Claims
- 1. A continuous chain caster comprising:
a headbox; a tip; a mold channel extending horizontally or up to 15 degrees downwardly between an opening and an exit and having a depth defined between two endless chains forming an upper mold assembly and a lower mold assembly; the headbox and tip being positioned at the opening OF the mold channel to supply molten metal from the headbox to the mold channel; each chain having a protrusion at an opposite side of the chains defining a width of the mold channel therebetween; a first adjustment mechanism adapted to move at least one of the mold assemblies relative to the other in a direction substantially transverse to a direction of travel of the molten metal through the mold channel to adjust the depth of the mold channel along the length of the mold channel so that an exit depth of the mold channel is less than an opening depth of the mold channel and a uniform casting pressure is maintained along the length of the mold channel; and a second adjustment mechanism adapted to move at least one of the mold assemblies relative to the other in another direction substantially transverse to the direction of travel of the molten metal through the mold channel to adjust the width of the mold channel.
- 2. The caster of claim 1 wherein the first adjustment mechanism comprises a mechanism adapted to tilt the upper mold assembly relative to the lower mold assembly, so that the mold assemblies converge toward the exit.
- 3. The caster of claim 2 wherein the first adjustment mechanism also comprises a mechanism adapted to apply a constant force to the upper mold assembly which tends to squeeze the mold assemblies together.
- 4. The caster of claim 1 wherein the first adjustment mechanism comprises a mechanism adapted to apply a constant force to the upper mold assembly which tends to squeeze the mold assemblies together.
- 5. The caster of claim 1 wherein the second adjustment mechanism is adapted to move both mold assemblies equal distances relative to each other in opposite directions substantially transverse to the direction of travel of the molten metal through the mold channel to adjust the width of the mold channel but maintain the molten metal centrally in the chain caster.
- 6. The caster of claim 1 wherein the mold channel extends over a length between an opening and an exit and wherein at least one of the mold assemblies comprises a plurality of mold blocks, each of which comprises:
at least one slot positioned near an end of the mold block; at least one leg slidably received in the slot and forming a part of the protrusion on a side of the mold channel; and at least one resilient biasing member interposed between a base of the slot and the leg to bias the leg against an opposing surface to maintain the width of the mold channel during a depth adjustment.
- 7. The caster of claim 6 wherein both mold assemblies comprise a plurality of the mold blocks and wherein the slots of each mold block of one of the mold assemblies are on the same side, opposite the side where the slots of the mold blocks of the other mold assembly are.
- 8. The caster of claim 6 wherein each mold block comprises a backup extension located adjacent its slot and outwardly from its leg and wherein the extension engages the leg to support it.
- 9. The caster of claim 6 wherein each mold assembly comprises interlocking mold blocks.
- 10. The caster of claim 7 wherein the mold blocks have internal cooling means to cool the mold blocks to solidify the metal or alloy in the mold channel.
- 11. The caster of claim 10 wherein the internal cooling means comprise supply holes and return holes which form paths for a fluid to flow through the mold blocks.
- 12. The caster of claim 11 wherein the supply holes and return holes are connected to fluid manifolds which connect the mold blocks to a fluid reservoir.
- 13. The caster of claim 12 wherein the supply holes and return holes are adjacent to the mold channel.
- 14. The caster of claim 13 wherein the supply holes are closer to the mold channel than the return holes.
- 15. The caster of claim 10 wherein external cooling means also cool the mold blocks to solidify the metal or alloy in the mold channel.
- 16. The caster of claim 7 wherein the mold blocks of both mold assemblies have internal cooling means which comprise supply holes and return holes that form paths for a fluid to flow through the mold blocks and wherein the supply holes and return holes of the mold blocks of both mold assemblies are adjacent to the mold channel and are connected to fluid manifolds which connect the mold blocks to a fluid reservoir.
- 17. The caster of claim 1 further comprising two endless belts, each surrounding an adjacent one of the mold assemblies and wherein each belt moves between its adjacent mold assembly and the mold channel to create a smooth mold channel which produces a cast product without fins.
- 18. The caster of claim 7 further comprising two endless belt assemblies, each surrounding an adjacent one of the mold assemblies and wherein each belt moves between its adjacent mold assembly and the mold channel to create a smooth mold channel which produces a cast product without fins.
- 19. The caster of claim 18 wherein the belts have widths equal to the width of the mold channel.
- 20. The caster of claim 18 wherein the belts have widths greater than the width of the mold channel to adjust the width of the mold channel without changing the belts.
- 21. The caster according to claim 18 further comprising a tensioning mechanism attached to each belt to tighten and hold the belt against its adjacent mold assembly.
- 22. The caster of claim 18 further comprising a coating of a heat resistant material on the belts acting as a mold release, non-wetting agent, and heat transfer moderator.
- 23. A method for continuously casting products in a chain caster having a mold channel which extends horizontally or up to 15 degrees downwardly between an opening and an exit and has a depth defined between a pair of endless chains forming an upper mold assembly and a lower mold assembly, the method comprising of steps of:
continuously introducing molten metal into the opening of the mold channel with a headbox and a tip; moving at least one of the mold assemblies relative to the other in a direction substantially transverse to a direction of travel of the molten metal through the mold channel to adjust the width of the mod channel; moving at least one of the mold assemblies relative to the other in another direction substantially transverse to the direction of travel of the molten metal through the mold channel to adjust the depth of the mold channel while maintaining a uniform casting pressure along the length of the mold channel, and translating each of the chains of the mold assemblies through a closed chain path.
- 24. The method of claim 23 further comprising the step of tilting the upper mold assembly relative to the lower mold assembly, so that the mold assemblies converge toward the exit.
- 25. The method of claim 24 wherein a constant force is applied to the upper mold assembly which tends to squeeze the mold assemblies together.
- 26. The method of claim 23 wherein a constant force is applied to the upper mold assembly which tends to squeeze the mold assemblies together.
- 27. The method of claim 23 further comprising the step of sliding both mold assemblies equal distances relative to each other in opposite directions substantially transverse to the direction of travel of the molten metal through the mold channel to adjust the width of the mold channel but maintain the molten metal centrally in the chain caster.
- 28. The method of claim 23 wherein the endless chain of each mold assembly has a endless belt about it and further comprising the step of translating each belt through a closed belt path covering the entire width of the mold channel outside of the closed chain path of its endless chain.
- 29. The method of claim 28 wherein each belt defines a portion of the mold channel and has a width greater than a width of the mold channel and further comprising the step of heating portions of each belt not in contact with the molten metal.
- 30. The method of claim 28 further comprising the step of tensioning each belt to tighten and hold the belt against its endless chain.
- 31. The method of claim 23 wherein the mold assemblies each comprise a plurality of mold blocks; wherein each mold block comprises:
at least one slot positioned near an end of the mold block; at least one leg slidably received in the slot and forming a part of the protrusion on a side of the mold channel, and at least one resilient biasing member interposed between a base of the slot and the leg to bias the leg against an opposing surface to maintain the width of the mold channel during a depth adjustment; and further comprising the steps of:
pressing the legs with the resilient biasing members in the slots on a side of the mold blocks of the upper mold assembly against opposing mold blocks of the lower mold assembly and; pressing the legs with the resilient biasing members in the slots on an opposite side of the mold blocks of the lower mold assembly against opposing mold blocks of the upper mold assembly.
- 32. The method of claim 31 also comprising the step of cooling the mold blocks internally to solidify the molten metal in the mold channel.
- 33. The method of claim 32 wherein the mold blocks are cooled by supply holes and return holes which form paths for a fluid to flow through the mold blocks.
- 34. The method of claim 33 wherein the supply holes and return holes are connected to fluid manifolds which connect the mold blocks to a fluid reservoir.
- 35. The method of claim 34 wherein the supply holes and return holes are adjacent to the mold channel.
- 36. The method of claim 35 wherein the supply holes are closer to the mold channel than the return holes.
- 37. A continuous non-vertical caster for casting a non-ferrous metal or an alloy thereof to a predetermined width and depth comprising:
a headbox; a tip; two opposed endless mold assemblies that can each travel along a closed path and that cooperate to define a mold channel between them, the mold channel having a feed opening and an exit and a casting region therebetween, and the metal or alloy, in a molten state, being able to move in the mold channel in a direction of travel between the feed opening and the exit, the mold channel having a depth that is defined between the two opposed mold assemblies, at least one of the mold assemblies having a plurality of mold blocks, the headbox and tip being positioned at the feed opening to supply the metal or alloy, in the molten state, from the headbox through the tip into the mold channel; a side dam on an opposite side of each mold assembly defining respective sides and a width of the mold channel between the side dams; adjusting means for changing the position of one of the endless mold assemblies relative to the other in at least one of two orthogonal directions transverse to the direction of travel to adjust any one of the width and the depth of the mold channel and thereby to adjust any one of the width and the depth of the metal or alloy in the molten state moving through the mold channel; and internal cooling means in the mold blocks to cool the mold blocks to solidify the metal or alloy in the mold channel, wherein the internal cooling means comprise supply holes and return holes which form paths for a fluid to flow through the mold blocks.
- 38. The caster of claim 37 wherein the supply holes and return holes are connected to fluid manifolds which connect the mold blocks to a fluid reservoir.
- 39. The caster of claim 38 wherein the supply holes and return holes are adjacent to the mold channel.
- 40. The caster of claim 39 wherein the supply holes are closer to the mold channel than the return holes.
- 41. The caster of claim 37 wherein both mold assemblies comprise mold blocks and have internal cooling means which comprise supply holes and return holes that form paths for a fluid to flow through the mold blocks.
- 42. The caster of claim 41 wherein the supply holes and return holes of the mold blocks of both mold assemblies are adjacent to the mold channel and are connected to fluid manifolds which connect the mold blocks to a fluid reservoir.
- 43. A method for continuous non-vertical casting of a non-ferrous metal or an alloy thereof to a predetermined width and depth wherein two opposed endless mold assemblies each having a plurality of mold blocks and traveling along a closed path cooperate to define a mold channel between them, the mold channel having a feed opening and an exit and a casting region therebetween and the metal or alloy in a molten state being able to move in the mold channel in a direction of travel between the feed opening and the exit, the method comprising the steps of:
melting the metal or alloy; introducing the metal or alloy in a molten state into the feed opening; translating the mold assemblies along closed paths along the direction of travel between them; cooling the mold blocks internally to solidify the metal or alloy in the mold channel; and moving the mold assemblies relative to one another in one of two orthogonal directions substantially transverse to the direction of travel to adjust any one of the width and the depth of the mold channel and thereby to adjust any one of the width and the depth of the metal or alloy in the molten state moving through the mold channel, and wherein the mold blocks are cooled by supply holes and return holes which form paths for a fluid to flow through the mold blocks.
- 44. The method of claim 43 wherein the supply holes and return holes are connected to fluid manifolds which connect the mold blocks to a fluid reservoir.
- 45. The method of claim 44 wherein the supply holes and return holes are adjacent to the mold channel.
- 46. The method of claim 45 wherein the supply holes are closer to the mold channel than the return holes.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] The current application claims priority from Reissue application Ser. No. 09/962,741, filed Sep. 25, 2001, which is a reissue of U.S. Pat. No. 5,979,538, issued Nov. 9, 1999 which claims priority of Provisional Application No. 60/006,689 filed Nov. 14, 1995.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60006689 |
Nov 1995 |
US |
Continuations (2)
|
Number |
Date |
Country |
Parent |
09962741 |
Sep 2001 |
US |
Child |
10410075 |
Apr 2003 |
US |
Parent |
09051750 |
Oct 1998 |
US |
Child |
09962741 |
Sep 2001 |
US |