METHOD AND SYSTEM FOR MANUFACTURE OF 3D MULTI-COLORED OBJECTS
20180043611 ยท 2018-02-15
Assignee
Inventors
Cpc classification
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29K2105/0032
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C48/02
PERFORMING OPERATIONS; TRANSPORTING
B29C48/266
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system for manufacture of a multi-colored three-dimensional object, comprising at least one tank configured to store a colorless pseudoplastic material at atmospheric pressure, at least one bidirectional pump, an extrusion nozzle having at least one opening and configured to draw thereinto at least a quantity of the color materials and/or colorless pseudoplastic material and extrude in image-wise manner the drawn material and a X-Y-Z movement system configured to move at least the extrusion nozzle in a three coordinate system wherein the extrusion nozzle draws and extrudes the pseudoplastic material through the same opening.
Claims
1. System for manufacture of a multi-colored three-dimensional object, comprising: at least one tank configured to store at least one material including a colorless pseudoplastic material, a coloring material and a pre-colored pseudoplastic material; an extrusion head having an extrusion nozzle, the nozzle having at least one opening and configured to draw thereinto at least a quantity of the at least one material and extrude the drawn material in image-wise manner; at least one bidirectional pump configured to deliver the colorless pseudoplastic material to the extrusion nozzle; and an X-Y-Z movement system configured to move at least the extrusion nozzle in a three coordinate system; wherein the extrusion nozzle draws and extrudes the material through the same opening.
2. The system according to claim 1, wherein the extrusion head houses the pump.
3. The system according to claim 1, wherein the extrusion nozzle also comprises a reception volume that communicates with a volume inside the extrusion head.
4. The system according to claim 3, wherein the reception volume supports reception of material from the volume in an extrusion head and/or material drawn from outside into the nozzle through an opening.
5. The system according to claim 1, wherein comprising at least two tanks configured to store materials each having physical and chemical characteristics different than the other.
6. The system according to claim 5, wherein an least one of the materials allows for easy and quick separation of layers so that to serve as a detachment layer separating between two abutting portions of the manufactured three-dimensional object or between the manufactured three-dimensional object and a support surface on which the object has been manufactured.
7. The system according to claim 5, wherein at least one the materials is a material selected from a group of materials including wax or wax mixtures, oil based materials and surface finish materials.
8. The system according to claim 1, wherein the coloring materials comprise one or more types of material selected from a group of types of coloring materials or gels including pigments, dyes and color particles.
9. Method for manufacture of a multi-colored three-dimensional object, comprising at least one cycle of steps comprising: dipping an extrusion nozzle having at least one opening into at least one tank configured to store a colored or colorlessless pseudoplastic material at atmospheric pressure; drawing a quantity of a pigmented or pigmentless pseudoplastic material into the extrusion nozzle via the at least one opening; moving the extrusion nozzle to another location; and extruding in image-wise manner the material via the same opening at a pressure exceeding the atmospheric pressure.
10. The method according to claim 9, wherein repeating the cycle of steps at least once without cleaning the extrusion head and/or nozzle.
11. Method for manufacture of a multi-colored three-dimensional object, comprising: extruding through an extrusion nozzle a certain amount of a colorless pseudoplastic material at atmospheric pressure; dipping the extrusion nozzle having at least one opening into at least one tank configured to store a colored pseudoplastic material at atmospheric pressure; drawing a quantity of the colored pseudoplastic material into the extrusion nozzle via the at least one opening; moving the extrusion nozzle to another location; and extruding in image-wise manner the material via the same opening at a pressure exceeding the atmospheric pressure.
12. The method according to claim 11 wherein extruding in image-wise manner the colored material forms complementary portions of the same 3D object.
13. The method according to claim 11, wherein following extruding the colored pseudoplastic material extruding once again through the extrusion nozzle a certain amount of a colorless pseudoplastic material at atmospheric pressure without cleaning the extrusion head and/or nozzle between extrusions.
Description
LIST OF FIGURES AND THEIR DESCRIPTION
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DESCRIPTION
[0017] The term Colorless as used in this disclosure means the color of a material in its natural post-manufacturing state resulting solely from its method of manufacture and having no color-producing additives.
[0018] One three-dimensional object manufacturing technique relies on the deposition of material in gel aggregate state. The gel flows through an extrusion or deposition nozzle because the applied agitation and pressure shears the inter-particle bonds and induces a breakdown in the elasticity of the material. The material recovers immediately after leaving the nozzle, and the gel almost solidifies to maintain its shape.
[0019] Reference is made to
[0020] Agitator-pump 108 could be such as Graco S20 supply system commercially available from Graco Minneapolis, Minn. U.S.A., or a barrel follower dispensing pump Series 90 commercially available from Scheugenpflug AG93333 Neustadt a.d.Donau Germany. Agitator-pump 108 in addition to agitation also develops a pressure higher than atmospheric pressure such that the pseudoplastic material 104 flows through a delivery tubing or system 112 to extrusion (head) 114 and extruded or deposited via an opening in nozzle 116.
[0021] System 100 can include an X-Y-Z movement system 124 configured to move the extrusion nozzle 116 in a three coordinate system. Alternatively, a table 120 could be made to move in a three coordinate system. In another example, the movement in three directions (X-Y-Z) could be divided between the extrusion nozzle 116 and table 120. System 100 also includes a computer 128 configured to control operation of movement system 124, agitator-pump 108 pseudoplastic material steering operation and value or magnitude of the pressure higher than atmospheric pressure. Computer 128 is further adapted to receive the three-dimensional (3D) object 132 data and generate from the received data the X-Y-Z movement commands and distance such that the pseudoplastic material 104 is extruded through extrusion (head) nozzle 116 opening in an image wise manner. The X-Y-Z movement could be performed in a vector mode, depending on the object to be printed. Computer 128 could also be configured to optimize the decision on the printing mode.
[0022] System 100 can further include a source of radiation 136. Source of radiation 136 could be such as FireJet FJ200commercially available from Phoseon Technology, Inc., Hillsboro Oreg. 97124 USA. Source of radiation 136 provides UV radiation with total UV power of up to 900W and wavelength range of 380-420 nm. Alternatively, a UV lamp such as for example, mercury vapor lamp model Shot 500 commercially available from CureUV, Inc., Delray Beach, Fla. 33445 USA. Source of radiation 136 operates in a continuous manner and the radiation is selected to harden the pseudoplastic material 104. Computer 128 could also be configured to control operation of source of radiation 136 and synchronize it with the printing mode. In the remaining
[0023] Extrusion nozzle 116 can include a reception volume 202 defined in
[0024] As shown in
[0025] Additionally and optionally, materials 216/218 stored in one or more tanks 206/208 can include a pre-colored pseudoplastic material or gel.
[0026] Additionally and optionally, one or more tanks 206/208 can include materials having physical and chemical characteristics different than the physical and chemical characteristics of material 104 so that to include areas of variable physical properties in the finished product as will be explained in greater detail below.
[0027] Such material 216/218 can be selected from a group of materials including wax or wax mixtures, oil based materials, surface finish materials such as matte finish materials and any other suitable material.
[0028] System 200 can also include additional delivery tubing 206 and 208 that open into reception volume 202 of extrusion head 114 extrusion nozzle 116. Tanks 206/208 can include agitator-pumps (not shown) similar to agitator-pump 108.
[0029] Reference is now made to
[0030] System 300 can also include one or more independent storage or material supply tanks 304/306/308 containing one or more types of coloring material 314/316/318 selected from a group of types of coloring materials or gels including pigments, dyes, color particles and any other suitable type of coloring material.
[0031] Alternatively, additionally and optionally, one or more tanks 304/306/308 can include materials each having physical and chemical characteristics different than the other or than the physical and chemical characteristics of material 104 so that to include areas of variable physical properties in the finished product as will be explained in greater detail below.
[0032] Such materials can be selected from a group of materials including wax or wax mixtures, oil based materials, surface finish materials such as matte finish materials and any other suitable material.
[0033] Coloring materials or gels 314/316/318 could include, for example, pigments with each pigment having a color different than that of the material or gel in another storage or material supply tank.
[0034] In system 300, extrusion head 114 Pump 302 controlled by computer 128 can be moved from a dispensing position, depicted in
[0035] Referring now to
[0036] Once the desired quantity of coloring material or gel 312 has been drawn, X-Y-Z movement system 124 (
[0037] The quantity of drawn coloring material or gel 312 can be calculated by computer 128 to be the exact quantity required to be deposited by head 114 nozzle 116 onto the 3D multi-colored 132 being manufactured. The quantity of material or gel 312 drawn from storage or material supply tank 306 is such so that it can be deposited in its entirety and any residual coloring material or gel 312 inside reception volume 202 (
[0038] At this point a third step can begin in which and as depicted in
[0039] Once the desired quantity of coloring material or gel 314 has been drawn, X-Y-Z movement system 124 (
[0040] This can be repeated as desired alternating between deposition of colorless material or gel 104 and any one or more coloring material or gel. The above described system and method simplify and reduce cost of manufacturing of multi-colored three-dimensional objects as well as allow online multi-color manufacturing and shortened throughput time.
[0041] Additionally and optionally, coloring materials 216/218/314/316/318 in one or more tanks 206/208/304/306/308 can be replaced with materials having physical and chemical characteristics different than the physical and chemical characteristics of material 104 so that to include areas of variable physical properties in the finished product. Such materials, having physical and chemical characteristics different than the physical and chemical characteristics of material 104, can be any type of material that would allow for easy and quick separation of layers so that to serve as a detachment layer separating between two abutting portions of a manufactured 3D object or between a manufactured 3D object and a support surface on which the object has been manufactured. Such materials can be selected, for example, from a group of materials including wax or wax mixtures, oil based materials, surface finish materials such as matte finish materials and any other suitable material.
[0042] One advantage of the system and method described above is in that materials of various color and/or physical and chemical characteristics can be drawn and extruded via extrusion head 114 nozzle 116 without cleaning the extrusion head and/or nozzle.
[0043] In another example shown in
[0044] In yet another example shown in
[0045] It will be appreciated by persons skilled in the art that the present disclosure is not limited to what has been particularly shown and described hereinabove. Rather, the scope of the method and system includes both combinations and sub-combinations of various features described hereinabove as well as modifications and variations thereof which would occur to a person skilled in the art upon reading the foregoing description and which are not in the prior art.