1. Field of Invention
The present invention relates to a substrate and, more particularly, to an efficient and reliable apparatus for molding powder of a predetermined material into a substrate.
2. Related Prior Art
To make an aluminum nitride substrate, aluminum nitride powder may be filled in a mold and then molded, under hydraulic pressure, into an aluminum nitride substrate with a predetermined shape, size and strength. A molding process is a very important one in the ceramic industry.
The aluminum nitride substrate is stripped from the mold for further processing and later use. A stripping process is a more important one in the ceramic industry. A proper stripping process is important to protect the aluminum nitride substrate from dents, cracks and/or peeling and to therefore improve the yield.
Conventionally, a release agent is used to facilitate the striping of the aluminum nitride substrate from the mold in the stripping process. The provision of the release agent is however an additional step that takes extra time. Moreover, the release agent might cause the aluminum nitride substrate to deteriorate.
The present invention is therefore intended to obviate or at least alleviate the problems encountered in prior art.
It is the primary objective of the present invention to provide an efficient and reliable apparatus for molding a substrate.
To achieve the foregoing objectives, the substrate-molding apparatus includes a shell, a mold and upper and lower pushers. The shell includes a space defined therein. The mold is movably located in the space of the shell. The mold includes a cylindrical space defined therein. The upper pusher is movably located in the cylindrical space of the mold. The upper pusher includes at least one slit defined in the periphery thereof. The lower pusher is movably located in the space of the shell and abutted against the bottom of the mold.
In an aspect, the shell may be made of stainless steel.
In another aspect, the space of the shell is a frusto-conical space that gets tapered as it extends downward.
In another aspect, the mold includes a frusto-conical external face corresponding to the frusto-conical space of the shell.
In another aspect, the mold includes at least three planks located against one another and each formed with an arched internal face and a semi-conical external face. The arched internal faces of the planks together define the cylindrical space of the mold. The semi-conical external faces of the planks together form the frusto-conical external face of the mold.
In another aspect, the mold is made of stainless steel.
In another aspect, the upper pusher is formed with a convex lower face.
In another aspect, the substrate-molding further includes a piece of release paper in contact with the upper pusher and another piece of release paper in contact with the lower pusher.
In another aspect, the pieces of release paper are duo-sided reflector paper.
In another aspect, aluminum nitride powder can be filled and molded in the cylindrical space of the mold.
Other objectives, advantages and features of the present invention will be apparent from the following description with reference to the attached drawings.
The present invention will be described via detailed illustration of the preferred embodiment with reference to the drawings wherein:
With reference to
With reference to
The mold 2 may be made of stainless steel. The mold 2 is movably located in the frusto-conical space 11 defined in the shell 1. The mold 2 includes a cylindrical space 20 defined therein. The mold 2 consists of at least three planks 21 arranged against one another (or “side by side”). Each of the planks 21 is formed with an arched internal face 211 and a semi-conical external face 212. The arched internal faces 211 of planks 21 together form the wall of the cylindrical space 20. The semi-conical external faces 212 of the planks 21 together form a frusto-conical face corresponding to the wall of the frusto-conical space 11 defined in the shell 1.
The upper pusher 3 is movably located in the space 20 cylindrical space defined in the mold 2. The upper pusher 3 includes at least one slit 31 defined in the periphery thereof. The upper pusher 3 includes a convex lower face 32 that extends at an angle of 1 degree from a horizontal plane as shown in
The lower pusher 4 is movably located in the frusto-conical space 11 defined in the shell 1. The lower pusher 4 is located against the bottom of the mold 2, thus closing the lower open end of the cylindrical space 20 defined in the mold 2. A piece of release paper 5 is provided on the bottom of the upper pusher 3 while another piece of release paper 5 is provided on the top of the lower pusher 4. The release paper 5 may be duo-sided reflector paper.
With reference to
As described above, the powder 6 is located in the space defined in the cylindrical space 20 defined in the mold 2. Hydraulic pressure is exerted on the upper pusher 3 periodically to mold the powder 6. Then, hydraulic pressure is exerted on the lower pusher 4 so that the mold 2 is moved out of the shell 1. Finally, the planks 20 of the mold 2 are moved from one another so that the aluminum nitride substrate is quickly released from the mold 2, the yield is increased, and the apparatus can be used repeatedly.
The present invention has been described via the detailed illustration of the preferred embodiment. Those skilled in the art can derive variations from the preferred embodiment without departing from the scope of the present invention. Therefore, the preferred embodiment shall not limit the scope of the present invention defined in the claims.
Number | Date | Country | Kind |
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100127703 | Aug 2011 | TW | national |