Metal injection molding furnace heating element adjustment apparatus
An adjustment apparatus for independent and selective positioning of resistance heating elements (28) in a pressurized metal injection-molding holding furnace (10) having a reservoir (16) for holding molten metal and feed tubes (20) for delivery of molten metal to injection molds, said apparatus including a plurality of movable elongate electrical resistance heating elements (28) disposed horizontally above the reservoir (16), each of the heating elements (28) supported at each end in a movable heating element box (32). Each of the heating elements (28) has an unshielded portion (34) for the introduction of heat into the reservoir (16). Heating element adjustment means (40) selectively and independently move each of the heating elements (28) relative to one another. The adjustment means (40) may take a number of forms, including rack and pinion assemblies, timing chain and pinion gear assemblies, and screw drive assemblies, operatively connected to the heating element boxes (32).
1. Technical Field
The present invention relates generally to metallurgical furnaces, and more particularly to an adjustment mechanism for selectively positioning resistance heating elements in an electric metal injection-molding holding furnace which uses electrical resistance elements to radiate thermal energy to aluminum in a heating chamber.
2. Background Art
For several decades it has been known to employ electrically energized resistance elements in metallurgical furnaces to melt various metals and alloys, particularly nonferrous metals such as aluminum and zinc. Silicon carbide heating elements (glow bars) have been found to be especially well suited to melting aluminum, both indirectly through the heating of the furnace atmosphere and directly by contact with the elements. Silicon carbide glow bars are the preferred instrument for providing heat to the molten metal reservoir of a pressurized injection molding holding furnace.
However, glow bars, which are cylindrical to maximize surface area for transferring heat to the gaseous or metallic medium, are generally stationary because they are cradled in a fixed rack within the furnace. While this provides a measure of stability it also necessitates that the heating elements be cooled, removed, and repositioned for any changeovers to a new mold or when feed tubes (riser tubes) for injecting molds must be repositioned.
Accordingly, there exists a need for a method and apparatus adapted for quick and easy repositioning of furnace glow bars.
DISCLOSURE OF INVENTIONThe heating element adjustment device of the present invention provides an adjustment mechanism for rapid selective positioning of electrical resistance heating elements in electric pressurized metal injection molding furnaces, such as are employed in metal injection mold casting processes involving upward filling. A suitable furnace for employing the present invention is preferably cuboid and includes a steel case and a lined reservoir for molten metal. Molten metal, which is typically of a non-ferrous nature, is pumped upwardly through feed tubes under gas pressure. When operating, the furnace is hermetically sealed, the seal being maintained in part by a top-side pressure tight lid. A sealed panel integral with the lid includes one or more apertures through which feed tubes pass into the furnace reservoir.
Resistance heating elements are inserted through a side heating element door or doors and are disposed horizontally in either a heating element box or a set of paired boxes positioned on opposite sides of the furnace. A portion of each element is left uninsulated or unshielded so that heat can be radiated into the reservoir. The number of heating elements is a function of both the power supply system and the demands of the molds employed in the casting process.
The express purpose of the present invention is to facilitate the rapid, safe, and easy repositioning of silicon carbide (or other) resistance heating elements so that production is not slowed or impeded during mold changeovers and feed tube position changes when dies are changed or when shifting to a succeeding stage in the molding process. Further, the heating element adjustment device of the present invention enables operators to carefully control the flow and solidification of molten metal as it is delivered via feed tubes to an injection die by precisely positioning the heating elements in optimal locations relative to the feed tubes and to one another. Accordingly, the resistance heating element adjustment device of the present invention comprises means for selectively and independently positioning each one of a plurality of heating elements relative to one another and to the feed tubes employed in a casting process in any of an almost unlimited number of configurations.
Three preferred means of accomplishing such positioning are contemplated, though several others are possible. In a first preferred embodiment, the heating elements are moved and positioned in a rack and pinion system, each element having a dedicated rack and pinion gear assembly. In a second preferred embodiment, the heating elements are moved and positioned by a timing chain drive assembly which includes one timing chain or a parallel set of timing chains for each heating element, each chain in mesh communication with a pinion gear. In a third preferred embodiment, a screw drive assembly is employed to move and position the heating elements.
BRIEF DESCRIPTION OF THE DRAWINGSThe present invention is further described in detail in reference to the accompanying drawings, in which:
Referring to
Resistance heating elements 28a, 28b, and 28c, preferably fabricated of silicon carbide (and commonly referred to as glow bars), are generally installed through one or more side heating element doors 30a, 30b, of the furnace. All of the heating elements are generally elongate and are disposed horizontally in a heating element box, 32a, 32b, 32c, leaving a portion 34 of the respective heating elements unshielded for the introduction of heat into the reservoir. As a general rule, the number of heating elements corresponds to the power supply system connected to the elements, thus multiples of three are most common for use with three-phase electric supply systems (not shown). The heating element door 30 includes a gasket 36 as part of the hermetically sealed, pressurized system.
In a first preferred embodiment, illustrated in
In a third preferred embodiment, illustrated in
In another aspect, the present invention may be characterized as an improved metal injection-molding holding furnace, wherein the improvement comprises the inclusion of the above-described adjustment mechanism for selectively positioning resistance heating elements that radiate thermal energy to aluminum in the furnace heating chamber.
In yet another aspect, the present invention may be characterized as a method of independently and selectively moving and positioning a plurality of electric furnace resistance heating elements by providing and employing the above-described adjustment mechanism.
While this invention has been described in connection with preferred embodiments thereof, it is obvious that modifications and changes therein may be made by those skilled in the art to which it pertains without departing from the spirit and scope of the invention. Accordingly, the scope of this invention is to be limited only by the appended claims.
Claims
1. An improved injection-molding holding furnace having an adjustment apparatus for independent and selective positioning of resistance heating elements, said furnace comprising:
- a steel case (12) having a liner (14) encasing a reservoir (16) for holding molten metal (18), said furnace being hermetically sealed and having a pressure-tight lid (22) at its top having at least one aperture (26) for the insertion of at least one feed tube (20) which extend(s) downward through said lid and into said furnace reservoir (16), and at least one heating element access door (30);
- a plurality of elongate electrical resistance heating elements (28) installed through said access door (30), disposed horizontally above said reservoir (16), each of said heating elements supported at each end in a corresponding movable heating element box (32), each of said heating elements having an unshielded portion (34) for the introduction of heat into said reservoir; and
- adjustment means connected to said heating element boxes for independent and selective positioning of said resistance heating elements.
2. The improved injection-molding holding furnace of claim 1, wherein said heating elements are elongate.
3. The improved injection-molding holding furnace of claim 1, wherein said adjustment means comprises a plurality of rack and pinion gear sets, one set each dedicated to one heating element of said plurality of said heating elements.
4. The improved injection-molding holding furnace of claim 3, wherein said rack and pinion gear sets are parallel.
5. The improved injection-molding holding furnace of claim 4, wherein said rack and pinion gear sets are vertically stacked and further including a pinion gear assembly housing (40).
6. The improved injection-molding holding furnace of claim 5, wherein said vertically stacked pinion gear sets include a middle rack set (44a), a lower rack set (44b), and an upper rack set (44c), and said furnace has three heating elements and three sets of heating element boxes, including proximate heating element boxes (32a) most proximate said pinion gear assembly housing and connected to said middle rack set (44a), and distal heating element boxes (32b, 32c), coupled to said upper and lower rack sets, respectively.
7. The improved injection-molding holding furnace of claim 5, wherein each member of said pinion gear sets is positioned on opposite sides of said furnace, and each rack and pinion set is coupled at one end to one of said heating element boxes.
8. The improved injection-molding holding furnace of claim 5, further including synchronizing means to provide synchronous movement of member of said rack and pinion sets.
9. The improved injection-molding holding furnace of claim 8, wherein said synchronizing means comprises timing shafts (46) disposed between each member of each set of rack and pinion gear sets.
10. The improved injection-molding holding furnace of claim 5, further including tuning means for fine-tuning the position and relationship of said heating elements.
11. The improved injection-molding holding furnace of claim 10, wherein said tuning means comprises an adjustment shaft (50).
12. The improved injection-molding holding furnace of claim 1, wherein said adjustment means comprises a timing chain drive assembly having parallel timing chains (60, 62, 64), each of said chains in mesh communication with a corresponding pinion gear (68,70, 66) and connected to one of said heating element boxes, each of said timing chains dedicated to actuating the movement of a respective heating element.
13. The improved injection-molding holding furnace of claim 12, further including a timing chain housing (80).
14. The improved injection-molding holding furnace of claim 1, wherein said adjustment means comprises a screw drive assembly (90) having a plurality of acme screw and worm gear combinations, each of said combinations operatively connected to one of said heating elements.
15. The improved injection-molding holding furnace of claim 1, further including a sealed panel (24) affixed to said pressure-tight lid, said sealed panel having apertures through which said feed tubes extend.
16. An adjustment apparatus for independent and selective positioning of resistance heating elements in a pressurized metal injection-molding holding furnace having a reservoir for holding molten metal, a top having at least one aperture for the insertion of at least one feed tube which extends downward through said top and into the reservoir, and at least one heating element access door, said adjustment apparatus comprising:
- a plurality of movable elongate electrical resistance heating elements installed through the access door and disposed horizontally above the reservoir, each of said heating elements supported at each end in a movable heating element box, each of said heating elements having an unshielded portion for the introduction of heat into the reservoir; and
- heating element adjustment means for selectively and independently moving each of said heating elements relative to one another.
17. The adjustment apparatus of claim 16, wherein said heating element adjustment means comprises a plurality of rack and pinion gear sets, one set each dedicated to one of said plurality of said heating elements.
18. The adjustment apparatus of claim 17 wherein said rack and pinion gear sets are parallel.
19. The adjustment apparatus of claim 18, wherein said rack and pinion gear sets are vertically stacked.
20. The adjustment apparatus of claim 19, wherein said vertically stacked pinion gear sets include a middle rack set (44a), a lower rack set (44b), and an upper rack set (44c), and wherein said adjustment apparatus further includes three sets of heating element boxes, including proximate heating element boxes (32a) most proximate the pinion gears of said rack and pinion gear sets and connected to said middle rack set (44a), and distal heating element boxes (32b, 32c), coupled to said upper and lower rack sets, respectively.
21. The adjustment apparatus of claim 19, wherein each member of said pinion gear sets is positioned on opposite sides of the injection-molding holding furnace, and each rack and pinion set is coupled at one end to one of said heating element boxes.
22. The adjustment apparatus of claim 19, further including synchronizing means to provide synchronous movement of member of said rack and pinion sets.
23. The adjustment apparatus of claim 22, wherein said synchronizing means comprises timing shafts disposed between each member of each set of rack and pinion gear sets.
24. The adjustment apparatus of claim 17, further including tuning means for fine-tuning the position and relationship of said heating elements.
25. The adjustment apparatus of claim 24, wherein said tuning means comprises an adjustment shaft.
26. The adjustment apparatus of claim 16, wherein said adjustment means comprises a timing chain drive assembly having parallel timing chains, each of said chains in mesh communication with a corresponding pinion gear and connected to one of said heating element boxes, each of said timing chains dedicated to actuating the movement of a respective heating element.
27. The adjustment apparatus of 26, further including a timing chain housing.
28. The adjustment apparatus of claim 17, wherein said adjustment means comprises a screw drive assembly having a plurality of acme screw and worm gear combinations, each of said combinations operatively connected to one of said heating elements.
29. A method of selectively and independently moving electrical resistance heating elements in an injection-molding holding furnace, said method comprising the steps of:
- providing a furnace having a steel case and an interior liner encasing a reservoir for holding molten metal, the furnace being hermetically sealed and having a pressure-tight lid at its top having at least one aperture for the insertion of at least one feed tube which extend(s) downward through the lid and into the furnace reservoir, at least one heating element access door, and at least one pair of movable heating element boxes for cradling electrical resistance heating elements;
- providing a plurality of elongate electrical resistance heating elements and installing the heating elements through the access door such that the elements are disposed horizontally above the reservoir and are supported at each end in a corresponding movable heating element box; and
- providing adjustment means connected to the heating element boxes for independent and selective positioning of the resistance heating elements.
Type: Application
Filed: Feb 26, 2002
Publication Date: Jun 16, 2005
Inventor: Kenneth Clark (Santa Rosa, CA)
Application Number: 10/505,301