Device and Method for Winding Toroidal Cores Without Using a Magazine
20230066596 · 2023-03-02
Inventors
Cpc classification
International classification
Abstract
The invention relates to a device and a method for winding toroidal cores, which can be guided in a toroidal core retaining element, with a wire comprising multiple wire sections without using a magazine. The device additionally comprises: a substantially circular needle roller which is arranged on a winding plane substantially parallel to the wire, is rotatably mounted, and can be positioned relative to the toroidal core retaining element such that the needle roller winds a wire section located on the winding plane through and about a toroidal core which is guided in the toroidal core retaining element during operation. The needle roller additionally comprises a deflecting roller, which is rotatably mounted on the needle roller in a first recess on the winding plane and which is designed to wind the wire section located on the winding plane through and about the toroidal core during operation, and a baffle plate, which is arranged on the needle roller in a second recess on the winding plane adjacently to the first recess and which is designed to guide the wire to be wound between the winding plane and a storing plane arranged substantially parallel to the winding plane via a guide groove during operation. The device additionally comprises multiple storing elements which are arranged on the storing plane, which are mounted in a stationary and rotatable manner, and which are designed to store wire sections located on the storing plane.
Claims
1. A device with a toroidal core retaining element for winding toroidal cores, which can be guided in the toroidal core retaining device, with a wire comprising a multiplicity of wire sections, and further comprising: a substantially circular needle roller, arranged substantially parallel to the wire and mounted such as to be rotatably movable and which can be positioned relative to the toroidal core retaining element in such a way that the needle roller winds a wire section located in the winding plane through and about a toroidal core guided in the toroidal core retaining element when in operation, wherein the needle roller further comprises: a deflecting roller, which is rotationally mounted in a first recess in the winding plane at the needle roller, and is designed such as to wind the wire section located in the winding plane through and about the toroidal core when in operation; and a baffle plate, which is arranged in a second recess in the winding plane, adjacent to the first recess at the needle roller, and which is designed to guide the wire which is to be wound, during operation, via a guide groove between the winding plane and a storing plane arranged substantially parallel to the winding plane, and the device further comprises: a multiplicity of storing elements arranged in the storing plane, which are mounted in a stationary and rotatable manner, and are designed to store the wire sections located in the storing plane.
2. The device for winding toroidal cores according to claim 1, wherein an interruption interrupts the substantially circular form of the needle roller in one region, such that the needle roller can be positioned in a position provided for the winding of the toroidal core, and wherein the needle roller is arranged in such a way that it can be rotated through the toroidal core.
3. The device for winding toroidal cores according to claim 1, wherein the needle roller comprises a toothed rim, which is arranged in a drive plane arranged substantially parallel to the winding plane, and is designed to drive the needle roller rotationally.
4. DeviceThe device for winding toroidal cores according to claim 1, wherein the needle roller is designed such as to wind the wire section located in the winding plane, when in operation, simultaneously through and about the toroidal core which is being guided in the toroidal core retaining element and to store the wire section located in the storing plane onto the multiplicity of storing elements.
5. DeviceThe device for winding toroidal cores according to claim 1, wherein the deflecting roller is designed such as to wind the wire section located in the winding plane centrally through and about the toroidal core.
6. The device for winding toroidal cores according to claim 1, further comprising at least one wire brake, wherein the at least one wire brake is designed such as to brake the wire section located in the storing plane by pressing at intervals on at least one of the multiplicity of storing elements, and to keep the wire taut when in operation.
7. The device for winding toroidal cores according to claim 6, wherein the multiplicity of storing elements are rollers, which are driven in rotation at intervals in reciprocal effect with the at least one wire brake.
8. A method for winding a toroidal core, which can be guided in a toroidal core retaining element, with a wire comprising a multiplicity of wire section, wherein the method comprises the rotation of a needle roller, comprising a baffle plate and a deflecting roller, through the toroidal core, and comprises the following steps: a. Guiding a wire section, located in a storing plane, of a wire stored on a multiplicity of storing elements from storing elements arranged in the storing plane, via a guide groove of the baffle plate, and onto the deflecting roller, which is arranged in a winding plane arranged substantially parallel to the storing plane, b. Guiding the wire section located in the winding plane about the deflecting roller as far as the toroidal core; c. Winding the toroidal core with the wire section located in the winding plane; and d. Guiding back a wire section located in the winding plane which has not been wound, via the deflecting roller, through the guide groove, and onto the multiplicity of storage elements in the storing plane.
9. The method for winding toroidal cores according to claim 8, wherein the toroidal core guided in the toroidal core retaining element rotates when in operation perpendicular to the rotation of the needle roller.
10. The method for winding toroidal cores according to claim 8, wherein the wire on the storing elements is tautened at intervals by at least one wire brake.
11. The method for winding toroidal cores according to claim 8, wherein the method is carried out by making use of the device for winding of toroidal cores according to claim 1.
12. The method for winding toroidal cores according to claim 8, wherein, at the beginning of the method, the wire section located in the winding plane is wound simultaneously through and about the toroidal core, and the quantity of wire required is stored on the multiplicity of storing elements in the storing plane.
13. The method for winding toroidal cores according to claim 8, wherein the steps a to d are run through repeatedly, in order to wind the desired number of windings of the wire onto the toroidal core.
Description
[0016] Exemplary embodiments of the invention are explained in greater detail hereinafter, on the basis of the attached Figures. These show:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] The device 1000 for the winding toroidal cores 2000 in accordance with
[0024] Instead of a magazine, the device 1000 comprises, for the winding of toroidal cores 2000 without a magazine, a multiplicity of storing elements 1210, 1220, 1230, 1240 arranged in the magazine plane 4200, which are mounted in a stationary and rotational manner, and are designed to store wire sections 3200 located on the storing plane 4200. The axis of rotation of the toroidal core 2000 lies preferably substantially in the winding plane 4100, and the axes of rotation of the toroidal core 2000 and of the storing elements 1210, 1220, 1230, 1240 are preferably arranged substantially perpendicular to one another.
[0025] According to the embodiment represented in
[0026] For the further winding, the toroidal core 2000 is wound by the needle roller 1100 with the deflecting roller 1111 using the wire section 3100 located in the winding plane 4100. Due to the rotation of the needle roller 1100 and the deflecting roller 1111, the wire section 3200, located in the storing plane 4200, of the wire 3000 stored on the multiplicity of storing elements 1210, 1220, 1230, 1240 is guided from the storing elements 1210, 1220, 1230, 1240 via the guide slot 1121 of the baffle plate 1122 onto the deflecting roller 1111. The wire section 3100 located in the winding plane 4100 is then guided about the deflecting roller 1111 to the toroidal core 2000 and wound about the toroidal core 2000. After the winding of the toroidal core 2000 with the wire section 3100 located in the winding plane 4100, the wire section 3100 which is located in the winding plane 4100 and has not been wound is then guided back again via the deflecting roller 1111 through the guide groove 1121 and onto the multiplicity of storing elements 1210, 1220, 1230, 1240 in the storing plane 4200. With the progressing winding of the wire 3000 onto the toroidal core 2000, the quantity of wire 3000 is reduced, i.e. the wire sections 3100 located in the winding plane 4100 and the wire sections 3200 located in the storing plane 4200 which are guided through the toroidal core 2000. As a result, in particular, toroidal cores 2000 can also be wound of which the residual hole diameters (inner diameters of the wound toroidal core 2000 with wire layers wound on it as the winding progresses) become small in the course of the winding.
[0027] The wire section 3200 located in the storing plane 4200 which had not yet been wound is braked at intervals by the at least one wire brake 1510, 1520, 1530, 1540, by pressing against at least one of the multiplicity of storing elements 1210, 1220, 1230, 1240, and is therefore held taut when in operation. According to one embodiment, the multiplicity of storing elements 1210, 1220, 1230, 1240 are designed as rollers, which are rotationally driven at intervals in reciprocal effect with the at least one wire brake 1510, 1520, 1530, 1540. In one preferred embodiment, the storing elements 1210, 1220, 1230, 1240 are stored on a side facing away from the needle roller 1100, and are enclosed by surrounding regions. Moreover, in one preferred embodiment, means are provided on a side of the storing elements 1210, 1220, 1230, 1240, facing towards the needle roller 1100, for avoiding an undesirable falling of the wire sections 3200 present in the storing plane 4200 from the storing elements 1210, 1220, 1230, 1240 during the winding process. These means are preferably a circumferential chamfered edge 1211, 1221, 1231, 1241 as represented in
[0028] According to one embodiment, the method 6000 for the winding of toroidal cores 2000 without using a magazine can be described as follows, by making reference to
[0029]
[0030] In the meaning of the invention, the term toroidal core also includes tubular cores or cores with special opening geometries, and relates in particular to such toroidal cores with small inner diameters or cores with angled opening geometries, as well as tubular cores which, due to their dimensions cannot be wound with conventional toroidal core winding devices, since the magazine cannot be guided through the toroidal core opening due to the space required for the magazine. The embodiments described here are, however, likewise well-suited for the winding of other toroidal cores or cores with other openings, and also such with larger inner diameters, and allow for simple and convenient winding.
[0031] In the meaning of the invention, the term wire also includes all other materials with which, in a rational manner, toroidal cores or similar objects are to be wound in accordance with the invention.
[0032] Further advantageous embodiments and derivations derive for the person skilled in the art from the exemplary embodiments described here, and will be understood by him as belonging to the invention.