Claims
- 1. A molten metal injector system, comprising:a holder furnace for containing a supply of molten metal having a metal oxide film surface; a casting mold supported above the holder furnace and having a bottom side facing the holder furnace, with the mold defining a mold cavity for receiving the molten metal from the holder furnace; and a molten metal injector supported from the bottom side of the mold and projecting into the holder furnace, with the injector in fluid communication with the mold cavity and including a cylinder defining a piston cavity and a piston positioned within the piston cavity for pumping the molten metal upward from the holder furnace and injecting the molten metal directly into the mold cavity, wherein the cylinder further includes a molten metal intake for receiving the molten metal into the piston cavity, wherein the molten metal intake is located to be below the metal oxide film surface of the molten metal when the holder furnace contains the molten metal, wherein the piston is movable through a downstroke and a return stroke, and wherein the molten metal intake is a gap formed between the piston and an open end of the cylinder during the downstroke of the piston.
- 2. The injector system of claim 1, wherein the molten metal intake is located sufficiently below the metal oxide film surface when the holder furnace contains the molten metal such that the metal oxide film surface remains substantially undisturbed during pumping of the molten metal from the holder furnace to the mold cavity.
- 3. The injector system of claim 1, wherein the piston is oriented substantially perpendicular to the bottom side of the mold, and wherein the injector further includes a lifting mechanism positioned above the metal oxide film surface when the holder furnace contains the molten metal and operatively connected to the piston for moving the piston through the downstroke and the return stroke.
- 4. The injector system of claim 3, wherein the lifting mechanism is a rack and pinion.
- 5. The injector system of claim 1, wherein the intake is configured to open during the downstroke of the piston and permit inflow of the molten metal into the piston cavity when the holder furnace contains the molten metal, and wherein the piston is configured during the return stroke to pump the molten metal received in the piston cavity upward to the casting mold and inject the molten metal into the mold cavity under pressure.
- 6. The injector system of claim 1, wherein the open end of the cylinder is enclosed by a molten metal filter for filtering the molten metal flowing into the piston cavity through the gap.
- 7. The injector system of claim 1, wherein the piston and the cylinder are made of a material compatible with molten aluminum alloys.
- 8. The injector system of claim 1, wherein the piston cavity is in fluid communication with the mold cavity through a fill tube connected to the fill conduit and passing through the bottom side of the mold.
- 9. The injector system of claim 8, further including a source of inert gas in fluid communication with the fill tube such that during the downstroke of the piston, the piston cavity is filled with inert gas flowing down the fill tube and fill conduit.
- 10. An injector for injecting molten metal into a mold cavity of a casting mold, comprising:a cylinder for at least partially submerging in a supply of molten metal, with the cylinder defining a piston cavity, and with the cylinder having an open end; a fill conduit in fluid communication with the piston cavity; a piston positioned within the piston cavity and movable through a downstroke and a return stroke, with the piston configured to form a gap with the open end of the cylinder during a downstroke of the piston; and a lifting mechanism fixed to the cylinder and operatively connected to the piston for moving the piston through the downstroke and the return stroke, wherein the gap is configured to permit inflow of molten metal into the piston cavity during the downstroke of the piston when the cylinder and piston are at least partially submerged in the supply of molten metal, and wherein the piston is configured during the return stroke to pump the molten metal received in the piston cavity into the fill conduit for injection into the mold cavity when the cylinder and piston are at least partially submerged in the supply of molten metal.
- 11. The injector of claim 10, further including a molten metal filter enclosing the open end of the cylinder for filtering the molten metal flowing into the piston cavity through the gap.
- 12. The injector of claim 11 wherein the piston and cylinder are made of a material compatible with molten aluminum alloys.
- 13. The injector of claim 10 wherein the lifting mechanism is a rack and pinion.
CROSS REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Application Serial Nos. 60/142,218, filed Jul. 2, 1999, and entitled “Molten Metal Injector System” and 60/142,315, filed Jul. 2, 1999, and entitled “Valveless Molten Metal Injector System”.
STATEMENT REGARDING FEDERALLY FUNDED RESEARCH
The subject matter of this application was made with United States government support under Contract No. 86X-SU545C awarded by the Department of Energy. The United States government has certain rights to this invention.
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Provisional Applications (2)
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Number |
Date |
Country |
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60/142218 |
Jul 1999 |
US |
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60/142315 |
Jul 1999 |
US |