Claims
- 1. An apparatus for viewing and analyzing the interior of a bath of molten metal during treatment thereof in a refractory-lined metallurgical treatment vessel having side walls, bottom and an open mouth at the top of the vessel, comprising a concentric double-pipe tuyere comprising an inner pipe for passage of a pressurized transparent fluid and an outer pipe surrounding the inner pipe and defining an elongated cylindrical annulus between the pipes for passage of a pressurized cooling fluid, an insulative refractory surrounding a lower portion of the tuyere, means for mounting the tuyere above the mouth of the vessel and vertically movably to position said lower portion of the tuyere into a molten metal bath contained in the vessel, means for pressurizing and passing the transparent fluid through the inner pipe, means for pressurizing and passing the cooling fluid through the annulus, a connection element juxtaposed to an opening in the inner pipe and substantially aligned with a centerline of a portion of the inner pipe extending into the vessel, a sight glass assembly disposed in alignment with the connection element and allowing direct visual access to the interior of the molten metal bath, and an optical sensor connected to the sight glass assembly whereby light emanating from the interior of the molten metal bath can be analyzed to determine properties of the metal bath.
- 2. Apparatus according to claim 1, wherein the optical sensor is selected from the group consisting of a photometer, a spectrometer, a camera and combinations thereof.
- 3. Apparatus according to claim 2, wherein the inner pipe is connected to a source of transparent fluid selected from the group consisting of nitrogen, oxygen, carbon dioxide and argon, and the outer pipe is connected to a source of a cooling fluid selected from the group consisting of nitrogen, carbon dioxide, argon and methane.
- 4. Molten metal treatment apparatus comprising a treatment vessel having sidewalls, a bottom and an open mouth top, a concentric pipe tuyere suspended above the mouth of the vessel and vertically movable so that a lower, insulated portion of the tuyere may extend below the surface of a molten metal bath contained in the vessel, a sight glass assembly connected to an inner pipe of the tuyere and providing visual access to the interior of the inner pipe and to the interior of the molten metal bath, and an optical sensor connected to the sight glass assembly for analyzing light generated by the molten metal and determining physical properties thereof.
- 5. Apparatus according to claim 4, wherein the optical sensor is selected from the group consisting of a photometer, a spectrometer, a camera and combinations thereof.
- 6. Apparatus according to claim 5, further comprising a connection element at a top end of the tuyere, and a fiber optic light guide connected at one end to the sight glass assembly and, at another, remotely disposed, end, to the optical sensor.
- 7. Apparatus according to claim 6, further comprising means to pressurize and pass a transparent fluid through the inner pipe of the tuyere and to pressurize and pass a cooling fluid through an annulus formed between the inner pipe and an outer pipe of the tuyere.
- 8. Apparatus according to claim 7, wherein the inner pipe is connected to a source of transparent fluid selected from the group consisting of nitrogen, oxygen, carbon dioxide and argon, and the cooling fluid is selected from the group consisting of nitrogen, carbon dioxide, argon and methane.
- 9. Apparatus according to claim 8, further comprising a cooling fluid supply pipe, a transparent fluid supply pipe, a housing in which the sight glass lens assembly is mounted, enclosing an upper end of the tuyere, and having passages connected, respectively, to the cooling fluid supply pipe and to the transparent fluid supply pipe for introducing cooling fluid into an annulus between the inner and outer pipes of the tuyere and transparent fluid into the interior of the inner pipe of the tuyere.
- 10. A method of directly visually observing and analyzing the interior of a molten metal bath during treatment in a metallurgical treatment vessel, comprising extending a concentric pipe tuyere into the vessel and positioning a lower, insulated portion of the tuyere at a location below the surface of the molten metal bath; providing an opening in an inner pipe of the tuyere, said opening being aligned with a centerline of the tuyere and providing direct visual access to the interior of the molten metal bath, connecting to the opening in the inner pipe a sight glass and an optical sensor so that light generated by the molten metal in said bath can pass through the opening in the inner pipe to the sight glass and the optical sensor, and, with use of the optical sensor, analyzing the light to determine properties of the molten metal in said bath.
- 11. A method according to claim 10, further comprising pressurizing a transparent fluid and passing the pressurized transparent fluid through the inner pipe of the tuyere, and pressurizing a cooling fluid and passing the pressurized cooling fluid through an annulus formed between the inner pipe and an outer pipe of the tuyere.
- 12. A method according to claim 11, wherein the transparent fluid is selected from the group consisting of nitrogen, oxygen, carbon dioxide and argon, and the cooling fluid is selected from the group consisting of nitrogen, carbon dioxide, argon and methane.
- 13. A method according to claim 12, wherein the treatment of the molten metal is decarbonization of steel, and selecting oxygen as at least a component of the transparent fluid in order to generate heat by combustion with carbon thereby keeping the tip of the tuyere free of frozen metal and slag.
- 14. A method according to claim 13, comprising selecting the optical sensor from the group consisting of a photometer, a spectrometer, a camera, and combinations thereof.
- 15. A method according to any one of claim 10-14, comprising suspending the tuyere above an open mouth of the vessel and lowering the tuyere substantially vertically through the mouth of the vessel and below the surface of and directly into the molten metal.
RELATED APPLICATION
This application is a continuation-in-part of application Ser. No. 08/733,626, filed Oct. 17, 1996, now U.S. Pat. No. 5,830,407.
US Referenced Citations (15)
Non-Patent Literature Citations (2)
Entry |
"How Berry Metals Helps Improve BOF Operations", Industry Net Report, Sep. 1996, and "Sensing Temperatures During Steelmaking," 33 Metal Producing, Sep. 1996, p. 30. |
"Direct Analysis in Steelmaking Converters Using Laser-Induced Emission Spectrometry," Krupp Forschungsinstitut, Essen Germany. Dec. 1996. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
733626 |
Oct 1996 |
|