Dissolution Behavior of Nutrient Elements from Fertilizer Made of Steelmaking Slag, in an Irrigated Paddy Field Environment

被引:30
作者
Gao X. [1 ]
Maruoka N. [1 ]
Kim S.-J. [1 ]
Ueda S. [1 ]
Kitamura S.-Y. [1 ]
机构
[1] Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, 2-1-1, Katahira, Aoba-ku, Sendai
关键词
Dissolution; Fertilizer; Paddy; Steelmaking slag;
D O I
10.1007/s40831-015-0030-8
中图分类号
学科分类号
摘要
To produce fertilizer made of steelmaking slag, the combination of mineralogical phases is necessary to be appropriate not only for refining at high temperature, but also for supplementing nutrient elements in paddy fields. In this research, first, the variations in the chemical composition and mineralogical structure of various brands of fertilizer made of steelmaking slag were investigated. The basicity (CaO/SiO2), free-CaO content, total Fe content, and Fe2+/Fe3+ ratio of fertilizer were found to vary widely depending on the brand. In addition, regarding the mineralogical phases, solid solution consisting of 2CaO·SiO2 and 3CaO·P2O5, MgO–FeO, CaO–Fe2O3, free CaO, metallic Fe, and the other phase which included liquid phases at refining temperature were observed. The mass fraction of each phase also varied depending on the brand. Second, the dissolution behavior of each mineralogical phase in the fertilizers into water that simulated the early stage of flooding condition was studied. Regarding the dissolution of Ca, free CaO dissolved in a short time, and the solid solution of 2CaO·SiO2 and 3CaO·P2O5 dissolved slowly. Fe barely dissolved from any mineralogical phase except the other phase which consisted of CaO–SiO2–FeO. A clear relationship was observed between the dissolution of Fe and the mass fraction of other phase as well as the ratio of Fe2+ to Fe3+ in Fe oxides in fertilizer made of steelmaking slag. © 2015, The Minerals, Metals & Materials Society (TMS).
引用
收藏
页码:304 / 313
页数:9
相关论文
共 21 条
[1]  
Pocket Handbook for Fertilizer, (2012)
[2]  
Properties and utilization of ironmaking and steelmaking slags, Tetsu-to-Hagané, 65, pp. 1787-1811, (1979)
[3]  
Kitamura S., Ito T., Maruoka N., Shibata H., Recovery of paddy field damaged by tsunami using steelmaking slag, Kinzoku, 82, 11, pp. 1011-1015, (2012)
[4]  
Futatsuka T., Shitogiden K., Miki T., Nagasaka T., Hino M., Dissolution behavior of elements in steelmaking slag into artificial seawater, Tetsu-to-Hagané, 89, pp. 382-387, (2003)
[5]  
Hayashi A., Asaoka S., Watanabe T., Kaneko R., Takahashi K., Miyata Y., Kim K., Yamamoto T., Inoue R., Ariyama T., Mechanism of suppression of sulfide ion in seawater using steelmaking slag, Tetsu-to-Hagané, 98, pp. 618-625, (2012)
[6]  
Ito K., Steelmaking slag for fertilizer use, Nippon Steel & Sumitomo Metal Technical Report, 109, pp. 130-136, (2015)
[7]  
Ito T., Nasu K., Saito M., Kitamura S., Productivity improvement of saline paddy soils caused by seawater inflow with steelmaking slag fertilizer, CAMP-ISIJ, 27, (2014)
[8]  
Maruoka N., Okubo M., Shibata H., Gao X., Ito T., Kitamura S., Improvement of desalted paddy soil by the application of fertilizer made of steelmaking slag (Recovery of a paddy field damaged by the tsunami using fertilizer made of steelmaking slag—1), Tetsu-to-Hagané, 101, pp. 445-456, (2015)
[9]  
Okubo M., Maruoka N., Shibata H., Gao X., Ito T., Kitamura S., Long-term dissolution characteristics of various fertilizers made of steelmaking slag in a desalted paddy soil environment (Recovery of a paddy field damaged by the tsunami using fertilizer made of steelmaking slag—2), Tetsu-to-Hagané, 101, pp. 457-464, (2015)
[10]  
Gao X., Maruoka M., Shibata H., Ito T., Kitamura S., Application of steelmaking slag on the recovery of degraded paddy field, Proceedings of the 6Th International Congress on the Science and Technology of Steelmaking, pp. 958-961, (2015)