Apparatus and method for deposting an overcoat on an image on a substrate
A system and method for applying an overcoat to a printed image on a substrate generally includes a radiative source that transmits electromagnetic radiation within a predefined wavelength range to the printed image on the substrate to be absorbed by the printed image and heat the printed image to a predetermined temperature range, a depositing device that deposits an overcoating powder onto the heated printed image, the overcoating powder having a melting point within the predetermined range such that upon deposition thereof, the overcoating powder adheres and/or melts onto the heated printed image, and a residual powder removing device that removes any residual overcoating powder not adhered to the printed image or the substrate.
1 . A method of overcoating a printed image on a printer substrate in the form of an individual sheet or a roll previously printed upon with a laser jet or a xerographic printer, the method comprising:
applying a source of electromagnetic radiation to the printer substrate including the printed image, and with a temperature sensor, measuring temperature rise rates of a portion of the printed image and a portion of the printer substrate not including the printed image;
based on the measured temperature rise rates, calculating an expected time period over which the portion of the printed image and the portion of the printer substrate not including the printed image can be exposed to the source of electromagnetic radiation to cause the portion of the printed image to be heated to a temperature within a predetermined temperature range, without also causing the portion of the printer substrate not including the printed image to be heated to within the predetermined temperature range;
transmitting electromagnetic radiation within a predefined wavelength range to the portion of the printed image and the portion of the printer substrate not including the printed image with a radiative source for a period of time based on the calculated expected time period, such that the electromagnetic radiation is absorbed by the portion of the printed image to heat the portion of the printed image to the predetermined temperature range as measured by the temperature sensor;
depositing an overcoating powder onto the heated portion of the printed image with a depositing device, the overcoating powder having a melting point within the predetermined temperature range such that upon deposition thereof, the overcoating powder adheres and/or melts onto the heated portion of the printed image;
removing any residual overcoating powder not adhered to the portion of the printed image or the portion of the printer substrate not including the printed image with a residual powder removing device.
2 . The method of claim 1 , further comprising transmitting the electromagnetic radiation to the printed image on the printer substrate for a predetermined time to heat the printed image to the predetermined temperature range, the predetermined time based on one or more of a characteristic of the printer substrate, a characteristic of the printed image, a wavelength range transmitted by the radiative source, an intensity of the electromagnetic radiation transmitted by the radiative source, or a distance between the printer substrate and the radiative source.
3 . The method of claim 1 , wherein the transmitted electromagnetic radiation has a wavelength from approximately .7 μm to 1 mm.
4 . The method of claim 1 , wherein the radiative source transmits the electromagnetic radiation to the portion of the printer substrate not including the printed image for the predetermined time, the portion of the substrate not including the image not being heated to within the predetermined range.
5 . The method of claim 2 , wherein a characteristic of the printed image includes one or more of a color of the printed image and a component of an ink or toner used to apply the image on the printer substrate.
6 . The method of claim 5 wherein the component comprises an additive to the ink or toner that is configured to more effectively absorb wavelengths in the range transmitted by the radiative source.
7 . The method of claim 2 , wherein the radiative source transmits the electromagnetic radiation to the portion of the printer substrate not including the printed image for the predetermined time, the portion of the printer substrate not including the image not being heated to within the predetermined range.
8 . The method of claim 2 , wherein the printed image comprises a first printed region and a second printed region, wherein the electromagnetic radiation transmitted to the first and second printed regions heats the first printed region to the predetermined range, but does not heat the second printed region to the predetermined range.
9 . The method of claim 8 , wherein the first printed region comprises a first color and the second printed region comprises a second color, and wherein the first color absorbs the electromagnetic radiation transmitted by the radiative source more effectively as compared to the second color.
10 . The method of claim 8 , wherein the printer substrate and/or the second printed region is covered by or includes a component that, as compared to the printed region or the first printed region, respectively, reflects the electromagnetic radiation transmitted by the radiative source more effectively.
11 . The method of claim 10 , wherein the radiative source transmits electromagnetic radiation having a wavelength from approximately .7 μm to 1 mm and the printer substrate and/or the second printed region includes an infrared (IR) reflective component or is covered with an infrared (IR) reflective coating.
12 . The method of claim 1 , wherein the overcoating powder applied to the portion of the printed image, upon being heated to the predetermined range, melts to form one or more of a clear, glossy, colored, or raised overcoat.
13 . The method of claim 1 , wherein the overcoating powder applied to the portion of the printed image, upon being heated to the predetermined range, expands in size.
14 . The method of claim 1 , wherein the printed image comprises a half-tone image.
15 . The method of claim 1 , wherein the radiative source comprises a full-width radiative source that extends along a width of the printer substrate.
16 . The method of claim 1 , wherein the depositing device comprises a hopper device that extends along a width of the printer substrate.
17 . The method of claim 1 , wherein the residual powder removing device extends along a width of the printer substrate and comprises one or more of a sweeping device, an air blowing device, or a vacuum device.
18 . The method of claim 1 , wherein a system for overcoating the printed image on the printer substrate includes a conveyor assembly that transports the printer substrate including the printed image from the radiation source, to the depositing device, and to the residual powder removing device.
19 . The method of claim 1 , further comprising a pinning assembly including a heat source that, subsequent to the residual powder removing device removing the any residual overcoating powder not adhered to the portion of the printed image, pins the dry overcoating powder adhered and/or melted onto the portion of the printed image by applying heat to the dry adhered dry overcoating powder.
20 . A method of overcoating a dry and fixed printed image on a printer substrate in the form of an individual sheet or a roll previously printed upon with a laser jet or a xerographic printer, the method comprising:
applying a source of electromagnetic radiation to the printer substrate including the dry and fixed printed image and, with a temperature sensor, measuring temperature rises rate of a portion of the dry and fixed printed image and a portion of the printer substrate not including the dry and fixed printed image;
based on the measured temperature rise rates, calculating an expected time period over which the portion of the dry and fixed printed image and the portion of the printer substrate not including the dry and fixed printed image can be exposed to the source of electromagnetic radiation to cause the portion of the dry and fixed printed image to be heated to a temperature within a predetermined temperature range, without also causing the portion of the printer substrate not including the dry and fixed printed image to be heated to within the predetermined temperature range;
transmitting electromagnetic radiation within a predefined wavelength range to the portion of the dry and fixed printed image on the printer substrate image and the portion of the printer substrate not including the dry and fixed printed image with a radiative source for a period of time based on the calculated expected time period, such that the electromagnetic radiation is absorbed by the portion of the dry and fixed printed image to heat the portion of the dry and fixed printed image to the predetermined temperature range as measured by the temperature sensor;
depositing an overcoating powder onto the heated portion of the dry and fixed printed image with a depositing device, the overcoating powder having a melting point within the predetermined temperature range such that upon deposition thereof, the overcoating powder adheres and/or melts onto the heated portion of the dry and fixed printed image; and,
removing any residual overcoating powder not adhered to the heated portion of the dry and fixed printed image or the portion of the printer substrate not including the dry and fixed printed image with a residual powder removing device.