. F Crop Res 171:146–156. Google Scholar Reddy KR, Gopakumar A, Chetri JK (2019) Critical review of applications of iron and steel slags for carbon sequestration and environmental remediation. Rev Environ Sci Biotechnol 18:127–152. CAS Google Scholar Matsubae-Yokoyama K, Kubo H, Nakajima K, Nagasaka T (2009) A material flow analysis of phosphorus in Japan: The iron and steel industry as a major phosphorus source. J Ind Ecol 13:687–705. CAS Google Scholar Gao X, Okubo M, Maruoka N, Shibata H, Ito T, Kitamura S-Y (2015) Production and utilisation of iron and steelmaking slag in Japan and the application of steelmaking slag for the recovery of paddy fields damaged by Tsunami. Miner Process Extr Metall 124(2):116–124. CAS Google Scholar Gao X, Kitamura S (2015) Utilization of steelmaking slag in Japan and the recent progress towards soil amendment. Available at: Accessed 18 Aug 2021Yildirim IZ, Prezzi M (2015) Geotechnical properties

2025-04-04

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