Method and device for producing a cavity in a stator of an eccentric screw pump
09884375 ยท 2018-02-06
Inventors
Cpc classification
Y10T409/304424
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T409/303808
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T409/300112
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23C3/32
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
In a method for producing a cavity (14) in a stator of an eccentric screw pump, material is removed in the interior of a stator blank (10) by means of a tool (11). In order that very long stators can be produced in one production operation, the tool (11) performs a rotational motion through a first shaft (12) and an eccentric motion around a second shaft (13), during which the stator blank (10) and the tool (11) are moved toward each other. A device for performing the method comprises (a) a bearing shaft (3) that can be coupled with its drive end to a first drive and that is rotatable around its longitudinal axis by means of the first drive; (b) a drive shaft (4) that can be coupled with its drive end to a second drive and is arranged in a borehole of the bearing shaft (3) and is rotatable around its longitudinal axis by means of the second drive form-fitting and relative to the bearing shaft (3), and (c) a machining tool (5), which is rotationally fixed connected to the machining end of the drive shaft (4) that can be inserted into the cavity and can be driven rotatably via the drive shaft (4) around the longitudinal axis of the drive shaft (4). The longitudinal axis of the drive shaft (4) intersects the longitudinal axis of the bearing shaft (3) at a point or is arranged askew to the longitudinal axis of the bearing shaft (3).
Claims
1. A method for producing a cavity in a stator of an eccentric screw pump, wherein a milling tool is used to remove material on the inside of a stator blank while the tool carries out a rotating movement inside the cavity driven by a first shaft as well as an eccentric movement around a second shaft, the improvement wherein: (a) the stator blank and the tool are moved against each other while the stator blank carries out a rotating movement, (b) the rotating and eccentric movements of the tool are carried out inside a non-rotating guide tube, (c) a speed ratio is sat between the stator blank and the second shaft, (d) at least one of the stator blank and the tool carry out an axial feed movement, (e) the tool is axially guided in the stator blank along the blank, and (f) the first shaft and the second shaft extend at an angle with respect to each other inside the guide tube.
2. Method as defined in claim 1, wherein the tool carries out at least two full eccentric movements during one full rotation of the stator blank.
3. Method as defined in claim 1, wherein the guide tube extends parallel to the second shaft.
4. A device for carrying out the method according to claim 1, comprising, in combination: (a) a bearing shaft that is rotatable around its longitudinal axis, (b) a drive shaft that is arranged in a borehole of the bearing shaft and is rotatable around its longitudinal axis relative to the bearing shaft, and (c) a machining tool, which is rotationally fixed to a machining end of the drive shaft and, when inserted into the cavity, it is driven rotatably about the longitudinal axis of the drive shaft; wherein the longitudinal axis of the drive shaft is arranged askew to the longitudinal axis of the bearing shaft; and wherein the axis of rotation of the machining tool runs through the outer shaft during a full rotation of the bearing shaft around its longitudinal axis.
5. The device as set forth in claim 4, wherein a drive end of the drive shaft protrudes at the center of the drive end of the bearing shaft and wherein the machining end of the drive shaft out of center from the machining end of the bearing shaft that is inserted into the cavity.
6. The device as set forth in claim 4, wherein the drive end of the drive shaft protrudes out of center from the drive end of the bearing shaft and wherein the machining and of the drive shaft protrudes from the center from the machining end of the bearing shaft and is inserted into the cavity.
7. The device as set forth in claim 4, wherein the drive shaft is arranged along its longitudinal axis, and is adjustable relative to the bearing shaft.
8. The device as set forth in claim 4, comprising an outer shaft, and wherein the bearing shaft is rotatable in a borehole in the outer shaft.
9. The device as set forth in claim 8, wherein the longitudinal axis of the bearing shaft is arranged parallel and at a distance to the longitudinal axis of the outer shaft, and wherein the outer shaft with its drive end is rotated about its longitudinal axis.
10. The device as set forth in claim 4, wherein the machining tool is a milling tool that has an effective diameter which is greater than the outer diameter of the bearing shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(4) The preferred embodiments of the present invention will now be described with reference to
(5) In a sectional view,
(6) For the production of the stator, a tool is provided that, in the embodiment of the invention shown in
(7) An additional movement of the tool 11 is in the form of an eccentric movement, namely around a second shaft 13 that does not coincide with the axis of symmetry of the stator blank 20. The stator blank 20 carries out additional movements, namely in the form of an axial feed movement and a rotating movement. Drives (not shown in
(8) The method begins with the stator blank 20 and the rotating milling tool 11 being moved against each other and at the same time the rotating tool 11 being driven inside the stator blank 20 through the first shaft 12 and carrying out the eccentric movement around the second shaft 13 (eccentric shaft). The initiated feed movement of the stator blank 20 causes the tool 11 to be guided inside the stator blank 20, which coincides with material removal inside the stator blank 20. In this way, a cavity 21 is formed inside the stator blank 20 having the cross-sectional shape of a longitudinal hole that is typical for an eccentric screw pump.
(9) As
(10) The movements of the stator blank 20 and the tool 11 are coordinated to each other. At the beginning of the method, the milling tool 11 is centered, i.e., in the center of the guide tube 15 and the stator blank 20. A 90? rotation of the tool 11 carried out in the context of the eccentric movement leads to the stator blank 20 being turned by 45? at its rotational movement. A rotation of the stator blank by 135? in turn corresponds to a rotation of the tool 11 around the second shaft 13 by 270?. A further rotation of the stator blank 20 by a total of 180? coincides with a rotation of the tool 11 by 360?, such that the tool 11 assumes the centered position shown in
(11) Additional coordinated states of movement between the stator blank 20 and the eccentrically moved milling tool 11 arise from the positions represented in
(12) The rotating movement of the stator blank 20 and the eccentric movement of the tool 11 are coordinated such that for a stator orientation of 360?, i.e., for a full rotation of the stator blank 20, the tool 11 is centered inside the stator blank 20, i.e., has carried out two full eccentric rotations of 360? each.
(13) Through the interaction of the axial feed movement with the stator blank 20, as well as the rotating stator movement around the first shaft 12 and the eccentric stator movement around the second shaft 13 with a simultaneously set speed ratio between the stator blank 20 and the second shaft 13, the cavity 14 is formed in the stator blank 20 that corresponds to the helical progression of a rotor in an eccentric screw pump.
(14)
(15) The drive ends 12.1, 13.1 of shafts 12, 13 shown on the left are each constructed with a drive (not shown) for connection purposes by which the respective shaft can be transferred in rotation by its longitudinal axis. However, it is also possible that the drive ends of shafts 12, 13 are connected with at least one extension (not shown) that has three respective rotatable shafts, by which the length of the device 10 could be extended overall in order to be able to also machine cavities with greater axial lengths in the desired manner. This allows for the length of the device 10 to be adapted in a simple manner to various operating conditions. The drives are then connected to the free end of the shaft of the last extension according to the previous embodiment.
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24) There has thus been shown and described a novel method and device for producing a cavity in a stator of an eccentric screw pump, which fulfill all the objects and advantages sought therefor. Many changes, modifications, variations and other uses and applications of the subject invention will, however, become apparent to those skilled in the art after considering this specification and the accompanying drawings which disclose the preferred embodiments thereof. All such changes, modifications, variations and other uses and applications which do not depart from the spirit and scope of the invention are deemed to be covered by the invention, which be limited only by the claims which follow.