US20260175290A1 · App 19/124,916
MOULD FOR THE CONTINUOUS CASTING OF A METAL MATERIAL
Publication
Application
Classifications
IPC Classifications
CPC Classifications
Applicants
Danieli & C. Officine Meccaniche S.P.A., cunova Gmbh
Inventors
Riccardo CONTE, Andrea LEGHISSA, Hans-Günter WOBKER, Christian KLUCK, Thomas ROLF, Gerhard HUGENSCHUTT
Abstract
A mould for the continuous casting of a metal material having a crystallizer includes a plurality of plates which define between them a casting channel having a casting direction. At least one of the plates has an internal surface that delimits the casting channel and an external surface, opposite the internal surface, and on which there are one or more functional grooves that develop longitudinally and have an overall length and a width that is not constant along the overall length.
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Description
FIELD OF THE INVENTION
[0001]The present invention concerns a mould for the continuous casting of a metal material, for example steel, which can find application in the field of producing metal products such as, for example, billets, blooms, slabs or other types.
BACKGROUND OF THE INVENTION
[0002]In the field of continuous casting of metal materials, various types of apparatuses are known, such as moulds, which comprise a crystallizer. One of these moulds is described in the Italian patent for industrial invention N°102019000001035 granted to the Applicant, in which the crystallizer consists of a plurality of plates 100 (
[0003]Usually, the internal surface of the plates 100 of the crystallizer, that is, the surface that delimits the casting channel, is substantially smooth. Instead, on the external surface 102 of each plate 100, a series of longitudinal grooves 101 is made with a constant width and section, which develop parallel to the casting axis.
[0004]A corresponding counter-plate is attached to each plate 100 that adheres to the external surface 102 of the plate 100 so as to define, by means of the grooves 101, a series of cooling channels in which a cooling liquid can flow.
[0005]In addition, the counter-plate is provided with an aperture for feeding the cooling liquid and an aperture for discharging the cooling liquid, disposed respectively in correspondence with the ends of the grooves 101, along the casting axis.
[0006]One disadvantage of known moulds consists in the fact that repeated cyclical thermal stresses, caused by the temperature variation in the casting channel between the moments in which the casting occurs and the moments in which the casting is interrupted, cause corresponding thermal expansion cycles which mechanically stress the plates 100 of the crystallizer. This leads to the formation of cracks in the plates 100, in particular in correspondence with the zone thereof in which the meniscus of the casting of the metal material is formed. The formation of cracks reduces the useful life of the crystallizer and requires frequent and expensive maintenance interventions.
[0007]Document U.S. Pat. No. 4,640,337 A describes a continuous casting apparatus comprising a casting channel defined peripherally by plates having a plurality of cooling grooves. The cooling grooves have a central section with a constant width and are provided with lateral semicircular cambers made at regular intervals along the entire length of the grooves and disposed alternately on one side and the other with respect to the central section. The conformation of the grooves has the disadvantage of not being functional for acting in correspondence with the hottest zones of the casting channel, for example where a meniscus of the cast metal material forms.
[0008]Document WO 2011/076591 A1 describes a plate suitable for a continuous casting apparatus and having a cooling side provided with cooling grooves. The plate is provided with several rows of transverse holes, disposed at constant intervals, and longitudinal grooves. The grooves are defined by a single central cavity with a width that can vary in several points along the entire length; however, this variation has the disadvantage of not being functional to act, in particular, in the zones where greater heat develops.
[0009]Document US 2022/105559 A1 describes a crystallizer having plates which are able to define an internal casting channel. The plates are provided with a fixed surface to which a back plate is externally attached by means of rows of attachment screws. A plurality of longitudinal reinforced bars are attached by means of such screws between the fixed surface and the back plate so as to define, between them, respective cooling channels having a substantially constant section. In the cooling channels, in correspondence with the upper zone in which the casting meniscus is formed, a central diverting baffle plate is disposed to divert the flow of the cooling liquid present there. The structure of the plates is, however, complex and difficult as well as laborious to create.
[0010]Document CN 115007816 A describes a plate for a continuous casting crystallizer, which is provided with a plurality of longitudinal cooling ribs. The cooling ribs have a variable depth and width along their length. Specifically, the ribs have a smaller width in correspondence with the high temperature zone and a greater width in correspondence with the transition zone and the low temperature zone. This is not very efficient, considering that the zone where the casting meniscus is formed is the one in which the highest temperature can occur, and which may require greater cooling.
[0011]JP H05154613 A describes a mould for a continuous casting apparatus. The mould is provided with a plurality of cooling grooves that form a symmetrical branched structure. Specifically, there are longitudinal grooves connected by inclined grooves, wherein the longitudinal grooves can have widenings in correspondence with their angular zones and their central zone. This branched structure is, however, very complex and the disposition of the grooves themselves has the disadvantage of giving a homogeneous and non-specific cooling for zones with higher temperatures.
[0012]There is therefore the need to perfect a mould for the continuous casting of metal material that can overcome at least one of the disadvantages of the state of the art.
[0013]In order to do this, it is necessary to solve the technical problem of improving the cooling of the plates of the crystallizer, in particular in moulds for continuous casting in which the casting speed, and therefore also the thermal flow to the meniscus, is relatively high, for example higher than about 3.5 m/min.
[0014]In particular, one purpose of the present invention is to provide a mould for continuous casting which allows a more effective cooling of the plates of the crystallizer, in particular of the zone thereof in which, during use, the meniscus of the casting of metal material is formed.
[0015]Another purpose of the present invention is to provide a mould for continuous casting that is economical to produce and has low management and maintenance costs.
[0016]The Applicant has devised, tested and embodied the present invention to . . . overcome the shortcomings of the state of the art and to obtain these and other purposes and advantages.
SUMMARY OF THE INVENTION
[0017]The present invention is set forth and characterized in the independent claim. The dependent claims describe other characteristics of the present invention or variants to the main inventive idea.
[0018]In accordance with the above purposes and in order to resolve the technical problem described above in a new and original way, also achieving considerable advantages compared to the prior art, a mould according to the present invention, for the continuous casting of metal material, has a crystallizer comprising a plurality of plates that define between them a casting channel that has a casting direction and in which the metal material is able to pass according to such casting direction. At least one of the plates has an internal surface that delimits the casting channel and an external surface, opposite the internal surface, and on which there is a plurality grooves that develop longitudinally in a manner substantially parallel to the casting direction and which have an overall length. Moreover, at least one counter-plate is hermetically attached on the external surface of each of the plurality of plates to define, by means of the one or more grooves, one or more cooling channels.
[0019]In accordance with one aspect of the present invention, the plurality of grooves comprise a functional groove having a width, measured in a direction substantially parallel to the external surface and substantially orthogonal with respect to the casting direction, which is not constant along the overall length, wherein the at least one functional groove comprises a first segment having a first length and a first width, and at least a second segment communicating fluidically with the first segment and having a second length and a second width, the second width being smaller than the first width and the sum of the first length and the second length defining the overall length.
[0020]In accordance with another aspect of the present invention, the functional groove comprises at least two second segments connected fluidically to the first segment in correspondence with a lower surface thereof.
[0021]In accordance with another aspect of the present invention, the at least two second segments are parallel to each other, and each has the second length and the second width.
[0022]In accordance with another aspect of the present invention, the first segment is disposed in correspondence with a zone of the plate in which a meniscus of the metal material is able to form during the casting of the latter into the casting channel.
[0023]In accordance with another aspect of the present invention, in correspondence with the first segment there are one or more recesses made close to a bottom wall of the functional groove in order to further widen the first segment in a direction substantially parallel to the internal surface, the one or more recesses having the function of preventing a hot spot from forming in a corresponding point of the internal surface, thus allowing to improve the heat exchange and obtain a uniform temperature profile in correspondence with the meniscus.
[0024]In accordance with another aspect of the present invention, the ratio between the second width and the first width is comprised in a range between about 0.1 and about 0.3.
[0025]In accordance with another aspect of the present invention, the ratio between the first length and the overall length of the functional groove is comprised in a range between about 0.1 and about 0.4.
[0026]In accordance with another aspect of the present invention, the ratio between the second length and the overall length of the functional groove is comprised in a range between about 0.08 and about 0.35.
[0027]In accordance with another aspect of the present invention, the number of functional grooves is at least half of the total number of grooves made on the external surface of the plate.
[0028]In accordance with another aspect of the present invention, each groove of the plurality of grooves is a functional groove.
[0029]In accordance with another aspect of the present invention, a reducer member can be at least partly inserted into a corresponding first segment and is configured to occupy at least a portion of volume of the first segment and reduce the passage section of a cooling liquid which is able to flow inside it, thus increasing and maintaining a high speed thereof.
[0030]In accordance with another aspect of the present invention, the reducer member comprises an insert which has a width substantially corresponding to said width and a depth smaller than a depth of the first segment, the insert having sizes able 25 to adapt to the thermal expansions resulting from the casting.
[0031]In accordance with another aspect of the present invention, the reducer member comprises at least two inserts cooperating with each other to be inserted into a corresponding first segment, each having a depth smaller than a depth of the first segment and being aligned in the direction of the length of the functional groove, the inserts having sizes able to adapt to the thermal expansions resulting from the casting.
[0032]In accordance with another aspect of the present invention, the reducer member comprises at least one insert shaped in such a way as to be inserted into at least two first segments of respective adjacent functional grooves, the insert having a depth smaller than a depth of the first segments and sizes able to adapt to the thermal expansions resulting from the casting.
[0033]In accordance with another aspect of the present invention, each insert is provided with one or more positioning pins which protrude laterally with respect thereto and are configured to be inserted into corresponding positioning seatings created on corresponding lateral surfaces of the first segment, the pins having sizes able to adapt to the thermal expansions resulting from the casting.
[0034]In accordance with some embodiments, each insert is made in a single body. In accordance with other embodiments, each insert comprises at least two parts able to be coupled together and shaped in such a way as to be inserted together into at least a first segment.
[0035]The present invention also concerns a plate configured to define a part of a casting channel of a crystallizer of a mould for the continuous casting of a metal material, having the characteristics described above.
DESCRIPTION OF THE DRAWINGS
[0036]These and other aspects, characteristics and advantages of the present invention will become apparent from the following description of some embodiments, given as a non-restrictive example with reference to the attached drawings wherein:
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[0052]We must clarify that in the present description the phraseology and terminology used, as well as the figures in the attached drawings, also because of how they are described, have the sole function of better illustrating and explaining the present invention, providing non-limiting examples of the invention itself, since the field of protection is defined by the claims.
[0053]To facilitate comprehension, the same reference numbers have been used, where possible, to identify identical common elements in the drawings. It is understood that elements and characteristics of one embodiment can conveniently be combined or incorporated into other embodiments without further clarifications.
DESCRIPTION OF SOME EMBODIMENTS OF THE PRESENT INVENTION
[0054]With reference to
[0055]The number and sizes of the plates 11 are chosen as a function of the shape and size to be given to the cast metal product at exit from the mould 10, according to the state of the art.
[0056]For example, in accordance with one embodiment, shown schematically in
[0057]In accordance with other embodiments, schematically shown in
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[0059]Each plate 11 comprises an upper edge 15 for the entry of the cast metal material and a lower edge 16 for the exit of the same cast material. The two edges 15 and 16 are substantially orthogonal to the casting direction X.
[0060]Each plate 11 has an internal surface 19 that defines the casting channel 12 and an external surface 20 opposite the internal surface 19 and therefore facing the outside of the mould 10.
[0061]A plurality of grooves 21 (
[0062]On the external surface 20 of each plate 11 there is attached a corresponding counter-plate 40 (
[0063]The overall length LU (
[0064]Some embodiments of the present invention provide that each groove 21 develops in depth in the direction of the thickness S of the plate 11 and that the depth PR (
[0065]Furthermore, advantageously, the thickness S of the plate 11 and the depth PR of each groove 21 are constant along the entire overall length LU.
[0066]According to one aspect of the present invention, the plurality of grooves 21 comprise at least one functional groove 21 a that has a width measured in a direction parallel to the external surface 20 and orthogonal with respect to the casting direction X, that is not constant along its overall length LU.
[0067]In accordance with some embodiments of the present invention, a part of the grooves 21 are functional grooves 21a (
[0068]In this case, preferably, the number of functional grooves 21a is at least half of the total number of grooves 21 made on the external surface 20 of each plate 11.
[0069]The functional grooves 21a can be grouped in a specific portion of the plate 11. For example,
[0070]In accordance with other embodiments of the present invention, each groove 21 of the plurality of grooves 21 is a functional groove 21a (
[0071]Each functional groove 21a comprises a first segment 22, or upper segment, having a first length LU1, for example comprised between about 100 mm and about 400 mm, and one or more second segments 23 and 24, or lower segments, communicating fluidically with the first segment 22.
[0072]Each second segment 23 and 24 has a second length LU2, greater than the first length LU1 and, for example, comprised between about 550 mm and about 1000 mm.
[0073]Furthermore, the first segment 22 has a first width LA1, for example comprised between about 15 mm and about 50 mm, while each second segment 23 and 24 has a second width LA2, smaller than the first width LA1 and, for example, comprised between about 3 mm and about 15 mm, that is, substantially equal to the width, constant along the entire length, of the grooves of the known type.
[0074]Other embodiments can provide that a single second segment 23 or 24, or even more than two second segments, is connected fluidically to the first segment 22. For example, the embodiment of
[0075]It is clear that the number of second segments 23, 24 connected fluidically to the first segment 22 can vary as a function of the choices made during construction and the sizes of the crystallizer 13.
[0076]The first segment 22 is advantageously disposed in the proximity of the upper edge 15 of the plate 11 and in particular in the zone in which, during use, a meniscus M of the casting of the metal material is formed.
[0077]The width LA1 of the first segment 22 allows to have a high cooling efficiency and allows to prevent, or at least reduce, the formation of cracks and breaks due to the thermal fatigue typically present in the zone where the meniscus M of the casting is formed.
[0078]In the embodiments shown in the attached drawings, each functional groove 21a comprises two second segments 23, 24 (
[0079]In addition, the two second segments 23, 24 join each other in the proximity of the lower edge 16 of the corresponding plate 11.
[0080]Optionally, at least one second segment 23 or 24 is inclined with respect to the thickness S of the plate 11.
[0081]The ratio between the second width LA2 and the first width LA1 is preferably comprised in a range between about 0.1 and about 0.3. The ratio between the first length LU1 and the overall length LU of the functional groove 21a is preferably comprised in a range between about 0.1 and about 0.4. Furthermore, the ratio between the second length LU2 and the overall length LU of the functional groove 21a is comprised in a range between about 0.08 and about 0.35.
[0082]The first segment 22 is defined by a substantially rectangular cavity 25 (
[0083]The upper surface 29 is concave in shape to connect with the bottom surface 26 while the lower surface 30 is conformed so as to connect the first segment 22 with the two second segments 23, 24. In other words, the two second segments 23, 24 are connected to the first segment 22 in correspondence with its lower surface 30.
[0084]In each functional groove 21a, the combination of the first segment 22 and at least one second segment 23, 24, having the characteristics described above, allows to improve and optimize the cooling function performed by the cooling liquid L on the metal material.
[0085]In accordance with one embodiment of the present invention, in correspondence with the first segment 22 there are also one or more recesses 31, which in the example provided here are two (
[0086]A reducer member 32 (
[0087]This allows to maintain a high speed of the cooling liquid L even in correspondence with the first segment 22, despite the fact that it is wider than the two second segments 23, 24.
[0088]The section reducer member 32 comprises an insert 33 which can have a width LA3 (
[0089]Clearly, the insert 33 have dimensions suitable to adapt to thermal expansions that can occur during casting. For example, between the insert 33 and the edges of the functional groove 21a some mechanical light could be present in order to allow the extraction of the insert 33 from the cavity 25, when necessary.
[0090]Also, the inserts 33 can be made from a material preferably selected in a group comprising stainless steel, copper-aluminum-bronze, PTFE (e.g. Teflon), aluminum copper alloy or other materials transparent to the electromagnetic fields acting in correspondence to the meniscus area due to electromagnetic stirrers.
[0091]Furthermore, the external surface 34 of the insert 33 (
[0092]The insert 33 can be realized in a single body or in more than one, for example two or more coupled parts that can be inserted into the cavity 25 and fixed together by interlocking mechanical means, e.g. by screws or other.
[0093]In a first example, the insert 33 is made as a single body (
[0094]Alternatively,
[0095]In addition, in the latter example the insert 33 can be inserted into two first segments 22 of two adjacent functional grooves 21a.
[0096]Alternatively, or additionally, as represented in
[0097]The insert 33 is held in position by one or more positioning pins 35 (
[0098]In addition, each pin 35 have dimensions suitable to adapt inside the corresponding seatings 36 to the thermal expansion that can occur during the casting operations.
[0099]Each counter-plate 40 comprises an inlet aperture 43, communicating with a distribution manifold 45 which is, in turn, in fluidic communication with each groove 21 of the plate 11. Preferably, the distribution manifold 45 is in fluidic communication with the upper portion of each groove 21 of the plate 11.
[0100]Furthermore, the counter-plate 40 also comprises a collection manifold 46 communicating fluidically both with the end part each groove 21, and also with a discharge aperture 47, made on the counter-plate 40, to allow to discharge and recover the cooling liquid L. Preferably, the collection manifold 46 is in fluidic . . . communication with the lower portion of each groove 21 of the plate 11.
[0101]In order to stably and hermetically attach the counter-plate 40 to the plate 11, a series of blind attachment holes 49 are made on the latter (
[0102]A screw 51 passes through each through hole 50 and attaches to a blind attachment hole 49 of the plate 11 and stably joins the counter-plate 40 to the plate 11. It is clear that the screws 51 can be replaced by other suitable attachment members, such as for example studs or threaded rods.
[0103]Furthermore, each recess 31 is shaped so as not to interfere with the blind attachment holes 49 while allowing a better cooling of the plate 11 even in the proximity thereof. For example, the recesses 31 can be made in such a way as to circumvent a blind attachment hole 49 disposed in the proximity thereof (
[0104]The mould 10 described above, thanks to the new and original technical solutions brought to the cooling means, that is, the functional grooves 21a, possibly integrated with the corresponding recesses 31, allows to reach a relatively high casting speed, and therefore also a thermal flow to the meniscus M, for example higher than about 3.5 m/min, ensuring at the same time an excellent cooling of the plate 11 also and above all in the zone of the meniscus M.
[0105]It is clear that modifications and/or additions of parts may be made to the mould 10 for the continuous casting of a metal material as described heretofore, without departing from the field of the present invention as defined by the claims.
[0106]It is also clear that, although the present invention has been described with reference to some specific examples, a person of skill in the art shall be able to achieve other equivalent forms of mould for the continuous casting of a metal material, having the characteristics as set forth in the claims and hence all coming within the field of protection defined thereby.
[0107]In the following claims, the sole purpose of the references in brackets is to facilitate reading: they must not be considered as restrictive factors with regard to the field of protection defined by the claims.
Claims
1. Mould for the continuous casting of a metal material, having a crystallizer comprising a plurality of plates which define between them a casting channel having a casting direction in which said metal material is able to pass according to said casting direction, and wherein at least one of said plates has an internal surface that delimits said casting channel and an external surface opposite said internal surface and on which there is a plurality of grooves that develop longitudinally in a manner substantially parallel to said casting direction and have an overall length, wherein on said external surface of each of said plurality of plates there is hermetically attached at least one counter-plate to define, by means of said one or more grooves, one or more cooling channels, wherein said plurality of grooves comprises at least one functional groove having a width, measured in a direction substantially parallel to said external surface and substantially orthogonal with respect to said casting direction, which is not constant along said overall length, wherein said at least one functional groove comprises a first segment having a first length and a first width, and at least one second segment communicating fluidically with said first segment and having a second length and a second width, said second width being smaller than said first width and the sum of said first length and of said second length defining said overall length.
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18. Plate configured to define a part of a casting channel of a crystallizer of a mould for the continuous casting of a metal material, said plate comprising an internal surface configured to delimit said casting channel and an external surface opposite said internal surface and on which there is a plurality of grooves which develop longitudinally and have an overall length, wherein said external surface is configured to be coupled to at least one counter plate in order to define, by means of said one or more grooves, one or more cooling channels, characterized in wherein said plurality of grooves comprises at least one functional groove having a width, measured in a direction substantially parallel to said external surface, which is not constant along said overall length, wherein said at least one functional groove comprises a first segment having a first length and a first width, and at least one second segment communicating fluidically with said first segment and having a second length and a second width, said second width being smaller than said first width and the sum of said first length and said second length defining said overall length.
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