Immersion nozzle replacement method
10682696 ยท 2020-06-16
Assignee
Inventors
- Shinichi FUKUNAGA (Fukuoka, JP)
- Takahiro Kuroda (Fukuoka, JP)
- Tatsuya OOUCHI (Fukuoka, JP)
- Takuya OKADA (Fukuoka, JP)
- Akira Ootsuka (Fukuoka, JP)
Cpc classification
B22D11/10
PERFORMING OPERATIONS; TRANSPORTING
B22D41/502
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22D41/56
PERFORMING OPERATIONS; TRANSPORTING
B22D11/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In the method for replacing an immersion nozzle while pushing out a used immersion nozzle by a new immersion nozzle, in order to minimize leakage of molten steel during the replacement, to enable the use of a shaped joint sealer in a joint interface, and to ensure high sealability, a concave portion is formed on the new immersion nozzle's upper plane so as to include a nozzle hole, and the shaped joint sealer is mounted in this concave portion. The immersion nozzle's upper plane is caused to slide while being pressed to the upper nozzle's lower plane.
Claims
1. A method for replacing an immersion nozzle, wherein a new immersion nozzle is supported by pressing members arranged in parallel in both sides of a lower plane of a flange portion and is caused to slide while being pressed to a lower plane of an upper refractory so as to push out a used immersion nozzle in a lateral direction thereby pressure-joining to the upper refractory, wherein a concave portion is formed on an upper plane of the new immersion nozzle so as to include a nozzle hole therein, and a shaped joint sealer is mounted in the concave portion.
2. A method for replacing an immersion nozzle, wherein a new immersion nozzle is supported by pressing members arranged in parallel in both sides of a lower plane of a flange portion and is caused to slide while being pressed to a lower plane of an upper refractory so as to push out a used immersion nozzle in a lateral direction thereby pressure-joining to the upper refractory, wherein a projection is formed on an upper plane of the new immersion nozzle in a position opposite to an insertion side of the new immersion nozzle, and a shaped joint sealer having a thickness more than a height of the projection is arranged so as to be locked with the projection.
3. The method for replacing the immersion nozzle according to claim 1, wherein the concave portion formed on the upper plane of the new immersion nozzle is open to a side plane in an insertion side of the new immersion nozzle.
4. The method for replacing the immersion nozzle according to claim 1, wherein the upper refractory has an inclined plane in its lower portion of an insertion side of the new immersion nozzle.
5. The method for replacing the immersion nozzle according to claim 1, wherein the shaped joint sealer has an inclined plane in an insertion side of the new immersion nozzle.
6. The method for replacing the immersion nozzle according to claim 1, wherein the shaped joint sealer includes expandable refractory particles selected from the group consisting of expandable graphite particles, expandable vermiculite particles, expandable obsidian particles, expandable pitchstone particles, expandable perlite particles, expandable clay particles, expandable shale stone particles, and combinations thereof.
7. The method for replacing the immersion nozzle according to claim 2, wherein the upper refractory has an inclined plane in its lower portion of an insertion side of the new immersion nozzle.
8. The method for replacing the immersion nozzle according to claim 3, wherein the upper refractory has an inclined plane in its lower portion of an insertion side of the new immersion nozzle.
9. The method for replacing the immersion nozzle according to claim 2, wherein the shaped joint sealer has an inclined plane in an insertion side of the new immersion nozzle.
10. The method for replacing the immersion nozzle according to claim 3, wherein the shaped joint sealer has an inclined plane in an insertion side of the new immersion nozzle.
11. The method for replacing the immersion nozzle according to claim 4, wherein the shaped joint sealer has an inclined plane in an insertion side of the new immersion nozzle.
12. The method for replacing the immersion nozzle according to claim 2, wherein the shaped joint sealer includes expandable refractory particles selected from the group consisting of expandable graphite particles, expandable vermiculite particles, expandable obsidian particles, expandable pitchstone particles, expandable perlite particles, expandable clay particles, expandable shale stone particles, and combinations thereof.
13. The method for replacing the immersion nozzle according to claim 3, wherein the shaped joint sealer includes expandable refractory particles selected from the group consisting of expandable graphite particles, expandable vermiculite particles, expandable obsidian particles, expandable pitchstone particles, expandable perlite particles, expandable clay particles, expandable shale stone particles, and combinations thereof.
14. The method for replacing the immersion nozzle according to claim 4, wherein the shaped joint sealer includes expandable refractory particles selected from the group consisting of expandable graphite particles, expandable vermiculite particles, expandable obsidian particles, expandable pitchstone particles, expandable perlite particles, expandable clay particles, expandable shale stone particles, and combinations thereof.
15. The method for replacing the immersion nozzle according to claim 5, wherein the shaped joint sealer includes expandable refractory particles selected from the group consisting of expandable graphite particles, expandable vermiculite particles, expandable obsidian particles, expandable pitchstone particles, expandable perlite particles, expandable clay particles, expandable shale stone particles, and combinations thereof.
Description
DESCRIPTION OF THE DRAWINGS
(1)
(2) This is an explanatory drawing illustrating an image of the method for replacing the immersion nozzle according to the first embodiment of the present invention.
(3)
(4) The same as above.
(5)
(6) The same as above.
(7)
(8) The same as above.
(9)
(10) This is a vertical cross section view of the upper nozzle used in the first embodiment of the present invention.
(11)
(12) This is a bottom view of the upper nozzle used in the first embodiment of the present invention.
(13)
(14) This is a bottom view of the immersion nozzle used in the first embodiment of the present invention.
(15)
(16) This is a top view of the immersion nozzle used in the first embodiment of the present invention.
(17)
(18) This is a plane view of the immersion nozzle used in the first embodiment of the present invention.
(19)
(20) This is a vertical cross section view of the immersion nozzle used in the second embodiment of the present invention.
(21)
(22) This is a top view of the immersion nozzle used in the second embodiment of the present invention.
(23)
(24) This is a plane view of the shaped joint sealer used in the second embodiment of the present invention.
(25)
(26) This is a vertical cross section view of the upper nozzle used in the third embodiment of the present invention.
(27)
(28) This is a bottom view of the upper nozzle used in the third embodiment of the present invention.
(29)
(30) This is an explanatory drawing illustrating the fourth embodiment of the present invention.
(31)
(32) This is a top view of the immersion nozzle used in the fourth embodiment of the present invention.
(33)
(34) This is an explanatory drawing illustrating the fifth embodiment of the present invention.
(35)
(36) This is a top view of the immersion nozzle used in the fifth embodiment of the present invention.
(37)
(38) This is a perpendicular sectional view illustrating a conventional method for replacing an immersion nozzle disclosed in Patent Document 1.
(39)
(40) This is a plan view of a part of
(41)
(42) This is a perpendicular sectional view on a plane at a right angle to
DESCRIPTION OF THE EMBODIMENTS
First Embodiment
(43)
(44) In
(45) In the upper nozzle 20 used in this embodiment, as depicted in
(46) In the immersion nozzle 10 used in this embodiment, as depicted in
(47) In concave portion 15 in the immersion nozzle's upper plane is mounted the shaped joint sealer 30 having a rectangular shape in the plane view with the circular cutout portion 31 (inner hole), as depicted in
(48) The shaped joint sealer 30 was produced with the same method as those disclosed in Patent Document 5. Specifically, the shaped joint sealer 30 was obtained by adding 25% by mass of acryl emulsion (bonding material) and 1% by mass of texanol (plasticizer) as outer percentages into the raw material powder blend of main raw materials including 50% by mass of sintered alumina and 20% by mass of fused mullite with auxiliary materials including 10% by mass of clay, 10% by mass of frit, and 1% by mass of flake graphite, followed by kneading the mixture thus obtained with a table-top mixer, press-molding it into a sheet form, and then drying it at about 80 C. Besides, as the shaped joint sealer 30, a generally used joint sealer to seal between the immersion nozzle and the upper nozzle may be used; for example, the joint sealers disclosed in Patent Documents 2 to 6 may be used.
(49) Next, the method for replacing the immersion nozzle according to this embodiment will be specifically explained.
(50) In
(51) As can be seen above, according to the method for replacing the immersion nozzle of this embodiment, even if the immersion nozzle's upper plane 14 is caused to slide while being pressed to the upper nozzle's lower plane 21, the shaped joint sealer 30 is not slipped or scraped off. Accordingly, it becomes possible to use the shaped joint sealer 30; and moreover, the shaped joint sealer 30 is compressed in the joint interface between the upper nozzle 20 and the immersion nozzle 10, so that formation of the space between the upper nozzle 20 and the immersion nozzle 10 can be avoided. In addition, because the concave portion 15 on the immersion nozzle's upper plane includes the nozzle hole 13, the shaped joint sealer 30 can move while being contacted with the upper nozzle 20 even around the nozzle hole 13. Therefore, even if the molten steel drops from the upper nozzle 20 during replacement of the immersion nozzle, it drops onto the shaped joint sealer 30; therefore, the molten steel is pushed into the shaped joint sealer 30, resulting in a smooth upper plane of the shaped joint sealer 30, so that formation of the space can be avoided. Consequently, high sealability can be ensured even during replacement, so that leakage of the molten steel during replacement can be minimized.
(52) In addition, in this embodiment, as described above, because at first the shaped joint sealer 30 comes to contact to the upper nozzle's lower plane 21, the shaped joint sealer 30 can be surely sandwiched between the upper nozzle's lower plane 21 and the immersion nozzle's upper plane 14. Namely, when the thickness of the shaped joint sealer 30 is more than the depth of the concave portion 15 as in the case of this embodiment, it is preferable that the shaped joint sealer 30 is arranged in the position where the insertion side edge portion 32 can come to contact to the upper nozzle's lower plane 21 at first upon inserting the immersion nozzle. However, on the contrary to this embodiment, even when at first the shaped joint sealer does not come to contact to the upper nozzle's lower plane 21 but does to the side plane thereof, because the shaped joint sealer 30 is soft and readily cut off, the insertion side edge portion (corner) is crushed or scraped off a bit, so that it can be sandwiched.
(53) On the other hand, in the case that the thickness of the shaped joint sealer is equal to or less than the depth of the concave portion, the insertion side edge portion of the shaped joint sealer can be set at any position. In this case, the shaped joint sealer does not contact to the upper nozzle's lower plane during replacement of the immersion nozzle, but during replacement of the immersion nozzle, because as described above the immersion nozzle's upper plane 14 is caused to slide while being pressed to the upper nozzle's lower plane 21, the sealability in a level not causing a problem in the actual use can be ensured. In addition, even if the molten steel drops from the upper nozzle 20 during replacement of the immersion nozzle, because it drops onto the shaped joint sealer in the concave portion, the molten steel is pushed into the shaped joint sealer as described before, resulting in a smooth upper plane of the shaped joint sealer, so that formation of the space can be avoided, and also the leakage of the molten steel during replacement can be minimized.
(54) Therefore, especially in the case that the thickness of the shaped joint sealer is equal to or less than the depth of the concave portion, it is preferable to use the shaped joint sealer which is expandable. Because the immersion nozzle is pre-heated in an air before replacement, by using the expandable shaped joint sealer which expands by this pre-heating (heating) or oxidation during pre-heating (heating), the thickness of the shaped joint sealer increases during replacement, so that the sealability is enhanced. Besides, use of the shaped joint sealer which is expandable is preferable also from the view point of enhancement of the sealability after replacement; and in addition, it is also effective in the case that the thickness of the shaped joint sealer is more than the depth of the concave portion.
(55) As one embodiment of the shaped joint sealer which is expandable, the shaped joint sealer including expandable refractory particles may be cited. Illustrative example of the expandable refractory particles includes expandable graphite particles, expandable vermiculite particles, expandable obsidian particles, expandable pitchstone particles, expandable perlite particles, expandable clay particles, and expandable shale stone particles, wherein these may be used at least singly or as a mixture of two or more of them. In the shaped joint sealer including these expandable refractory particles, the sealability thereof is enhanced by expansion due to pre-heating of the expandable refractory particles before replacement or due to heating during the use thereof after replacement.
(56) As other embodiment of the shaped joint sealer which is expandable, the shaped joint sealer including metals with low melting points such as Al, Mg, Cu, and Zn may be cited. In the shaped joint sealer including these metals with low melting points, the sealability thereof is enhanced by volume expansion of the metals with low melting points due to pre-heating before the replacement or oxidation caused by heating during the use after the replacement.
Second Embodiment
(57)
(58) This embodiment is also carried out in a similar manner to that of the first embodiment depicted in
(59) Further, in this embodiment, because the shaped joint sealer 30 is arranged until the immersion nozzle's insertion side plane 17, even if the molten steel is somewhat dropped from the nozzle hole of the upper nozzle during replacement of the immersion nozzle, this can be surely pushed into the shaped joint sealer, so that formation of the space in the joint portion can be avoided. Accordingly, high sealability can be ensured so that leakage of the molten steel during replacement can be minimized as well.
Third Embodiment
(60)
(61) In the inclined plane that is made in the lower edge portion of the upper nozzle in the insertion side of the immersion nozzle, the shape of the vertical cross section view thereof may be linear or curved. The inclination angle of the inclined plane is preferably in the range of 10 to 70 degrees as the angle formed between the inclined plane and the extended plane of the upper nozzle's lower plane. When the shape of the vertical cross section view thereof is curved, R may be made, for example, in the range of 5 to 50 mm.
Fourth Embodiment
(62)
(63) On the other hand, in
(64) This embodiment is also carried out in a similar manner to that of the first embodiment depicted in
(65) Here, in this embodiment, in order to fully express the sealability due to the shaped joint sealer 30, it is preferable that the projection 18 is flexible. Meanwhile, because the projection 18 of this embodiment is formed of an iron plate, this is flexible.
Fifth Embodiment
(66)
(67) This embodiment is also carried out in a similar manner to that of the first embodiment depicted in
(68) Meanwhile, in the first to fifth embodiments described above, the upper refractory joined to the immersion nozzle 10 was the upper nozzle 20. However, in the case that the upper refractory is other than the upper nozzle, for example, in the case of a sliding nozzle plate or a lower portion nozzle, it is a matter of course that the method for replacing the immersion nozzle of the present invention can also be used similarly.
(69) The pressing and sliding mechanisms of the immersion nozzle are not limited to those of the previously described embodiments. In short, the mechanisms suffice only if they are as follows. Namely, when the new immersion nozzle is supported by the pressing members arranged in parallel in both sides of the flange's lower plane and is caused to slide while being pressed to the lower plane of the upper refractory, the immersion nozzle after use is pushed out in a horizontal direction so that the new immersion nozzle is pressure-joined to the upper refractory.
EXAMPLES
(70) The results of replacement experiments of the immersion nozzle under various conditions are summarized in Table 1.
(71) TABLE-US-00001 TABLE 1 Exam- Exam- Exam- Exam- Exam- Exam- Exam- Exam- Exam- Comparative ple 1 ple 2 ple 3 ple 4 ple 5 ple 6 ple 7 ple 8 ple 9 Example 1 Pressing force of immersion 600 600 600 600 400 800 600 600 600 600 nozzle (kgf) Material of shaped joint sealer KJC-A KJC-A KJC-A KJC-A KJC-A KJC-A KJC-B KJC-C KJC-D KJC-A Depth of concave portion (mm) 1 2 3 3 2 2 2 2 3 0 Thickness of Before 3.5 3.5 3.5 5 3 3 3 3 2 3.5 shaped joint replacement sealer (mm) After 3.2 3.2 3.2 4.5 2.8 2.5 2.6 2.8 3 3.2 replacement State of shaped joint sealer after GOOD GOOD GOOD GOOD GOOD GOOD GOOD GOOD GOOD NOT GOOD detachment
(72) In Table 1, Examples 1 to 9 are Examples of the present invention, wherein in the method for replacing the immersion nozzle as depicted in
(73) Thickness of the shaped joint sealer was measured before and after the replacement. In the case of after the replacement, the measurement was carried out as follows. Namely, the immersion nozzle was moved to the position where the central axis of the nozzle hole of the upper nozzle matched the central axis of the immersion nozzle; and in this position, only the thickness of the shaped joint sealer at each of the center parts of 8 side planes in the lower part of the upper nozzle was measured, and then the average value of these measured values was calculated.
(74) With regard to the surface state of the shaped joint sealer, after the immersion nozzle is detached, the state of the shaped joint sealer was visually observed, whereby the sealer without a void was assessed as GOOD, and the sealer with a void was assessed as NOT GOOD.
(75) In Examples 1 to 3, the immersion nozzles with different thicknesses of the concave portion were used, wherein in all of them the shaped joint sealer was shrunk by about 10% while being uniformly filled between the immersion nozzle and the upper nozzle. There was no space or void on the surface after being detached so that they were joined well.
(76) In Example 4, the shaped joint sealer having the thickness of 5 mm, which is thicker than other Examples, was used; a slight irregularity could be seen on the surface thereof after being detached, but it was in a level not causing a practical problem.
(77) Example 5 is the case in which the pressing force of the immersion nozzle was 400 kgf, and Example 6 is the case in which the pressing force of the immersion nozzle was 800 kgf. In both cases, the shaped joint sealer could be filled without problems.
(78) The material of the shaped joint sealer used in Examples 1 to 6 is the one as described in the first embodiment (KJC-A); namely it is obtained by adding 25% by mass of acryl emulsion (bonding material) and 1% by mass of texanol (plasticizer) as outer percentage into the raw material powder blend of main raw materials including 50% by mass of sintered alumina and 20% by mass of fused mullite with auxiliary materials including 10% by mass of clay, 10% by mass of frit, and 1% by mass of flake graphite.
(79) In Example 7, amount of the binder was increased by 5% by mass relative to KJC-A so as to increase the flexibility (KJC-B). With this, the shaped joint sealer could be filled without problems.
(80) In Example 8, amount of the binder was decreased by 5% by mass relative to KJC-A so as to increase the hardness (KJC-C). With this, the shaped joint sealer could be filled without problems.
(81) In Example 9, in KJC-A, 2% by mass of the expandable graphite was used in place of 1% by mass of the flake graphite so as to impart the expanding property (KJC-D), and further, prior to the replacement the immersion nozzle was heated at 1000 C. With this, the shaped joint sealer could be filled without problems.
(82) On the other hand, in Comparative Example 1, the concave portion was not formed in the immersion nozzle. With this, a space or a void was observed on the surface after the detachment, so this was not good.
(83) Under the condition of Example 3, which corresponds to the first embodiment described before, the replacement work was carried out during actual continuous casting. With the methods of Patent Documents 1 and 7 described before, leakage of the molten steel was observed during replacement; on the contrary, with the method of the present invention, leakage of the molten steel was not observed during replacement.
EXPLANATION OF NUMERICAL SYMBOLS
(84) 10 Immersion nozzle 11 Main body 12 Flange portion 13 Nozzle hole (inner hole) 14 Immersion nozzle's upper plane 15 Concave portion 16 Flange's lower plane 17 Immersion nozzle's insertion side plane 18 Projection 20 Upper nozzle 21 Upper nozzle's lower plane 22 Nozzle hole 23 Inclined plane 30 Shaped joint sealer 31 Cutout portion (inner hole) 32 Insertion side edge portion 33 Inclined plane 4 Keynote boards (pressing members)