Method for fabricating vacuum fixturing using granular media
10583536 ยท 2020-03-10
Assignee
Inventors
Cpc classification
B29K2263/00
PERFORMING OPERATIONS; TRANSPORTING
B29K2063/00
PERFORMING OPERATIONS; TRANSPORTING
B29C70/44
PERFORMING OPERATIONS; TRANSPORTING
B23Q3/065
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C70/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for fabricating vacuum tooling is disclosed using porous granular media. A sheet of steel webbing is affixed to a frame. A plurality of layers of fiberglass is affixed to the webbing. A vacuum port is installed through the webbing and plurality of layers of fiberglass. A granular media is mixed with epoxy to form a granular mixture. The granular mixture is layered over the plurality of layers of fiberglass to form a flat surface and machined for uniformity before sealing.
Claims
1. A porous granular material for use in combination with a source of vacuum pressure for vacuum tooling, the porous granular material comprising: a binding material; and an abrasive granular material suspended in the binding material; wherein the porous granular material is configured to facilitate passage of a vacuum pressure through the porous granular material; and wherein the abrasive granular material comprises a hardened thermoset resin.
2. The porous granular material of claim 1, wherein the binding material comprises a liquid epoxy configured to harden when cast.
3. The porous granular material of claim 1, wherein the abrasive granular material is a fine abrasive rated at about 35 grit size.
4. The porous granular material of claim 1, wherein the hardened thermoset resin comprises a hardened epoxy.
5. The porous granular material of claim 4, wherein the hardened epoxy has a particle size of about 0.060 to 0.100 thousandths of an inch or about 36 grit size.
6. The porous granular material of claim 1, wherein the binding material and abrasive granular material inhibit absorption of moisture.
7. The porous granular material of claim 1, wherein the abrasive granular material comprises irregularly-shaped particulates.
8. The porous granular material of claim 1, wherein a ratio of the binding material to the abrasive granular material is about 8% binding material by volume to about 92% abrasive granular material by volume.
9. The porous granular material of claim 1, wherein the porous granular material can facilitate passage of a vacuum pressure of about 14.7 psi.
10. A porous granular material for use in combination with a source of vacuum pressure for vacuum tooling, the porous granular material comprising: a binding material; and an abrasive granular material suspended in the binding material; wherein the abrasvie granular material comprises a hardened thermoset resin, and wherein the binding material comprises a liquid resin configured to harden when cast.
11. The porous granular material of claim 10, wherein the hardened thermoset resin comprises a hardened epoxy.
12. The porous granular material of claim 10, wherein the liquid thermoset resin comprises a liquid epoxy.
13. The porous granular material of claim 10, wherein the hardened thermoset resin is crushed to a fine abrasive.
14. The porous granular material of claim 10, wherein the hardened thermoset resin has a particle size of about 0.060 to 0.100 thousandths of an inch or about 36 grit size.
15. The porous granular material of claim 10, wherein the hardened thermoset resin comprises irregularly-shaped particulates.
16. The porous granular material of claim 10, wherein the porous granular material is configured to facilitate passage of a vacuum pressure through the porous granular material.
17. The porous granular material of claim 16, wherein the porous granular material can facilitate passage of a vacuum pressure of about 14.7 psi.
18. The porous granular material of claim 10, wherein a ratio of the binding material to the abrasive granular material is about 8% binding material by volume to about 92% abrasive material by volume.
19. The porous granular material of claim 10, wherein the binding material and sbrasive granular material inhibit absorption of moisture.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(14) The examples presented herein are for the purpose of furthering an understanding of the invention. The examples are illustrative and the invention is not limited to the example embodiments.
(15) Unless the context requires otherwise, throughout the specification and claims which follow, the word comprise and variations thereof, such as, comprises and comprising are to be construed in an open, inclusive sense that is as including, but not limited to.
(16) Reference throughout this specification to one example or an example embodiment, one embodiment, an embodiment or combinations and/or variations of these terms means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the present disclosure. Thus, the appearances of the phrases in one embodiment or in an embodiment in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
(17) Definitions
(18) Generally, as used herein, the following terms have the following meanings unless the context suggests otherwise:
(19) Vacuum granular media or porous granular media means any of gritty non-silica granular media including sintered iron, epoxy resin granules and/or other irregularly-shaped, gritty and/or abrasive granular material capable of transmitting a distributed vacuum force through a layer of the media having a thickness, for example, in the range of about 0.5 to about 2.0 inches. Vacuum source means a source for providing a vacuum pressure of, for example, at least about 14.7 psi.
(20) Fluid communication means connected to as to allow for pressure flow or air flow.
(21) Vacuum Table with Granular Media
(22) Referring now to
(23) At step 101 a frame is made from a framing material such as, for example, steel in the shape of the table as desired. Usually the table is a rectangular table wherein a plurality of sections of vacuum surfaces may be installed. Hollow steel tubing may be advantageously employed and cut to the lengths desired depending on the application. The tubing is welded together or otherwise attached to form the frame.
(24) At step 104 a sheet of, for example, expanded steel webbing is tack welded to the frame. Then, at step 106, a plurality of layers of fiberglass are affixed epoxy to the steel webbing. For added strength, at step 108 an additional stiffener, such as, for example, a layer of balsa wood may be affixed to the top of the fiberglass and itself covered with another layer of fiberglass. A layer of epoxy may be affixed to the bottom of the webbing at step 109 for added rigidity and stability.
(25) At step 110 a course of spiral wrap tubing may optionally be affixed to the top surface of the top fiberglass layer as, for example, by using hot melt glue or an equivalent method. The course of spiral tubing is selected to disperse the vacuum according to the vacuum media surface area. For surface areas less than six inches square, spiral tubing may not be needed. For larger areas the tubing may be advantageously laid out to form a serpentine pattern, a circular pattern, branching pattern, an oval or the like so as to distribute the vacuum force uniformly and form vacuum sections of about six square inches or less as a general rule. When needed depending on the application, sections of commercially available spiral tubing of about inch can be connected using T connectors or straight connectors. At step 111, or before the spiral tubing is applied, as is most convenient, a vacuum port is installed by cutting a suitable aperture through the laminated materials and adding a flange, pipe or other vacuum attachment mechanism to the bottom of the table as shown herein below. The spiral tubing should be in fluid communication with the vacuum introduced through the vacuum tube that is the vacuum is allowed to flow through the course of spiral tubing.
(26) Then, at step 112, a mixed formulation of vacuum granular media is applied over the spiral tubing to form the top surface of the vacuum table. The layer of granular vacuum media is then applied over and covers the spiral wrap tubing and the laminated surface. At step 114 the vacuum media surface is machined to a smooth, flat finish. At step 116 the granular vacuum media is spray-painted to seal the surface and encapsulate small loose particulates.
(27) Referring now to
(28) Although the porous granular material may comprise various types of materials, in one useful embodiment, the granular material comprises a non-silica abrasive in the form of a non-silica, fine abrasive black sand available from Kleen Blast company located in Danville Calif. In one example a fine abrasive is rated at about 35 grit size. Such abrasives are commonly used for sand blasting and may comprise sintered iron. Another useful type of abrasive is finally crushed walnut shell however, this has the drawback of absorbing moisture and is also heat sensitive. The granular vacuum media may advantageously be composed of general-purpose epoxy and abrasive. The ratio of epoxy to sand in one example is about 8% epoxy to about 92% abrasive. One useful type of epoxy is made by Dura technologies. 80 LS-25AT, thixed. In one useful embodiment, the fiberglass used to laminate the table comprises 20 ounce woven fiber glass cloth which is commercially available. The top film 12 may comprise any useful sealer such as spray paint, 30 epoxy and the like. To ensure penetration into the media the sealer may be applied under vacuum conditions.
(29) In another useful example, the granular material may advantageously comprise an epoxy resin formed into granular particles. One example of a method for making granulated particles from epoxy resin follows the steps below: 1. Epoxy resin in liquid form is poured into a container to form 1/4 sheets; 2. The sheets are allowed to harden; 3. The hardened sheets are broken into small pieces using a hammer mill such as is used in commercial mining; 4. The pieces are milled down to about 0.060 to 0.100 thousandths of an inch or to about a 36 grit; and 5. The grit is mixed with liquid epoxy as described herein and cast into a rough shape and then machined as desired.
(30) One advantage of using the aforedescribed granular materials like sintered media and epoxy resin is that they do not absorb moisture and will not swell when exposed to humid or damp environments.
(31) Referring now to
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(34) In a useful embodiment the vacuum sections 40 together with the exterior and interior urethane barriers may be constructed to have a standardized surface area to match the size of standard tooling plates. For example, the vacuum sections may be sized to accommodate 1212 inch, 1224 inch or 2424 inch plates and so on as desired.
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(36) Tooling Fixture with Granular Media
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(38) In one useful embodiment the base 58 may be made from a three-quarter inch IC six aluminum tooling plate. Other materials may also be used such as fiberglass, laminates and the like. The top of the plate is ground smooth and flat and an elongated bonding epoxy is applied for bonding the pedestal to the plate. The pedestal may advantageously be made oversized for stability. It is put on the base and positioned on a vacuum table. Once the tooling fixture 50 is in place on the table, the vacuum is activated thereby holding the fixture and (not shown) part in place.
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(44) Vacuum Forming Thermally Pliable Parts
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(46) The invention has been described herein in considerable detail in order to comply with the Patent Statutes and to provide those skilled in the art with the information needed to apply the novel principles of the present invention, and to construct and use such exemplary and specialized components as are required. However, it is to be understood that the invention may be carried out by specifically different equipment, and devices and reconstruction algorithms, and that various modifications, both as to the equipment details and operating procedures, may be accomplished without departing from the true spirit and scope of the present invention.