BUILD PLATFORM THAT PROVIDES MECHANICAL ENGAGEMENT WITH ADDITIVE MANUFACTURING PRINTS
20180147774 ยท 2018-05-31
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B29C64/112
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C64/112
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B23Q7/03
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A build platform and methods of fabricating an article with such a platform in an extrusion-type additive manufacturing machine are provided. A platform body 202 includes features 204 that extend outward from the body 202. The features 204 define protrusive areas 206 and recessive areas 208 that cooperate to mechanically engage the extruded material that forms the initial layers 220 of an article when the article is being fabricated by a nozzle 12 of the additive manufacturing machine 10.
Claims
1-10. (canceled)
11. A method for fabricating an article of manufacture from layers of a material extruded by an additive manufacturing machine nozzle, the method comprising the steps of: a. positioning a platform body having features extending outward from said body and defining protrusive areas and recessive areas of said body, where the protrusive areas overhang the recessive areas when viewed from a nozzle central axis direction, in a build area that is accessible by the nozzle; b. extruding one or more initial layers of material with the nozzle across the protrusive areas and recessive areas at a first traverse speed such that at least one of the initial layers at least partially fills the recessive areas and is mechanically engaged by the extending features; c. extruding additional layers of material with the nozzle on top of the initial layers at a second traverse speed such that the additional layers are thermally bonded to the initial layers and the article of manufacture is engaged with the platform body; and d. disengaging the article of manufacture from the platform.
12. The method of claim 11 wherein the first traverse speed is less than the second traverse speed in the extruding steps.
13. The method of claim 11 wherein the first traverse speed is equal to the second traverse speed in the extruding steps.
14. The method of claim 11 wherein the first traverse speed is greater than the second traverse speed in the extruding steps.
15. The method of claim 11 wherein the disengaging step includes sliding the article from the platform.
16. The method of claim 11 wherein the disengaging step includes flexing the features apart.
17. The method of claim 16 wherein the disengaging step includes flexing the features apart by rotating the platform body around a cylindrical roller.
18. The method of claim 11 wherein the disengaging step includes rotating the features 360 degrees about their longitudinal axes.
19. The method of claim 11 and further comprising the step of: e. removing the initial layers from the article of manufacture.
20. (canceled)
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0014] The apparatuses and methods may be better understood with reference to the following drawings and description. Non-limiting and non-exhaustive descriptions are described with reference to the following drawings. The components in the figures are not necessarily to scale, emphasis instead being placed upon illustrating principles. In the figures, like referenced numerals may refer to like parts throughout the different figures unless otherwise specified.
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DETAILED DESCRIPTION OF THE INVENTION
[0024] With regard to all such embodiments described and contemplated, it will be appreciated that optional features, including, but not limited to, aesthetically pleasing coloration and surface design, and labeling and brand marking, may be provided in association with the present invention, all without departing from the scope of the invention.
[0025] An extrusion-type additive manufacturing machine, also known as a fused deposition modelling (FDM) machine 10, is schematically depicted in
[0026] Referring now to
[0027] In some examples, features 204 have an equal spacing 212 or pitch and in other examples, the features 204 have an unequal spacing 212 or pitch. In the example shown, the cross sectional areas of the features 204 are constant when viewed along the Y axis and in other examples, the cross sectional areas of the features 204 are constant when viewed along the X axis. Other examples and details of the raised features 204 will be discussed in greater detail later.
[0028] During the part 16 build, the initial layers 220 of heated material flow between the features 204 and at least partially fill the recessive areas 208 and beneath the overhang of the protrusive areas 206. The initial layers 220 of the part 16 and the raised features 204 cooperate such that, as the material cools, the part 16 is mechanically engaged with the build platform 200. In some instances, it may be beneficial to add a sacrificial foundation comprising 1, 2, 3, or more initial layers 220 to the CAD model to compensate for the material that flows between the features 204.
[0029] After additional layers 222 are added and the part 16 is complete, the build platform 200 and engaged part 16 may be removed from the machine 10 and transferred to another machine for post processing (e.g., CNC milling machine, boring machine, coating vat, etc . . . ). The datum registration features 214 provide positive and accurate placement of the platform 200 so that the coordinates of the part 16 used during the additive manufacturing build are preserved.
[0030] To separate a part 16 from the build platform 200, a human operator or mechanical device (e.g., lever arm, solenoid, gripper) may exert enough force on the part 16 to slide it along the direction of the features 204 and off the platform 200. Once the part 16 is removed, the initial layers 220 may be removed by a post processing step such as sanding or surface grinding. In some examples, the platform 200 may be heated to aid in part 16 removal. In other examples, the platform 200 may be flexed or arched to spread the features 204 apart and disengage the part 16. The disengaging function of the platform 200 will be explained in greater detail with respect to the remaining examples.
[0031] Referring now to
[0032] In this example the non-build area 218 that is not accessible by the nozzle 12 wraps around a roller or wheel 302 that is rotatable about either the X-axis or Y-axis (shown). The roller 302 may have an outer surface that is toothed, made of rubber or urethane or otherwise able to grip the platform 300. The non-build area 218 wraps at least ninety degrees about the roller 302 or, in some examples, it wraps more than ninety degrees around the roller 302. In this example, two rollers 302 are locked in place with a locking device 304 such as a solenoid, pin, latch, brake, gear, belt or other mechanism during the part 16 build to prevent movement. A stage 306 supports the platform 300 beneath the build area 216 to prevent movement in the Z-axis direction.
[0033] Once the part 16 is complete, the locking device 304 is released and the roller 302 is advanced manually by a human operator or automatically with a powering device 308. As the platform 300 advances about the roller 302, the finished part 16 moves from the build area 216 to the non-build area 218 and above the roller 302, where the spacing between the features 204 increases and the protrusive areas 206 separate apart. This increased spacing and separation, along with the platform's 300 non-linear path, begins to disengage, or unzip, the first few layers 220 of the part 16 from their mechanical engagement with the platform 300. Further advancement of the platform 300 by the powering device 308 and roller 302 disengages the part 16 completely from the platform 300.
[0034] The platform 300 is able to move in each of the X-axis directions (back and forth) as shown or in each of the Y-axis directions (in and out) if the rollers 302 are mounted perpendicular to their orientations shown in the figure. With this capability, the platform 300 and parts 16 can be advanced several times in one direction and then reversed and advanced several times in the other direction. The back and forth or in and out cycles allow multiple parts 16 to be fabricated automatically with little or no intervention by a human operator.
[0035] Referring now to
[0036] Referring now to
[0037] Referring now to
[0038] Referring now to
[0039]
[0040] The initial 1, 2, 3 or more layers 220 that engage the raised features 204 are extruded by the nozzle 12 at a first traverse speed and the additional layers 222 are extruded at a second traverse speed. In some examples, the first traverse speed is slower than the second traverse speed. In other examples, the first and second traverse speeds are identical. In yet other examples, the first traverse speed is faster than the second traverse speed.
[0041] The build platform examples are made from metallic or nonmetallic materials having glass transition temperatures below approximately 200 degrees Celsius (392 Fahrenheit), between approximately 200 degrees Celsius (392 Fahrenheit) and approximately 400 degrees Celsius (752 Fahrenheit) or greater than approximately 400 degrees Celsius (752 Fahrenheit). A thin body 202 allows the platforms to flex slightly in order to release a completed part 16. Metals such as aluminum alloy or stainless steel alloy for example may include raised features 204 that are manufactured by machining, stamping, upset rolling, casting or other methods. Thermoplastics such as acrylonitrile butadiene styrene (ABS) polymer, polycarbonates, polycaprolactone, polyphenylsulfones and amorphous polymers such as ABS and ULTEM or semi-crystalline polymers, such as PLA or Nylon may also be used to form the platforms. Polymers reinforced with discontinuous fibers such as carbon fibers may be used to add additional strength. The nonmetallic platforms may be formed by extrusion, injection molding, vacuum molding, additive manufacturing or other known forming methods.
[0042] A method 900 for fabricating an article of manufacture from layers of a material extruded by an additive manufacturing machine nozzle is schematically illustrated in
[0043] In some method examples, the first traverse speed 902 is less than the second traverse speed 903 in the extruding steps. In other examples, the first traverse speed 902 is equal to the second traverse speed 903 in the extruding steps. In yet other examples, the first traverse speed 902 is greater than the second traverse speed 903 in the extruding steps.
[0044] In some method examples, the disengaging step 904 includes sliding the article or part from the platform. In other examples, the disengaging step 904 includes flexing the features apart. In other examples, the disengaging step 904 includes flexing the features apart by rotating the platform body around a cylindrical roller. In yet other examples, the disengaging step includes rotating the features 360 degrees about their longitudinal axes.
[0045] In some examples, the initial layers are removed from the article of manufacture once it is disengaged from the platform. Processes such as sanding, machining, may be used to remove the initial layers of the part. As discussed earlier, the initial layers may be sacrificial and added to the CAD solid model before the build.
[0046] While this disclosure describes and enables several examples of an apparatus for supporting an article of manufacture fabricated from layers of material extruded by an additive manufacturing machine nozzle, other examples and applications are contemplated. Accordingly, the invention is intended to embrace those alternatives, modifications, equivalents, and variations as fall within the broad scope of the appended claims. The technology disclosed and claimed herein may be available for licensing in specific fields of use by the assignee of record.