Dissolution Behavior of Mg from MgO C Refractory in Al-killed Molten Steel

Size: px
Start display at page:

Download "Dissolution Behavior of Mg from MgO C Refractory in Al-killed Molten Steel"

Transcription

1 ISIJ International, Vol. 58 (2018), ISIJ International, No. 3 Vol. 58 (2018), No. 3, pp Dissolution Behavior of Mg from MgO C Refractory in Al-killed Molten Steel Chunyang LIU, 1) Xu GAO, 2) * Sun-joong KIM, 3) Shigeru UEDA 2) and Shin-ya KITAMURA 2) 1) Department of Metallurgy, Graduate School of Engineering, Tohoku University, Katahira, Aoba-ku, Sendai, Japan. 2) Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, Katahira, Aoba-ku, Sendai, Japan. 3) Department of Materials Science & Engineering, College of Engineering, Chosun University, 309, Pilmun-daero, Dong-gu, Gwangju, Korea. (Received on October 10, 2017; accepted on November 21, 2017) MgO C refractory is a widely employed refractory in steel refining and it is considered as a Mg source to form MgO Al 2 O 3 spinel inclusions in steel melt. In this study, MgO C refractories with various carbon contents were immersed into Al-killed molten steel to investigate the dissolution behavior of Mg from MgO C refractory. The result showed that Mg gradually dissolved into the steel melt from the refractory, and spinel inclusions were formed. Al in the steel melt reduced MgO in the refractory and consequently, Mg was dissolved into the steel melt. The dissolved Mg increased with the Al content in the steel melt. Moreover, C in the MgO C refractory also reduced MgO in the refractory and supplied Mg to the steel melt. However, when the C concentration in the refractory was lower than 10 mass%, Mg was not supplied. The reduction in MgO by Al and C occurred independently, and the Mg content in the steel was the sum of the Mg supplied by these reactions. In some regions at the refractory steel melt interface, a spinel layer was observed; however, this layer was not formed uniformly. KEY WORDS: Mg dissolution; MgO C refractory; spinel; inclusion. 1. Introduction MgO Al 2 O 3 spinel inclusions (henceforth referred to as spinel inclusions for simplicity), which have the property of high melting temperature and poor deformability, are harmful to both the surface quality and fatigue resistance of steel. 1,2) Moreover, the spinel inclusions are easy to sinter with the Al 2 O 3 C nozzle materials at high temperature and subsequently cause clogging, which leads to problems in continuous casting operations. 3,4) Therefore, spinel inclusions have harmful effects on both the steel product and production operations. A significant number of laboratory and field experiments have been performed on this subject. 5 25) MgO C refractory is one of the most widely employed refractories in steel refining, owing to its high resistance to erosion and thermal shock. However, when in contact with steel melt, MgO C refractory is considered as a source of Mg to form spinel inclusions. Brabie et al. 26) investigated the mechanism of the reaction between MgO C refractory containing 20 mass% of carbon and Al-killed molten steel. They observed that Mg dissolved into the steel melt from the MgO C refractory and spinel inclusions were formed. For the supply mechanism of Mg from the MgO C refractory, they identified the generation of Mg vapor by the reaction between carbon and MgO in the refractory. J. Shan et al. 27) * Corresponding author: xgao@tagen.tohoku.ac.jp DOI: investigated the carbo-thermic reduction of magnesia. In their study, pellets of magnesia and carbon powders (mole ratio 1:1) were charged to a porous tube made of alumina and immersed into the steel melt in the temperature range of K. They observed that the reaction rate was slow, and the dissolved Mg concentration in the steel melt was approximately 1 2 ppm. Recently, one of the authors of this study 28,29) investigated the effect of MgO C refractory containing 20 mass% of carbon on the formation rate of spinel inclusions. They concluded that carbon reduction of MgO was the primary mechanism of the Mg supply. However, Harada et al. 30) observed that Al in the steel melt reduced the MgO in the refractory and Mg was dissolved into the steel melt. According to this mechanism, MgO in the MgO C refractory supplies Mg to the steel melt owing to the reduction by Al in the steel. Hence, the dissolution mechanism of Mg in steel from MgO C refractory should be clarified. Moreover, the knowledge of the effect of C content in the refractory and Al content in the steel melt on the dissolution behavior of Mg from the MgO C refractory is still limited. In this study, laboratory experiments were performed to study the reaction mechanism between MgO C refractory and Al-killed steel. MgO C refractory rods with various carbon contents were immersed into molten steel with different Al contents. By this investigation, the effect of the C content in the refractory and Al content in the steel melt on the dissolution behavior of Mg from MgO C refractory 2018 ISIJ 488

2 was clarified. 2. Experimental 2.1. Raw Materials In order to investigate the effect of C content in MgO C refractory on the dissolution behavior of Mg, refractories with different C contents were studied, namely 0.7% (G00), 5.6% (G05), 10.5% (G10), and 20.4% (G20). All the compositions in this paper are indicated in mass percentage, unless otherwise specified. In this experiment, steel melt containing approximately 11% Cr was used because spinel formation has been previously studied in stainless steel. 4,9,14,16) In order to investigate the effect of Al content, steel with an extremely high content of Al (0.25%) was studied in addition to steel with typical contents of Al (0.05% 0.08%). A dense Al 2 O 3 crucible was used as the container for the steel, to establish the Al Al 2 O 3 equilibrium to simulate the Al-killed steel. Under this condition, the dissolution rate of Mg from the refractory into the Al-killed steel melt can be investigated. A commercial MgO C refractory rod with a square shape was employed; the refractory was supplied by the Kurosaki- Harima Corporation. Each side of the rod was approximately 6 mm and its length was approximately 80 mm. In order to remove the binder (phenolic resin) and other volatiles in the refractory, heat treatment was performed before the experiment. During the heat treatment, the refractory specimen was embedded in graphite and held at K for 3 h under a CO atmosphere. The composition and microstructure of the employed refractory are shown in Table 1 and Fig. 1, respectively. The refractory mainly contained three phases: magnesia, C, and impurity. The magnesia phase was divided in two shapes: a large isolated lump, and a small and homogeneously distributed shape in the C phase. The impurities were mainly located in the large-isolated-lump magnesia phase. The main phases and chemical composition of each phase were the same for all the employed MgO C refractories, regardless of the C contents. The only difference in the microstructure was the interfacial area between the magnesia and C phases. In order to prepare the master steel, electrolytic Fe together with high-purity Cr (99.9%) and Al (99.999%) metals were melted in an argon arc furnace. The target composition of the master steel was Fe-11%Cr-0.25%Al (high Al) and Fe-11%Cr %Al (low Al) Experimental Procedure The experimental set-up and experimental conditions of the molten steel refractory reaction are shown in Fig. 2 and Table 2, respectively. The experiment was performed using an induction furnace. Prior to heating, 200 g of the prepared metal was loaded into a dense Al 2 O 3 crucible. Subsequently, the chamber of the furnace was subjected to vacuum con- Table 1. Physical properties and chemical composition of the employed MgO C refractories. Sample Property Apparent density/ g cm 3 Bulk density/ g cm 3 Apparent porosity/% Chemical composition/% MgO C Others G G G G Fig. 2. Schematic of experimental apparatus. Fig. 1. Microstructure of the MgO C refractory with different carbon contents ISIJ

3 Table 2. Experimental conditions. MgO C refractory Name Al content/ % Immersion time/min Temperature/ K Crucible type G00 G00 - Low Al , 30, 60, Al 2O 3 G00 - High Al , 30, 60, Al 2O 3 G05 G05 - High Al , 30, 60, Al 2O 3 G10 G10 - High Al , Al 2O 3 G20 G20 - Low Al , 30, Al 2O 3 G20 - High Al , 30, 60, Al 2O 3 ditions, and thereafter purged with purified argon. This process was repeated three times. In order to remove the oxygen, argon ( %) was passed through heated Mg chips (573 K) and flowed into the chamber of the furnace. Subsequently, the metal was heated to K, and the temperature of the molten steel was measured by immersing a thermocouple into the steel melt; the thermocouple was covered by a dense Al 2 O 3 protection tube. Subsequently, the pre-heated MgO C square rod was immersed into the molten steel, and this moment was considered as the starting point of the experiment. Prior to immersion, the rod was positioned just above the surface of the steel, and pre-heated for 3 h. Following its immersion for a pre-determined time, the rod was removed and air-cooled, and the molten steel was rapidly quenched with water. The rod was immersed for 5, 30, 60, or 120 min Analysis After quenching, the central portion of the metal was cut for both chemical composition analysis and inclusion observation. For the chemical analysis, the Al and Mg contents were analyzed using inductively coupled plasma atomic emission spectroscopy (ICP-AES). The total oxygen (T.O) and C contents of the steel sample were measured using an infrared X-ray absorption method. The inclusions were analyzed manually using an electron probe microanalyzer with a field emission electron gun (FE-EPMA) and the contents of Mg, Al, Fe, Ca, O, and Cr were analyzed. The inclusions were assumed to consist of MgO, Al 2 O 3, and CaO, and the analyzed values of Mg, Al, and Ca were converted to oxide values using a stoichiometric relationship. The values of Fe and Cr were ignored as it would be caused by the analysis of the metal phase. The value of S was also ignored, owing to its low concentration. Ten to fifteen inclusions were analyzed for each sample and their average composition was used. Fig. 3. Change in the Mg content in molten steel with immersion time. Fig. 4. Change in the Al content in molten steel with immersion time. 3. Experimental Results The changes in the steel compositions including Mg, Al, T.O, and C with the immersion time of the refractory rod are shown in Figs. 3 6, respectively. As shown in Fig. 3, the Mg content increased with immersion time and reached a maximum at approximately 60 min. Among these experiments, the highest Mg content was obtained by immersing G20 refractory into high-al steel melt, and the dissolved Mg content was 3.5 ppm. In the experiments with G00 high-al, G05 high-al, G10 high-al, and G20 low-al, the Fig. 5. Change in the total oxygen content in molten steel with immersion time ISIJ 490

4 Fig. 7. Change in the inclusion composition with immersion time. Fig. 6. Change in the C content in molten steel with immersion time. highest dissolved Mg content was approximately 2 ppm. In the experiment with G00 low Al, the highest dissolved Mg content was 1 ppm. Therefore, the dissolution of Mg from MgO C refractory was enhanced when it contacted with steel melt of high-al content or when its C content was high. According to Fig. 4, throughout the immersion period, the Al content remained almost constant under all the experimental conditions, which indicates that the oxidation of Al during the immersion of the refractory rod was negligible. The T.O content decreased gradually with immersion time and finally reached approximately 20 ppm after 60 min, as shown in Fig. 5. Both the T.O content and the change behavior of the T.O content were almost similar in both low- and high-al experiments, regardless of the C content in the refractory. As shown in Fig. 6, the increase in the C content in the steel melt, which was attributed to the dissolution from the MgO C refractory, was rapid within 5 min, and the dissolved C content in the steel melt increased with the initial C content in the refractory. The average composition of the analyzed inclusions in the steel is shown in Fig. 7. Under every experimental condition, the initially observed Al 2 O 3 inclusions gradually transformed into spinel inclusions. At 5 min, both Al 2 O 3 and spinel inclusions were detected. After 30 min, the Al 2 O 3 inclusions disappeared and the inclusions had changed completely into spinel. The MgO content of these inclusions are close to the saturation in MgO Al 2 O 3 spinel 31) at K, as shown in Fig. 8. Therefore, the inclusions are recognized as MgO-saturated spinel. Although the dissolved Mg content in the steel melt varied from 1 to 3.5 ppm in this study, depending on the experimental conditions, the transformation behavior of the inclusions was the same. Moreover, the inclusion transformation completed before the Mg content in steel reached the highest value. Figures 9(a) and 9(b) show the elemental mapping images of Al, Mg, O, Ca, Cr, and C on the cross-section of the G00 rod immersed in low-al steel melt for 120 min and G20 rod immersed in high-al steel melt for 120 min, respectively. In Fig. 9(a), an Al-enriched area was observed Fig. 8. Typical morphology of the inclusion in G05 high Al experiments. near the surface of the refractory rod and the MgO content of these Al-enriched products are close to the saturation in MgO Al 2 O 3 spinel 31) at K. Therefore, the Al-enriched product is recognized as MgO saturated spinel; however, the spinel was detached from the refractory rod bulk and was partially formed at the interface between the refractory and steel. In Fig. 9(b), the spinel was not observed at the interface. Figure 10 shows the elemental mapping images of Mg, Al, O, Cr, and Ca at the interface between the Al 2 O 3 crucible and steel for the G20 high-al experiments ISIJ

5 Fig. 9. Elemental mapping at the MgO C refractory steel melt interface: a) G00 low-al experiment of 120 min immersion b) G20 high-al experiment of 120 min immersion. Fig. 10. Elemental mapping at the Al 2O 3 crucible steel melt interface (G20 high-al 120 min immersion). Table 3. Composition of the interface between MgO C refractory and steel melt. Refractory type G00 G05 G10 G20 Al content/% Low High High Low Low High Refractory steel melt interface M & MS M & MS M & MS M & MS M M Crucible steel melt interface A A & AS A & AS A & AS A & AS A & AS PS: M is MgO; MS is MgO saturated spinel; A is Al 2O 3; AS is Al 2O 3 saturated spinel after 120 min. A Mg-enriched area was observed near the surface of the crucible and the Al 2 O 3 content of these Mgenriched products are close to the saturation in MgO Al 2 O 3 spinel 31) at K. Therefore, the Mg-enriched product is recognized as Al 2 O 3 saturated spinel. The formed spinel was partially distributed at the interface and did not cover the crucible surface entirely. The observed phases at the interface between the refractory and steel after 120 min for all the experiments are summarized in Table 3. In this table, M represents MgO, MS represents MgO-saturated spinel, A represents Al 2 O 3, and AS represents Al 2 O 3 -saturated spinel formed at the interface. Because the spinel did not completely cover the refractory rod, both MgO and MgO-saturated spinel were detected at the interface of the refractory. The observed phases at the interface of the Al 2 O 3 crucible and steel after 60 or 120 min are also shown in Table 3. Because the formed spinel was partially distributed at the interface of Al 2 O 3 crucible, both Al 2 O 3 and Al 2 O 3 -saturated spinel were detected. 4. Discussion Both the C reduction and Al reduction may occur as reactions that cause the dissolution of Mg from MgO C refractory. In the following section, the role of these two reactions is clarified. The effect of Al content in steel melt on the Mg content after 60 min is shown in Fig. 11. From the results, it was observed that the Al in the steel had a positive effect on the Mg dissolution from the MgO C refractories. The effect of C content in the refractory on the dissolved Mg content after 60 min is shown in Fig. 12. When the C content in the refractory was less than 10%, its effect on the Mg dissolution was negligible, whereas more Mg was dissolved in the 2018 ISIJ 492

6 Table 4. Equilibrium constant of each reaction. Reaction Equilibrium Constant Ref. 2[Al] +3[O] =Al 2O 3(S) logk Al = T 33 [Mg] + [O] = MgO(s) logk Mg(1) = T 35 logk Mg(2) = T 36 C(gr) + [O] = CO(g) logk C= T 34 Al 2O 3(S) +MgO(S) =Al 2O 3 MgO(S) logk AlMg= T 33 Table 5. Equilibrium Mg content calculated by Eqs. (1) and (4). K Mg K Mg (1) K Mg (2) Eq. (1) Reduction by C (gr) Fig. 11. Effect of the Al content in steel melt on Mg dissolution behavior from MgO C refractory. Eq. (4) Reduction by Al 0.05%Al %Al Mg content by the immersion of G20 was approximately 1 ppm despite the Al content, as shown previously. These results indicate that the reduction reactions of MgO by Al in the steel and C in the refractory occurred independently. The equilibrium Mg content owing to C reduction by the reaction shown in Eq. (1) was calculated. In this calculation, the activities of MgO and C in the refractory were both assumed as unity (solid pure substance reference). The calculation of the C reduction reaction was performed using Eqs. (2) and (3) and the activity coefficient of Mg was calculated by Wagner s equation using the interaction parameters. 32) MgO s Cs CO Mg... (1) MgO s Mg O... (2) Fig. 12. Effect of the C content in refractory on Mg dissolution behavior from MgO C refractory. steel melt when the refractory with 20% C was employed. In the cases of G00 low-al or G00 high-al, where the C content in the refractory was almost zero, only the Al reduction reaction occurred and 1 2 ppm of Mg was dissolved in the steel. By comparison of the results between G20 high-al and G00 high-al, or between G20 low-al and G00 low-al, the Mg content in the steel was approximately 1 ppm higher when G20 was immersed. This result indicates that, in addition to the Al reduction reaction, the C reduction reaction occurred when MgO C refractory of high C content was in contact with the steel. By comparing the results of G20 high-al with G20 low- Al, the Mg content was increased by approximately 1 ppm with the increase in the Al content in the steel. By comparing the results of G00 high-al with G00 low-al, the increase in the Mg content with the increase in Al content was also approximately 1 ppm. Therefore, despite the C content in the refractory, the amount of Mg supplied by the Al reduction reaction is the same. On the contrary, the increase of Cgr O CO... (3) The equilibrium constants of the reactions shown in Eqs. (2) and (3) are summarized in Table 4. Various values have been reported as the equilibrium constant of the reaction between oxygen and magnesium in molten to form MgO (K Mg ), and this value has a great influence on the calculation results. Therefore, in this calculation, two equations are used and named as K Mg (1) 33) and K Mg (2). 34) The results, in which the partial pressure of CO is assumed as unity, are listed in Table 5. The equilibrium Mg owing to the C reduction reaction in the refractory was approximately 19 ppm when K Mg (1) was used, whereas it was approximately 1.6 ppm when K Mg (2) was used. Comparing these with the experimental result, the value calculated with K Mg (2) is much close to the observed increment of Mg with the use of G20. The differences in the dissolved Mg content between G20 high-al and G00 high-al, and between G20 low- Al and G00 low-al, increased from 5 to 30 min, but did not increase after 30 min. This shows that the C reduction occurred during the period of 5 to 30 min. On the contrary, the dissolution of C in the refractory into the steel melt mostly occurred before 5 min. Hence, the C reduction started after the dissolution of C at the immersed refractory ISIJ

7 surface. This indicates that the dissolution of C at the refractory surface did not affect the C reduction reaction. After the dissolution of C, the surface of the immersed refractory became porous and the porosity should increase with the C content in the refractory. The Mg vapor, generated by the C reduction inside the refractory, diffused through the pores and dissolved into the steel melt. Therefore, the concentration of the dissolved Mg content would be influenced by the porosity. However, from the experimental results, Mg dissolution owing to C reduction only occurred for G20 experiments and in order to explain this in detail, further investigation is required. The equilibrium Mg content owing to Al reduction shown in Eq. (4) was calculated using the equilibrium constants summarized in Table (4) 2 Al 4MgO s MgO AlO s 3 Mg In this calculation, the activities of MgO and MgO Al 2 O 3 were unity and 0.8, 5) respectively. The results are summarized in Table 5. The contents of Mg calculated using K Mg (1) were 26 ppm and 8 ppm when the Al contents were 0.25% and 0.05%, respectively. These values are significantly larger than the experimental results. However, those calculated using K Mg (2) were 2.2 ppm and 0.65 ppm when the Al contents were 0.25% and 0.05%, respectively. The Mg contents calculated using K Mg (2) are similar to the observed value. In both cases of calculation using K Mg (1) or (2), the equilibrium Mg contents by Al reduction and that by C reduction are similar values. Therefore, both reactions can be considered as the driving force to supply Mg to the steel from the MgO C refractory. In a previous study, the authors have conducted a similar experiment using magnesia chromite refractory. 35) In this case, the inclusion composition did not change and remain as Al 2 O 3 and Al 2 O 3 -saturated spinel fully covered the surface of the immersion rod and refractory. The steel melt compositions in this study together with the results of the previous study are plotted on an MgO/MgO Al 2 O 3 /Al 2 O 3 stability diagram, as shown in Fig. 13. As the equilibrium constant of the reaction between oxygen and magnesium in molten to form MgO, K Mg (1) and K Mg (2) are used and the results are shown in Figs. 13(a) and 13(b), respectively. Compared with the result for magnesia chromite refractory, the Mg content in this study was higher. Therefore, in both cases of K Mg, the steel melt composition after immersion for 30 min was located in the MgO Al 2 O 3 stable region. In the case of magnesia chromite refractory, as the surface of the refractory is fully covered by Al 2 O 3 -saturated spinel, the Mg content did not enter the MgO Al 2 O 3 stable region and the inclusion composition did not change. Compared to the previous result, by using MgO C refractory in this study, the MgO-saturated spinel was formed at the refractory surface, but this product only partially covered the surface. Consequently, the magnesia phase in the MgO C refractory was in direct contact with the steel melt and Mg was continuously supplied to the steel melt owing to Al reduction. In addition, when the carbon content in the refractory was high, Mg supply by C reduction occurred simultaneously. Therefore, the Mg content entered the MgO Al 2 O 3 stable region and the Al 2 O 3 inclusion transformed into spinel. Furthermore, Harada et al. 30) performed a similar experiment using a dense MgO rod (protection tube for a thermocouple). In their study, the Mg content in the steel did not enter the MgO Al 2 O 3 stable region and the inclusion composition did not change from Al 2 O 3 to spinel. In this study, even though the C content in the refractory was very low (G00), the Mg content increased and the inclusions were transformed to spinel. The main difference was the morphology of the spinel layer formed at the refractory surface. In the case of using dense MgO, the surface of the rod was fully covered by spinel. Therefore, the inhomogeneous structure of the commercial refractory played an important role in the transformation of the inclusions from Al 2 O 3 to spinel. 5. Conclusions Fig. 13. Composition of Al and Mg during the experiment on the stability diagram of MgO/MgO Al 2O 3/Al 2O 3 system calculated by (a) K Mg(1) and (b) K Mg(2), respectively. In this study, MgO C refractories with various C contents were immersed into Al-killed molten steel (0.05% and 0.25% Al) to investigate the Mg dissolution behavior from the MgO C refractory into the steel melt. The composition changes of the steel and inclusions with the immersion time were analyzed and the interface between refractory and steel was observed. The results are summarized as follows: (1) As the immersion period of the MgO C refractory rod increased, Mg was gradually dissolved into the steel and 2018 ISIJ 494

8 spinel inclusions were generated, regardless of the C content in the refractory and the Al content in the steel. (2) The dissolved Mg increased with the Al content in the steel melt. This result indicates that Al in the steel reduced the MgO in the MgO C refractory and subsequently supplied Mg to the steel. (3) The Mg content further increased when the MgO C refractory containing 20% C was used. This indicates that the C in the MgO C refractory also reduced the MgO in the refractory and supplied Mg. (4) The reduction of MgO by Al and C occurred independently, and the Mg content in the steel is the sum of the Mg supplied by these reactions. (5) In every case, the Al 2 O 3 inclusions changed to spinel and the MgO content in the inclusion was greater than that of the Al 2 O 3 -saturated spinel. At the interface between the refractory and steel, the spinel layer was partially formed but at the other interface, the MgO was directly in contact with the steel. Acknowledgment The authors are grateful to the Kurosaki-Harima Corporation for supplying the MgO C refractory rods. The authors gratefully acknowledge the financial support provided by the Iron and Steel Institute of Japan (ISIJ Research Promotion Grant) and the Technical Association of Refractories of Japan. REFERENCES 1) J.-H. Park and H. Todoroki: ISIJ Int., 50 (2010), ) Y. Murakami, T. Toriyama, Y. Koyasu and S. Nishida: Tetsu-to- Hagané, 79 (1993), ) H. Todoroki and N. Shiga: Proc. 4th Int. Cong. on the Science and Technology of Steelmaking, ISIJ, Tokyo, (2008), ) H. Todoroki, F. Kirihara, Y. Kanbe and Y. Miyazaki: Tetsu-to- Hagané, 100 (2014), ) K. Fuji, T. Nagasaka and M. Hino: ISIJ Int., 40 (2000), ) W.-Y. Cha, D.-S. Kim, Y.-D. Lee and J.-J. Park: ISIJ Int., 44 (2004), ) M. Jiang, X. Wang, B. Chen and W. Wang: ISIJ Int., 50 (2010), 95. 8) W. Yang, L. Zhang, X. Wang, Y. Ren, X. Liu and Q. Shan: ISIJ Int., 53 (2013), ) Y. Bi, A. V. Karasev and P. G. Jönsson: ISIJ Int., 53 (2013), ) T. Yoshioka, K. Nakahata, T. Kawamura and Y. Ohba: ISIJ Int., 56 (2016), ) E. Sunami, S. Nozaki, Y. Miura and T. Miura: Tetsu-to-Hagané, 68 (1982), S ) O. Suzuki, M. Oguchi, K. Nohara, T. Emi, Y. Mihara and Y. Katayama: Tetsu-to-Hagané, 68 (1982), S ) R. Nakao, H. Tsuboi, E. Takeuchi, H. Morishige and M. Miyake: Tetsu-to-Hagané, 73 (1987), S ) T. Nishi and K. Shinme: Tetsu-to-Hagané, 84 (1998), ) H. Matsuno and Y. Kikuchi: Tetsu-to-Hagané, 88 (2002), ) Y. Ehara, S. Yokoyama and M. Kawakami: Tetsu-to-Hagané, 93 (2007), ) Y. Ehara, S. Yokoyama and M. Kawakami: Tetsu-to-Hagané, 93 (2007), ) Y. Kang, B. Sahebkar, P. R. Scheller, K. Morita and S. Du: Metall. Mater. Trans. B, 42B (2011), ) J. H. Park, S. B. Lee and H. R. Gaye: Metall. Mater. Trans. B, 39B (2008), ) C. W. Seo, S. H. Kim, S. K. Jo, M. O. Suk and S. M. Byun: Metall. Mater. Trans. B, 41B (2010), ) J. H. Park: Metall. Mater. Trans. B, 38B (2007), ) J. H. Park and D. S. Kim: Metall. Mater. Trans. B, 36B (2005), ) S. K. Jo, B. Song and S. H. Kim: Metall. Mater. Trans. B, 41B (2002), ) H. Itoh, M. Hino and S. Ban-ya: Metall. Mater. Trans. B, 28B (1997), ) G. Okuyama, K. Yamaguchi, S. Takeuchi and K. Sorimachi: ISIJ Int., 40 (2000), ) V. Brabie: ISIJ Int., 36 (1996), S ) J. Shan, K. Okumura, M. Kuwabara and M. Sano: Tetsu-to-Hagané, 87 (2001), ) C. Liu, F. Huang, J. Suo and X. Wang: Metall. Mater. Trans. B, 47B (2016), ) C. Liu, F. Huang and X. Wang: Metall. Mater. Trans. B, 47B (2016), ) A. Harada, G. Miyano, N. Maruoka, H. Shibata and S. Kitamura: ISIJ Int., 54 (2014), ) Slag Atlas, 2nd ed., ed. by VDEh, Verlag Stahleisen, Düsseldorf, (1995), ) S.-K. Jo, B. Song and S.-H. Kim: Metall. Mater. Trans. B, 33B (2002), ) H. Itoh, M. Hino and S. Ban-ya: Tetsu-to-Hagané, 83 (1997), ) H. Ohta and H. Suito: Metall. Mater. Trans. B, 28B (1997), ) C. Liu, M. Yagi, X. Gao, S. Kim, S. Ueda and S. Kitamura: CAMP- ISIJ, 31 (2018), ISIJ

Dissolution Behavior of Mg from MgO into Molten Steel Deoxidized by Al

Dissolution Behavior of Mg from MgO into Molten Steel Deoxidized by Al , pp. 223 2238 Dissolution Behavior of Mg from MgO into Molten Steel Deoxidized by Al Akifumi HARADA, 1) Gaku MIYANO, 2) Nobuhiro MARUOKA, 3) Hiroyuki SHIBATA 3) and Shin-ya KITAMURA 3) * 1) Graduate Student,

More information

Influence of Sulfur on the Reaction between MnO SiO 2 FeO Oxide and Fe Mn Si Solid Alloy by Heat Treatment

Influence of Sulfur on the Reaction between MnO SiO 2 FeO Oxide and Fe Mn Si Solid Alloy by Heat Treatment , pp. 2678 2686 Influence of Sulfur on the Reaction between MnO SiO 2 FeO Oxide and Fe Mn Si Solid Alloy by Heat Treatment Kyung-Ho KIM, 1) * Hiroyuki SHIBATA 2) and Shin-ya KITAMURA 2) 1) Formerly Graduate

More information

Equilibrium Relationships between Oxide Compounds in MgO Ti 2 O 3 Al 2 O 3 with Iron at K and Variations in Stable Oxides with Temperature

Equilibrium Relationships between Oxide Compounds in MgO Ti 2 O 3 Al 2 O 3 with Iron at K and Variations in Stable Oxides with Temperature , pp. 2012 2018 Equilibrium Relationships between xide Compounds in 2 3 2 3 with Iron at 1 873 K and Variations in Stable xides with Temperature Hideki N 1) and Toshio IBUTA 2) 1) Division of Materials

More information

Influence of Solid CaO and Liquid Slag on Hot Metal Desulfurization

Influence of Solid CaO and Liquid Slag on Hot Metal Desulfurization , pp. 10 17 Influence of Solid CaO and Liquid Slag on Hot Metal Desulfurization Koichi TAKAHASHI, 1) Keita UTAGAWA, 2) Hiroyuki SHIBATA, 3) Shin-ya KITAMURA, 3) Naoki KIKUCHI 4) and Yasushi KISHIMOTO 5)

More information

Formation of MgO Al 2 O 3 Inclusions in High Strength Alloyed Structural Steel Refined by CaO SiO 2 Al 2 O 3 MgO Slag

Formation of MgO Al 2 O 3 Inclusions in High Strength Alloyed Structural Steel Refined by CaO SiO 2 Al 2 O 3 MgO Slag , pp. 885 890 Formation of MgO Al 2 O 3 Inclusions in High Strength Alloyed Structural Steel Refined by CaO SiO 2 Al 2 O 3 MgO Slag Min JIANG, Xinhua WANG, Bin CHEN and Wanjun WANG School of Metallurgical

More information

Thermodynamics of TiN Formation in Fe Cr Melts

Thermodynamics of TiN Formation in Fe Cr Melts ISIJ International, Vol. 45 (005), o. 8, pp. 06 Thermodynamics of Formation in Fe Cr Melts Jong-Jin PAK, Yong-Soo JEOG, ) In-Kook HOG, ) Woo-Yeol CHA, 3) Dong-Sik KIM 4) and Yun-Yong LEE 4) Division of

More information

Thermodynamic Interaction between Chromium and Aluminum in Liquid Fe Cr Alloys Containing 26 mass% Cr

Thermodynamic Interaction between Chromium and Aluminum in Liquid Fe Cr Alloys Containing 26 mass% Cr ISIJ International, Vol. 51 (2011), o. 2, pp. 208 213 Thermodynamic Interaction between Chromium and uminum in Liquid Fe loys Containing 26 mass% Jong-h J, 1) Moon-Sic JUG, 1) Jong-Hyun PARK, 1) Chang-h

More information

Form of Al Ti Oxide Produced by Al Ti Deoxidation Reaction at 1873 and 1473 K

Form of Al Ti Oxide Produced by Al Ti Deoxidation Reaction at 1873 and 1473 K Form of Al Ti Oxide Produced by Al Ti Deoxidation Reaction at 1873 and 1473 K Hiroyuki Matsuura Lecturer Department of Advanced Materials Science, Graduate School of Frontier Sciences, The University of

More information

Effect of Silicon on TiN Formation in Liquid Iron

Effect of Silicon on TiN Formation in Liquid Iron ISIJ International, Vol. 58 (018), ISIJ International, No. 8 Vol. 58 (018), No. 8, pp. 1437 144 Effect of licon on N Formation in Liquid Iron Kyung-Hyo DO, 1) Jung-Mock JANG, 1) Hae-Sol SON, 1) Min-Kyu

More information

Hiroyuki SHIBATA, 1) Yusuke WATANABE, 2) Keiji NAKAJIMA 3,4) and Shin-ya KITAMURA 1)

Hiroyuki SHIBATA, 1) Yusuke WATANABE, 2) Keiji NAKAJIMA 3,4) and Shin-ya KITAMURA 1) ISIJ International, Vol. 49 (009), No. 7, pp. 985 991 Degree of Undercooling and Contact Angle of Pure Iron at 1 933 K on Single-crystal Al O 3, MgO, and MgAl O 4 under Argon Atmosphere with Controlled

More information

Effect of Chromium on Nitrogen Solubility in Liquid Fe Cr Alloys Containing 30 mass% Cr

Effect of Chromium on Nitrogen Solubility in Liquid Fe Cr Alloys Containing 30 mass% Cr ISIJ International, Vol. 49 (009), No., pp. 668 67 Effect of Chromium on Nitrogen Solubility in Liquid Fe Alloys Containing 30 mass% Wan-Yi KIM, ) Chang-Oh LEE, ) Chul-Wook YUN ) and Jong-Jin PAK ) ) Formerly

More information

Trial on the Applicaton of Capillary Phenomenon of Solid CaO to Desulfurization of Liquid Fe

Trial on the Applicaton of Capillary Phenomenon of Solid CaO to Desulfurization of Liquid Fe Title Author(s) Citation Trial on the Applicaton of Capillary Phenomenon of Solid CaO to Desulfurization of Liquid Fe Tanaka, Toshihiro; Ogiso, Yumi; Ueda, Mitsuru; Lee, Joonho ISIJ INternational. 50(8)

More information

Activity Measurement of CaO SiO 2 AlO 1.5 MgO Slags Equilibrated with Molten Silicon Alloys

Activity Measurement of CaO SiO 2 AlO 1.5 MgO Slags Equilibrated with Molten Silicon Alloys ISIJ International, Vol. 40 (000), No. 6, pp. 561 566 Activity Measurement of CaO SiO AlO 1.5 MgO Slags Equilibrated with Molten Silicon Alloys Kousuke KUME, Kazuki MORITA 1), Takahiro MIKI ) and Nobuo

More information

Magnesium Deoxidation Equilibrium of Molten Fe Cr Ni Alloy Expressed by Quadratic Formalism and Redlich-Kister Type Polynomial

Magnesium Deoxidation Equilibrium of Molten Fe Cr Ni Alloy Expressed by Quadratic Formalism and Redlich-Kister Type Polynomial ISIJ International, Vol. 5, No. 6, pp. 895 9 Magnesium Deoxidation Equilibrium of Molten Fe Ni Alloy Expressed by Quadratic Formalism and Redlich-Kister Type Polynomial Ryo YAMAMT, Hiroshi FUKAYA, Naoya

More information

Influence of the Interfacial Tension on the Droplet Formation by Bubble Rupture in Sn(Te) and Salt System

Influence of the Interfacial Tension on the Droplet Formation by Bubble Rupture in Sn(Te) and Salt System ISIJ International, Vol. 56 (2016), ISIJ International, No. 11 Vol. 56 (2016), No. 11, pp. 1902 1909 Influence of the Interfacial Tension on the Droplet Formation by Bubble Rupture in Sn(Te) and Salt System

More information

Enrichment of Phosphorus Oxide in Steelmaking Slag by Utilizing Capillary Action

Enrichment of Phosphorus Oxide in Steelmaking Slag by Utilizing Capillary Action J. Sustain. Metall. (2016) 2:38 43 DOI 10.1007/s40831-015-0035-3 THEMATIC SECTION: SLAG VALORISATION TODAY Enrichment of Phosphorus Oxide in Steelmaking Slag by Utilizing Capillary Action Shohei Koizumi

More information

Dynamic Migration Process and Mechanism of Phosphorus Permeating into Metallic Iron with Carburizing in Coal-based Direct Reduction

Dynamic Migration Process and Mechanism of Phosphorus Permeating into Metallic Iron with Carburizing in Coal-based Direct Reduction ISIJ International, Vol. 55 (2015), ISIJ International, No. 12 Vol. 55 (2015), No. 12, pp. 2576 2581 Dynamic Migration Process and Mechanism of Phosphorus Permeating into Metallic Iron with Carburizing

More information

Effect of CO Gas Concentration on Reduction Rate of Major Mineral Phase in Sintered Iron Ore

Effect of CO Gas Concentration on Reduction Rate of Major Mineral Phase in Sintered Iron Ore , pp. 570 575 Effect of CO Gas Concentration on Reduction Rate of Major Mineral Phase in Sintered Iron Ore Daisuke NOGUCHI, 1) * Ko-ichiro OHNO, 2) Takayuki MAEDA, 2) Kouki NISHIOKA 3) and Masakata SHIMIZU

More information

Carbothermic Reduction of MgO by Microwave Irradiation

Carbothermic Reduction of MgO by Microwave Irradiation Materials Transactions,Vol. 44,No. 4 (2003) pp. 722 to 726 #2003 The Japan Institute of Metals Carbothermic Reduction of MgO by Microwave Irradiation Takeshi Yoshikawa* and Kazuki Morita Department of

More information

Xiao YANG, Hiroyuki MATSUURA and Fumitaka TSUKIHASHI

Xiao YANG, Hiroyuki MATSUURA and Fumitaka TSUKIHASHI , pp. 702 711 Reaction Behavior of P 2 O 5 at the Interface between Solid 2CaO SiO 2 and Liquid CaO SiO 2 FeO x P 2 O 5 Slags Saturated with Solid 5CaO SiO 2 P 2 O 5 at 1 573 K Xiao YANG, Hiroyuki MATSUURA

More information

Effect of Mg Addition on the Evolution of Inclusions in Al Ca Deoxidized Melts

Effect of Mg Addition on the Evolution of Inclusions in Al Ca Deoxidized Melts ISIJ International, Vol. 55 (2015), ISIJ International, No. 8 Vol. 55 (2015), No. 8, pp. 1541 1548 Effect of Addition on the Evolution of Inclusions in Ca Deoxidized Melts Tongsheng ZHANG,* Yi MIN, Chengjun

More information

Optimum Conditions for Phosphorus Recovery from Steelmaking Slag with High P 2 O 5 Content by Selective Leaching

Optimum Conditions for Phosphorus Recovery from Steelmaking Slag with High P 2 O 5 Content by Selective Leaching ISIJ International, Vol. 58 (2018), ISIJ International, No. 5 Vol. 58 (2018), No. 5, pp. 860 868 Optimum Conditions for Phosphorus Recovery from Steelmaking Slag with High P 2 O 5 Content by Selective

More information

Fundamental Research on a Rational Steelmaking Slag Recycling System by Phosphorus Separation and Collection

Fundamental Research on a Rational Steelmaking Slag Recycling System by Phosphorus Separation and Collection Fundamental Research on a Rational Steelmaking Slag Recycling System by Phosphorus Separation and Collection Kenji Nakase ) *, Akitoshi Matsui ), Naoki Kikuchi ) Yuji Miki ), Yasuo Kishimoto ), Itsuo Goto

More information

Analysis of Hot Metal Desiliconization Behavior in Converter Experiments by Coupled Reaction Model

Analysis of Hot Metal Desiliconization Behavior in Converter Experiments by Coupled Reaction Model , pp. 316 325 Analysis of Hot Metal Desiliconization Behavior in Converter Experiments by Coupled Reaction Model Minoru ISHIKAWA Corporate Research & Development Laboratories, Sumitomo Metal Industries,

More information

Carbide Capacity of CaO SiO 2 CaF 2 ( Na 2 O) Slags at K

Carbide Capacity of CaO SiO 2 CaF 2 ( Na 2 O) Slags at K ISIJ International, Vol. 44 (004), No., pp. 3 8 Carbide Capacity of CaO SiO CaF ( Na O) Slags at 1 773 K Joo Hyun PARK and Dong Joon MIN 1) Stainless Steel Research Group, Technical Research Laboratory,

More information

Influence of Steel Grade on Oxidation Rate of Molten Steel in Tundish

Influence of Steel Grade on Oxidation Rate of Molten Steel in Tundish , pp. 831 840 Influence of Steel Grade on Oxidation Rate of Molten Steel in Tundish Katsuhiro SASAI and Akihiro MATSUZAWA Oita R & D Laboratories, Nippon Steel Corporation, 1 Oaza-Nishinosu, Oita, Oita-ken,

More information

Trial of capillary refining by porous CaO with molten slag

Trial of capillary refining by porous CaO with molten slag Trial of capillary refining by porous CaO with molten slag Toshihiro TANAKA, Masanori SUZUKI Division of Materials and Manufacturing Science, Graduate School of Engineering, Osaka University, 2-1 Suita,

More information

Phase Equilibrium for the CaO SiO 2 FeO 5mass%P 2 O 5 5mass%Al 2 O 3 System for Dephosphorization of Hot Metal Pretreatment

Phase Equilibrium for the CaO SiO 2 FeO 5mass%P 2 O 5 5mass%Al 2 O 3 System for Dephosphorization of Hot Metal Pretreatment , pp. 1381 1385 Phase Equilibrium for the CaO SiO 2 FeO 5mass%P 2 O 5 5mass%Al 2 O 3 System for Dephosphorization of Hot Metal Pretreatment Xu GAO, 1) Hiroyuki MATSUURA, 1) * Masaki MIYATA 2) and Fumitaka

More information

The Study on Sulfur and Nickel Distribution Behavior of Nickel between Fe-Ni alloy and MgO-FeO-SiO 2 Slag System

The Study on Sulfur and Nickel Distribution Behavior of Nickel between Fe-Ni alloy and MgO-FeO-SiO 2 Slag System The Study on Sulfur and Nickel Distribution Behavior of Nickel between Fe-Ni alloy and MgO-FeO-SiO 2 Slag System Ki Deok Kim 1), Hyung Sub Eom 2), Eun Jin Jung 1), Wan Wook Huh 1), and Dong Joon Min 1)

More information

Sulphide Capacities of CaO Al 2 O 3 SiO 2 MgO MnO Slags in the Temperature Range K

Sulphide Capacities of CaO Al 2 O 3 SiO 2 MgO MnO Slags in the Temperature Range K ISIJ International, Vol. 49 (009), No., pp. 56 63 Sulphide Capacities of CaO Al O 3 SiO MgO MnO Slags in the Temperature Range 673 773 K Yoshinori TANIGUCHI,,) Nobuo SANO 3) and Seshadri SEETHARAMAN )

More information

Acceleration of Carburization and Melting of Reduced Iron in Iron Ore Carbon Composite Using Different Types of Carbonaceous Materials

Acceleration of Carburization and Melting of Reduced Iron in Iron Ore Carbon Composite Using Different Types of Carbonaceous Materials ISIJ International, Vol. 57 (2017), ISIJ International, No. 11 Vol. 57 (2017), No. 11, pp. 1928 1936 Acceleration of Carburization and Melting of Reduced Iron in Iron Ore Carbon Composite Using Different

More information

Activities of SiO 2 in Some CaO Al 2 O 3 SiO 2 ( 10%MgO) Melts with Low SiO 2 Contents at K

Activities of SiO 2 in Some CaO Al 2 O 3 SiO 2 ( 10%MgO) Melts with Low SiO 2 Contents at K ISIJ International, Vol. 47 (007), No. 6, pp. 805 810 Activities of SiO in Some CaO Al O 3 SiO ( 10%MgO) Melts with Low SiO Contents at 1 873 K YoungJo KANG, 1) Du SICHEN ) and Kazuki MORITA 3) 1) Graduate

More information

Recovery of Phosphorus from Modified Steelmaking Slag with High P 2 O 5 Content via Leaching and Precipitation

Recovery of Phosphorus from Modified Steelmaking Slag with High P 2 O 5 Content via Leaching and Precipitation ISIJ International, Vol. 58 (2018), ISIJ International, No. 5 Vol. 58 (2018), No. 5, pp. 833 841 Recovery of Phosphorus from Modified Steelmaking Slag with High P 2 O 5 Content via Leaching and Precipitation

More information

Reduction and Disintegration Behavior of Sinter under N 2 CO CO 2 H 2 H 2 O Gas at 773 K

Reduction and Disintegration Behavior of Sinter under N 2 CO CO 2 H 2 H 2 O Gas at 773 K ISIJ International, Vol. 55 (2015), ISIJ International, No. 6 Vol. 55 (2015), No. 6, pp. 1181 1187 Reduction and Disintegration Behavior of Sinter under N 2 CO CO 2 H 2 H 2 O Gas at 773 K Taichi MURAKAMI,*

More information

Corrosion Mechanism of Commercial MgO C Refractories in Contact with Different Gas Atmospheres

Corrosion Mechanism of Commercial MgO C Refractories in Contact with Different Gas Atmospheres , pp. 760 767 Corrosion Mechanism of Commercial MgO C Refractories in Contact with Different Gas Atmospheres Sune JANSSON, 1) Voicu BRABIE 2) and Pär JÖNSSON 3) 1) Arvika Gjuteri AB, SE-671 82 Arvika,

More information

EXPERIMENTAL INVESTIGATION OF PHASE EQUILIBRIA OF SUBSYSTEMS IN THE MnO-SiO 2 -Al 2 O 3 -MnS SYSTEM

EXPERIMENTAL INVESTIGATION OF PHASE EQUILIBRIA OF SUBSYSTEMS IN THE MnO-SiO 2 -Al 2 O 3 -MnS SYSTEM EXPERIMENTAL INVESTIGATION OF PHASE EQUILIBRIA OF SUBSYSTEMS IN THE MnO-SiO 2 -Al 2 O 3 -MnS SYSTEM Dae-Hee Woo, Henri Gaye & Hae-Geon Lee Pohang University of Science and Technology, Korea Youn-Bae Kang

More information

Mitsuhiro NUMATA* and Yoshihiko HIGUCHI

Mitsuhiro NUMATA* and Yoshihiko HIGUCHI , pp. 2019 2025 Effect of Changes in Sulfur and Oxygen Concentration on Change in Nitrogen Concentration in Liquid Steel during CaO CaSi Powder Blowing under Reduced Pressure Mitsuhiro NUMATA* and Yoshihiko

More information

Gasification and Reduction Behavior of Iron Ore-Carbon Composite under High Pressure

Gasification and Reduction Behavior of Iron Ore-Carbon Composite under High Pressure , pp. 1778 1784 Gasification and Reduction Behavior of Iron Ore-Carbon Composite under High Pressure Zhou QI, Taichi MURAKAMI* and Eiki KASAI Graduate School of Environmental Studies, Tohoku University,

More information

THERMODYNAMICS OF MANGANESE OXIDE IN CaO-SIO 2 -MgO SAT. -Cr 2 O 3 -MnO SLAGS FOR THE PRODUCTION OF HIGH MN STAINLESS STEEL

THERMODYNAMICS OF MANGANESE OXIDE IN CaO-SIO 2 -MgO SAT. -Cr 2 O 3 -MnO SLAGS FOR THE PRODUCTION OF HIGH MN STAINLESS STEEL THERMODYNAMICS OF MANGANESE OXIDE IN CaO-SIO 2 -MgO SAT. -Cr 2 O 3 -MnO SLAGS FOR THE PRODUCTION OF HIGH MN STAINLESS STEEL Mane Aline Van Ende, Muxiner Guo, Peter Jones, Bart Blanpain & Patrick Wollants

More information

Melting Rate of Iron Oxide Pellets into Iron Melt*

Melting Rate of Iron Oxide Pellets into Iron Melt* UDC 622.341.1-188:669.046.512:669.162.263.24 Melting Rate of Iron Oxide Pellets into Iron Melt* By Akira SATO,** Ryuichi NAKAGAWA,** Shiro Akira FUKUZAWA** and Tsuyoshi OZAKI** YOSHIMATS U,** Synopsis

More information

The formation of an inner slag layer during the dissolution of MgO particles in ladle slag

The formation of an inner slag layer during the dissolution of MgO particles in ladle slag The formation of an inner slag layer during the dissolution of MgO particles in ladle slag Deyong Wang, Maofa Jiang, Xiaobing Li, Tongsheng Zhang and Chengjun Liu Dept. Ferrous Metallurgy, School of Materials

More information

Effect of Nano-Sized Fe 2 O 3 on Microstructure and Hydration Resistance of MgO-CaO Refractories

Effect of Nano-Sized Fe 2 O 3 on Microstructure and Hydration Resistance of MgO-CaO Refractories Int. J. Nanosci. Nanotechnol., Vol. 12, No. 1, March. 2016, pp. 19-26 Effect of Nano-Sized Fe 2 O 3 on Microstructure and Hydration Resistance of MgO-CaO Refractories S. G. Kahrizsangi*, A. Nemati, A.

More information

Chromium distribution between slag and non-carbon saturated metal phases under changing partial pressure of carbon monoxide

Chromium distribution between slag and non-carbon saturated metal phases under changing partial pressure of carbon monoxide PAN, X. and ERIC, R.H. Chromium distribution between slag and non-carbon saturated metal phases under changing partial pressure of carbon monoxide. VII International Conference on Molten Slags Fluxes and

More information

Thermodynamic Interactions of Nb and Mo on Ti in Liquid Iron

Thermodynamic Interactions of Nb and Mo on Ti in Liquid Iron Materials Transactions, Vol. 49, o. 4 (28) pp. 854 to 859 #28 The Japan Institute of Metals EXPRESS REGULAR ARTICLE Thermodynamic Interactions of and Mo on in Liquid Iron Tae-In Chung* 1, Joong-Beom Lee*

More information

Can Fluorspar be replaced in steelmaking? Eugene Pretorius Baker Refractories

Can Fluorspar be replaced in steelmaking? Eugene Pretorius Baker Refractories Can Fluorspar be replaced in steelmaking? By Eugene Pretorius Baker Refractories I) Introduction The use of fluorspar in steelmaking is a controversial issue. A number of studies have shown that there

More information

Reoxidation of Al Ti Containing Steels by CaO Al 2 O 3 MgO SiO 2 Slag

Reoxidation of Al Ti Containing Steels by CaO Al 2 O 3 MgO SiO 2 Slag , pp. 1669 1678 Reoxidation of Al Ti Containing Steels by CaO Al 2 O 3 MgO SiO 2 Slag Dong-Chul PARK, In-Ho JUNG, 1) Peter C. H. RHEE and Hae-Geon LEE Department of Materials Science & Engineering, Pohang

More information

Effect of Al 2 O 3 or MgO on Liquidus Line in the FeO X Corner of FeO X -SiO 2 -CaO System at 1523 K under Various Oxygen Partial Pressures

Effect of Al 2 O 3 or MgO on Liquidus Line in the FeO X Corner of FeO X -SiO 2 -CaO System at 1523 K under Various Oxygen Partial Pressures High Temp. Mater. Proc., Vol. 30 (2011), pp. 333 338 Copyright 2011 De Gruyter. DOI 10.1515/HTMP.2011.053 Effect of Al 2 O 3 or MgO on Liquidus Line in the FeO X Corner of FeO X -SiO 2 -CaO System at 1523

More information

Effect of Oxygen Partial Pressure on Liquidus for the CaO SiO 2 FeO x System at K

Effect of Oxygen Partial Pressure on Liquidus for the CaO SiO 2 FeO x System at K , pp. 2040 2045 Effect of Oxygen Partial Pressure on Liquidus for the CaO SiO 2 FeO x System at 1 573 K Hisao KIMURA, Shuji ENDO 1), Kohei YAJIMA 2) and Fumitaka TSUKIHASHI 2) Institute of Industrial Science,

More information

PYROMETALLURGICAL RECOVERY OF CHROMIUM FROM SLAGS

PYROMETALLURGICAL RECOVERY OF CHROMIUM FROM SLAGS PYROMETALLURGICAL RECOVERY OF CHROMIUM FROM SLAGS E. Vardar HATCH, South Africa Rauf Hurman Eric University of the Witwatersrand, South Africa ABSTRACT The dissolution and reduction of chromite particles

More information

Activities of the Constituents in Spinel Solid Solution and Free Energies of Formation of MgO, MgO Al 2 O 3

Activities of the Constituents in Spinel Solid Solution and Free Energies of Formation of MgO, MgO Al 2 O 3 , pp. 1059 1066 Activities of the Constituents in Spinel Solid Solution and Free Energies of Formation of MgO, MgO Al 2 O 3 Katsumori FUJII, Tetsuya NAGASAKA 1) and Mitsutaka HINO 1) Formerly graduate

More information

Effect of Silicon Carbide on Reactions between Molten Steel and Fused Magnesia Silicon Carbide Composite Refractory

Effect of Silicon Carbide on Reactions between Molten Steel and Fused Magnesia Silicon Carbide Composite Refractory Effect of Silicon Carbide on Reactions between Molten Steel and Fused Magnesia Silicon Carbide Composite Refractory Interactions between MgO SiC composite and liquid steel resulted in decomposition of

More information

Recovery of Molybdenum from Spent Lubricant

Recovery of Molybdenum from Spent Lubricant , pp. 1217 1224 Recovery of Molybdenum from Spent Lubricant Tran Van LONG, 1) Takahiro MIKI, 2) Yasushi SASAKI 3) and Mitsutaka HINO 4) 1) Formerly Graduate Student, Graduate School of Engineering, Tohoku

More information

Mechanisms of Pig-iron Making from Magnetite Ore Pellets Containing Coal at Low Temperature

Mechanisms of Pig-iron Making from Magnetite Ore Pellets Containing Coal at Low Temperature , pp. 1316 1323 Mechanisms of Pig-iron Making from Magnetite Ore Pellets Containing Coal at Low Temperature Kazuhiro NAGATA, Rie KOJIMA, 1) Taichi MURAKAMI, Masahiro SUSA 1) and Hiroyuki FUKUYAMA Department

More information

Oxygen Permeability through Internal Oxidation Zone in Fe Cr Alloys under Dry and Humid Conditions at 973 and K

Oxygen Permeability through Internal Oxidation Zone in Fe Cr Alloys under Dry and Humid Conditions at 973 and K , pp. 259 263 Oxygen Permeability through Internal Oxidation Zone in Fe Cr Alloys under Dry and Humid Conditions at 973 and 1 073 K Asep Ridwan SETIAWAN, 1) Mohd HANAFI BIN ANI, 2) Mitsutoshi UEDA, 2)

More information

Prediction of SiO 2 -Al 2 O 3 -CrO x complex inclusions in steel containing 16 per cent Cr-Si-Al-Mn

Prediction of SiO 2 -Al 2 O 3 -CrO x complex inclusions in steel containing 16 per cent Cr-Si-Al-Mn CHOI, J.H., LEE. S.B., LEE, H.G. RHEE, P.C. and KIM, D.S. Prediction of SiO 2 -Al 2 O 3 -CrO x complex inclusions in steel containing 16 per cent Cr-Si-Al- Mn. VII International Conference on Molten Slags,

More information

Trial to Evaluate Wettability of Liquid Zn with Steel Sheets Containing Si and Mn

Trial to Evaluate Wettability of Liquid Zn with Steel Sheets Containing Si and Mn Title Author(s) Citation Trial to Evaluate Wettability of Liquid Zn with Steel Sheets Containing Si and Mn Shimada, Shunsuke; Takada, Yoshihisa; Lee, Joonho; Tanaka, Toshihiro ISIJ International. 48(9)

More information

Sulfide Capacity of CaO-SiO 2 -FeO-Al 2 O 3 -MgO satd. Slag

Sulfide Capacity of CaO-SiO 2 -FeO-Al 2 O 3 -MgO satd. Slag ISIJ International, Vol. 56 (06), ISIJ International, No. 4 Vol. 56 (06), No. 4, pp. 50 56 Sulfide Capacity of CaO-SiO -FeO-Al O 3 -MgO satd. Slag Youngjoo PARK and Dong Joon MIN* Department of Materials

More information

Influence of Al 2 O 3 and MgO on the Viscosity and Stability of CaO MgO SiO 2 Al 2 O 3 Slags with CaO/SiO 2 = 1.0

Influence of Al 2 O 3 and MgO on the Viscosity and Stability of CaO MgO SiO 2 Al 2 O 3 Slags with CaO/SiO 2 = 1.0 ISIJ International, Vol. 57 (2017), ISIJ International, No. 6 Vol. 57 (2017), No. 6, pp. 978 982 Influence of Al 2 O 3 and MgO on the Viscosity and Stability of CaO MgO SiO 2 Al 2 O 3 Slags with CaO/SiO

More information

SOLUBILITY OF MgO IN CaO-BASED SLAGS

SOLUBILITY OF MgO IN CaO-BASED SLAGS SOLUBILITY OF MgO IN CaO-BASED SLAGS Sung-Mo Jung & Chang-Hee Rhee Pohang University of Science and Technology, Korea Dong-Joon Min Yonsei University, Korea ABSTRACT The solubilities of MgO obtained from

More information

Characteristics of Particle Size Distribution of Deoxidation Products with Mg, Zr, Al, Ca, Si/Mn and Mg/Al in Fe 10mass%Ni Alloy

Characteristics of Particle Size Distribution of Deoxidation Products with Mg, Zr, Al, Ca, Si/Mn and Mg/Al in Fe 10mass%Ni Alloy , pp. 14 21 Characteristics of Particle Size Distribution of Deoxidation Products with Mg, Zr, Al, Ca, Si/Mn and Mg/Al in Fe 10mass%Ni Alloy Hiroki OHTA 1) and Hideaki SUITO 1) 1) Institute for Multidisciplinary

More information

Thermodynamic determination of low melting area in CaO-Al 2 O 3 -SiO 2 -MgO-MnO system inclusion and its control in spring steel

Thermodynamic determination of low melting area in CaO-Al 2 O 3 -SiO 2 -MgO-MnO system inclusion and its control in spring steel Thermodynamic determination of low melting area in CaO-Al 2 O 3 -SiO 2 -MgO-MnO system inclusion and its control in spring steel Bo ZHANG 1),2), Fuming WANG 1),2) and Changrong LI 3) 1) School of Metallurgical

More information

Evaluation of Viscosity of Molten SiO_2-CaO-MgO- Al_2O_3 Slags in Blast Furnace Operation

Evaluation of Viscosity of Molten SiO_2-CaO-MgO- Al_2O_3 Slags in Blast Furnace Operation Title Author(s) Citation Evaluation of Viscosity of Molten SiO_2-CaO-MgO- Al_2O_3 Slags in Blast Furnace Operation Nakamoto, Masashi; Tanaka, Toshihiro; Lee, Joonho; Usui, Tateo ISIJ International. 44(12)

More information

International Conference on Material Science and Application (ICMSA 2015)

International Conference on Material Science and Application (ICMSA 2015) International Conference on Material Science and Application (ICMSA 2015) Effect of Magnesium Addition on the Inclusions Composition in the Cast Microstructure of HSLA Steel Yan LIU 1, a,*, Kai WANG 2,

More information

Corrosion of Nozzle Refractories by Liquid Inclusion in High Oxygen Steels

Corrosion of Nozzle Refractories by Liquid Inclusion in High Oxygen Steels , pp. 1281 1288 Corrosion of Nozzle Refractories by Liquid Inclusion in High Oxygen Steels Mun-Kyu CHO 1) and In-Ho JUNG 2) 1) Research Institute of Industrial Science and Technology, Pohang, Republic

More information

Effect of CO 2 Content in Quicklime on Dissolution Rate of Quicklime in Steelmaking Slags

Effect of CO 2 Content in Quicklime on Dissolution Rate of Quicklime in Steelmaking Slags ISIJ International, Vol. 57 (2017), ISIJ International, No. 10 Vol. 57 (2017), No. 10, pp. 1684 1690 Effect of CO 2 Content in Quicklime on Dissolution Rate of Quicklime in Steelmaking Slags Nobuhiro MARUOKA,*

More information

Wettability between Porous MgAl 2 O 4 Substrates and Molten Iron

Wettability between Porous MgAl 2 O 4 Substrates and Molten Iron Materials Transactions, Vol. 50, No. 11 (2009) pp. 2552 to 2556 #2009 The Japan Institute of Metals Wettability between Porous MgAl 2 O 4 Substrates and Molten Iron Naotaka Fukami*, Ryohei Wakamatsu*,

More information

Phase Equilibrium between Ni S Melt and CaO Al 2 O 3 Based Slag in CO CO 2 SO 2 Gas Mixtures at 1773 K

Phase Equilibrium between Ni S Melt and CaO Al 2 O 3 Based Slag in CO CO 2 SO 2 Gas Mixtures at 1773 K Materials Transactions, Vol. 43, No. 11 () pp. 873 to 879 c The Japan Institute of Metals Phase Equilibrium between Ni S Melt and CaO Al O 3 Based Slag in CO CO SO Gas Mixtures at 1773 K Hector M. Henao,

More information

Effect of Mineral Composition and Pore Structure on Reducibility of Composite Iron Ore Sinter

Effect of Mineral Composition and Pore Structure on Reducibility of Composite Iron Ore Sinter , pp. 722 728 Effect of Mineral Composition and Pore Structure on Reducibility of Composite Iron Ore Sinter Hideki ONO, 1) Yusuke DOHI, 2) Yuki ARIKATA 3) and Tateo USUI 1) 1) Division of Materials and

More information

MOLTEN SLAGS, FLUXES AND SALTS '97 CONFERENCE The Effect of Chromium Oxide on the Phase Relations in the Ca0-Mg0-Ah03"Si0 2 - Fe0x System

MOLTEN SLAGS, FLUXES AND SALTS '97 CONFERENCE The Effect of Chromium Oxide on the Phase Relations in the Ca0-Mg0-Ah03Si0 2 - Fe0x System The Effect of Chromium Oxide on the Phase Relations in the Ca0-Mg0-Ah03"Si0 2 - Fe0x System Rachel Rait, Sharif Jahanshahi and Shouyi Sun. G K Williams Co-operative Research Centre for Extractive Metallurgy,

More information

Improvement of Reactivity of Carbon Iron Ore Composite with Biomass Char for Blast Furnace

Improvement of Reactivity of Carbon Iron Ore Composite with Biomass Char for Blast Furnace , pp. 1505 1512 Improvement of Reactivity of Carbon Iron Ore Composite with Biomass Char for Blast Furnace Shigeru UEDA, Kentaro WATANABE, Kazunari YANAGIYA, Ryo INOUE and Tatsuro ARIYAMA Institute of

More information

Recovery of Fe and P from CaO-SiO 2 -Fe t O-P 2 O 5 Slag by Microwave Treatment

Recovery of Fe and P from CaO-SiO 2 -Fe t O-P 2 O 5 Slag by Microwave Treatment Materials Transactions, Vol. 52, No. 12 (211) pp. 2233 to 2238 #211 The Japan Institute of Metals EXPRESS REGULAR ARTICLE Recovery of Fe and P from CaO-SiO 2 -Fe t O-P 2 O 5 Slag by Microwave Treatment

More information

The effect of carbon in slag on steel reoxidation by CaO-SiO 2 - Al 2 O 3 -MgO-MnO-Fe t O slags

The effect of carbon in slag on steel reoxidation by CaO-SiO 2 - Al 2 O 3 -MgO-MnO-Fe t O slags SUK, M.-O., JO, S.-K., SEO, C.-W., KIM, S.-H., KIM, J.-S., SHIM, S.-C., and KIM, J.-T. The effect of carbon in slag on steel reoxidation by CaO-SiO - Al O 3 -MgO-MnO-Fe t O slags. VII International Conference

More information

EFFECT OF ACTIVITY COEFFICIENT ON PHOSPHATE STABILITY IN MOLTEN SLAGS

EFFECT OF ACTIVITY COEFFICIENT ON PHOSPHATE STABILITY IN MOLTEN SLAGS EFFECT OF ACTIVITY COEFFICIENT ON PHOSPHATE STABILITY IN MOLTEN SLAGS Moon Kyung Cho & Dong Joon Min Yonsei University, Korea ABSTRACT Recently, demands of special alloys which would be achieved with high

More information

Fabrication of Lotus-type Porous Aluminum by Continuous Casting Technique

Fabrication of Lotus-type Porous Aluminum by Continuous Casting Technique roceedings of the 12th International Conference on Aluminium Alloys, September 5-9, 2010, Yokohama, Japan 2010 2010 The Japan Institute of Light Metals pp. 1639-1644 1639 Fabrication of Lotus-type orous

More information

Study on reduction behavior of molybdenum trioxide in molten steel

Study on reduction behavior of molybdenum trioxide in molten steel Indian Journal of Engineering & Materials Sciences Vol. 22, August 2015, pp. 460-464 Study on reduction behavior of molybdenum trioxide in molten steel Hangyu Zhu*, Jianli Li, Zhengliang Xue & Wei Wang

More information

Korkealämpötilaprosessit

Korkealämpötilaprosessit Korkealämpötilaprosessit Pyrometallurgiset jalostusprosessit Lisäaineisto sulkeumien analysoinnista Inclusion analyses Many inclusions are not found until they cause problems in the final product - Reclamations

More information

Design of Bed Structure Aiming the Control of Void Structure Formed in the Sinter Cake

Design of Bed Structure Aiming the Control of Void Structure Formed in the Sinter Cake , pp. 538 543 Design of Bed Structure Aiming the Control of Void Structure Formed in the Sinter Cake Eiki KASAI, Sergey KOMAROV, Koichi NUSHIRO 1) and Masanori NAKANO 2) Institute of Multidisciplinary

More information

Fabrication and thermal properties of Al 2 TiO 5 /Al 2 O 3 composites

Fabrication and thermal properties of Al 2 TiO 5 /Al 2 O 3 composites Materials Science-Poland, Vol. 28, No. 3, 2010 Fabrication and thermal properties of Al 2 TiO 5 /Al 2 O 3 composites M. LI, F. CHEN, Q. SHEN *, L. ZHANG State Key Lab of Advanced Technology for Materials

More information

KITAMURA Laboratory ( )

KITAMURA Laboratory ( ) [Research Activities] KITAMURA Laboratory (2008.4 2009.3) Base Materials Processing Research Field Research Center for Sustainable Materials Engineering The production processes of base materials, such

More information

Influence of Slag Composition on Slag Iron Interfacial Tension

Influence of Slag Composition on Slag Iron Interfacial Tension , pp. 407 412 Influence of Slag Composition on Slag Iron Interfacial Tension Haiping SUN, 1) Kunihiko NAKASHIMA 2) and Katsumi MORI 2) 1) CRC for Coal in Sustainable Development, School of Materials Science

More information

Influence of TiC on the Viscosity of CaO MgO Al 2 O 3 SiO 2 TiC Suspension System

Influence of TiC on the Viscosity of CaO MgO Al 2 O 3 SiO 2 TiC Suspension System , pp. 922 927 Influence of TiC on the Viscosity of CaO MgO Al 2 O 3 SiO 2 TiC Suspension System Guo-Hua ZHANG, 1,2) * Yu-Lan ZHEN 1,2) and Kuo-Chih CHOU 1,2) 1) State Key Laboratory of Advanced Metallurgy,

More information

INVESTIGATION OF THE WETTING CHARACTERISTICS OF LIQUID Fe-19%Cr-10%Ni ALLOYS ON THE ALUMINA AND DOLOMITE SUBSTRATES AT 1873 K

INVESTIGATION OF THE WETTING CHARACTERISTICS OF LIQUID Fe-19%Cr-10%Ni ALLOYS ON THE ALUMINA AND DOLOMITE SUBSTRATES AT 1873 K INVESTIGATION OF THE WETTING CHARACTERISTICS OF LIQUID Fe-19%Cr-10%Ni ALLOYS ON THE ALUMINA AND DOLOMITE SUBSTRATES AT 1873 K Joonho Lee & Minsoo Shin Korea University, Korea Joo-Hyun Park University of

More information

Jian YANG, Keiji OKUMURA, 1) Mamoru KUWABARA 1) and Masamichi SANO 1)

Jian YANG, Keiji OKUMURA, 1) Mamoru KUWABARA 1) and Masamichi SANO 1) , pp. 685 693 Behavior of Magnesium in the Desulfurization Process of Molten Iron with Magnesium Vapor Produced In-situ by Aluminothermic Reduction of Magnesium Oxide Jian YANG, Keiji OKUMURA, 1 Mamoru

More information

STUDY ON SLAG RESISTANCE OF REFRACTORIES IN SUBMERGED ARC FURNACES MELTING FERRONICKEL

STUDY ON SLAG RESISTANCE OF REFRACTORIES IN SUBMERGED ARC FURNACES MELTING FERRONICKEL STUDY ON SLAG RESISTANCE OF REFRACTORIES IN SUBMERGED ARC FURNACES MELTING FERRONICKEL Dong HU 1 Pei-Xiao LIU 2 Shao-Jun CHU 1 1 School of Metallurgical and Ecological Engineering, University of Science

More information

DISSOLUTION RATE OF PURE CaO AND INDUSTRIAL LIME IN CONVERTER SLAGS*

DISSOLUTION RATE OF PURE CaO AND INDUSTRIAL LIME IN CONVERTER SLAGS* 74 DISSOLUTION RATE OF PURE CaO AND INDUSTRIAL LIME IN CONVERTER SLAGS* Elizaveta Cheremisina 1 Johannes Schenk 2 Ludwig Nocke 3 Alexander Paul 4 Gerald Wimmer 5 Abstract In steelmaking process lime serves

More information

Fundamental Study of Sn Removal from Hot Metal by NH 3 Gas Blowing

Fundamental Study of Sn Removal from Hot Metal by NH 3 Gas Blowing , pp. 1807 1812 Fundamental Study of Sn Removal from Hot Metal by NH 3 Gas Blowing Naotaka SASAKI, 1) * Yu-ichi UCHIDA, 1) Yu-ji MIKI 1) and Hidetoshi MATSUNO 2) 1) Steelmaking Research Department, Steel

More information

Effect of Na 2 O and B 2 O 3 on the Distribution of P 2 O 5 between Solid Solution and Liquid Phases Slag

Effect of Na 2 O and B 2 O 3 on the Distribution of P 2 O 5 between Solid Solution and Liquid Phases Slag , pp. 766 773 Effect of Na 2 O and B 2 O 3 on the Distribution of P 2 O 5 between Solid Solution and Liquid Phases Slag Senlin XIE, 1) Wanlin WANG, 1) * Yongzhen LIU 1) and Hiroyuki MATSUURA 2) 1) School

More information

Thermodynamic database of P 2 O 5 -containing oxide system for De-P process in steelmaking

Thermodynamic database of P 2 O 5 -containing oxide system for De-P process in steelmaking Thermodynamic database of P 2 O 5 -containing oxide system for De-P process in steelmaking *In-Ho JUNG, Pierre HUDON, Wan-Yi KIM, Marie-Aline VAN ENDE, Miftaur RAHMAN, Gabriel Garcia CURIEL, Elmira Moosavi

More information

Hot Metal Desulfurization by CaO SiO 2 CaF 2 Na 2 O Slag Saturated with MgO

Hot Metal Desulfurization by CaO SiO 2 CaF 2 Na 2 O Slag Saturated with MgO ISIJ International, Vol. 50 (00), No., pp. 5 Hot Metal Desulfurization by CaO SiO CaF Na O Slag Saturated with MgO Moon Kyung CHO, ) Jin CHENG, ) Joo Hyun PARK ) and Dong Joon MIN ) ) Department of Metallurgical

More information

FUNDAMENTAL STUDY ON MAGNESIOTHERMIC REDUCTION OF TITANIUM SUBCHLORIDES. O. Takeda a and T. H. Okabe *

FUNDAMENTAL STUDY ON MAGNESIOTHERMIC REDUCTION OF TITANIUM SUBCHLORIDES. O. Takeda a and T. H. Okabe * FUNDAMENTAL STUDY ON MAGNESIOTHERMIC REDUCTION OF TITANIUM SUBCHLORIDES O. Takeda a and T. H. Okabe * Institute of Industrial Science, The University of Tokyo 4-6-1 Komaba, Meguro-ku, Tokyo 153-8505, Japan

More information

Effect of B 2 O 3 on Melting Temperature, Viscosity and Desulfurization Capacity of CaO based Refining Flux

Effect of B 2 O 3 on Melting Temperature, Viscosity and Desulfurization Capacity of CaO based Refining Flux , pp. 702 706 Effect of B 2 O 3 on Melting Temperature, Viscosity and Desulfurization Capacity of CaO based Refining Flux Hongming WANG, 1) Tingwang ZHANG, 1) Hua ZHU, 1,2) Guirong LI, 1) Yongqi YAN 1)

More information

Inclusion Evolution after Calcium Addition in Low Carbon Al-Killed Steel with Ultra Low Sulfur Content

Inclusion Evolution after Calcium Addition in Low Carbon Al-Killed Steel with Ultra Low Sulfur Content , pp. 126 133 Inclusion Evolution after lcium Addition in Low rbon Al-Killed Steel with Ultra Low Sulfur Content Guangwei YANG* and Xinhua WANG School of Metallurgical and Ecological Engineering, University

More information

Sintering Behavior of Silica Filler Sands for Sliding Nozzle in a Ladle

Sintering Behavior of Silica Filler Sands for Sliding Nozzle in a Ladle , pp. 1823 1829 Sintering Behavior of Silica Filler Sands for Sliding Nozzle in a Ladle Yusuke KOBAYASHI, 1) Hidekazu TODOROKI, 1) * Fumiaki KIRIHARA, 1) Waki NISHIJIMA 2) and Hiroshi KOMATSUBARA 3) 1)

More information

Why do we need new inclusion experimental techniques?

Why do we need new inclusion experimental techniques? University of Wollongong Research Online Faculty of Engineering - Papers (Archive) Faculty of Engineering and Information Sciences 2012 Why do we need new inclusion experimental techniques? Neslihan Dogan

More information

Evolution of Oxide Inclusions in G20CrNi2Mo Carburized Bearing Steel during Industrial Electroslag Remelting

Evolution of Oxide Inclusions in G20CrNi2Mo Carburized Bearing Steel during Industrial Electroslag Remelting ISIJ International, Advance Publication by J-STAGE ISIJ International, ISIJ International, J-Stage Advanced Advance ISIJ Publication International, Publication, ISIJ International, by DOI: J-STAGE, Advance

More information

Niobium Powder Production in Molten Salt by Electrochemical Pulverization

Niobium Powder Production in Molten Salt by Electrochemical Pulverization Niobium Powder Production in Molten Salt by Electrochemical Pulverization Boyan Yuan * and Toru H. Okabe ** *: Graduate Student, Department of Materials Engineering, University of Tokyo **: Associate Professor,

More information

Lecture 25: Principles of degassing

Lecture 25: Principles of degassing Lecture 25: Principles of degassing Contents Introduction Principles Side reactions General considerations Fluid flow in degassing Material balance in de gassing Key words: Degassing, gases in steel, ladle

More information

Kinetics of Generation of Magnesium Vapor of Novel Magnesiabased Desulfurizer for External Desulfurization of Hot Metal

Kinetics of Generation of Magnesium Vapor of Novel Magnesiabased Desulfurizer for External Desulfurization of Hot Metal ISIJ International, Vol. 56 (2016), ISIJ International, No. 1 Vol. 56 (2016), No. 1, pp. 103 107 Kinetics of Generation of Magnesium Vapor of Novel Magnesiabased Desulfurizer for External Desulfurization

More information

High Temperature Oxidation Behavior of High Nitrogen 9%Cr Steels

High Temperature Oxidation Behavior of High Nitrogen 9%Cr Steels ISIJ International, Vol. 58 (2018), ISIJ International, No. 11 Vol. 58 (2018), No. 11, pp. 2095 2101 High Temperature Oxidation Behavior of High Nitrogen 9%Cr Steels Shoichi MATSUBARA,* Tomiko YAMAGUCHI

More information

Reduction of FeO in Molten Slags by Solid Carbon in. the Electric Arc Furnace Operation*

Reduction of FeO in Molten Slags by Solid Carbon in. the Electric Arc Furnace Operation* Reduction of FeO in Molten Slags by Solid Carbon in the Electric Arc Furnace Operation* By Masatoshi OZA WA, * * Syuzo KI TAGA WA, * * Suguru NAKA YAMA* * and Yoshinori TAKESONO * * Synopsis In the course

More information