Electromagnetic stirring device
09550232 ยท 2017-01-24
Assignee
Inventors
Cpc classification
B01F2101/26
PERFORMING OPERATIONS; TRANSPORTING
B01F33/45
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22D11/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An electromagnetic stirring device of melted metallic materials inside a cooling chamber of a casting machine having a retaining body of induction coils that is a body composed of at least two reciprocally different portions.
Claims
1. An electromagnetic stirring apparatus for storing melted metallic materials inside of a cooling chamber of a casting machine, the electromagnetic stirring apparatus comprising: a plurality of induction coils that apply a current so as to generate an electromagnetic field so as to apply a stirring force, the stirring force acting in correspondence with a partially solidified metallic bar that moves through the cooling chamber, the partially solidified metallic bar having a solid shell that encloses a nucleus that is in a melted state, the nucleus being subject to the electromagnetic field; a retaining body that retains said plurality of induction coils, said retaining body having a duct therein, said duct adapted to allow a passage of the metallic bar, said retaining body having portions; a driver cooperative with said portions of said retaining body between at least two configurations; a movement device cooperative with the metallic bar and adapted to move the electromagnetic stirring device along a guide and along a length of the metallic bar in a direction parallel to the metallic bar for at least a portion of the length of the metallic bar in a different operative position with respect to the metallic bar.
2. The electromagnetic stirring apparatus of claim 1, said portions of said retaining body comprising at least two portions which are adapted to be moved by said driver between at least a pair of configurations, said pair of configurations having a first configuration in which the at least two portions of said retaining body are reciprocally close to each other and wherein said retaining body is an essentially closed body which surrounds and defines said duct internal of said body, and a second configuration in which the at least two portions of said retaining body are reciprocally spaced and in which said retaining body is an essentially open body having at least one opening.
3. The electromagnetic stirring apparatus of claim 2, further comprising: an emergency opener cooperative with said portions of said retaining body, said emergency opener adapted to move said portions from said first configuration in which said portions are reciprocally close to said second configuration in which said portions are reciprocally spaced.
4. The electromagnetic stirring apparatus of claim 3, said emergency opener including a pusher.
5. The electromagnetic stirring apparatus of claim 3, said emergency opener including an activator that is adapted to control said emergency opener relative to a detection of a lack of cooling fluid or a detection of an excessive temperature.
6. The electromagnetic stirring apparatus of claim 1, said movement device includes a coupler adapted to couple with said guide, said movement device adapted to move the electromagnetic stirring apparatus along said guide, said guide extending in an essentially parallel direction with respect to the metallic bar for at least a portion of a total length of the metallic bar within the cooling chamber, the electromagnetic stirring apparatus further comprising: a motor cooperative with said guide in different operative positions along said guide, said motor adapted to apply movement of said electromagnetic stirring device in correspondence with different positions along said guide which are intended for the application of the stirring force in correspondence with different positions of the metallic bar.
7. The electromagnetic stirring apparatus of claim 6, said motor operating on a cable passing along a series of pulleys, said cable having a counterweight adapted to reduce an effort of said motor, said cable being adapted to transmit a traction action applied by said motor.
8. The electromagnetic stirring apparatus of claim 1, said portions of said retaining body containing a series of induction coils of said plurality of induction coils, said plurality of induction coils being configured in couples which are opposite to each other with respect to a center of said duct, each of said plurality of induction coils having a multi-phase and multi-pole arrangement which is circumferentially arranged around said duct.
9. The electromagnetic stirring apparatus of claim 1, wherein each of said plurality of induction coils being composed of at least one pack of windings which are placed adjacent to each other in a radial direction with respect to a center of said duct.
10. The electromagnetic stirring apparatus of claim 1, said portions of said retaining body being a pair of portions.
11. The electromagnetic stirring apparatus of claim 10, said pair of portions comprising a first portion and a second portion which are reciprocally hinged at a hinging point.
12. The electromagnetic stirring apparatus of claim 10, said pair of portions each being a reciprocally symmetrical semicircular portion.
13. The electromagnetic stirring apparatus of claim 1, said portions of said retaining body being supported by supporting arms that are adapted to be moved by said driver, said driver having at least one driving piston acting on said supporting arms so as to apply a pushing action or a traction action onto one of the arms with respect to another of the arms.
14. The electromagnetic stirring apparatus of claim 1, said movement device having a trolley provided with wheels, said trolley being slidable on said guide.
15. The electromagnetic stirring apparatus of claim 1, further comprising: at least one protection housing corresponding to an end of said guide, said protection housing adapted to house the electromagnetic stirring apparatus therein.
16. The electromagnetic stirring apparatus of claim 1, each of said portions comprising at least one inlet and at least one outlet which are adapted to feed a cooling fluid to the plurality of induction coils, said cooling fluid being adapted to circulate within said portions in accordance with the configuration of plurality of induction coils, said plurality of induction coils being immersed in a flow of the cooling fluid that circulates between said at least one inlet and said at least one outlet.
17. A casting machine for production of metallic metal bars comprising a cooling chamber having at least one electromagnetic stirring apparatus of claim 1.
18. The casting machine of claim 17, in which the cooling chamber has at least two of the electromagnetic stirring apparatus of claim 1.
19. The casting machine of claim 18, wherein said electromagnetic stirring apparatus comprises at least two of the electromagnetic stirring apparatuses are movable along said guide independent of each other or coordinated with each other.
20. A casting process for the production of metallic bars, the casting process comprising: pouring metallic material into a mold of a casting machine; extracting the metallic bar from said mold such that said metallic bar exits said mold in a partially solidified state, said metallic bar moving within a cooling chamber, the metallic bar having a shell which is in a solid state and encloses a nucleus that is in a melted state; and stirring the nucleus with at least one electromagnetic stirring apparatus, the at least one electromagnetic stirring apparatus comprising: a plurality of induction coils that apply current so as to generate an electromagnetic field so as to apply a stirring force, the stirring force acting in correspondence with the nucleus of the metallic bar that moves through the cooling chamber; a retaining body that retains said plurality of induction coils, said retaining body having a duct therein, said duct adapted to allow a passage of the metallic bar, said retaining body having portions; a driver cooperative with said portions of said retaining body between at least two configurations; and a movement device cooperative with the metallic bar and adapted to move the at least one electromagnetic stirring apparatus along a guide and along the length of the metallic bar in a direction parallel to the metallic bar for at least a portion of the length of the metallic bar and in different operative positions with respect to the metallic bar.
21. The casting process of claim 20, further comprising: moving the at least one electromagnetic stirring apparatus prior to the step of pouring.
22. The casting process of claim 21, the step of moving comprising: activating the driver by moving the portions from a first configuration in which the portions are reciprocally close to each other and a second configuration in which the portions are reciprocally spaced from each other; activating a motor so as to move the at least one electromagnetic stirring apparatus along the guide with a displacement of the at least one electromagnetic stirring apparatus on the guide from a first operating position to a second operating position, the second operating position being different than the first operating position; and activating the driver by moving the portions from the second configurations to the first configuration.
23. The casting process of claim 22, wherein the second operating position is determined for the at least one electromagnetic stirring apparatus relative to a distance from the nucleus in correspondence to a level of the metallic material that is poured within said mold.
24. The casting process of claim 22, the operative positions being determined according to a ratio between a solid fraction and a liquid fraction of the metallic bar in accordance with a thickness of said shell, the solid fraction corresponding to an estimated extension of said shell and the liquid fraction corresponding to an estimated extension of said nucleus.
25. The casting process of claim 22, a first of said operative positions corresponding to a position along the metallic bar in which a thickness of said shell is between 20% and 60% relative to a thickness of the metallic bar.
26. The casting process of claim 25, another of the operative positions corresponding position along the metallic bar in which a thickness of said shell is between 65% and 85% relative to a thickness of the metallic bar.
27. The casting process of claim 22, wherein the operative positions are determined continuously along a development of a length of the metallic bar within the cooling chamber.
28. The casting process of claim 20, wherein a stirring of the melted state of the nucleus has a first phase that provides a separating action between at least two electromagnetic stirring apparatuses in the operative positions which are reciprocally spaced along a development of the metallic bar within the cooling chamber, a second phase which combines an action of the at least two of said electromagnetic stirring apparatuses in reciprocally close operative positions along a total development of the metallic bar within said cooling chamber, the at least two electromagnetic stirring apparatuses operating in combination adjacent to each other so as to have a combination and interaction effect of respective electromagnetic fields that generate the stirring force, each of the at least two electromagnetic apparatuses being controlled by a generation signal of the electromagnetic field at a determined operative frequency, the operative frequencies of the least two electromagnetic stirring apparatuses that are in the reciprocally close operative positions selected from the group consisting of identical frequencies for all of the at least two electromagnetic stirring apparatuses, and different frequencies for each of the at least two electromagnetic stirring apparatuses with respect to the operative frequency of the adjacent electromagnetic stirring apparatuses.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) It is in the following described a solution realizable with reference to the included drawings to be considered namely non-limited example of the present invention in which:
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DETAILED DESCRIPTION OF THE INVENTION
(21) Referring to the figures (
(22) The portions (2, 3) are intended to be moved by means of driving means (6) between at least two configurations of which: a first configuration is a configuration in which the at least two portions (2, 3) are reciprocally close to each other and the body (28) is essentially close and surrounds and defines a duct (27) internal to said body intended for the passage of said metallic material bar (16) for the action of said electromagnetic field on said metallic material bar (16); a second configuration is a configuration in which the at least two portions (2, 3) are reciprocally spaced and the body (28) is essentially opened and endowed with at least one opening (29), whose aim will be cleared in the following of the present description.
(23) In the preferred solution of the present invention (
(24) The portions (2, 3) of the body (28) contain (
(25) In the preferred solution of the present invention the body (28) is composed of two movable portions (2, 3) that are a first portion (2) and a second portion (3) reciprocally hinged at a hinging point (9) in correspondence with one end for the coupling between the two portions. Preferably the portions (2, 3) are reciprocally symmetrical semicircular portions.
(26) In the shown realizable solution (
(27) Though in the form of execution shown the coupling means (8) are a trolley endowed with wheels intended to slide on a guide (7) in the form of a beam with H like profile, it will be evident that innumerable embodiments of the guide system of the electromagnetic stirring device (1) that are meant to be included in the aim of the appended claims are possible.
(28) Advantageously the electromagnetic stirring device (1) according to the present invention can also include (
(29) Independently on the presence or less of the protection housing (26) the solution according to the present invention allows important benefits from the point of view of the integrity of the electromagnetic stirring device (1) in the emergency situations because the reciprocal opening of the movable portions (2, 3) in itself already reduces the device heating by radiation. Furthermore the emergency phase can provide, once the reciprocal opening of the movable portions (2, 3) has happened, also the removal of the electromagnetic stirring device (1) from a zone subject to greater heat to a zone subject to less heat and less exposed to the risk of metal squirts, namely from a zone close to the mould to a zone far from the mould and at the most, if necessary but not necessarily, external to the same casting machine.
(30) In the preferred solution of the present invention the body (28) is composed of two movable portions (2, 3) that are a first portion (2) and a second portion (3) reciprocally hinged at a hinging point (9) in correspondence with a coupling end between the two portions. Preferably the portions (2, 3) are reciprocally symmetrical semicircular portions.
(31) Each portion (2, 3) will be endowed with at least one inlet and at least one outlet intended to the feeding of a cooling fluid of the induction coils (12) to discharge the heat coming from the bar (16). The cooling fluid can circulate internally to the portions (2, 3) according to a configuration in which the induction coils (12) are immersed in a flow of this cooling fluid which circulates between the at least one inlet and the at least one outlet and/or according to a configuration in which said cooling fluid circulates internally to a metallic conductor preferably made of copper which is a hollow conductor which is wound according to a circular shape to make such induction coils (12). The cooling fluid can be delivered to the portions (2, 3) by interconnection means (10) with a delivery duct of fluids.
(32) The electromagnetic stirring device (1) can also comprise at least one temperature sensor (35), preferably at least one temperature sensor of (35) for each of the portions (2, 3), even more preferably a temperature sensor (35) for each of the induction coils (12). The temperature sensor (35) is intended for the measurement of temperature of the induction coils (12). Further the electromagnetic stirring device (1) can comprise also emergency opening means (37) of the portions (2, 3). The emergency opening means (37) being intended to move the portions (2, 3) from the first configuration in which the portions (2, 3) are reciprocally close to the second configuration in which the portions (2, 3) are reciprocally spaced. This solution is particularly advantageous in case of lack of suitable cooling fluid that could bring to a raising of the temperature with damage for the induction coils (12) or in case of interruption of the feeding of the electric power to the casting machine. In this condition usually is maintained only the circulation of the cooling fluid closely necessary to manage the maximum emergency conditions of this situation and, therefore, the electromagnetic stirring device (1) would be exposed to the heat coming from the bar (16) without suitable cooling. The opening of the portions would increase the distance of the coils from the incandescent bar preserving the same coils. Furthermore it may be provided also the release of braking devices of the device so that it, by gravity, will move to a position of the guide where the bar has a lower temperature. For example the emergency opening means (37) can include activation means intended to control said emergency opening means (37) following the exceeding of a temperature threshold measured by means of the temperature sensor/s (35). The activation means can be directly managed on the device to manage also the case of lack of electric power in the casting machine and/or can be managed by the control unit (21). The control unit (21) can be indifferently made in the form of a personal computer, a personal industrial computer or a programmable logic controller (PLC), a dedicated electronic card or equivalent means. The emergency opening means (37) can include, for example, pushing means in the form of elastic mechanical means and/or pushing springs and/or pushing means in the form of pushing piston operated by container of air or gas, possibly a noble gas.
(33) This invention relates also to a casting machine (18) for the production of metallic material bars (16) in which the metallic material at the melted state is cast (
(34) This invention relates also to a casting process for the production of metallic material bars (16) comprising a casting phase in which the metallic material is cast within a mould (14) of the casting machine (18) for extracting the metallic material bar (16) from the mould (14), the metallic material bar (16) exiting from the mould (14) being partially solidified and moving within the cooling chamber (30). The process provides one or more stirring phases of the material at the melted state constituting the nucleus (23) of the metallic material bar (16) within the cooling chamber (30) and the stirring phase of the material at the melted state constituting such nucleus occurs by means of at least one of the inventive electromagnetic stirring devices (1).
(35) The casting process can include at least one movement phase of one or more of these electromagnetic stirring devices (1) by said movement means (7, 8), for example along the respective guide (7), this movement phase happening before of the starting of this casting phase and/or during the casting phase.
(36) In the casting process according to the present invention, the movement phase can provide the following steps for at least one of the inventive electromagnetic stirring devices (1): activation of the driving means (6) with movement of the at least two portions (2, 3) from the first configuration in which the at least two portions (2, 3) are reciprocally close to the second configuration in which the at least two portions (2, 3) are reciprocally spaced; activation of the motorized means of movement intended for the movement of the electromagnetic stirring device (1) along the guide (7) with displacement along this guide (7) of the electromagnetic stirring device (1) itself from a first operative position to a second operating position different with respect to this first operating position; activation of the driving means (6) with movement of the at least two portions (2, 3) from the second configuration in which the at least two portions (2, 3) are reciprocally spaced to the first configuration in which the at least two portions (2, 3) are reciprocally close.
(37) In the casting process according to this invention such second operating position will be preferably determined at least for one of the electromagnetic stirring devices (1) referring to the distance (d) from the meniscus (15) and/or referring to an equivalent reference point of the casting machine. The meniscus (15) is the interface within the mould (14) constituting the starting of the formation of the bar (16) and corresponding to the level at which the metallic material poured at the melted state is maintained within the mould (14). The reckoning of the operative position will occur preferably on the base of parameters and data describing the casting process including estimated cooling curve of the metallic material bar (16) and/or shapes in section of the metallic material bar (16) and/or size in section of the metallic material bar (16) and/or casting or extraction speed and/or temperature of the metallic material within the mould (14) and/or temperature of the metallic material within the tundish (19) feeding the metallic material at the melted state within the mould (14) and/or temperature of the metallic material within the ladle (not represented) feeding the metallic material at the melted state within the tundish (19) and/or composition of the metallic material at the melted state and/or temperature of the cooling water of the metallic material at the melted state within the mould (14) and/or operative parameters of the casting process.
(38) For example the optimal operative positions can be determined according to the estimation of the ratio between solid fraction and liquid fraction of the partially solidified metallic material bar (16) in correspondence with such operative positions, the solid fraction corresponding to the estimated extension of the shell (22) and the liquid fraction corresponding to the estimated extension of the nucleus (23). In particular (
(39) For example at least one first of such operative positions may correspond to a determined value of the relation between solid fraction and liquid fraction in which the thickness of the shell (22) is between 20% and 60% with respect to the thickness of the metallic material bar (16), preferably between 30% and 50%, even more preferably about 40%.
(40) For example at least one second of said operative positions corresponds to a value of the ratio between solid fraction and liquid fraction in which the thickness of the shell (22) is between 65% and 85% with respect to the thickness of the metallic material bar (16), preferably between 70% and 80% even more preferably about 75%.
EXAMPLE 1
(41) The temperature (
(42) On the solidifying profile (
EXAMPLE 2
(43) On the basis of the data reported for the example 1, on the solidifying profile (
EXAMPLE 3
(44) On the basis of the example 2, the influence on the optimal positioning of the second electromagnetic stirring device (1) has been valued according to the type of steel and casting rate, estimating the corresponding solidifying sections and obtaining the results reported in the following in Table 1.
(45) TABLE-US-00001 TABLE 1 SQUARE SECTION 160 Casting speed Optimal position d2 Steel type [m/min] Distance from meniscus [m] 35KB 1.8 10.3 2.0 11.6 C40 1.8 10.0 2.0 11.4 16MnCr5 1.8 10.6 2.0 12.1
EXAMPLE 4
(46) On the basis of the example 2, the influence on the optimal positioning of the second electromagnetic stirring device (1) has been valued according to the type of steel and casting speed for a different size in section of the metallic bar that in this case has square section with a side of 180 mm instead than of 160 mm. By way of example it should be pointed out that in this case also other operative parameters change e.g. the cooling ranges to keep into account the greater size of the metallic material bar. Cooling of first zone of the secondary cooling part with range of 82 l/min on 0.6 meters Cooling of second zone of the secondary cooling part with range of 139 l/min on 2.0 meters Cooling of third zone of the secondary cooling part with range of 73 l/min on 5.0 meters estimating the corresponding solidifying profiles and obtaining the results reported in the following in
(47) TABLE-US-00002 TABLE 2 SQUARE SECTION 180 Casting speed Optimal position d2 Steel type [m/min] Distance from meniscus [m] 35KB 1.8 10.3 2.0 11.6 C40 1.8 10.0 2.0 11.4 16MnCr5 1.8 10.6 2.0 12.1
(48) As it can be seen from the tables the optimal position of the electromagnetic stirring device (1) may change also considerably according to the steel type, to the casting speed, to the section of the metallic material bar. Therefore it is understood that the advantage of the electromagnetic stirring device (1) according to the present invention both in the case in which the movement is used during the first phase of the casting machine fitting-out, which is carried out in function of the type of steel that must be cast, and in the case in which the movement is used during the casting for adapting the position of the device itself with respect to the real casting parameters that can suffer also important variations with respect to the initially provided parameters. It follows that the consequences of the present invention in terms of speed of the fitting-out time of the machine and of quality of the produced steel are important.
(49) Advantageously the operative positions are determined in a continuous way along the development of the metallic material bar (16) within the cooling chamber (30) according to the previously enunciated parameters and data describing the casting process and according to the presence of interference zones with accessories (17, 36) of the casting machine (18) precluding the positioning of the electromagnetic stirring devices (1) in correspondence with such interference zones. In fact though the solution according to the present invention allows to obtain a positioning in a continuous way along the bar in the process of solidifying it is necessary to observe that not all the positions are actually practicable because of the presence, for example, of sprayers (36) or rollers (17) that could interfere with the device (1). In addition to the safeguard of the coils (12) in the emergency conditions, therefore, the solution according to the present invention with portions (2, 3) which may be reciprocally spaced or drawn closer on the bar (16), also allows to obtain the maximum stirring effect in the condition with the portions (2, 3) drawn closer that corresponds to the highest filling factor of the duct (27) and at the same time allows the movement of the device between positions placed on opposite sides with respect to such accessories (17, 36) that preclude the positioning of the electromagnetic stirring devices (1) and that could be damaged by the passage of the same devices if they were not equipped with the opening system described.
(50) Furthermore in the casting process the stirring phase of the material at the melted state constituting the nucleus of the bar can happen by means of at least two of these electromagnetic stirring devices (1), this casting process comprising stirring phases of the material at the melted state constituting the nucleus in which: a first phase provides the disjoined action of these electromagnetic stirring devices (1) in reciprocally spaced operative positions (
(51) The movement system (
(52) The connection of the electrical users of the electromagnetic stirring device (1) preferably occurs by means of a connection box (42) placed in protected position and preferably near the intermediate position with respect to the complete excursion of the movement of the electromagnetic stirring device (1) along the guide (7). The connection can happen by means of one or more electric cables (43) of flexible type in order to ensure the liberty of movement of the electromagnetic stirring device of (1) along the guide (7), possibly by means of the passage in a fairlead chain (not represented). In an absolutely similar way the connection of the hydraulic users can happen by means of one or more flexible pipes for fluids (44) for feeding a cooling fluid of the induction coils (12) to discharge the heat coming from the bar (16).
(53) The description of the present invention has been done with reference to figures enclosed in a form of preferred embodiment of the same, but it is evident that many possible alterations, changes and variants will be immediately clear to those skilled in the art of the sector in view of the previous description. So, it should be stressed that the invention is not limited by the previous description, but contains all alterations, changes and variants in accordance with the appended claims.
USED NOMENCLATURE
(54) With reference to the identification numbers reported in the enclosed figures, it has been used the following nomenclature:
(55) 1. Stirrer device or electromagnetic stirring device
(56) 2. First portion
(57) 3. Second portion
(58) 4. First arm
(59) 5. Second arm
(60) 6. Driving means or piston
(61) 7. Guide
(62) 8. Coupling means
(63) 9. Hinging
(64) 10. Interconnection means
(65) 11. Casing
(66) 12. Winding or induction coil
(67) 13. Support
(68) 14. Mould
(69) 15. Meniscus
(70) 16. Metallic bar or metallic material bar
(71) 17. Roller
(72) 18. Casting machine
(73) 19. Tundish
(74) 20. Extraction and straightening group
(75) 21. Control unit
(76) 22. Solid fraction or shell or skin
(77) 23. Liquid fraction or nucleus
(78) 24. First end
(79) 25. Last end
(80) 26. Protection housing
(81) 27. Duct
(82) 28. Body
(83) 29. Opening
(84) 30. Cooling chamber
(85) 31. Center
(86) 32. Pack of windings
(87) 33. Radial direction
(88) 34. Frame
(89) 35. Temperature sensor
(90) 36. Sprayers
(91) 37. Opening means in emergency
(92) 38. Motor
(93) 39. Counterweight
(94) 40. Traction means
(95) 41. Pulley
(96) 42. Connection box
(97) 43. Electric cable
(98) 44. Flexible pipe for fluids
(99) d. distance from the meniscus