Method and device for treating a metal or a molten metal alloy using an addition agent
10023923 ยท 2018-07-17
Inventors
Cpc classification
C22B9/10
CHEMISTRY; METALLURGY
C22B9/103
CHEMISTRY; METALLURGY
B22D1/00
PERFORMING OPERATIONS; TRANSPORTING
C21C7/0075
CHEMISTRY; METALLURGY
F27B2014/0862
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/0033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B2014/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B14/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22C9/10
PERFORMING OPERATIONS; TRANSPORTING
B22D1/00
PERFORMING OPERATIONS; TRANSPORTING
C22B9/10
CHEMISTRY; METALLURGY
F27B14/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method and device for treating a metal or a molten metal alloy using an addition agent, wherein the addition agent is deposited in a local cavity arranged at the bottom of a treatment ladle and surrounded by a protruding wall, and a closing member connected to movement means is able to form, with the bottom of the treatment ladle, in a low insulating position, a chamber including said local cavity and comprising an intermediate annular space around the small wall. Application to the treatment of a molten cast iron using pure magnesium or magnesium alloy.
Claims
1. A process for treating a molten metal or metal alloy using an additive agent, comprising: depositing the additive agent in at least one local cavity made in a bottom of a treatment ladle and delimited by a low annular wall that protrudes with respect to the bottom; lowering down to a bottom position at least one closure member comprising a closure bell so that the closure bell surrounds, at a distance, the low annular wall and so that a frontal edge of the closure bell bears against the bottom of the treatment ladle, creating an annular bearing zone around and at a distance from the low annular wall and that is located below an upper edge of the low annular wall, forming a chamber that includes the at least one local cavity; at least partially filling the treatment ladle with the molten metal or metal alloy; and raising the at least one closure member so as to bring the molten metal or metal alloy and the additive agent into contact.
2. An application of the process as claimed in claim 1, for the treatment of a molten cast iron using pure magnesium or a magnesium alloy.
3. An application of the process as claimed in claim 1, for the treatment of a molten steel using calcium metal, a ferrosilicon alloy, or a silicon-calcium alloy.
4. An application of the process as claimed in claim 1, for the treatment of aluminum or an aluminum alloy using titanium, boron, sodium or an alloy thereof.
5. A device for treating a molten metal or metal alloy using an additive agent, comprising a treatment ladle, wherein at least one local cavity is made in a bottom of the treatment ladle and that comprises added equipment comprising at least one closure member and a displacement assembly for moving the at least one closure member to and from a bottom position for isolating or closing the at least one local cavity; wherein the bottom of the treatment ladle has a protruding low annular wall that delimits the at least one local cavity; and wherein a lower portion of the at least one closure member comprises a closure bell which, in said bottom position, is capable of surrounding, at a distance, the low annular wall and a frontal edge of which, in said bottom position, is capable of bearing against the bottom of the treatment ladle, creating an annular bearing zone around and at a distance from the low annular wall and that is located below an upper edge of the low annular wall, so as to form a chamber that includes the at least one local cavity.
6. The device as claimed in claim 5, wherein the at least one, closure member comprises a suspension arm connected to said displacement assembly and a lower portion having a lower annular edge that bears, in said bottom position, against a zone of the bottom of the treatment ladle, extending around the at least one local cavity.
7. The device as claimed in claim 5, wherein the at least one closure member extends through a passage of a cover portion for at least partial closure of the treatment ladle.
8. The device as claimed in claim 5, wherein the added equipment comprises a guide for guiding the at least one closure member.
9. The device as claimed in claim 5, wherein the at least one closure member is rigidly connected to the displacement assembly.
10. The device as claimed in claim 5, wherein the displacement assembly is configured to exert a force for applying the at least one closure member, over the annular bearing zone of the at least one closure member, against the bottom of the treatment ladle.
11. The device as claimed in claim 5, wherein the annular bearing zone of the at least one closure member against the bottom of the treatment ladle is provided with a sealing layer.
Description
(1) Treatment devices will now be described by way of nonlimiting examples, illustrated by the drawing in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) As illustrated in
(10) The peripheral wall 3 and the radial bottom 4 respectively comprise a metallic outer shell 5a and 5b and an internal coating 6a and 6b made of a refractory material.
(11) The treatment ladle 2 is provided with a cover portion 7 that makes a reduced upper opening 8 that extends for example over half of the cross section of the peripheral wall 3. The cover portion 7 comprises a metal core 52, which is attached to the upper end of the shell 5a, and a coating 9 made of a refractory material at least on the inside of the treatment ladle 2, which is joined to the coating 6a.
(12) At the bottom of the treatment ladle 2, at a distance from the peripheral wall 3 and opposite the cover portion 7, a local cavity 10 is made which is delimited by a low annular wall 11 that protrudes above the bottom 4 and is formed by an upward extension of the internal coating 6b.
(13) The treatment ladle 2 is provided with added equipment 12 that comprises a closure member 13 and displacement means 14 for moving this closure member 13.
(14) The closure member 13 comprises a suspension arm 15 that extends into the treatment ladle 2 along an axis parallel to the axis of the treatment ladle 2 and aligned with the axis of the local cavity 10 and which freely passes through a passage 16 made through the cover portion 7.
(15) On the inside of the treatment ladle 2, the closure member 13 comprises, at the lower end of the suspension arm 15, a lower closure portion 17 in the form of a hermetic bell that is intended to close off the cavity 10.
(16) The suspension arm 15 comprises a metal axial shaft 18 surrounded by a coating 19 made of a refractory material that is extended so as to form the hermetic closure bell 17.
(17) The added equipment 12 comprises a support 20 which is attached to the metal core 52 of the cover portion 7, on the opposite side from the opening 8.
(18) The upper portion of the shaft 18, which is free of refractory coating, extends through a guide passage 21 of a radial portion 22 of the support 19 located at a distance above the cover portion 7, so that the closure member 13 can be moved parallel to the axis of the treatment ladle 2 by being guided by the guide passage 20.
(19) When the closure member 13 is in a bottom position for isolating the cavity 10 (
(20) Thus, the low wall 11 extends by protruding upward with respect to the annular bearing zone 23, which is thus located below the annular upper edge of the low wall 11 and the chamber 25 comprises an intermediate annular space 25a that surrounds the low wall 11 and that is located below the annular upper edge of the low wall 11.
(21) In said isolating bottom position, the upper portion of the coating 19 of the suspension arm 15 extends into the passage 16 of the cover portion 7 and is at a distance from the radial portion 22 of the support 19.
(22) The displacement means 14 comprise a cable 26, one end of which is attached to the upper end 18a of the shaft 18 of the closure member 13 and which comes from a reel 27 that may be rotated by a gear motor 28, the housing of which is attached against the outer face of the shell 5a of the peripheral wall 3 of the treatment ladle 2, on the side of the cover portion 7, by means of a bracket 29.
(23) The strand of the cable 26, between the attachment upper end 18a and the reel 27, is diverted by free rotating pulleys 30 and 31 borne by parallel axles 32 and 33, the ends of which are mounted on the ends of pairs of vertical arms 34 and 35 of the support 20, extending upward and connected by crosspieces 36.
(24) The pulleys 30 and 31 are positioned so that said strand of the cable 26 has a vertical portion 26a between the attachment upper end 18a and the pulley 30, a horizontal portion 26b between the pulleys 30 and 31 and a vertical portion 26c between the reel 27 and the pulley 31.
(25) In said isolating bottom position, the cable 26 is slack. The closure member 13 rests on the bottom 4 of the treatment ladle 2 and the chamber 25 is formed.
(26) By activating the gear motor 28 in one direction, the cable 25 is wound in the reel 27 and pulls the closure member 13 upward moving the closure bell 17, from said isolating bottom position, away from the bottom 4 of the treatment ladle 2 which creates a passage between the frontal edge 22 of the closure bell 17 and the bottom 4 of the treatment ladle 2 and consequently gives rise to the opening of the chamber 25.
(27) By activating the gear motor 28 in the other direction, the cable 26 is unwound from the reel 27 and the closure member 13 drops to the bottom 4 of the treatment ladle 2.
(28) The treatment device 1A may be used in the following manner.
(29) As illustrated in
(30) It is then possible to use the tubular lance 36 to introduce into the local cavity 10 a desired amount of an additive agent 37, for example magnesium or a magnesium alloy, in the form of a powder, grains or flakes.
(31) Then the tubular lance 36 is withdrawn.
(32) Next, as illustrated in
(33) According to one embodiment variant, a means could be provided for firmly holding the closure member 13 in said isolating bottom position. For example, this holding means could comprise a removable conical wedge put in place manually, passing through the shaft 18 and lugs provided on top of the radial part 22 of the support 20 and on either side of the shaft 18, so as to act downward on the shaft 18. According to another example, this holding means could comprise a controllable actuating member, for example a system having one or more actuators that act downward on a shoulder of the shaft 18 in the isolating bottom position by means of one or more rocker arms, the latter possibly being retracted in order to allow this shoulder to pass when the shaft is moved upward.
(34) The closure member 13 being in said isolating bottom position, a desired amount of a molten metal 38 is poured into the treatment ladle 2 through the upper opening 8.
(35) The pressure of the metal on the closure bell 17 helps to keep the latter bearing against the bottom 24 of the treatment ladle.
(36) If possible leaks of metal penetrate into the chamber 25 by passing through the annular bearing zone 23, these leaks remain contained in the intermediate annular space 25a of the chamber 25 and are prevented from reaching the additive agent contained in the cavity 10 owing to the existence of the low wall 11. The low wall 11 thus constitutes an obstacle to any premature reaction.
(37) The upper opening 8 could then be closed by a cover (not represented) added onto or mounted on the cover portion 7 for example in a hinged manner, in order to close the ladle 3 and for example to reduce the heat losses, to limit the projections of metal, to reduce the possible oxidations and to improve the efficiency of the reaction.
(38) Next, and at a desired moment, as illustrated in
(39) It is then possible, at a desired moment, to tilt the treatment ladle 2 so as to pour the treated molten metal 38 through its upper opening 8, on the side opposite the cover portion 7, into the cavity of a mold or of several molds with a view to the manufacture of molded metal parts.
(40) During the above operations, the treatment ladle 2 may be carried by a transfer car by means of support and tilting means or may be carried by lifting means such as an overhead cable crane, provided with tilting means, for example cable tilting means.
(41) It results from the foregoing that the time difference, between the moment when the closure member 13 is lifted in order to give rise to the reaction between the additive agent 37 and the molten metal 38 and the moment when the molten metal 38 is poured, may be chosen by the operator and perfectly controlled, this time difference being independent of the prior operations of depositing the additive agent in the local cavity 10 and of filling the treatment ladle 2 with the molten metal 38.
(42) In the case, for example, of a treatment of a molten cast iron by an addition of magnesium or a magnesium alloy, it is desirable that this difference be as short as possible.
(43) Owing to the position of the local cavity 10 at the bottom of the treatment ladle 2, the reaction is initiated in the depth of the molten metal 38, which is favorable to a diffusion of the reaction throughout the volume of the molten metal 38.
(44) Moreover, the metering of the amount of additive agent with respect to the volume of the molten metal to be treated is facilitated and may be precise.
(45) By referring to
(46) The displacement means 39 comprise a slide 40 that comprises a side arm 41 positioned laterally to the treatment ladle 2 and parallel to the axis of the latter and that comprises a radial arm 42 that extends above and at a distance from the cover portion 7.
(47) The side arm 41 passes through guide passages 43 and 44 made through spaced out radial brackets 45 and 46 that are attached against the shell 5a of the treatment ladle 2.
(48) The side arm 41 is provided with a rack 47 parallel to the axis of the treatment ladle 2, in contact with a pinion 48 borne by the axle of a gear motor 49 attached to the shell 5a of the treatment ladle 2 by means of a bracket 50.
(49) The upper end 18a of the shaft 18 of the closure member 13 comprises a plate which is attached underneath the free end portion of the radial arm 42, for example by screws 51, so that the closure member 13 is firmly attached to the slide 40.
(50) When the gear motor 49 is activated, in one direction or the other, the pinion 48 acts on the rack 47 in order to move the slide 40 in translation in one direction or the other, parallel to the axis of the treatment ladle 2, and the slide 40 moves the closure member 13 in one direction or the other.
(51) The displacement means 39 may then be used in an equivalent manner to that which was described above with respect to the displacement means 14 for closing and opening the chamber 25.
(52) Moreover, owing to the rigid connection between the closure member 13 and the rack 47 in contact with the pinion 46, the gear motor 49 may generate a desired force for applying the closure bell 17 against the inner face 24 of the bottom 4 of the treatment ladle 2 over the bearing zone 23, in particular for ensuring the leaktightness of the chamber 25. This application force may be maintained for example owing to a non-reversibility of the gear motor 49.
(53) According to one embodiment variant illustrated in
(54) According to one embodiment variant, gear motors 28 and 49 could be replaced by actuators which, in the case of the displacement means 14, would be connected to the cable 25 and, in the case of the displacement means 39, would be connected to the slide 40.
(55) According to another embodiment variant, the bearing zone 23 could be covered with a sealing layer made of a refractory material.
(56) According to one embodiment variant, the inner coating 6b could have an annular channel between the low wall 11 and the annular bearing zone 23, so as to enlarge the intermediate annular space 25a.
(57) The treatment devices and their methods of use which have just been described may be applied without limitation, in particular to the treatment of a cast iron using pure magnesium or a magnesium alloy or to the treatment of a steel using calcium metal, a ferrosilicon or a silicon-calcium alloy or to the treatment of aluminum using an alloy of titanium and of boron or of sodium, generally for an effect on their metallurgical structure.
(58) The present invention is not limited to the examples described above. A good many embodiment variants are possible without departing from the scope of the invention.