EP1858661A1 - Dispositif d alimentation de metal fondu pour coulee continue et son procede - Google Patents

Dispositif d alimentation de metal fondu pour coulee continue et son procede

Info

Publication number
EP1858661A1
EP1858661A1 EP06705222A EP06705222A EP1858661A1 EP 1858661 A1 EP1858661 A1 EP 1858661A1 EP 06705222 A EP06705222 A EP 06705222A EP 06705222 A EP06705222 A EP 06705222A EP 1858661 A1 EP1858661 A1 EP 1858661A1
Authority
EP
European Patent Office
Prior art keywords
casting
tip
metal
degrees
range
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP06705222A
Other languages
German (de)
English (en)
Other versions
EP1858661A4 (fr
Inventor
John Sulzer
Willard Mark Truman Gallerneault
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Novelis Inc Canada
Original Assignee
Novelis Inc Canada
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Novelis Inc Canada filed Critical Novelis Inc Canada
Publication of EP1858661A1 publication Critical patent/EP1858661A1/fr
Publication of EP1858661A4 publication Critical patent/EP1858661A4/fr
Withdrawn legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D11/00Continuous casting of metals, i.e. casting in indefinite lengths
    • B22D11/10Supplying or treating molten metal
    • B22D11/103Distributing the molten metal, e.g. using runners, floats, distributors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D11/00Continuous casting of metals, i.e. casting in indefinite lengths
    • B22D11/06Continuous casting of metals, i.e. casting in indefinite lengths into moulds with travelling walls, e.g. with rolls, plates, belts, caterpillars
    • B22D11/0605Continuous casting of metals, i.e. casting in indefinite lengths into moulds with travelling walls, e.g. with rolls, plates, belts, caterpillars formed by two belts, e.g. Hazelett-process
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D11/00Continuous casting of metals, i.e. casting in indefinite lengths
    • B22D11/06Continuous casting of metals, i.e. casting in indefinite lengths into moulds with travelling walls, e.g. with rolls, plates, belts, caterpillars
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22DCASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
    • B22D11/00Continuous casting of metals, i.e. casting in indefinite lengths
    • B22D11/06Continuous casting of metals, i.e. casting in indefinite lengths into moulds with travelling walls, e.g. with rolls, plates, belts, caterpillars
    • B22D11/0637Accessories therefor
    • B22D11/064Accessories therefor for supplying molten metal
    • B22D11/0642Nozzles

Definitions

  • This invention relates to the continuous casting of molten metals, preferably aluminum and aluminum alloys. More particularly, the invention relates to a method of introducing the molten metal into the casting cavity of a continuous caster and the design of a metal feeder used for this purpose.
  • Continuous casting of metals has been carried out for many years, e.g. by using a twin belt caster, twin roll caster or rotating block caster.
  • Continuous casters of this kind usually have a horizontal, or slightly downwardly-sloping, casting cavity formed between two confronting and continuously rotating casting surfaces.
  • the molten metal is introduced into one end of the casting cavity and it is cooled and solidified as it is drawn through the casting cavity by the rotating casting surfaces.
  • a cast ingot, slab or strip of solidified metal emerges from the casting cavity at the opposite end.
  • Molten metal is introduced into the casting cavity by some form of molten metal feeder that introduces a stream of molten metal between the casting surfaces.
  • the feeder may be in the form of an open topped trough, in which molten metal is directed by means of an open spout or channel into the casting cavity (referred to as "pool feeding"), or more preferably by means of a nozzle which encloses and confines the molten metal until it emerges from a tip at the extreme end of the nozzle.
  • As-cast ingots produced by both DC (direct chill) and continuous strip casters produce metal slabs or strips having surface defects of various kinds.
  • DC casting such surface defects are often removed by means of "scalping” (i.e. removing a thin surface layer from the cast article).
  • scalping may not be practical or economical and it is desirable to provide an article at the outset having a minimum of surface defects.
  • Surface defects may be produced by a variety of mechanisms, including reaction with the refractory materials of the metal delivery system and localized cooling non- uniformities, and many improvements have been made to reduce the size and number of such defects.
  • European Patent No. EP 0 962 271 Bl which was granted on December 17, 2003 to Hazelett Strip-Casting Corporation (inventor Valerie G. Kagan) discloses a belt casting apparatus with a metal delivery device that "pours" the metal onto a belt.
  • the tip of the delivery device is spaced a distance away from the surface of the belt and it terminates at an end surface disposed at right angles to the metal-contacting inner surface of the delivery device.
  • strip casters having tips in which the interior of the tip is tapered in the direction of the tip:
  • An object of the present invention is to improve the continuous casting of molten metal, especially molten aluminum and its alloys, particularly with a view to reducing surface defects of the cast article and more particularly to reduce the incidence of oxide incorporation into the cast surface.
  • a feeder for delivery of molten metal into a mold formed between confronting casting surfaces of a continuous casting machine.
  • the feeder comprises a nozzle having a projecting tip including at least one wall provided with a molten-metal-contacting inner surface, an outer surface, and an end surface at an outer extremity of the tip extending between the inner and outer surfaces.
  • the inner surface and the end surface interconnect at a line and form an included angle of less than 88°, and the wall of the nozzle has a thickness adjacent to the line in the range of 0.5 to 3 mm.
  • a continuous casting machine comprising a pair of endless casting surfaces confronting each other across a casting cavity, means for moving the casting surfaces in the same direction at the same speed, and a feeder for introducing molten metal into the casting cavity at one end of the cavity.
  • the feeder comprises a nozzle having a projecting tip including at least one wall provided with a molten-metal-contacting inner surface, an outer surface, and an end surface at an outer extremity of the tip extending between the inner and outer surfaces.
  • the inner surface and the end surface interconnect at a line and form an included angle of less than 88 degrees.
  • the wall has a thickness adjacent to the line in the range of 0.5 to 3 mm, and the line is positioned during casting at a spacing from an adjacent casting surface within the range of 0.5 to 3 mm.
  • a process of continuous strip casting a molten metal to form a cast metal strip article comprises feeding a molten metal which develops an oxide layer when in contact with air from a nozzle having a projecting nozzle tip onto at least one moving casting surface such that the metal forms a meniscus having a surface coating of metal oxide between an extremity of the tip and the casting surface.
  • the metal is fed from a tip having a wall provided with an inner surface and an end surface that interconnect at a line and form an included angle of less than 88 degrees.
  • the wall has a thickness adjacent to the line in the range of 0.5 to 3 mm.
  • the tip is positioned during casting such that the spacing of the line from an adjacent casting surface is within the range of 0.5 to 3 mm.
  • the present invention is concerned with obtaining a continuously cast strip article of good surface quality.
  • improvements in surface quality by making general improvements to the casting technique and apparatus, they noticed the presence of periodic surface striations extending across the cast article at right angles to the direction of casting.
  • the inventors found that these striations were due, at least in part, to oscillations of the meniscus formed between the casting tip and the casting surface.
  • the meniscus is coated with a layer of metal oxide and the oscillation of the meniscus can cause this to break.
  • the underlying metal thus exposed rapidly grows a new layer of oxide upon reaction with air, but the break forms a visible defect in the surface of the cast product as the oxide layer is drawn onto the casting surface.
  • meniscus oscillations are inherent in continuous casters, at least in belt casters used for casting aluminum and its alloys, as well as other reactive metals, and that they cannot be entirely eliminated.
  • the inventors therefore took another approach, i.e. of increasing the uniformity of the oscillations to produce a cast article having small, regularly spaced striations that do not manifest themselves as surface defects because of their regular and fine appearance.
  • an oscillation of the meniscus of at least 50 Hertz, e.g. in the range of 50 to 200 Herz was required to impart an acceptable appearance to the cast product.
  • the meniscus tends to oscillate at right angles to its surface, i.e. it tends to become more rounded and then less rounded in the region extending from the nozzle to the casting surface with each such cycle representing one oscillation.
  • the frequency of the meniscus oscillations can be affected by various parameters, e.g. the application of external forces, such as pneumatic pressure in the small gap between the nozzle and the casting belt, and the application of a varying magnetic field in the area of the meniscus.
  • the inventors found that the most effective way to increase the frequency of oscillation is by improving the design and placement of the nozzle used for injecting the molten metal onto the casting surface.
  • the conventional nozzle employs a pair of projecting walls that define a molten metal channel between confronting inner metal-contacting surfaces.
  • the channel has an exit at the tip of the nozzle where the projecting walls terminate at a flat end surface that extends at right angles to the inner metal-contacting surfaces.
  • the walls also have outer surfaces that in use extend along the casting surfaces with a small gap.
  • the minimum angle is preferably 15 degrees, because a smaller angle may be currently impractical for constructing the nozzle (although the desirable effect would still be apparent if the constructional limitations could be overcome).
  • a more desirable lower limit for the cut-back angle is 30 degrees.
  • An even more preferred lower limit is 45 degrees.
  • the end surface of the nozzle wall is flat along its full length, i.e. from the intersections with the inner and outer walls, and from side to side across the nozzle. This has the advantage of making the striations more regular, particularly across the width of the casting cavity.
  • the line of contact mentioned above forms a so-called "take-off point" for the meniscus, i.e. the point at which the molten metal loses contact with the nozzle and is briefly supported by surface tension before contacting the casting surface. It is necessary to provide such a line (i.e. an abrupt change of direction where generally planar surfaces meet at an acute angle). Without limitation as to the theory of operation of the invention, it appears that the line and the acute angle at this position fixes the point of metal departure from the tip so that it does not wander onto the end face of the nozzle wall. Oscillations of the metal instead appear to be localized at the take-off line where they break the oxide layer on a regular and frequent basis as the metal leaves the tip, thereby causing regular and fine striations in the final product.
  • the amplitude of the meniscus oscillations increases with casting speed (i.e. the speed of the casting belt).
  • a greater amplitude of the oscillations increases the risk of meniscus "wander" onto the end face of the nozzle, so the "cut-back" angle may desirably be decreased as the casting speed increases (i.e. the angle of the end surface with the inner surface should desirably be made smaller, e.g. within the range of 15 to 80 degrees).
  • the angle should preferably be made no larger than 75 degrees, and 70 degrees or even 65 degrees is a more preferred upper limit.
  • the meniscus should be caused to oscillate at a frequency of 50 herz to about 200 Herz at least for aluminum and aluminum alloys.
  • the range of frequencies depends on physical properties of the metal, e.g. density, viscosity and surface tension, but only for significant changes in these properties.
  • the variation among aluminum alloys is quite minor, but a change of base metal (e.g. aluminum to copper) may produce significant changes that affect the oscillations more noticeably.
  • the spacing between the "take-off point" and the casting surface should be quite specific. If it becomes too large, it is difficult or impossible to maintain a stable meniscus as it may "wander" onto the end wall of the tip and the metal may run back under the tip of the nozzle. The flow characteristics change to become more like pouring a liquid rather than casting at speed. However, the spacing should be large enough to allow a meniscus to form between the take-off point and the casting surface. The minimum distance is controlled by restrictions placed on the tip by methods of construction and the need for the tip to be spaced slightly from the casting surface. The preferred spacing (take-offline to casting surface) is about 1 mm + 0.5 mm.
  • the invention is effective with normal nozzle wall thicknesses (usually about lmm or 1/32 inch) and a spacing up to about 3 mm.
  • the metal can be fed into a closed nozzle or to an open-topped nozzle from a conventional head box or tundish.
  • the present invention may be used with both types of nozzle, but a closed nozzle is preferred.
  • the two walls forming the nozzle may be flat and parallel throughout their length, or they may be "flared” or “divergent” at the end, i.e. with the walls adjacent to the metal delivery end bending outwardly at an angle of usually no greater than about 8 degrees. This allows the walls to converge towards the casting surfaces by a small angle at the extreme end of the tip.
  • the present invention may be used with both horizontal and vertical continuous casting machines, e.g. twin-belt casters, revolving block casters and even twin-roll casters (twin-roll casters are preferably operated at high speed when the invention is employed).
  • twin-belt casters e.g. twin-belt casters, revolving block casters and even twin-roll casters (twin-roll casters are preferably operated at high speed when the invention is employed).
  • Fig. 1 is a side view, partly in cross-section, of a twin-belt caster (without metal feed apparatus) of a type with which the present invention may be employed;
  • Fig. 2 is a cross-section of a metal feeder and adjacent parts of a twin-belt caster of a type with which the present invention may be employed;
  • Fig. 3 is a cross-section of a part of a prior art nozzle and an adjacent casting belt and molten metal flow, showing the development of a metal meniscus;
  • Fig. 4 is a view similar to Fig. 3, but showing a part of a nozzle in accordance with the present invention
  • Fig. 5 is a top plan view of a test device used in the Example described below;
  • Fig. 6 is a cross-sectional view of the test device of Fig. 5;
  • Figs. 7A, 7B, 7C, and 7D show cross-sections of tips used in the Example 1 described below;
  • Fig. 8 shows a macrophotograph of the surface of an aluminum alloy strip cast with a prior art nozzle having an angle between inner surface and end surface of 93 degrees;
  • Fig. 9 shows a macrophotograph of the surface of an aluminum alloy strip cast with a nozzle in accordance with the present invention having an angle between inner surface and end surface of 88 degrees;
  • Fig. 10 shows a macrophotograph of the surface of an aluminum alloy strip cast with a nozzle in accordance with the present invention having an angle between inner surface and end surface of 78 degrees;
  • Fig. 11 shows a macrophotograph of the surface of an aluminum alloy strip cast with a nozzle in accordance with the present invention having an angle between inner surface and end surface of 48 degrees;
  • Fig. 12 shows a macrophotograph of the surface of an aluminum alloy strip cast with a nozzle in accordance with the present invention having an angle between inner surface and end surface of 33 degrees.
  • the illustrated twin belt caster 10 has upper and lower endless rotating metal belts 12 and 14 arranged so that closely spaced moving confronting casting surfaces 16, 18 of the belts are disposed essentially parallel to each other through a region where they define a casting cavity (casting mold) 20 from a cavity entrance 21 to a cavity exit 22.
  • the belts are guided as they rotate through suitable oval or otherwise looped return paths between the entrance and the exit of the casting cavity.
  • the upper belt 12 passes around a cylindrical driving roll 24 and then travels along an upper path where it may be further supported, if desired, by rows of idler rollers or the like (not shown), and then around a semi-cylindrical bearing 25.
  • the lower belt follows an essentially identical but mirror image path including a drive roll 26 and a semi- cylindrical bearing 27 similar to the bearing located immediately above.
  • Molten metal is introduced into the casting cavity by a feeder 30 (not shown in Fig. 1, but illustrated in Fig. 2) incorporating a nozzle 32 having a projecting tip 34 provided with a molten metal outlet 35 at the outer extremity (extreme end) 36 of the tip.
  • a feeder 30 not shown in Fig. 1, but illustrated in Fig. 2
  • nozzle 32 having a projecting tip 34 provided with a molten metal outlet 35 at the outer extremity (extreme end) 36 of the tip.
  • molten metal enters the apparatus from the feeder 30 in the direction shown by arrow A (Fig. 1), the metal solidifies within the casting cavity 20 and a cast strip article emerges from the apparatus at the exit of the casting cavity in the direction of arrow B as shown.
  • the reverse (inner) surfaces 17, 19 of the casting belt are generally cooled by means of jets of cooling water,
  • FIG. 2 shows an enlargement of the end of the caster adjacent to the entrance 21 of the casting cavity 20.
  • the belts 12 and 14 are shown in dash-dot lines.
  • the apparatus is provided with a molten metal feeder 30 which may be of the type disclosed, for example, in US patent No. 5,636,681issued on June 10, 1997 to Alcan International Limited (the disclosure of which is incorporated herein by reference).
  • the feeder 30 comprises top and bottom nozzle mounts 38 which hold metal delivery nozzle 32 in place so that its tip 34 projects between the two moving belts 12 and 14 of the belt caster.
  • the mounts 38 are bolted to the caster structure (not shown) and support the nozzle 32 such that an upstream opening 40 can mate with a similar opening in a tundish or feed-box (not shown) used to feed the caster with molten metal.
  • a resilient refractory seal (also not shown) is used between upstream faces 41 of the nozzle and the tundish or feed-box.
  • the nozzle 32 is fabricated from refractory materials, for example as described in US patent No. 5,636,681, and the tip 34 has a slightly divergent shape as shown.
  • Spacers 46 in the form or wire mesh or metal strips, are provided between the outer surfaces of the nozzle and the adjacent casting belts to maintain a fixed and controlled spacing between the nozzle and belts.
  • the nozzle includes refractory walls 53 that have inner molten-metal-contacting surfaces 55 confronting each other across a molten-metal-conveying channel 50 leading from the upstream opening to the metal outlet 35.
  • the walls have end surfaces 56 that interconnect with the inner surfaces 55 at lines 65.
  • the walls also have outer surfaces 54 that confront the casting belts 12 and 14.
  • the present invention is primarily concerned with the delivery of molten metal into the casting cavity in the region of the nozzle tip 34. This is explained in more detail with reference to Figs. 3 and 4.
  • Figure 3 shows a conventional nozzle tip 34 in which only the lower wall 53 of the tip is shown adjacent the lower casting belt 14.
  • the upper wall of the tip and the upper casting belt can be visualized as mirror images of the lower parts.
  • the illustrated tip has an outer surface 54 extending generally parallel to the surface of the adjacent casting belt 14, a molten-metal-contacting inner surface 55, and a narrow end surface 56 that is disposed at right angles to the inner surface 55 of the tip (as indicated by the small rectangle).
  • a meniscus 58 i.e. an unsupported metal surface
  • reactive metals i.e.
  • the meniscus is covered by an oxide layer 60.
  • the oxide layer 60 is drawn along by the belt by friction and is subject to stress in the region of the meniscus. It is found that the oxide layer on the meniscus will periodically rupture and the exposed metal will instantly form a new layer of oxide. The resulting oxide breakage and re- growth causes surface defects in the cast article.
  • the inventors of the present invention have found that the effect of the inevitable oxide rupture on surface quality can be reduced or minimized by ensuring that the oxide membrane ruptures frequently and in a controlled manner rather than randomly.
  • angle ⁇ (referred to as the "cut-back angle” and also as the “included angle") between the inner surface 55 and the end surface 56 is an acute angle less than 88°, preferably between 15 and 85 degrees, more preferably between 15 and 80°, more preferably between 30 and 80 degrees, and even more preferably between 30 to 75°.
  • the meniscus 58 is free to oscillate, and, absent any outside influences, takes on a "natural" frequency determined by the physical properties of the molten metal, the contact friction between the molten metal and the moving substrate (casting belt) and the spacing of the tip to belt distance (spacing "S” shown in Fig. 4).
  • the use of the acute cut-back angle ⁇ , in combination with a precisely defined spacing S of tip to belt, means that the geometry of the meniscus is reliably controlled between the casting surface 61 of the casting belt 12 and the line of intersection 65 (referred to as the "take-off point" or “take-offline”) between the inner surface 55 and the end surface 56 of the nozzle tip, so that the frequency of oscillation is stable.
  • the use of the acute cut-back angle ⁇ ensures that the final point of contact between the molten metal and the nozzle is confined to a fixed position on the tip, namely the line of intersection 65.
  • the molten metal surface transfers from a supported condition (supported by the nozzle) to an unsupported condition (in the form of a meniscus) and the oxide film on the metal surface is repetitively ruptured along this line as the meniscus oscillates.
  • the oxide rupture has the same regular frequency as the frequency of oscillation and takes place in small and regular breaks, thus creating regular and minimal defects on the metal surface.
  • the cut-back angle ⁇ is not acute (e.g. if it is 90 degrees as in a conventional nozzle tip)
  • the meniscus 58 can touch the end surface 56 of the tip during oscillation. This rapidly forms oxide whiskers on the end surface of the tip and this in turn causes adherence of the meniscus to the end surface 56 below the line of intersection 65. This adhesion is variable and prevents regular and free oscillations of the meniscus from occurring. The breaks in the oxide layer are consequently irregular and delayed and the resulting surface defects are larger.
  • the amplitude of the meniscus oscillations appears to be somewhat casting speed related, i.e. larger amplitudes are encountered at higher casting speeds. As larger amplitudes can result in the meniscus being more difficult to fix on the nozzle, it is desirable to reduce the angle ⁇ at higher casting speeds and an angle no larger than 75 degrees is usually desirable for high casting speeds. On the other hand, if the cut back angle is less than 15 degrees, it becomes difficult to construct a nozzle tip having the requisite stiffness and strength properties.
  • the spacing S (which is the distance between the "take-off point" 65 and the casting surface 61 of the casting belt at the point where the meniscus contacts the surface) affects the performance of the casting process.
  • the spacing S should be in the range of 0.5 to 3.0 mm.
  • the spacing S includes the thickness of the lower wall 53 at the tip, and so this thickness must necessarily also be within the range of 0.5 to 3.0 mm.
  • the most preferred distance for spacing S is 1 + 0.5 mm. This can be achieved, for example, by making the sidewall 53 from an alumina-silicate fiberboard (e.g. Fiberfrax®) having a thickness of lmm at the tip that is slightly compressed with a rigidizer. As the material is slightly compressed and changes in thickness slightly during use due to thermal expansion, the spacing S can be maintained at about lmm with a slight gap forms between the sidewall 53 and the casting surface.
  • the indicated material has sufficient strength and rigidity despite its narrow thickness, and desirably it also relatively low thermal conductivity.
  • the metal was poured into a box 70 and a bottom plate 71 was pulled horizontally at predetermined speeds and molten metal temperatures, allowing the metal 75 to flow from an end 72 of the moving bottom plate onto a sheet steel mold 73, where it solidified progressively towards the moving bottom plate.
  • the moving bottom plate (forming a thin slide) was made of the same material as the feeder tips used for continuous casting, and the right hand end was changed in geometry as shown in Figures 7A to 7D to study the effects of such changes on the solidified metal, such as meniscus break lines and other ingot surface defects.
  • the speed of extracting the bottom plate was varied to simulate different metal flow rates and conditions of the tip to the mold surface.
  • the geometry of Figure 7A corresponds to the present invention, having a cut back angle of 75 degrees.
  • Figure 7B has a cut back angle of 120 degrees, i.e. outside the present invention.
  • Figure 7C has a compound surface but the angle at the inner corner ("take off point") is 120 degrees. The second angle does not affect the meniscus because it does not form a take-off point.
  • Figure 7D has a curved outer surface and there is as a result no clear inner corner or "take off point”. All conditions in Figures 7B, 7C, and 7D resulted in undesirable oxide breaks at the solidification juncture, but the conditions of Fig. 7A, an undercut tip angle of 75° angle, gave good results. For the same design as in Fig. 7A, the undercut angle was changed to 60 and 30°, all with good results, attained by the sharp upper edge shown in Figure 7A.
  • Cut back angles of 93 and 88 degrees are outside the range of angles of the invention and the sheet cast using tips at such angles exhibit unacceptable oxide folds or banding.
  • a spacing of 30 mm, typical of such bands, corresponds to a frequency of about 4 to 6 Hz. Cut back angles less than 88 degrees show an absence of such heavy bands, but display finer more regular surface marks with spacings of about 1 mm, corresponding to a frequency of over 100 Hz.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Continuous Casting (AREA)
  • Molds, Cores, And Manufacturing Methods Thereof (AREA)

Abstract

L’invention concerne un dispositif d’alimentation pour transporter un métal fondu dans un moule formé entre les surfaces de coulage opposées d’une machine de coulée continue. Le dispositif d’alimentation comprend une pointe d’injecteur en saillie présentant au moins une paroi inférieure dotée d’une surface interne au contact du métal fondu, une surface externe généralement plane et une surface d’extrémité à une extrémité externe de la pointe qui s’étend entre les surfaces interne et externe. La surface interne est généralement plane et s’incline de préférence vers la surface externe considérée dans une direction se déplaçant vers l’extrémité de la pointe avec un angle d’inclinaison inférieur à 8 degrés. La surface d’extrémité est généralement plane et s’étend depuis la surface interne vers la surface externe avec un angle aigu inférieur à 88 degrés, par exemple compris entre 18 et 80 degrés, par rapport à la surface interne dans une direction s’éloignant de l’extrémité de la pointe. Le dispositif d’alimentation permet de couler un article de feuille métallique présentant moins de défauts de surface dus à la rupture de l’oxyde métallique en cours de coulage.
EP06705222A 2005-02-25 2006-02-24 Dispositif d alimentation de metal fondu pour coulee continue et son procede Withdrawn EP1858661A4 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US11/066,625 US20060191664A1 (en) 2005-02-25 2005-02-25 Method of and molten metal feeder for continuous casting
PCT/CA2006/000267 WO2006089419A1 (fr) 2005-02-25 2006-02-24 Dispositif d’alimentation de metal fondu pour coulee continue et son procede

Publications (2)

Publication Number Publication Date
EP1858661A1 true EP1858661A1 (fr) 2007-11-28
EP1858661A4 EP1858661A4 (fr) 2009-07-01

Family

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Family Applications (1)

Application Number Title Priority Date Filing Date
EP06705222A Withdrawn EP1858661A4 (fr) 2005-02-25 2006-02-24 Dispositif d alimentation de metal fondu pour coulee continue et son procede

Country Status (10)

Country Link
US (2) US20060191664A1 (fr)
EP (1) EP1858661A4 (fr)
JP (1) JP2008531285A (fr)
KR (1) KR20070114296A (fr)
CN (1) CN100528405C (fr)
AU (1) AU2006217571A1 (fr)
BR (1) BRPI0609048A2 (fr)
CA (1) CA2596473A1 (fr)
NO (1) NO20074877L (fr)
WO (1) WO2006089419A1 (fr)

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EP1932605B1 (fr) * 2006-12-14 2010-03-31 MKM Mansfelder Kupfer und Messing GmbH Procédé et dispositif destinés à la fabrication de bandes larges de cuivre ou de cuproalliage
DE102009012985A1 (de) * 2009-03-12 2010-09-23 Salzgitter Flachstahl Gmbh Gießdüse für eine horizontale Bandgießanlage
DE102009012984B4 (de) * 2009-03-12 2013-05-02 Salzgitter Flachstahl Gmbh Gießdüse für eine horizontale Bandgießanlage
US8579012B2 (en) * 2009-03-27 2013-11-12 Novelis Inc. Continuous casting apparatus for casting strip of variable width
DE102009054218A1 (de) * 2009-10-21 2011-05-19 Sms Siemag Ag Verfahren und Vorrichtung zur seitlichen Strömungsführung einer Metallschmelze beim Bandgießen
WO2017218472A1 (fr) * 2016-06-13 2017-12-21 Golden Aluminum Company Système et procédé de remplacement et d'ajustement de composants de coulée continue
JP6781839B2 (ja) * 2016-11-29 2020-11-04 エス・エム・エス・グループ・ゲゼルシャフト・ミト・ベシュレンクテル・ハフツング 鋳造ノズル
KR102538521B1 (ko) * 2018-03-14 2023-06-01 노벨리스 인크. 개선된 표면 특성을 갖는 금속 제품 및 그 제조 방법
JP2024515132A (ja) * 2021-06-02 2024-04-04 ノベリス・インコーポレイテッド 高性能連続鋳造のためのノーズチップデザイン

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CA2596473A1 (fr) 2006-08-31
CN101128277A (zh) 2008-02-20
US20080083524A1 (en) 2008-04-10
AU2006217571A1 (en) 2006-08-31
JP2008531285A (ja) 2008-08-14
CN100528405C (zh) 2009-08-19
EP1858661A4 (fr) 2009-07-01
US20060191664A1 (en) 2006-08-31
KR20070114296A (ko) 2007-11-30
WO2006089419A1 (fr) 2006-08-31
NO20074877L (no) 2007-11-23
BRPI0609048A2 (pt) 2016-11-29

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