Porous sintered metal body and method for preparing the porous sintered metal body
Additive manufacturing techniques for porous sintered metal bodies address inefficiencies in current methods by producing high-porosity, complex geometries with reduced labor and waste, suitable for filtration in electronics and semiconductor manufacturing.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-03-04
AI Technical Summary
Current methods for producing porous sintered metal bodies are labor-intensive, imprecise, and costly, leading to substantial waste and inefficiency, particularly in forming complex geometries.
An additive manufacturing process using lamination steps with metal particles dispersed in a solid polymer, followed by sintering, to create porous sintered metal bodies with high porosity (50-80%) and complex shapes, replacing manual and imprecise methods.
The process achieves accurate, less labor-intensive production of porous sintered metal bodies with high porosity, suitable for filtration in electronics and semiconductor manufacturing, reducing waste and costs while enabling complex geometries.
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Abstract
Description
[Technical Field]
[0001] The described invention relates to porous sintered metal bodies and methods and compositions for forming porous sintered metal bodies by additive manufacturing processes. [Background technology]
[0002] Porous sintered bodies are used in a variety of industrial applications, including the filtration of materials used in the electronics and semiconductor manufacturing industries, as well as other industries that require high-purity materials for processing. For example, in the semiconductor and microelectronics industries, in-line filters are frequently used to remove particulate matter from fluids to prevent their introduction into the manufacturing process. The fluid may be in the form of a gas or a liquid.
[0003] Currently, common methods for commercially preparing porous sintered metal bodies involve forming and sintering steps that require manual movement and handling of intermediate (in-process) forms of the porous body. These steps are labor-intensive. Furthermore, the bodies are fragile and the forming process can be imprecise. These characteristics make the process prone to substantial waste, undesirably low efficiency, and undesirably high cost. Summary of the Invention
[0004] The present invention provides new and inventive techniques and compositions for forming porous sintered metal bodies. The methods of the present invention do not incur the same inefficiencies and costs associated with current technologies, but replace labor-intensive, less accurate, and potentially variable manual processes with more accurate, less labor-intensive additive manufacturing techniques that also have the advantage of being able to form parts with highly complex geometries.
[0005] The described process is believed to be novel and inventive compared to current and previous additive manufacturing techniques for preparing other types of metal structures. Previous additive manufacturing methods for preparing metal parts are designed to produce solid metal bodies with low porosity, e.g., porosity of less than 10%. In contrast, the present invention is specifically designed and intended to produce metal bodies with substantial or high porosity, e.g., at least 50% porosity. Exemplary processes can produce finished porous sintered metal bodies with porosities in the range of 50-80%. It has been found that to successfully process this method, the particles used to form the sintered porous body can be selected to exhibit a low "relative apparent density," which can be a function of the particle morphology (e.g., shape).
[0006] In one aspect, the present invention relates to a method for forming a porous sintered metal body by an additive manufacturing process, the method comprising: forming a layer on a surface including a feedstock containing metal particles; selectively forming a solidified feedstock containing metal particles and a solid polymer in a portion of the layer containing 20-50% by volume of the metal particles; forming a second layer on the layer containing the solidified feedstock including a feedstock containing metal particles; selectively forming a solidified feedstock containing metal particles and a solid polymer in a portion of the second layer containing 20-50% by volume of the metal particles; and sintering the metal particles in that portion to form a porous sintered metal body containing 20-50% by volume of the metal particles.
[0007] In another aspect, the present invention relates to a feedstock containing 50 to 80 volume percent of a curable liquid polymer binder; and 20 to 50 volume percent of metal particles having a relative apparent density within the range of 5 to 35 percent of the theoretical density of the particles, based on the total volume of the feedstock composition.
[0008] In yet another aspect, the present invention relates to a feedstock containing solid pore-forming polymer particles and 20 to 50 volume percent metal particles having a relative apparent density within the range of 5 to 35 percent of the theoretical density of the particles, based on the total volume of the feedstock composition.
[0009] In yet another aspect, the present invention relates to a porous sintered metal body formed by additive manufacturing, containing sintered metal particles, and having a porosity in the range of 50-80%. [Brief explanation of the drawings]
[0010] [Figure 1A] 1 illustrates exemplary steps of a described method for forming a porous sintered metal body by additive manufacturing techniques. [Figure 1B] 1 illustrates exemplary steps of a described method for forming a porous sintered metal body by additive manufacturing techniques. [Figure 2A] 1 illustrates exemplary steps of a described method for forming a porous sintered metal body by additive manufacturing techniques. [Figure 2B] 1 illustrates exemplary steps of a described method for forming a porous sintered metal body by additive manufacturing techniques. [Figure 3A] 1 illustrates exemplary steps of a described method for forming a porous sintered metal body by additive manufacturing techniques. [Figure 3B] 1 illustrates exemplary steps of a described method for forming a porous sintered metal body by additive manufacturing techniques. [Figure 4A] 1 shows an aggregate of metal particles as described herein. [Figure 4B] 1 shows an aggregate of metal particles as described herein. [Figure 4C] 1 shows an aggregate of metal particles as described herein. [Figure 4D] 1 shows an aggregate of metal particles as described herein. [Figure 5A] 1A-1D illustrate various shapes of exemplary sintered porous bodies that can be formed by the additive manufacturing techniques described herein. [Figure 5B] 1A-1D illustrate various shapes of exemplary sintered porous bodies that can be formed by the additive manufacturing techniques described herein. [Figure 5C] 1A-1D illustrate various shapes of exemplary sintered porous bodies that can be formed by the additive manufacturing techniques described herein. [Figure 5D]1A-1D illustrate various shapes of exemplary sintered porous bodies that can be formed by the additive manufacturing techniques described herein. [Figure 6A] 1 illustrates an exemplary sintered porous body that can be formed by the additive manufacturing techniques described herein. [Figure 6B] 1 illustrates an exemplary sintered porous body that can be formed by the additive manufacturing techniques described herein. DETAILED DESCRIPTION OF THE INVENTION
[0011] In accordance with the following description, porous sintered metal bodies (including, but not limited to, porous sintered membranes useful as filter membranes) are prepared by additive manufacturing methods, including what are commonly referred to as "three-dimensional printing" ("3D printing") techniques. A variety of additive manufacturing techniques are known. Some specific types are referred to as "binder jet printing," "stereolithography," and "selective laser sintering," to name just a few. The methods and compositions herein are described with respect to these three exemplary types. However, it will be further understood that the described methods and compositions are generally useful for other additive manufacturing techniques in addition to the specific examples of "binder jet printing," "stereolithography," and "selective laser sintering."
[0012] The described method involves lamination steps that individually and sequentially form multiple layers of a solidified feedstock containing metal particles dispersed in a solid polymer. Using a series of lamination steps, the multiple layers of the solidified feedstock are formed into a multilayer composite made from multiple layers of the solidified feedstock, each layer formed separately. The multilayer composite contains metal particles dispersed and held in place by a solid polymer. Optionally, the multilayer composite can be further processed to harden or further rigidify the solid polymer. In any desired order, or in a single step, the solid polymer can be removed from the metal particles, and the metal particles can be processed by a sintering step at a sintering temperature to form a porous metal particle matrix interconnected to the metal particles, i.e., a porous sintered metal body. The resulting porous sintered metal body comprises (or consists of, or consists essentially of) a solid (e.g., rigid or semi-rigid) matrix of fused and thereby interconnected metal particles. The matrix is porous (e.g., highly porous), and the particles of the matrix are bonded to each other at adjacent surfaces during the sintering step.
[0013] Porous sintered metal bodies can have high porosity, especially compared to previous metal structures prepared by additive manufacturing techniques. Exemplary porous sintered metal bodies can be prepared with porosities useful for metal bodies used as filters to remove particles or other contaminants from very high-purity fluids (e.g., gases or liquids), such as those used to manufacture electronic devices, microelectronic devices, or semiconductor materials. Exemplary porosities can range from at least 50% by volume, e.g., 50% to 60, 70, 75, 80, or 85% by volume, or more.
[0014] As used herein, and in the art of porous bodies, the "porosity" (sometimes referred to as "void fraction") of a porous sintered metal body is a measure of the void (i.e., "void") space within the body as a percentage of the total volume of the body, calculated as the ratio of the volume of the voids in the body to the total volume of the body. A body with 0% porosity is completely solid.
[0015] The relevant measurements herein for a porous body or its precursor (e.g., a "solidified feedstock" present during an additive manufacturing process) are the amount by volume of metal particles in the composition or structure. The amount of metal particles per volume of structure or composition is the volume percent of metal particles in the composition or structure per total volume of the composition or structural object. Portions of the total volume of the composition or structure that do not contain metal particles may (or may not) contain another material, such as a polymer used during the additive manufacturing process (e.g., a feedstock polymer or binder), in any form (e.g., solid, liquid, cured, uncured). For a finished porous sintered metal body (assuming no residue remains on the surface of the porous sintered metal body), the percent porosity of the sintered body plus the volume percent of metal particles in the sintered body equals 100 percent.
[0016] The porous body can be in the form of any useful form and shape, for example, a film that can have the form of a flat sheet, for example, a single piece flat sheet or film that is substantially planar and essentially two-dimensional (having a very small thickness). However, additive manufacturing techniques can be applied to the formation of porous sintered metal bodies, allowing for a very wide range of new possible shapes and forms that were not possible using previous methods for preparing porous bodies.
[0017] Additive manufacturing can be used to form almost any two-dimensional or three-dimensional shape. A porous metal body can be fabricated from a single, monolithic structure, as is conventional, having almost any conceivable two-dimensional or three-dimensional shape. Alternatively, by using additive manufacturing techniques, a porous metal body can now include multiple segments, of any desired shape, interconnected, e.g., intertwined, woven, wound, spiraled, interlocked, or folded. For use as a filter membrane, common shapes include: curved or rounded plates or "cups"; rings, e.g., tubes having a circular or round cross-section when viewed along the tube's axis, e.g., cylinders or cylindrical tubes; tubes of any cross-section, one open end and one closed end, "closed cylinders"; and tubes (cylinders or closed cylinders) with non-circular cross-sections, e.g., shapes including angles, angles, or pleated patterns (e.g., multi-point stars or circular "zigzag" patterns).
[0018] Porous sintered metal bodies for use as filters (any shape) typically include two opposing major surfaces and a thickness between the two opposing major surfaces through which fluid flows during the filtration process. The thickness of exemplary metal bodies used as filter membranes (e.g., the thickness of a disk or cup, or the thickness of the body wall of a tube or cylinder) can be within a range effective for use as a filter that provides desirable flow characteristics, e.g., sufficient flow at a given pressure drop, and filtration characteristics, e.g., particle retention, while retaining sufficient strength and structural integrity to be handled, installed, and used as part of a filter system. Examples of useful thicknesses can range from 0.5 to 5 millimeters, e.g., 1 to 4 millimeters.
[0019] As described herein, porous sintered metal bodies are formed by additive manufacturing techniques. Additive manufacturing techniques are commonly known for use in the manufacture of various structures, such as non-porous polymers and metal or metal-containing structures. Typically, porosity in structures formed by additive manufacturing methods is undesirable. A typical goal is to avoid pores in finished parts manufactured by additive manufacturing, including metal parts. Consistent with the typical concern for avoiding pores, it is not believed that any additive manufacturing methods have previously been used to form porous sintered metal bodies of the type described herein, such as porous sintered metal bodies that may be useful as filter membranes for very high-purity filtering of fluids for use in electronic device, microelectronic device, or semiconductor material manufacturing. In other words, it is not believed that additive manufacturing has previously been used to form porous sintered metal bodies having high porosity (void fraction), for example, porosity greater than 50%.
[0020] A method for forming a porous metal body by an additive manufacturing process can generally include a series of multiple individual steps, each of which is used to form a single cross-sectional layer of the porous metal body, and the series of multiple steps is effective to form a porous sintered metal body that is a multilayer composite of the solidified feedstock of the cross-sectional layers prepared by each step, i.e., a multilayer porous sintered metal body. Each step includes forming a single feedstock layer on a surface, the feedstock containing metal particles and an optional polymer; and then selectively forming a solidified feedstock containing the metal particles of the feedstock and the solid polymer in selected portions of the feedstock layer. To produce a porous metal body, the solidified feedstock preferably contains less than 50% metal particles by volume, e.g., in the range of 20-50% metal particles by volume, based on the total volume of the solidified feedstock.
[0021] As used herein to calculate the volume percent of metal particles in a composition or structure, the total volume of the composition or structure is considered the nominal or "bulk" volume of the composition or structure. For example, for a portion of a feed layer that is solidified feed material, as part of a feed layer, the total volume of the feed layer is the total area of the layer multiplied by the thickness of the layer, and the total volume of solidified feed material in the feed layer is the area of the solidified feed portion of the feed layer multiplied by the thickness of the feed layer.
[0022] The feedstock layer can be formed on a surface by any useful process or apparatus. According to one example of applying a powder feedstock to a surface, a roller uniformly applies a quantity of powder feedstock onto the surface by applying a single quantity of powder feedstock in a single pass, or by applying multiple discrete quantities of powder feedstock in multiple passes over the surface. A "feedstock layer" can be formed by one or more processes of applying the feedstock to a surface and using a roller or other application method to form a smooth, uniform feedstock layer having a desired useful depth. The useful depth of the feedstock layer can depend on the resolution of the printhead used to apply the binder to the feedstock layer. As one non-limiting example, a printhead with a 100 micron resolution may be used with a feedstock layer of about 10 microns.
[0023] The solid polymer of the solidified feedstock may originate from polymeric material (including polymerizable oligomeric or monomeric material) initially present in the feedstock layer formed on the surface. Alternatively, the solid polymer may instead originate from polymeric material deposited in the layer in a separate step after the feedstock layer is formed on the surface but before a subsequent feedstock layer is applied over the feedstock layer.
[0024] In multiple successive steps, each forming a single feedstock layer using a feedstock containing metal particles, followed by selectively forming a solidified feedstock in a portion of each of the individual feedstock layers, a multi-layer consolidated feedstock composite is produced that is a composite of the portion of the solidified feedstock formed in each of the individual feedstock layers, where a subsequent new feedstock layer (other than the initial feedstock layer) is formed on top of the previous feedstock layer containing the solidified feedstock. The multi-layer consolidated feedstock composite is within the original feedstock mass that has not been formed into a solidified feedstock and can then be separated from the multi-layer consolidated feedstock composite.
[0025] A multilayer consolidated feedstock composite (or simply "multilayer composite") includes multiple individually formed layers of consolidated feedstock, each layer in contact with one or more adjacent layers of consolidated feedstock, and each layer of consolidated feedstock is a separate quantity of consolidated feedstock formed using one of the feedstock layers deposited on the surface. The multilayer composite includes one layer formed during each of the steps of forming a feedstock layer containing metal particles on a surface; and forming a consolidated feedstock over a portion of the area of the feedstock layer, where the consolidated feedstock includes metal particles from the feedstock layer and solid (e.g., cured, hardened, dried, etc.) polymer.
[0026] The feedstock used to form a layer on a surface contains metal particles and may optionally contain (in combination with the metal particles) one or more polymers. The polymer as part of the feedstock may be effective to perform any one or more of a variety of functions and may be in a variety of useful forms, such as a polymer coating on the surface of the metal particles, solid polymer (e.g., thermoplastic) particles separate from the metal particles, or a curable (e.g., by electromagnetic radiation such as UV light) liquid polymer in which the metal particles are dispensed and suspended as part of the feedstock.
[0027] One possible purpose of the polymer in the feedstock is to separate and create space between metal particles in the feedstock and metal particles in the feedstock layer deposited on the surface. These solid polymer particles, sometimes referred to as "pore-forming polymer particles," are in solid form as part of the feedstock and can act to physically separate metal particles within the feedstock and feedstock layer, creating space between metal particles in the feedstock layer, and distributing the metal particles with a desired level of spacing and uniformity throughout the feedstock layer. The pore-forming polymer particles promote the formation of a feedstock layer or solidified feedstock layer containing metal particles distributed therein, with the metal particles present at a desirably low volume percentage relative to the volume of the feedstock layer or solidified feedstock layer; for example, preferred feedstock layers and solidified feedstock layers may contain less than 50% metal particles by volume. Feedstocks in powder form containing metal particles and polymer particles may further contain minor ingredients such as flow aids and dispersants to prevent particle agglomeration.
[0028] The pore-forming polymer particles may be of any useful polymer composition (e.g., thermoplastic) and may be of a size that makes them useful in combination with the feedstock metal particles. The size of the pore-forming particles may be on the micron scale, e.g., having an average size of less than 100 microns, less than 100 microns, less than 50 microns, less than 10 microns, or less than 20 microns, e.g., in the range of 1 to 20 microns, within a size range that is also useful for the feedstock metal particles.
[0029] Another type of polymer that can be included in the feedstock can be a polymer present as a solid coating on the surfaces of the metal particles of the feedstock. This polymer can be a thermoplastic polymer that can be reversibly melted and solidified to selectively (i.e., on some areas of the layer) create a bondable polymer matrix made of molten and solidified polymer that bonds the metal particles of the feedstock layer and forms a solidified feedstock made of solid polymer and bonded metal particles. This type of polymer coating on the surfaces of the metal particles of the feedstock can be selectively and reversibly melted and re-hardened in some areas of the feedstock layer to create structural bonds with the polymer between adjacent metal particles and fix the positions of the metal particles relative to adjacent metal particles in the solidified feedstock described herein.
[0030] Yet another type of polymer that can be included in a metal particle-containing feedstock can be a curable liquid polymer (sometimes referred to as a "binder"). The feedstock is a liquid containing metal particles dispersed (preferably uniformly) throughout the curable liquid polymer. The feedstock can be formed into a liquid feedstock layer on a surface and then selectively cured over the entire area of the feedstock layer. For example, a portion of the curable liquid polymer in the layer can be selectively cured (solidified) (in selected areas of the layer) by exposing the liquid polymer to electromagnetic energy from a laser, such as a UV laser. When the curable liquid polymer selectively hardens in a portion of the feedstock layer, a solidified feedstock is produced that includes a mass of solid (hardened) polymer surrounding the metal particles. The solid polymer fixes the position of the metal particles in the solidified feedstock relative to adjacent metal particles. The curable liquid polymer also facilitates the formation of a feed layer and a solidified feed (as part of the feed layer) that contains a desired low volume percentage of metal particles distributed within the feed layer and solidified feed; for example, the feed layer or solidified feed may preferably contain less than 50% metal particles based on the total volume of the feed layer or solidified feed, respectively.
[0031] The curable liquid polymer (binder) may comprise a curable polymeric material which may contain oligomers, polymers, etc., and may further typically contain small amounts of functional ingredients or additives that enable or promote the flow or hardening of the polymer. These may include any of the following: flow aids, surfactants, emulsifiers, dispersants to prevent particle agglomeration, and initiators to initiate hardening of the polymer upon exposure to electromagnetic (e.g., ultraviolet) radiation.
[0032] The additive manufacturing process as described uses multiple successive steps to form individual feedstock layers, one step per layer, with each layer except the first layer being formed on the previous layer, which includes the feedstock and solidified feedstock. Each successive feedstock layer is processed to form a solidified feedstock in a portion of the feedstock layer. Subsequent layers are then applied and processed to form solidified feedstock until the desired number of feedstock layers including solidified feedstock have been formed. The individual layers formed by the successive steps, each having a portion that is solidified feedstock, form a multi-layer solidified feedstock composite (or simply "solidified feedstock composite") that is a composite of the individual layers of solidified feedstock formed in each individual feedstock layer. The multi-layer solidified feedstock composite exists within and between the amount of the original feedstock that has not been processed into solidified feedstock.
[0033] Based on this specification, which generally uses additive manufacturing processes to prepare interconnected metal bodies and porous sintered metal bodies from metal particles, it is contemplated herein that such bodies may be prepared by using a wide variety of additive manufacturing processes, methods, techniques, and associated polymers and compositions, including those described herein, others currently known and understood, and future-developed useful processes, methods, compositions, and techniques consistent with any of those generally or specifically described herein. Specific non-limiting examples of additive manufacturing techniques currently known and contemplated for use in accordance with this specification include the additive manufacturing techniques sometimes referred to as binder jet printing, stereolithography (SLA), and selective laser sintering (SLS).
[0034] Similar to other additive manufacturing techniques, binder jet printing (also known as "powder bed and inkjet" printing, "binder jet 3D printing," and "drop-on powder printing") is a method for manufacturing objects described by digital data, such as a CAD (computer-aided design) file. Also similar to other additive manufacturing processes, a three-dimensional structure is sequentially constructed through a series of individual steps that combine to produce a composite (herein, a "solid composite") made from multiple thin cross-sectional layers (herein, "solidified feedstock" of "layers") of the three-dimensional structure. A print head, according to the present invention, moves across a layer of feedstock containing metal particles. The print head selectively deposits a liquid polymer (herein, a "binder") onto a portion of the top surface of the feedstock layer. The liquid polymer flows into the feedstock layer and dries or otherwise solidifies to form a solidified feedstock in a portion of the layer. The solidified feedstock includes metal particles and solidified (e.g., dried) polymer formed from the applied liquid polymer.
[0035] An additional thin layer of feedstock is spread on top of the completed layer comprising the original (unsolidified) feedstock and the solidified feedstock.
[0036] This process is repeated, with each layer being built upon and adhered to the previous layer. Multiple feedstock layers are deposited in succession, one on top of each completed layer, to form a multilayer consolidated feedstock composite containing each layer of consolidated feedstock. After all layers of the multilayer consolidated feedstock composite have been deposited, the areas of the layer containing the original feedstock not used to prepare the consolidated feedstock are separated from the multilayer composite. The multilayer composite can then be processed through a curing step, which uses elevated temperatures to harden (e.g., cross-link) the liquid binder, a disaggregation step, which removes the hardened polymer of the liquid binder, and a sintering step, which fuses the metal particles of the composite together to form a sintered porous metal body.
[0037] The break-up and sintering steps may be performed in a single apparatus (e.g., an oven or furnace), or may be performed sequentially, with a break-up step in one apparatus followed by a sintering step in a second (different) apparatus. The temperature used for the break-up step is lower than the temperature used for the sintering step. The break-up step temperature may typically be in the range of less than 600 degrees Celsius, for example, in the range of 100 to 550 or 600 degrees Celsius. The temperature selected for any particular break-up step for a particular multilayer composite may depend on the binder chemistry. The temperature for sintering may generally be higher than the temperature for the break-up step, for example, higher than 550 or 600 degrees Celsius.
[0038] According to exemplary methods and compositions, the feedstock used in binder jet printing processes may optionally, but preferably, contain a solid polymer along with the metal particles. The solid polymer may be a thermoplastic (solid form at room temperature) pore-forming polymer and may be present in the feedstock in any amount, such as 0.5 to 15 wt. % based on the total weight of the feedstock, for example, 1 to 12 or 2 to 10 wt. % based on the total weight of the feedstock, with the remainder of the feedstock (by weight) being the metal particles.
[0039] An example of a binder jet printing additive manufacturing technique (100) useful for preparing porous sintered metal bodies is shown in FIGS. 1A and 1B. FIG. 1A illustrates the sequence of steps of a useful jet printing additive manufacturing technique and identifies that the method can be used independently with different forms of feedstocks 102 and 104. Feedstock 102 is a powder containing a metal particle powder in combination with solid thermoplastic polymer (e.g., another thermoplastic polymer, polymethyl methacrylate, "PMMA") pore-forming particle beads and a polymer (e.g., a solvent-coated thermoplastic polymer) coated on the beads and metal particles. Feedstock 104 is a powder containing metal particles in combination with polymer pore-forming particle beads, but without a polymer coating on the beads or metal particles. FIG. 1B illustrates the steps of technique 100, including associated process equipment and feedstocks.
[0040] The process can be carried out using commercially available binder jet printing equipment, a thermoplastic polymer (feedstock), and a liquid polymer binder dispensed from the equipment's print head. According to exemplary steps of the method ( FIG. 1 , including the supplementary numbered steps), the feedstock (102 or 104) is formed as a uniform feedstock layer of a desired depth on the build plate of the equipment (110). In the next step (112), the print head selectively deposits a liquid polymer binder onto a portion of the first layer. The liquid polymer binder contains a polymer in a liquid solvent. After the liquid polymer binder is selectively applied to the feedstock layer, it can be solidified by applying heat to the liquid polymer binder to remove the solvent from the binder, forming a solidified feedstock in that portion.
[0041] The liquid binder is applied to the feed layer in an amount effective to fix the positions of the metal particles and optional pore formers in the feed layer. The liquid binder need not fill the spaces between the metal particles or pore formers of the powder feed, but may be applied in an amount to bond or "bridge" adjacent or nearby particles in the powder feed layer, fixing the positions of the particles relative to other particles, without necessarily filling the void spaces in the feed layer. The "solidified" feed is "solid" in the sense that it is reinforced, rigid, or hardened, i.e., made of hardened or dried (non-liquid) polymer, but may be porous.
[0042] The portions of the layer not formed into solidified feedstock remain as the original powder feedstock. The build plate is moved downward (114), forming a second layer of feedstock as a second uniform layer over the first layer and the original solidified feedstock (116). The print head then selectively deposits (118) a second amount of liquid polymer binder onto the second layer portions, which is solidified by using heat to remove the solvent and form a dry (solidified) polymer binder, forming the solidified feedstock from the second layer. The portions of the second layer not formed into solidified feedstock remain as the original powder feedstock. Steps 114, 116, and 118 are repeated (120) to form a finished multilayer solidified feedstock composite (the "final part") surrounded by the original powder feedstock (102 or 104). The multilayer solidified feedstock composite is a body containing the solidified feedstock from each formed layer, composed of metal particles dispersed in a solidified (solid) polymer binder. The multilayer consolidated feedstock composite may be heated (122), optionally in the presence of the surrounding original powder feedstock, to crosslink and harden the liquid polymer binder. The original (unconsolidated) powder feedstock (102 or 104) may be removed and separated (124) from the multilayer composite. The multilayer composite may be transferred (126) to a furnace for heating to a sintering temperature effective to remove (disintegrate) the consolidated binder and fuse the metal particles of the multilayer composite solid to form a final porous sintered metal body (128) having a desired final density.
[0043] Referring to FIG. 1B , the process can be carried out using a commercially available binder jet printing apparatus (130), a feedstock (132) as described herein, and a liquid polymer binder (133) dispensed from a print head (136) of the apparatus (130). According to an exemplary step of the method, the feedstock (132) is formed as a uniform feedstock layer (134) on a build plate (138) of the apparatus (130). The feedstock layer (134) can be formed using one or more passes, using a roller or other leveling device, to uniformly form and distribute the feedstock (132) to the desired depth. The print head (136) selectively deposits the liquid binder (133) onto portions of the initial layer (134). The liquid polymer binder (133) is solidified by drying with heat to evaporate the binder solvent and form an initial solidified feedstock (140) containing solid polymer in that portion. The portion of the feedstock layer 134 that is not formed into a solidified feedstock (140) remains as the original powder feedstock (132). The build plate (136) is moved downward (114) to form a second, or subsequent, feedstock layer (142) over the first layer (134) and the initial solidified feedstock (140). The print head (136) then selectively deposits a second amount of liquid polymer binder (133) onto the portion of the second layer (142), which solidifies to form a solidified feedstock from the second layer. The portion of the second layer that is not formed into a solidified feedstock remains as the original powder feedstock. This sequence of applying a feedstock layer on top of the previous layer and applying a binder to the new feedstock layer to create a solidified feedstock for the new feedstock layer is repeated (150) to form a finished multi-layer consolidated feedstock composite ("final part") (152) surrounded by the original powder feedstock (132). The multi-layer consolidated feedstock composite (152) is a body that contains the solidified feedstock of each layer formed, consisting of metal particles from the feedstock dispersed in a solidified (solid) polymer binder.
[0044] The multi-layered consolidated feedstock composite may be heated (122), optionally in the presence of the surrounding original powder feedstock (132), to cure the liquid polymer binder.
[0045] The original (unconsolidated) powder feedstock (132) can be removed and separated from the multi-layer composite (152). The multi-layer composite (152) can be transferred to a furnace for heating to a sintering temperature effective to remove (disintegrate) the consolidated binder from the multi-layer composite (152) and fuse the metal particles of the multi-layer composite (152) to form a final porous sintered metal body (160).
[0046] A technique called stereolithography (SLA) is a variation of additive manufacturing technology, and as understood and described herein, can be used to form porous sintered metal bodies in a layer-by-layer manner using a photochemical process in which light selectively crosslinks and solidifies chemical monomers and oligomers (collectively referred to as "polymers" or "liquid polymer binders") in a liquid feedstock layer to form a hardened polymeric reaction product ("solid polymer") of the solidified feedstock in the feedstock layer. The liquid polymer binder can be selectively cured by exposure to electromagnetic radiation, such as ultraviolet (UV) light. The feedstock is in liquid form and contains a curable liquid polymer ("liquid polymer binder") in combination with metal particles.
[0047] The manufactured ("printed") part is built up through a series of steps that produce a composite (herein "solid composite") made of multiple thin cross-sections (herein "solidified feedstock" of "layers") of a larger three-dimensional structure. An electromagnetic radiation source (e.g., a laser), according to the present invention, selectively applies electromagnetic radiation onto a portion of a layer of liquid feedstock containing metal particles and a liquid polymer binder that can be solidified by chemically curing upon exposure to electromagnetic radiation. The laser selectively irradiates a portion of the layer of liquid feedstock at the surface of the layer. The electromagnetic radiation solidifies (i.e., hardens) the liquid polymer binder by chemical reaction to form a solidified feedstock containing metal particles and a solidified (hardened) polymer.
[0048] An additional thin layer of feedstock is spread on top of the completed layer containing the solidified feedstock, and the process is repeated, forming multiple layers on top of and adhering to the previous layer. Multiple layers are successively deposited, one on top of each completed layer, to form a multilayer solidified feedstock composite that is a composite of each layer of the solidified feedstock. After all layers of the multilayer solidified feedstock composite have been formed, the portion of the layer containing the original liquid feedstock not used to prepare the solidified feedstock is separated from the multilayer solidified feedstock composite. The multilayer solidified feedstock composite can then be processed by removing the solidified (hardened) polymer from the metal particles (i.e., "disintegrating") and by a sintering step to fuse the metal particles of the multilayer composite together to form a porous sintered metal body. These disintegrating and sintering steps can be performed using a single device (oven or furnace) or two separate devices.
[0049] An example of a stereolithography additive manufacturing technique (200) useful for preparing the porous sintered metal bodies described herein is shown in Figure 2A. The feedstock 202 is a liquid containing metal particles in combination with a liquid curable polymer binder.
[0050] This process can be carried out using a commercially available stereolithography additive manufacturing device and a liquid polymer binder. According to exemplary steps of an exemplary method (as shown in FIG. 2A , with supplementary numbered steps), a liquid feedstock (202) contained by an SLA additive manufacturing device is formed as a uniform layer on the device's build plate (204, 206). In a next step (208), an electromagnetic radiation source (e.g., a UV (ultraviolet) laser) selectively irradiates a portion of this first layer with radiation of a wavelength that chemically cures and solidifies the liquid polymer binder of the feedstock. The solidified liquid polymer binder forms a solidified feedstock in the irradiated portion. The portion of the layer not formed into a solidified feedstock remains as the original liquid feedstock. The build plate is moved downward (210), and a second layer of the liquid feedstock is formed as a second uniform layer on the first feedstock layer and on the solidified feedstock of the first feedstock layer (212). The electromagnetic radiation source then selectively irradiates portions of the second layer (214) to solidify (cure) portions of the second layer of liquid feedstock, forming a solidified feedstock in the second layer portion. The portions of the second layer not formed into solidified feedstock remain as the original liquid feedstock. Steps 212, 214, and 216 are repeated (218) to form a finished multilayer solidified feedstock composite ("final part") surrounded by the original liquid feedstock (202). The multilayer solidified feedstock composite is a body containing the solidified feedstock of each formed layer and is composed of metal particles dispersed in the solidified (solid) polymer binder of the liquid feedstock. The original liquid feedstock (202) can be removed and separated from the multilayer composite (218). The multilayer composite can be transferred to a furnace (220) for heating to a sintering temperature effective to remove (disintegrate) the solidified binder and fuse the metal particles of the multilayer composite solid to form a final porous sintered metal body (222) having a desired final density.
[0051] Referring to FIG. 2B, an exemplary process can be carried out using a commercially available SLA apparatus (230) and a liquid feedstock (232) according to the present disclosure. According to exemplary steps of the method, the liquid feedstock (232) is formed as a uniform feedstock layer (234) on a build plate (238) of the apparatus (230). A laser (236) applies electromagnetic radiation (233) to a portion of the initial layer (234) to form an initial solidified feedstock (240) thereon. The portion of the feedstock layer (234) that is not formed into a solidified feedstock (240) remains as the original liquid feedstock (232). The build plate (238) is moved downward (214), and a second, or subsequent, liquid feedstock layer (242) is formed on the initial layer (234) and the initial solidified feedstock (240). A laser (236) then selectively applies electromagnetic radiation (233) to portions of the second layer (242) to form a solidified feedstock from the second layer. Portions of the second layer not formed into solidified feedstock remain as the original liquid feedstock. The sequence is repeated (250) to form a finished multi-layer solidified feedstock composite ("final part") (252) surrounded by the original liquid feedstock (232). The multi-layer solidified feedstock composite (252) is a body containing the solidified feedstock from each formed layer, consisting of metal particles from the feedstock dispersed in the solidified (solid) hardened polymer of the feedstock.
[0052] The original liquid feedstock (232) can be removed and separated from the multilayer composite (252). The multilayer composite (252) can be transferred to a furnace for heating to a break-up temperature and then a sintering temperature. The break-up temperature is effective to remove (break-up) the solidified polymer from the multilayer composite (252). Typically, a sintering temperature higher than the break-up temperature fuses the metal particles of the multilayer composite (252) to form the final porous sintered metal body (260).
[0053] A technique called selective laser sintering (SLS) is a form of additive manufacturing technology for fixing and optionally sintering metal particles of a powder feedstock material in place by automatically directing a laser to portions of selected feedstock layers according to a digital three-dimensional model, which can be used as described herein to form porous sintered metal bodies in a layer-by-layer manner using a laser as the power source. The powder feedstock contains metal particles in combination with a thermoplastic polymer (binder). The laser melts the thermoplastic polymer, which can then re-solidify to bond the metal particles of the feedstock together, creating a solid feedstock.
[0054] The feedstock contains metal particles and a solid thermoplastic polymer, which may be in the form of pore-forming particles. The part to be manufactured ("printed") is built up through a series of steps that produce a composite (herein "solid composite") made of multiple thin cross-sections (herein "solidified feedstock" of "layers") of a larger three-dimensional structure. A laser selectively applies electromagnetic radiation onto portions of the feedstock layers. The electromagnetic radiation melts the solid thermoplastic polymer and makes contact with the surfaces of the metal particles. The thermoplastic polymer can resolidify to form a solidified feedstock containing the metal particles and solidified (resolidified) thermoplastic polymer.
[0055] An additional thin layer of feedstock is then spread on top of the completed layer containing the solidified feedstock, and the process is repeated, forming multiple layers on top of and adhering to the previous layer. Multiple layers are successively deposited, one on top of each completed layer, to form a multilayer consolidated feedstock composite that is a composite of each layer of the solidified feedstock. After all layers of the multilayer consolidated feedstock composite have been formed, the portion of the layer containing the original powder feedstock not used to prepare the consolidated feedstock is separated from the multilayer consolidated feedstock composite. The multilayer consolidated feedstock composite can then be processed, in any order, by removing the solidified (hardened) polymer from the metal particles and a sintering step to fuse the metal particles of the multilayer composite together to form a porous sintered metal body.
[0056] An example of a selective laser sintering additive manufacturing technique (300) useful for preparing the porous sintered metal bodies described herein is shown in Figure 3A. The feedstock material 302 is a powder comprising metal particles with a thermoplastic polymer coated on the particle surfaces.
[0057] This process can be carried out using a commercially available selective laser sintering additive manufacturing (SLM) machine and a feedstock comprising the metal particles described herein coated with a thermoplastic polymer. According to exemplary steps of an exemplary method (shown in FIG. 3A with supplementary numbered steps), a powder feedstock (302) contained by an SLS additive manufacturing machine is formed into a uniform layer on the machine's build plate (304, 306). In the next step (308), an electromagnetic radiation source (e.g., a CO laser, YAG laser, disk laser, fiber laser, etc.) selectively exposes a portion of this initial layer to radiation at a wavelength that can melt the thermoplastic polymer of the feedstock and, optionally, cause some fusion of the metal particles exposed to the radiation. The thermoplastic polymer resolidifies in the portions exposed to the electromagnetic radiation, allowing it to form a solidified feedstock (of solid polymer and metal particles). The portion of the layer not formed into a solidified feedstock remains as the original powder feedstock. The build plate is moved downward (310), and a second layer of feedstock is formed (312) as a second uniform layer on the first feedstock layer and the solidified feedstock of the first feedstock layer. An electromagnetic radiation source then selectively irradiates (314) portions of the second layer, solidifying (curing) portions of the second feedstock layer to form solidified feedstock in portions of the second layer. Portions of the second layer that are not formed into solidified feedstock remain as the original powder liquid feedstock. Steps 310, 312, and 314 are repeated (316) to form a finished multilayer solidified feedstock composite ("final part") surrounded by the original powder feedstock (302). The multilayer solidified feedstock composite is a body containing the solidified feedstock of each formed layer, composed of metal particles dispersed in the solidified (solid) polymer binder of the powder feedstock. The original feedstock (302) can be removed and separated from the multilayer composite (318). The multilayer composite can be transferred to a furnace for heating to a break-up temperature and then a sintering temperature (320) to remove the solidified binder from the metal particles (break-up) and then fuse the metal particles of the multilayer composite solid to form a final porous sintered metal body having a desired final density (322).
[0058] Referring to FIG. 3B, an exemplary process can be carried out using a commercially available SLS apparatus (230) and a powder feedstock (332) as described herein. According to exemplary steps of the method, the powder feedstock (332) is formed into a uniform feedstock layer (334) on the build plate (336) of the apparatus (330) using one or more passes of a roller or other leveling device. A laser (338) applies electromagnetic radiation (339) to a portion of the initial layer (334) to form an initial solidified feedstock (340) thereon. The portion of the feedstock layer (334) that is not formed into a solidified feedstock (340) remains as the original powder feedstock (332). The build plate (336) is moved downward (314), and a second, or subsequent, powder feedstock layer (342) is formed on the initial layer (332) and the initial solidified feedstock (340). A laser (338) then selectively applies electromagnetic radiation (339) to portions of the second layer (342) to form a solidified feedstock from the second layer. Portions of the second layer not formed into solidified feedstock remain as the original powder feedstock. The sequence is repeated (350) to form a finished multi-layered solidified feedstock composite ("final part") (352) surrounded by the original powder feedstock (332). The multi-layered solidified feedstock composite (352) is a body containing the solidified feedstock from each formed layer, consisting of metal particles from the feedstock dispersed in the solidified (solid) thermoplastic polymer of the feedstock.
[0059] The original powder feedstock (332) can be removed and separated from the multilayer composite (352). The multilayer composite (352) can be transferred to a furnace for heating to a break-up temperature and then a sintering temperature to remove (break-up) the solidified polymer from the metal particles of the multilayer composite (352) and fuse the metal particles of the multilayer composite (352) to form a final porous sintered metal body (360) having a desired final density.
[0060] Exemplary steps in each of these processes include removing the solid polymer from the multi-layer consolidated feedstock composite (the "breaking" step) and sintering the metal particles of the multi-layer consolidated feedstock composite. These two steps can be performed separately or, preferably, in a single step of heating the multi-layer consolidated feedstock composite.
[0061] A useful or preferred break-up process removes the solid polymer from the metal particles. The break-up process exposes the multilayer composite to a high temperature sufficient to remove the solid polymer from the multilayer composite as well as any other residual non-metallic materials. After the break-up process, the metal particles of the composite remain as a substantially residue-free porous body containing substantially only metal particles. For example, after the break-up process (and also after the sintering process), the porous body can contain no more than 1, 0.5, 0.1, 0.05, or 0.01 weight percent of binder, antioxidant, surfactant, or other component of the feedstock or polymer binder, or any other optional component, i.e., at least 99, 99.5, 99.9, 99.95, or 99.99 weight percent metal particles. After the break-up process, the body is made of metal particles in an unfused, unsintered state, but is self-supporting.
[0062] The same heating step may also be a sintering step, which fuses and bonds the metal particles. As used herein, the term "sintering" has a meaning consistent with the meaning given to the term when used in the art of porous sintered metal structures, such as porous sintered metal membranes of the type that can be used as metal filter membranes. Consistent with this, the term "sintering" can be used to refer to a process of bonding together (e.g., "solid-state welding" or "fusion") a collection of small sinterable particles of one or more different types (sizes, compositions, shapes, etc.) by applying heat to the particles (i.e., to a porous body) in a non-oxidizing environment to a temperature that fuses the particle surfaces together through physical (mechanical) bonding between the particle surfaces but does not melt the particles (i.e., the metal material does not reach its melting temperature).
[0063] The sintering process is carried out at a temperature higher than the sintering point of the metal particles of the body but lower than the melting temperature of the metal particles. As used herein, the "sintering point" of a metal particle is the temperature at which the material of the particle can sinter, i.e., the temperature at which the metal particle begins to adhere to other metal particles of the body being sintered and can fuse to another particle at a certain pressure, e.g., atmospheric pressure. The sintering point of a material (e.g., a metal) usually refers to the temperature below the melting temperature of the material and at which the metal becomes liquid.
[0064] Thus, useful temperatures for carrying out the sintering and break-up steps may depend on the composition of the solid polymer, and the composition and sintering point of the metal particles for the break-up step, as well as the size of the particles being sintered, e.g., whether the particles are "coarse" (larger) or fine (smaller). For nickel, the sintering point may be in the range of 550-750°C, and the sintering step may be carried out at a temperature in the range of 550-800°C. For nickel and stainless steel alloys, the sintering point may be in the range of 950-1250°C, and the sintering step may be carried out at a temperature in the range of 950-1300°C. The sintering step may be carried out in a furnace or oven in a non-oxidizing atmosphere that does not react with or otherwise adversely affect the metal particles of the body being sintered, such as a vacuum or an atmosphere of concentrated or pure hydrogen, concentrated or pure inert gas, or a combination of concentrated or pure hydrogen and inert gas.
[0065] Additively formed porous bodies are produced using metal particles arranged by an additive manufacturing process that causes the particles to interconnect during the sintering process. The particles are selected to exhibit physical properties, including morphology (including shape) and density characteristics, that allow the particles to exist as part of the solidified feedstock in a relatively low volumetric amount, yet still interconnect upon sintering.
[0066] Specifically, preferred metal particles for forming porous sintered metal bodies by additive manufacturing techniques can have a low "relative apparent density." At a low "relative apparent density," the particles can be present in a low volume percentage within the described solidified feedstock, e.g., less than 50 volume percent of the metal particles based on the total volume of the solidified feedstock, yet still be processed by sintering to form a self-supporting porous sintered metal body. At a low "relative apparent density," the metal particles, even when present in a low percentage of the volume of the solidified feedstock, can be effectively fused together by sintering to form a useful porous sintered metal body, e.g., a "self-supporting" porous body made of fused, interconnected particles, such as those useful as filter membranes described herein.
[0067] As a group, metal particles have physical properties, including size, shape, and density, that allow them to be distributed in relatively low volumetric amounts within the feedstock layer and the solidified feedstock while still being processable by additive manufacturing and sintering to form a useful (e.g., interconnected, self-supporting) porous sintered metal body. A low volumetric amount of metal particles in the solidified feedstock is desirable so that the resulting sintered body exhibits relatively high porosity, allowing the sintered body to be effectively used as a porous filter membrane. However, even at low volumetric amounts in the solidified feedstock (to produce a highly porous sintered body), the metal particles contained in the solidified feedstock must have sufficient proximity between adjacent surfaces of a sufficient number of particles to be effectively fused and interconnected during sintering, resulting in a highly interconnected metal particle forming the sintered body, and thus a self-supporting porous sintered metal body.
[0068] As used herein, a body that is "self-supporting" is one that is capable of supporting its own weight in a given form or shape during use without collapsing, preferably with only a small amount of sagging. Porous sintered metal bodies described herein that are self-supporting can be handled, moved, and optionally further processed without requiring support from another structure, such as a polymer binder.
[0069] Specifically, with respect to self-supporting sintered bodies, a collection of metal particles can be formed into a self-supporting porous sintered metal body if the collection of metal particles includes a sufficiently high percentage of particles in close enough proximity to one another (i.e., "bonded" or "interbonded") during sintering (e.g., having contacting or near-contacting surfaces as part of a feedstock layer or solidified feedstock). Preferably, a majority of the metal particles of the solidified feedstock are positioned sufficiently close to one another, e.g., at least one surface contacts or near-contacts with the surface of at least one other metal particle, such that a majority or essentially all of the metal particles of the solidified feedstock (e.g., 95, 99, or 99.9% of the total amount of particles) become fused particles in the porous sintered metal body. A high degree of contact or proximity (near-contact) between metal particle surfaces can exist in the feedstock, feedstock layers, solidified feedstock, and as part of a multi-layered solidified feedstock composite. The high degree of contact or proximity between particle surfaces also remains during processing of the multi-layer consolidated feedstock composite, such as during the break-up step (removing polymer from the surfaces of the particles of the multi-layer consolidated feedstock composite), and during and after the sintering step.
[0070] 1A, 1B, 2A, 2B, 3A, and 3B, the exemplary additive manufacturing techniques described involve the use of a feedstock that includes metal particles. The metal particles can be in the form of a collection of small particles, for example, as a powder, or the particles can be in any of a variety of known particle morphologies, such as individual metal particles referred to as "agglomerated particles," "dendritic particles," or "fibrous particles," among others.
[0071] The metal particles can be of any effective size or range of sizes, including small or relatively small particles on the micron scale (e.g., having an average size of less than 500 microns, less than 100 microns, less than 50 microns, less than 10 microns, or less than 5 microns).
[0072] Optionally, the metal particle powder may contain a combination of particles having a bimodal size distribution. An exemplary powder may include a bimodal combination of micron-sized particles and nano-sized particles. A potential function and advantage of powders containing nano-sized particles in combination with micron-sized particles is improved formation of an interconnected particle matrix upon sintering. The nano-sized particles can facilitate sintering by acting as a "necking agent" that bonds the larger (micron-sized) particles. The sintering process can be carried out at lower temperatures due to the presence of nano-sized particles, and may optionally be carried out using microwave energy.
[0073] As used herein, the term "metal" refers to any metallic or semi-metallic chemical element or an alloy of two or more of these elements. Useful or preferred particles can be made of metals including nickel, nickel alloys, and stainless steel, among others (see below).
[0074] Metal particles can be selected to achieve the described processing efficiencies, be included in feedstock, be formed into feedstock layers, be formed into consolidated feedstock and multi-layer consolidated feedstock composites, and then be sintered to form porous sintered metal bodies that function effectively as filter membranes. The size, shape, and chemical makeup of the metal particles can be any that are effective for these purposes. In some embodiments, the metal particles described herein identified as useful can be selected based on size, shape (including morphology), and density characteristics.
[0075] The density properties of selected metal particles can be described as apparent density (aka bulk density) and relative apparent density (apparent density divided by theoretical (or "particle" density)). Exemplary particles made of nickel, nickel alloys, or stainless steel, measured in powder form, can have an apparent ("bulk") density of less than 2 grams per cubic centimeter (g / cc), e.g., less than 1.8 g / cc, or less than 1.5 g / cc. Other materials can have higher density values (e.g., refractory metals) or lower apparent density values (e.g., certain ceramic materials). As is known, the apparent (bulk) density of a powder (collection of particles) refers to the mass of the powder for a given volume of powder, where the volume includes the volume of the particles as well as the volume of the space between the particles in powder form. Methods for measuring apparent (bulk) density are well known and include ASTM B703-17, "Standard Test Method for Apparent Density of Metal Powders and Related Compounds Using an Arnold Meter."
[0076] Exemplary metal particles in powder form can also be selected to have a "relative apparent density" that allows for processing as described above to produce porous sintered metal bodies by additive manufacturing techniques. As specified herein, particles can be selected based on their relative apparent density so that they can be successfully processed by an additive manufacturing process and subsequent sintering to produce porous sintered metal bodies, preferably having high porosity and including interconnected, self-supporting particles. As used herein, and as commonly understood, the term "relative apparent density" is calculated as the ratio of the apparent density of a powder divided by the theoretical density of the powder. The theoretical density of a collection of particles (e.g., a powder), sometimes also referred to as the "particle density" of the particles, refers to the density of the material (e.g., metal) that makes up the particles, e.g., the density of a single particle (mass per volume) or the density of a collection of particles calculated based on weight per volume, where the volume is calculated to include only the volume of the particles and not the volume of the spaces between the particles. Exemplary metal particles useful according to the described methods can be in the form of a powder having a relative apparent density in the range of 5-35% of the theoretical density.
[0077] In accordance with this specification, it has been determined that particles exhibiting a low "relative apparent density" can be processed by an additive manufacturing process to form porous sintered metal bodies having high porosity and a correspondingly low solids loading, i.e., a low volume percent of metal particles, e.g., less than 50% (i.e., high porosity). Particles with a low relative apparent density, when included in a solidified feedstock (even if present in small amounts (low volume percent) in the solidified feedstock), have physical shape and size characteristics that result in a high amount of interparticle space and a high degree of contact or proximity between the surfaces of the metal particles. The high degree of contact or proximity between the particle surfaces allows for removal of solid polymer from the solidified feedstock, even with a high amount of void space, and allows the metal particles to be processed by sintering so that the particles fuse sufficiently to one another at their surfaces, making them interconnected and self-supporting, to form a useful porous sintered membrane.
[0078] A relatively low "relative apparent density" is a property of particle aggregates that can be directly affected by the particle's physical size and shape characteristics. The size and shape characteristics of powders made of metals can vary widely, with known metal particles having a wide variety of shapes. Some examples of common particle shapes include those referred to as spherical, round, angular, flaked, cylindrical, acicular, cubic, columnar, dendritic, elongated, and branched. Other particle shapes and terms used to describe specific shapes are also known. Various types of metal particles may also be agglomerated or non-agglomerated, or "fibrous." Certain types of particles, or their branches or fibrils, can be characterized as having a predominant length dimension relative to small thickness and width dimensions, having a high aspect ratio.
[0079] Metal particles useful in the described additive manufacturing processes have shape and size characteristics that cause the particles to exhibit a low relative apparent density, e.g., form a particle aggregate with a high level of void space between particles, e.g., a low packing density, as a powder. Particle size and shape characteristics that result in a low relative apparent density include characteristics that result in a low packing density ("packing efficiency"). Particle shape characteristics that can result in a low packing density (and high porosity) include irregular (non-geometric) shape features, including multiple fibrils or branches randomly (non-repeatingly) arranged between particles; elongated shapes of particles or portions of particles (e.g., high aspect ratios); high surface areas; branches; twisted, bent, or curved filaments or branches; and the like that prevent particle packing and result in the presence of substantial void space between particles when the particles are part of a powder.
[0080] Examples of particle shapes that may result in low relative apparent density include branched shapes, shapes referred to as "dendritic," and shapes referred to as "fibrous."
[0081] Dendritic metal particles include particles with a dendritic morphology, as described in U.S. Patent No. 5,814,272. As presented therein, the term "dendritic" refers to a highly anisotropic, irregular morphology containing one or more filaments, each having one dimension substantially larger than the other two dimensions of the filament. The filaments may be straight or curved, branched or unbranched, and have an irregular surface. Dendritic particles are characterized by a lower packing efficiency compared to particles with a more regular morphology, and therefore form powders with a lower apparent (bulk) density than those formed by particles with a more regular morphology. Examples of dendritic particles include nickel 255 particles, shown in FIG. 4A, and treated stainless steel particles, shown in FIG. 4C.
[0082] Dendritic metal particles can be prepared and processed so that the particles achieve a desired dendritic morphology and a useful relative apparent density. An example of a process useful for producing dendritic metal particles having the described density characteristics is provided in U.S. Pat. No. 5,814,272, which is incorporated herein by reference in its entirety. As described herein, metal particles can be processed to have a relatively low "relative apparent density" by processing the particles into a dendritic shape. In general, effective processing methods include (1) heating a powder containing non-dendritic metal particles under conditions suitable to form a lightly sintered material; and (2) breaking down the lightly sintered material to form a powder containing dendritic metal particles.
[0083] The term "lightly sintered material" refers to a material that has been processed to induce fusion of metal powder particles through the early stages of sintering, as defined by Randall (Randall in "Powder Metallurgy Science," second edition, German, ed., Metal Powder Federation Industry (1994), the contents of which are incorporated herein by reference). In the early stages of sintering, or short-range diffusion sintering, bonds are formed between metal particles at contacting particle surfaces, and only fusion between particles and their immediate neighbors occurs. Thus, the early stages of sintering result in a brittle structure with low mechanical strength. For a given material, sintering proceeds slowly beyond this early stage at temperatures at the lower end of the sintering range for that material. For purposes of this specification, the term "early stage sintering" refers to the sintering of a powder under conditions where sintering does not proceed substantially beyond the early stage.
[0084] Figure 4A is a photomicrograph showing dendritic particles made from Nickel 255 (an example of a commercially available pure nickel metal powder). Figure 4B is a photomicrograph of a stainless steel particle before the particle has been processed to have a dendritic morphology. Figure 4C is a photomicrograph of the stainless steel particle of Figure 4B after it has been processed to have a dendritic shape.
[0085] Another example of metal particles characterized by low packing efficiency and relatively low "relative apparent density" are particles referred to as "fibrous" particles. Fibrous particles are elongated (e.g., "noodle-shaped"), optionally curved or bent, and have a high aspect ratio (length to diameter), for example, an aspect ratio (length to diameter) of at least 10:1 (length:diameter), at least 30:1, at least 50:1, or at least 75:1, or at least 100:1. Examples of fibrous metal particles include fibrous stainless steel particles, as shown in FIG. 4D.
[0086] Other types of particles in powder form, identified as non-dendritic and non-fibrous, are known and are also useful for preparing metal bodies by sintering. These particles exhibit relatively high packing efficiencies compared to dendritic or fibrous particles and typically do not have low relative apparent densities (unless combined with dendritic or fibrous particles). Examples of these types of particles include particles that are generally (substantially) unbranched and have relatively low aspect ratios (e.g., less than 5:1, or less than 3:1, or less than 2:1), including particle types referred to as spherical, round, angular, flaky, cylindrical, acicular, and cubic.
[0087] A collection of particles useful in the described methods can be in the form of a powder, have a low relative apparent density, and include particles all having substantially the same or similar size, shape, and morphology, such as a collection of all dendritic particles or a collection of all fibrous particles. Alternatively, if desired, the collection of particles can include a combination of two or more different types of metal particles having different size, shape, or morphology characteristics. The metal particles of the powder can include, for example, a combination of both dendritic and non-dendritic particles, or a combination of both fibrous and non-fibrous particles, and the combination has a relative apparent density sufficient to be processed to form porous sintered metal bodies and precursors thereof, as described.
[0088] The metal particle aggregate used in the feedstock can include one or more different types of metal particles. Examples of particles useful in the feedstock can include aggregates of particles made substantially or entirely of a single type of metal particle, for example, particles made of at least 90, 95, 99, or 99.9 weight percent of one type of metal (including metal alloys), such as steel particles (e.g., stainless steel), nickel particles, nickel alloy particles, or aggregates of particles made of another metal or metal alloy. Commercially available examples include those sold under the names Nickel 255, "Alloy 22" (Hastelloy® C-22), and 316L stainless steel.
[0089] Some nickel particles contain at least 99% by weight nickel, based on the total weight of the particles, along with no more than small amounts of impurities such as carbon.
[0090] Other particles may be made of nickel alloys containing combinations of nickel (e.g., 45-56 wt%), chromium (e.g., 15-30 wt%), and molybdenum (e.g., 8-18 wt%), along with minor amounts of metals such as iron, cobalt, tungsten, manganese, silicon, carbon, vanadium, and copper. A specific example of a nickel alloy commonly referred to as nickel "Alloy 22" (e.g., HASTELLOY® C-22®) contains (by weight) nickel (balance 56), chromium (22), molybdenum (13), iron (3), cobalt (max 2.5), tungsten (3), manganese (max 0.5), silicon (max 0.08), carbon (max 0.01), vanadium (max 0.35), and copper (max 0.5).
[0091] An example of a stainless steel alloy is stainless steel alloy 316L, which may contain (by weight): chromium (16-18), nickel (10-14), molybdenum (2-3), manganese (max 2.0), silicon (max 0.75), carbon (max 0.08), phosphorus (max 0.045), sulfur (max 0.30), nitrogen (max 0.10), and iron (balance).
[0092] The useful and preferred metal particles described can have apparent densities and relative apparent densities as described, with particular metal alloys having characteristic combinations of density properties and density properties.
[0093] Useful or preferred stainless steel particles may have an apparent density in the range of 0.5 to 2 grams per cubic centimeter, such as 0.8 to 1.2 grams per cubic centimeter, and a relative apparent density in the range of 5 to 25, such as 7 to 20% of the theoretical density.
[0094] Useful or preferred nickel particles may have an apparent density in the range of 0.3 to 1.5 grams per cubic centimeter, for example, 0.4 to 0.8 grams per cubic centimeter, and a relative apparent density in the range of 4 to 17% of the theoretical density, for example, 5 to 9% of the theoretical density.
[0095] Useful or preferred particles made of nickel alloys having high amounts (by weight) of nickel (e.g., 45-56 weight percent), chromium (e.g., 15-30 weight percent), and molybdenum (e.g., 8-18 weight percent), such as Hastelloy® C-22, can have apparent densities in the range of 0.5 to 2 grams per cubic centimeter, e.g., 1.2 to 1.8 grams per cubic centimeter, and relative apparent densities in the range of 5 to 13% of the theoretical density, e.g., 7 to 11% of the theoretical density.
[0096] The volume amount of particles in the feedstock, the solidified feedstock, or both can be an amount useful for producing a porous sintered metal body as described herein, having a porosity as described herein. An example can be in the range of 20-50% by volume, e.g., 25-45% by volume, based on the total volume of the solidified feedstock.
[0097] Porous sintered metal bodies prepared according to the described methods can be useful as filter membranes for filtering gases, such as those used in semiconductor processing. Various characteristics of the porous sintered metal body may affect its usefulness as a filter membrane. In the filtration of gaseous materials used in semiconductor processing, the gaseous fluid may be supplied at pressures near atmospheric pressure (e.g., under 2 atmospheres), above atmospheric pressure, or below atmospheric pressure (e.g., under vacuum conditions). Processes using gaseous fluids may require very high removal rates of nanoscale and micron-scale particles, e.g., at least 3, 4, 5, 7, or 9, as measured by the "log reduction value" (LRV) of the filtration process. These gaseous material filtering processes may also be performed at relatively low flow rates, e.g., less than 50, 25, 10, 5, 2, 1, or 0.5 standard liters per minute (slpm) per square centimeter of frontal filter area. The methods described herein may be useful for preparing filter membranes that meet these requirements, enabling them to be effectively used as filter membranes for filtering gaseous materials used in, for example, semiconductor processing.
[0098] Advantageously, sintered porous bodies formed by additive manufacturing processes can be prepared to have any of a wide variety of three-dimensional shapes, including certain types of shapes that may be impossible to manufacture by conventional techniques for forming porous bodies of the type useful as filter membranes. Exemplary shapes may be generally three-dimensional and include non-tubular (e.g., somewhat or substantially flat or planar) forms, and tubular forms, including substantially annular or cylindrical forms or variations thereof.
[0099] An example of a non-tubular shape may be in the form of a flat, curved, or rounded plate or "cup" having two opposing major surfaces and a thickness between the two opposing surfaces. The opposing major surfaces may be generally flat or curved, and may further be flat or have surface structures including non-flat, patterned, or non-patterned three-dimensional structures, such as raised ridges or walls, depressions or channels, or "waffling." See Figures 5A, 5B, 5C, and 5D. As shown in Figures 5A and 5C (top views) and 5B and 5D (perspective views), filter membranes 500 and 504 can include two opposing major surfaces having a width and a length, with the thickness between the two surfaces being substantially less than the width and length. At least one surface can include three-dimensional structures, such as repeating or non-repeating patterns of depressions (e.g., sunken channels) or raised or protruding ridges, walls, etc., an example being a waffling pattern as shown in Figures 5A, 5B, 5C, and 5D. Other shapes of surface structures and patterns are possible using the presently described injection molding techniques.
[0100] Alternatively, the porous sintered metal body may be a tubular membrane, such as a tube (e.g., ring, cylinder) having a three-dimensional, round or circular cross-section when viewed along the axis of the tube, i.e., cylinder. Other tubes may have a cross-section that includes a non-circular shape, such as an angle, corner, curve (e.g., fluting), or a pleated pattern (e.g., a multi-point star, or a circular "zigzag" pattern) that repeats around the tube's inner or outer surface. The membrane (any shape) includes two opposing major surfaces and a thickness between the two opposing major surfaces. At least one end of the tubular membrane may be open, and the second end may be open or closed. For example, see FIGS. 6A and 6B, which show perspective views of an annular filter membrane 510 having a non-circular cross-section with one open end and one closed end, including multiple repeating curved surfaces, e.g., "pedals" or "fluting."
[0101] As used herein, a porous sintered metal body said to be formed by additive manufacturing may be structurally or physically identifiable as a body that includes physical features indicative of being manufactured by additive manufacturing, i.e., formed by additive manufacturing. During additive manufacturing, the body is formed by multiple sequential steps of applying and solidifying multiple layers of feedstock to form a solidified feedstock from each layer. Indications of the multiple layers of solidified feedstock may be visually identifiable after the sintering step with or without an optical microscope (e.g., at 50, 100, 200, or 500x magnification).
[0102] Having thus described several exemplary embodiments of the present disclosure, those skilled in the art will readily appreciate that still other embodiments may be made and used within the scope of the appended claims. Many advantages of the present disclosure, which are encompassed by this document, have been set forth in the foregoing description. It will be understood, however, that the present disclosure is in many respects merely illustrative. Changes may be made in details, particularly in matters of the shape, size, and arrangement of parts, without exceeding the scope of the present disclosure. The scope of the present disclosure is, of course, defined in the language in which the appended claims are expressed.
[0103] In a first aspect, a method for forming a porous sintered metal body by an additive manufacturing process includes forming a layer on a surface, the layer including a feedstock containing metal particles; selectively forming a solidified feedstock containing metal particles and a solid polymer in a portion of the layer containing 20 to 50 volume % of the metal particles; forming a second layer on the layer containing the solidified feedstock, the second layer including a feedstock containing metal particles; selectively forming a solidified feedstock containing metal particles and a solid polymer in a portion of the second layer containing 20 to 50 volume % of the metal particles; and sintering the metal particles in that portion to form a porous sintered metal body containing 20 to 50 volume % of the metal particles.
[0104] A second embodiment according to the first embodiment further includes separating the solidified feedstock from the remaining layer feedstock after forming the solidified feedstock.
[0105] In a third embodiment according to the first or second embodiment, the metal particles have an apparent density of less than 2.0 grams per cubic centimeter.
[0106] In a fourth embodiment according to any one of the first to third embodiments, the metal particles have a relative apparent density within a range of 5 to 35% of the theoretical density of the particles.
[0107] In a fifth embodiment according to any one of the first to fourth embodiments, the feedstock comprises metal particles and pore-forming polymer particles.
[0108] A sixth embodiment according to the fifth embodiment further comprises selectively applying a liquid polymer binder to the regions and solidifying the liquid polymer binder to form a solidified feedstock.
[0109] A seventh embodiment according to the fifth embodiment further comprises selectively applying electromagnetic energy to the region to melt the pore-forming polymer particles, thereby forming a solidified feedstock.
[0110] In an eighth embodiment according to any one of the first to fourth embodiments, the feed composition comprises metal particles and a curable liquid polymer.
[0111] A ninth embodiment according to the eighth embodiment further comprises selectively applying electromagnetic energy to regions to harden the hardenable liquid polymer particles to form a solidified feedstock.
[0112] In a tenth embodiment according to any of the first to fourth embodiments, the feedstock comprises at least 95 wt% metal particles.
[0113] An eleventh embodiment according to the tenth embodiment further comprises selectively applying a liquid polymer binder onto the regions and allowing or causing the liquid polymer binder to solidify, thereby forming a solidified feedstock.
[0114] A twelfth embodiment according to any of the first to eleventh embodiments includes forming a multi-layered solidified feedstock composite comprising multiple layers of solidified feedstock, each layer comprising the feedstock containing metal particles, on a second layer; selectively forming a solidified feedstock comprising metal particles in a solid polymer in a portion of each additional layer comprising 20-50 volume % of the metal particles; and separating the multi-layered solid from the layer's feedstock.
[0115] In a thirteenth aspect according to any one of the first to twelfth aspects, the porous sintered metal body is an annular filter membrane having a shape including a three-dimensional tube.
[0116] In a fourteenth aspect according to the thirteenth aspect, the pipe has a circular cross section when viewed in the pipe axial direction.
[0117] In a fifteenth aspect according to the thirteenth aspect, the pipe has a non-circular cross section when viewed in the pipe axial direction.
[0118] A sixteenth aspect according to any one of the first to fifteenth aspects, wherein the porous sintered metal body is a three-dimensional non-tubular filter membrane.
[0119] In a seventeenth embodiment, the feed composition comprises, based on the total volume of the feed composition, 50 to 80 volume percent of a curable liquid polymer binder and 20 to 50 volume percent of metal particles having a relative apparent density within the range of 5 to 35% of the theoretical density of the particles.
[0120] In an eighteenth embodiment, the feed composition comprises solid pore-forming polymer particles and 20 to 50 volume % metal particles having a relative apparent density within the range of 5 to 35% of the theoretical density of the particles, based on the total volume of the feed composition.
[0121] In a nineteenth embodiment according to the seventeenth or eighteenth embodiment, the metal particles are dendritic or fibrous and have an apparent density of less than 2.0 grams per cubic centimeter.
[0122] In a twentieth aspect, the porous sintered metal body is formed by an additive manufacturing method, includes sintered metal particles, and has a porosity in the range of 50 to 80%.
[0123] A twenty-first embodiment according to the twentieth embodiment is the method for producing a dendritic particle,
[0124] In a 22nd embodiment according to the 20th embodiment, the particles are fibrous particles.
[0125] In a 23rd aspect according to the 20th to 22nd aspects, the main body has a multilayer structure that is visible using an optical microscope.
Claims
1. A method for forming a porous sintered metal body by an additive manufacturing process, comprising: forming a layer on a surface comprising a feedstock containing metal particles; selectively forming a solidified feedstock comprising metal particles and solid polymer in a portion of the bed containing 20-50 volume percent metal particles; forming a second layer comprising a feedstock containing metal particles over the layer containing the solidified feedstock; Selectively forming a solidified feedstock comprising metal particles and solid polymer in a portion of the second layer containing 20-50 volume percent metal particles; and Sintering the metal particles in that portion to form a porous sintered metal body containing 20 to 50 volume % of metal particles. A method comprising:
2. The method of claim 1 further comprising separating the solidified feedstock from the remaining feedstock after forming the solidified feedstock.
3. 3. The method of claim 1 or 2, wherein the metal particles have an apparent density of less than 2.0 grams per cubic centimeter.
4. 4. The method of claim 1, wherein the metal particles have a relative apparent density within the range of 5 to 35% of the theoretical density of the particles.
5. The method of claim 1 , wherein the feedstock comprises metal particles and pore-forming polymer particles.
6. 6. The method of claim 5, further comprising selectively applying a liquid polymer binder to portions of the layer or the second layer and solidifying the liquid polymer binder to form a solidified feedstock.
7. 6. The method of claim 5, further comprising selectively applying electromagnetic energy to portions of the layer or the second layer to melt the pore-forming polymer particles, thereby forming a solidified feedstock.
8. 5. The method of claim 1, wherein the feedstock composition comprises metal particles and a curable liquid polymer.
9. The method of claim 8 , further comprising selectively applying electromagnetic energy to portions of the layer or the second layer to harden the curable liquid polymer, thereby forming a solidified feedstock.
10. 5. The method of claim 1, wherein the feedstock comprises at least 95% by weight of metal particles.
11. 11. The method of claim 10, further comprising selectively applying a liquid polymer binder to portions of the layer or the second layer and allowing or causing the liquid polymer binder to solidify to form a solidified feedstock.
12. a multi-layer consolidated feedstock composite comprising a plurality of layers of consolidated feedstock; forming additional layers on the second layer, each layer comprising a feedstock containing metal particles; selectively forming a solidified feedstock comprising metal particles in a solid polymer in a portion of each additional layer comprising 20-50 volume percent of the metal particles; and Separating the bed solids from the bed feedstock To be formed by The method according to any one of claims 1 to 11, comprising:
13. 13. The method of claim 1, wherein the porous sintered metal body is an annular filter membrane having a shape that includes a three-dimensional tube.
14. The method of claim 13, wherein the tube has a circular cross section when viewed axially.
15. The method of claim 13 , wherein the tube has a non-circular cross section when viewed axially.
16. 14. The method of any one of claims 1 to 13, wherein the porous sintered metal body is a three-dimensional non-tubular filter membrane.
17. 1. A feedstock composition comprising: 50 to 80 volume percent of a curable liquid polymer binder; and 20 to 50 volume percent metal particles having a relative apparent density within the range of 5 to 35 percent of the theoretical density of the particles, based on the total volume of the feed composition.
1. A feedstock composition comprising:
18. 1. A feedstock composition comprising: solid pore-forming polymer particles, and 20 to 50 volume percent metal particles having a relative apparent density within the range of 5 to 35 percent of the theoretical density of the particles, based on the total volume of the feed composition.
1. A feedstock composition comprising:
19. 19. The composition of claim 17 or 18, wherein the metal particles are dendritic or fibrous and have an apparent density of less than 2.0 grams per cubic centimeter.
20. A porous sintered metal body formed by an additive manufacturing process, comprising sintered metal particles, and having a porosity in the range of 50 to 80%.
21. 21. The porous sintered metal body of claim 20, wherein the particles are dendritic particles.
22. 21. The porous sintered metal body of claim 20, wherein the particles are fibrous particles.
23. 23. The porous sintered metal body according to any one of claims 20 to 22, having a multi-layer structure visible using an optical microscope.