Sand casting hybrid tooling pattern plate and method of manufacturing the same via direct additive manufacturing onto a nonplanar surface of a plate
The method of manufacturing sand casting hybrid tooling pattern plates through additive manufacturing within recesses on a base plate addresses the inefficiencies of traditional methods by reducing time, labor, and material costs, resulting in a more efficient and durable mold production process.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-10-01
- Publication Date
- 2026-04-09
AI Technical Summary
Traditional methods for producing sand casting pattern plates are time and labor-intensive, requiring substantial material removal and extensive use of fasteners, which increase costs and complexity.
A method involving a base plate with recesses for additive manufacturing, where pattern members are directly formed within the recesses, minimizing mechanical fasteners and reducing material waste, using materials like metals and polymers with suitable surface conditions for adhesion.
This approach reduces production time, labor, and material costs while enhancing the efficiency and durability of sand casting molds, allowing for easier modifications and cost-effective production of complex patterns.
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Figure US2025048968_09042026_PF_FP_ABST
Abstract
Description
Attorney Docket No. 208273 -0017- WOO 1SAND CASTING HYBRID TOOLING PATTERN PLATE AND METHOD OF MANUFACTURING THE SAME VIA DIRECT ADDITIVE MANUFACTURING ONTO A NONPLANAR SURFACE OF A PLATECROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 63 / 701,673. Filed October 1, 2025, the entire contents of which are incorporated herein by reference.FIELD
[0002] Embodiments relate to sand casting hybrid tooling pattern plate and method of manufacturing the same.BACKGROUND OF THE DISCLOSURE
[0003] To produce parts in metals via sand casting methods, it is necessary to compress prepared foundry sand with tooling to form a suitable mold, with cavities into which metal may be poured.
[0004] This requires tooling representative of the desired part which is the ‘master’ or ‘pattern’ from which the mold is being made. To produce both sides of a mold at once, a pattern usually takes the form of a ‘match plate’, a plate with the top and bottom part geometries mounted on their respective sides. This plate is traditionally either cut from a monolithic block of material, assembled from multiple machined components, or built up out of carved and handworked pieces of wood, tooling board, or other suitable materials worked and blended together to produce a suitable pattern against which to compress foundry sand to form molds.
[0005] The production of pattern plates by traditional methods is both time and labor intensive, and machining approaches require substantial material removal to achieve desired part forms.
[0006] For multi-component patterns, assembly usually requires extensive use of fasteners to combine the parts together, which introduces a number of knock-on effects and concerns which can require considerable additional labor and cost to resolve.Attorney Docket No. 208273 -0017- WOO 1SUMMARY
[0007] In some aspects, the techniques described herein relate to a method of manufacturing a sand casting hybrid tooling pattern plate, the tooling pattern plate used to form a mold in foundry sand, the method including: providing a base plate having a first surface and a second surface opposite the first surface; forming a recess in the first surface of the base plate; creating a suitable surface condition on one or more surfaces of the recess suitable for subsequent additive manufacturing directly on that surface; and forming, via additive manufacturing, a mold-cavity- forming pattern member within the recess such that a first portion of the pattern member is coupled within the recess and a second portion of the pattern member extends from the first surface of the base plate.
[0008] In some aspects, the techniques described herein relate to a method, wherein the base plate includes a metal.
[0009] In some aspects, the techniques described herein relate to a method, wherein the base plate includes aluminum, a magnesium alloy, cast iron, or steel.
[0010] In some aspects, the techniques described herein relate to a method, wherein the base plate includes a polymer.
[0011] In some aspects, the techniques described herein relate to a method, wherein the polymer includes chopped carbon fibers.
[0012] In some aspects, the techniques described herein relate to a method, wherein forming, via additive manufacturing, the pattern member includes forming, via additive manufacturing, the pattern member from a photopolymer.
[0013] In some aspects, the techniques described herein relate to a method, wherein the photopolymer has a compressive and / or flexural strength to resist deformation and / or failure under a pressure of up to 200psi.Attorney Docket No. 208273 -0017- WOO 1
[0014] In some aspects, the techniques described herein relate to a method, wherein creating the suitable surface condition includes creating a surface roughness on the one or more surfaces of the recess.
[0015] In some aspects, the techniques described herein relate to a method, wherein the surface roughness is created via a process selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting.
[0016] In some aspects, the techniques described herein relate to a method, wherein the surface roughness is created on an entirety of the recess.
[0017] In some aspects, the techniques described herein relate to a method, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the recessed surface.
[0018] In some aspects, the techniques described herein relate to a method, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the wall.
[0019] In some aspects, the techniques described herein relate to a method, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the recessed surface and the wall.
[0020] In some aspects, the techniques described herein relate to a method, further including applying a ceramic coating to the base plate.
[0021] In some aspects, the techniques described herein relate to a method, further including: forming a recess in the second surface of the base plate; creating a suitable surface condition on one or more surfaces of the recess in the second surface suitable for subsequent additive manufacturing directly on that surface; and forming, via additive manufacturing, a mold-cavity-Attorney Docket No. 208273 -0017- WOO 1 forming pattern member within the recess in the second surface such that a first portion of the pattern member is coupled within the recess in the second surface and a second portion of the pattern member extends from the second surface of the base plate.
[0022] In some aspects, the techniques described herein relate to a method, wherein the first mold-cavity-forming pattern member and the second mold-cavity -forming pattern member are formed of dissimilar materials.
[0023] In some aspects, the techniques described herein relate to a method, wherein creating the surface condition on the one or more surfaces of the recess in the first surface is dissimilar from creating the surface condition on the one or more surfaces of the recess in the second surface.
[0024] In some aspects, the techniques described herein relate to a method, wherein the suitable surface condition of the first surface is created via a process selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting, and wherein the suitable surface condition of the second surface is created via a second process different from the first process and selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting.BRIEF DESCRIPTION OF THE DRAWINGS
[0025] FIG. 1 is a method for manufacturing a sand casting hybrid tooling pattern plate.
[0026] FIG. 2 is a schematic view of the sand casting hybrid tooling pattern plate formed via the method of FIG. 1.DETAILED DESCRIPTION
[0027] Before any embodiments are explained in detail, it is to be understood that the application is not limited in its application to the details of construction and the arrangement ofAttorney Docket No. 208273 -0017- WOO 1 components set forth in the following description or illustrated in the following drawings. Other embodiments than those described below, are capable of being practiced or of being carried out in various ways.
[0028] FIG. 1 illustrates a method 100 of manufacturing a sand casting hybrid tooling pattern plate (e g., hybrid pattern plate). The resulting tooling pattern plate 200 (FIG. 2), once manufactured, is used to form a mold from foundry sand. The method 100 for manufacturing the sand casting hybrid tooling pattern plate may include, at step 104, providing a base plate 204 having a first surface 204a and a second surface 204b opposite the first surface 204a. The method 100 further includes, at step 106, forming a recess 208a, 208b (or other nonplanar feature or surface) into the base plate 204. The method 100 may further include, at step 108, creating a surface condition (e.g., surface roughness, texture, etc.) on at least one of the surfaces 204a, 204b of the recesses 208a, 208b base plate 204. The method 100 may further include, at step 112, forming, via additive manufacturing, a pattern member 300a, 300b within the recess 208a, 208b of the surfaces of the base plate 204. Accordingly, once the material of the pattern member 300a, 300b is cured, the pattern member 300a, 300b may be directly coupled to the base plate 204 within the recess 208a., 208b. Additionally, preferably, the pattern member 300a, 300b is coupled to the base plate 204 with minimal or no mechanical fasteners. In addition, direct printing of pattern member 300a, 300b within the recess 208a, 208b of the base plate 204 can allow for minimal to no use of an adhesive as described herein. Collectively, the pattern members 300a, 300b make up a pattern of the tooling pattern plate 200, which is used to create the mold. In some embodiments, the first and second pattern members 300a, 300b are formed of dissimilar materials.
[0029] Though “additive manufacturing” is an industry standard term (ASTM F2792), additive manufacturing encompasses various manufacturing and prototyping techniques known under a variety of names, including freeform fabrication, 3D printing, rapid prototyping / tooling, and the like. Additive manufacturing techniques are capable of fabricating complex components from a wide variety of materials. Generally, a freestanding object can be fabricated from a computer aided design (CAD) model. A particular type of additive manufacturing process uses light to solidify a photopolymer, creating a solid three-dimensional object.Attorney Docket No. 208273 -0017- WOO 1
[0030] The method 100 may further include forming the base plate 204 from a metallic material (e.g., a flat plate stock). Accordingly, the base plate 204 can include a metal. For example, the base plate 204 may be formed via casting, forging, extruding, rolling, or machining the base plate 204 from a metallic material, such as aluminum, a magnesium alloy (e.g., Dowmetal), cast iron, or steel, although any suitable metal may be used.
[0031] The method 100 may further include forming the base plate 204 from a nonmetallic material. For example, in some embodiments, the base plate 204 may be formed, via any suitable process (such as machining), from wood. In another example, the base plate 204 may be formed via additive manufacturing using a polymer material. Accordingly, the base plate 204 can include a polymer. Any suitable additive manufacturing technique may be used to create the base plate 204. Additionally, the base plate 204 may be formed in any suitable way. For example, the base plate 204 can be made via fdament or pellet-fed extrusion deposition, sheet lamination, directed-energy deposition, selective laser sintering, continuous fiber placement, material jetting, casting, injection molding, compression molding, thermoforming, or machined from stock, to name some potential techniques.
[0032] If used, the polymer used for the base plate 204 is not generally limited, and can be any polymer that has the requisite mechanical properties to function as a base plate 204 in a sand casting tool pattern plate. For example, match plates need sufficient flexural and compressive strength to tolerate up to ~150psi transient loads, thermal operating range to maintain strength in hot foundry conditions and processing steps up to 150°F, abrasion resistance to foundry sand with a minimum ASTM-D3363 rating of 8H, and stiffness to resist deflection under uneven sand packing. Example polymers which can be used include, but are not limited to nylons, PEI, PPA, PEEK, PEKK, PC, ASA, ABS, and UHMW. The polymer can be used neat or compounded with an additive such as reinforcing spherical, rough, or fibrous additives. Compounded polymers may also be referred to as polymer composites. In embodiments where the polymer is a polymer composite, the polymer can include at least one other material that can improve mechanical properties of the polymer. An example material includes, but is not limited to, a fiber (e.g., a reinforcing fiber). The fiber can be suspended or spread out in a polymer matrix. Example fibers include, but are not limited to, glass, carbon, basalt, aramid, and combinations thereof. In someAttorney Docket No. 208273 -0017- WOO 1 embodiments, the polymer includes an additive, such as but not limited to, chopped carbon fibers.
[0033] As explained above, the base plate 204 may be formed from either metallic or nonmetallic materials. With respect to step 106, the recess 208a, 208b may be formed in any suitable way depending on the material of the base pate 204. For example, if the base plate 204 includes a metallic material or wood, the recess 208a, 208b may be formed via machining. The term “machining” as used herein is a subtractive manufacturing process in which a material is removed from the base plate 204. The material may be removed using any suitable means and may include a combination of means. In another example, if the base plate 204 includes a metallic material, the recess 208a, 208b may be formed via forging. Alternatively, the recess 208a, 208b may be formed at the same time as the base plate 204. The recesses 208a, 208b may be formed using any suitable method. In one example, if the base plate 204 is formed using casting with a non-metallic material (e.g., polymer) or metallic material (e.g., a material including metal), the recess 208a, 208b may also be formed as the base plate 204 is formed. For example, if the base plate 204 is formed using additive manufacturing with a non-metallic material (e.g., polymer material), the recess 208a, 208b may also be formed as the base plate 204 is formed.
[0034] Further with respect to step 106, in some embodiments, the method includes forming one or more recesses 208a, 208b into the first surface 204a, the second surface 204b, or both. In some embodiments, the method may include forming a first recess 208a into the first surface 204a and a second recess 208b into the second surface 204b. Such an exemplary base plate 204 is shown in FIG. 2. In the illustrated embodiment, the first recess 208a is defined by a first recessed surface 220 and a first wall 224 extending between the first recessed surface 220 and the first surface 204a of the base plate 204. In some embodiments, the recessed surface 220 is substantially parallel to the first surface 204a. A first shape of the first recess 208a is defined by the first recessed surface 220 and the first wall 224. The second recess 208b is defined by a second recessed surface 230 and a second wall 234 extending between the second recessed surface 230 and the second surface 204b of the base plate 204. In some embodiments, the recessed surface 230 is substantially parallel to the second surface 204b and, in some embodiments, the recessed surface 220. A second shape of the second recess 208b is defined byAttorney Docket No. 208273 -0017- WOO 1 the second recessed surface 230 and the second wall 234. In the illustrated embodiment, the recessed surface 220, 230 and the first wall 224, 234 of the respective recesses 208a, 208b are illustrated as being generally perpendicular to one another. That is, the “corner” of each of the recesses 208a, 208b creates a generally 90 degree angle. In other embodiments, a surface between the recessed surface 220, 230 and the first wall 224, 234 may be arcuate or rounded. That is, the “comer” of each of the recesses 208a, 208b may have an arcuate surface.
[0035] In the illustrated embodiments, the first recess 208a and the second recess 208b have different shapes, but in other embodiments, the first recess 208a and the second recess 208b may have the same shape. In other embodiments, the first recess 208a may have any suitable size and shape and the second recess 208b may have any suitable size and shape. In the embodiment of FIG. 2, the first recess 208a has a different shape than the second recess 208b, yet the first recess 208a at least partially overlaps with the second recess 208b. In other embodiments, the first recess 208a may be positioned at any location relative to the second recess 208b. In other words, the first and second recesses 208a, 208b may overlap entirely, partially overlap, or not overlap at all. Additionally, although only a single recess 208a, 208b is formed into the each of the first surface 204a and the second surface 204b, the base plate 204 may have any number of recesses in each of the first and second surfaces 204a, 204b. Additionally, one of the surfaces 204a, 204b may have a recess 208a, 208b while the other does not.
[0036] With respect to step 108, creating a suitable surface condition on one or more surfaces of the recess 208a, 208b may be accomplished by creating a surface roughness via, e.g., laser etching, chemical etching, sand blasting, media tumbling or blasting, peening, machining, abrading or direct application of material deposition onto as-formed surfaces through near-net processes such as casting, or a combination of these, as noted above. In some embodiments, the surface condition of the first and second recesses 208a, 208b is formed via dissimilar methods. In other embodiments, the same method may be used to provide similar surface conditions to each recess 208a, 208b
[0037] In some embodiments, step 108 may be omitted if the surfaces of recesses 208a, 208b the base plate 204 are sufficient for adhesion by the material of the pattern members 300a, 300b. In other embodiments, step 108 may be omitted if the base plate 204 is formed in such a way thatAttorney Docket No. 208273 -0017- WOO 1 the surfaces of recesses 208a, 208b naturally have a suitable surface roughness / texture. For example, if the base plate 204 is formed via SLS additive manufacturing the surfaces of recesses 208a, 208b of the resulting base plate 204 may have an inherent surfaces roughness / texture that that is sufficient for adhesion by the material of the pattern members 300a, 300b. In other embodiments, step 108 may be omitted and replaced by a step of applying a coating or film of material onto the surfaces of recesses 208a, 208b, which suitably promotes adhesion by the material of the pattern members 300a, 300b.
[0038] With respect to step 112, in some embodiments, the pattern members 300a, 300b may be formed directly within the corresponding recess 208a, 208b of the base plate 204 such that the pattern member 204a, 204b is coupled to the base plate 204 and extends therefrom. As shown in FIG. 2, a first pattern member 300a is formed directly within the first recess 208a and extends from the first surface 204a, and a second pattern member 300b is formed directly within the second recess 208b and extends from the second surface 204b. In other embodiments, there may be pattern members within recesses in only one of the first or second surface 204a, 204b. In other embodiments, there may be more than one pattern member within a corresponding recess of either the first or second surface 204a, 204b. Preferably, the pattern members 300a, 300b overlie or otherwise engage the surface condition of the surfaces of recesses 208a, 208b such that the material of the pattern members 300a, 300b bonds within the respective surface 204a, 204b of the base plate 204.
[0039] Further with respect to step 112, in some embodiments, the pattern members 300a, 300b may be formed directly within the corresponding recesses 208a, 208b the base plate 204 from a material comprising a polymer. For example, the polymer may be a photopolymer, which can be used to form the pattern members 300a, 300b via large format vat photopolymerization. That is, the base plate 204 is positioned within the build vat such that the material of the pattern member 300a, 300b can be cured in place directly within the corresponding recess 208a, 208b the base plate 204. For beneficial interactions between the base plate 204 and the pattern members 300a, 300b and to aid in the overall integrity of the tooling pattern plate 200, the material of the base plate 204 should be compatible with the material used to form the pattern members 300a, 300b, as well as the constituents of unreacted monomers, oligomers and photoinitiators in the vat. That is, the material of the base plate 204 should retain the necessaryAttorney Docket No. 208273 -0017- WOO 1 structural integrity that the application requires while in the vat such that the material of the pattern members 300a, 300b can adequately bond and couple to the recesses 208a, 208b of the base plate 204. In some embodiments, the pattern members 300a, 300b may be formed from a polymer via other suitable additive manufacturing techniques other than vat photopolymerization. As used herein, a photopolymer system is a combination of monomers, oligomers, and suitable catalysts (photoinitiators) that can be cured into final polymer chains (e.g., transformed from a liquid state to a solid state) in the presence of an activating wavelength band of light that stimulates the photoinitiator in the polymer system, such as one or more of ultraviolet light, visible-light, or infrared-light. Photopolymers can be commercially purchased and can be derived from monofunctional and / or multifunctional monomers having different functional groups, which can comprise polymers systems such as, but not limited to, acrylates, methylacrylates, urethanes, and epoxies. The polymer used to form the pattern member 300a, 300b can have advantageous properties that make it useful for a sand casting tool pattern plate. For example, the polymer can have compressive and flexural strength to resist deformation and / or failure under sand-forming pressures up to 200psi, abrasion resistance to avoid erosion due to sand deposition at velocity, hardness to resist sand embedment at above mentioned pressures (200psi) and sufficient thermomechanical stability to resist deformation or softening in the foundry processing environment, which can reach temperatures up to 150°F. The polymer can have one or any combination of the foregoing properties.
[0040] While large vat polymerization is the technique referred to in the foregoing paragraphs, another suitable additive manufacturing technique may be used instead, such as directed energy deposition, friction-stir welding, liquid metal jetting, polymer material jetting, or extrusion, for examples.
[0041] With respect to FIG. 2, each of first and second pattern members 300a, 300b are formed within the respective recess 208a, 208b such that they are spaced apart from the walls 224, 234 thereof by a gap. Accordingly, the pattern of the resulting tooling pattern plate 200 creates negative features (e.g., cavities, holes, etc.) of the mold and positive features (e.g., ridges, lips, flanges, projections, etc.) of the mold.Attorney Docket No. 208273 -0017- WOO 1
[0042] The second pattern member 300b may be formed within the second recess 208b and take up the entire recess, as discussed above. The first pattern member 300a and a third pattern member (not shown) may share the first recess 208a. In such case, the third pattern member may have to be formed before the first pattern member 300a is formed or vice versa. As noted above, there may be any suitable number of pattern members formed on either of the surfaces 204a, 204b. In some embodiments, the pattern members 300a, 300b are formed to contact or abut the walls 224 and the 234 of the corresponding recess 208a, 208b, such that there is minimal or no space therebetween. Accordingly, the pattern of the resulting tooling pattern plate 200 creates cavities (e.g., negative features) within the mold cavity. In still other embodiments, any of the pattern members 300a, 300b may include one or more recesses (not shown) or grooves (not shown) that may be used to create positive features (e.g., ridges, lips, flanges, projections, etc.) of the mold cavity. The recesses / grooves may have any suitable size and shape.
[0043] Additionally, in some embodiments, the method 100 may further include applying a ceramic coating to the tooling pattern plate 200. The ceramic coating may aid in the durability of the tooling pattern plate 200. In some embodiments, the ceramic coating may be applied to all or a portion of the base plate 204, all or a portion of the pattern members 300a, 300b, or both. The ceramic coating increases the hardness of the tooling pattern plate 200, particularly the pattern members 300a, 300b. Additionally, over time, the ceramic coating can be reapplied to maintain the hardness of the tooling pattern plate with successive use. The ceramic coatings may include combinations of multiple different engineering ceramics, refractory resins, pigments, and other functional additives. An example commercially available and suitable ceramic coating includes, but is not limited to, formulations offered by CERAKOTE®.
[0044] In some embodiments, the method includes applying a second ceramic coating. The second ceramic coating can be applied to at least a portion (e.g., surface) of the ceramic coating. The description of the ceramic coating can also be applied to the second ceramic coating. Embodiments that include the ceramic coating and the second ceramic coating can be used to assess wear of the tooling pattern plate 200. For example, the ceramic coating can include a pigment, and the second ceramic coating can include a pigment that is different from the pigment of the ceramic coating. As the second ceramic coating experiences wear and is removed from the tooling pattern plate 200, the pigment of the ceramic coating will become more visible. TheAttorney Docket No. 208273 -0017- WOO 1 change of color can be used to assess wear of the ceramic coating(s) and inform a user when the tooling pattern plate 200 requires additional application of a ceramic coating.
[0045] Conventionally, a tooling pattern plate is often made entirely via machining. The time required to create a tooling pattern plate via machining alone is significant because small features and smooth surfaces require extensive process time and small tools to produce. Additionally, because the details are difficult to produce, mistakes during machining are common, and the cost to re-machine the tooling pattern plate is considerable. In contrast, the disclosed method (using additive and subtractive manufacturing) and the resulting tooling pattern plate 200 is an easier, faster, and more cost-effective production method for the tooling pattern plate 200. This is because using machining for only the base plate 204 reduces the complexity of the machining process, and using additive manufacturing for the pattern members (which include the details of the tooling pattern plate 200) is faster and easier. Accordingly, the disclosed method and resulting tooling pattern plate 200 allows for a reduction in raw materials costs, due to reducing required input starting material for machining portions of the assembly. Additionally, there is reduced labor and machine-time requirement to produce machined portions of the assembly, due to moving complex features to parts produced by additive manufacturing. Even further, modularity of the pattern members, allows for easier iterative upgrades / modifications to improve sand casting hybrid tooling design or with end-product design, and replacement in the case of failures.
[0046] Clauses
[0047] Clause 1. A method of manufacturing a sand casting hybrid tooling pattern plate, the tooling pattern plate used to form a mold in foundry sand, the method comprising: providing a base plate having a first surface and a second surface opposite the first surface; forming a recess in the first surface of the base plate; creating a suitable surface condition on one or more surfaces of the recess suitable for subsequent additive manufacturing directly on that surface; and forming, via additive manufacturing, a mold-cavity -forming pattern member within the recess such that a first portion of the pattern member is coupled within the recess and a second portion of the pattern member extends from the first surface of the base plate.
[0048] Clause 2. The method of clause 1, wherein the base plate comprises a metal.Attorney Docket No. 208273 -0017- WOO 1
[0049] Clause 3. The method of clause 2, wherein the base plate comprises aluminum, a magnesium alloy, cast iron, or steel.
[0050] Clause 4. The method of clause 1, wherein the base plate comprises a polymer.
[0051] Clause 5. The method of clause 4, wherein the polymer comprises chopped carbon fibers.
[0052] Clause 6. The method of clause 1, wherein forming, via additive manufacturing, the pattern member includes forming, via additive manufacturing, the pattern member from a photopolymer.
[0053] Clause 7. The method of clause 6, wherein the photopolymer has a compressive and / or flexural strength to resist deformation and / or failure under a pressure of up to 200psi.
[0054] Clause 8. The method of clause 1, wherein creating the suitable surface condition includes creating a surface roughness on the one or more surfaces of the recess.
[0055] Clause 9. The method of clause 8, wherein the surface roughness is created via a process selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting.
[0056] Clause 10. The method of clause 8, wherein the surface roughness is created on an entirety of the recess.
[0057] Clause 11. The method of clause 8, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the recessed surface.
[0058] Clause 12. The method of clause 8, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the wall.Attorney Docket No. 208273 -0017- WOO 1
[0059] Clause 13. The method of clause 8, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the recessed surface and the wall.
[0060] Clause 14. The method of clause 1, further comprising applying a ceramic coating to the base plate.
[0061] Clause 15. The method of clause 1, further comprising: forming a recess in the second surface of the base plate; creating a suitable surface condition on one or more surfaces of the recess in the second surface suitable for subsequent additive manufacturing directly on that surface; and forming, via additive manufacturing, a mold-cavity-forming pattern member within the recess in the second surface such that a first portion of the pattern member is coupled within the recess in the second surface and a second portion of the pattern member extends from the second surface of the base plate.
[0062] Clause 16. The method of clause 15, wherein the first mold-cavity -forming pattern member and the second mold-cavity-forming pattern member are formed of dissimilar materials.
[0063] Clause 17. The method of clause 15, wherein creating the surface condition on the one or more surfaces of the recess in the first surface is dissimilar from creating the surface condition on the one or more surfaces of the recess in the second surface.
[0064] Clause 18. The method of clause 17, wherein the suitable surface condition of the first surface is created via a process selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting, and wherein the suitable surface condition of the second surface is created via a second process different from the first process and selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting.Attorney Docket No. 208273 -0017- WOO 1
[0065] Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of one or more independent aspects of the invention as described.
[0066] Various features of the invention are set forth in the following claims.
Claims
Attorney Docket No. 208273 -0017- WOO 1CLAIMSWhat is claimed is:
1. A method of manufacturing a sand casting hybrid tooling pattern plate, the tooling pattern plate used to form a mold in foundry sand, the method comprising: providing a base plate having a first surface and a second surface opposite the first surface; forming a recess in the first surface of the base plate; creating a suitable surface condition on one or more surfaces of the recess suitable for subsequent additive manufacturing directly on that surface; and forming, via additive manufacturing, a mold-cavity-forming pattern member within the recess such that a first portion of the pattern member is coupled within the recess and a second portion of the pattern member extends from the first surface of the base plate.
2. The method of claim 1, wherein the base plate comprises a metal.
3. The method of claim 2, wherein the base plate comprises aluminum, a magnesium alloy, cast iron, or steel.
4. The method of claim 1, wherein the base plate comprises a polymer.
5. The method of claim 4, wherein the polymer comprises chopped carbon fibers.
6. The method of claim 1, wherein forming, via additive manufacturing, the pattern member includes forming, via additive manufacturing, the pattern member from a photopolymer.
7. The method of claim 6, wherein the photopolymer has a compressive and / or flexural strength to resist deformation and / or failure under a pressure of up to 200psi.
8. The method of claim 1, wherein creating the suitable surface condition includes creating a surface roughness on the one or more surfaces of the recess.Attorney Docket No. 208273 -0017- WOO 19. The method of claim 8, wherein the surface roughness is created via a process selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting.
10. The method of claim 8, wherein the surface roughness is created on an entirety of the recess.
11. The method of claim 8, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the recessed surface.
12. The method of claim 8, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the wall.
13. The method of claim 8, wherein the recess includes a recessed surface substantially parallel to the first surface, and a wall connecting the recessed surface to the first surface, wherein the surface roughness is created on the recessed surface and the wall.
14. The method of claim 1, further comprising applying a ceramic coating to the base plate.
15. The method of claim 1, further comprising: forming a recess in the second surface of the base plate; creating a suitable surface condition on one or more surfaces of the recess in the second surface suitable for subsequent additive manufacturing directly on that surface; and forming, via additive manufacturing, a mold-cavity-forming pattern member within the recess in the second surface such that a first portion of the pattern member is coupled within the recess in the second surface and a second portion of the pattern member extends from the second surface of the base plate.Attorney Docket No. 208273 -0017- WOO 116. The method of claim 15, wherein the first mold-cavity-forming pattern member and the second mold-cavity-forming pattern member are formed of dissimilar materials.
17. The method of claim 15, wherein creating the surface condition on the one or more surfaces of the recess in the first surface is dissimilar from creating the surface condition on the one or more surfaces of the recess in the second surface.
18. The method of claim 17, wherein the suitable surface condition of the first surface is created via a process selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting, and wherein the suitable surface condition of the second surface is created via a second process different from the first process and selected from the group consisting of laser etching, chemical etching, media tumbling, media blasting, peening, machining, abrading, and direct application of material deposition onto as-formed surfaces through near-net processes such as casting.
Citation Information
Patent Citations
Methods and systems for creating anatomical models
US10864659B1
Brazed aluminum laminate mold tooling
US20090214890A1
Method and mold for casting thin metal objects
US20140083643A1
Molds for ceramic casting
US20140339745A1
Fabrication of composite parts having both continuous and chopped fiber components
US20190224930A1