Device and Method for Winding Toroidal Cores
20230108674 · 2023-04-06
Inventors
Cpc classification
H01F41/082
ELECTRICITY
International classification
H01F41/08
ELECTRICITY
H01F41/082
ELECTRICITY
Abstract
The invention relates to a device and a method for winding toroidal cores arranged on a toroidal core plane with a wire arranged on a winding plane. The device additionally comprises: a protective cover which is arranged substantially on the toroidal core plane and perpendicularly to the winding plane, is movably mounted in a translational manner horizontally on the toroidal core plane, and is designed to be guided over some regions of the toroidal core during operation, and thereby protect the toroidal core, and to produce an inner mold for at least one wire winding, said wire being wound on the mold. The device additionally comprises: a slide which is arranged substantially on the toroidal core plane and parallel to the protective cover and which is slidably mounted about the protective cover, surrounds some regions of the protective cover, and is designed to push the at least one wire winding wound on the protective cover from the protective cover onto the toroidal core during operation by means of a translational movement.
Claims
1. Device for winding toroidal cores arranged on a toroidal core plane, with a wire arranged on a winding plane, comprising: a protective cover, which is arranged substantially on the toroidal core plane and perpendicular to the winding plane and is mounted on the toroidal core plane such as to be movable horizontally in a translational manner, and is designed such as to be guided, in operation, in some sections over the toroidal core, and therefore protect the toroidal core, and to produce an inner mould of at least one wire winding, onto which the wire is wound, a slide, which is arranged substantially on the toroidal core plane and parallel to the protective cover and mounted such as to slide about the protective cover and in some sections surrounds the protective cover, and is designed so as to push the at least one wire winding wound onto the protective cover, when in operation, by a translational movement from the protective cover onto the toroidal core.
2. Device for winding toroidal cores according to claim 1, wherein the protective cover comprises a receiving region in a region located substantially opposite the face surface of the toroidal core, which is designed such as to receive a region of the toroidal core which has already been wound with the wire.
3. Device for winding toroidal cores according to claim 2, wherein the slide comprises a receiving region in a region located substantially opposite the face surface of the toroidal core, which is designed to receive a region of the toroidal core which has already been wound with the wire.
4. Device for winding toroidal cores according to claim 1, wherein the device comprises a first guide plate and a second guide plate, which are arranged substantially parallel to the winding plane and are designed to guide the wire before the winding onto the protective cover into a predetermined position on the winding plane and to brake it.
5. Device for winding toroidal cores according to claim 4, wherein the first guide plate is mounted in a fixed position, and the second guide plate is mounted on the toroidal core plane and is movable horizontally in a translational movement.
6. Device for winding toroidal cores according to claim 4, wherein the first guide plate and the second guide plate exhibit an inclination in an upper region, which continuously increases the distance interval between the first guide plate and the second guide plate, and forms a funnel-shaped wire guiding region.
7. Device for winding toroidal cores according to 4, wherein the second guide plate comprises a surface with braking properties, which is designed such as to brake the wire before the winding onto the protective cover.
8. Device for winding toroidal cores according to claim 4, wherein the first guide plate and the second guide plate comprise receiving regions, which are designed to receive the toroidal core, the protective cover, and the slide.
9. Device for winding toroidal cores according to claim 1, wherein the device comprises at least two drive rollers, in each case with recesses arranged on the face surface of the drive rollers, which are arranged substantially parallel and adjacent to the toroidal core, and are designed to receive wire windings on the toroidal core, and drive the toroidal core rotationally.
10. Device for winding toroidal cores according to claim 1, wherein the protective cover and the slide are arranged as doubled in mirror image on the winding plane.
11. Method for winding a toroidal core arranged on a toroidal core plane, with a wire arranged on a winding plane, wherein the method comprises the following steps: a. Winding at least one wire winding onto the protective cover; b. pushing forward a slide and pushing the at least one wire winding from the protective cover onto the toroidal core; and c. pushing back the slide.
12. Method for winding toroidal cores in accordance with claim 11, wherein the toroidal core is driven rotationally when in operation by the at least two drive rollers and rotates in the toroidal core plane.
13. Method for winding toroidal cores in accordance with claim 11, wherein the method comprises a step upstream of step a., with the positioning and braking of the wire which is to be wound by means of guide plates.
14. Method for winding toroidal cores in accordance with claim 11, wherein, at the beginning of the method, the toroidal core is placed in the device and the protective cover is guided in sections over the toroidal core; and wherein the steps a. to c. are run through repeatedly in order to wind the desired number of wire windings onto the toroidal core.
15. Method for winding toroidal cores in accordance with claim 11, wherein the method is carried out using the device for winding toroidal cores.
Description
[0019] Exemplary embodiments of the invention are explained in greater detail hereinafter on the basis of the appended Figures. These show:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] According to the embodiments represented in
[0027] According to the embodiments represented in
[0028] The protective cover 1100 and the slide 1200 comprise recess regions 1110, 1210, which are arranged in a region substantially opposite the face surface of the toroidal core 2000, as represented in
[0029] The first and second guide plates 1310, 1320, represented in
[0030] The braking of the wire 3000 between the first guide plate 1310 and the second guide plate 1320 takes place on the one hand due to a resetting force which takes effect from the second guide plate 1320 in the direction of the second guide plate 1310. The wire 3000 located in between is pressed by the second guide plate 1320 against the first guide plate 1310, and, as a result, is braked when the wire 3000 is guided between the two guide plates 1310, 1320. On the other hand, the second guide plate 1320 exhibits, according to one embodiment of the present invention, a surface 1322 with braking properties, made of a material (e.g. with a brake covering such as felt or similar) with a friction coefficient which is greater than the friction coefficient of the first guide plate 1310, as represented in
[0031] As represented in
[0032] According to one embodiment, the method 5000 for winding toroidal cores 2000 can be compiled as described hereinafter, by reference to
[0033] According to a further embodiment, the method 5000 for winding toroidal cores 2000 can further comprise, in addition to the steps described heretofore, a preliminary step of positioning and braking of the wire 3000 which is to be wound by means of guide plates 1310, 1320. When the wire 3000 comes in contact onto the first guide plate 1310 and the second guide plate 1320, the wire 3000 is guided through the funnel-shaped wire opening region 1340 between the first guide plate 1310 and the second guide plate 1320. The guide plates 1310, 1320 guide the wire 3000 into a predetermined on the winding plane 4200 and brake the wire 3000 before the winding onto the protective cover 1100.
[0034]
[0035] 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.
[0036] 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.
[0037] 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.