Additive manufacturing via direct writing of pure metal and eutectics through latent heat position control
10189081 ยท 2019-01-29
Assignee
Inventors
- Andrew J. Pascall (Livermore, CA, US)
- Geoffrey H. Campbell (Livermore, CA, US)
- Eric B. Duoss (Dublin, CA, US)
- Ryan M. Hunt (Aix-en-Provence, FR)
- Joshua Kuntz (Livermore, CA, US)
- Christopher M. Spadaccini (Oakland, CA, US)
Cpc classification
G05B19/4099
PHYSICS
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y70/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22D23/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
G05B19/4099
PHYSICS
Abstract
An additive manufacturing system for producing metal parts from pure metal or eutectic alloys. The system includes an additive manufacturing print head, a print head heater system, an agitation system, a nozzle in the additive manufacturing print head, a reservoir for melting the metal, and a long heated tube for conditioning the alloy for extrusion in the semi-solid state through a nozzle.
Claims
1. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head, wherein said high temperature material in said additive manufacturing print head is pure metal and eutectics; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
2. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head, wherein said high temperature material in said additive manufacturing print head is pure metal; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
3. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head, wherein said high temperature material in said additive manufacturing print head is eutectics; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
4. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product, wherein said high temperature material in said additive manufacturing print head has a heat flux with rheology and wherein said rheology said high temperature material is set by control of the heat flux into said high temperature material when said nozzle in said additive manufacturing print head extrudes said high temperature material.
5. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head, wherein said high temperature material in said additive manufacturing print head includes powdered metal particles; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
6. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head, wherein said high temperature material in said additive manufacturing print head includes metal chunks; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
7. An additive manufacturing apparatus for producing a product, comprising: an additive manufacturing print head; a high temperature material in said additive manufacturing print head, wherein said high temperature material in said additive manufacturing print head includes wire; a nozzle in said additive manufacturing print head, said nozzle extruding said high temperature material; a print head heater system operatively connected to said additive manufacturing print head; an agitation system for agitating said high temperature material; a substrate; and a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
8. An additive manufacturing apparatus for producing a product, comprising the steps of: providing an additive manufacturing print head, wherein said step of providing a high temperature material in said additive manufacturing print head comprises providing pure metal and eutectics; providing a high temperature material in said additive manufacturing print head; providing a nozzle in said additive manufacturing print head that extrudes said high temperature material; providing a print head heater system operatively connected to said additive manufacturing print head; providing an agitation system for agitating said high temperature material; providing a substrate; and providing a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
9. An additive manufacturing method for producing a product, comprising the steps of: providing an additive manufacturing print head, wherein said step of providing a high temperature material in said additive manufacturing print head comprises providing pure metal; providing a high temperature material in said additive manufacturing print head; providing a nozzle in said additive manufacturing print head that extrudes said high temperature material; providing a print head heater system operatively connected to said additive manufacturing print head; providing an agitation system for agitating said high temperature material; providing a substrate; and providing a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
10. An additive manufacturing apparatus for producing a product, comprising the steps of: providing an additive manufacturing print head, wherein said step of providing a high temperature material in said additive manufacturing print head comprises providing eutectics; providing a high temperature material in said additive manufacturing print head; providing a nozzle in said additive manufacturing print head that extrudes said high temperature material; providing a print head heater system operatively connected to said additive manufacturing print head; providing an agitation system for agitating said high temperature material; providing a substrate; and providing a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
11. An additive manufacturing method for producing a product, comprising the steps of: providing an additive manufacturing print head; providing a high temperature material in said additive manufacturing print head; providing a nozzle in said additive manufacturing print head that extrudes said high temperature material, wherein high temperature material in said additive manufacturing print head has a heat flux with rheology and wherein said step of providing a nozzle in said additive manufacturing print head that extrudes said high temperature material includes setting said rheology by controlling said heat flux into said high temperature material when said nozzle in said additive manufacturing print head extrudes said high temperature material; providing a print head heater system operatively connected to said additive manufacturing print head; providing an agitation system for agitating said high temperature material; providing a substrate; and providing a system for producing relative movement between said additive manufacturing print head and said substrate to form the product.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated into and constitute a part of the specification, illustrate specific embodiments of the apparatus, systems, and methods and, together with the general description given above, and the detailed description of the specific embodiments, serve to explain the principles of the apparatus, systems, and methods.
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
(8) Referring to the drawings, to the following detailed description, and to incorporated materials, detailed information about the apparatus, systems, and methods is provided including the description of specific embodiments. The detailed description serves to explain the principles of the apparatus, systems, and methods. The apparatus, systems, and methods are susceptible to modifications and alternative forms. The application is not limited to the particular forms disclosed. The application covers all modifications, equivalents, and alternatives falling within the spirit and scope of the apparatus, systems, and methods as defined by the claims.
(9) The inventors' have developed new additive manufacturing apparatus, systems, and methods for producing metal parts from pure metal or eutectic alloys. The inventors' apparatus, systems, and methods include a reservoir for melting the metal and a long heated tube for conditioning the alloy for extrusion in the semi-solid state through a nozzle. The inventors' apparatus, systems, and methods represent an improvement over the state-of-the-art because it can print semi-solid pure metals (non alloys) and eutectic alloys. Prior art has been limited to non-eutectic alloys because they have thermodynamically stable semi-solid states over a range of temperatures. The semi-solid states for pure metal and eutectic alloys only exist at a single temperature.
(10) Referring now to the drawings and in particular to
(11) Print head system 100.
(12) Print head system 102.
(13) Mechanical agitation system 104.
(14) AM material chamber 106.
(15) Print head body 108.
(16) Print head heater system 110.
(17) Print head nozzle 112.
(18) AM material stream exiting nozzle 114.
(19) Example printed pattern 116.
(20) Substrate 118.
(21) Substrate heating system (optional) 120.
(22) Four axis substrate motion system 122.
(23) Computer/systems controller 124.
(24) The system 100 is shown extruding a AM material stream 114 of pure metal or eutectic alloys from the nozzle 112 of the print head body 104 to form an example printed pattern 116 of the product being produced. The example printed pattern 116 is shown extruded onto the substrate 118.
(25) The system 100 operates to produce the product by sequentially layering one material on top of another in a desired pattern. Movement of the print head 108 is controlled by a computer controller 124 which provides freedom of movement along all axes as indicated by the arrows 122. Instruction information regarding the product to be created by the system 100 is fed to the computer controller 124 with a system such as the widely used numerical control programming language. The computer controller 124 uses the instructions to move the substrate 118 and/or the print head 108 through a series of moments forming the product. The print head 108 uses nozzle 112 for extruding the semisolid filament of 114 of the pure metal or eutectic alloy. The individual layers can be tailored to be made of a predetermined formula of material.
(26) The individual heating elements are controlled by the computer/controller (124 of
(27) The system 100 operates to build 3D structures by sequentially layering one material on top of another in a desired pattern. The first layer of material is originally extruded onto a substrate 118. The second layer of material is extruded onto the first layer of material. This process is continued until the final product is produced.
(28) Referring now to
(29)
(30) Heater array 204.
(31) Heating element #1-206.
(32) Heating element #2-208.
(33) Heating element #3-210.
(34) Heating element #4-212.
(35) Heating element #5-214.
(36) Heating element #6-216.
(37) Build material chamber 218.
(38) Build material chamber heating element 220.
(39) Nozzle 222.
(40) Build material port 224.
(41) Gas port 226.
(42) Agitator mechanism 228.
(43) Agitator mechanism drive motor 230.
(44) Agitator mechanism body 232.
(45) Motion arrow 234.
(46) The print head 200 has a cylindrical body 202 and a nozzle 222 made of a high temperature tolerant material. A build material chamber 218 is located in the cylindrical body 202. The build material is introduced into the build material chamber 218 through build material port 224. A build material chamber heating element 220 maintains the build material chamber 218 at the desired temperature. An agitator mechanism 228 driven by an agitator mechanism drive motor 230 moves agitator mechanism body 232 as illustrated by the arrows 234.
(47) The build material moves down the body of the print head 200 to nozzle 222. A heater array 204 including heating element #1-206, heating element #2-208, heating element #3-210, heating element #4-212, heating element #5-214, and heating element #6-216 maintains the build material flowing to the nozzle at the desired temperature and controls the heat flux into or out of the flowing material, thus setting the solid fraction. The individual heating elements are controlled by the computer/controller (124 of
(48) Referring now to
(49) Print head body 202.
(50) Heating elements 206.
(51) Nozzle 222.
(52) Agitator mechanism body 232.
(53) Motion arrow 234.
(54) Heating element insulators 236.
(55) Build stream 238.
(56) Flow arrows 240.
(57) Narrow passage 242.
(58) Substrate 118.
(59) The print head 200 has a build material chamber 218. The build material is introduced into the build material chamber 218. An agitator mechanism moves agitator mechanism body 232 as illustrated by the arrows 234. The build material moves down the body of the print head 200 to nozzle 222 through the narrow passage 242 as indicated by the flow arrows 240. The heating element 206 maintains the build material flowing to the nozzle at the desired temperature. The heating elements 206 are controlled by the computer/controller (124 of
(60) Referring now to
(61) Step 301Provide a chamber containing build materials.
(62) Step 302Heat build materials to fluid state.
(63) Step 303Extrude partially solidified build materials.
(64) Step 304Deposit build materials on a heated substrate in a desired pattern.
(65) The flow chart 300 illustrates extruding a AM material stream of pure metal or eutectic alloys from the nozzle of the print head body on a substrate to form a printed pattern of the product being produced. As shown, in step 301 a chamber contains build materials of pure metal examples of which are wire, chunks, and powdered particles.
(66) In step 302 the build materials are heated to a fluid state in the heat controlled chamber. In various embodiments a plunger can be used to extrude partially solidified build materials from the chamber in step 303. The consistency of the build materials is viscoelastic, similar to toothpaste. The nozzle deposits semi-solid build materials on a heated substrate in step 304. The build materials are deposited in a desired pattern to produce the desired product.
(67) Referring now to
(68) The build materials are deposited on the substrate 402 at the desired consistency. The print head extrudes the AM material stream of pure metal or eutectic alloys from a nozzle to form the desired pattern on the substrate forming the product being produced. The consistency of the build materials is viscoelastic. The substrate 402 is heated and the build materials are deposited in a desired pattern to produce the final product.
(69) Referring now to
(70) The system operates to build a 3D structure by sequentially layering one material on top of another in a desired pattern. The first layer 504 of material is extruded onto a substrate 502. The second layer 506 of material is extruded onto the first layer 504 of material. The third layer 508 of material is extruded onto the second layer 506 of material. The fourth layer 510 of material is extruded onto the third layer 508 of material. The individual layers can be constructed of different materials.
(71) The build materials are deposited on the substrate 502 at the desired consistency. The print heads 500 extrude the AM material stream of pure metal or eutectic alloys from a nozzle to form the desired pattern on the substrate forming the product being produced. The consistency of the build materials is chosen to provide the desired extrusion through the nozzle. The consistency of the build materials is a semisolid. For example the consistency of the build materials can be viscoelastic. The substrate 502 is heated and the build materials are deposited in a desired pattern to produce the final product.
(72) Referring now to
(73) Therefore, it will be appreciated that the scope of the present application fully encompasses other embodiments which may become obvious to those skilled in the art. In the claims, reference to an element in the singular is not intended to mean one and only one unless explicitly so stated, but rather one or more. All structural and functional equivalents to the elements of the above-described preferred embodiment that are known to those of ordinary skill in the art are expressly incorporated herein by reference and are intended to be encompassed by the present claims. Moreover, it is not necessary for a device to address each and every problem sought to be solved by the present apparatus, systems, and methods, for it to be encompassed by the present claims. Furthermore, no element or component in the present disclosure is intended to be dedicated to the public regardless of whether the element or component is explicitly recited in the claims. No claim element herein is to be construed under the provisions of 35 U.S.C. 112, sixth paragraph, unless the element is expressly recited using the phrase means for.
(74) While the apparatus, systems, and methods may be susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and have been described in detail herein. However, it should be understood that the application is not intended to be limited to the particular forms disclosed. Rather, the application is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the application as defined by the following appended claims.