Method for manufacturing porous metal or ceramic parts and parts manufactured using the method
By forming components with three volumetric regions of varying porosities through a metal or ceramic coating process, the method addresses stability and connection issues in porous components, enhancing strength and enabling reliable connections for media and energy supply.
Patent Information
- Application Number
- JP2023570101
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-05-11
- Filing Date
- 2022-05-10
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2042-05-10
AI Technical Summary
Existing porous components face issues with stability and strength due to open-pore structures, and permanent connections often fail under mechanical stress, leading to weak spots and joint failures.
A method involving a semi-finished product with an open-pore foam structure is coated with a metal or ceramic suspension, forming three distinct volumetric regions with varying porosities, bonded together through sintering, to enhance stability and enable reliable connections for media and energy supply.
The method produces components with improved strength and stability, allowing for reliable connections and enhanced performance in applications requiring electrical contact and media exchange.
Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for making porous metal or ceramic components and the components made using that method. [Background technology]
[0002] Porous components are used in a wide range of technical fields. They are used for filtration, for receiving solid or liquid media, and even as heat exchangers. They are also often used as thermal insulators and damping elements. In many applications, an open-pore structure is desirable. However, the open pores impair strength and stability, and many applications require the use of a separate supporting frame structure, which ensures higher strength but is not compatible with the sufficient sustained strength of open-pore foam, or can be achieved only with great difficulty.
[0003] Furthermore, it is a problem to provide connection options to the perforated body, for example to allow electrical contact for supplying electrical energy or to allow the supply and / or removal of media, in particular fluids, as is necessary, for example, in the case of electric heating elements or heat exchangers.
[0004] It is known to connect open-cell foam to frames or other elements in a form-locked manner. However, problems arise with permanent connections because the walls in the connection area can fracture under mechanical stress. However, these problems cannot be fully taken into account when using single or additional one-piece connections. As a result of welding, soldering or gluing, weak spots or interfaces arise at the joint that can lead to joint failure. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] U.S. Patent No. 3,090,094 [Patent Document 2] U.S. Patent No. 3,111,396 [Patent Document 3] German Patent Application Publication No. 102010039322 Summary of the Invention [Problem to be solved by the invention]
[0006] It is therefore an object of the present invention to provide options for improving the stability of perforated components and / or to provide connection options to perforated structures that allow a reliable and permanent supply or removal of media or energy to be achieved. [Means for solving the problem]
[0007] This object is achieved according to the invention by a method having the features of claim 1. Claim 10 defines a component manufactured accordingly. Advantageous embodiments and improvements of the invention can be implemented using the features defined in the dependent claims. DETAILED DESCRIPTION OF THE INVENTION
[0008] To produce an open-pore metal and / or ceramic component containing at least three adjacent volumetric regions with different porosities, the procedure involves first preparing a semi-finished product in a manner known per se, which has an open-pore structure and comprises an open-pore foam made of a polymer material. A metal coating or a coating made of metal or ceramic particles is applied to the surface of the foam wall, maintaining the open-pore base structure. This can be achieved, for example, by known CVD or PVD methods, galvanic methods, or the so-called Schwartzwalder process, in which a coating containing metal or ceramic particles is applied to the wall. The semi-finished product obtained by the Schwartzwalder process must be dried to a sufficient degree to achieve sufficient green strength before further processing. Corresponding known procedures are described, for example, in U.S. Pat. No. 5,499,297 or U.S. Pat. No. 5,599,297.
[0009] Preferably, cut-outs from reticulated open-cell polyurethane foams are used as open-cell foams formed from polymeric materials. For this purpose, the cell sizes used can cover the full range of reticulated foams commercially classified according to pores per inch (pores per inch) of 8 ppi to 100 ppi (according to ASTM D3576-77), although coarse foams in the range of 8 ppi to 30 ppi are advantageously used. The ppi values can be easily converted into pore diameters in mm using photo-optical or computer tomography methods.
[0010] However, other open-pore structures formed from polymers, such as nonwoven fabrics, or lattices manufactured by additive processes, may also be used.
[0011] A suspension formed of metal or ceramic particles, a liquid and a polymer binder, in which preformed gas bubbles are also present, is brought into contact with the surface of the foam and then formed into a predetermined shape in a predetermined surface area on the semi-finished product thus obtained, during which part of the suspension penetrates into the open pores of the foam serving as the semi-finished product in the end layer area.
[0012] Thereafter, a drying process using heat treatment is carried out, during which the first liquid contained in the suspension is expelled, followed by or simultaneously with the removal of the polymer components, in particular the polymer components of the binder and the polymer material of the foam, followed by a sintering process.
[0013] During sintering, a first volume region is formed from the metal or ceramic material originating from the suspension, which has a smaller porosity than the porosity of the semi-finished product, which was obtained solely as a result of the gas bubbles present in the suspension, and adjacent to this first volume region, a second volume region is formed, which is also porous or may be porous, and which is formed from the metal or ceramic from the coating on the wall of the semi-finished product and the metal or ceramic from the suspension, which are integrally and form-lockedly bonded to each other within the second volume region, so that the second volume region joins the first volume region to the open-pore structure of the metal or ceramic of the open-pore third volume region, which is obtained from the coating foam, which has a larger porosity than the first volume region, in the end layer region of the third volume region forming the second volume region.
[0014] The suspension from which the first and second volume regions of the component are formed can be produced by methods known per se. For this purpose, a suitable liquid can be used, containing at least one polymer binder and a certain amount of powdered metal or ceramic solid. Gas bubbles can be introduced into the suspension by mechanical stirring or by other methods, such as the procedure known from U.S. Patent No. 5,949,999. In addition to air, other gases or gas mixtures can also be used that exhibit an inert action, so that no adverse effects on the specific metal or specific ceramic from which the component is ultimately formed are observed.
[0015] Typically, binders already used in such suspensions, such as polyvinyl alcohol, can be used as the polymer binder. In any case, no antifoaming agent should be used. Preferably, water is used as the liquid. However, other liquids, preferably with a boiling point lower than that of water, are also suitable.
[0016] Preferably, a suspension having a viscosity of at least 0.1 mPas should be used to form the first and second volume regions. The suspension should preferably also have a shear-thinning flow behavior with a clear flow limit. Alone or in addition, gas bubbles should be present in the suspension in a volume fraction of at least 5% and up to 50% of the total volume of the suspension.
[0017] Advantageously, the walls of the semi-finished product should be coated with the same metal or ceramic as that used to form the suspension for forming the first and second volume regions. This can be a pure metal of one chemical element or a corresponding alloy. If an alloy is used, the alloy composition of the coating of the semi-finished product can differ from that of the particles used in the suspension.
[0018] However, it is also possible to use different materials for coating the wall of the semifinished product and for the suspension for forming the first and second volume regions. The expansion coefficients of the materials should be similar, and their thermal behavior as a function of the sintering temperature should also be similar. This is the case, for example, when using stainless steel and zirconium oxide ceramics. In this context, the term "similar" should be understood to mean that the difference between them is less than 10%. The second volume region can be formed by combining a metallic material and a ceramic material, if the sintering temperatures and thermal expansion coefficients of the different materials allow this.
[0019] The suspension for forming the first and second volume regions can be added to at least one recess, indentation, or perforation formed in the semi-finished product and / or to the interior of a molding tool that can be attached to the specific semi-finished product before carrying out a heat treatment during which the part can be finally finished. For example, in this way, a specific surface layer region or an edge layer region of a specific part can be reinforced or a connection can be formed there. The molding tool can be temporarily connected to the semi-finished product, or the semi-finished product can be inserted into a frame-like molding tool, whereby the suspension containing gas bubbles can be added to at least one gap between the surface of the semi-finished product and the inner wall of the specific molding tool so that the suspension can penetrate the open pores of the semi-finished product and thereby form a first volume region there and a second volume region directly adjacent thereto.
[0020] The tooling can completely surround the semi-finished product for this purpose. However, it may also be sufficient to fix the tooling to a sub-region of the surface of the semi-finished product and apply the suspension therein to the gap or cavity between the surface of the semi-finished product and the inner wall of the tooling. In this way, for example, a hollow profile with a circular or angular cross section that can surround the semi-finished product can be used as the tooling. However, it is also possible to use a corresponding segment of such a profile, for example a circular segment, as the tooling.
[0021] Demolding can be done before heat treatment or only after sintering is complete.
[0022] The penetration depth of the suspension into the pores of the semifinished product can be influenced by external forces, starting from the surface of the semifinished product, which can then affect the thickness or width of the end layer region forming the second volume region. The thickness or width should be at least 3 mm from the surface of the semifinished product toward its interior. As mentioned above, this thickness or width can be selected to be smaller or larger. However, it must be large enough to bond the three volume regions together with sufficient strength and to avoid sharp interfaces between the first and third volume regions as much as possible. The thickness or width required to do this can be based on the cell width or pore diameter of the semifinished product and should be at least three times the cell size or pore diameter of the semifinished product.
[0023] For this purpose, the workpiece itself or the workpiece to which the tooling is attached can be vibrated, and / or pressure can be applied to the suspension during the process. In this way, a medium (gas or liquid) under high pressure compared to ambient pressure can be used, whereby the higher pressure acts on the surface of the suspension, forcing it into the open pores of the workpiece. To utilize vibration for this purpose, a vibration table can be used on which the workpiece containing the suspension and, optionally, at least one tooling can be placed. Depending on the amplitude and duration of the vibration, the width or thickness of the second volume region can be influenced. This can also be achieved by a vibrator engaging the tooling or the workpiece.
[0024] It is possible to use semi-finished products with a porosity in the range of 60% to 95% and / or to form the first and / or second volume regions with the suspension in a part with a porosity in the range of 0% to 55%.
[0025] Advantageously, corrosion-resistant FeCrAl alloys can be used as metals. As ceramic materials, both oxide and non-oxide ceramics can be used.
[0026] The component manufactured according to the present invention includes a first volume region formed of a metal or ceramic from the suspension. The first volume region has a smaller porosity than a third volume region formed from the open pore structure of the metal or ceramic wall of the semi-finished product. The first volume region is formed exclusively from the metal or ceramic obtained from the suspension containing gas bubbles. The porosity is determined by the number and size of the gas bubbles present in the suspension. A second volume region is formed adjacent to the first volume region. This second volume region can also be porous, but can also be dense. The second volume region is formed from the metal and / or ceramic from the coating of the wall of the semi-finished product and the metal or ceramic from the suspension, which are integrally and form-locked together. As a result, the second volume region is bonded to the open pore structure of the metal or ceramic of the open pore third volume region obtained from the coated semi-finished product and has a larger porosity than the first volume region.
[0027] The third volumetric region should have a porosity of at least 65%, and the porosity of the second volumetric region disposed between the first and third volumetric regions should be less than that of the first and third volumetric regions of the part.
[0028] There may be several first and second volume regions in the part that are spaced apart from one another.
[0029] At least one externally accessible connection for electrical energy or for the supply and / or removal of media to and / or from the component can be formed in at least the first volumetric region. This connection can thus represent an electrical contact for an electrical resistance heating element. For an electrical resistance heating element, it is advantageous for the first volumetric region to have a sufficiently high strength. The first volumetric region can be joined to a third volumetric region in a form-locked, integral manner via the second volumetric region, which can enable an improved heating effect, particularly due to its large specific surface area.
[0030] It is also possible for the first and second volume regions to form areas on the part that can perform a dowel function for fastening elements such as screws.
[0031] When the first volume region and the second volume region are formed circumferentially or at least partially circumferentially around the outer edge of the third volume region, a frame can be formed in which the open-pore structure can be held and protected in a form-locked, integral manner.
[0032] Furthermore, the invention can be used to manufacture parts used in lightweight construction, automotive engineering, electrical engineering and aerospace.
[0033] The present invention will be described in more detail below based on examples. [Example]
[0034] Example 1 A metal foam plate containing two compact rectangular direct foam contacts was fabricated as follows. To fabricate this part, a rough rectangular metal foam plate measuring 125 mm x 75 mm x 20 mm was used as a semi-finished product. Two first volume regions were positioned on opposite sides to obtain a square overall shape for the finished part measuring 125 mm x 125 mm x 20 mm. The semi-finished coarse foam had a cell width of approximately 4.5 mm and a density of approximately 10% of the metal density of the semi-finished product. The two first volume regions formed by the suspension alone reached a sintered density of approximately 50%, with an average pore size between 100 μm and 1500 μm and a porosity of 50%.
[0035] The coarse foams were produced as semi-finished products by coating open-cell polymer foams with the corresponding cell widths using the squeezing-calendaring method (Schwartzwalder method). For this purpose, FeCrAl metal powder with an average particle size of 7 μm was first mixed with a polymer binder (e.g., a polyvinyl preparation commercially available from Zschimmer & Schwarz) and additives (e.g., a fatty alcohol preparation commercially available from Zschimmer & Schwarz) for defoaming and rheological adjustment, and then mixed with water to obtain a suspension with a metal solids content of approximately 86%. The foam material was impregnated with this suspension and squeezed by calendering until the desired wall surface loading of the foam structure was achieved. The coated and dried foam formed a semi-finished product, which was then inserted into the center of a separable mold tool in the area to form the first volume region, leaving 25 mm-wide edges on both sides between the inner wall of the mold tool and the surface of the semi-finished product. The tooling and blank were placed on a vibrating plate.
[0036] The suspensions from which the first and second volume regions were formed were produced separately in a batch process. The base was formed by the same suspension composition consisting of metal powder, organic binder, and rheological additive, but this time without the use of an antifoaming agent.
[0037] Instead, up to 5% by weight of a surfactant (e.g., a fatty alcohol sulfate preparation, Zschimmer & Schwarz) was added as a foaming agent. The mixture was foamed in a beaker at a rotation speed of 1000 rpm for 10 minutes, resulting in a volume increase of approximately 50%.
[0038] The foamed suspension, with the bubbles distributed as homogeneously as possible, was then added to the free end region between the inner wall of the tool and the surface of the semi-finished product using a spatula. The flow behavior of the foamed suspension was adjusted so that it flowed freely when the tool was gently vibrated by a vibrating plate and remained in place unless moved by external forces. In this way, the penetration of the foamed suspension into the pores of the coarse metal foam that would form the semi-finished product could be controlled, and a combined section with a 1-2 cell level (approximately 4.5 mm to 9 mm) could be prepared as the second volume region. After filling the end region of the semi-finished product where the second volume region would be formed, a drying process was carried out at approximately 40 °C for approximately 24 hours, after which the tool could be removed. For this purpose, it is recommended to use a tool consisting of several separable individual parts, and a separable tool is generally preferred. After the drying process, a debinding step was carried out to remove organic components, and the metal was then sintered. It was possible to produce a part that included a first volume region facing outward on each of two opposing sides, the porosity of which was less than the porosity of a third volume region predefined by the porosity of the preform. A second volume region was formed between the first and third volume regions, thereby joining the first and third volume regions in a form-locked, integral manner. The second volume region had no porosity or a porosity less than that of the first volume region. A connection for electrical contact with the first volume region could be formed. All three volume regions were formed using the same metal.
[0039] Example 2 As an alternative to metal components, ceramic components were produced according to the same principles. For this purpose, an aqueous ceramic suspension was prepared. The suspension had a bimodal SiC particle size distribution, produced by mixing SiC powders with average particle sizes of 0.8 μm and 3.0 μm in a 70:30 ratio. Furthermore, it contained 0.6% boron (carbide) and 11% water-soluble polysaccharides (equivalent to 4% carbon after pyrolysis) as sintering additives. The suspension was adjusted to a solids content of 78%.
[0040] To produce ceramic foam, polyurethane foam material with a cell width of 30 ppi (pores per inch) is saturated with the suspension, after which excess suspension is removed using a centrifuge. As an example, a 200 mm x 250 mm x 10 mm plate with two 20 mm x 50 mm rectangular recesses symmetrically located on its outer edge was used as a semi-finished product. The foam suspension was added to these recesses, which represent cavities similar to the interior of a mold tool, to create a stronger contact connection. The recesses can be introduced into the foam, for example, by laser cutting or water jet cutting, which is preferably carried out before the polymer foam coating process during which the semi-finished product is produced.
[0041] Otherwise, at least approximately the same procedure and at least approximately the same semi-finished product and suspension concentrations as in Example 1 were followed. In contrast to the production of a foamed suspension containing air bubbles as used in Example 1, air bubbles were introduced into the suspension using an apparatus such as that described in Patent Document 3. The ceramic suspension used to impregnate the polymer foam was slightly modified by adding, in addition to a surfactant, a plasticizer (e.g., high-polymer polysaccharide, Zschimmer & Schwarz) that improved the processing characteristics of the suspension from which the first and second volume regions were formed. The apparatus included a hollow steel cylinder with a length of 182 mm, an outer diameter of 70 mm, and a wall thickness of 2.9 mm. The cylinder had a connection for a controllable compressed air supply. The end face of the tube had a metal disc with a concentric nozzle, which could also serve as a hose connection. The rear end of the tube was similarly closed by a metal disc with a 10 mm diameter through-hole. A porous hollow cylinder with an outer diameter of approximately 25 mm and a wall thickness of approximately 2 mm was placed inside the steel cylinder, clamped between two lids with a sealing ring. The stainless steel tube has a porosity of approximately 43%. A static mixer of the SMX series (Sulzer Chemtech AG) with a diameter of approximately 20 mm is installed in the center of the tube. The metal powder suspension is guided through this porous inner tube by the static mixer, while compressed air is applied at a pressure of approximately 0.3 MPa and an air volumetric flow rate of approximately 600 ml / min. As a result, uniform bubbles are generated in the suspension.
[0042] The foamed suspension can then be added to the pre-formed recess in the semi-finished product by switching the foaming device on and off. The thickness of the end region forming the second volume should be approximately 4 mm to achieve a form-locked, integral bond between the second and third volumes after the sintering process.
[0043] It is then gently dried for at least 12 hours in a drying cabinet at 40°C. After drying, the polymer foam inside the wall of the volume 1 is burned off at a temperature of 800°C under an inert gas atmosphere. The remaining SiC powder scaffold is sintered at a temperature of 2100°C in a reduced pressure environment under an argon atmosphere, thereby obtaining a SiC part according to the invention.
Claims
1. 1. A method for producing a porous metal and / or ceramic component comprising at least three adjacent volumetric regions having different porosities, the method comprising: applying a metal coating or a coating made of metal or ceramic particles to an open-pore foam formed of a polymer material on the surface of the wall of the foam so as to maintain an open-pore base structure; a suspension formed of metal or ceramic particles, a liquid and a polymer binder, in which preformed gas bubbles are also present, is brought into contact with the surface of the foam serving as a semi-finished product, and then the semi-finished product thus obtained is given a predetermined shape in a predetermined surface area, with part of this suspension penetrating into the open pores of the foam serving as the semi-finished product in the end layer area, then carrying out a drying process using heat treatment, during which the liquid contained in the suspension is drained and the polymer components are removed, followed by a sintering process, During sintering, a first volumetric region with a smaller porosity resulting exclusively from the bubbles present in the suspension is formed by the metal or ceramic material originating from the suspension, adjacent to which a second volumetric region, also porous, is formed, the second volumetric region being formed by the metal or ceramic from the coating of the wall of the semifinished product and the metal or ceramic from the suspension, which are joined together integrally and in a positive locking manner within the second volumetric region, whereby the second volumetric region is joined to the open pore structure of the metal or ceramic of a perforated third volumetric region obtained from the coated foam and having a larger porosity than the first volumetric region. method.
2. 10. The method of claim 1, characterized in that, to form the semi-finished product, the foam made of polymer material is coated with metal on its wall in the following way: - CVD method, - PVD method, - Galvanic method, or With a suspension containing metal or ceramic particles, the semi-finished product obtained by coating with the suspension is dried before the suspension is applied to it to form the first and second volume regions, whereby a sufficiently high green strength is achieved so that the coated wall has sufficient strength to avoid damage when the surface region is brought into contact with a suspension containing gas bubbles.
3. 3. The method according to claim 1 or 2, characterized in that the walls of the semi-finished product are coated with the same metal or the same ceramic used to form the suspension for forming the first and second volume regions.
4. 4. The method according to claim 1, wherein a suspension having a viscosity of at least 0.1 mPas and / or a suspension containing gas bubbles with a volume fraction of at least 5% and up to 50% of the total volume of the suspension is used to form the first and second volume regions.
5. To form the first and second volume regions, the suspension comprises: - in at least one recess, or - in a recess, or into perforations formed on said semi-finished product, and / or - in a tooling that can be attached to the particular semi-finished product, 5. The method according to claim 1, wherein a hydroxybenzoate is added.
6. 6. The method according to claim 1, wherein the penetration depth of the suspension from the surface of the semi-finished product into the pores of the semi-finished product is influenced by an externally acting force.
7. 7. The method according to claim 6, characterized in that the blank itself or the blank with the tooling attached thereto is vibrated and / or pressure is applied to the suspension during the process.
8. 8. The method according to claim 1, wherein a semi-finished product is used having a porosity in the range of 60% to 95% and / or wherein the suspension forms first and / or second volume regions in the part having a porosity in the range of 0% to 55%.
9. 9. A method according to any one of claims 1 to 8, characterized in that the metal used is an FeCrAl alloy.
10. 1. A porous metal and / or ceramic part comprising at least three adjacent volumetric regions with different porosities, characterized by: a first volumetric region formed of a metal or ceramic material originating from a suspension, which is the result of a drying process using heat treatment and has a smaller porosity resulting exclusively as a result of the gas bubbles present in the suspension; and a second volumetric region adjacent to this first volumetric region, which is also porous or dense, formed of metal and / or ceramic from the coating of a wall of a semifinished product and of the metal and / or ceramic of the suspension, which are joined together integrally and in a positive locking manner, whereby the second volumetric region is joined to the open pore structure of the metal or ceramic of a third volumetric region resulting from a coated foam and forming part of the semifinished product with a larger porosity than the first volumetric region.
11. The part of claim 10 , wherein a third volume region is formed by a portion of the workpiece that is not coated with material from the suspension.
12. 12. The part of claim 10 or 11, wherein the third volumetric region has a porosity of at least 65%, and the porosity of the second volumetric region disposed between the first and third volumetric regions is less than that of the first and third volumetric regions of the part.
13. Component according to any one of claims 10 to 12, characterized in that at least in the first volume area at least one connection is formed for electrical energy or for the supply and / or removal of media to and / or from the component, which is accessible from the outside.
14. 14. A part according to any one of claims 10 to 13, characterized in that there are a plurality of first and second volume regions in the part, spaced apart from one another.
15. Component according to any one of claims 10 to 14, characterized in that the third volumetric region has a porosity in the range of 80% to 93%.
Citation Information
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