Winding layers composed of different materials
09711264 · 2017-07-18
Assignee
Inventors
- Mario BROCKSCHMIDT (Essen, DE)
- Peter Gröppel (Erlangen, DE)
- Friedhelm Pohlmann (Essen, DE)
- Claus Rohr (Mannheim, DE)
- Roland Röding (Ellrich, DE)
- Julia Wirsing (Scheinfeld, DE)
Cpc classification
H01B17/44
ELECTRICITY
International classification
Abstract
Fewer insulation layers can be used by virtue of using hydrophobic electrically conductive materials around a main insulation around a conductive bar. There are several more layers of conductive and/or non-conductive material.
Claims
1. An insulation system comprising: a metallic bar; a main insulation around the bar; a single first layer of a single tape of composite material comprising at least one first electrically conductive material and at least one hydrophobic material wrapped around the main insulation, a second layer of a different second electrically conductive material directly on the main insulation, and a third outermost layer of an electrically conductive material; and a fourth layer, between the first layer with the at least one first electrically conductive material and the at least one hydrophobic material and the main insulation, of an electrically conductive material, which is different from the at least one first electrically conductive material, wherein the electrically conductive materials of the second and third layers are different from the at least one first electrically conductive material, wherein the first layer is between the second layer and the third layer, wherein the single first tape comprises a woven fabric comprising fibers, each fiber comprising graphite and PTFE, wherein the single tape is one of one or more tapes wrapped around the main insulation, and wherein the tapes are in a form of a succession of windings, each winding having edges, and the edges of successive windings of the tapes abut each other.
2. The insulation system as claimed in claim 1, wherein the main insulation comprises mica.
3. An electrical machine, which includes an insulation system as claimed in claim 1.
4. The electrical machine of claim 3, which comprises a generator.
5. The insulation system as claimed in claim 1, wherein the electrically conductive materials of the second layer and the third layer are the same.
6. An insulation system comprising: a metallic bar; a main insulation around the bar; at least one first layer, each first layer being a single layer of a single tape of composite material comprising at least one first electrically conductive material and at least one hydrophobic material, the single tape being wrapped around the main insulation and a second layer of a different second electrically conductive material directly on the main insulation; a third layer which consists of an electrically conductive material, the third layer being the outermost layer; and a fourth layer, between the first layer with the at least one first electrically conductive material and the at least one hydrophobic material and the main insulation, of an electrically conductive material, which is different from the at least one first electrically conductive material, wherein the at least one first layer is between the second layer and the third layer, wherein the single first tape comprises a woven fabric comprising fibers, each fiber comprising graphite and PTFE, wherein the single tape is one of one or more tapes wrapped around the main insulation, and wherein the tapes are in a form of a succession of windings, each winding having edges, and the edges of successive windings of the tapes abut each other.
7. The insulation system as claimed in claim 6, which has the main insulation and only three layers selected from the group consisting of: the at least one first layer, the second layer, and the third layer.
8. The insulation system as claimed in claim 6, which has the main insulation and only two layers selected from the group consisting of: the at least one first layer and the second layer.
9. The insulation system as claimed in claim 6, which has one first layer.
10. The insulation system as claimed in claim 6, wherein the electrically conductive materials of the second layer and the third layer are the same.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DESCRIPTION OF EMBODIMENTS
(3) The figures and the description only represent exemplary embodiments of the invention.
(4)
(5) The main insulation 7 has preferably been applied directly to the metallic bar 4 (
(6) The main insulation 7 is preferably wound and preferably comprises mica or some other known material for the insulation.
(7) On the main insulation 7 there is a further layer 10 of a well-adhering, electrically conductive material (preferably from the Krempel company) of the prior art. The insulation 1 is included in a generator 20 or other rotating electrical machine.
(8) Wound up on this layer 10 is an electrically conductive, hydrophobic tape 11 as the layer 12, the tapes 11 overlapping.
(9) The material of the tape 11 therefore differs significantly from the materials of the layers 7, 10 and 13.
(10) On this layer 12 there is in turn a well-adhering, conductive winding tape for the formation of the outermost layer 13 (
(11) As a difference from
(12) The materials for the layer 12 are preferably identical to the layer 12.
(13) Shown in
(14) The materials of the layers 12 and 12 are preferably identical.
(15) Shown in
(16) In
(17) In the case of this variant 1.sup.VII, directly on the main insulation 7 there is electrically conductive, hydrophobic material of the tape 11, which forms the layer 12, 12 or 12, around which there is a well-adhering, electrically conductive and preferably outermost layer 13. This corresponds to
(18)
(19) The main insulation 7 has preferably been applied directly to the metallic bar 4 (
(20) The starting point in the case of
(21) Arranged in an overlapping manner on this layer 10 there is according to
(22) According to the embodiments of layer 12 in
(23) The two tapes (11, 11) may form one tape, i.e. they have a left-hand edge as one half of electrically conductive, well-adhering material and a right-hand edge as the other half of an electrically conductive, hydrophobic material.
(24) Similarly, the two tapes 11, 11 with the different materials may be arranged at a spacing 15 from one another (
(25) In
(26) The main insulation 7 has preferably been applied directly to the metallic bar 4.
(27) On the basis of
(28) The materials are preferably identical to those of
(29) Shown in
(30) As the outermost layer 13, there is a material of a well-adhering, conductive material.
(31) In the variant 1.sup.XV according to
(32)
(33) The main insulation 7 has preferably been applied directly to the metallic bar 4 (
(34)
(35) The materials are preferably identical.
(36) The main insulation 7 has preferably been applied directly to the metallic bar 4 (
(37) The selection of the number of layers 10, 12, 13 or the addition of the outermost layer 13 and/or an inner layer 10 with a material of the prior art depends on the area of use of the insulation, to be specific on the voltage used (more layers may be provided) and on the outer surroundings (choice of outermost layer).
(38) The invention comprises using a hydrophobic material, in particular PTFE (polytetrafluoroethylene) for the insulation systems 1, . . . , 1.sup.XIX, in the layers 12-12.sup.VI, in particular as outer corona protection, most particularly for such a high-voltage insulation system, the outer corona protection being composed electrically conductively in the form of layers.
(39) The high-voltage insulation system may be a simple system or a more complex system as in
(40) The invention is only explained on the basis of PTFE as an example of a hydrophobic material.
(41) Preferably, the hydrophobic material or PTFE will already be composed electrically conductively. The PTFE is then a composite material.
(42) This preferably takes place during the production of the material by means of mixing in graphite in particular, by means of extrusion during the production, with fibers then preferably being produced. However, subsequent electrical coating of a woven fabric, a fiber, a laid scrim or a film is also possible.
(43) The woven fabric is preferably formed from such fibers.
(44) This woven fabric is preferably present in tape form and for the application is wound onto the surface to be insulated (see
(45) Preferably, therefore, the outer corona protection comprises fibers or a woven fabric of PTFE, with electrically conductive material, preferably graphite, preferably also being present between the fabric-forming structures to achieve the electrical conductivity.
(46) Similarly, the tape (woven fabric, fiber, film, laid scrim) may be perforated.
(47) The insulation according to
(48) This yields the following advantages: Good impregnatability, since it is a porous woven fabric and can consequently be applied before the curing. Unchanged resistance before and after the impregnation, since the conductivity is attributable to fibers and not to particles as in the case of OCP tape. (These have a different resistance value in comparison with the initial value on account of the polymer matrix enveloping the particles after the impregnation).
(49) The objectives for OCP-G are: simplified application/cost reduction reduced layer thickness of the double OCP by a thinner alternative
(50) The approach for OCP-G is: To reduce the layer thickness by using a separating layer, which provides a defined mechanical decoupling without causing the electrical resistance to change. This is intended to be accomplished by replacing the double layer of laminated mica with hydrophobic types of woven fabric. This may in particular be a Teflon fabric. The structure is made up in the following way:
(51) An improvement is obtained according to the invention by the use of electrically conductive woven fabric 190 of PTFE, since this makes the interweaving of the outer corona protection tape 140 (
(52) The structure according to the invention of an innovative outer potential control for use in the GVPI process makes possible an insulation system that corresponds in its properties to the current state of the art but has the benefits of: establishing freedom from partial discharges after curing comparable loss factors after carrying out thermal cycling tests for accelerated thermomechanical loading comparable electrical endurances under operational voltage loading and with increased voltage loading comparable electrical endurances under operational voltage loading and with increased voltage loading after artificial aging in different thermal cycles.
(53) These investigations were carried out on generator winding bars with the following design: aluminum profiles with a length of about 1.5 m and dimensions of 1 cm5 cm number of layers of mica 10+1 layer of IPC for a nominal voltage of 13.8 kV number of generator winding bars per collective: 6.
(54) In this case, a reduction of the layer thickness of the current OCP of about 450 m to a value of about 100 m was made possible.