Stereo lithography three-dimensional printing apparatus and method of forming colored three-dimensional object
10788752 ยท 2020-09-29
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
G05B19/4099
PHYSICS
B29C64/30
PERFORMING OPERATIONS; TRANSPORTING
G03F7/0952
PHYSICS
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/40
PERFORMING OPERATIONS; TRANSPORTING
B29C64/124
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
B29C41/22
PERFORMING OPERATIONS; TRANSPORTING
B29C64/165
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C64/40
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/124
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C41/22
PERFORMING OPERATIONS; TRANSPORTING
B29C64/165
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
B29C64/30
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C41/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The three-dimensional printing apparatus includes a tank, a platform, a lighting module, a control unit, a photosensitizer coating unit, and an exposure and development unit. The tank is filled with a liquid forming material, and the platform is movably disposed above the tank. The lighting module is used for providing light projecting toward the liquid forming material. The control unit coupled to the platform and the lighting module is configured to control the platform to move along a first direction, such that at least one layer object of a three-dimensional object is cured on the platform by layer. The photosensitizer coating unit is coupled to the control unit and configured to form at least one photosensitizer film on the layer object. The exposure and development unit is coupled to the control unit and configured to expose the photosensitizer film by exposing and developing to color the three-dimensional object.
Claims
1. A three-dimensional printing apparatus, comprising: a tank filled with a liquid material; a platform movably disposed above the tank; a lighting module used for projecting light towards the liquid material; a control unit coupled to the platform and the lighting module and configured to control the platform to move along a direction, such that at least one layer object of a three-dimensional object is cured on the platform by the lighting module; wherein the at least one layer object is a structural layer used to define the shape of the three-dimensional object a photosensitizer coating unit coupled to the control unit and configured to form at least one_photosensitizer films on the layer object, wherein the photosensitizer film comprises a resin material and a photosensitizer; an exposure unit coupled to the control unit and configured to expose the photosensitizer for a color change so as to enhance the color diversity of the three-dimensional object; and a drying unit electrically connected to the control unit and configured to dry the photosensitizer film top down for keeping the photosensitizer film formed on the layer object from leaving the layer object as the photosensitizer film is immersed in the liquid material; wherein the photosensitizer coating unit is configured to form a second photosensitizer film after the photosensitizer of a first photosensitizer film has been exposed and executed a drying program by the drying unit, so as to stack multiple layers of the photosensitizer film on the at least one layer objects to enhance color diversity; wherein after the first photosensitizer film and second photosensitizer film are formed on the at least one layer object, the second photosensitizer film is exposed and dried, then the three dimensional object is lowered into the tank with the platform, a second layer object is formed on top of at least a portion of multiple layers of the photosensitizer film, and then a second forming of the first and second photosensitizer film is formed on the second layer object.
2. The three-dimensional printing apparatus of claim 1, wherein the exposure unit performs exposure on the photosensitizer while the layer object is formed.
3. The three-dimensional printing apparatus of claim 1, wherein the exposure unit performs exposure on the photosensitizer after the three-dimensional object is formed.
4. The three-dimensional printing apparatus of claim 1, wherein the platform is directed to remove the layer object from the liquid material along the direction by the control unit after the layer object is cured.
5. The three-dimensional printing apparatus of claim 1, wherein the photosensitizer is uniformly disposed within the resin material.
6. The three-dimensional printing apparatus of claim 1, wherein the photosensitizer is coated on the resin material.
7. The three-dimensional printing apparatus of claim 1, wherein the photosensitizer coating unit utilizes a nozzle or a roller.
8. The three-dimensional printing apparatus of claim 1, wherein the photosensitizer is silver halides.
9. A method of forming a three-dimensional object by a three-dimensional printing apparatus, wherein the three-dimensional printing apparatus includes a tank filled with a liquid material and a platform, the method comprising: arranging a lighting module for irradiating the liquid material; moving the platform for forming at least one layer object of the three-dimensional object with certain depth; wherein the at least one layer object is a structural layer used to define the shape of the three-dimensional object; forming at least one photosensitizer film over the layer object, wherein the photosensitizer film is an emulsion including a resin material and a photosensitizer; exposing the photosensitizer for a color change to enhance the color diversity of the layer object; forming the three-dimensional object by sequentially stacking layer objects with photosensitizer films; drying the photosensitizer films before performing exposure for keeping the photosensitizer films formed on the layer object from leaving the layer object as the photosensitizer films are immersed in the liquid material; forming a second photosensitizer film after the photosensitizer of a first photosensitizer film has been exposed and executed a drying program by the drying unit, so as to stack multiple layers of the photosensitizer film on the at least one layer objects to enhance color diversity; wherein after the first photosensitizer film and second photosensitizer film are formed on the at least one layer object, the second photosensitizer film is exposed and dried, then the three dimensional object is lowered into the tank with the platform, a second layer object is formed on top of at least a portion of multiple layers of the photosensitizer film, and then a second forming of the first and second photosensitizer film is formed on the second layer object.
10. The method of claim 9, further comprising: directing the platform to remove the layer object from the liquid material before forming the photosensitizer films.
11. The method of claim 9, wherein the photosensitizer film is exposed after the three-dimensional object is formed by sequentially stacking layer objects with the photosensitizer films.
12. The method of claim 9, wherein the photosensitizer is silver halides.
Description
BRIEF DESCRIPTION OF DRAWING
(1) The present disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) Reference is made to
(7) With referring to
(8) The lighting module 130 is, for example, one of the laser component, the vibration-actuated micro mirror module, the light-projecting module using digital light processing (DLP) technology, and the light emitting diode (LED) string. In this embodiment, the lighting module 130 is movable disposed above the tank 100 and irradiates the liquid forming material 102 for solidifying the liquid forming material 102 to a certain depth from a liquid surface 104 of the liquid forming material 102. It is therefore possible to form a layer object 22 at the liquid surface 104 which has a desired pattern by moving the lighting module 130 across the liquid surface 104 of the liquid forming material 102.
(9) Thereafter, a first photosensitizer film 24 flows over the layer object 22. More particular, when the layer object 22 with desired pattern is formed at the liquid surface 104, the layer object 22 is held on the platform 120 and is lowered into the liquid forming material 102, at which condition, the platform 120 is directed to remove the layer object 22 from the liquid forming material 102. A photosensitizer-coating unit 140 is then moved along the first direction D1 to be above the tank 100, as shown in
(10) After forming the first photosensitizer film 24 on the layer object 22, the three-dimensional printing apparatus 10 may further dry the first photosensitizer film 24 by the drying unit 150 (as shown in
(11) When the three-dimensional object 20 includes multi-colors, the three-dimensional printing apparatus 10 may include another photosensitizer-coating unit 140 for forming a second photosensitizer film 26 over the first photosensitizer film 24, as shown in
(12) The first photosensitizer film 24 and the second photosensitizer film 26 are sensitive to irradiations with different wavelengths, and a result of a photochemical reaction occurring on exposure the first photosensitizer film 24 and the second photosensitizer film 26 to activating irradiations. Notably, the wavelength of the irradiations for activating the first photosensitizer film 24 and the second photosensitizer film 26 are different from that for solidifying the liquid forming material 102. After forming the second photosensitizer film 26 on the layer object 22, the three-dimensional printing apparatus 10 may further dry the second photosensitizer film 26 by the drying unit 150 as shown in
(13) An exposing process, as shown in
(14) One of or both of the first photosensitizer film 24 and the second photosensitizer film 26 may be formed on the layer object 22 by a coated roller, as shown in
(15) Reference is made to
(16) The lighting module 130 is movable disposed below the tank 100 and irradiates the liquid forming material 102 for solidifying the liquid forming material 102 to a certain depth from the bottom of the tank 100 to a base 122 of the platform 120. Thus, a layer object 22 of the three-dimensional object 20 is formed.
(17) As shown in
(18) In some embodiments, the photosensitizer-coating unit 140 may firstly coat a resin material 240 (such as gelatin) on the outer surface of the layer object 22, and then coat the photosensitizer 242 on the resin material 240 to form the first photosensitizer film 24; in the other words, the first photosensitizer film 24 at least includes the resin material 240 on the outer surface of the layer object 22 and the photosensitizer 242 adhered to the resin material 240. An exposing process, as shown in
(19) Thereafter, the controlling unit 110 makes partial layer object 22 coated with the first photosensitizer film 24 be within the tank 100 to a certain depth from the bottom 102 of the tank 100, and the lighting module 130 irradiates the liquid forming material 102 for solidifying the liquid forming material 102 to another layer object 22 (as shown in
(20) These procedures (as shown in
(21) Although the present disclosure has been described with reference to the foregoing preferred embodiment, it will be understood that the disclosure is not limited to the details thereof. Various equivalent variations and modifications can still occur to those skilled in this art in view of the teachings of the present disclosure. Thus, all such variations and equivalent modifications are also embraced within the scope of the disclosure as defined in the appended claims.