OUT-OF-AUTOCLAVE AND ALTERNATIVE OVEN CURING USING A SELF HEATING TOOL
Method and apparatus for curing composite material to form composite structures are provided. A curing tool in one embodiment includes a curing tool that includes cured nano tube impregnated resin. At least two conductors are formed in the nano tube impregnated resin. The curing tool also includes a forming surface portion. The forming surface portion includes cured composite material of pre-preg material. The curing tool further includes at least a first insulation layer that separates the cured composite material from the nano tube impregnated resin.
Latest ALLIANT TECHSYSTEMS INC. Patents:
- Reloading kit with lead free bullet composition
- METHODS AND APPARATUS FOR DETECTING DEFECTS IN AN OBJECT OF INTEREST
- PORTABLE VACUUMING DEVICE FOR COLLECTING AND NEUTRALIZING FLAMMABLE RESIDUE
- REACTIVE MATERIAL COMPOSITIONS AND PROJECTILES INCLUDING THE SAME
- METHOD OF MANUFACTURING HEAT EXCHANGER COOLING PASSAGES IN AERO PROPULSION STRUCTURE
This application claims priority to co-pending U.S. patent application Ser. No. 12/870,556 filed on Aug. 27, 2010, entitled the same as above, is herein incorporated by reference.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENTThe United States Government may have certain rights to this application under contract No. FA9453-06-D0368-0003.
BACKGROUNDComposite structures formed from pre-impregnated (pre-preg) material are used in the formation of high strength-low weight structures such as, but not limited to, parts used to build aircraft and spacecraft. Pre-preg material is made of composite fibers such as carbon, glass, aramid and the like, that are bonded together with a resin that is activated with heat to cure. The pre-preg material is typically supplied in sheets or plies. The manufacturer then forms stacks of plies of pre-preg material on a forming surface of a tool having a desired shape. Once the pre-preg material is formed on the tool, the tool is placed in an autoclave or conventional oven to cure the resin. The aerospace industry's desire for increasingly larger structures has resulted in larger autoclaves and conventional ovens needed to cure the pre-preg material. The larger the autoclaves and conventional ovens, the more costs associated with building and operating them.
For the reasons stated above and for other reasons stated below which will become apparent to those skilled in the art upon reading and understanding the present specification, there is a need in the art for an effective and efficient method of forming composite structures without the use of an autoclave or conventional oven.
SUMMARY OF INVENTIONThe above-mentioned problems of current systems are addressed by embodiments of the present invention and will be understood by reading and studying the following specification. Embodiments of the present invention include both apparatuses and methods. The following summary is made by way of example and not by way of limitation. It is merely provided to aid the reader in understanding some of the aspects of the invention.
In one embodiment, a method of curing composite material to form a composite structure is provided. The method including, laying up and forming pre-preg material on a forming surface of cured pre-preg material of a composite structure forming tool and passing current through nano tube impregnated resin within the forming tool to heat the tool internally to cure the pre-preg material.
In another embodiment, a curing tool is provided. The curing tool includes cured nano tube impregnated resin. At least two conductors are formed in the nano tube impregnated resin. The curing tool also includes a forming surface portion. The forming surface portion includes cured composite material of pre-preg material. The curing tool further includes at least a first insulation layer that separates the cured composite material from the nano tube impregnated resin.
The present invention can be more easily understood and further advantages and uses thereof will be more readily apparent, when considered in view of the detailed description and the following figures in which:
In accordance with common practice, the various described features are not drawn to scale but are drawn to emphasize specific features relevant to the present invention. Reference characters denote like elements throughout Figures and text.
DETAILED DESCRIPTIONIn the following detailed description, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration specific embodiments in which the invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention, and it is to be understood that other embodiments may be utilized and that changes may be made without departing from the spirit and scope of the present invention. The following detailed description is, therefore, not to be taken in a limiting sense, and the scope of the present invention is defined only by the claims and equivalents thereof.
Embodiments of the present invention provide methods and apparatuses for fabricating molds, forms, or mandrels (that can be generally referred to as a tool) that are self heating. Hence, in embodiments, a tool is provided that includes an internal heating source. Embodiments allow composite structures to be cured on the same tool as they were fabricated on without the need for an autoclave or an oven. Hence, large out-of-autoclave structures are cured while sitting on a production floor thereby eliminating size constraints on autoclaves and ovens. Also, embodiments of the self heating tools allow for the mass production of smaller composite parts. Rather than stacking hundreds of uncured parts into an autoclave in a time-consuming process, each part could have its own self heating tool. Each self heating tool can be heated on the production floor thereby providing an efficient part flow through the manufacturing plant.
In embodiments, a tool is formed with resin impregnated with nano tubes. The nano tubes in embodiments are electrically conductive. In one embodiment the nano tubes used to impregnate the resin are carbon nanofibers (nano tubes). Passing current through the resin results in heat being generated due to electrical resistance in the nano tube impregnated resin. In embodiments, by varying the electrical power, the amount of heat created by the tool is varied. Moreover, in embodiments, conductive strips, such as, but not limited to, copper strips are embedded in the cured nano tube impregnated resin. An electrical potential is created between adjacent conductive strips (conductive strips that are near each other) which cause a current to pass through the nano tube impregnated resin. In an embodiment, an alternating current (AC) is applied to the adjacent conductive strips to produce the current through the nano tube impregnated resin.
Referring to
A foundation for the nano tube impregnated resin has to be provided to form the self heating tool. In one embodiment, plies of pre-preg material 204a, 204b, 204c are laid up and formed on a mandrel 202 (108). The plies of pre-preg material form a support base portion 204. In one embodiment six to eight layers (plies) of carbon pre-preg material are used to form the support base portion 204 which is approximately 0.180 to 0.250 inches thick.
Once the first dry woven glass layer 300 has been cured, a first coat of carbon nanotube impregnated resin 302a is applied over the dry woven glass layer 300 (114). This is illustrated in
A second insulation layer 310 is laminated then laid up and laminated on the carbon nano tube impregnated resin 302b (124). This layer of the insulation 310 is then cured (125). In one embodiment, the second insulation layer 310 is a dry woven glass layer 310 having a thickness in the range of 0.003 to 0.005 inches. The addition of the second insulation layer 310 is illustrated in
In one embodiment, the tool 350 is removed from the base mold 124 once the tool is formed. Bores 330 are then selectively formed through the base support portion 204, the first insulation layer 300 and the first cured carbon nano tube impregnated resin 302a to the conducting strips 306 (130). This is illustrated in
Referring to
Referring to
Although specific embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that any arrangement, which is calculated to achieve the same purpose, may be substituted for the specific embodiment shown. This application is intended to cover any adaptations or variations of the present invention. Therefore, it is manifestly intended that this invention be limited only by the claims and the equivalents thereof.
Claims
1. A method of curing composite material to form a composite structure, the method comprising:
- laying up and forming pre-preg material on a forming surface of cured pre-preg material of a composite structure forming tool; and
- passing current through nano tube impregnated resin within the forming tool to heat the tool internally to cure the pre-preg material.
2. The method of claim 1, wherein laying up and forming pre-preg material further comprises:
- applying and pressing the pre-preg material on the forming surface of the forming tool.
3. The method of claim 1, wherein passing current through the nano tubes in the tool further comprises:
- creating a voltage potential between adjacent conductive strips in the tool.
4. The method of claim 3, wherein creating the voltage potential between adjacent conductive strips further comprises:
- coupling alternating current to the conductive strips.
5. A curing tool comprising:
- cured nano tube impregnated resin;
- at least two conductors formed in the nano tube impregnated resin;
- a forming surface portion including cured composite material of pre-preg material; and
- at least a first insulation layer separating the cured composite material from the nano tube impregnated resin.
6. The curing tool of claim 5, further comprising:
- a support base portion of cured composite material; and
- at least one second insulation layer separating the support base portion of the cured composite material from the cured nano tube impregnated resin.
7. The curing tool of claim 6, wherein at least one of the first and second insulation layers is a layer of cured glass ply.
8. The curing tool of claim 6, further comprising:
- the support base portion, the at least second insulation layer and a portion of the cured nano tube impregnated resin have aligned passages to the at least two conductors; and
- a conductive wire for each aligned passage, each conductive wire passing through associated aligned passages, each conductive wire coupled to an associated conductor.
9. The curing tool of claim 8, further comprising:
- a power supply coupled to the plurality of conductive wires; and
- a controller configured to control the power supply.
10. The curing tool of claim 9, wherein the controller is configured to vary the power of the power supply to adjust heat produced by the curing tool.
11. The curing tool of claim 9, wherein the power supply supplies an alternating current.
12. The curing tool of claim 5, wherein the at least two conductors are conductive strips positioned relatively parallel to each other and spaced select distances apart.
Type: Application
Filed: Oct 15, 2012
Publication Date: Sep 12, 2013
Applicant: ALLIANT TECHSYSTEMS INC. (Minneapolis, MN)
Inventors: George J. Glancy (North Ogden, UT), David L. Johnson (Roy, UT)
Application Number: 13/651,814
International Classification: B29C 70/02 (20060101);