The invention relates to a melt filter, in particular for filtering plastic melts in or in connection with an extruder, comprising a drive for the stepwise rotation of a sieve disk that holds at least one screen insert at least one of which is movable into a melt stream with the screen insert aligned with a melt-feed opening, and comprising a piston/cylinder unit for backflushing and/or prefilling.
A device for providing a melt known from DE 103 26 487 [U.S. Pat. No. 7,411,163] describes a melt filter having a melt purification station in which a melt shot piston/cylinder unit enables the pressing of purified melt in the direction opposite the melt flow direction through slot-like portions of the filter housing.
EP 554 237 discloses a filter apparatus for contaminated fluids, in which a screen insert on a screen support body is displaceable between a filtering position, a backflushing position and an insert-changing position. It is considered advantageous that the screen support body is not rotatable, but rather is displaceable axially back and forth so that the screen insert must only be displaced in the insert-changing position for an actual changing. This filter apparatus comprises a storage space from which already purified melt is drawn by a piston/cylinder unit for use on the one hand to maintain the pressure at the output of the filter apparatus, as well as for backflushing in the filter apparatus. This piston/cylinder unit is preferably driven by its own drive that is independent of the movement of the screen support body.
WO 92/16351 [U.S. Pat. No. 5,417,856] also discloses a filter apparatus for fluids to be purified that comprises an axially displaceable screen support body forming a storage space that is filled with purified melt via a piston/cylinder unit and that can be used for the purpose of backflushing screen inserts. The piston/cylinder unit comprises a drive that is independent of the drive for the screen support body. Alternatively, the piston/cylinder unit is integrated in the storage space of the axially displaceable screen support such that the piston/cylinder unit is held via a special attachment during movement of the screen support body, so that the storage space can be filled or emptied by movement of the screen support body. However, a direct connection is between the piston/cylinder unit and the drive for the screen support body does not exist.
DE 35 22 050 describes a melt filter comprising a rotating sieve disk for cleaning plastic melts, in particular discharged from extruders, where a sieve disk is rotatable in a housing with a plurality of screen segments in a circular array. The screen disk is rotated by a pawl drive so that the filter elements can be successively aligned with a melt passage.
The object of the invention is to develop a melt filter of the above-described type such that the drive for backflushing and/or prefilling is simplified.
The object is attained according to the invention for a melt filter of the above-described type through the features of patent claim 1. Advantageous embodiments are specified in the dependent claims.
The object is achieved according to the invention in that the piston/cylinder unit is connected to the drive and can be driven by the drive in order to carry out the backflushing and/or prefilling operation. adfasdfas
The drive is thereby able to simultaneously rotate the sieve disk and to effect the backflushing and/or prefilling, so that a second drive for the piston/cylinder unit may be spared. Unlike an axially displaceable screen insert, in which the screen insert may only be arranged either in the melt passage or in the backflushing passage, and in which protective measures must be taken in particular with regard to an excessively high rise in pressure in the backflushing piston/cylinder unit, through the use of a sieve disk, screen inserts that can be flowed through at the same time are simultaneously arranged both in the melt passage and in the purification station, so that no additional protective measures are required.
It is recommended that the drive comprise a pawl drive with a pawl that engages in a gear ring of the sieve disk, or a freewheel driven via a lever that acts on a gear ring of the sieve disk.
In both drives, a translational movement is converted into a rotational movement, which is needed for driving the sieve disk. The translational component of the drive is used simultaneously for driving of the piston/cylinder unit.
It has been found advantageous that between the drive and the piston/cylinder unit, a coupling is provided, by means of which the piston/cylinder unit is coupled with the drive for backflushing and/or prefilling.
The coupling between the drive and the piston/cylinder unit is thereby flexible.
If rinsing need not occur during each revolution or cycling, it is advantageous if the piston/cylinder unit for backflushing and/or prefilling can be selectively locked or decoupled via the coupling.
It has proven advantageous that a controller is provided, via which the coupling can be programmed or adjusted in its mode of action of the connection, so that the piston/cylinder unit can be adjustably coupled with the drive variably between a fixed and loose coupling, wherein the coupling in general but also the reciprocation, amount and/or degree of filling of the piston/cylinder unit can be adjusted.
According to the invention, the piston/cylinder unit can be arranged in the outlet block or inlet block.
Advantageously, the drive means comprises a double-acting piston/cylinder unit.
The invention will be described in further detail below with reference to illustrated embodiments shown in the drawings.
In
The filter housing 1 consists of two plates of which only one is shown for the sake of clarity. The screen inserts 3 located in the filtering position are aligned with a melt-feed opening 6 of one housing plate that acts upon these areas with melt to be filtered, and that can extend over a plurality of screen inserts 3. The melt-feed opening 6 is supplied here by a melt passage (not shown).
The sieve disk 2 may be rotated about its axis 5 by a drive such that fresh screen inserts 3 are always in front of the melt-feed opening 6 and filter the melt stream. The screen inserts 3 that are partially clogged in the filtering position may be detected by a pressure increase upstream of the screen inserts 3 of the filter housing 1. Due to rotation, however, the available free screen surface always remains constant.
A pawl drive 7 rotates the sieve disk 2 about the central axis 5, with a double-acting piston/cylinder unit 8 of the pawl drive acting via a drive lever 9 a pawl 10 that engages in teeth of a gear ring 11 formed on the outer periphery of the sieve disk 2 and that rotates synchronously with the sieve disk 2.
A piston/cylinder unit 13, here a shot piston/cylinder unit for backflushing and/or prefilling, acts together with the is drive lever 9 of the pawl drive 7 via a coupling 12 for connecting or locking. Here, the coupling 12 may be engaged to be coupled with the drive lever 9 in phases, or may also be decoupled over one or more phases or even full revolutions. In the decoupled position, the drive here only actuates the sieve disk 2 with the screen inserts 3, so that a new screen insert 3 is always aligned with the melt-feed opening 6, however a backflushing or prefilling does not take place. In the coupled position of the drive lever 9 with the piston/cylinder unit 13 via the coupling 12, however, there is also a backflushing or prefilling of the screen insert 3 upstream in the rotation sieve-disk rotation direction of the corresponding opening before the screen insert is rotated into the filtering position aligned with the melt-feed opening 6.
In the illustration according to
The coupling 12, here a locking lever, may be coupled with the drive lever 9, for example, by an electromechanical or hydraulic latch. This may occur as the result of predetermined settings or programming that set, for example, the reciprocation, the amount and/or the degree of filling of the piston/cylinder unit 13.
In
The next actuation of the double-acting piston/cylinder unit 8 shifts the drive lever 9 into its lower position, and the pawl 10 further rotationally indexes the sieve disk 2 with the screen inserts 3. At the same time, due to coupling of the drive lever 9 with the piston/cylinder unit 13 via the coupling 12, the drive acts on the piston/cylinder unit 13, so that by actuation thereof the backflushing or prefilling is performed. After this process step, the mechanism is returned to the position according to
In
Here too, the piston/cylinder unit 13 is coupled with the drive lever 9 for the backflushing and/or prefilling process, as is already apparent in
In the prefilling position, the sieve disk 2 is held between the parallel housing plates within a melt prefilling passage, and a prefilling opening for supplying the screen insert 3 of the sieve disk 2 is provided in the direction of flow of the melt prefilling stream. Rotation of the sieve disk 2 about the central axis 5, moves the screen inserts 3 successively into the path covered by the prefilling opening and subsequently into alignment with the melt-feed opening 6.
The present invention relates to a piston/cylinder unit drive, in which the piston/cylinder unit 13 for backflushing and/or prefilling is coupled with the drive of the sieve disk 2. In this case, the piston/cylinder unit drive is designed such that the piston/cylinder unit 13 can be decoupled, so that backflushing or prefilling need not occur during each revolution or cycle. The degree of filling of the piston/cylinder unit 13 may also be adjusted. The piston/cylinder unit 13 can be mounted in an outlet block or inlet block.
Number | Date | Country | Kind |
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102013209137.0 | May 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/059631 | 5/12/2014 | WO | 00 |