Abstract:
A mold assembly for manufacturing molded articles includes a plurality of mold portions that are comprised of a polymer and form a mold cavity. In embodiments, the polymer has a thermal conductivity (k) of less than about 0.5. Although, some embodiments may have higher conductivity values. In embodiments, the polymer comprises polycarbonate. Methods for making and using polymer mold portions and assemblies are also disclosed.
Abstract:
A high pressure casting die is disclosed. The high pressure casting die may include a die half that defines a recessed area and a build plate that may nest within the recessed area of the die half. The high pressure die casting may further include an additive section that is disposed on the build plate. The additive section may include a plurality of metallic powder layers, the thermal conductivity or the thermal expansion coefficient of the build plate and the additive section may be within 10% of each other.
Abstract:
Modular tubing apparatuses for use in a shell-and-tube heat exchanger are described. Multiple apparatuses may be connected in series to form a high density, small tube diameter, long length tube apparatus assembly. Casting molds for forming modular tubing apparatuses are likewise described, including methods for casting and electrochemically machining such apparatuses.
Abstract:
A method of working an additively manufactured part includes applying a layer of wax to a part manufactured with an additive manufacturing process. Then a mold is formed over the layer of wax on the part. The wax is then removed from between the mold and the part. The part is then melted in the mold, and then the part is re-solidified in the mold. Finally, the mold is removed.
Abstract:
A method of working an additively manufactured part includes applying a layer of wax to a part manufactured with an additive manufacturing process. Then a mold is formed over the layer of wax on the part. The wax is then removed from between the mold and the part. The part is then melted in the mold, and then the part is re-solidified in the mold. Finally, the mold is removed.
Abstract:
A method of manufacturing a golf club head can include: creating a mold of the golf club head; forming two or more portions of a model of the golf club head using the mold, each of the two or more portions of the model include a part of a body of the golf club head and at least one first alignment mechanism; assembling the model of the golf club head using the at least one first alignment mechanism of each of the two or more portions of the model to align the two or more portions of the model, the model comprises the body of the golf club head and a joined alignment mechanism, the joint alignment mechanism comprises the at least one first alignment mechanism of each of the two or more portions of the model; using the model of the golf club head to create a cast for the golf club head; removing the model of the golf club head from the cast; and using the cast of the golf club head to create the golf club head with the joined alignment mechanism; and removing the joined alignment mechanism from the golf club head. Other embodiments are disclosed.
Abstract:
Disclosed is a method of processing the surface of a cavity a casting die wherein the fluidity is good even if the shape of the surface of the cavity (castings) has a complex shape, mold releasability are excellent, reprocessing is possible, and the life of the die can be prolonged. A step (A) for forming hemispherical first dimples (12) by the particles to be sprayed on the surface of the cavity (11), and a step (B) for forming second dimples (13) by the particles to be sprayed, which second dimples are smaller than the first dimples (12), are provided. A treating method (a) and a treating method (b) where either step (A) or step (B) is carried out depending on the requirements, and a method (c), where only the first dimples (12) are formed by carrying out only step (A) are also provided.
Abstract:
Disclosed is a mold 10 for forming cast rods including: a segment assembly 12 including a plurality of segments 14 being placed side by side, and a plurality of cavities 26 extending along a longitudinal direction 16; and clamping means (18 to 21) for clamping the segment assembly 12 in directions orthogonal to the longitudinal direction 16. The mold 10 has one or more cavity-forming portions 28 each forming a part of one of the peripheral surfaces of the cavities 26. Each cavity 26 is formed by a combination of two or more segments 14, and at least one of the plurality of segments 14 has two or more cavity-forming portions 28.
Abstract:
A method for producing a metal material involves applying, to the surface of the ZAS alloy, an agent comprising a solvent and, dispersed therein, a material containing Cu such as Cu powder and a Cu—Mn alloy powder and preferably, dispersed or dissolved therein, a reducing agent capable of reducing an oxide film present on the surface of the ZAS alloy, and heating the ZAS alloy having the agent applied thereon, to thereby diffuse Cu into the alloy. The metal material comprises a Zn—Al—Sn based alloy (ZAS alloy) and Cu diffused in the alloy, wherein Cu is diffused into the inside of the alloy to a depth from the surface of 0.5 mm or more, the concentration of Cu decreases from the surface of the ZAS alloy towards the inside thereof, and there is present no specific interface between Cu and the ZAS alloy.
Abstract:
Disclosed herein are molds coated for surface enhancement, methods of making the molds, and methods of casting using such molds. In one embodiment, a mold comprises: a mold member comprising copper; and a coating disposed on at least a portion of a surface of the mold member, wherein the coating has a coefficient of thermal expansion of about 10×10−6/° C. to about 16.5×10−6/° C. and a Vickers Hardness Number of greater than about 500 and less than about 1200 at a temperature of less than or equal to about 600° C.