INJECTION MOLDING MACHINE
20170368730 ยท 2017-12-28
Assignee
Inventors
Cpc classification
B29C2945/76856
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention pertains to an injection molding machine comprising, an injection nozzle (2) having a melt channel (6), an injection opening (5), and a filter (9) for filtering the molten resin within the injection nozzle (2). According to the invention, the melt filter (9) cooperates with the 5 melt channel (6) or a means (7) provided within the melt channel (6) in such a way, that during an injection phase of the injection molding machine, the molten resin is caused to pass through the filter (9), and during a decompression phase of the injection molding machine the molten resin is caused to bypass the filter (9).
Claims
1. An injection molding machine comprising: an injection nozzle having a melt channel, an injection opening, an inlet port for the melt and a filter for filtering the molten resin within the injection nozzle, wherein the filter is configured to cooperate with the melt channel or a means arranged within the melt channel, such that during an injection phase of the injection molding machine, the molten resin is caused to flow through the filter and during a decompression phase of the injection molding machine, the molten material is caused to bypass the filter.
2. The injection molding machine of claim 1, wherein the filter is of an annular design and arranged, such that it divides the melt channel into a cylindrical section within the filter and an annular section outside the filter.
3. The injection molding machine of claim 2, wherein the means for guiding the molten resin is provided within the melt channel, wherein the means for guiding the molten resin and the filter are displaceable relative to each other.
4. The injection molding machine of claim 3, wherein both the means for guiding the molten resin and the filter at respective ends thereof facing the inlet port and facing the injection opening each have a stop, wherein a respective stop of the means for guiding the molten resin cooperates with a corresponding stop of the filter.
5. The injection molding machine of claim 4, wherein the means for guiding the molten resin are such configured that at one end thereof at least one passage is provided, such that the melt channel via the at least one passage communicates with the cylindrical section within the filter, either downstream or upstream of the means for guiding the molten resin.
6. The injection molding machine of claim 5, wherein the filters is displaceable and is displaced by the flow of the molten resin.
7. The injection molding machine of claim 6, wherein the filter is displaceable into an injection position in which the stops of the filter and of the means for guiding the molten resin which face the injection opening cooperate with each other such, that the side of the cylindrical section within the filter facing the injection opening is closed.
8. The injection molding machine of claim 7, wherein the annular section outside the filter communicates with the injection opening.
9. The injection molding machine of claim 8, wherein the filter is displaceable into a decompression position in which the stops of the filter and of the means for guiding the molten resin which face the injection opening are spaced from each other and provide a passage for the molten resin from the annular section outside the filter into the cylindrical section within the filter.
10. The injection molding machine of claim 1, wherein the injection nozzle has a detachable nozzle tip.
11. The injection molding machine of claim 10, wherein the means for guiding the molten resin and the filter can be withdrawn from the injection nozzle upon detachment of the nozzle tip.
12. The injection molding machine of claim 11, wherein the means for guiding the molten resin and the filter are mounted to the nozzle tip.
13. The injection molding machine of claim 1, further comprising an extruder barrel having an extruder screw for plasticizing granular plastic material to molten resin delivered towards the injection nozzle of the injection molding machine.
14. The injection molding machine of claim 1, further comprising a shooting pot assembly receiving molten resin from an extruder barrel and delivering the molten resin towards the injection nozzle of the injection molding machine.
Description
DETAILED DESCRIPTION OF THE DRAWINGS
[0018] Further details and advantages of the present invention will be more fully appreciated by reference to the following detailed description of an embodiment in conjunction with the accompanying drawings, in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025] Injection nozzle 2 comprises a nozzle body 3 and a detachable nozzle tip 4. Furthermore, injection nozzle 2 defines a melt channel 6 which extends through nozzle body 3 and nozzle tip 4. From an inlet port 22 (see
[0026] Means 7 for guiding the molten resin (in the following denoted as melt guide 7) are provided in melt channel 6 extending through nozzle body 3. The melt guide 7 is attached to a support 8 which is detachably connected to nozzle tip 4. In the area of nozzle body 3, melt channel 6 accommodates an annular filter 9 having openings. The openings of filter 9 are such configured that molten resin may pass through the filter from the inside to the outside and to trap contaminants entrained therein.
[0027] On both of it ends filter 9 has a stop 12 and 13, respectively (shown in
[0028] As shown in
[0029]
[0030] Under reference to
[0031]
[0032] Since stops 10 and 12 are firmly pressed against each other, thereby excluding that a passage for molten resin can be formed, cylindrical section 15 within filter 9 is positioned in such a way that there is only one entrance left for the molten resin for entering passage 14 provided by the melt guide 7. Thus, the molten resin may leave the cylindrical section 15 within filter 9 only via filter 9 itself. Consequently, the molten resin, via the openings of filter 9, is pushed from the cylindrical section 15 within filter 9 into the annular section 16 outside filter 9.
[0033] During its passage through filter 9, contaminants contained in the molten resin are either removed by filter 9 and adhere to the same, or the concentration of contaminants contained in the molten resin increases in the cylindrical section 15 within filter 9. In either case, it is ensured that contaminants cannot get through filter 9 and thus cannot be released towards the mold.
[0034] During the injection phase, the molten resin moves along arrow 19 (as shown in
[0035] Thus, contaminants are removed from the molten resin arriving at injection opening 5 and therefore, injection molded articles are free of contaminants as well.
[0036] Following the injection phase, the injection nozzle usually is withdrawn from the mold.
[0037]
[0038] Similar to the injection phase, also in the decompression phase the flow of molten resin causes filter 9 to move along with the molten resin, wherein in this case filter 9 moves in the direction of arrow 18 which thus indicates the moving direction of filter 9 at the beginning of the decompression phase. Movement of filter 9, again, is limited to a short distance, wherein at the end thereof stop 13 of filter 9 abuts against stop 11 of the melt guide 7 facing the extruder barrel.
[0039] Due to the displacement of filter 9, a gap is formed in-between stops 10 and 12, which gap allows the molten resin to flow from annular section 16 outside filter 9 into cylindrical section 15 within filter 9. As the gap offers less resistance to the molten resin than filter 9, the molten resin does not flow through the openings of filter 9, but rather through the gap between stops 10 and 12. The molten resin may leave the cylindrical section 15 within filter 9 via passage 14 of the melt guide 7.
[0040] Arrows 20 indicate the path the molten resin takes during the decompression phase along melt channel 6, i.e. the portion thereof which spans from the side of the melt guide 7 facing injection opening 5 (
[0041] During the decompression phase the molten resin therefore enters the cylindrical section 15 within filter 9 via the gap provided by stops 10 and 12. Having entered the cylindrical section 15 within filter 9, the molten resin is guided along the inner surface of filter 9 until it reaches passage 14 of the melt guide 7. In this way, contaminants 21 which have been concentrated in molten resin in the cylindrical section 15 within filter 9 are pulled back together with the molten resin. Contaminants superficially adhering to filter 9 are picked up as well and are discharged. Only contaminants which have entered filter 9 more deeply are not removed.
[0042] If, after a reasonable period of time, filter 9 becomes clogged or if the resistance offered by filter 9 against the flow of molten resin becomes too great, filter 9 must be cleaned. In order to clean filter 9 it is only necessary to detach nozzle tip 4 from nozzle body 3. Detaching nozzle tip 4 from nozzle body 3 allows that the melt guide 7 together with filter 9 connected to nozzle tip 4 may be withdrawn from melt channel 6 extending through nozzle body 3. Hereinafter, filter 9 which is now freely accessible can be cleaned in an easy way and released from any filtered contaminants.
[0043]