[1] O’CONNOR J, NGUYEN T B T, HONEYANDS T, et al. Production, characterisation, utilisation, and beneficial soil application of steel slag: a review[J]. Journal of Hazardous Materials, 2021, 419: 126478. [2] 卜二军,李玉银,王晓晖,等.脱硫渣的综合回收利用[C]//2013年全国冶金能源环保生产技术会论文集.本溪:中国金属协会,2013:474-478. BU E J, LI Y Y, WANG X H, et al. The comprehensive recovery and utilization of desulphurization slag[C]//Proceedings of the 2013 national metallurgical energy and environmental protection production technology conference. Benxi: China Metal Association,2013:474-478 (in Chinese). [3] 石枚梅,俞海明.铁水预处理KR脱硫渣特点和资源化处理工艺的开发[J].特殊钢,2013,34(6):42-44. SHI M M, YU H M. Characteristics of hot metal pretreatment KR desulphurized sludge and development of recycling technology of resources[J]. Special Steel, 2013, 34(6): 42-44 (in Chinese). [4] 崔孝炜,倪 文,任 超.钢渣矿渣基全固废胶凝材料的水化反应机理[J].材料研究学报,2017,31(9):687-694. CUI X W, NI W, REN C. Hydration mechanism of all solid waste cementitious materials based on steel slag and blast furnace slag[J]. Chinese Journal of Materials Research, 2017, 31(9): 687-694 (in Chinese). [5] 李云云,梁文特,倪 文,等.钢渣尾泥-矿渣-脱硫石膏三元体系水化硬化特性[J].硅酸盐通报,2022,41(2):536-544. LI Y Y, LIANG W T, NI W, et al. Characteristics of hydration and hardening of steel slag mud-blast furnace slag-desulphurization gypsum system[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(2): 536-544 (in Chinese). [6] 杜惠惠,倪 文,高广军.水淬高钛高炉渣制备C40全固废混凝土试验研究[J].材料导报,2020,34(24):24055-24060. DU H H, NI W, GAO G J. Experimental study on preparation of C40 concrete with industrial solid wastes from high-titanium blast furnace slag[J]. Materials Reports, 2020, 34(24): 24055-24060 (in Chinese). [7] YANG B M, LAI W L, CHANG Y M, et al. Using desulfurization slag as the aquacultural amendment for fish pond water quality improvement: mechanisms and effectiveness studies[J]. Journal of Cleaner Production, 2017, 143: 1313-1326. [8] KUO W T. Properties of compressed concrete paving units made produced using desulfurization slag[J]. Environmental Progress & Sustainable Energy, 2015, 34(5): 1365-1371. [9] 张 健.铁水脱硫渣超细微粉基础性能及应用研究[J].四川建材,2018,44(10):18-19. ZHANG J. Study on basic properties and application of ultra-fine powder of hot metal desulfurization slag [J]. Sichuan Building Materials, 2018, 44(10): 18-19 (in Chinese). [10] MASTALI M, SHAAD K M, ABDOLLAHNEJAD Z, et al. Towards sustainable bricks made with fiber-reinforced alkali-activated desulfurization slag mortars incorporating carbonated basic oxygen furnace aggregates[J]. Construction and Building Materials, 2020, 232: 117258. [11] CHO B, CHOI H. Physical and chemical properties of concrete using GGBFS-KR slag-gypsum binder[J]. Construction and Building Materials, 2016, 123: 436-443. [12] LEE B, KIM G, NAM J, et al. Compressive strength, resistance to chloride-ion penetration and freezing/thawing of slag-replaced concrete and cementless slag concrete containing desulfurization slag activator[J]. Construction and Building Materials, 2016, 128: 341-348. [13] KUO W T, WANG H Y, SHU C Y. Engineering properties of cementless concrete produced from GGBFS and recycled desulfurization slag[J]. Construction and Building Materials, 2014, 63: 189-196. [14] KUO W T, HOU T C. Engineering properties of alkali-activated binders by use of desulfurization slag and GGBFS[J]. Construction and Building Materials, 2014, 66: 229-234. [15] CHEN Y L, KO M S, CHANG J E, et al. Recycling of desulfurization slag for the production of autoclaved aerated concrete[J]. Construction and Building Materials, 2018, 158: 132-140. [16] 李明煜,张诗卉,王 灿,等.重点工业行业碳排放现状与减排定位分析[J].中国环境管理,2021,13(3):28-39. LI M Y, ZHANG S H, WANG C, et al. The carbon emission status and emission reduction positioning of key industrial sectors[J]. Chinese Journal of Environmental Management, 2021, 13(3): 28-39 (in Chinese). [17] MILLER S A, JOHN V M, PACCA S A, et al. Carbon dioxide reduction potential in the global cement industry by 2050[J]. Cement and Concrete Research, 2018, 114: 115-124. [18] LIU Y, KUANG Y Q, HUANG N S, et al. CO2 emission from cement manufacturing and its driving forces in China[J]. International Journal of Environment and Pollution, 2009, 37(4): 369. [19] SHI C J. Characteristics and cementitious properties of ladle slag fines from steel production[J]. Cement and Concrete Research, 2002, 32(3): 459-462. [20] JIA Z J, CHEN C, SHI J J, et al. The microstructural change of C-S-H at elevated temperature in Portland cement/GGBFS blended system[J]. Cement and Concrete Research, 2019, 123: 105773. [21] LI Y Y, NI W, GAO W, et al. Corrosion evaluation of steel slag based on a leaching solution test[J]. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 2019, 41(7): 790-801. [22] 徐 东,倪 文,汪群慧,等.碱渣复合胶凝材料制备无熟料混凝土[J].哈尔滨工业大学学报,2020,52(8):151-160. XU D, NI W, WANG Q H, et al. Preparation of clinker-free concrete by using soda residue composite cementitious material[J]. Journal of Harbin Institute of Technology, 2020, 52(8): 151-160 (in Chinese). [23] EL-DIDAMONY H, AMER A A, EL-SOKKARY T M, et al. Effect of substitution of granulated slag by air-cooled slag on the properties of alkali activated slag[J]. Ceramics International, 2013, 39(1): 171-181. [24] 倪 文,李 颖,许成文,等.矿渣-电炉还原渣全固废胶凝材料的水化机理[J].中南大学学报(自然科学版),2019,50(10):2342-2351. NI W, LI Y, XU C W, et al. Hydration mechanism of blast furnace slag-reduction slag based solid waste cementing materials[J]. Journal of Central South University (Science and Technology), 2019, 50(10): 2342-2351 (in Chinese). [25] ADESANYA E, OHENOJA K, DI MARIA A, et al. Alternative alkali-activator from steel-making waste for one-part alkali-activated slag[J]. Journal of Cleaner Production, 2020, 274: 123020. [26] SHI C J. Steel slag: its production, processing, characteristics, and cementitious properties[J].Journal materials in civil engineering, 2004, 16(3): 230-236. |