Claims
- 1. An apparatus for continuous, high-speed casting of metallic strands from a melt, said apparatus including a generally tubular die extending longitudinally in a first direction and having a first end for fluid communication with a melt, wherein the improvement comprises:
- means for cooling the die at a high rate to form a solidification front in a casting zone of said die spaced longitudinally from said first die end, said cooling means having at least a first end disposed adjacent the said first die end, and
- a refractory insulating means between said means for cooling and said die and located adjacent said first end of said means for cooling for confining said casting zone to a dimensionally uniform portion of said die and for controlling thermal expansion of said die between said casting zone and said first cooling means end.
- 2. Apparatus according to claim 1 wherein said confining and controlling means is an insulating member structured and positioned adjacent said die to produce a steep temperature gradient in said first direction at the lower edge of said casting zone.
- 3. Apparatus according to claim 2 wherein said first cooling means end has a counterbore surrounding said die and said insulating member comprises a bushing of a refractory material disposed in said counterbore and having a low coefficient to thermal expansion, low porosity and a high resistance to thermal shock.
- 4. Apparatus according to claim 3 wherein said bushing extends from said first cooling means end to approximately the lower edge of said casting zone.
- 5. Apparatus according to claim 2 wherein said insulating member is a tubular refractory element disposed within said die at said first end and extending longitudinally from said first die end to a point below said casting zone.
- 6. Apparatus according to claim 2 wherein said controlling means includes a taper on the inner surface of said die between said first die end and said casting zone that widens in the first direction toward said casting zone, said taper being selected to produce a uniform inside diameter when heated by said melt.
- 7. Apparatus according to claim 1 further comprising means for driving said strand from said die in a cycle that includes forward and reverse strokes with a net forward withdrawal rate an upper limit of 200 to 400 inches per minute.
- 8. Apparatus according to claim 7 wherein said cycle is characterized by long forward strokes, a high instantaneous forward velocity and high forward and reverse accelerations.
- 9. Apparatus according to claim 3 wherein said cooling means comprises a coolerbody that circulates a cooling fluid and surrounds said die in a close-fitting relationship.
- 10. Apparatus according to claim 9 wherein at least a portion of said die extending from said first end to the upper edge of said casting zone is slip fit in coolerbody.
- 11. Apparatus according to claim 10 further comprising means for restraining said die against longitudinal movement with respect to said coolerbody before the die thermally expands against said coolerbody due to heating by the melt.
- 12. Apparatus according to claim 1 wherein said die has substantially uniform interior cross-sectional dimensions.
- 13. Apparatus according to claim 1 further comprising insulating means that substantially encloses said immersed portions of said cooling means.
- 14. An apparatus for continuous, high-speed, closed-mold casting of metallic strands from a melt comprising:
- a tubular die extending longitudinally in a first direction and having a first end for immersion in a melt and a highly smooth inner surface,
- a coolerbody that surrounds said die in a close fitting relationship to cool said die at a high rate to form a solidification front in a casting zone of said die spaced longitudinally from said first die end, said casting zone extending in said first direction for a relatively short distance, said coolerbody having at least a first end for immersion into a melt to at least the level of said casting zone and said first coolerbody end having a counterbore surronding said die,
- insulating means that substantially enclose at least a portion of said cooling jacket that becomes immersed, and
- an insulating bushing formed of a refractory material with a low coefficient of thermal expansion, low porosity and a high resistance to thermal shock that is disposed in said counterbore and extends in said first direction from said first coolerbody end to the lower edge of said casting zone to confine said casting zone to a dimensionally uniform portion of said die, to control thermal expansion of said die between said casting zone and first cooling means end, and to produce a steep temperature gradient in said first direction at the lower edge of said casting zone proximate said first ends.
- 15. Apparatus according to claim 14 wherein said insulating bushing is formed of cast silica.
- 16. Apparatus according to claim 14 further comprising a metallic liner interposed between said insulating bushing and said coolerbody to facilitate removal of said insulating bushing.
- 17. Apparatus according to claim 14 wherein said die has substantially uniform cross sectional dimensions.
- 18. Apparatus according to claim 14 wherein said first die end projects from said coolerbody and said insulating bushing.
- 19. Apparatus according to claim 18 wherein said projecting die portion has an upwardly widening taper formed on its inner surface to compensate for its thermal expansion due to heating by the melt.
- 20. Apparatus according to claim 14 wherein said die is a single piece.
- 21. Apparatus according to claim 14 wherein said die is slip fit in said coolerbody.
- 22. Apparatus according to claim 14 wherein said die is formed of boron nitride.
- 23. Apparatus according to claim 14 wherein said die is outgassed prior to said casting.
- 24. Apparatus according to claim 18 further comprising means for restraining said die against longitudinal movement with respect to said coolerbody before the die thermally expands against said coolerbody due to heating by the melt.
- 25. Apparatus according to claim 24 wherein said die and said restraining means comprises a step formed on the outer surface of said projecting die portion that engages the lower end of said bushing.
- 26. Apparatus according to claim 24 wherein said restraining means comprises a small upset on the coolerbody surface surrounding said die.
- 27. Apparatus according to claim 14 wherein said coolerbody has inner and outer spaced apart walls that define a generally annular circulation path for a cooling fluid.
- 28. Apparatus according to claim 27 wherein said inner wall is formed of age hardened chrome copper alloy and said outer wall is formed of stainless steel.
- 29. Apparatus according to claim 28 further comprising a copper/gold braze joint that bonds said inner and outer walls adjacent said casting zone.
- 30. Apparatus according to claim 14 wherein said coolerbody and said insulating means enclosing said coolerbody extend in said first direction for a distance that allows said coolerbody to be deeply immersed in said melt.
- 31. Apparatus according to claim 27 further comprising a helical element disposed in the space defined by said walls to produce a swirling fluid flow.
- 32. Apparatus according to claim 27 wherein said fluid is water at a temperature in the range of 70.degree. F. to 120.degree. F.
- 33. Apparatus according to claim 32 wherein said fluid flow is at a rate of about one gallon per pound of said strand solidified in said die per minute.
- 34. Apparatus according to claim 14 further comprising a first cone formed of a material that is non-contaminating to the melt and adapted to be held in said first die end.
- 35. Apparatus according to claim 14 comprising a second cone of a material that is non-contaminating to the melt and encloses said first coolerbody end and said first die end, the surface of said cone forming an angle of 45.degree. or less with said first direction.
- 36. Apparatus according to claim 14 further comprising vapor shield and gasket means disposed between said first coolerbody end and the opposite portion of said insulating means.
- 37. Apparatus according to claim 36 wherein said vapor shield and gasket means comprises at least one annuli of an alumina silica fiber material and an annulus of molybdenum foil.
- 38. Apparatus according to claim 14 further comprising means for continuously adjusting the height of said melt with respect to said coolerbody.
- 39. Apparatus according to claim 38 wherein said adjusting means includes elevator means and load cells means disposed between said melt and said elevator means for generating a signal responsive to the weight of the melt that controls the operation of said elevator means.
- 40. Apparatus according to claim 14 further comprising means for drawing said strand from said die in a cycle that includes forward and reverse strokes with a net forward withdrawal rate up to 200 to 400 inches per minute.
- 41. Apparatus according to claim 40 wherein said cycle is characterized by long forward strokes and a high instantaneous forward velocity.
- 42. Apparatus according to claim 41 wherein said forward stroke length is in the range of 1 to 11/2 inches and said instantaneous forward velocity is in the range of three to twenty inches per minute.
- 43. Apparatus according to claim 40 wherein said cycle is characterized by high forward and reverse accelerations.
- 44. Apparatus according to claim 43 wherein said forward and reverse accelerations are each in excess of 1 g.
- 45. Apparatus according to claim 40 wherein said cycle has a frequency in the range of 60 to 200 cycles per minute.
- 46. Apparatus according to claim 40 wherein said cycle further includes a dwell period at the end of at least one of said forward and reverse strokes.
- 47. Apparatus according to claim 14 wherein said first direction is vertical and said melt is below said die.
- 48. Apparatus according to claim 14 wherein said strand is brass with a diameter in the range of one-quarter to two inches and said casting speed is up to two hundred to four hundred inches per minute.
- 49. An apparatus for the continuous high-speed casting of metallic strands from a melt, said apparatus including a generally tubular die extending longitudinally in a first direction and having a first end for fluid communication with a melt, wherein the improvement comprises:
- means for cooling the die at a high rate to form a solidification front in a casting zone of said die spaced longitudinally from said first die end, said cooling means having at least a first end disposed adjacent the said first die end; and
- means for confining said casting zone to a dimensionally uniform portion of said die for controlling thermal expansion of said die between said casting zone and said first cooling means end, said confining and controlling means being an insulating member structured and positioned adjacent said die to produce a steep temperature gradient in said first direction at the lower edge of said casting zone, said first cooling means end having a counterbore surrounding said die and said insulating member comprising a bushing of refractory material disposed in said counterbore and having a low coefficient of thermal expansion, low porosity and a high resistance to thermal shock.
- 50. The apparatus according to claim 49 wherein said bushing extends from said first cooling means end to approximately the lower edge of said casting zone.
- 51. The apparatus according to claim 49 wherein said cooling means comprises a coolerbody that circulates a cooling fluid and surrounds said die in a close-fitting relationship.
- 52. The apparatus according to claim 51 wherein at least a portion of said die extending from said first end to the upper edge of said casting zone is slip fit in said coolerbody.
- 53. The apparatus according to claim 52 further comprising means for restraining said die against longitudinal movement with respect to said coolerbody before the die thermally expands against said coolerbody due to heating by the melt.
Parent Case Info
This is a division of application Ser. No. 928,881, filed July 28, 1978, now U.S. Pat. No. 4,211,270, issued July 8, 1980.
US Referenced Citations (19)
Foreign Referenced Citations (5)
Number |
Date |
Country |
969731 |
Jun 1975 |
CAX |
2060451 |
Jul 1971 |
DEX |
531514 |
Jan 1941 |
GBX |
1087626 |
Oct 1967 |
GBX |
561612 |
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SUX |
Non-Patent Literature Citations (4)
Entry |
"The Upcast Method of Producing Copper Wire", Wire Industry, Jul., 1976, pp. 565-567. |
"Rolling of Bar, Rod, and Section: Copper and Copper Alloys", Metals Technology, Jul.-Aug., 1975, pp. 382-395. |
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Divisions (1)
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Number |
Date |
Country |
Parent |
928881 |
Jul 1978 |
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