DISTRIBUTION BLOCK
20220134625 ยท 2022-05-05
Assignee
Inventors
Cpc classification
F16K11/0856
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C48/92
PERFORMING OPERATIONS; TRANSPORTING
B29C2948/92961
PERFORMING OPERATIONS; TRANSPORTING
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
F16K11/0836
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C48/2556
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
B29C48/25
PERFORMING OPERATIONS; TRANSPORTING
B29C48/255
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a distribution block for extrusion melt and a method for coextruding films with the aid of a distribution block for extrusion melt, wherein the distribution block comprises a movable sleeve.
Claims
1-14. (canceled)
15: A distribution block (10) for extrusion melt, comprising a base body (20) and at least one sleeve (30a, 30b), wherein the base body and the at least one sleeve (30a, 30b) have communicating fluid channels (21, 31, 32), wherein the at least one sleeve (30a, 30b) is mounted in the base body (20) so as to be movable, wherein the at least one sleeve (30a, 30b) may be positioned in a first position in relation to the base body (20), so as to bring a first group of fluid channels (31) of the at least one sleeve (30a, 30b) in communication with fluid channels (21) of the base body (20), wherein at least one fluid channel of the first group of fluid channels of the at least one sleeve (30a, 30b) is configured to be operated at a different temperature level than a second fluid channel of the first group of fluid channels (31) of the at least one sleeve (30a, 30b) and the fluid channels of a group of fluid channels of the at least one sleeve (30a, 30b) are thermally insulated from one another.
16: The distribution block (10) for extrusion melt according to claim 15, wherein the at least one sleeve (30a, 30b) may be positioned in a second position in relation to the base body (20), so as to bring a second group of fluid channels (32) of the at least one sleeve in communication with the fluid channels (21) of the base body (20).
17: The distribution block (10) for extrusion melt according to claim 15, in which the at least one sleeve (30a; 30b) is mounted in the base body so as to be linearly displaceable along its longitudinal axis and/or rotatable in relation to its longitudinal axis.
18: The distribution block (10) for extrusion melt according to claim 17, in which the at least one sleeve (30a, 30b) is movable by motor.
19: The distribution block (10) for extrusion melt according to claim 15, in which the at least one sleeve (30a, 30b) comprises sealing sections (34).
20: The distribution block (10) for extrusion melt according to claim 15, wherein the fluid channels (21, 31, 32) in the at least one sleeve (30a, 30b) and the base body (20) may be brought into a rinsing position in relation to one another by movement of the sleeve.
21: The distribution block (10) for extrusion melt according to claim 15, in which the at least one sleeve (30a, 30b) protrudes from the base body (20) on both ends.
22: The distribution block (10) for extrusion melt according to claim 15, in which the at least one sleeve (30a) is essentially conical.
23: A method for coextruding films with the aid of a distribution block (10) for extrusion melt, comprising the steps of connecting extruders to the distribution block (10) for extrusion melt, positioning at least one sleeve (30a, 30b) in a first position, such that fluid channels (21) in a base body (20) of the distribution block (10) for extrusion melt communicate with fluid channels (31) in the at least one sleeve (30a, 30b), a first coextrusion, adjusting the at least one sleeve (30a, 30b) to a second position in relation to the base body (20), such that other fluid channels (32) communicate, a second coextrusion, wherein the method comprises controlling of the temperature of at least one of the base body (20), the at least one sleeve (30a, 30b) or the fluid channels (21, 31, 32) in the base body and/or the at least one sleeve (30a, 30b), wherein the fluid channels of a group of fluid channels of the at least one sleeve (30a, 30b) are thermally insulated from one another and controlling the temperature depends on the position of the at least one sleeve (30a, 30b).
24: The method according to claim 23, further comprising rinsing after the first coextrusion and prior to positioning in the second position.
Description
[0022] For the purpose of better understanding of the application, it will be elucidated in more detail by means of the figures below.
[0023] These show in a respectively very simplified schematic representation:
[0024]
[0025]
[0026]
[0027]
[0028] First of all, it is to be noted that in the different exemplary embodiments described, equal parts are provided with equal reference numbers and/or equal component designations, where the disclosures contained in the entire description may be analogously transferred to equal parts with equal reference numbers and/or equal component designations. Moreover, the specifications of location, such as at the top, at the bottom, at the side, chosen in the description refer to the directly described and depicted figure and in case of a change of position, these specifications of location are to be analogously transferred to the new position.
[0029] First, reference is made to
[0030] As can be seen in
[0031] The sleeve 30a comprises first fluid channels 31 and second fluid channels 32, as well as sealing sections 34. The sealing sections 34 prevent a leakage of fluid along the longitudinal axis A in both directions. The first and second fluid channels 31 and 32 of the sleeve 30a are provided for connecting and/or bringing into communication the base body ports 22 shown on the left and right side of the base body 20 in
[0032] In a first position (which is not shown), the first fluid channels 31 connect and/or bring into communication the base body ports 22 and the base body fluid channels 21 on the right side of the base body 20 in
[0033] Assuming, for example, that multiple extruders are connected to the base body ports 22 on the right side of the base body 20 in
[0034] Of course, further fluid channels and thus further positions may be provided. The fact that in the sectional view of
[0035]
[0036]
[0037] The exemplary embodiment shown in
[0038] When the sleeve 30b is now to be brought into the second position, the sleeve 30b is displaced parallel to its longitudinal axis A upwards in
[0039]
[0040] It applies to both exemplary embodiments that the sleeve fluid channels may divide a fluid stream coming from one individual base body port and convey it to two or multiple base body ports. Vice versa, a fluid stream coming from two or multiple base body ports may be joined to one base body port by sleeve fluid channels.
[0041] The sleeve fluid channels may connect any base body ports upstream of the sleeve to any base body ports downstream of the sleeve. The connection is determined by the individual and random design of the sleeve fluid channels.
[0042] The sleeves and/or base bodies may comprise rinsing channels and/or rinsing ports, such that material and/or fluid which is still present in the fluid channels of the distribution block from coextrusion may be rinsed before another coextrusion is performed. This may happen in the first position of the sleeve, in the second position of the sleeve or in a rinsing position of the sleeve.
[0043] At least one of the fluid channels, the sleeve or the base body may be heated. Moreover, the fluid channels may be heated to different temperatures separately from one another. Moreover, the fluid channels in the sleeve and/or in the base body may be thermally separated from one another.
[0044]
[0045] The exemplary embodiments show possible embodiment variants, and it should be noted in this respect that the invention is not restricted to these particular illustrated embodiment variants of it, but that rather also various combinations of the individual embodiment variants are possible and that this possibility of variation owing to the technical teaching provided by the present invention lies within the ability of the person skilled in the art in this technical field.
[0046] The scope of protection is determined by the claims. Nevertheless, the description and drawings are to be used for construing the claims. Individual features or feature combinations from the different exemplary embodiments shown and described may represent independent inventive solutions. The object underlying the independent inventive solutions may be gathered from the description.
[0047] All indications regarding ranges of values in the present description are to be understood such that these also comprise random and all partial ranges from it, for example, the indication 1 to 10 is to be understood such that it comprises all partial ranges based on the lower limit 1 and the upper limit 10, i.e. all partial ranges start with a lower limit of 1 or larger and end with an upper limit of 10 or less, for example 1 through 1.7, or 3.2 through 8.1, or 5.5 through 10.
[0048] Finally, as a matter of form, it should be noted that for ease of understanding of the structure, elements are partially not depicted to scale and/or are enlarged and/or are reduced in size.
LIST OF REFERENCE NUMBERS
[0049] 10 Distribution block [0050] 20 Base body [0051] 21 Base body fluid channel [0052] 22 Base body port [0053] 30a Sleeve [0054] 30b Sleeve [0055] 31 First sleeve fluid channel [0056] 32 Second sleeve fluid channel [0057] 33 Flange [0058] 34 Sealing section [0059] A Longitudinal axis