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1. Field of the Invention
The present invention relates to the manufacturing of rupture disks. More particularly, the present invention relates to an improved method of manufacturing a rupture disk that has a concave convex central disk portion surrounded by a planar peripheral skirt, wherein the disk is rotated about a central disk axis, and wherein a wire electric discharge machine forms a score or cut that extends a partial distance through the outer surface of the disk concave convex portion. The score predictably contributes to disk failure when the rupture disk is subjected to a design pressure value.
2. General Background of the Invention
Rupture disks are used in a variety of chemical process and manufacturing applications. The Oklahoma Safety Equipment Corporation website (www.oseco.com) provides many rupture disk products that are available to satisfy numerous applications.
In the past, rupture disks have been scored in hydraulic presses using very precisely machined and hardened tooling and hardened sine bars to control the score depth. Changes in the profile of the disk or the geometry of the score necessitate the design and manufacture of new score blades and anvils.
Scoring with hard tooling work hardens the disk material often requiring a post score anneal or stress relief. Worn or damaged tooling must be rebuilt and replaced. Hard materials are especially prone to damaging score tooling. The need to heat treat and harden tooling makes it difficult to manufacture in large sizes as the heat treatment often distorts the tooling beyond acceptable tolerances.
The method of the present invention offers several advantages over previous methods of manufacturing rupture disks including previous methods of scoring rupture disks.
The new method of the present invention includes rotating a rupture disk blank and electrical discharge machining cutting wire relative to one another while moving the cutting wire toward the axis of the disk and while maintaining the wire in a selected position (e.g. parallel to the disk flange). The relative rotation of the disk and wire and the movement of the wire toward the disk can be precisely controlled by a motion system of an electrical discharge machining apparatus or “EDM” machine. The objective is to cut a precise “score” part way through the disk thickness. The “score” can be on the convex side of the dome. The score can be near the transition from the dome to the flange. The score extends less than 360 degrees circumferentially in a generally “c” shaped pattern. This score will create a pattern of weakness so the disk will open in either the forward or the reverse buckling direction. Patterns other than a “c” shaped pattern could be cut as well.
The score tool is electrical discharge machining or “EDM” wire, which is constantly renewed. Changes in score depth or shape can be achieved by machine programming. Standard EDM equipment with a controlled rotary table could be used to cut or score multiple disk sizes. Tooling to hold the disk in the rotary table would be developed for each disk size, however the same tooling could be used for all thicknesses and disk materials.
The present invention includes a method of constructing a rupture disk. The method of the present invention includes providing a disk blank having a peripheral flange and a concave convex portion that is surrounded by the peripheral flange, rotating the disk blank upon a turntable, scoring the surface of the concave convex portion with a wire of a wire electrical discharging machine, and wherein the wire is renewed as the score is formed.
In one embodiment, the wire can be between about 0.004 and 0.0012 inches in diameter.
In one embodiment, the wire can be about 0.0010 inches in diameter.
In one embodiment, the wire can be positioned generally parallel to a plane defined by the peripheral skirt.
In one embodiment, the score formed can have a cross section that is asymmetrical in transverse cross section.
In one embodiment, the score formed can have surfaces that are of different curvatures in transverse cross section.
In one embodiment, the score formed can have a generally flat surface.
In one embodiment, the wire can be positioned along a line that forms an acute angle with the surface of the disk blank being scored.
In one embodiment, the disk blank can have a thickness of between 0.003 and 0.125 inches.
In one embodiment, the disk blank can have a thickness of between about 0.003 and 0.375 inches.
In one embodiment, the distance between the wire and the peripheral flange can be between about 0.020 and 2.0 inches.
In one embodiment, a convex surface of the disk blank can be scored.
In one embodiment, the disk blank has a central axis and wherein the score can extend less than 360 degrees around the disk blank central axis.
In one embodiment, rotation of the turntable can be controlled by the wire electrical discharge machine.
In one embodiment, movement of the wire can be controlled by the wire electrical discharge machine.
The present invention includes a method of constructing a rupture disk. The method of the present invention includes providing a disk blank having a central axis, a peripheral flange and a concave convex portion that is surrounded by the peripheral flange, rotating the disk blank and a cutting wire relative to each other, scoring the surface of the concave convex portion with the wire, wherein the wire is an electrical discharging machine wire, and wherein the wire is advanced radially as the score is formed.
In one embodiment, the wire can be positioned to cut only partially through the disk blank.
In one embodiment, the disk blank can be supported upon a tool and wherein rotation of the tool can be controlled by the wire electrical discharge machine.
In one embodiment, movement of the wire can be controlled by the wire electrical discharge machine.
In one embodiment, the disk blank can be supported by a tool and wherein the tool engages the disk concave convex portion.
In one embodiment, the disk blank can be supported by a tool and wherein the tool engages the disk peripheral flange.
In one embodiment, the present invention further comprises the step of forming an asymmetrical transverse cross section score on the disk blank.
In one embodiment, the present invention further comprises the step of supporting the disk blank on a tool.
In one embodiment, the present invention further comprises the step of engaging the tool to the disk peripheral flange.
In one embodiment, the present invention further comprises the step of engaging the tool to the disk concave convex portion.
In one embodiment, the present invention further comprises the step of engaging the tool to both the disk peripheral flange and the disk concave convex portion.
For a further understanding of the nature, objects, and advantages of the present invention, reference should be had to the following detailed description, read in conjunction with the following drawings, wherein like reference numerals denote like elements and wherein:
In
The disk blank 11 is mounted upon a disk fixture, tool or tool holder base 18. In
As part of the method of the present invention, an electrical discharge machining wire 21 is moved toward the axis 27 of the disk blank 11 while maintaining the wire 21 in a selected position such as parallel to the plane 29 of flange or skirt 12 of the disk blank 11.
The tool base 18 and disk fixture 20 are rotated, the disk blank 11 rotating with the disk fixture 20. The rotation of the disk blank 11 and wire 21 relative to one another and the movement of the wire 21 toward the disk blank 11 can be controlled by the motion system of a commercially available EDM machine. Such machines are commercially available from Mitsubishi or Fanuc. Such EDM machines have been patented. Examples can be seen in U.S. Pat. Nos. 7,013,195; 7,038,158; 6,875,943; 6,855,904; 6,621,033, each of these patents being hereby incorporated herein by reference.
In
The wire 21 is constantly renewed during machining of the score 22. Changes in score 22 depth or in score shape or pattern 28 can be modified using programming associated with the commercially available EDM machine. Commercially available EDM equipment can be used with a controlled rotary table to cut multiple disk sizes. Tooling to hold the disk blank 11 of a particular size on a rotary table could be provided for different disk sizes. The same tooling could be used for example for all thicknesses and disk materials.
Disk fixture 20 supports rupture disk 10. Disk fixture 20 can support flange 12. Disk fixture 20 can support concave convex central disk portion 15 (see connection 32 in
The following is a list of parts and materials suitable for use in the present invention.
All measurements disclosed herein are at standard temperature and pressure, at sea level on Earth, unless indicated otherwise. All materials used or intended to be used in a human being are biocompatible, unless indicated otherwise.
The foregoing embodiments are presented by way of example only; the scope of the present invention is to be limited only by the following claims.
This is a continuation of U.S. patent application Ser. No. 11/956,047, filed Dec. 13, 2007, which is a non-provisional of U.S. Provisional Patent Application Ser. No. 60/870,000, filed Dec. 14, 2006, each of which is incorporated herein by reference and priority is hereby claimed. Priority of U.S. Provisional Patent Application Ser. No. 60/870,000, filed Dec. 14, 2006, incorporated herein by reference, is hereby claimed.
Number | Date | Country | |
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60870000 | Dec 2006 | US |
Number | Date | Country | |
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Parent | 11956047 | Dec 2007 | US |
Child | 14101685 | US |