1. Technical Field
The disclosure relates to a method of photocuring a coating film, and particularly to photocuring of a coating film by ultraviolet (UV) radiation.
2. Discussion of Related Art
A coating film which is to be photocured includes a photoinitiator and a curable resin. After the photocurable coating film absorbs light, free radicals are generated from the photoinitiator, and a cross-linking reaction or a polymerization is proceeded between the free radicals and the curable resin; then the coating film which is originally fluidic becomes solid to form a firm coating film on an object. The coating film has a high luster, a high hardness and a high resistance to corrosion. However, when the coating film is being cured, an oxidation reaction is also proceeded between oxygen and the free radicals to prevent the cross-linking between the free radicals and the curable resin, whereby a portion of the coating film is still in a fluidic state. The fluidic portion of the coating film could be dissolved easily in organic solvents, causing a poor stability of the coating film, even if it is photocured after a long period of time.
What is needed, therefore, is a method of photocuring a coating film, which can overcome the limitations described above.
Many aspects of the disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present method of photocuring coating. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
In this embodiment, a light source emitting light on the coating film 11 is a pulse UV (ultraviolet) LED (light emitting diode) light source which emits pulse ultraviolet light. The coating film 11 is a UV photocurable adhesive. The UV LED light source is turned into a pulse UV LED light source via a pulse driver which supplies pulse energy to the UV LED light source. The total energy supplied to the UV LED light source via the pulse driver is the same as that when the UV LED is used as a non-pulse UV LED light source, whereby during the on time of the pulse UV LED light source, it supplies more energy to the coating film 11. A ratio of on time and off time of the pulse UV LED light source is no more than 3:7. In the present disclosure, LED is used as the light source, since the LED light source has many advantages, such as high luminosity, low operational voltage, low power consumption, compatibility with integrated circuits, easy driving, long term reliability, and environmental friendliness.
The coating film 11 includes a photoinitiator and a curable resin. After the coating film 11 absorbs ultraviolet light, free radicals are generated from the photoinitiator, and a cross-linking reaction or a polymerization is proceeded between the free radicals and the curable resin, which results in the change of the coating film 11 from fluid to solid.
Referring to
As an example, a period (i.e., pulse repetition interval) of the UV radiation the pulse UV LED light source includes 300 ms on/700 ms off, wherein the period is 1000 ms. During the on time, the pulse UV LED light source emits a UV radiation having an intensity of 50 mW/cm2. During the off time, the pulse UV LED light source has no emission. The coating film 11 of the present method absorbs more energy during the on time of the pulse UV LED light source than the prior photocuring method under the condition that the prior photocuring method and the present photocuring method supply the same total light energy to the coating film during the entire photocuring process. Since in the present invention, more intensive energy is initially applied to the coating film, a cured layer can be immediately formed on a top of the coating film which can effectively prevent oxygen from entering the coating film 11 to cause an oxidation between the oxygen and the radicals below the top cured layer. Thus, a total curing of the coating film 11 can be obtained in accordance with the present disclosure.
Follows are comparison between the coatings provide by the prior method and the present method. After photocuring by absorbing the same energy in the same photocuring period, the top surface 112 of coating film is wiped by cotton wool or paper soaked in alcohol. There is a portion of the coating film which is photocured by the prior method dissolved by the alcohol in the cotton wool or paper wiping the top surface of the coating film. However, there is no portion of the coating film which is photocured in accordance with the present disclosure dissolved by the alcohol in the cotton wool or paper wiping the top surface 112 of the present coating film 11. That is, the coating film photocured by the present method has a better quality and stability.
It is to be understood that the above-described embodiments are intended to illustrate rather than limit the disclosure. Variations may be made to the embodiments without departing from the spirit of the disclosure as claimed. The above-described embodiments illustrate the scope of the disclosure but do not restrict the scope of the disclosure.
Number | Date | Country | Kind |
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2013101815645 | May 2013 | CN | national |