1. Field of the Invention
The invention relates to an up-drawing continuous casting apparatus and an up-drawing continuous casting method.
2. Description of Related Art
In Japanese Patent Application Publication No. 2012-61518 (JP 2012-61518 A), the inventors propose a free casting method as a groundbreaking continuous casting method that does not require a mold. As described in JP 2012-61518 A, a starter is first immersed into the surface of molten metal (a molten metal surface), and then when the starter is drawn up, molten metal is also drawn out following the starter by surface tension and the surface film of the molten metal. Here, a casting that has a desired sectional shape is able to be continuously cast by drawing out the molten metal via a shape determining member arranged near the molten metal surface, and cooling it (i.e., the drawn out molten metal).
With a normal continuous casting method, the sectional shape and the shape in the longitudinal direction are both determined by a mold. In particular, the solidified metal (i.e., the casting) must pass through the mold, so the cast casting takes on a shape that extends linearly in the longitudinal direction. In contrast, the shape determining member in the free casting method determines only the sectional shape of the casting, the shape in the longitudinal direction is not determined. Also, the shape determining member is able to move in a direction parallel to the molten metal surface (i.e., horizontally), so castings of various shapes in the longitudinal direction are able to be obtained. For example, JP 2012-61518 A describes a hollow casting (i.e., a pipe) formed in a zigzag shape or a helical shape, not a linear shape in the longitudinal direction.
The inventors discovered that, because the free casting method is an up-drawing continuous casting method, foreign matter (typically referred to as “slag”) such as an oxide that forms on the molten metal surface tends to affect quality.
The invention thus provides an up-drawing continuous casting apparatus and an up-drawing continuous casting method that inhibits the inclusion of foreign matter in a casting.
A first aspect of the invention relates to an up-drawing continuous casting apparatus. This up-drawing continuous casting apparatus includes a holding furnace that holds molten metal; a shape determining member that is arranged near a molten metal surface of the molten metal held in the holding furnace, and that determines a sectional shape of a casting by the molten metal passing through the shape determining member; and a cooling portion that cools the molten metal that has passed through the shape determining member. The shape determining member includes, on a main surface on the molten metal surface side, at least one of a protruding portion that protrudes from the main surface, or a recessed portion that is recessed from the main surface.
This kind of structure enables foreign matter floating on the molten metal surface to be blocked, such that the inclusion of foreign matter in the casting is able to be effectively inhibited.
The up-drawing continuous casting apparatus according to the aspect described above may also include a molten metal passage portion that is provided in the shape determining member and through which the molten metal passes. The protruding portion may be a first protruding portion that is formed along an edge of the molten metal passage portion.
Also, in the aspect described above, a gap may be provided between the main surface of the shape determining member and the molten metal surface.
As a result, a decrease in the temperature of the molten metal and the incidence of foreign matter on the molten metal surface is able to be inhibited.
Furthermore, in the aspect described above, the shape determining member may have the recessed portion formed at a base of the first protruding portion.
As a result, blocked foreign matter is able to be collected.
Also, in the aspect described above, the protruding portion may include a second protruding portion that is provided on the shape determining member, and that protrudes on a side opposite the molten metal passage portion from a tip end of the first protruding portion.
As a result, the ability to retain blocked foreign matter is increased.
In the aspect described above, the recessed portion may have a triangular sectional shape, and be provided in plurality on the shape determining member.
A second aspect of the invention relates to an up-drawing continuous casting method that uses an up-drawing continuous casting apparatus having a shape determining member that determines a sectional shape of a casting, and a protruding portion or a recessed portion provided on a main surface on a molten metal surface side of the shape determining member, the protruding portion protruding from the main surface and the recessed portion being recessed from the main surface. The up-drawing continuous casting method includes arranging the shape determining member near a molten metal surface of molten metal; passing the molten metal through the shape determining member and drawing up the molten metal; and cooling the molten metal that has passed through the shape determining member and been drawn up.
This kind of structure enables foreign matter floating on the molten metal surface to be blocked, such that the inclusion of foreign matter in the casting is able to be effectively inhibited.
In the aspect described above, the shape determining member may be provided with a molten metal passage portion through which the molten metal passes, and the protruding portion may be a first protruding portion formed along an edge of the molten metal passage portion.
Also, in the aspect described above, a gap may be provided between the main surface of the shape determining member and the molten metal surface.
As a result, a decrease in the temperature of the molten metal and the incidence of foreign matter on the molten metal surface is able to be inhibited.
Moreover, in the aspect described above, the shape determining member may have the recessed portion formed at a base of the first protruding portion.
As a result, blocked foreign matter is able to be collected.
Also, in the example embodiment described above, the shape determining member may be provided with a second protruding portion that protrudes on a side opposite the molten metal passage side from a tip end of the first protruding portion.
As a result, the ability to retain blocked foreign matter is increased.
In the aspect described above, the shape determining member may be provided with a plurality of the recessed members each of which has a triangular sectional shape.
According to the first and second aspects of the invention, it is possible to provide an up-drawing continuous casting apparatus and an up-drawing continuous casting method that inhibits the inclusion of foreign matter in a casting.
Features, advantages, and technical and industrial significance of exemplary embodiments of the invention will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
Hereinafter, specific example embodiments to which the invention has been applied will be described in detail with reference to the accompanying drawings. However, the invention is not limited to these example embodiments. Also, the description and the drawings are simplified as appropriate to clarify the invention. Terms such as “top-bottom direction” and “left-right direction” and the like match the top-bottom and left-right directions in the drawings.
First, a free casting apparatus (up-drawing continuous casting apparatus) according to a first example embodiment of the invention will be described with reference to
The molten metal holding furnace 101 holds molten metal M1 such as aluminum or an aluminum alloy, for example, and keeps it at a predetermined temperature. In the example in
The inner shape determining member 102a and the outer shape determining member 102b are made of ceramic or stainless steel, for example, and are arranged near the molten, metal surface. More specifically, the inner shape determining member 102a and the outer shape determining member 102b are arranged such that there is a gap G of approximately 0.5 mm between the molten metal surface and main surface on the lower side (i.e., the molten metal surface side) of each of the inner shape determining member 102a and the outer shape determining member 102b. Providing this gap G makes it possible to inhibit the temperature of the molten metal from decreasing as well as inhibit the incidence of slag (foreign matter) M4 on the molten metal surface.
Moreover, the inner shape determining member 102a determines the inner shape of a casting M3, and the outer shape determining member 102b determines the outer shape of the casting M3. The casting M3 shown in
As shown in
As shown in
The support rod 103 supports the inner shape determining member 102a and the support rod 104 supports the outer shape determining member 102b. The positional relationship between the inner shape determining member 102a and the outer shape determining member 102b is able to be maintained by these support rods 103 and 104. Also, a gap G is able to be provided by these support rods 103 and 104. Here, having the support rod 103 be a pipe structure, flowing cooling gas through the support rod 103, and moreover, providing blow holes in the inner shape determining member 102a, enables the casting M3 to be cooled from the inside as well.
The support rods 103 and 104 are both connected to the actuator 105. This actuator 105 enables the support rods 103 and 104 to move in the top-bottom direction (the perpendicular direction) and the left-right direction, while maintaining the positional relationship between the inner shape determining member 102a and the outer shape determining member 102b. With this kind of structure, the inner shape determining member 102a and the outer shape determining member 102b are able to be moved downward while keeping the gap G at a constant value, as the molten metal level drops as casting proceeds. Also, the inner shape determining member 102a and the outer shape determining member 102b are able to be moved horizontally, so the shape of the casting M3 in the longitudinal direction is able to be changed freely.
A cooling gas nozzle (a cooling portion) 106 is used to spray cooling gas (e.g., air, nitrogen, argon, or the like) at the casting M3 to cool the casting M3. The casting M3 is cooled by the cooling gas while being drawn up by a drawer, not shown, that is connected to a starter ST. Accordingly, the retained molten metal M2 near the solidification interface solidifies sequentially, thus forming the casting M3.
Next, the free casting method according to the first example embodiment will be described with reference to
Next, the starter ST starts to be drawn up at a predetermined speed. Here, when the starter ST separates from the molten metal surface, the retained molten metal M2 that follows the starter ST and is drawn up from the molten metal surface by the surface film and surface tension is formed. As shown in
Next, the starter ST is cooled by cooling gas blown from the cooling gas nozzle 106, so the retained molten metal M2 solidifies sequentially from the upper side toward the lower side, thus forming the casting M3. In this way, the casting M3 is able to be continuously cast.
Here, as described above, slag M4 floating on the molten metal surface is able to be blocked before the molten metal M1 passes through the molten metal passage portion 102c, by the protruding portion 22a provided on the inner shape determining member 102a, and the protruding portion 22b provided on the outer shape determining member 102b. Therefore, the inclusion of slag M4 in the retained molten metal M2 that has passed through the molten metal passage portion 102c is able to be inhibited. As a result, the inclusion of slag M4 in the casting M3 is able to be effectively inhibited. Also, the gap G of approximately 0.5 mm is provided between the molten metal surface and the main surfaces on the lower side of the inner shape determining member 102a and the outer shape determining member 102b. Therefore, a decrease in the temperature of the molten metal, and the incidence of slag M4 on the molten metal surface are able to be inhibited. Even if the gap G is not provided, the inclusion of the slag M4 in the casting M3 is able to be effectively inhibited by the protruding portion 22b. Therefore, in the first example embodiment, the gap G is not absolutely necessary.
Next, a free casting apparatus according to a second example embodiment of the invention will be described with reference to
The outer shape determining member 102b according to the second example embodiment includes the recessed portion 23b. Therefore, the blocked slag M4 is able to be collected in the recessed portion 23b, so the inclusion of the slag M4 in the casting M3 is able to be even more effectively inhibited than it is with the outer shape determining member 102b according to the first example embodiment. Furthermore, the outer shape determining member 102b according to the second example embodiment includes the second protruding portion 24b, so the ability of the outer shape determining member 102b according to the second example embodiment to retain the blocked slag M4 is higher than it is with the outer shape determining member 102b according to the first example embodiment. As a result, the inclusion of the slag M4 to the casting M3 is able to be even more effectively inhibited. The inner shape determining member 102a shown in
Next, a free casting apparatus according to a third example embodiment of the invention will be described with reference to
The outer shape determining member 102b according to the third example embodiment is able to block and collect the slag M4 by the recessed portion 23b. Here, as described above, by positioning the apex that faces the bottom side of the triangular shape that forms the cross-section of the recessed portion 23b to the inside of the center of the bottom side, this kind of effect is able to be further improved. Also, by providing a plurality of the recessed portions 23b, the inclusion of the slag M4 in the casting M3 is able to be even more effectively inhibited. The inner shape determining member 102a shown in
As described above, the inner shape determining member 102a according to the first to the third example embodiments includes at least one of the protruding portion 22a and a recessed portion (a portion corresponding to the recessed portion 23b), on the main surface that is on the lower side (i.e. the molten metal surface side), and is thus able to block the slag M4. As a result, the inclusion of the slag M4 in the casting M3 is able to be effectively inhibited. Similarly, the outer shape determining member 102b according to the first to the third example embodiments includes at least one of the first protruding portion 22b and the recessed portion 23b on the main surface on the lower side (i.e., the molten metal side), and is thus able to block the slag M4. As a result, the inclusion of the slag M4 in the casting M3 is able to be effectively inhibited.
In the first to the third example embodiments, a certain effect is able to be obtained when a structure for blocking the slag M4 is provided only on the outer shape determining member 102b and not on the inner shape determining member 102a.
The invention is not limited to the example embodiments described above, but may be modified as appropriate. For example, when casting a solid casting instead of the hollow casting illustrated in the example embodiments, only the outer shape determining member 102b according to the example embodiments need be used, without using the inner shape determining member 102a. The inclusion of slag (i.e., foreign matter) in the casting is able to be effectively inhibited just as it is in the example embodiments described above. In this case, the open portion provided in the outer shape determining member 102b serves as the molten metal passage portion 102c just as it is.
Number | Date | Country | Kind |
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2012-204464 | Sep 2012 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2013/002130 | 9/13/2013 | WO | 00 |