USRE24463E - Frequency - Google Patents
Frequency Download PDFInfo
- Publication number
- USRE24463E USRE24463E US24463DE USRE24463E US RE24463 E USRE24463 E US RE24463E US 24463D E US24463D E US 24463DE US RE24463 E USRE24463 E US RE24463E
- Authority
- US
- United States
- Prior art keywords
- coils
- coil
- furnace
- flux
- stirrer
- 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.)
- Expired
Links
- 239000002184 metal Substances 0.000 description 77
- 229910052751 metal Inorganic materials 0.000 description 77
- 230000004907 flux Effects 0.000 description 36
- 230000006698 induction Effects 0.000 description 24
- 238000004804 winding Methods 0.000 description 17
- 239000004020 conductor Substances 0.000 description 16
- 150000002739 metals Chemical class 0.000 description 15
- 229910000831 Steel Inorganic materials 0.000 description 14
- 239000010959 steel Substances 0.000 description 14
- 230000004323 axial length Effects 0.000 description 9
- 238000003756 stirring Methods 0.000 description 9
- 239000013598 vector Substances 0.000 description 7
- 230000009471 action Effects 0.000 description 6
- 238000006073 displacement reaction Methods 0.000 description 6
- 239000000463 material Substances 0.000 description 6
- 238000003475 lamination Methods 0.000 description 5
- 238000010276 construction Methods 0.000 description 4
- 235000012771 pancakes Nutrition 0.000 description 3
- 230000002250 progressing effect Effects 0.000 description 3
- 238000007670 refining Methods 0.000 description 3
- 230000004075 alteration Effects 0.000 description 2
- 230000003247 decreasing effect Effects 0.000 description 2
- 238000010891 electric arc Methods 0.000 description 2
- 230000006872 improvement Effects 0.000 description 2
- 238000000034 method Methods 0.000 description 2
- 230000010363 phase shift Effects 0.000 description 2
- 239000011819 refractory material Substances 0.000 description 2
- 229910001220 stainless steel Inorganic materials 0.000 description 2
- 239000010935 stainless steel Substances 0.000 description 2
- 230000008859 change Effects 0.000 description 1
- 230000008878 coupling Effects 0.000 description 1
- 238000010168 coupling process Methods 0.000 description 1
- 238000005859 coupling reaction Methods 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 238000004870 electrical engineering Methods 0.000 description 1
- 238000009434 installation Methods 0.000 description 1
- 238000009413 insulation Methods 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 229920006395 saturated elastomer Polymers 0.000 description 1
Images
Classifications
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B6/00—Heating by electric, magnetic or electromagnetic fields
- H05B6/02—Induction heating
- H05B6/34—Arrangements for circulation of melts
Definitions
- This invention pertains to the art of refining metal while in the molten state and, more particularly, to an induction stirrer for such metals.
- the invention particularly applies to the stirring of steel when being refined in an are furnace and will be described with particular reference thereto, although it will be appreciated that the invention has broader applications.
- a ladle having an outer steel shell and 'an inner liner of refractory material of a substantial thickness intended both to prevent the molten metal from ⁇ coming in contact with the steel shell and to provide heat insulation therefor.
- Carbons electrcally energized are positioned in the top of the ladle and an arc is struck between the carbons and the surface of the steel. The heat from the are tends to refine the steel.
- it is desirabl'e to str the molten steel during this refining operation. It is known to provide magnetie or induction stirrers for the steel positioned below the bottom of the furnace.
- Such stirrers create a magnetic field which threads through the bottom of the furnace into the molten steel.
- the magnetic field is'created by a plurality of electrcally energized coils energized from a multiphase electrical power source.
- the magnetic field tends to go across the bottom of the furnace in one direction only like a fan and causes the molten metal to move in a circular path just as though it were the rotor of a motor.
- the coils employed in the stirrer were what may be termed "pancake" windings; that is to say, one side of the windings passed under the furnace with the currents therein fiowig in one direction and returned in the same plane but spaced a substantial distance therefrom with the currents flowing thus in the opposite direction.
- the axis of the coil was generally perpendicular to the bottom of the furnace. Stated alternatively, the axis of the coil extended into the molten bath of metal.
- the amount of stirring which can be obtained from a given'magnetic field varies directly by the square of the strength of the magnetic field imposed on or teaching the molten metal.
- Theoretical calculations have shown that the strength of this magnetic field teaching the molten metal decreasesvery rapidly as the spacing between the plane of the coils and the lower surface of the molten metal is increased. However, such spacing must be substantial because of the need for the refractory material at the bottom of the furnace.
- the elfective length of the coil This distance may generally be defined as the distance between where' the flux leaves the coil in one direction to return in the opposite direction; that is to say, the distance between a north and south pole. Stated alternatively, it is the distance on the coil between which the direction of the currents is in degree phase opposition.
- the factor d cannot generally be decreased without reconstructing the furnace itself or placing the magnetic stirrer on the interior of the furnace which has been found to be extremely undesirable.
- the factor d has been found to be equal to about one-sixth the diameter of the furnace.
- the factor L must, due to limitations of the coil design which the present invention proposes to overcome, be notmore than onehalf the 'diameter of the furnace. If we assume L to be equal to one-half the diameter of the furnace, then the factor d/L will be equal to one-third. Applying this fraction in the above formula indicates that the stirring force will be approximately eleven percent of that obtainable if the lower surface of the molten metal were immediately adj'acent to the planes of the coils.
- the dimension L cannot generally be made equal to one-half the diameter of the furnace without increasing the average value of the factor d. This is so because L with the prior-art designs -cannot be greater than one-half the total length of the coil. Any greater length of windings would place the outermost turns spaced beyond the limits of the furnace and, thus, the magnetic field created by these outermost windings would have little etfect on the molten eharge.
- the present invention provides an nductionor magnetic stirrer for molten metal in furnaces of the type to be positioned below the bottom of the furnace which is simple in' Construction, relatively small in size and permits a very substantal improvement in Operating elficency.
- a magnetic stirrer s provided comprised of a plurality of multiphase coils positioned (in aligned relationship) below the bottom of the ladle or furnace with the axis of at least one of these coils parallel to the bottom of the furnace; that is to say, the axis of such coil or coils does not pass into the interier of the furnace.
- coil or coils are flat sided With one side of the coil being close to the bottom of the furnace and the opposite or return side of the coil being spaced from the furnace.
- a magnetic core extends along the axis of the coils for the purpose of decreasing the reluctance of the magnetic path.
- the factor L can be equal to approximately the total width of the stirrer windings as distinguished from only one-half the total width of the stirrer windings as heretofore known. As a minimum, the factor L can be increased by at least twenty-five percent. Calculatons based on such aa n- Reissued Apr. 22, 19 58 crease in length indicates that the stirring action obtainable is seventeen percent of that available when the coils are placed directly adjacent to the lower surface of the molten metal. This is an improvement of fifty-five per cent.
- the present invention 'enables ;the total conductor length to be much shorter, giving :a lower -I r loss in the coils and permits a greater concentration of the magnetic flux directly below the molten metal, thus further increasing the stirring action for the same amounts of electrical power employed.
- the same amount of stirring action can be obtained using ⁇ substantially lesser amounts of electrical energizing apparatus.
- the principal object-of ;the invention is the provision of a new and improved induction stirrer for molten metal in the ladle which is simple in construction, gives a maximum stirring action and requires a minimum amount of electrical energy for such action.
- Still another object of the invention is the provision of a new and improved induction stirrer for molten metal in furnaces comprised of a plurality of multiphase 'coils positioned beneath the bottom of the furnace and energized from a multiphase power source, the axis of at least one of said coils being generally parallel to the bottom of the furnace.
- Still another object of the invention is the provision of a new and improved induction stirrer to be placed below the bottom of a ladle containing molten metal comprised of a magnetic steel core extending generally arallel to the bottom of the ladle and having wound therearound a plurality of windings each connected to a diiferent phase of a multiphase power source.
- Still another object of the invention is the provision of a new and improved induction stirrer to be placed below the bottom of a ladle containing molten metal, the 'arrangement of windings in said stirrer being such that, progressing from one end to the other end of the stirrer windings in the direction perpendicular to the conductors and parallel to the bottom of the ladle or furnace, the phase angle between the Currents in the outermost conductors of the stirrer wnding is 180 degrees, rather than 360 degrees as in the prior art.
- Figure 1 is a side cross-sectional view somewhat schematically of an electric arc furnace having positioned .therebelow an induction stirrer illustrating a prefered embodiment of the present invention.
- Figure 2 is a View similar to Figure l, showing ,an alternative embodiment of the invention.
- Figure 3 is a view similar to Fi gures l and 2, and drawn approximately on the same scale showing the relationship of the coils of the prior art to the molten metal.
- Figures 4, 5, and 6 are wiring diagrams, respectively, for the arrangements of Figures 1, 2, and 3.
- Figure 1 shows somewhat schematically a cross section of a relatively conventonal electric arc furnace comprising an outer shell 10 and having a base ,11, an inner refractory lining 12 mounted in the shell 10 and having a curved or concave upper surface 13 to form a base or bed ,for molten metal 14, such as steel or the like.
- the induction stirrer indicated generally :at A con-- structed in accordance with the present .invention is comprised generally of a stack of magnetic laminations ;20 with the plane of each lamination oriente'd so as .to be generally vertical and extending generally parallel to the bottom 11. Any length of lamination may be employed, but a length approaching the general diameter .of the ladle 10 is preferred.
- each coil is comprised generally of a plurality of turns of electrically conductive material with the axis thereof generally in alignment and parallel to the base 11.
- each coil is comprised of a plurality of generally fiat coil sides, an upper coil side 22 extendi-ng over the upper surface of the laminations 20' and 'lower coil sides 23 extending under the laminations '20.
- Each of these coil sides 22 and 23 are electrically inter-connected by vertically extending portions 24.
- terminals are -electr ⁇ ical1y inter-connected as shown in Figure 4 to a suitable source of multiphase electrical energy 26.
- the freguenc-yand number of phases of the alternating current *of the power source 26 may be as desired but, preferably, is on 'the order of one-half cycle per second, and two phase' respec tively.
- each conductor making up the windings will be elec trically nsulated both from the larninations 20 from each other and from the base of the furnace 11.
- the 'particular method of insulating the individual 'nductors forms no part of the present invention and will not :be described further herein.
- the coils a, b and c are shown as each being independent one from the other and without any interleaving 'of the wnding. Obviously, if desired, the ends of 'the *various Wndings may be partly interwoundso as to produce a more nearly sinusoidal translating magnetic field. The particular interleaving of the ends of the coils'forms no part of the present invention and will -not be described further herein.
- Figure 2 shows a second embodiment of the invention. Certain parts of the embodiment of the invention 'illus- -trated in Figure 2 are similar to parts of the embodiment of the invention illustrated in Figure 1, and certain parts of the embodiment of the invention illustrated in Figure 2 are similar to parts shown in Figure 3 (de'picting'the prior art arrangement). Similar parts are designated by similar 'characters th-uout, but without primes to Figure l (and Figure 4), without single primes in Figure 2 (and Figure 5), and double primes in Figure 3 (and Figure 6).
- the flux intensity reaching the metal 14 is proportional to the quantity e wherein d equals the distance from the molten metal 14 to the upper surface of the coil, and L is the effective distance between conductors in the stirrer windng carrying currents 180 degrees out of phase.
- d the distance from the molten metal 14 to the upper surface of the coil
- L the effective distance between conductors in the stirrer windng carrying currents 180 degrees out of phase.
- the total phase Shift in currents progressing from one conductor to another along the entire width of the stirrer windng is 360 degrees. Therefore, L is equal to one-half the width of the windng for prior art induction stirrers.
- each of these coils have the maximum magnetic coupling with the metal 14.
- Various means known in the art may be employed for this purpose.
- an induction stirrer for such metal comprsing a plurality of stationary electrical coils positioned adjacent the bottom of said furnace, said coils having a combined axal length at least greater than onehalf of a parallel cross dimension of said bottom one or more of said coils having an axis of the windng thereof generally parallel to said bottom and a multiphase power source for energizing said coils, said coils being so ar ranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [2.
- an induction stirrer for such metal comprising a plurality of stationary electrical coils in axal alignment positioned adjacent to said bottom, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom all of said coils having an axs generally parallel to said bottom and multiphase power connectionsfor energizing said coils, said coils being so arranged-that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [3.
- an induction stirrer for such metal comprsing a plurality of stationary electrical coils at least some of which are in axal alignment and having an axis of windng generally parallel to said bottom, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom a magnetic core extending through all of said axially aligned coils and multiphase power connections for energizing said coils, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [4.
- an induction stirrer for such metal comprsing a magnetic core member having an upper surface in generally close-spaced relationship to said bottom and a plurality of stationary electrical coils each comprised of a plurality of complete turns about said core, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom one side of each turn extending over the upper side of said core and the opposite side extending thereunder, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metaL] [5.
- an induction stirrer for such metal comprsing a magnetic core in generally close relationship to said bottom and extending generally parallel thereto a plurality of stationary electrical coils about said core, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom each coil consisting of an upper side extending generally between said core and said bottom and a lower side extending across the side ofsaid core remote from said bottom, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [6.
- an inducton stirrer for such metal comprsng a magnetc core in generally close relationship to said bottom and extending generally parallel thereto, a plurality of stationary electrical coils at least one of which is wound about said core and consisting i of an upper side extending generally between said core and said bottom and a lower side extending across the side of said core remote from said bottom, said coils having a combined axial length at least greater than one-half of a parallel cross dimension of said bottom said bottom being formed of magnetic stainless steel material and means for energizing said coils from a multphase power source of suficert energy to provide a magnctic flux to satu'ate said steel bottom with magnetic flux, said coils being so arranged that the flx of one coil overlaps the flux of an adjacent coil in the molten metal] [7.
- an induction stirrer for such metal comprising at least three stationary electrical coils in axial alignmcnt positioned adjacent said bottom, said coils having an aXis of windng generally parallel to said bottom, said coils having a combined axial length at least greater than one-half of a parallel cross dimension of said bottom the centermost of said coils having a greater number of turns than the other two coils, said coils being so arranged that the' fix of one coil overlaps the fiux of an adjacent coil in the molten metaL] 8.
- an induction stirrer for such metal comprising at 'most three stationary electrical coils in axial alignment pos'tioned adjacent to said bottom, said coils having a combined axial length greater than onehalf of a parallel cross dimension of said bottom all of said coils having an ax's generally parallel to said bottom and multiphase power connections for energizing said coils, ⁇ the coils of each phase being symmetrical with respect to a plane through the bottom perpendieular to the said axis, the ampere-turns of the outermost coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
- an induetion stirrer for such metal eomprising at most three stationary electrical coils at least some of which are in axial alignment and having an axis of winding generally parallel to said bottom, said coils having a combined axial length greater than one half of a parallel cross dimension of said bottom, a magnetic core exterding through all of said axially alignea' coils and multiphase power connections for energzing said coils, the coils of each phase being symmetrcal with respect to a plane through the bottom perpendicular to the .said axis, the ampere-turns of the outermost paris of the coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
- an induction stirrer for such metal comprising a magnetic core member having an upper surface in generally close-spaced relationship to said bottom and at most three stationary electrical coils each comprised of a plurality of complete turns about said core, said coils having a combined axial length greater than one-half of a parallel cross dimension of said bottom one side of each turn extending over the upper side of said core and the opposite side extending thereunder, the coils of each phase being symmetrical with respect to a plane through the bottom perpendicular to the said axis, the ampere-turns of the outermost coils having a phase displacement of with respect to each other said coils being so arranged that the fltx of one coil overlaps the flux of an adjacent coil in the molten metal.
- a multiphase induction stirrer for such metal comprising a magnetic core in generally close relationship to said bottom and extending generally parallel thereto, at most three stationary electrical coils about said core, said coils having a combined axial length greater than one-half of a parallel cross dimension of said bottom each coil consisting of an upper side extending generally between said core and said bottom and a lower side extending across the side of said core remote from said bottom, the coils of each phase being symmetr'cal with respect to a plane through the bottom perpendicular to the ,said axis, the ampere-turns of the outermost coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
- an indiction stirrer for such metal eomprising a magnetie core in generally close relationship ⁇ to said bottom and extending generally parallel thereto, at most three stationary electrical coils at least one of which is wound about said core and consisting of an upper side extending generally between said core and said bottom and a lower side extendng across the side of said core remote from said bottom, said coils having a combined axial length greater than one-half of a parallel cross dimension of said bottom, said bottom being formed of magnetic stainless steel material and means for energizing said coils from a multiphase power source of sufiicient energy to provide a magnetic flux to saturate said steel bottom with magnetic flux, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
- an induction stirrer for such metal comprising three stationary electrical coils in axial alignment positioned adjacent said bottom, said coils having an axis of winding generally parallel to said bottom, said coils having a combined axial length greater than onehalf of a parallel cross dimension of said bottom, the centremost of said coils having a greater number of turns than the other two coils, the ampere-turns of the outermost of said coils having a phase displacement of 180" with respect to each other, said coils being so arranged that the fiux of one coil overlaps the flx of an adjacent coil in the molten metal.
- an induction stirrer for such metal comprising a plurality 'of stationay electrieal coils, at least one of said coils having an axis of the winding thereof generally parallel to said bottom, and at least one other of said coils being of the pancake type and hav-. ing an axis of the -wnding thereof generally perpendicular to said bottom, said other coil embracing said first coil and having an entire Width of wina'ing greater than References Cited in the file of this patent 6 or the orgnal patent UNITED STATES PATENTS Appel Ian. 2, 1912 Howard Oct. 28, 1913 10 10 Rennerelt Apr. 5, Moore Nov. 28, Dreyfus June 27, Ladell Dec. 2, Gynt et al. Sept. 15, Jones Aug. 7, Dreyfus Aug. 14, Williamson Oct. 6,
Landscapes
- Physics & Mathematics (AREA)
- Electromagnetism (AREA)
- Waste-Gas Treatment And Other Accessory Devices For Furnaces (AREA)
Description
April 22, 1958 J. w. wLLAMsoN 24,463
MAGNETIC STIRRER FOR MOLTEN METAL FURNACES Original Filed Oct. 14, 1954 2 Sheet-Sheet 9/ M o 6 I IN VEN TOR. JAMES W. WILLIAMSON ATTORNEY April 22, 1958 J. w. wLLAMsoN 24,463
MAGNETIC STIRRER FOR MOLTEN METAL FURNACES Original Filed Oct. 14, 1954 2 Sheets-Sheet 2 a, Low 2 v Low FREQUENCY 5 225223 3 GENERATOR E c X FIG. 4 z
FIG. 5 /f d Low 8 u' FREQUENCY vg GENERATOR v A 6 E s INVENTOR. JAMES W. WILLIAMSON :L BY i W& a
ATTORNEY United States. Patent O MAGNETIC STIRRER FOR MOLTEN METAL FURNACES !nmes W. Williamson, Cleveland, Ohio, assignor to Allmanna Svenska Elekt'iska Aktiebolaget Original No. 2,767,236, dated October 16, 1956, Serial No. 462,!90, October 14, 1954. Applicationfor re- Issue April 25, 1957, Serial No. 656,472
s cai'ns. (Cl. 13-26 This invention pertains to the art of refining metal while in the molten state and, more particularly, to an induction stirrer for such metals.
The invention particularly applies to the stirring of steel when being refined in an are furnace and will be described with particular reference thereto, although it will be appreciated that the invention has broader applications.
In the art of refining steel in an are` furnace, a ladle is provided having an outer steel shell and 'an inner liner of refractory material of a substantial thickness intended both to prevent the molten metal from` coming in contact with the steel shell and to provide heat insulation therefor. Carbons electrcally energized are positioned in the top of the ladle and an arc is struck between the carbons and the surface of the steel. The heat from the are tends to refine the steel. In order to obtain a more homogeneous product, it is desirabl'e to str the molten steel during this refining operation. It is known to provide magnetie or induction stirrers for the steel positioned below the bottom of the furnace. Such stirrers create a magnetic field which threads through the bottom of the furnace into the molten steel. The magnetic field is'created by a plurality of electrcally energized coils energized from a multiphase electrical power source. The magnetic field tends to go across the bottom of the furnace in one direction only like a fan and causes the molten metal to move in a circular path just as though it were the rotor of a motor.
Heretofore, the coils employed in the stirrer were what may be termed "pancake" windings; that is to say, one side of the windings passed under the furnace with the currents therein fiowig in one direction and returned in the same plane but spaced a substantial distance therefrom with the currents flowing thus in the opposite direction. With such a pancake windng, it will be seen that the axis of the coil was generally perpendicular to the bottom of the furnace. Stated alternatively, the axis of the coil extended into the molten bath of metal.
The amount of stirring which can be obtained from a given'magnetic field varies directly by the square of the strength of the magnetic field imposed on or teaching the molten metal. Theoretical calculations have shown that the strength of this magnetic field teaching the molten metal decreasesvery rapidly as the spacing between the plane of the coils and the lower surface of the molten metal is increased. However, such spacing must be substantial because of the need for the refractory material at the bottom of the furnace.
Accordingly, in order to obtain any substantial 'amounts of stirring action, it has been found heretofore necessary to use extremely high electrical power in the inpuction stirrer. such high power requires extremely large electrical conductors and an extremely large magnetic core to prevent flux saturation and a relatively heavy and expensive installation.
Another factor which has entered'into the strength of the -magnetic field teaching the bottom of the molten metal has been what may be termed the elfective length of the coil. This distance may generally be defined as the distance between where' the flux leaves the coil in one direction to return in the opposite direction; that is to say, the distance between a north and south pole. Stated alternatively, it is the distance on the coil between which the direction of the currents is in degree phase opposition.
If the last referred to distance be designated by the letter L and the spacing between the bottom of the molten metal and the pla'ne of the coil be designated by the letter d, theoretical calculations have shown that the force of the magnetc field reaching the bottom of the molten metal will be proportional to the equation e-" where' in equals 2.72 approximately.
In this formula, it will be seen that as L does up or as d goes down, the flux density teaching the bottom of the magnetic metal will go up.
The factor d cannot generally be decreased without reconstructing the furnace itself or placing the magnetic stirrer on the interior of the furnace which has been found to be extremely undesirable. The factor d has been found to be equal to about one-sixth the diameter of the furnace. In the prior art, the factor L must, due to limitations of the coil design which the present invention proposes to overcome, be notmore than onehalf the 'diameter of the furnace. If we assume L to be equal to one-half the diameter of the furnace, then the factor d/L will be equal to one-third. Applying this fraction in the above formula indicates that the stirring force will be approximately eleven percent of that obtainable if the lower surface of the molten metal were immediately adj'acent to the planes of the coils.
Using the prior-art designs, the dimension L cannot generally be made equal to one-half the diameter of the furnace without increasing the average value of the factor d. This is so because L with the prior-art designs -cannot be greater than one-half the total length of the coil. Any greater length of windings would place the outermost turns spaced beyond the limits of the furnace and, thus, the magnetic field created by these outermost windings would have little etfect on the molten eharge.
The present invention provides an nductionor magnetic stirrer for molten metal in furnaces of the type to be positioned below the bottom of the furnace which is simple in' Construction, relatively small in size and permits a very substantal improvement in Operating elficency.
In accordance with'the invention, a magnetic stirrer s provided comprised of a plurality of multiphase coils positioned (in aligned relationship) below the bottom of the ladle or furnace with the axis of at least one of these coils parallel to the bottom of the furnace; that is to say, the axis of such coil or coils does not pass into the interier of the furnace. Generally such coil or coils are flat sided With one side of the coil being close to the bottom of the furnace and the opposite or return side of the coil being spaced from the furnace. A magnetic core extends along the axis of the coils for the purpose of decreasing the reluctance of the magnetic path.
With such a construction, it will be seen that the factor L can be equal to approximately the total width of the stirrer windings as distinguished from only one-half the total width of the stirrer windings as heretofore known. As a minimum, the factor L can be increased by at least twenty-five percent. Calculatons based on such aa n- Reissued Apr. 22, 19 58 crease in length indicates that the stirring action obtainable is seventeen percent of that available when the coils are placed directly adjacent to the lower surface of the molten metal. This is an improvement of fifty-five per cent.
-Further, the present invention 'enables ;the total conductor length to be much shorter, giving :a lower -I r loss in the coils and permits a greater concentration of the magnetic flux directly below the molten metal, thus further increasing the stirring action for the same amounts of electrical power employed.
Stated alternatively, employing the invention, the same amount of stirring action can be obtained using `substantially lesser amounts of electrical energizing apparatus.
The principal object-of ;the invention is the provision of a new and improved induction stirrer for molten metal in the ladle which is simple in construction, gives a maximum stirring action and requires a minimum amount of electrical energy for such action.
Still another object of the invention is the provision of a new and improved induction stirrer for molten metal in furnaces comprised of a plurality of multiphase 'coils positioned beneath the bottom of the furnace and energized from a multiphase power source, the axis of at least one of said coils being generally parallel to the bottom of the furnace.
Still another object of the invention is the provision of a new and improved induction stirrer to be placed below the bottom of a ladle containing molten metal comprised of a magnetic steel core extending generally arallel to the bottom of the ladle and having wound therearound a plurality of windings each connected to a diiferent phase of a multiphase power source. r
Still another object of the invention :is the provision of a new and improved induction stirrer to be placed below the bottom of a ladle containing molten metal, the 'arrangement of windings in said stirrer being such that, progressing from one end to the other end of the stirrer windings in the direction perpendicular to the conductors and parallel to the bottom of the ladle or furnace, the phase angle between the Currents in the outermost conductors of the stirrer wnding is 180 degrees, rather than 360 degrees as in the prior art.
The invention may be embodied in certain parts and arrangements of parts, a preferred embodiment of which will be described in this specification in such detail as to enable one skilled in the art to use the invention and illustrated in the accompanying drawings which are a'part hereof, and wherein:
Figure 1 is a side cross-sectional view somewhat schematically of an electric arc furnace having positioned .therebelow an induction stirrer illustrating a prefered embodiment of the present invention.
Figure 2 is a View similar to Figure l, showing ,an alternative embodiment of the invention. t
Figure 3 is a view similar to Fi gures l and 2, and drawn approximately on the same scale showing the relationship of the coils of the prior art to the molten metal.
Figures 4, 5, and 6 are wiring diagrams, respectively, for the arrangements of Figures 1, 2, and 3.
Referring now to the drawings wherein the showngs are for the purposes of illustratng preferred embodiments 'of the invention and not for the purposes of limiting the invention, Figure 1 shows somewhat schematically a cross section of a relatively conventonal electric arc furnace comprising an outer shell 10 and having a base ,11, an inner refractory lining 12 mounted in the shell 10 and having a curved or concave upper surface 13 to form a base or bed ,for molten metal 14, such as steel or the like. A plurality of carbons 16, as are conventional, connected to a suitable source of electrical energy (not shown), have an arc maintained between the lower end thereof and the upper surface of the metal ,14 to provide heat to the metal 14 and maintain the metal in a molten state.
The induction stirrer indicated generally :at A con-- structed in accordance with the present .invention is comprised generally of a stack of magnetic laminations ;20 with the plane of each lamination oriente'd so as .to be generally vertical and extending generally parallel to the bottom 11. Any length of lamination may be employed, but a length approaching the general diameter .of the ladle 10 is preferred. A plurality of coils of .one .or a
plurality of layers indicated generally at a, .b land c .are.
wound around the stack of magnetic laminationszo As shown, each coil is comprised generally of a plurality of turns of electrically conductive material with the axis thereof generally in alignment and parallel to the base 11. Thus, each coil is comprised of a plurality of generally fiat coil sides, an upper coil side 22 extendi-ng over the upper surface of the laminations 20' and 'lower coil sides 23 extending under the laminations '20.' Each of these coil sides 22 and 23 are electrically inter-connected by vertically extending portions 24. There 'are three coils shown and the coil a has terminals 1 and '2 while the coil b has terminals 3 and 4 and the coil c has term'nals 5 and 6. These terminals are -electr`ical1y inter-connected as shown in Figure 4 to a suitable source of multiphase electrical energy 26. The freguenc-yand number of phases of the alternating current *of the power source 26 may be as desired but, preferably, is on 'the order of one-half cycle per second, and two phase' respec tively. v
While not specically shown in the drawings, obviou'sly each conductor making up the windings will be elec trically nsulated both from the larninations 20 from each other and from the base of the furnace 11. The 'particular method of insulating the individual 'nductors forms no part of the present invention and will not :be described further herein. I
The coils a, b and c are shown as each being independent one from the other and without any interleaving 'of the wnding. Obviously, if desired, the ends of 'the *various Wndings may be partly interwoundso as to produce a more nearly sinusoidal translating magnetic field. The particular interleaving of the ends of the coils'forms no part of the present invention and will -not be described further herein.
Figure 2 shows a second embodiment of the invention. Certain parts of the embodiment of the invention 'illus- -trated in Figure 2 are similar to parts of the embodiment of the invention illustrated in Figure 1, and certain parts of the embodiment of the invention illustrated in Figure 2 are similar to parts shown in Figure 3 (de'picting'the prior art arrangement). Similar parts are designated by similar 'characters th-uout, but without primes to Figure l (and Figure 4), without single primes in Figure 2 (and Figure 5), and double primes in Figure 3 (and Figure 6). It =will 'be seen that in the embodiment of the invention illustrated in Figure 2 one of the windings, designated by the character b', has its axis parallel with the bottom of the furnace, while a second wnding, designated by the character e, has its axis perpendicular to thebottom of the furnace. By way of comparison, the wnding b-' of Figure '2 is similar to the wnding b of Figure l, While the wnding e' of Figure 2 is similar to the wnding e" of Figure 3. The prior art Construction of induction stirrer 'illustrated by Figure 3 is well known and will -not be described here, other than to point out that the three stirrer windings, e", t", and g" are flat or paicake' type coils with their axis perpendicular to the bottom of the furnace.
In Figures 1, 2, and 3, the phase relations between Currents in the various conductors thru which currents flow setting up a field acting on the molten charge are indicated by Vectors. These Vectors are shown as small arrows, each of which is drawn above its respective conductor. For definiteness, it will be assumed that a vector pointing to the right above a specific conductor indicates the instantaneous current through that conductor is maximum in the inward or into-the-paper direction at the instant under consideration. Then, according to conventions well established in electrical engineering, a vector pointing to the left indicates negative maximum current in the inward direction of maximum current in the outward direction. A vector pointing directly upward or directly downward indicates zero instantaneous current through' the conductor over which the vector is drawn. It will be assumed, that on the basis of the conventions described above, the electrical connections to the power source are such as to make the Vectors representing the currents in the various conductors revolve in the counterclockwise direction. Then Figures 1, 2 and 3 show a phase relationship between the Currents in the various conductors such as would produce a magnetic field translating to the left and produce a generally clockwise motion of the molten charge. It will be obvious that the furnace opening could be on either the left or right, so that the direction of motion of the molten charge near the bottom of the furnace could be either toward or away from the opening of the furnace. In fact, by a simple and obvious change in electrical connections or in the direction of rotation of the electrical generator to which the stirrer Windings are connected, the direction of motion of the charge may be reversed. The methods by means of which the direction of motion of the molten charge may be reversed are well known and do not form a part of this invention.
As hereinbefore indicated, the flux intensity reaching the metal 14 is proportional to the quantity e wherein d equals the distance from the molten metal 14 to the upper surface of the coil, and L is the effective distance between conductors in the stirrer windng carrying currents 180 degrees out of phase. For prior art induction stirrers, such as illustrated by Figure 3, the total phase Shift in currents progressing from one conductor to another along the entire width of the stirrer windng is 360 degrees. Therefore, L is equal to one-half the width of the windng for prior art induction stirrers. It can be seen from either Figure 1 or Figure 2 that in aecordance with the present invention there is only a 180 degree phase Shift in Currents progressing from one conductor to another along the entire width of the stirrer windng. Therefore, L is made equal to the entire width of the stirrer windng. Thus, it will be seen that the present invention permits a very substantial increase in the amount of magnetic flux which will reach the molten metal 14.
It will be noted that the individual turns of the coils a, b and c in Figure 1 or b' and e' in Figure 2 are spaced one from the other. It is desired that each of these coils have the maximum magnetic coupling with the metal 14. Various means known in the art may be employed for this purpose.
With previous magnetic or induction stirrers for electrical arc furnaces, the problems of getting a suflicient magnetic field to the molten metal to provide the proper amount of stirring with reasonable power input to the coil has been such that it has always been necessary to form the bottom 11 of the ladle from a nonmagnetc steel. Because of the great increase of useable magnetic flux at the molten metal itself employing the present invention, it has been found possible to manufacture the bottom 11 from either magnetic or nonmagnetic materials.
6 v It will be appreciated that very substantial amonts of magnetic flux are created by the coils a, ba and c or b' and e' and such coils very quickly saturate the magnetic properties of the furnace bottom. Such material saturates at relatively low values of magnetic flux such that once the magnetic bottom is saturated, the flux passes therethrough in the same manner as though the material were nonmagnetc. It is desirable, however, that the material have a relatively high electrical resistance so as to reduce the losses due to electric currents induced therein to a minimum.
It will be appreciated that modifications and alterations will occur to others upon a reading and Understanding of this specification and it is my intention to include all such modications and alterations insofar as they come within the scope of the appended claims.
Having thus described my invention, I claim:
[1. In combination with a container for molten metals and having a bottom, an induction stirrer for such metal comprsing a plurality of stationary electrical coils positioned adjacent the bottom of said furnace, said coils having a combined axal length at least greater than onehalf of a parallel cross dimension of said bottom one or more of said coils having an axis of the windng thereof generally parallel to said bottom and a multiphase power source for energizing said coils, said coils being so ar ranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [2. In combination with a container for molten metals having a bottom, an induction stirrer for such metal comprising a plurality of stationary electrical coils in axal alignment positioned adjacent to said bottom, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom all of said coils having an axs generally parallel to said bottom and multiphase power connectionsfor energizing said coils, said coils being so arranged-that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [3. In combination with a container for molten metals and having a bottom, an induction stirrer for such metal comprsing a plurality of stationary electrical coils at least some of which are in axal alignment and having an axis of windng generally parallel to said bottom, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom a magnetic core extending through all of said axially aligned coils and multiphase power connections for energizing said coils, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [4. In combination with a container for molten metals having a bottom, an induction stirrer for such metal comprsing a magnetic core member having an upper surface in generally close-spaced relationship to said bottom and a plurality of stationary electrical coils each comprised of a plurality of complete turns about said core, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom one side of each turn extending over the upper side of said core and the opposite side extending thereunder, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metaL] [5. In combinationwith a container for molten metals having a bottom, an induction stirrer for such metal comprsing a magnetic core in generally close relationship to said bottom and extending generally parallel thereto a plurality of stationary electrical coils about said core, said coils having a combined axal length at least greater than one-half of a parallel cross dimension of said bottom each coil consisting of an upper side extending generally between said core and said bottom and a lower side extending across the side ofsaid core remote from said bottom, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal] [6. In combination with a container for molten metals having a bottom, an inducton stirrer for such metal comprsng a magnetc core in generally close relationship to said bottom and extending generally parallel thereto, a plurality of stationary electrical coils at least one of which is wound about said core and consisting i of an upper side extending generally between said core and said bottom and a lower side extending across the side of said core remote from said bottom, said coils having a combined axial length at least greater than one-half of a parallel cross dimension of said bottom said bottom being formed of magnetic stainless steel material and means for energizing said coils from a multphase power source of suficert energy to provide a magnctic flux to satu'ate said steel bottom with magnetic flux, said coils being so arranged that the flx of one coil overlaps the flux of an adjacent coil in the molten metal] [7. In combinaton with a contaner for molten metals and having a bottom, an induction stirrer for such metal comprising at least three stationary electrical coils in axial alignmcnt positioned adjacent said bottom, said coils having an aXis of windng generally parallel to said bottom, said coils having a combined axial length at least greater than one-half of a parallel cross dimension of said bottom the centermost of said coils having a greater number of turns than the other two coils, said coils being so arranged that the' fix of one coil overlaps the fiux of an adjacent coil in the molten metaL] 8. In combination with a container for molten metals and having a bottom, an induction stirrer for such metal comprsing at most three stationary electrical coils positioned adjacent the bottom of said furnaee said coils having a combined axial length greater than one half of a parallel cross dimension of said bottom, one or more of said coils having an axis of the winding thereof generally parallel to said bottom and a multiphase power source for energizing said coils, the coils of each phase being symmetrical with respect to a plane through the bottom perpendicular to said axis, the ampere-turns of the outermost coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
9. In combination with a container for molten metais having a bottom, an induction stirrer for such metal comprising at 'most three stationary electrical coils in axial alignment pos'tioned adjacent to said bottom, said coils having a combined axial length greater than onehalf of a parallel cross dimension of said bottom all of said coils having an ax's generally parallel to said bottom and multiphase power connections for energizing said coils, `the coils of each phase being symmetrical with respect to a plane through the bottom perpendieular to the said axis, the ampere-turns of the outermost coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
10. In combination with a container for molten metals and having a bottom, an induetion stirrer for such metal eomprising at most three stationary electrical coils at least some of which are in axial alignment and having an axis of winding generally parallel to said bottom, said coils having a combined axial length greater than one half of a parallel cross dimension of said bottom, a magnetic core exterding through all of said axially alignea' coils and multiphase power connections for energzing said coils, the coils of each phase being symmetrcal with respect to a plane through the bottom perpendicular to the .said axis, the ampere-turns of the outermost paris of the coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
11. In combination with a container for molten metals having a bottom, an induction stirrer for such metal comprising a magnetic core member having an upper surface in generally close-spaced relationship to said bottom and at most three stationary electrical coils each comprised of a plurality of complete turns about said core, said coils having a combined axial length greater than one-half of a parallel cross dimension of said bottom one side of each turn extending over the upper side of said core and the opposite side extending thereunder, the coils of each phase being symmetrical with respect to a plane through the bottom perpendicular to the said axis, the ampere-turns of the outermost coils having a phase displacement of with respect to each other said coils being so arranged that the fltx of one coil overlaps the flux of an adjacent coil in the molten metal.
12. In combination with a container for molten metals having a bottom, a multiphase induction stirrer for such metal comprising a magnetic core in generally close relationship to said bottom and extending generally parallel thereto, at most three stationary electrical coils about said core, said coils having a combined axial length greater than one-half of a parallel cross dimension of said bottom each coil consisting of an upper side extending generally between said core and said bottom and a lower side extending across the side of said core remote from said bottom, the coils of each phase being symmetr'cal with respect to a plane through the bottom perpendicular to the ,said axis, the ampere-turns of the outermost coils having a phase displacement of 180 with respect to each other, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
13. In combination with a container for molten metals having a bottom, an indiction stirrer for such metal eomprising a magnetie core in generally close relationship` to said bottom and extending generally parallel thereto, at most three stationary electrical coils at least one of which is wound about said core and consisting of an upper side extending generally between said core and said bottom and a lower side extendng across the side of said core remote from said bottom, said coils having a combined axial length greater than one-half of a parallel cross dimension of said bottom, said bottom being formed of magnetic stainless steel material and means for energizing said coils from a multiphase power source of sufiicient energy to provide a magnetic flux to saturate said steel bottom with magnetic flux, said coils being so arranged that the flux of one coil overlaps the flux of an adjacent coil in the molten metal.
14. In combination with a container for molten metals and having a bottom, an induction stirrer for such metal comprising three stationary electrical coils in axial alignment positioned adjacent said bottom, said coils having an axis of winding generally parallel to said bottom, said coils having a combined axial length greater than onehalf of a parallel cross dimension of said bottom, the centremost of said coils having a greater number of turns than the other two coils, the ampere-turns of the outermost of said coils having a phase displacement of 180" with respect to each other, said coils being so arranged that the fiux of one coil overlaps the flx of an adjacent coil in the molten metal.
15. In combination with a container for molten metals and having a bottom, an induction stirrer for such metal comprising a plurality 'of stationay electrieal coils, at least one of said coils having an axis of the winding thereof generally parallel to said bottom, and at least one other of said coils being of the pancake type and hav-. ing an axis of the -wnding thereof generally perpendicular to said bottom, said other coil embracing said first coil and having an entire Width of wina'ing greater than References Cited in the file of this patent 6 or the orgnal patent UNITED STATES PATENTS Appel Ian. 2, 1912 Howard Oct. 28, 1913 10 10 Rennerelt Apr. 5, Moore Nov. 28, Dreyfus June 27, Ladell Dec. 2, Gynt et al. Sept. 15, Jones Aug. 7, Dreyfus Aug. 14, Williamson Oct. 6,
Publications (1)
| Publication Number | Publication Date |
|---|---|
| USRE24463E true USRE24463E (en) | 1958-04-22 |
Family
ID=2092592
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US24463D Expired USRE24463E (en) | Frequency |
Country Status (1)
| Country | Link |
|---|---|
| US (1) | USRE24463E (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4834876A (en) | 1988-03-14 | 1989-05-30 | Walker Nicholas G | Filtration assembly having integral heating means for maintaining the metallic material being filtered in the molten state |
-
0
- US US24463D patent/USRE24463E/en not_active Expired
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4834876A (en) | 1988-03-14 | 1989-05-30 | Walker Nicholas G | Filtration assembly having integral heating means for maintaining the metallic material being filtered in the molten state |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US2978530A (en) | Conductor for transformer windings | |
| US2902572A (en) | Induction heating of metal strip | |
| US2333015A (en) | Variable reactance device | |
| USRE24463E (en) | Frequency | |
| US2459507A (en) | Method of induction heating continuously moving wire | |
| US2283711A (en) | Electrical winding | |
| US2767236A (en) | Magnetic stirrer for molten metal furnaces | |
| US2256518A (en) | Electric furnace | |
| DE2608310C2 (en) | Channel melting furnace for metals and alloys | |
| US4135173A (en) | Low volume sheet-wound transformer coils with uniform temperature distribution | |
| US3175175A (en) | Unitary transformer and saturable reactor | |
| USRE24462E (en) | Dreyfus | |
| US2849584A (en) | Multiphase induction billet heater | |
| US3213398A (en) | Induction voltage regulator of the moving coil type | |
| US2857539A (en) | Induction motors | |
| US1983544A (en) | Arrangement for supply of current to electrothermic melting furnaces | |
| US1312845A (en) | Setts | |
| US2652441A (en) | Electric melting furnace | |
| US1743956A (en) | Induction furnace | |
| GB712066A (en) | High-frequency electromagnetic induction means for heating metallic strips | |
| US3183381A (en) | Electromagnet | |
| US3185946A (en) | Transformer tap winding | |
| DE677405C (en) | Eddy current heating device for heating magnetically conductive masses, e.g. in the form of vessels | |
| US3031633A (en) | Differential transformer | |
| US3183465A (en) | Transposed winding for electrical apparatus |