The invention relates to an injection-molding nozzle, in particular a hot-runner nozzle, for provision in an injection-molding injector having, depending on configuration, a relatively large number of plates, and having on its fixed side at least one mounting plate or mold-clamping plate and one distribution plate, and on its mold side has at least one mold plate forming a mold cavity into which the nozzle tip opens, the hot-runner nozzle being provided with a housing collar, and in a concentric material tube being provided with a flow passage for a molten material opening into the nozzle tip, and having connections for a heating element and temperature sensor.
Such an injection-molding nozzle is known from DE 195 42 237 [U.S. Pat. No. 5,507,634], which is provided as a hot-runner nozzle having an integrated electric heating element, and having a central borehole as a flow passage for conveying the thermoplastic melt to the nozzle tip and then into the cavity of a cooled mold or a separable mold block having the mold cavity provided in a mold plate. The mold plate may form multiple mold cavities, and the injection mold may be correspondingly provided with multiple injection-molding nozzles. At its rear end the nozzle housing has a flange part which is accommodated in a seat in a plate on the fixed side for fixing the injection-molding nozzle in place.
In a hot runner or cold runner nozzle used in injection molds and known from DE 100 04 072 [U.S. Pat. No. 6,805,549], to feed a free-flowing mass to a separable mold block (mold cavity) at a specifiable temperature under high pressure the nozzle body has at least one essentially flat side surface on which a flat heating and/or cooling device is mounted.
Installation of the known hot runner or cold runner nozzles in the fixed mold plate, generally on the distribution plate for the molten material, has proven to be disadvantageous. Any leaks between the injection-molding nozzle and the distributor may result in uncontrolled spreading of the molten material and may damage the injection-molding nozzle and the connecting cables.
The object of the invention, therefore, is to provide a design for a standard injection-molding nozzle, in particular a hot-runner nozzle, in which leaks which occur between the nozzle and the distributor are not able to adversely affect the nozzle and cabling.
This object is achieved according to the invention by the fact that the injection-molding nozzle is incorporated into the injection mold from the mold side and is sealed with respect to the distribution plate. Aside from the fact that by use of the measure according to the invention the installation of the injection-molding nozzles is significantly simplified because the injection mold is freely accessible from the front, in particular it is ensured that melt leaks are not able to reach the injection-molding nozzle, since the injection-molding nozzle is sealed with respect to the distribution plate as well as the overall mold side, and thus, with respect to additional plates adjoining the distribution plate in the injection direction, such as a frame plate or intermediate plate which accommodates the injection-molding nozzle. Thus, the leaks are not able to damage the cables and connections for the heating and/or cooling element and temperature sensor.
One preferred embodiment of the invention provides a nozzle design in which the rear end of the nozzle housing facing away from the nozzle tip is provided with an annular seal lip which seals a through hole provided with a precise fit in an intermediate plate, connected in front of the distribution plate in the injection direction, for accommodating the rear end of the nozzle housing. Compared to an optional seal ring or the like, the seal lip joined to the end of the nozzle housing has the advantage of a consistently accurately positioned, precise fit in the through hole. Upon insertion of the injection-molding nozzle into the through hole, the outer lip effectively prevents any emerging plastic or molten metal between the distributor and nozzles from entering the fixed side at the front end of the nozzle.
According to one advantageous embodiment of the invention, the intermediate plate is provided with a seat, open toward the front in the injection direction, for the centering accommodation of the housing collar for the injection-molding nozzle. When it is inserted, the injection-molding nozzle is thus fixed in place via the larger housing collar and guided into its installation position.
When the seat is preferably provided with a cavity that extends orthogonally of the injection direction and in which the heating-element and temperature-sensor connections are accommodated, the connections and cables may be housed in a protected region of the mold. As the result of the installation according to the invention with sealing of the nozzle and shielded housing of the heating-element and/or temperature-sensor connections together with their cables, these components may advantageously be protected from temperature influences from the hot distributor.
The cavity is mechanically separated from the installation space of the distributor for the distribution plate.
According to one proposal of the invention, at least the housing for the injection-molding nozzle, which provides the end of the nozzle housing together with the housing collar, is made of titanium. A favorable temperature profile for the melt may be achieved in this manner.
Further features and particulars of the invention result from the claims and the following description of one illustrated embodiment of the invention illustrated in the drawings, in which:
An injection mold 1 illustrated in the drawing comprises multiple plates on its fixed back side I, and on its front mold side II has a separable mold block together with a pair of mold parts 2 forming a mold cavity 3 (see
The injection-molding nozzle or hot-runner nozzle 7 together with a large housing collar 11 are inserted into an open seat 12 (see
The rear end 14 of the housing is provided with a seal in the form of an annular lip 15 that fits snugly in the through hole 13 of the seat 12 in the intermediate plate 6, as shown in
As a result of the seal formed by the seal lip 15, heating-element and temperature-sensor connections 16 and 17 together with their cables are completely undamaged by any molten metal leaks.
The protected installation position of the heating-element and temperature-sensor connections 16 and 17 is further benefited by the fact that the connections are accommodated in a cavity 18 in the intermediate plate 6 that extends orthogonally of the injection direction 10 thermally shielded from the distribution plate 5. For centering and guiding the hot-runner nozzle 7 when it is inserted into the seat 12 in the intermediate plate 6, the housing collar 11 and the rear end 14 of the nozzle housing together with the seal lip 15 in this region are guided into the borehole 13. After insertion into the seat 12 in the intermediate plate 6, the hot-runner nozzle 7 is screwed to the intermediate plate 6, threaded holes 20 (see
Number | Date | Country | Kind |
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10-2006-026-579.3 | Jun 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP07/04546 | 5/23/2007 | WO | 00 | 11/25/2008 |