Dual cure resin composite system and method of manufacturing the same
A system including a dual cure composite structure is disclosed. The system also includes a first layer comprising a resin having a first and a second functional group. The system further includes a second layer comprising the resin having the first and the second functional group. The system also includes a third layer comprising the resin having the first and the second functional group. The system further includes a first covalent bond across an interface of the first and the second layer and a second covalent bond across another interface of the second and the third layer. The system further includes more than two layers comprising the resin having the first and second functional group. A method of manufacturing a system including a dual cure composite structure is also disclosed. The method includes providing a first layer comprising a resin having a first functional group and a second functional group. The method also includes applying a first curing source to partially cure the first layer. The method further includes providing a second layer comprising the resin having the first and the second functional group onto the first layer and applying a second curing source to fully cure the first layer and partially cure the second layer simultaneously.
The invention relates generally to fabrication techniques and, more particularly, composite fabrication techniques and associated polymer composite-based products.
Structural composite products, such as wind turbine blades and aircraft structures, are composed of multiple layers. The conventional approach for curing these multiple layers involves curing all of the layers together at the same time in an autoclave or oven. In other words, the process involves applying the layers one over the other, and then subsequently curing all of the layers. The adhesion between layers is generally good but other disadvantages sometimes make this approach not practical. For instance, in manufacturing the root section of a wind turbine blades, sagging and dimensional distortion and fiber wrinkling during compaction may occur during curing cycle. Also, excessive reaction exotherm from thick parts may cause problems. Another approach for curing these multiple layers involves sequentially applying and completely curing layers one after another using a single curing mechanism. In other words, a first composite layer is cured completely before laying down a second composite layer. The second composite layer is then cured completely before laying down a third composite layer. The process adds additional composite layers in the same sequential manner using the single curing mechanism. Unfortunately, this fabrication technique creates relatively weak secondary adhesive bonds between the composite layers. These secondary adhesive bonds result in undesirably low interlaminar strength.
Hence, an improved technique needs to be developed to address the aforementioned issues.
BRIEF DESCRIPTIONIn accordance with one aspect of the invention, a method includes activating a first functional group of a resin in a first layer in response to a first curing source. The method further includes sequentially activating a second functional group of the resin in the first layer and the second functional group of the resin in a second layer disposed on the first layer in response to a second curing source. The method further includes creating a first covalent bond across an interface of the first layer and the second layer.
In accordance with another aspect of the invention, a method includes providing a first layer comprising a resin having a first functional group and a second functional group. The method also includes applying a first curing source to activate the first functional group and partially cure the first layer. The method further includes applying a second layer comprising the resin having the first and the second functional group onto the first layer. A second curing source is then applied to fully cure the first layer and partially cure the second layer simultaneously by activating the second functional group in the first and second layer.
In accordance with another aspect of the invention, a system includes a dual cure composite structure having a first layer with a material having a first and a second functional group. The system also includes a second layer with the material having the first and the second functional group. The system further includes a third layer with the material having the first and the second functional group. The system also includes a first covalent bond across an interface of the first and the second layer. A second covalent bond across another interface of the second and the third layer is also included in the system. Further, the method can be extended beyond the three layer system described here by alternatively activating the first and second functional groups sequentially of the subsequently disposing layers and creating alternating covalent bonds on alternating interfaces.
In accordance with another aspect of the invention, a method including partially curing a first composite layer with a first curing feature is included. The method also includes disposing a second composite layer along the first composite layer. The method further includes simultaneously curing the first and second composite layers with a second curing feature to further cure the first composite layer and to partially cure the second composite layer, wherein the first and second curing features are different from one another.
In accordance with another aspect of the invention, a manufacturing system having one or more curing sources configured to fully or partially cure a layer of a composite structure is included. The system also includes a machine configured to dispose a layer of a dual cure composite structure.
DRAWINGSThese and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
As discussed in detail below, embodiments of the present invention provide a composite structure with a dual cure mechanism and a method of manufacturing the same. A dual cure composite structure used herein is defined as a composite structure having multiple layers, wherein the composite structure is manufactured using a “dual cure” mechanism to bond the multiple layers. “Dual cure” mechanism is a mechanism in which initially, a first layer is partially cured by a first curing feature followed by a second layer being disposed on top of the first layer. In a next step, the second layer is partially cured and the first layer is at least further or fully cured simultaneously by a second curing feature. In certain embodiments, the “dual cure” mechanism may be supplemented with one or more additional curing features, making the mechanism a generally “multi cure” mechanism. For example, the foregoing dual cure scenario may be supplemented by further applying a third layer on top of the second layer, and then partially curing the third layer and further or entirely curing the second layer simultaneously by a third curing feature. In this example, the first layer also may be further or entirely cured by the third curing feature simultaneous with the curing of the second and third layers. Similarly, a fourth, fifth, sixth, or additional layers may be successively applied over the composite structure, and successively cured in stages of partial, and eventually complete curing via two or more curing features (e.g., the first, second, or more curing features). Again, the curing features generally alternate (e.g., feature 1, 2, 1, 2, etc.) as each successive layer is applied and simultaneously partially cured along with a previous layer. In this manner, the disclosed “dual cure” or “multi cure” mechanism may be described as “overlapping stages of curing” or “staged curing” or “step curing” of adjacent layers to create covalent bonds across interface of the layers and hence improve the interlayer adhesion.
Rapid curing systems are desirable for large composite structures to obtain the desired manufacturing cycle time, reduce significant plant and equipment investment, and further decrease base cost of a part. This requires integration of appropriate resin chemistry with a corresponding curing source. In a system disclosed herein, for large composite structures, more than one independent curing source is introduced to activate a dual cure mechanism that will control a curing state and bonding between layers of the composite structure to achieve desirable mechanical properties. Curing source is a source used in curing layers of a composite structure. Non-limiting examples of a curing source are ultraviolet frequency radiation, or microwave frequency radiation, or radio frequency, or visible frequency radiation, or ultrasonic, or laser, or electron beam or a combination thereof.
Turning now to the drawings,
Ex. 1 in Table 1 illustrates applying a curing source 1 (UV) source to initiate photo curing of the first functional group (acrylate) and applying curing source 2 (infrared) to thermally cure the second functional groups (epoxy with amine) according to the embodiment described in
Referring back to
Following partial curing of the first layer, the method 50 includes providing a second layer comprising the resin having the first and the second functional group onto the first layer as step 56. Following addition of the second layer, the method 50 includes applying a second curing source to fully cure the first layer and partially cure the second layer simultaneously as step 58. The third layer 16 may further be introduced by providing a third layer comprising the resin having the first and the second functional group onto the second layer as step 60. Simultaneous curing of the second 14 and the third 16 layers occur by applying the first curing source to fully cure the second layer and partially cure the third layer simultaneously as step 62. Full curing of the third layer 16 occurs by applying the second curing source to fully cure the third layer as step 64.
Joining and assembling of piece-parts and subcomponents into monolithic structures is particularly advantageous and useful for modular design. Although both mechanical and adhesively bonded joints may be used, adhesive bonds generally provide for lower weight designs and a desirable strength. The disclosed dual curing mechanism provides a desirable strength and potential for adhesive bonds in composite structures comprising resins as described in previous paragraphs. Composite structures including resins may be used as materials in mechanical components for desirable adhesive bonding during joining and assembling of mechanical components.
While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.
Claims
1. A method, comprising:
- activating a first functional group of a resin in a first layer in response to a first curing source;
- activating a second functional group of the resin in the first layer and the second functional group of the resin in a second layer disposed on the first layer in response to a second curing source; and
- creating a first covalent bond across an interface of the first layer and the second layer.
2. The method of claim 1, comprising:
- activating the first functional group of the resin in a third layer and the resin in a second layer in response to the first curing source;
- creating a second covalent bond across an interface of the second layer and the third layer; and
- activating the second functional group of the resin in the third layer in response to the second curing source.
3. The method of claim 1, further comprising activating the first and the second functional group of the resin in more than two layers.
4. The method of claim 1, wherein the first curing source and the second curing source comprise radiations at different frequencies.
5. The method of claim 1, wherein the first curing source and the second curing source comprise different energy types or different characteristics of the same energy type.
6. A method, comprising:
- providing a first layer comprising a resin having a first functional group and a second functional group;
- applying a first curing source to partially cure the first layer;
- providing a second layer comprising the resin having the first and the second functional group onto the first layer; and
- applying a second curing source to fully cure the first layer and partially cure the second layer simultaneously.
7. The method of claim 6, comprising:
- providing a third layer comprising the resin having the first and the second functional group onto the second layer;
- applying the first curing source to fully cure the second layer and partially cure the third layer simultaneously; and
- applying the second curing source to fully cure the third layer.
8. The method of claim 6 further comprising providing more than two layers comprising the resin having the first and the second functional group.
9. The method of claim 6, wherein applying the first curing source to partially cure the first layer comprises curing less than about 100% of the first layer.
10. The method of claim 6, wherein applying the second curing source to fully cure the first layer and partially cure the second layer simultaneously comprises curing less than about 100% of the second layer.
11. The method of claim 6, wherein the first curing source and the second curing source comprise ultraviolet frequency radiation, or microwave frequency radiation, or visible frequency radiation, or ultrasonic radiation, or a combination thereof.
12. The method of claim 6, wherein the first curing source and the second curing source comprise an electron beam, or a laser beam, or an ultrasonic beam, or a combination thereof.
13. The method of claim 6, wherein providing the first layer and the second layer comprises using an automated fiber tape placement machine.
14. The method of claim 6, wherein the first curing source and the second curing source comprise different curing types or different characteristics of the same curing type.
15. A system, comprising:
- a dual cure composite structure, comprising: a first layer comprising a resin having a first and a second functional group; a second layer comprising the resin having the first and the second functional group; a third layer comprising the resin having the first and the second functional group; a first covalent bond across an interface of the first and the second layer; and a second covalent bond across another interface of the second and the third layer.
16. The system of claim 15, the system further comprising more than two layers comprising the resin having the first and the second functional group.
17. The system of claim 15, wherein the first functional group comprises aldehyde, or amines, or acrylate, or methacrylate, or vinyl group, or cyclo-epoxide, or glycicyl etherepoxide with amine curatives, or isocyanate with alcohol, or isocyanate with amine, or urethane, or a combination thereof.
18. The system of claim 15, wherein the second functional group comprises aldehyde, or amines, or acrylate, or methacrylate, or vinyl group, or cycloepoxide, or glycicyl etherepoxide with amine curatives, or isocyanate with alcohol, or isocyanate with amine, or urethane, or a combination thereof.
19. The system of claim 15, the composite structure further comprising carbon or fiberglass composites or a combination thereof.
20. The system of claim 15, wherein the composite structure comprises a component of wind turbine.
21. The system of claim 20, wherein the composite structure further comprises a wind turbine blade.
22. The system of claim 21, wherein the blade further comprises a top skin, a shear web coupled to a barrel with at least two spar caps, and a bottom skin.
23. A method, comprising:
- partially curing a first composite layer with a first curing feature;
- disposing a second composite layer along the first composite layer; and
- simultaneously curing the first and second composite layers with a second curing feature to further cure the first composite layer and to partially cure the second composite layer, wherein the first and second curing features are different from one another.
24. The method of claim 23, wherein the first and second curing features comprise different curing mechanisms, or the same curing mechanism having different output characteristics, or a combination thereof.
25. The method of claim 23, wherein the first curing feature and the second curing feature comprise an electron beam, or a laser beam, or an ultrasonic beam, or a combination thereof.
26. A manufacturing system comprising:
- one or more curing sources configured to fully or partially cure a layer of a composite structure; and
- a machine configured to dispose a layer of a dual cure composite structure.
27. The manufacturing system of claim 26, wherein the machine comprises a manually operated machine or an automated machine.
28. The manufacturing system of claim 26, wherein the one or more curing sources comprise ultraviolet frequency radiation, or radio frequency radiation, or infrared radiation, or microwave frequency radiation, or visible frequency radiation, or ultrasonic radiation, or a combination thereof.
29. The manufacturing system of claim 26, wherein the one or more curing sources comprise different curing types or different characteristics of the same curing type.
Type: Application
Filed: Apr 13, 2006
Publication Date: Oct 18, 2007
Inventors: Wendy Lin (Niskayuna, NY), Wenliang Yang (Ballston Lake, NY)
Application Number: 11/403,674
International Classification: B32B 27/00 (20060101); B32B 37/00 (20060101);