The invention relates to an apparatus for injection molding, which apparatus comprises a mold cavity member having a mold cavity, a melt channel, an injection chamber and an injection gate having an injection gate hole.
In particular, the invention relates to an apparatus or a system for direct injection molding, wherein molten material, e.g. plastic material, is gated directly into a mold cavity via an injection gate having an injection gate hole.
Further, the invention relates to a method of injection molding.
Apparatus for injection molding, in particular direct injection molding, are known in various embodiments, which suffer from disadvantages such as regards complexity and lack of precision as regards the molding, in particular when a plurality of mold cavities is being supplied simultaneously from the same source of molten material, e.g. molten plastic material.
Thus, there is a need for improvements as regards the ability of being able to produce homogenous moldings and furthermore there is a need for providing more efficient molding apparatus.
These and other objects are achievable by the invention as explained in further detail in the following.
The invention relates to an apparatus for injection molding, said apparatus comprising
a mold cavity member having a mold cavity,
a melt channel,
an injection chamber and
an injection gate having an injection gate hole,
wherein said apparatus further comprises a movable injection sleeve, wherein
Hereby, it is achieved that the apparatus for injection molding can be configured in a compact manner while providing the direct injection such that the molding can be performed in an efficient manner. Furthermore, it is possible by the invention to improve the quality of the molded components while performing the molding in a cost efficient manner.
By the invention the balancing between molding cavities will be balanced and compression of the plastic material is minimized due to the injection chamber being close to the molding cavity.
Less compression of the plastic material will ensure a more homogeneous filling and indicial cavity pressure as the injection chamber is 1:1 in direct connection to the molding cavity.
Furthermore, a more accurate filling as achieved by the invention will ensure a higher stability of dimensions between each molding cavity, e.g. resulting in higher quality of molded products.
By the invention, the injection process is moved from the injection molding machine to the mold, customized to part requirements which leads to a more precise filling. The impact of the invention is as well that the performance requirement of the injection molding machine will be lower.
Furthermore, it is achieved that since the temperature profile can be colder from the injection machine until the injection chamber as compared to traditional injection molding, it means that the resent time in the system can be prolonged without damage to the plastic material.
According to an embodiment, the apparatus may be configured for transferring the molten material from the injection chamber to the mold cavity by controllably reducing the volume of the injection chamber.
Hereby, the injection can be performed in a straightforward and efficient manner.
According to an embodiment, the injection chamber may be defined at least partly by said movable injection sleeve.
Hereby, a particular efficient and compact embodiment can be achieved.
According to an embodiment, said apparatus may be configured for controlling the volume of the injection chamber by axially moving said movable injection sleeve.
Hereby, a particular efficient and compact embodiment can be achieved.
According to an embodiment, the injection chamber and/or the melt channel may be heated.
According to an embodiment, the apparatus may comprise an injection chamber body, which at least partly defines said injection chamber.
Hereby, it is achieved that the injection chamber can be defined in a straightforward manner, whereby a compact apparatus is facilitated.
According to an embodiment, the apparatus may comprise a purge channel for transferring said molten material from said melt channel to said injection chamber, said purge channel being controllable by said movable filling valve.
Hereby, it is achieved that the operating of the injection molding apparatus can be performed in a relatively simple and efficient manner.
According to an embodiment, said apparatus may further comprise at least one injection channel that is controllable by said movable filling valve.
Hereby, a further embodiment is achieved, which serves to facilitate an efficient molding process.
According to an embodiment, said movable filling valve may be configured for controlling said purge channel and said at least one injection channel may be reciprocatable between a first position with said at least one injection channel closed and said purge channel open for flow of molten material to said injection chamber and a second position with said at least one injection channel open and said purge channel closed for flow of molten material to said injection chamber.
Hereby, it is achieved that the operating of the injection molding apparatus can be performed in a relatively simple and efficient manner.
According to an embodiment, said apparatus may be configured for transferring the molten material from the injection chamber via said at least one injection channel to the mold cavity with said movable filling valve positioned in said second position.
According to an embodiment, the movable filling valve may comprise at least part of said melt channel, e.g. in the form of an inner channel, which is heated.
Hereby, a compact and efficient manner of configuring the melt channel is achieved.
According to an embodiment, the movable filling valve may further be configured with an inlet for receiving said molten material supplied from said source of molten material via a heated manifold having a manifold supply channel.
According to an embodiment, the flow of molten material in said melt channel from said heated manifold to said inlet of the movable filling valve may be controllable by movement of the movable filling valve.
Hereby, a relatively straightforward way of closing the melt channel is achieved.
According to a further aspect, the invention relates to a method of injection molding, the method using an apparatus comprising
a mold cavity member having a mold cavity,
a melt channel,
an injection chamber,
an injection gate having an injection gate hole controllable by a movable filling valve,
a movable injection sleeve and
at least one injection channel,
said method comprising the steps of
Hereby, a method is achieved whereby the apparatus for injection molding can be configured in a compact manner while providing the direct injection such that the molding can be performed in an efficient manner. Furthermore, it is possible by the method according to the invention to improve the quality of the molded components while performing the molding in a cost efficient manner.
By the invention the balancing between molding cavities will be balanced and compression of the plastic material is minimized due to the injection chamber being close to the molding cavity.
Less compression of the plastic material will ensure a more homogeneous filling and indicial cavity pressure as the injection chamber is 1:1 in direct connection to the molding cavity.
Furthermore, a more accurate filling as achieved by the method according to the invention will ensure a higher stability of dimensions between each molding cavity, e.g. resulting in higher quality of molded products.
By the invention, the injection process is moved from the injection molding machine to the mold, customized to part requirements which leads to a more precise filling. The impact of the invention is as well that the performance requirement of the injection molding machine will be lower.
Furthermore, it is achieved that since the temperature profile can be colder from the injection machine until the injection chamber as compared to traditional injection molding, it means that the resent time in the system can be prolonged without damage to the plastic material.
According to an embodiment, the method may be embodied using an apparatus according to one or more of claims 1-13.
The invention will be explained in further detail below with reference to the figures of which
An example of an injection molding apparatus 1 according to an embodiment of the invention is shown in
It is noted that a mold core (not shown in the figures) or the like may be configured to be positioned within the mold cavity member 20, e.g. in order to define a cavity space in the shape of the component that it is desired to mold, as it will be apparent to a skilled person.
Furthermore, in
Thus, it is shown in
Further, it is shown in
In
As it further appears from
The movement of the movable injection sleeve 10 and the movable filling valve 6 may as shown be effected by means of drive means 34 and 35, respectively, that may be controlled by a shared control device 36, e.g. on the basis of input variables 37.
The drive means 34 and 35 may for example be mechanically, electrically and/or hydraulically driven servo units or the like.
In the following an example of the functioning of an injection molding apparatus 1 according to an embodiment of the invention will be explained with reference to
In
Here, the movable injection sleeve 10 and the movable filling valve 6 are both positioned to the left in the figures. The molten material thus flows in the melt channel via the inlet 33, the manifold supply channel 4 and the inlet 28 into the inner channel 8 in the movable filling valve 6, which, as it will be understood, is closed at the rear end, i.e. to the right in
In
This is shown in
Thus, the injection molding apparatus is ready to perform the injection of the molten material into the mold cavity 22 as it is shown in
Hereafter, the last step in the cycle is being performed, as it will be exemplified with reference to
It is noted that
Further, it is noted that as indicated above the movable injection sleeve 10 is adjustable as regards the position where it stops its movement rearwards, i.e. away from the mold cavity member 20, such that the size/volume of the injection chamber 16 corresponds to the size of the mold cavity 22. Thus, it will be understood that this stop position can be adjusted, when e.g. a new or larger type of component is to be molded. This can be effected via the control device 36, for example via control parameters supplied to the control device 36 as input variables 37.
As regards the injection channel 30 it is noted that this may be designed as one or more channels that are made in the forward part of the movable filling valve 6, e.g. as one or more axial channels that when the movable filling valve 6 is in its forward position is/are closed towards for example a part of the mold cavity member 20, e.g. near the entry to the injection gate hole 24.
The movable injection sleeve 10 may as shown in the figures be a body that is configured to essentially surround the movable filling valve 6, while being adapted to move at least partly within the injection chamber body 12. However, it will be understood that it may be designed in various embodiments, shapes and variations. It is apparent that its inner shape may correspond to the outer shape of the movable filling valve 6, e.g. in the form of a circular cylindrical body or any other cylindrical shape. Also, grooves or the like may be present in the inner and/or outer surface of the movable injection sleeve 10, e.g. guiding grooves or the like. Similarly, ridges or the like may be present instead or as well. Also, it will be understood that the movable injection sleeve may be a body that does not entirely surround the movable filling valve 6 but may be e.g. axially cut to define a slot or the like, which may even extend the whole length of the movable injection sleeve. Other forms and variations are possible, which will be apparent to a skilled person.
In the above description, various embodiments of the invention have been described with reference to the drawings, but it is apparent for a person skilled within the art that the invention can be carried out in an infinite number of ways, using e.g. the examples disclosed in the description in various combinations, and within a wide range of variations within the scope of the appended claims.
1 Apparatus for injection molding
2 Manifold
4 Manifold supply channel
6 Movable filling valve
8 Inner channel in movable filling valve
10 Movable injection sleeve
12 Injection chamber body
14 Valve means
16 Injection chamber
18 Purge channel
20 Mold cavity member
22 Mold cavity
24 Injection gate hole
26 Guiding part for movable valve rod
28 Inlet to movable filling valve, e.g. to inner channel
30 Injection channel
32 Groove, e.g. for heating component
33 Inlet to manifold
34 Drive means for movable injection sleeve
36 Drive means for movable filling valve
37 Control device for drive means
38 Input variables to control device
40 Source of molten material
Number | Date | Country | Kind |
---|---|---|---|
16202893.0 | Dec 2016 | EP | regional |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/DK2017/050416 | 12/7/2017 | WO | 00 |