METHOD FOR INSERTING UNDULATED COIL ASSEMBLIES IN SLOTS OF CORES OF DYNAMOELECTRIC MACHINES

20230109380 · 2023-04-06

Assignee

Inventors

Cpc classification

International classification

Abstract

A method and apparatus for inserting an undulated coil assembly (90) in the hollow core (101) of a dynamoelectric machine, the coil having a planar configuration with adjacent superimposed linear portions (LI) extending parallel to each other and a plurality of turn portions (T) connecting the linear portions (LI), comprising positioning at least a first coil portion (90′) of the coil assembly around a support member (200); aligning a guide assembly (302,303,304) with respect to the end faces and the slots (102) of the core (101); engaging the superimposed linear portions (LI) along guide surfaces that form a passage (301) during the feeding along the guide assembly (302,303,304); feeding the first coil portion (90) from the support member (200) along the guide assembly (302,303,304) to change orientation of adjacent superimposed linear portions (LI) being fed and to insert the adjacent superimposed linear portions being fed in the slots (102); relatively moving the core (101) with respect to the guide assembly (302,303,304) to position the slots (102) for receiving the superimposed linear portions (LI). A hollow core of a dynamoelectric machine wound with an undulated coil assembly comprising superimposed linear portions positioned at different pitch distances (PT1,PT2) in two adjacent slots (102).

Claims

1-11. (canceled)

12. Apparatus for inserting an undulated coil assembly in the in the slots of a hollow core of a dynamoelectric machine, the coil assembly having adjacent superimposed linear portions (LI) extending parallel to each other and a plurality of turn portions (T) connecting the linear portions (LI), the apparatus comprising: a support member where at least a first coil portion of the coil assembly is positioned around an external surface of the support member; a guide device aligned with respect to the end faces and the slots of the core; a feeder that feeds the first coil portion from the support member along the guide assembly to insert the adjacent superimposed linear portions (LI) in the slots; a passage of the guide assembly comprising at least one guide surface where the superimposed linear portions (LI) are engaged to change the angular orientation of the superimposed linear portions (LI) with respect to the radiuses of the slots during the insertion in the slots; and means for relatively moving the core with respect to the guide device to position the slots for receiving the superimposed linear portions (LI).

13. The apparatus of claim 12, wherein superimposed linear portions (LI) of a tail end of the first coil portion are engaged in slots of the support member and further superimposed linear portions (LI) of the first coil portion are engaged by a feed member positioned between the support member and the slots; and wherein the movement of the support member is synchronized with the movement of the feeder and the relative movement of the core.

14. The apparatus of claim 12, further comprising: a second support member where a second coil portion is positioned around an external surface of the second support member; a second guide device aligned with respect to the end faces and the slots of the core; a second feeder that feeds a portion of the second coil portion from the second support member along the second guide device to change orientation of the superimposed linear portions being fed and to insert the superimposed linear portions (LI) being fed in the slots.

15. The apparatus of claim 12, wherein a terminal portion of the guide device is removable to accomplish reorientation and insertion of superimposed linear portions (LI) in the slots.

16. The apparatus of claim 12, wherein the at least one guide surface is configured to reduce the angle of the angular orientation during the insertion in the slots.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The invention will be now shown with the following description of an exemplary embodiment, exemplifying but not limitative, with reference to the attached drawings in which:

[0024] FIG. 1 is a planar view of a woven coil assembly;

[0025] FIG. 2 is a schematic perspective view illustrating devices of the invention required for inserting coil assemblies according to the invention;

[0026] FIG. 3 is a view as seen from directions 3 of FIG. 2;

[0027] FIG. 4 is an enlarged view of area 4 of FIG. 3 with certain parts that are transparent for reasons of clarity;

[0028] FIG. 5 is an enlarged partial view similar to that of FIG. 3 of two adjacent slots of a core;

[0029] FIG. 6 is an enlarged partial view similar to that of FIG. 3 of two adjacent slots of a core during insertions steps according to the invention;

[0030] FIG. 7 is an enlarged partial view similar to that of FIG. 3 illustrating two adjacent slots of a core that have been filled;

[0031] FIG. 8 is a partial section view as seen from direction 8-8 of FIG. 3;

[0032] FIG. 9 is a partial section view as seen from direction 9-9 of FIG. 3.

DETAILED DESCRIPTION OF THE INVENTION

[0033] A portion of an undulated woven coil assembly 90 consisting of twelve wire conductors is shown in FIG. 1. Coil assembly 90 is a flat coil assembly parallel to the plane P of the drawing of FIG. 1. The coil assembly 90 of FIG. 1 can be considered to be an interlacing of coil portions. More particularly, the coil assembly consists of a repetition of areas of six linear portions L1-L6 of coil superimposed on six linear portions AL1-AL6. Consequently two superimposed linear portions are at a pitch distance PT from two adjacent linear portions, as shown in FIG. 1.

[0034] A coil assembly according to these characteristics, together with methods and devices for achieving the flat configuration shown in FIG. 1, have been described in Italian Patent Application No. PI2015A000031.

[0035] A stator core 101, which receives the coil assembly of FIG. 1 is shown in FIGS. 2 and 3. The stator core will have a number of slots 102 proportional to the total number of superimposed linear portions LI. This total includes the linear portions of superimposed initial and final leads. As a result, in a slot 102, two superimposed linear portions LI can be accommodated on two other superimposed linear portions LI, which can be accommodated on other two superimposed linear portions LI, as shown in FIG. 7. Two superimposed linear portions are for example like linear portion L1 superimposed on linear portion AL1, or like linear portion L2 superimposed on linear portion AL2 of FIG. 1. This will depend on the number of superimposed linear portions LI present in the coil assembly, which has been formed. The example of FIG. 7 shows the case where a slot contains 4 pairs of superimposed linear portions LI, which corresponds to 8 conductors present in a slot 102. In the following, the terminology linear portions LI, when referred to the object being inserted, will mean two superimposed linear portions, like has been described in the foregoing. These two superimposed linear portions need to be inserted in a same slot 102.

[0036] With reference to FIG. 5, according to the invention linear portions LI, which are in adjacent slots, will be separated by a pitch distance PT, which is greater than the pitch distance PI which separates the entrances of the slots 102′. In this situation, at least linear portions 50 will not be sufficiently aligned with the entrance of slot 102′, and therefore will not be able to enter slot 102

[0037] FIG. 6 shows instances of insertion of adjacent linear portions according to the principles of the invention. The adjacent linear portions have been rotated by angles A and B with respect to the radial directions of the slots 102. More particularly, at the instant of entering the slots 102 the angle will be A, whilst when the linear portion is further within the slots, the angle is B, which is smaller with respect to angle A. During the insertion according to these principles, the pitch distance PT between the adjacent linear portions LI remains constant.

[0038] As shown in the example of FIG. 7, according to the invention a predetermined number of linear portions LI positioned at or near to the bottom of the slots 102 will be wound and inserted having a pitch distance PT1, and a predetermined number of linear portions LI positioned at or near to the entrance of the slots will be wound and inserted having a pitch distance PT2.

[0039] In other words a certain set S1 of linear portions LI will have pitch distance PT1 and a second set S2 of linear portions LI will have pitch distance PT2, depending on the position that the linear portions LI have along the radius of the slots 102, as shown in FIG. 7.

[0040] Pitch distance PT1 will be larger than pitch distance PT2. This will result in the length of the turns T of the linear portions LI having the pitch distance PT1 longer than the length of the turns of the linear portions having the pitch distance PT2.

[0041] In this way, both the turns T of the linear portions will be more accurately positioned and tensioned. Accordingly, the stator core will have less height where the turns T are located, which achieves that the stator core 101 is more compact. Furthermore, there is an optimization of the length of conductor used to wind the coils of the stator core. Also, there is less variance in the electrical resistance of the coils, and the insulation of the conductors forming the coil assemblies is less subject to having areas of breakage.

[0042] FIGS. 2 and 3 illustrate a device of the invention, where a portion 90′ of a flat coil 90 like that of FIG. 1, or a layered coil assembly, can be wound for a certain number of turns on a drum 200.

[0043] Drum 200 is provided with teeth 201 for engaging the tail end of the flat coil. By rotating drum 200 around longitudinal axis 200′ of the drum, coil portion 90′ unwinds from drum 200. In FIGS. 2 and 3, for reasons of clarity, turn portions T of the coil have been removed, although the turn portions T are visible in section views of FIGS. 8 and 9.

[0044] The leading portion 91 of coil 90 is directed through passage 301 of guide assembly 300. Passage 301 is delimited by guide plates 302, 303, 304.

[0045] Engagement wheel 400 is provided with teeth 401 for engaging the spacing SP existing between linear portions LI, as shown in FIGS. 2, 3 and 8. Rotation of engagement wheel 400 will feed the leading portion 91 of the flat coil through passage 301.

[0046] When engagement wheel 400 is being rotated, also drum 200 will be rotated to feed the leading portion 91 and unwind the rest of the coil portion 90′ from drum 200 without modifying the pitch distance PT existing between the linear portions LI.

[0047] At the same time, stator core 101 is indexed by a rotation motion around longitudinal axis 101′, which is the central longitudinal axis of the stator core 101, as shown in FIGS. 2 and 3.

[0048] With reference also to FIG. 4, rotation of drum 200, together with rotation of engagement wheel 400 and rotation of stator core 101 align each linear portion LI of the flat coil with a specific slot 102, where the linear portion LI needs to be inserted though the entrance 102′, and thereafter positioned in the depth of a specific slot 102.

[0049] FIG. 4 illustrates how the configuration of the guide passage 301 and the described movements of the drum 200, the engagement wheel 400 and the stator core 101 progressively insert the linear portions LI in the respective slots 102, and position the linear portions at the required depth within the slots 102.

[0050] More particularly, engagement of the linear portions along the sides of the guide passage 301 during the above movements rotates, or orients, the linear portions LI, as has been described with reference to FIGS. 4 and 6, to insert the linear portions through the entrance 102′ of the slots 102, and to continue to rotate, or orient, the linear portions at predetermined positions inside the slots 102. At all times of the rotation, or orientations, the pitch distance PT between linear portions LI remains constant, as shown in FIG. 6.

[0051] As shown in FIG. 4, and with reference to FIG. 6, during the described movements, angle A gradually reduces as the linear portions LI move within the slots by movement along passage 301 until the angle becomes zero when a linear portion leaves passage 301, and results positioned at a required final position within a slot 102 (see linear portions LI1 in FIG. 4).

[0052] The situation of FIG. 4 is the initial stage of the insertion of the flat coil, in which the linear portions become positioned at the bottom of the slots 102.

[0053] To obtain the insertion of a plurality of linear portions in a same slot, like is shown in FIG. 7, multiple synchronized 360° rotations of drum 200 and stator core 101 need to be accomplished. The number of these rotations depends on the number of linear portions of the flat coil, which need to be inserted in a same slot. Guide plate 304 needs to be separate from guide plate 302, so that plate 304 can be removed, when practically a full rotation of the stator core has occurred. In fact, in the final stage of a complete rotation of the stator, guide plate 304 will be occupying the place where successive turns of linear portions need to be inserted, as can be deduced from FIG. 4.

[0054] With reference to FIGS. 8 and 9 the guide plates 302, 303, 304 are duplicated on the opposite side of the stator core, so that the linear portions LI are guided by two aligned passages 301 to be parallel to the entrance of the slots, where the linear portion need to be inserted.

[0055] Structure 305 located in the stator core can be adopted for connecting the guide plates, as shown in FIGS. 2 and 9.

[0056] As shown in FIGS. 8 and 9, passages 301 can guide portions GL1 of linear portions LI. Guide portions GL1 can be at the ends of linear portions LI, and adjacent to turn portions T, as shown in FIG. 9.

[0057] A drive unit (not shown) is attached to shaft 402 of engagement wheel 400 for the rotation of guide wheel 400, as shown in FIG. 8.

[0058] In order to place all the linear portions LI in the slots 102, linear portions LI having different pitch distance PT2, as shown in FIG. 7, need to be in inserted in the part of the slot that is nearer to the entrance.

[0059] This can be achieved by winding a second flat coil to have pitch distance PT2. The second flat coil can be wound around another drum like 200 having teeth at a pitch distance PT2. Also, a second engagement wheel 400 will need to have a pitch distance PT2 between the teeth.

[0060] Furthermore, guide plates 302, 303 and 304 will need to form a passage having a configuration that progressively rotates, or orients the linear portions with specific angles for entering the slots and for maintaining pitch distance PT2 constant.

[0061] These different devices can be present in a second unit like that of FIG. 2, where the stator core 101 can be transferred and positioned for the successive insertion of the second flat coil having pitch distance PT2. This will avoid having to replace drum 200, engagement wheel 400, and guide plates 302, 303 and 304 in a single unit.

[0062] It will be appreciated that by means of device not shown the relative movement of the stator core 101 with respect to the guide passage 301 can be achieved with motions, which when combined together result in a rotation of the stator core around axis 101′, or in other movements, which achieve the required insertion and final positioning in the slots 102 of the stator core.

[0063] It should also be appreciated that the passage 301 can be accomplished by means of a single guide surface along which the linear portions LI are caused to engage and move in order be rotated and inserted in the slots 102 of stator core 101, like occurs on guide surface of plate 303 when guide 304 is removed.

[0064] The foregoing description exemplary embodiments of the invention will so fully reveal the invention according to the conceptual point of view, so that others, by applying current knowledge, will be able to modify and/or adapt for various applications such embodiment without further research and without parting from the invention, and, accordingly, it is therefore to be understood that such adaptations and modifications will have to be considered as equivalent to the specific embodiments. The means and the materials to realise the different functions described herein could have a different nature without, for this reason, departing from the field of the invention. It is to be understood that the phraseology or terminology that is employed herein is for the purpose of description and not of limitation.