This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2005-152547, filed May 25, 2005, the entire contents of which are incorporated herein by reference.
1. Field
One embodiment of the invention relates to a metal mold apparatus which is employed in molding the casing of an electronic equipment, for example, a portable computer, and more particularly to a structure for drawing out air or gas from a molding space into which a melted resin material is filled.
2. Description of the Related Art
A casing for a portable computer is often molded of a resin material in order to realize the smaller size and lighter weight of a product. In general, resin products of this sort are mass-produced using a metal mold apparatus. The metal mold apparatus includes a pair of metal molds which are combined so as to be openable and closable, and a molding space is formed between the metal molds. The molding space defines a shape corresponding to the resin product, and the resin material which is melted is poured into the molding space and then hardened, whereby the resin product having a desired shape is obtained.
Meanwhile, at a stage before the pouring of the resin material into the molding space, this molding space is filled up with air. Therefore, in order to spread the resin material uniformly every nook and corner of the molding space, the air remaining in the molding space needs to be promptly discharged.
More specifically, when the air remains in the molding space at the pouring of the resin material into this molding space, the remaining air hampers the smooth flow of the resin material. As a result, the resin product after the completion of the molding becomes a defective article whose shape is partly deficient. Also, since the resin material touches the air remaining in the molding space, the surface of the resin product might be baked by frictional heat attendant upon the touch.
Moreover, the resin material which is poured into the molding space contains various additives, for example, a fire retardant. Depending upon the sorts of resin materials, therefore, the additives vaporize and produce a large quantity of gas when the resin material is poured into the molding space. The gas also forms one factor for hampering the flow of the resin material within the molding space.
Accordingly, the promotion of the discharge of the air and the gas within the molding space is required for ensuring the flowability of the resin material within the molding space.
As a measure for the discharge, a degassing core for discharging the air or the gas from the molding space is assembled in the related-art metal mold apparatus. A core pin which has a very fine vent hole, or a core block in which a plurality of plates having degassing grooves are placed one over the other and are joined together, has been known as the degassing core.
Each of the core pin and the core block is used in a state where it is embedded in that inner surface of the metal mold which is exposed to the molding space. Therefore, the core pin or the core block has a vent face which is flush with the inner surface of the metal mold, and the vent hole or the degassing grooves is/are open to the vent face.
Accordingly, the air remaining in the molding space or the gas produced during the pouring of the resin material is drawn out of the metal molds through the vent hole or the degassing grooves (refer to, for example, Catalog of Plastics Molding Standard Components, 2003. 5→2005. 4, P. 487-488 and P. 1015-1016, issued by MISUMI Corporation).
A general architecture that implements the various feature of the invention will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate embodiments of the invention and not to limit the scope of the invention.
Various embodiments according to the invention will be described below in detail with reference to the drawings. In general, according to one embodiment of the invention, a metal mold apparatus includes: a pair of metal molds defining a molding space into which a melted resin material is filled; and an ejector pin provided in one of the metal molds and capable of protruding toward the molding space; wherein the ejector pin has a vent passage which connects the molding space and the exterior of the one metal mold.
Now, an embodiment of the present invention will be described with reference to the drawings.
The first metal mold 2 and the second metal mold 3 are combined so as to be splittable in a vertical direction. The first and second metal molds 2 and 3 define a molding space 5 when both are butted against each other. The molding space 5 lies between the first metal mold 2 and the second metal mold 3.
The second metal mold 3 has a gate 6. The gate 6 serves to pour a melted resin material into the molding space 5 under a predetermined pressure, and it is contiguous to the central part of the molding space 5 through an introduction port 7.
In this embodiment, polycarbonate resin or ABS resin is employed as the resin material, and this resin material contains various additives, for example, a fire retardant.
The ejector pins 4 serve to push up the molded article 8 from the first metal mold 2 and to take out this molded article, and they are assembled in the first metal mold 2. These ejector pins 4 are dispersively arranged over the wide range of the molded article 8 so that the molded article 8 can be pushed up without being inclined.
As shown in
Each of the ejector pins 4 includes a body 11 and a head portion 12. The body 11 is supported in the guide slot 10 so as to be slidable in its axial direction. The head portion 12 is provided at the upper end of the body 11 being the distal end thereof, so as to be coaxial with this body, and it has a pressing face 13 exposed to the molding space 5.
The ejector pin 4 is supported in the first metal mold 2 so as to be capable of ascending and descending between a first position and a second position. At the first position, as shown in
Therefore, at the point of time at which the resin material is filled into the molding space 5, the ejector pin 4 descends to the first position, and its pressing face 13 functions also as the inner surface of the first metal mold 2. When the ejector pin 4 ascends from the first position to the second position, the molded article 8 is pushed up from the inner surface of the first metal mold 2.
As shown in
The size of the first gap 14 is proportional to the clearance S1 between the outer peripheral surface of the head portion 12 and the inner surface of the guide slot 10. The value of the clearance S1 is determined on the basis of, for example, the material properties of the resin material, the filling pressure thereof, and the filling time period thereof.
As shown in
The ejector pin 4 has a groove portion 20 between the body 11 and the head portion 12. The groove portion 20 is continuous in the peripheral direction of the ejector pin 4. Insofar as the ejector pin 4 lies at the first position, the groove portion 20 lies inside the guide slot 10. The clearance S2 between the bottom of the groove portion 20 and the inner surface of the guide slot 10 is larger than the clearance S1 between the outer peripheral surface of the head portion 12 and the inner surface of the guide slot 10.
Therefore, the groove portion 20 defines a constricted part 21 between the body 11 and head portion 12 of the ejector pin 4, and the first gap 14 and second gap 17 are contiguous to the constricted part 21. In other words, the first and second gaps 14 and 17 communicate with each other through the groove portion 20.
As a result, the first gap 14, groove portion 20 and second gap 17 define a vent passage 22 between the outer peripheral surface of the ejector pin 4 and the inner surface of the guide slot 10. The vent passage 22 is provided between the molding space 5 and the air escape port 18, thereby to connect the molding space 5 and the exterior of the first metal mold 2.
As shown in
The body 11 of the ejector pin 4 has an end surface 11a which is exposed to the groove portion 20, and a right-angled corner portion 23 which is defined by the end surface 11a and the outer peripheral surface of the body 11. The corner portion 23 includes a sharp edge 23a which is continuous in the peripheral direction of the ejector pin 4. The edge 23a lies in slidable touch with the inner surface of the guide slot 10.
In the metal mold apparatus 1 for molding such a casing 30, the ejector pins 4 which are in the number of 100 or more and have different diameters by way of example are assembled in the first metal mold 2. The ejector pins 4 are dispersively arranged over the wide range of the molded article 8 as shown in
In this embodiment, the vent passages 22 as stated above are provided in the ejector pins 4 which correspond to, for example, 60% of the total number of ejector pins 4. The number of the ejector pins 4 to be provided with the vent passages 22 is determined on the basis of the flow directions of the resin material within the molding space 5, the filling pressure thereof, the material properties thereof, and empirical rules of many years.
In the metal mold apparatus 1 of such a configuration, the vent passage 22 which extends from the molding space 5 to the exterior of the first metal mold 2 is defined between the ejector pin 4 and the guide slot 10. Therefore, when the resin material is poured from the gate 6 into the molding space 5, air remaining in the molding space 5 flows from the first gap 14 into the groove portion 20 in accordance with the flow of the resin material, and it leaks from the groove portion 20 to the exterior of the first metal mold 2 through the second gap 17 as well as the air escape port 18, as indicated by arrows in
Further, any gas which has been produced with the vaporizations of the additives on the occasion of the pouring of the resin material into the molding space 5 passes through the first gap 14, groove portion 20, second gap 17 and air escape port 18 and leaks to the exterior of the first metal mold 2, likewise to the above air.
In other words, the resin material poured into the molding space 5 is spread uniformly every nook and corner of the molding space 5 while pushing out from the vent passages 22, the air remaining in the molding space 5 and the gas produced at the filling of the resin material. As a result, the flowability of the resin material in the molding space 5 becomes favorable, and the whole molding space 5 can be filled up with the resin material. Accordingly, the molded article 8 in the desired shape can be obtained.
According to the metal mold apparatus 1, the air and gas within the molding space 5 can be drawn out from the place of the ejector pin 4, a dedicated core pin or core block for degassing is eliminated. As compared with the related art, accordingly, the embodiment can simplify the configuration of the metal mold apparatus 1 and decrease the number of components thereof, and it can reduce the cost of the metal mold apparatus 1.
Also, the ejector pins 4 are arranged in balanced fashion so as to disperse over the wide range of the molded article 8, and hence, positions where the air and gas within the molding space 5 are drawn out are not restricted. Therefore, the air and gas within the molding space 5 can be efficiently drawn out from a large number of places in the molding space 5, and the flowability of the resin material within the molding space 5 can be enhanced.
On the other hand, in the metal mold apparatus 1, the first gap 14 located at the upstream end of the vent passage 22 is open to the molding space 5, so that part of the resin material and part of the gas might flow into this first gap 17. Especially the gas becomes a pasty or tarry foreign matter, which adheres to the inner surface of the guide slot 10 or the outer peripheral surface of the head portion 12 of the ejector pin 4.
In such a case, scavenge operations are carried out for removing the resin material or the foreign matter which has adhered to the ejector pins 4 or the guide slots 10. Specifically, in a state where the first metal mold 2 and the second metal mold 3 have been opened and where the molded article 8 has been pushed out by the ejector pins 4 and taken out, the ejector pins 4 are in a state where they have ascended to the second position. On this occasion, at least the head portions 12 and groove portions 20 of the ejector pins 4 and the upper parts of the bodies 11 thereof protrude from the inner surface of the first metal mold 2 toward the molding space 5, and they are exposed out of the first metal mold 2.
It is therefore possible to easily remove the resin material and the foreign matter which have adhered to the head portions 12, the groove portions 20, and the upper parts of the bodies 11.
Moreover, according to the metal mold apparatus 1, the corner portion 23 of the body 11 of the ejector pin 4 has the sharp edge 23a which is continuous in the peripheral direction of the guide slot 10. This edge 23a is held in slidable touch with the inner surface of the guide slot 10 when the ejector pin 4 ascends from the first position to the second position. Therefore, the resin material and the foreign matter which are adherent on the inner surface of the guide slot 10 are automatically scraped off from the inner surface of the guide slot 10 by the edge 23a of the body 11 during the ascent of the ejector pin 4. The resin material and the foreign matter which have been scraped off are led to the groove portion 20, and they are taken out of the first metal mold 2 in a state where they are held in the groove portion 20.
For the above reasons, even when the resin material and the tarry foreign matter have intruded into the first gaps 14 of the vent passages 22, the scavenge operations of the vent passages 22 can be carried out without disassembling the metal mold apparatus 1. Accordingly, there is the advantage that the production activity of the molded article 8 need not be stopped for a long time period as in the prior art, and that the productivity of the molding is remarkably enhanced.
Further, since the first gap 14 is continuous in the peripheral direction of the guide slot 10, the head portion 12 of the ejector pin 4 may merely be formed columnar. Therefore, the head portion 12 need not be subjected to complicated machining, and the cost of the ejector pin 4 can be reduced.
Incidentally, the present invention shall not be limited to the foregoing embodiment, but it can be variously modified and performed within a scope not departing from the purport thereof.
In the embodiment, the vent passages are provided at the positions which correspond to the ejector pins protruded toward the molding space. However, the invention is not restricted thereto, but in a case, for example, where the first metal mold has pins which are not accompanied by the ejecting operations, or pins which are protruded to the molding space, vent passages may well be provided at parts corresponding to these pins.
The invention is not limited to the foregoing embodiments but various changes and modifications of its components may be made without departing from the scope of the present invention. Also, the components disclosed in the embodiments may be assembled in any combination for embodying the present invention. For example, some of the components may be omitted from all the components disclosed in the embodiments. Further, components in different embodiments may be appropriately combined.
| Number | Date | Country | Kind |
|---|---|---|---|
| P2005-152547 | May 2005 | JP | national |