Method and substrate for easy release of parts made by cold spray
11192182 · 2021-12-07
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B22F3/005
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B22F10/25
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/20
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B22F3/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B22D23/00
PERFORMING OPERATIONS; TRANSPORTING
B22F10/40
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A substrate for 3D printing using a cold spray technique. The substrate of the present invention has a porous surface with the size of pores smaller than approximately 24.4 times the mean particle size of feedstock powders for cold spray processing and larger than or equal to approximately 6.84 times the mean particle size. Due to no adhesion of a 3D-printed part to the porous regions of the substrate, the parts fabricated by cold spray can be easily removed from the porous substrate without cutting.
Claims
1. A porous substrate comprising: a porous layer for use as a base, and one or more feedstock powders applied by cold spray and forming a part on the porous layer, wherein the part is not permanently bonded with the porous layer; the porous layer further comprising: a plurality of pores, wherein each of the pores has a pore size that is less than approximately 24.4 times a mean particle size of the one or more feedstock powders and is greater than or equal to approximately 6.84 times the mean particle size.
2. The porous substrate of claim 1: wherein the mean particle size is determined as a mean Feret diameter of the one or more feedstock powders.
3. The porous substrate of claim 1, further comprising: a nonporous underlayer on, a bottom surface of the porous layer, wherein the part is formed on a top surface of the porous layer.
4. The porous substrate of claim 1: wherein the mean particle size is between and including 11.0 micrometers and 14.7 micrometers.
5. The porous substrate of claim 4: wherein the porous layer is a wire mesh, and wherein the plurity of pores are a plurality of through-pores.
6. The porous substrate of claim 5: wherein the wire mesh has a wire thickness that is equal to or less than approximately 55.5 micrometers.
7. A porous substrate comprising: a porous layer for use as a base, one or more feedstock powders applied by cold spray and forming a part on the porous layer, wherein the part is not permanently bonded with the porous layer; and a non-porous layer located below the porous layer; the porous layer further comprising: a plurality of pores, wherein each of the pores has a pore size that is less than approximately 24.4 times a mean particle size of the one or more feedstock powders used in forming the part and is greater than or equal to approximately 6.84 times the mean particle size.
8. The porous substrate of claim 7: wherein the mean particle size is determined as a mean Feret diameter of the one or more feedstock powders.
9. The porous substrate of claim 7: wherein the mean particle size is between and including 11.0 micrometers and 14.7 micrometers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(15) Embodiments in accordance with the invention are further described herein with reference to the drawings.
DETAILED DESCRIPTION OF THE INVENTION
(16) The following description is provided to enable any person skilled in the art to use the invention and sets forth the best mode contemplated by the inventor for carrying out the invention. Various modifications, however, will remain readily apparent to those skilled in the art, since the principles of the present invention are defined herein specifically to provide a porous substrate for removably forming a part created by cold spray.
(17) Described herein is a porous substrate for forming parts by cold spray. The porous substrate has a pore size that is selected according to the mean particle size of the feedstock powder used for the cold spray. Specifically, the pore size of the porous substrate can be less than a maximum pore-powder ratio times the mean particle size of the feedstock powders. For example, the maximum pore-powder ratio could be about 24.44. In another example, the maximum pore-powder ratio could be about 6.85.
(18) Typically, 3D printed parts that are fabricated by cold spray are bonded to the substrate. To facilitate the part removal process and eliminate the extra cutting step to remove the part from the substrate, the porous substrate described herein can be used when cold spraying. Even with the pore size bigger than the average particle size of the feedstock powders, a portion of the feedstock particles do not penetrate into the porous substrate because of the adhesion of the impacting particles to the edges of the pores, which reduces the size of and eventually covers the pores with the impacting particles. Since there is no adhesion between the 3D-printed parts and the porous regions of the substrates, the 3D-printed parts fabricated by cold spray can then be easily removed from the porous substrates without cutting.
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(20) In block 104, a porous substrate is selected. Specifically, the porous substrate is selected based on the mean particle size of the feedstock powders. Mean particle size refers to the average size of solid particles in the feedstock powders. The mean particle size can be determined, for example, by using a scanning electron microscope. In this example, image processing software can be used to detect the edges of particles in the electron microscope image, where particle sizes of the edges are used to determine the mean particle size of the feedstock powders. Other techniques can be used to determine the mean particle size including, but not limited to, laser diffraction, dynamic light scattering, sedimentation, image analysis, acoustic spectroscopy, etc. Once the mean particle size is known, the pore size of the porous substrate can be determined with respect to the mean particle size.
(21) In some cases, the pore size selection can be accomplished by using test data that identifies an ideal ratio between the pore size of the porous substrate and the mean particle size of the feedstock powder. The test data can indicate that the pore size of the porous substrate should be less than a maximum powder-pore ratio. For example, the maximum powder-pore ratio can be 24.44. In another example, the maximum powder-pore ratio can be 6.85. A mesh substrate that satisfies the ratio can be selected and used as the porous substrate.
(22) The pores of the substrate can be on the surface as described with respect to
(23) In block 106, a product is formed on the porous substrate using cold spray. The feedstock powders are accelerated towards the porous substrate in a supersonic gas jet. Upon impact, even the pore size is bigger than the mean particle size of the feedstock particles, a portion of the feedstock particles do not penetrate into the substrate due to the particles' adhesion to the edge of the pores, which eventually results in the pores being covered by the feedstock particles. In this manner the final product is formed without being permanently bonded to the porous substrate.
(24) In block 108, the product is removed from the porous substrate. Because the product is not bonded to the porous substrate, the product can be easily removed from the porous substrate without cutting. The easy removal decreases the probability that the porous substrate is damaged during the removal process, which allows for the porous substrate to be reused for future cold spray applications.
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(27) Specifically, the impacting feedstock powder 206 adhere to the edges of the pores in the porous substrate 202. As the feedstock powder 206 continue to adhere to the edges of the pores, the feedstock powders 206 eventually cover the pores of the porous substrate 202. The part 208 can then be formed on top of the covered pores without becoming permanently affixed to the porous substrate 202.
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(31) ImageJ is an image processing program that is capable of analyzing and processing images to, for example, calculate area, measure distances, perform geometric transformations, detect edges, etc. In the processed image 404 the detected edges of the feedstock particles as determined by ImageJ are shown. Using the processed image 404, the mean Feret diameter of each particle can be determined and then used to calculate the mean particle size of the feedstock powder.
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(34) During tests of the various mesh sizes, feedstock powders of 5 to 45 μm penetrated the mesh 45 602 and mesh 16 604, which caused the cold spray to fail to form a part on top of these porous substrates. However, the feedstock powders did form parts on the top surfaces of mesh 170 606, mesh 200 608, and mesh 400 610.
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(39) This disclosure provides exemplary embodiments of the present invention. The scope of the present invention is not limited by these exemplary embodiments. Numerous variations, whether explicitly provided for by the specification or implied by the specification or not, may be implemented by one of skill in the art in view of this disclosure.