Claims
- 1. A method for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material which travels along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said method comprising the steps of:
- applying to the casting belt reach-out magnetic attraction from an array of magnetically soft ferromagnetic pole members having pole faces arranged in a coplanar array facing toward the reverse surface of the casting belt by magnetizing said pole members by positioning in magnetic association with said pole members permanent magnets capable of providing sufficient reach-out magnetic attraction to the casting belt for suitably stabilizing the casting belt; and
- simultaneously applying to the reverse surface of the casting belt a multiplicity of flows of pumped liquid coolant issuing adjacent to the pole faces, said flows levitating the casting belt spaced by gaps from the pole faces and said flows travelling through the gaps between the reverse surface of the casting belt and the pole faces.
- 2. A method claimed in claim 1, including:
- fixedly throttling said multiplicity of flows of pumped liquid coolant prior to applying them to the reverse surface of the casting belt.
- 3. A method claimed in claim 1, including:
- directing a substantially unidirectional flow of liquid coolant along the reverse surface of the casting belt through spaces between the pole members, for sweeping away from the reverse surface coolant which has travelled through said gaps.
- 4. A method claimed in claim 1, including:
- magnetizing said pole members using permanent magnets providing pole faces having alternate North and South polarity in said coplanar array.
- 5. A method claimed in claim 4, including:
- issuing pumped liquid coolant into pressure pockets rimmed by the pole faces, and
- individually fixedly throttling pumped liquid coolant prior to issuing into each pressure pocket.
- 6. A method claimed in claim 1, including:
- issuing pumped liquid coolant into pressure pockets facing the reverse surface of the casting belt adjacent to the pole faces, and
- throttling the pumped liquid coolant prior to issuing the pumped liquid coolant into the pressure pockets.
- 7. A method claimed in claim 1, including:
- supplying pumped liquid coolant suitably pressurized prior to fixedly throttling said multiplicity of flows for levitating the casting belt spaced by gaps from the pole faces.
- 8. A method claimed in claim 1, wherein:
- at least one magnet has a midpoint differential demagnetizing permeability not exceeding about 4 .DELTA.Gauss per .DELTA.Oersted.
- 9. A method claimed in claim 8, wherein:
- at least one magnet has a residual induction equal to at least about 8,000 Gauss.
- 10. A method claimed in claim 1, wherein:
- at least one magnet has a midpoint differential demagnetizing permeability not exceeding about 2.5 .DELTA.Gauss per .DELTA.Oersted.
- 11. A method claimed in claim 10, wherein:
- at least one magnet has a residual induction equal to at least about 10,000 Gauss.
- 12. A method claimed in claim 1, wherein:
- at least one magnet has a residual induction equal to at least about 10,000 Gauss and has a midpoint demagnetizing permeability not exceeding about 1.2 .DELTA.Gauss per .DELTA.Oersted.
- 13. A method claimed in claim 1, including:
- enabling convenient removal of the casting belt from the mold space by diverting sufficient magnetic flux away from the casting belt.
- 14. A method claimed in claim 1, including:
- supplying pumped liquid coolant under pressure for forming said flows of pumped liquid coolant prior to feeding molten metal into said mold space;
- stopping the feeding of molten metal prior to stopping supplying of pumped liquid coolant prior to removing the casting belt from the mold space; and
- automatically selectively diverting magnetic flux to the casting belt and away from the casting belt by employing pressure of pumped liquid coolant for diverting magnetic flux to the casting belt and employing absence of said pressure for diverting magnetic flux away from the casting belt for enabling convenient removal of the casting belt from the mold space.
- 15. A method for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material which travels along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said method comprising the steps of:
- positioning the reverse surface of the casting belt near an array of magnetically soft ferromagnetic pole members having pole faces arranged in a coplanar array facing toward the reverse surface of the casting belt;
- magnetizing said pole members by positioning permanent magnets in magnetic associated with pair of said pole members for providing pole faces having alternate North and South polarity in said coplanar array providing sufficient reach-out magnetic attraction from the pole members for stabilizing the casting belt in even condition,
- while simultaneously supporting the belt spaced away from the pole faces by pumping liquid coolant flows into pressure pockets rimmed by the pole faces for applying the coolant flows to the reverse surface of the casting belt, with coolant escaping from the pressure pockets by travelling through gaps between the reverse surface of the casting belt and the pole faces.
- 16. A method for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material travelling along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said method comprising the steps of:
- pulling the moving belt by reach-out magnetic attraction toward a coplanar array of pole faces facing toward the reverse surface of the moving belt and having alternate North and South magnetic polarity on pole members of magnetically soft ferromagnetic material magnetized by positioning in magnetic association with the pole members permanent magnets capable of providing sufficient reach-out magnetic attraction for stabilizing the belt in even condition; and
- simultaneously levitating the belt spaced away from the pole faces hovering upon throttled pumped liquid coolant issuing from nozzles adjacent to the pole faces and travelling through gaps between the reverse surface of the levitated moving belt and the pole faces.
- 17. A method claimed in claim 16, including:
- issuing throttled pumped liquid coolant through a plurality of nozzles in each pole member facing toward the reverse surface of the belt.
- 18. A method claimed in claim 17, including:
- providing elongated pole members each having an elongated pole face,
- positioning the elongated pole members in spaced parallel relation defining elongated spaces between neighboring pole members spaced to a pitch in a range from about 3/4 of an inch to about 2 inches.
- 19. A method claimed in claim 18, including:
- issuing individually throttled pumped liquid coolant through respective individual nozzles spaced longitudinally along each pole member, wherein each nozzle is rimmed by a portion of an elongated pole face.
- 20. A method for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material which travels along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said method comprising the steps of:
- providing a multiplicity of elongated magnetically soft ferromagnetic pole members each having an elongated pole face;
- positioning the pole members in spaced parallel relationship defining elongated spaces between neighboring pole members with their elongated pole faces arranged in a coplanar array;
- providing a multiplicity of reach-out permanent magnets each having North and South magnetic poles;
- magnetizing the pole members by the magnets arranged with their respective North and South magnetic ploes in magnetic association with alternate pole members for providing alternate North and South polarity of successive pole faces in the array;
- applying to the casting belt reach-out magnetic attraction from said coplanar array of pole faces of magnetized pole members facing toward the reverse surface of the casting belt; and
- levitating the casting belt spaced away from the pole faces by applying to the reverse surface of the casting belt a multiplicity of flows of throttled pumped liquid coolant issuing adjacent to the pole faces and travelling through gaps between the reverse surface of the casting belt and the pole faces.
- 21. A method claimed in claim 20, including:
- positioning the elongated pole members in spaced parallel relationship defining elongated spaces between neighboring pole members wherein said pole members are spaced to a pitch in a range from about 3/4ths of an inch to about 2 inches.
- 22. A method claimed in claim 21, including:
- applying liquid coolant sweeping along the reverse surface of the belt in the elongated spaces between neighboring pole members.
- 23. A method claimed in claim 21, including:
- interposing at least one of the permanent magnets in each of said elongated spaces between successive spaced parallel elongated pole members; and
- arranging said permanent magnets in said elongated spaces with pairs of same polarity permanent magnet poles facing toward opposite sides of each pole member.
- 24. A method claimed in claim 23, including:
- positioning a plurality of North (N') and South (S') pole surfaces of reach-out permanent magnets adjacent to sides of neighboring pole members.
- 25. A method claimed in claim 23, including:
- interposing a plurality of reach-out permanent magnets aligned along each elongated space; and
- arranging their polarities in the same direction in each elongated space.
- 26. A method claimed in claim 20, wherein:
- said reach-out permanent magnets have a residual induction equal to at least about 8,000 Gauss and also have a midpoint differential demagnetizing permeability not exceeding about 4 .DELTA.Gauss per .DELTA.Oersted.
- 27. A method claimed in claim 26, including:
- diverting magnetic flux away from the casting belt for enabling convenient removal of the belt from the mold space.
- 28. A method for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material which travels along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said method comprising the steps of:
- providing a multiplicity of reach-out magnetic circuits;
- each magnetic circuit including a portion thereof lying within the casting belt and extending along a path within the casting belt located between the front and reverse surfaces of the casting belt and extending generally parallel with the front and reverse surfaces;
- each magnetic circuit also including a portion thereof extending in a generally U-shaped pattern with legs of the U-shaped pattern extending toward the reverse surface of the casting belt toward opposite ends of said path;
- applying flows of pumped liquid coolant to the reverse surface of the casting belt in regions where legs of the U-shaped pattern extend toward the reverse surface of the casting belt for cooling the belt and for levitating the belt by hydrodynamic forces of the flows of pumped liquid coolant which increase lengths of said legs of the U-shaped pattern; and
- diminishing magnetic flux in said reach-out magnetic circuits for enabling convenient removal of the casting belt from the mold cavity.
- 29. A method claimed in claim 28, in which:
- said magnetic circuit paths extend transversely with respect to travel direction of the casting belt; and
- adjacent legs of neighboring U-shaped patterns have the same magnetic polarity providing leg pairs of North magnetic polarity alternating with leg pairs of South magnetic polarity in a direction extending transversely with respect to travel direction of the casting belt.
- 30. A method claimed in claim 28, wherein a nip pulley roll is positioned in a nip region at an upstream end of the mold space, said nip pulley roll being formed of non-magnetic material and having multiple circumferential fins of non-magnetic material uniformly axially spaced along the nip pulley roll and all having the same outside diameter, and said casting belt in approaching the mold space travels partially around the nip pulley roll in contact with said fins and then tangentially separates from the fins at the nip region and proceeds downstream in a generally planar configuration along the mold cavity, said method including:
- directing said reach-out magnetic circuits through the nonmagnetic circumferential fins of the nonmagnetic nip pulley roll as well as through minimal air gaps located on either side of each fin.
- 31. A method claimed in claim 30, in which:
- each of said reach-out magnetic circuits is magnetically energized by a plurality of reach-out permanent magnets arranged in alignment in a string of magnets interposed between successive neighboring fins and located between the casting belt and the nip pulley roll.
- 32. A method claimed in claim 31, in which:
- the strings of reach-out magnets are rotatable about axes extending parallel with each other and generally parallel with the planar casting belt;
- in applying reach-out attraction forces to the casting belt downstream from the nip region the strings of reach-out magnets are rotated to orient their internal North (N')-South (S') flux paths generally perpendicular to the generally planar casting belt with alternate successive strings across the width of the casting belt having alternate North (N') and South (S') polarities facing toward the casting belt; and
- diminishing magnetic flux in said reach-out magnetic circuits for enabling convenient removal of the casting belt from the casting cavity comprises a step of:
- simultaneously rotating the strings of magnets to orient their internal North (N')-South (S') flux paths generally parallel with the generally planar casting belt, with the North (N') polarity of each string being directed toward the North (N') polarity of a neighboring string and with the South (S') polarity of each string being directed toward the South (S') polarity of a neighboring string.
- 33. Apparatus for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material which travels along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said apparatus comprising:
- a multiplicity of hydro-magnetic devices;
- each hydro-magnetic device including a pole member of magnetically soft ferromagnetic material having a pole face;
- said pole faces being positioned in a coplanar array faceable toward the reverse surface of the casting belt;
- each hydro-magnetic device including at least one pressure pocket faceable toward the reverse surface of the casting belt adjacent to the pole face and including a passageway for feeding pumped liquid coolant into the pressure pocket;
- a plurality of permanent magnets, at least one of said magnets being in magnetic association with each of said pole members for magnetizing said pole members with their pole faces having alternate North and South polarity in said array; and
- said magnets providing sufficient reach-out magnetic pull on the casting belt toward the pole faces for suitably stabilizing the casting belt in even condition while hovering upon pumped liquid coolant issuing from the pressure pockets and available for travelling through gaps between the reverse surface of the casting belt and the pole faces.
- 34. Apparatus claimed in claim 33, in which:
- a plurality of coolant sweep nozzles direct a substantially unidirectional flow of liquid coolant for sweeping along the reverse surface of a casting belt with sufficient momentum for clearing away from the reverse surface of the casting belt coolant which has travelled through gaps between the reverse surface of the casting belt and the pole faces.
- 35. Apparatus claimed in claim 34, in which:
- each hydro-magnetic device includes a plurality of pressure pockets faceable toward the reverse surface of a casting belt, said pressure pockets are adjacent to a pole face, and said hydro-magnetic device includes a plurality of said passageways throttling flows of pumped liquid coolant feeding into respective individual pressure pockets.
- 36. Apparatus claimed in claim 33, in which:
- the pole members are elongated and are positioned in spaced parallel relationship forming a coplanar array of spaced parallel elongated pole faces;
- each pole member includes a plurality of pressure pockets located at spaced positions along the elongated pole member with each pressure pocket being rimmed by a respective portion of the pole face of the pole member in which the pressure pocket is located.
- 37. Apparatus claimed in claim 36, in which:
- said coolant sweep nozzles direct said substantially unidirectional flow of liquid coolant through elongated spaces between elongated pole members.
- 38. Apparatus claimed in claim 33, including:
- magnetic flux diversion apparatus movable between "on" and "off" positions;
- the "on" position allowing occurrence of said sufficient reach-out magnetic pull toward the pole faces; and
- the "off" position reducing magnetic pull toward the pole faces for enabling convenient removal of the casting belt away from the mold space.
- 39. Apparatus claimed in claim 38, including:
- pressure-responsive mechanism responsive to existence of pressure of pumped liquid coolant for moving said flux diversion apparatus to "on" position and responsive to absence of pressure of pumped liquid coolant for moving said flux diversion apparatus to "off" position.
- 40. Apparatus for stabilizing and cooling an endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material which travels along a mold space wherein molten metal is cast, the casting belt having a front surface facing toward the mold space and having a reverse surface facing away from the mold space, said apparatus comprising:
- spaced, parallel, elongated, magnetically soft ferromagnetic pole members;
- each pole member having an elongated pole face extending longitudinally along the pole member;
- said pole faces of said pole members being arranged in a coplanar array of pole faces facing the reverse surface of the casting belt;
- each pole member having a plurality of nozzles in its elongated pole face;
- said nozzles being located at spaced positions along the pole face;
- each pole member having a supply passage therein for feeding coolant to said nozzles; and
- a multiplicity of reach-out permanent magnets positioned with their respective North and South magnetic poles in magnetic association with alternate pole members for magnetizing said pole members forming an array of pole faces of alternate North and South magnetic polarity pulling the casting belt toward the pole faces by reach-out magnetic attraction.
- 41. Apparatus claimed in claim 40 and wherein the casting belt travels partially around a finned nip pulley roll at an entrance to the mold space, in which:
- the finned nip pulley roll is non-magnetic and has non-magnetic fins; and
- elongated pole members have elongated slender nose portions projecting upstream relative to travel direction of the casting belt and fitting into grooves in the nip pulley roll between neighboring fins.
- 42. Apparatus claimed in claim 41, in which:
- nose portions of elongated pole members project upstream beyond a nip region in the entrance to the mold space where the casting belt separates from contact with the fins.
- 43. Apparatus claimed in claim 41, in which:
- each nose portion includes a sweep nozzle aimed downstream relative to travel direction of the casting belt, said sweep nozzles being aimed toward the reverse surface of the casting belt at an acute angle for directing a flow of coolant sweeping downstream along the reverse surface of the casting belt between the elongated pole members.
- 44. Apparatus claimed in claim 43, in which:
- the sweep nozzles are positioned upstream beyond a nip region in the entrance to the mold space where the casting belt separates from contact with the fins.
- 45. Apparatus claimed in claim 41, in which:
- said elongated pole members comprise:
- first parts thereof proximate to the casting belt, and second parts thereof remote from the casting belt;
- said first and second parts of the pole members fit into respective grooves in the nip pulley roll between neighboring fins;
- each of said elongated pole members includes an elongated rotor positioned therein between said first and second parts of the pole member;
- each elongated rotor extends longitudinally of the elongated pole member;
- each elongated rotor has an axis of rotation extending longitudinally of the elongated pole member;
- each elongated rotor includes at least one string of permanent magnets and having their internal North (N')-South (S') flux paths oriented in the same direction; and
- all of said internal flux paths are oriented perpendicular to the axis of rotation of the rotor.
- 46. Apparatus claimed in claim 45, in which:
- said first and second parts of each pole member have circular cylindrical surfaces facing toward and closely spaced from the elongated rotor in the pole member; and
- said circular cylindrical surfaces are concentric with the axis of rotation of the rotor.
- 47. Apparatus claimed in claim 46, in which:
- a common actuator device is connected to each rotor for simultaneously rotating all rotors between an "ON" reach-out attraction orientation wherein the internal North (N')-South (S') flux paths of the strings of magnets in alternate successive rotors in an array of pole members extending transversely across the casting belt have alternate polarities directed toward the casting belt and toward the first pole parts of successive pole members in the array for applying reach-out attraction forces from said first pole parts to the casting belt, and an "OFF" reduced-attraction orientation wherein there is greatly reduced attraction forces applied from said first pole parts to the casting belt and wherein the internal North (N')-South (S') flux paths of the strings of magnets in the rotors are oriented generally parallel with the casting belt.
- 48. Apparatus claimed in claim 45, in which:
- each rotor includes a plurality of axially-aligned strings of reach-out permanent magnets; and
- at least one of said strings in each rotor is positioned sufficiently far downstream that it is located downstream from said fins.
- 49. Apparatus claimed in claim 45, in which:
- the elongated pole members with their elongated rotors extend downstream from the nip region to downstream positions located downstream from said fins.
- 50. Apparatus claimed in claim 40, in which:
- the reach-out permanent magnets have a residual induction equal to at least about 8,000 Gauss; and
- the reach-out permanent magnets have a midpoint differential demagnetizing permeability not exceeding about 4 .DELTA.Gauss per .DELTA.Oersted.
- 51. Apparatus claimed in claim 50, including:
- magnetic flux diversion apparatus movable between "on" and "off" positions;
- the "on" position allowing occurrence of sufficient reach-out magnetic attraction toward the pole faces for suitably stabilizing the casting belt against thermal distortion; and
- the "off" position reducing magnetic pull toward the pole faces for enabling convenient removal of the casting belt away from the mold space.
- 52. Apparatus claimed in claim 40, in which:
- each nozzle includes a pressure pocket facing toward the reverse surface of the casting belt and being rimmed by an area of the pole face of the pole member in which the nozzle is located; and
- each nozzle includes a throttling passageway feeding coolant from the supply passage into the pressure pocket.
- 53. Apparatus claimed in claim 52, in which:
- a throttling passageway feeding coolant from the supply passage into a downstream pressure pocket positioned nearest to a downstream end of each elongated pole members is larger in cross sectional area than cross sectional areas of other throttling passageways in the pole member feeding other pressure pockets in the pole member; and
- the downstream pressure pocket opens in a downstream direction forming a sweep nozzle aimed downstream for flowing coolant downstream along the reverse surface of the casting belt.
- 54. Apparatus claimed in claim 53, in which:
- the downstream end of each pole member has a ledge surface facing toward the reverse surface of the casting belt and converging toward the reverse surface of the casting belt in a downstream direction; and
- the downstream pressure pocket opens in a downstream direction with side walls diverging in a downstream direction and straddling said ledge surface.
- 55. Apparatus claimed in claim 40, in which:
- an end of each elongated pole member, said end being downstream relative to travel direction of the casting belt, includes a sweep nozzle aimed downstream toward the reverse surface of the casting belt for directing a flow of coolant sweeping downstream along the reverse surface of the casting belt.
- 56. Apparatus claimed in claim 40 and wherein the casting belt travels partially around a nip pulley roll rotatable around an axis and having a plurality of circular fins of the same diameter axially spaced along the pulley roll and projecting radially from the pulley roll defining grooves between neighboring fins, in which:
- said pulley roll is non-magnetic;
- said circular fins are formed of magnetically soft ferromagnetic material; and
- each elongated pole member has an elongated slender nose portion projecting upstream relative to travel direction of the casting belt and fitting into a groove between neighboring fins.
- 57. In a belt-type continuous casting machine employing at least one moving, endless, flexible, thin-gauge, heat-conducting casting belt containing magnetically soft ferromagnetic material travelling along a moving mold space wherein the casting belt has a front surface facing the mold space wherein molten metal is cast and a reverse surface for cooling the casting belt, apparatus for stabilizing and cooling the moving belt comprising:
- an array of spaced, parallel hydro-pillow devices;
- each of said hydro-pillow devices including an elongated member having an elongated face extending along the member;
- said elongated faces of said members being in a spaced, parallel coplanar array of elongated faces facing the reverse surface of the casting belt;
- each elongated member having a plurality of nozzles in its elongated face;
- said nozzles being located at spaced positions along the elongated face;
- each elongated member having a supply passage extending along said member therein for feeding coolant to said nozzles;
- each nozzle including an outlet facing toward the reverse surface of the casting belt and being rimmed by an area of the face; and
- each member including throttling passageways feeding coolant from the supply passage to the outlets.
- 58. Apparatus claimed in claim 57, in which:
- said hydro-pillow devices are magnetic hydro-pillow devices;
- said elongated members are formed of magnetically soft ferromagnetic material;
- said elongated faces are elongated pole faces;
- a multiplicity of reach-out permanent magnets positioned with their respective North and South magnetic poles in magnetic association with alternate elongated members in the array magnetize said elongated members forming an array of elongated pole faces of alternate North and South magnetic polarity pulling the casting belt toward the elongated pole faces by reach-out magnetic attraction;
- the reach-out permanent magnets have a residual induction equal to at least about 8,000 Gauss; and
- the reach-out permanent magnets have a midpoint differential demagnetizing permeability not exceeding about 4 .DELTA.Gauss per .DELTA.Oersted.
- 59. Apparatus claimed in claim 58, in which:
- at least one reach-out permanent magnet is interposed in an elongated space between neighboring elongated members;
- the magnets are oriented with their respective North and South magnetic poles facing toward sides of the neighboring elongated members; and
- respective elongated members have same polarity magnetic poles facing toward opposite sides of the elongated member magnetizing the elongated members for providing the array of elongated pole faces having alternate North and South magnetic polarity.
- 60. Apparatus claimed in claim 58, including additionally:
- an array of spaced, parallel, hydro-pillow devices;
- each of said hydro-pillow devices including an elongated member having an elongated pillow face extending longitudinally along the elongated member;
- said elongated pillow faces being in a spaced, parallel, coplanar array of elongated pillow faces facing the reverse surface of the casting belt;
- each elongated member having a plurality of nozzles in its elongated pillow face;
- said nozzles being located at spaced positions along the elongated pillow face;
- each elongated member having a supply passage therein for feeding coolant to said nozzles;
- each nozzle including an outlet facing toward the reverse surface of the casting belt and being rimmed by an area of the pillow face;
- said members including throttling passageways for feeding coolant from the supply passage to the outlets;
- said throttling passageways in said hydro-pillow devices having a larger cross sectional area than throttling passageways in said magnetic hydro-pillow devices; and
- said array of hydro-pillow devices are positioned downstream from said array of magnetic hydro-pillow devices relative to travel direction of the moving casting belt.
- 61. Apparatus claimed in claim 60, in which:
- said elongated members of said hydro-pillow devices extend downstream from the pole members of said magnetic hydro-pillow devices; and
- reach-out permanent magnets are included only in the magnetic hydro-pillow devices.
- 62. Apparatus claimed in claim 57, in which:
- resilient mounting mechanism resiliently mounts said array of hydro-pillow devices with compliant movement in a direction toward and away from the mold space.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation of application Ser. No. 08/677,933, filed Jul. 10, 1996 and now abandoned.
US Referenced Citations (20)
Foreign Referenced Citations (1)
Number |
Date |
Country |
2709540 |
Sep 1978 |
DEX |
Continuations (1)
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Number |
Date |
Country |
Parent |
677953 |
Jul 1996 |
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