EXTRUDER SCREW FOR A MULTI-SCREW EXTRUDER
20230278273 ยท 2023-09-07
Assignee
Inventors
Cpc classification
B29C48/252
PERFORMING OPERATIONS; TRANSPORTING
B29B7/485
PERFORMING OPERATIONS; TRANSPORTING
B29C48/38
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C48/38
PERFORMING OPERATIONS; TRANSPORTING
B29C48/25
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An extruder screw for a multi-screw extruder, having an intake and metering section. A rotor body has an enlarged diameter relative to the intake and metering section and has a plurality of satellite screws positioned on the outer periphery of the rotor body at least over part of the length thereof. A cone and an adjoining drive zone are formed between the intake and metering section and the rotor body, in which drive zone the satellite screws each engage via a drive pinion in an external toothing on the rotor body or in an internal toothing on a stator ring or in the inner wall of an extruder housing. At least one peripherally closed flow channel is formed, which flow channel extends from an inlet opening on the cone to an outlet opening located downstream of the drive pinions in the direction of flow.
Claims
1. An extruder screw for a multi-screw extruder, the extruder screw comprising: an intake and metering section; a rotor body having an enlarged diameter relative to the intake and metering section; a plurality of satellite screws positioned in an exposed manner on an outer periphery of the rotor body at least over part of the length thereof; a cone and an adjoining drive zone formed between the intake and metering section and the rotor body, in which drive zone the satellite screws each engage via a drive pinion in an external toothing on the rotor body or in an internal toothing on a stator ring or in an inner wall of an extruder housing of the multi-screw extruder; and at least one peripherally closed flow channel formed between at least two adjacent grooves for the drive pinions, which flow channel extends from an inlet opening on the cone to an outlet opening located downstream of the drive pinions in a direction of flow.
2. The extruder screw according to claim 1, wherein the drive zone is formed on a support bearing element which, for each satellite screw, has a groove to accommodate the drive pinion and/or an opening to accommodate a bearing shoulder or bearing attached to the end of the satellite screw.
3. The extruder screw according to claim 2, wherein the flow channels are tubular with a triangular or trapezoidal cross-section over at least part the length thereof, and wherein in the cross-section one apex of the triangle or narrow side of the trapezoid points to the central axis of the support bearing element and the opposite base is located on the outer periphery of the support bearing element.
4. The extruder screw according to claim 2, wherein at least one radial bore is inserted on the outer periphery of the support bearing element per satellite screw, which bore extends into the groove for the drive pinion or into the bearing holder.
5. A multi-screw extruder comprising at least an extruder housing with an extruder bore in which the extruder screw according to claim 1 is rotatably mounted.
6. A multi-screw extruder comprising: an extruder housing with an extruder bore; an extruder screw rotatably mounted in the extruder bore with an intake and metering section; a rotor body which has an enlarged diameter relative to the intake and metering section, which has a plurality of satellite screws positioned in an exposed manner on the outer periphery of the rotor body at least over part of the length thereof; a cone and an adjoining drive zone are formed between the intake and metering section and the rotor body, in which drive zone the satellite screws each engage via a drive pinion in an internal toothing on a stator ring or in the inner wall of the housing; at least one flow channel formed in a housing wall in an area of the drive zone between at least two adjacent drive pinions, the flow channel extending in a longitudinal direction from an inlet opening located in front of the internal toothing to an outlet opening located beyond the internal toothing.
7. The multi-screw extruder according to claim 6, wherein the flow channels are formed in the stator ring and/or in a retaining ring inserted into the extruder bore in the drive zone.
8. The multi-screw extruder according to claim 6, wherein an annular gap is formed between the outer periphery of the extruder screw in the drive zone and the inner periphery of the extruder bore, a radial width of which is up to 5 mm.
9. The multi-screw extruder according to claim 6, wherein an annular gap is formed between the outer periphery of the extruder screw in the drive zone and the inner periphery of the extruder bore, a cross-sectional area of which is not more than 20% of the sum of all cross-sectional areas of the flow channels.
10. The multi-screw extruder according to claim 6, wherein the internal toothing is formed on a stator ring inserted into the extruder bore in the drive zone, and wherein a retaining ring limiting the annular gap is mounted in the longitudinal direction in front of the stator ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] In
[0023]
[0024] In
[0025] The advantage of this arrangement is shown in
[0026]
[0027] In the drive zone, a stator ring 244 is inserted into the extruder bore 241, which has an internal toothing into which the drive pinions 21 of the satellite screws 20 engage. In addition, a retaining ring 245 is used to limit the annular gap between the inner wall of the housing and the outer periphery of the extruder screw 100 at this point and to be able to adjust its width.
[0028]
[0029] The path of the plastic melt from the intake and metering section 30 via the cone 11 through the flow channels 13 is marked by the dashed arrow line. It can be seen that a large part of the plastic melt thus flows past the stator ring 244 with the toothing into which the drive pinions of the satellite screws 20, which are not visible here, engage.
[0030] The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.