Claims
- 1. For use with a sequential sliding gate valve having more than two plates and having a stationary plate, a slide gate, and a tube holder, and yieldable pressure means urging the plate, gate, and holder in face to face contact,
- a tube holder having an upstream and downstream end;
- a tube holder sealing plate at the upstream end of the tube holder proportioned for a sliding engagement with the slide gate;
- means defining a teeming orifice in such tube holder;
- said upstream sealing plate end being asymmetrical with respect to the orifice and having an entry and exit portion;
- said tube holder having a dependent tube engaging portion beneath the tube holder sealing plate portion;
- said tube holder sealing plate having an extended undercut entrance and sealing plate support portion in the direction of the entrance of the slide gate a distance whereby the slide gate, when inserted, can overlap the entrance support portion of the sealing plate of the tube holder;
- and means downstream of the tube holder sealing plate portion comprising an undercut for receiving the upstream pressure of the yieldable pressure means.
- 2. For use with a sliding gate valve having a stationary plate, a slide gate, and a tube holder,
- a stationary plate;
- means defining a teeming orifice in such stationary plate;
- said stationary plate being asymmetrical with respect to the orifice and having an entry and exit portion;
- said exit portion being of greater dimension from the center of the orifice than said entrance portion;
- said exit portion having a length of at least 1.5 diameters of the slide gate orifice, whereby shut off is accomplished when the slide gate extends its entrance portion over the orifice of the stationary plate and permits the containment of turbulence created by gate change at the point of shut off in the area downstream of the extended exit portion of the stationary plate.
- 3. For use with a sequential sliding gate valve having a stationary plate, a slide gate, and a tube holder,
- a slide gate;
- means defining a teeming orifice in such slide gate;
- said slide gate being asymmetrical with respect to the orifice and having an entry and exit portion;
- said slide gate having a stationary plate face and a tube holder face;
- undercuts of asymmetrical depth, one longer and one shorter, defining the tube holder face for receiving different sized opposed loading rails at the leading and trailing portion of the slide gate loading section;
- said longer undercut being oriented for positioning at the entrance side of the slide gate; whereby the long undercut at the entrance portion and the asymmetrical short undercut at the exit portion of the incoming slide gate permits an overlap of the entrance end portion of the tube holder sealing plate upstream portion prior to the insertion of a subsequent slide gate or tube holder or a combination of both.
- 4. For use with a three plate sliding gate valve having a stationary plate at its upstream portion, a sliding gate in a mid portion, and a tube holder downstream of the sliding gate in which all three of the plates, stationary plate, slide gate, and tube holder are essentially refractories in pressure face to face relationship there are:
- a stationary plate,
- a tube holder,
- a slide gate for positioning in pressure relationship between the stationary plate and tube holder,
- each of said stationary plate and tube holder having a modified corner portion which mates with a modified receiving portion of the valve to thereby preclude such refractory plates being inserted in a reverse or upside down fashion.
- 5. For use with a sliding gate valve having three refractory insert plates variety in which each plate is essentially a refractory member in face to face contact with the other, and the sliding gate portion is the moving portion whereas the stationary plate and tube holder are in axial alignment wherein:
- each of said refractory insert members has a sliding face and a teeming orifice, and each of said sliding faces is asymmetrical with respect to its orifice, whereby overlapping relationships are achieved when a second sliding gate is positioned for entry into the valve system by its overlapping the entrance end asymmetrical face of the tube holder and not being received by the stationary plate at the same time.
- 6. A refractory insert for use in a sliding gate valve having more than two plates, said refractory comprising, in combination,
- an essentially rectilinear flat member having one face treated for sliding relationship in pressure with a slide gate,
- the opposite face being proportioned for intimate contact with a well block nozzle,
- said refractory having four corners,
- an orifice in a central portion of said refractory,
- said orifice being offset so that when in position in a sliding gate valve the longest distance between the orifice and an end is in the direction of exit of a sliding gate.
- 7. The refractory of claim 6 above,
- said refractory having at least one corner portion with a configuration different than at least one other corner portion, whereby the difference will eliminate the possibility of inserting the refractory block in a disoriented configuration in a sliding gate valve.
- 8. A refractory insert for use in a sliding gate valve in which there are load rails and feed rails defining respective feed directions and load directions,
- said refractory having one face proportioned for sliding pressure fit with a stationary plate,
- a parallel face to the face just recited proportioned for sliding relationship with a tube holder,
- said refractory having undercut portions in the direction of load which are asymmetrical with one being deeper than the other,
- and feed rails on the opposite perpendicular edges being essentially parallel and mirror images each of the other running in the feed direction.
- 9. A refractory for use in a sliding gate valve, which valve has more than two plates, a tube holder comprising, in combination,
- a flat slab portion having an orifice at a mid-portion thereof,
- said flat portion extending asymmetrically beyond the orifice in the direction of the loading of the slide gate,
- and a tube holder depending cylindrical portion having an exterior configuration to accommodate the securement of the same to a tube for submerged pouring.
- 10. A refractory for use in a sequential sliding gate valve having more than two plates, and having a stationary plate and a slide gate as a unitary tube and holder comprising, in combination,
- a tube with a central orifice,
- a flat slab portion having an orifice at a mid-portion thereof in aligned open communication with the tube orifice,
- said flat slab portion extending asymmetrically beyond the orifice in the direction of the entrance of the slide gage,
- said flat slab having four corners,
- one of said corners differing from the others to thereby key into the valve- to prohibit reversed seating within the valve.
- 11. The method of operating a sliding gate valve having more than two plates in which such plates are held within a frame and the plates all have alignable teeming orifices and which plates are stationary facing a vessel, sliding and a tube holder together with the stationary plate sandwiching the sliding gate for movement therebetween comprising one and including driving means for moving the sliding plate in and out of position comprising the steps of:
- providing the frame with opposed feed rails for the slide plate and undercuts on the ends of the slide plates in which matching undercuts and rails are of equal but different widths from the opposite undercuts and guide rails,
- and providing the stationary plate and tube holder with key corners of different configuration than the other corners and providing matching retaining means within the frame,
- and inserting the three refractories into the frame in matching relationship with the guide rails and the retaining means.
- 12. A sequential sliding gate valve having more than two plates and with a stationary plate, side gate, and tube holder comprising:
- a frame,
- means for securing the stationary plate, slide gate and tube holder within said frame,
- each plate being formed of a refractory and having an orifice for teeming molten metal and a sliding face,
- each of said sliding faces being asymmetrical with respect to its orifice,
- and means for drivingly positioning the slide gate intermediate the stationary plate and tube holder, whereby the asymmetrical configuration of the plates insures proper orientation with the frame.
- 13. In the sliding gate three plate valve of claim 12,
- load rails for loading the slide plate,
- one of said rails being wider than the other,
- and said sliding plate having wider and narrower undercuts to ride on said loading rails with the undercuts proportioned to engage the rails with wide to wider and narrow to narrower matching at the undercut/rail interface.
- 14. For use with the sequential type sliding gate valve having a nozzle plate, a sliding gate, and a tube holder,
- a nozzle plate;
- said nozzle plate having a plate portion and a nozzle portion;
- means defining a teeming orifice in such nozzle plate;
- said nozzle plate being asymmetrical with respect to the orifice and having an entry and exit portion;
- said exit portion being of greater dimension from the center of the orifice than said entrance portion;
- said exit portion having a length of at least 1.5 diameters of the slide gate orifice, whereby shut off is accomplished when the slide gate extends its entrance portion over the orifice of the nozzle plate and permits the containment of turbulence created by gate change at the point of shut off in the area downstream of the extended exit portion of the nozzle plate.
- 15. For use with a sequential type sliding gate valve having more than two plates, and a stationary plate, a slide gate, and entry and exit portion and a tube holder assembly,
- a tube holder assembly having an upstream portion and a downstream portion;
- said tube holder assembly having a plate portion upstream and a pour tube portion downstream;
- a tube holder assembly sealing plate at the upstream portion of the tube holder assembly proportioned for a sliding engagement with the slide gate;
- means defining a teeming orifice in such tube holder assembly;
- said upstream sealing plate portion being asymmetrical with respect to the orifice and having an entry and exit portion;
- said tube holder assembly having a dependent downstream pour tube portion beneath the tube holder sealing plate portion;
- said tube holder assembly sealing plate having an extended undercut entrance and sealing plate portion in the direction of the entrance of the slide gate a distance whereby the incoming slide gate can overlap the entrance portion of the sealing plate of the tube holder assembly;
- and means downstream of the tube holder assembly sealing plate portion comprising an undercut for receiving the upstream pressure of yieldable pressure means.
- 16. A pour tube for use with a three plate sliding gate valve having an entry and exit portion to receive a slide gate to teem molten metal from a vessel to transfer to another vessel comprising,
- an elongate refractory tubular body having an upstream and downstream portion and having a teeming orifice and terminating with a downstream end having means for discharging molten metal,
- a refractory head at the upstream end of the tube,
- said head having an upstream flat portion extending in a plane substantially perpendicular to the central axis of the tube,
- said first portion being essentially rectangular with end portions defined at the ends of the long axis and sides perpendicular to the ends,
- undercuts underneath the ends and sides with rail members under the sides,
- said flat portion extending farther from the axis of the tube towards one end than the other end thereby defining an extended ready slide gate support when positioned in a valve with said extending portion pointed to the valve slide gate entry portion.
- 17. The pour tube of claim 16, in which,
- said flat portions have rounded corners,
- at least one such corner having a key configuration different than at least one other corner, whereby said tube head may be inserted into a sliding gate valve correctly oriented by the key corner and the long extended flat portion is correspondingly oriented to support and incoming slide gate.
- 18. The tube holder of claim 1, wherein,
- said sealing plate sidewalls are metal encased.
- 19. The stationary plate of claim 2, wherein,
- said plate sidewalls are metal encased.
- 20. The slide gate of claim 3, wherein,
- said slide gate sidewalls are metal encased.
- 21. The stationary plate of claim 4, wherein said plate side walls are encased in a frame.
- 22. The refractory inserts of claim 5, wherein,
- each insert has side walls which are encased in a frame.
- 23. The nozzle plate of claim 14, wherein,
- the sidewalls of the nozzle and plate portion are encased in a frame.
- 24. A method of preventing reversibility of a slide gate having offset ledges and a teeming orifice in a valve which is loaded with a slide gate having loaded rails and feed rails, offset loading edges, and a loading portion for loading said slide gate into the valve perpendicular to the axis of the feed rails and parallel to the axis of throttling comprising the steps of:
- forming asymmetrical ledges in parallel relationship to the underneath portion of a slide plate in the direction of loading,
- positioning the loading rails in the valve to conform to the offset ledges in the slide plate in the direction of desired loading,
- providing means for closing the loading portions of the valve opposite the portion in which loading is desired,
- proportioning the loading rails for engaging the opposite underneath portions of the slide gate in perpendicular relationship to the feed rails,
- and thereafter loading the slide gate into the valve.
- 25. In the method of claim 24 above,
- offsetting the orifice in said slide plate along the direction of loading and throttling.
- 26. In the method of claim 25 above,
- conforming the feed rails for feed and providing ledges for feed perpendicular to the direction of throttling which rails and ledges are in symmetrical relationship.
- 27. In the method of claim 26 above,
- conforming the rails for feed and the ledges for feed of a lesser width than the wider of the two rails for loading and ledges for loading which are parallel to the direction of loading and throttling.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of application Ser. No. 319,410 filed Mar. 3, 1989 entitled "Non-Reversible Sliding Gate".
US Referenced Citations (6)
Continuation in Parts (1)
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Number |
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319410 |
Mar 1989 |
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