The invention relates to a ceramic molded article having recesses, the method of its production, and its use.
Dry-pressed, strand-pressed, or film-molded ceramic molded articles can be milled or punched especially easily when still unsintered. By joining of several molded articles, for example using an applied ceramic paste, molded articles with complicated geometries such as undercut openings can be produced. There are serious limitations, however.
With larger and/or unevenly formed molded articles (of more than around 100 mm), because of inhomogeneous shrinkage during sintering, discrepancies in the desired final geometry may occur. The handling of molded articles that are thinner but with more extensive surface (for example, at 1-mm thickness, a lateral dimension of 200*300 mm) is difficult. Large molded parts with channel structures (usually milled dry-pressed parts) would have to be several millimeters thick in order to offer an adequate stability for processing. Thin ceramic films can indeed be handled, but the combination (stack formation) of many films with boreholes or windows of different widths is difficult, as the compaction is uneven at the openings during lamination.
The rapid, bubble-free combining of large-scale, absorbent molded articles that are coated with fluid and are still mechanically unstable is difficult.
Further, there is a high risk of crack formation during the sintering with complicated geometries.
To resolve this problem, a ceramic molded article having recesses was developed, which is characterized in that the molded article has at least two plates (joining parts) of ceramic material, namely a lower base plate, an upper cover plate, and optionally one or more intermediate plate(s), which are stacked on one another and are connected in a planar manner to the molded article and wherein a joining material (paste) is situated between the plates (joining parts).
Apart from that, a method for production of the molded articles is recommended, which is characterized in that,
Preferably the ceramic base material is aluminum nitride AlN and the sintering agent is Y2O3 or CaO.
So that an unnecessarily large structural space does not ensue, the joining parts have a thickness of less than 2 mm, preferably ≦1 mm.
In an embodiment according to the invention, metallizing elements are applied to the joining parts before or after sintering of the stack. These preferably are pressed on and subsequently are fused or hardened.
For creating cooling or heating spaces and channels, these are lasered as recesses into the ceramic plates in such a way that cooling or heating structures such as channels or meanders are formed in the joined molded articles. After the lasering, if wall structures remain in the ceramic plates, the cooling or heating medium can be guided to the points where special cooling or heating or temperature control is necessary.
So that the cooling or heating medium can be guided into the molded article, fastening elements or closing elements, which in one embodiment are fused and are connected to the recesses, are connected to the molded article.
The fastening elements advantageously are fastening pipes with a hose connector or pipe sections, which have a projecting flange, which in the region of the recesses is connected to the molded article, or which is fused between two ceramic plates.
A molded article according to the invention is characterized in that the molded article consists of at least two ceramic plates, a lower base plate, optionally one or more intermediate plate(s), and an upper cover plate, wherein in the base plate or cover plate boreholes are made, and in the base plate or the intermediate plates(s) channels and/or recesses are arranged, wherein the boreholes are connected to the channels and/or recesses.
In one embodiment, the molded article is a micropump that is characterized in that it consists of three ceramic plates, one lower base plate with an axis pin, on which a metallic or metallized impeller is arranged, an intermediate plate, which has the pump chamber and the feed lines, and an upper cover plate, that covers the pump chamber and the feed lines.
For producing geometrically complicated, exactly dimensioned molded articles, according to the invention sintered flat ceramic plates are initially lasered in order to provide the necessary recesses. Then a paste of stirred ceramic material is applied with screen print, roller (or other coating method). The coated joining parts are then combined in a stack and sintered again.
If the ceramic consists of AlN, which is usually mixed with a sintering agent such as Y2O3 in a concentration of 2-5%, by use of a joining material with a slightly increased or decreased concentration of Y2O3 in comparison with the base material, intensified diffusion of the Y2O3 or the formed Y AlO phases of joining material into the molded articles may be achieved, which leads to nearly complete freedom from defects in the joining zone and hermetically gas-tight components.
Since these pre-sintered joining parts are already very stable, the individual joining parts can therefore be made relatively thin, for example less than 1 mm thick.
The molded articles can be metallized on the inside and on the surface. Inner metallization can be especially suitable with high-melting metals such as platinum, molybdenum, or tungsten. Outer metallization can be carried out with the known methods/materials (W, Mo, Ag, Cu, etc.).
Openings with different diameters can be made in the individual levels of the molded article, for example by means of lasers (exact geometry), wherein the openings can be of equal size through the molded article, or are progressive, or are optionally alternating.
Channels or meanders (cooling or heating structures) can also be made in the joined molded articles, which can be used for temperature control.
The molded articles can also have recesses to save on weight, wherein ultimately only a fine stable ceramic framework is created.
Several molded articles joined in n levels can also be hermetically connected laterally like tiles to further molded articles.
Such layered molded articles may be used for example in vacuum chucks, heating plates, and coolers.
The example below is intended to describe the invention more closely, without limiting it.
Three semicircular, film-injected and sintered plates—1 mm thick, radius 100 mm—made of AlN with Y2O3 as the sintering agent are lasered. Here different-size circles are cut out of each plate in such a way that after placement of the 3 plates over one another, different-width openings also lie centrally one over the other.
A paste of AlN and Y2O3 is produced by suspension of the solids in a suitable oil (screen print oil, organic paste). In the screen print method it is pressed onto the plates to be connected and the plates coated in this way are then placed/glued on one another.
This arrangement of three glued AlN plates is sintered at suitable temperatures in N2.
With the molded articles according to the invention, molded parts can also be produced for cooling of power components, light sources, or temperature-sensitive components.
The expression “substantially” or “around” means, within the meaning of the invention, deviations from the exact value of ±10%, preferably ±5% and/or deviations in in the form of changes that are insignificant for the function.
The molded articles according to the invention thus have several plates, each of which consists of ceramic material, lying in a stack one on the other, and connected to the molded article in a planar manner. Preferably the molded article has metallizing elements on its surface, onto which the power components can be soldered. For temperature control, in the molded article there is a cooling or heating structure, that is, flow paths for a cooling or heating medium, which are acted upon by a cooling or heating medium, preferably a cooling or heating liquid, so that the cooling or heating structure can be used for temperature control. The cooling or heating medium is pumped or suctioned through the cooling or heating structure or can flow through it under the force of gravity. So that the cooling or heating medium can be guided into the molded article, in the base plate or the cover plate there are at least two openings that can be connected by fastening flanges. In one preferable embodiment, the cooling or heating channels are in the axial direction parallel to the surface faces of the base or cover plate.
Preferably the base plate of the molded article according to the invention has at least one elevation that is at the same height as the edge region of the base plate. These elevations thus have the full height of the base plate and serve first of all for guiding the cooling and heating medium, and secondly as a support surface for the cover plate or the ceramic plate positioned above it.
The ceramic material of the ceramic plates can be selected from one or more of the following groups: aluminum oxide, aluminum nitride, silicon nitride, silicon carbide, or a mixed ceramic of aluminum oxide zirconium oxide (ATZ or ZTA) or silicon oxide (aluminosilicate).
Further developments, advantages, and use options of the invention follow from the following description of the exemplary embodiments. All of the described and/or graphically depicted features by themselves or in any combination are the subject matter of the invention, independently of their summaries in the claims or their back-references. Also the contents of the claims are made a component of the description.
The ceramic molded articles according to the invention can be used as a temperature controllable vacuum chuck for the production of Si wafers.
In addition, the ceramic molded articles according to the invention are suited for use as setter plates, for example for metal injection molding.
Apart from that, the ceramic molded articles can be used as a (heatable/coolable) module for temperature control of energy storage devices such as batteries or accumulators.
The invention is explained below in more detail with reference to the figures of exemplary embodiments.
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Number | Date | Country | Kind |
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102014213480.3 | Jul 2014 | DE | national |
102014215968.7 | Aug 2014 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2015/065830 | 7/10/2015 | WO | 00 |