System and method for using a VOC free low radiant flux LED UV curable composition
The present invention generally relates to a system and method for using a volatile organic compound (VOC) free low radiant flux LED UV curable composition, and more particularly to unique and novel uses of the composition such as one or two or more of a fire retardant, clear coat, composite material, resin, top coat, improved holdout coating, a sealant coat, and combinations of the same.
1. A method of forming a composite apparatus, comprising:
providing a mold;
arranging a first composite material on a surface of the mold, wherein the first composite material comprises a plurality of fibrous materials arranged in a woven or non-woven configuration;
applying a first volatile organic compound (VOC) free low radiant flux UV curable material to the first composite material;
applying an energy source having a wavelength in a range from about 360 nm to about 420 nm and a radiant flux at a surface of the applied first VOC free low radiant flux UV curable material of about 500 mW/cm 2 or less to cure at least a portion of the first VOC free low radiant flux UV curable material to form a first cured material,
wherein the first VOC free low radiant flux UV curable material comprises:
an acrylate monomers/oligomers;
a thiol monomers/oligomers;
a photo initiator; and
a radical inhibitor;
arranging a second composite material on a surface of the first cured material, wherein the second composite material comprises a plurality of fibrous materials arranged in a woven or non-woven configuration;
applying a second VOC free low radiant flux UV curable material to the second composite material;
applying an energy source having a wavelength in a range from about 360 nm to about 420 nm and a radiant flux at a surface of the of the applied second VOC free low radiant flux UV curable material of about 500 mW/cm 2 or less to cure at least a portion of the second VOC free low radiant flux UV curable material to form a second cured material,
wherein the second VOC free low radiant flux UV curable material comprises:
an acrylate monomers/oligomers;
a thiol monomers/oligomers;
a radical inhibitor; and
a photo initiator.
2. The method of claim 1 , further comprising applying a mold release material to at least a portion of the mold prior to the arranging a first composite material on a surface of the mold step.
3. The method of claim 1 , wherein the radiant flux at the surface of the applied first VOC free low radiant flux UV curable material is about 50 mW/cm 2 or less.
4. The method of claim 1 , wherein the radiant flux at the surface of the applied first VOC free low radiant flux UV curable material is about 25 mW/cm 2 or less.
5. The method of claim 1 , wherein the radiant flux at the surface of the applied first VOC free low radiant flux UV curable material is about 10 mW/cm 2 or less.
6. The method of claim 1 , wherein the radiant flux at the surface of the applied first VOC free low radiant flux UV curable material is about 5 mW/cm 2 or less.
7. The method of claim 1 , wherein the plurality of fibrous materials comprises one or more of a semi-synthetic fiber, a cellulose fiber, a fiberglass fiber, a carbon fiber, synthetic fiber, a metallic fiber, a silicon carbide fiber, a mineral fiber, polymer fiber and a microfiber.
8. A method of forming a composite apparatus, comprising:
providing a mold;
arranging a first composite material on a surface of the mold, wherein the first composite material comprises one or more of: a plurality of semi-synthetic fibers, a plurality of fiberglass fibers, a plurality of carbon fibers, and a plurality of synthetic fibers arranged in a woven configuration;
applying a first VOC free low a first VOC free low radiant flux UV curable material to the first composite material;
applying an energy source having a wavelength in a range from about 360 nm to about 420 nm and a radiant flux at a surface of the applied first VOC free low radiant flux UV curable material of about 500 mW/cm 2 or less to cure at least a portion of the first VOC free low radiant flux UV curable material to form a first cured material,
wherein the first VOC free low radiant flux UV curable material comprises:
an acrylate monomers/oligomers;
a thiol monomers/oligomers;
a photo initiator; and
a radical inhibitor.
9. The method of claim 8 , wherein the first composite material comprises a first composite comprises the plurality of fiberglass fibers arranged in a woven configuration.
10. The method of claim 8 , wherein the mold is selected from a group consisting of a boat mold, an aircraft component mold, a windmill blade mold, a part mold, a fishing lure mold, a bathtub mold, a shower stall mold, and a swimming pool mold.
11. The method of claim 8 , wherein the mold comprises at least a portion that is UV transparent.
12. The method of claim 11 , wherein the energy source comprises one or more light emitting diodes (LED) arranged in the mold.
13. The method of claim 8 , wherein the mold comprises at least one of a foam material, a pliable material and a rigid material.
14. A method of forming a composite apparatus, comprising:
providing a mold;
applying a first volatile organic compound (VOC) free low radiant flux UV curable material into the mold;
applying a sheet of woven fibrous material on the first volatile organic compound (VOC) free low radiant flux UV curable in the mold to at least partially saturate the sheet of woven fibrous material;
applying an energy source having a wavelength in a range from about 360 nm to about 420 nm and a radiant flux at a surface of the applied first VOC free low radiant flux UV curable material of about 500 mW/cm 2 or less to cure at least a portion of the first VOC free low radiant flux UV curable material to form a first cured material,
wherein the first VOC free low radiant flux UV curable material comprises:
an acrylate monomers/oligomers;
a thiol monomers/oligomers;
a photo initiator; and
a radical inhibitor.
15. The method of claim 14 , wherein the mold comprises an autoclave mold.
16. The method of claim 14 , wherein the VOC free low radiant flux UV curable material further comprises a pigment as a colorant.
17. The method of claim 8 , further comprising providing a heat source to the first cured material.
18. The method of claim 14 , further comprising providing a heat source to the first cured material.
19. The method of claim 14 , wherein the sheet of woven fibrous material comprises one of a sheet of woven fiberglass material or a sheet of woven carbon fiber material.
20. The method of claim 14 , wherein the mold is transparent and the applying an energy source comprises applying the energy source through the transparent mold.