Distributor unit for an injection moulding tool with integrated cooling

The integration of a cooling device with cooling pistons between hot runner nozzles in the distributor block addresses the heat management issue in distributor units, enabling efficient heating and cooling to maintain plastic melt flowability and reduce cycle times.

WO2026012676A1PCT designated stage Publication Date: 2026-01-15WITOSA
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Patent Information

Application Number
PCT/EP2025/066569
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-07-10
Filing Date
2025-06-13
Publication Date
2026-01-15

AI Technical Summary

Technical Problem

Distributor units with multiple hot runner nozzles in injection molds introduce excessive heat, leading to longer cycle times and lower output due to insufficient cooling of the plasticized melt, which solidifies before it can be injected into the mold cavity.

Method used

Incorporating a cooling device with cooling pistons into the distributor block, spatially arranged between hot runner nozzles, to create alternating hot and cold zones, ensuring efficient heating of the plastic melt while effectively cooling the mold element.

Benefits of technology

Achieves short cycle times and improved output by maintaining a suitable temperature profile for the plastic melt while efficiently cooling the injection mold, preventing solidification and ensuring consistent flowability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a distributor unit (1) for an injection moulding tool, having a plurality of hot runner nozzles (10), the distributor unit (1) having at least one heating element (11) used to heat the distributor unit (1) such that the flowability of a plastic melt can be maintained and can be guided to the hot runner nozzles (10), a main body of the distributor unit (1) being formed by means of at least one distributor block (14), on which the hot runner nozzles (10) are accommodated, the cooling device (12) having at least one cooling channel (15) installed in the distributor block (14) and a cooling device (12) being arranged between the hot runner nozzles (10). According to the invention, a cooling device (12) is arranged between the hot runner nozzles (10), the cooling device (12) having means (13) with which at least one tool element of the shaping injection moulding tool can be cooled, in that cooling stamps (17) forming the means (13) are installed in the distributor block (14), which cooling stamps project into the distributor block (14) as far as the cooling channel (15) and extend as far as a head side of the distributor block (14) in order to form a contact with the tool element of the shaping injection moulding tool.
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Description

[0001] DISTRIBUTION UNIT FOR AN INJECTION MOLDING TOOL

[0002] WITH INTEGRATED COOLING

[0003] The invention relates to a distributor unit for an injection mold, comprising a plurality of hot runner nozzles, wherein at least one heating element is provided for heating the distributor unit so that the flowability of a plastic melt is maintained and can be directed to the hot runner nozzles, wherein a base body of the distributor unit is formed by means of at least one distributor block on which the hot runner nozzles are received, wherein the cooling device has at least one cooling channel which is incorporated in the distributor block and wherein a cooling device is arranged between the hot runner nozzles.

[0004] STATE OF THE ART

[0005] Distributor units serve to house hot runner nozzles and contain melt channels through which the plasticized molten plastic is directed to the nozzles. A distributor unit is typically designed as a distributor plate or in the form of a distributor block. To maintain a flowable state of the molten plastic, the distributor unit must be kept at a suitable temperature. Additionally, the hot runner nozzles can be individually heated, through which the plasticized melt ultimately flows into the injection mold. It is also known to heat the multiple hot runner nozzles via heating elements within a base body of the distributor unit.

[0006] The injection mold itself has a cavity from which the final component can be formed by injecting the plasticized melt. Such injection molds are typically two-part and can be opened via a lifting motion to demold the finished component. On the rear side of one of the two forming injection molds is the distributor unit with at least one, or—as in this case—a multitude of hot runner nozzles. A multitude of hot runner nozzles is particularly useful when the gate for producing a single component needs to be present multiple times. While multiple hot runner nozzles allow for the production of several individual components, it is also possible that a single component must be manufactured using multiple gates.Examples of such components include multi-test plates for the analysis of medical samples, such as PCR tests, and multi-test plates for medical purposes can have up to 100 wells, each equipped with a sprue, in particular to avoid the formation of flow structures in the wells, for example for high-quality analysis of the input content using optical methods.

[0007] For example, such a test plate can have twelve rows of eight cavities each, so that a single, one-piece, and structurally uniform test plate has 96 cavities. A corresponding manifold unit of an injection mold therefore has 96 hot runner nozzles arranged in a matrix-like configuration, such as an array. Consequently, the manifold unit is equipped with a corresponding number of hot runner nozzles and a corresponding number of melt channels, whereby, due to the limited dimensions of the test plate, the manifold unit must also accommodate the large number of hot runner nozzles in a very small space.Using such a distributor unit in an injection mold has the disadvantage that the distributor unit, with its large number of hot runner nozzles, introduces a greater amount of heat into that part of the injection mold. This can sometimes prevent the plasticized melt injected into the mold cavity from cooling down and consequently solidifying. Longer cycle times and lower output are the consequences, which should be avoided.

[0008] CN 117621377 A discloses an array of several hot runner nozzles heated by heating elements and connected by cooling lines. Each nozzle head allows the hot runner nozzles to connect to the injection mold.

[0009] CA 2 917 473 A shows a hot runner nozzle and furthermore an arrangement of several hot runner nozzles, wherein at least one heating element is provided for heating the distributor unit so that the flowability of a plastic melt is maintained and can be directed to the hot runner nozzles, wherein a base body of the distributor unit is formed by means of at least one distributor block on which the hot runner nozzles are received, wherein the cooling device has at least one cooling channel which is incorporated in the distributor block and wherein a cooling device is arranged between the hot runner nozzles.

[0010] REVELATION OF THE INVENTION

[0011] The object of the invention is to further improve a distributor unit for an injection mold with a plurality of hot runner nozzles, which is heated by heating elements, but without the distributor unit excessively heating the injection mold in contact with it. In particular, a distributor unit with a large number of hot runner nozzles is to be created that can be manufactured for producing a one-piece component with a correspondingly large number of gates in an injection mold, while still achieving short cycle times.

[0012] This problem is solved starting from a distribution unit according to the preamble of claim 1 in conjunction with the characterizing features. Advantageous embodiments of the invention are specified in the dependent claims.

[0013] To solve the above problem, the invention proposes the technical teaching that the cooling device has means by which at least one tool element of the molding injection mold can be cooled from the distributor unit by incorporating cooling pistons forming the means in the distributor block, which project into the distributor block up to the cooling channel and extend to a head side of the distributor block in order to form contact with the tool element of the molding injection mold.

[0014] The core concept of the invention is the relocation of a cooling device otherwise known for an injection mold into the distributor unit, such that the cooling device is spatially arranged between the hot runner nozzles and includes means by which the mold element of the injection mold can be cooled from the distributor unit. In other words, the distributor unit simultaneously incorporates at least one heating element, preferably a plurality of heating elements, and at least one cooling device, so that the distributor unit maintains a temperature profile during operation that features alternating hot and cold zones. The hot runner nozzles are located in the hot zones to maintain a temperature that keeps the melt in a plasticized state and allows it to be supplied to the mold until it is injected into the mold element of the injection mold.At the same time, however, cold zones are also present, occurring in the area of ​​the means designed to cool the tool element of the mold-forming injection mold from within the distributor unit. These high-temperature and low-temperature zones can occur regularly and be distributed in a matrix or array-like pattern across the contact surface between the distributor unit and the injection mold.

[0015] To ensure a flowable state of the plastic melt, the distributor unit must be kept at a suitable temperature so that at least one heating element can heat a base body of the distributor unit, thereby also heating the hot runner nozzles, or the hot runner nozzles are heated individually by heating elements through which the plastic melt ultimately flows into the injection mold. Therefore, according to the invention, the base body of the distributor unit and / or the hot runner nozzles can comprise the heating elements as components of the distributor unit.

[0016] It is therefore conceivable that the hot runner nozzles are arranged in rows and columns and / or that the arrangement of the hot runner nozzles forms an array. The component to be produced could, for example, be a rectangular PCR plate, so that the hot runner nozzles are also arranged over a rectangular field corresponding to the arrangement of the recesses in the PCR plate. Thus, the hot runner nozzles can be arranged in rows and columns, so that the cooling means are also arranged in rows and columns, allowing the tool element of the forming injection mold to be cooled via a corresponding solid-state contact. For example, eight rows of twelve hot runner nozzles each could be configured to form the manifold unit. The manifold unit itself could, in turn, be made up of several manifold blocks.

[0017] Therefore, it is advantageously provided that a base body of the distributor unit is formed by means of at least one distributor block on which the hot runner nozzles are mounted, wherein the cooling device has at least one cooling channel which is incorporated into the distributor block. When the distributor unit is formed, several distributor blocks can be connected in parallel to one another, for example, by bolting them together. A distributor block can, for example, have one or preferably two rows of hot runner nozzles, and if, for example, six distributor blocks are arranged in a row and each distributor block has two rows of eight hot runner nozzles each, a field of 96 hot runner nozzles results when six distributor blocks are assembled to form a distributor unit.

[0018] A particular advantage is that at least one heating element is mounted on the manifold block in such a way that it is as far away as possible from the cooling channel. If, for example, the cooling channel runs centrally through the valve block, the heating element(s) can be mounted on the outside of the manifold block in grooves integrated laterally.

[0019] The cooling channel integrated into the manifold block is intended to transfer the cooling effect primarily to the medium by which the cooling effect is in turn transferred to the mold element of the injection mold. Conversely, the remainder of the manifold block, particularly in the areas where the hot runner nozzles are located, should maintain a correspondingly high temperature. Therefore, it is advantageous for the cooling channel integrated into the manifold block to be enclosed, at least locally, by a gap between the cooling channel and the hot runner nozzle.

[0020] The gap creates a thermal barrier, allowing the cooling channel, through which a coolant flows, to cool the coolant sufficiently to cool the tool element of the injection mold. However, this cooling effect is not transferred to the rest of the manifold block that houses the hot runner nozzles. The gap essentially forms an air gap, creating insulation between the cold cooling channel and the coolant, and the manifold block, which otherwise operates at a high temperature.

[0021] According to one possible, and particularly preferred, embodiment, cooling plungers are incorporated into the distributor block. These plungers project into the distributor block as far as the cooling channel and extend to a head side of the distributor block to form contact with the mold element of the injection mold when the distributor block is attached to it. The cooling plungers are brought into contact with the cooling channel in the areas where the gap to the distributor block is formed.

[0022] The cooling element can be made of a material different from that of the distributor block, in particular a copper alloy. Other materials are also conceivable that have a similarly high thermal conductivity, which is particularly higher than that of the distributor block, which, for example, is made of tool steel. The distributor block can have grooves in one of its sides, each containing a heating element, and / or several distributor blocks can be arranged adjacent to one another via their sides, with the heating effect also extending to the adjacent distributor block.If the hot runner nozzles are arranged in two rows at the edge of the manifold block, a particularly good heating effect can heat the hot runner nozzles, while the cooling pistons are placed between the two rows of hot runner nozzles and have a low temperature.

[0023] In particular, the manifold block has internal melt channels extending from a central inlet to the hot runner nozzles. Such a manifold block is manufactured, in particular, by means of an additive manufacturing process, especially laser selective melting, and is made, in particular, of a metallic material, especially tool steel.

[0024] PREFERRED EXAMPLE OF THE INVENTION

[0025] Further measures improving the invention are described in more detail below, together with a description of a preferred embodiment of the invention, with reference to the figures. The figures show:

[0026] Figure 1 shows a top view of a distribution unit with six

[0027] Distribution blocks,

[0028] Figure 2 shows a perspective view of the distribution unit according to

[0029] Figure 1 ,

[0030] Figure 3 is a top view of a single distributor block, Figure 4 is a cross-sectional view according to the

[0031] Cross-sectional line AA in Figure 3,

[0032] Figure 5 shows a view of the cross-section according to the

[0033] Cross-sectional line BB in Figure 3,

[0034] Figure 6 shows a side view of the distributor block in partial

[0035] Section according to section line CC in Figure 3,

[0036] Figure 7 shows another detailed view of the distributor block in the

[0037] cross-section

[0038] Figures 8-10 each show a view of the melting channels with a common inlet within the distributor block (schematic) and

[0039] Figures 11 and 12 show further views of the distributor block with the cooling pistons forming the center and the hot runner nozzles.

[0040] Figures 1 and 2 show a distributor unit 1 consisting of, by way of example, six distributor blocks 14, with Figure 1 showing a view of the head side and Figure 2 a perspective view. A tool element of the injection mold, which is not shown in detail, can be brought into contact with this head side of the distributor unit 1. The distributor unit 1 is made up of six distributor blocks 14, which are arranged with their side surfaces lying flat against each other. Each distributor block 14 comprises 16 hot runner nozzles 10, which are mounted on it in two rows extending in a first direction. The mutually aligned arrangement of the six distributor blocks 14 is in a direction transverse to the direction of extension of the hot runner nozzles 10, so that a total rectangular array of 96 hot runner nozzles 10 is formed.With such a distributor unit 1, 96 sprues can be produced, for example, for the production of a PCR test plate.

[0041] The view further shows means 13 with which at least one tool element of a forming injection mold can be cooled when these means 13 are brought into contact with the tool element. The means 13 are part of a cooling device 12, which will be described in more detail below.

[0042] The distributor unit 1 is heated, for which purpose the distributor unit 1 has electrical connections 21 to heat each heating element 11, which can be seen by way of example on the side wall of the distributor block 14 shown on the right in Figure 2. These heating elements 11 are arranged on each side surface of the distributor blocks 14, at least on every other side surface, so that the operation of the heating elements 11 sufficiently heats the hot runner nozzles 10 to ensure a trouble-free flow of the plasticized melt through the hot runner nozzles 10.

[0043] Between the hot runner nozzles 10, a part of the cooling device 12 is shown, namely in the form of the means 13 to cool a corresponding tool element of the injection mold in contact with the head side.

[0044] Figure 3 shows a distributor block 14 from the head side, with several sections AA, BB, and CC shown on this distributor block 14, which are reproduced in Figures 4, 5, and 6 below. Figure 4 shows a cross-sectional view through the distributor block 14 along section line AA. The section plane passes through the distributor block 14 in such a way that the center 13 is cut, the center 13 comprising at least one cooling piston 17 as shown. A cooling channel 15 is also shown, which is isolated from the rest of the distributor block 14 by a gap 16.If the heating elements 11 arranged laterally on the distributor block 14, which are inserted into corresponding grooves 18 in the distributor block 14, are operated, the remaining distributor block 14 can have a temperature sufficient to temper the hot runner nozzles 10 according to the necessary melt flow. However, by the flow of a refrigerant through the cooling channel 15, the cooling device 12 can be operated in such a way that the medium 13 in the form of the cooling piston 17 has a significantly lower temperature, so that in contact with a tool element via the corresponding head side (top side), the tool element is cooled, even though the hot runner nozzles 10 also form contact with the tool element.

[0045] Figure 5 shows a cross-sectional view through the manifold block 14 along cross-sectional line BB, with the two hot runner nozzles 10 now lying in the cross-sectional plane. It is evident that the cooling device is not present here, so that only the cooling channel (not shown) runs through it, with the gap 16 still present to prevent the area of ​​the manifold block 14 from cooling down due to the cooling device 12 and to maintain the hot runner nozzles 10 at the appropriate temperature.

[0046] Finally, Figure 6 shows a semi-sectional side view of the manifold block 14, so that the course of the cooling channel 15 is shown in section in the upper part. It is evident that the cooling pistons 17 are in direct solid contact with the cooling channel 15, while the hot runner nozzles 10 are received through the gap 16 in a region of the manifold block 14 that is separated from the cooling channel 15. In the uncut, lower part of the manifold block 14, the arrangement of the heating element 11 is visible on the side surface, which is connected accordingly to the electrical terminal 21.

[0047] Figure 7 shows a detailed side view of the distributor block 14, revealing the cooling channel 15 and the locally multiple gaps 16 in the form of air gaps. The arrangement of the hot runner nozzles 10 in their respective areas of the distributor block 14, separated from the cooling channel 15 by the gap 16, is also clearly visible. In contrast, the cooling pistons 17 have a direct solid interface with the cooling channel 15. Projections 22 are shown as examples in the cooling channel 15, which create turbulence in the refrigerant to achieve even better heat transfer into the cooling piston 17.

[0048] Figures 8, 9, and 10 show a schematic representation of the melt channels 19 leading to the eight and sixteen hot runner nozzles, respectively, with the melt channels 19 sharing a common inlet 20. The illustration depicts the hollow structure within the manifold block 14 (i.e., in an inverted view), where the cooling channels are designed such that they are all of the same length, ensuring that the plasticized melt travels the same path from the inlet 20 to the hot runner nozzle. Such an internal channel structure is particularly feasible when the entire manifold block 14 is manufactured using an additive manufacturing process, especially laser selective melting, and can be made of a metallic material.

[0049] Figures 11 and 12 show further views of the distributor block 14 with the cooling pistons 17 forming the means 13 and the hot runner nozzles 10, as well as the electrical connections 21. A liquid inlet and outlet 23 are also shown, through which the coolant, for example, appropriately tempered water, can be introduced into and out of the cooling channel 10. The inlet 20 with the melt channels 19, which extend from the inlet 20 to the hot runner nozzles 10, is also shown (see especially Figure 12). The electrical connections 21 can be located on both sides of the distributor block 14, particularly if at least one heating element 11 is arranged on each side of the distributor block 14.

[0050] The invention is not limited in its implementation to the preferred embodiment described above. Rather, a number of variants are conceivable, which utilize the solution presented even in fundamentally different designs. All features and / or advantages arising from the claims, the description, or the drawings, including design details or spatial arrangements, can be essential to the invention, both individually and in various combinations.

[0051] Reference symbol list:

[0052] I Distribution unit

[0053] 10 Hot runner nozzle

[0054] II Heating element

[0055] 12 Cooling unit

[0056] 13 means

[0057] 14 Distribution block

[0058] 15 Cooling channel

[0059] 16 columns

[0060] 17 cooling stamps

[0061] 18 Nut

[0062] 19 Melt channel

[0063] 20 inflows

[0064] 21 electrical connection

[0065] 22 lead

[0066] 23 Liquid inlet and outlet

Claims

Claims:

1. Distributor unit (1) for an injection mold, comprising a plurality of hot runner nozzles (10), wherein at least one heating element (11) is provided for heating the distributor unit (1) so that the flowability of a plastic melt is maintained and can be directed to the hot runner nozzles (10), wherein a base body of the distributor unit (1) is formed by means of at least one distributor block (14) on which the hot runner nozzles (10) are received, wherein the cooling device (12) has at least one cooling channel (15) which is incorporated in the distributor block (14) and wherein a cooling device (12) is arranged between the hot runner nozzles (10), characterized in that the cooling device (12) has means (13) with which at least one tool element of the forming injection mold can be cooled by incorporating cooling plungers (17) forming the means (13) in the distributor block (14).which extend into the distributor block (14) up to the cooling channel (15) and to a head side of the distributor block (14) in order to form contact with the tool element of the forming injection mold.

2. Distributor unit (1) according to claim 1, characterized in that the hot runner nozzles (10) are arranged in rows and columns and / or that the arrangement of the hot runner nozzles (10) forms an array.

3. Distributor unit (1 ) according to claim 1 , characterized in that at least one heating element (11 ) is arranged on the valve block (14) spaced apart from the cooling channel (15).

4. Distributor unit (1) according to claim 1 or 2, characterized in that the base body of the distributor unit (1) is formed from several distributor blocks (14) which are arranged parallel to each other on a block.

5. Distributor unit (1 ) according to one of the preceding claims, characterized in that the cooling channel (15) incorporated in the distributor block (14) is locally enclosed by a gap (16) to the distributor block (14), which is in particular incorporated between the cooling channel (15) and the hot runner nozzle (10).

6. Distributor unit (1 ) according to claim 5, characterized in that the cooling piston (17) is made of a material that differs from the material of the distributor block (14), in particular wherein the cooling piston (17) is made of a copper material.

7. Distributor unit (1 ) according to claim 5 or 6, characterized in that the hot runner nozzles (10) are arranged at least sectionally alternately with the cooling pistons (17) above the head side of the distributor block (14).

8. Distributor unit (1) according to one of the preceding claims, characterized in that the distributor block (14) has grooves (18) provided in a side surface in which a heating element (11) is provided, and / or wherein several distributor blocks (14) are arranged adjacent to one another via their side surfaces.

9. Distributor unit (1 ) according to one of the preceding claims, characterized in that the distributor block (14) has internal melt channels (19) extending from a central inlet (20) to the hot runner nozzles (10).

10. Distributor unit (1 ) according to one of the preceding claims, characterized in that the distributor block (14) is manufactured by means of an additive manufacturing process, in particular by means of the laser selective melting process, and is made of a metallic material.