A WINDING, A TRANSFORMER AND A TRANSFORMER ARRANGEMENT
20250259784 · 2025-08-14
Inventors
Cpc classification
H01F27/323
ELECTRICITY
International classification
Abstract
The disclosure relates to a winding for a phase winding of a transformer. The winding includes a plurality of winding portions arranged along a coil axis. The plurality of winding portions include a first winding portion arranged at a first end of the winding and a second winding portion arranged at a second end of the winding. The winding further includes at least a third winding portion arranged along the coil axis between the first winding portion and the second winding portion. The first winding portion and the second winding portion have a first winding portion stiffness as seen along the coil axis and the at least third winding portion has a second winding portion stiffness as seen along said coil axis. The second winding portion stiffness is greater than the first winding portion stiffness. The third portion has a third portion center point on the coil axis, equidistantly spaced at a distance from the first winding portion and from the second winding portion, which third portion center point is located closer to the first end of the winding than the winding center point.
Claims
1. A winding for a phase winding of a transformer, said winding having coil turns around a coil axis, the winding having a first end and a second end and a winding center point on the coil axis between the first end and the second end, wherein the winding comprises a plurality of winding portions arranged along the coil axis said plurality of winding portions comprising a first winding portion arranged at the first end of the winding and a second winding portion arranged at the second end of the winding, the winding further comprising at least a third winding portion arranged along the coil axis between the first winding portion and the second winding portion, wherein the first winding portion and the second winding portion have a first winding portion stiffness as seen along said coil axis and the at least third winding portion has a second winding portion stiffness as seen along said coil axis, and wherein the second winding portion stiffness is greater than the first winding portion stiffness, and wherein the third portion has a third portion center point on the coil axis, equidistantly spaced at a distance from the first winding portion and from the second winding portion, which third portion center point is located closer to the first end of the winding than the winding center point.
2. The winding according to claim 1, wherein the winding is provided with a plurality of spacers between the coil turns, and wherein the first winding portion and the second winding portion are provided with at least one first type of spacers having at least one first modulus of elasticity and the third winding portion is provided with at least one second type of spacers having at least one second modulus of elasticity, and wherein each of the at least one second modulus of elasticity is greater than each of the at least one first modulus of elasticity.
3. The winding according to claim 1, wherein the third winding portion comprises a plurality of sub-portions arranged along the coil axis, each sub-portion having a sub-portion stiffness as seen along the coil axis, wherein each sub-portion comprises one second type of spacers and wherein each sub-portion stiffness is greater than the first winding portion stiffness.
4. The winding according to claim 3, wherein a distribution of the plurality of sub-portions forms an aggregate winding portion stiffness, and wherein the plurality of sub-portions is configured such that the aggregate winding portion stiffness of the third winding portion located on a first side of the winding center point as seen along the coil axis is greater than an aggregate winding portion stiffness of the third winding portion located on a second side of the winding center point as seen along the coil axis.
5. The winding according to claim 4, wherein the first side of the winding center point is located closer to the first end than to the second end of the winding.
6. The winding according to claim 2, wherein the modulus of elasticity of the first type of spacers is 0.1 GPa-3 GPa, and wherein the modulus of elasticity of the at least one second type of spacers is more than 50 GPa.
7. The winding according to claim 6, wherein a material of the first type of spacers is pressboard and wherein a material of the at least one second type of spacers is steatite.
8. The winding according to claim 1, wherein the first end is an upper end of the winding when installed in a transformer and the second end is a lower end of the winding when installed in a transformer.
9. The winding according to claim 1, wherein the first end is a lower end of the winding when installed in a transformer and the second end is an upper end of the winding when installed in a transformer.
10. A transformer comprising at least one winding according to claim 1.
11. The transformer according to claim 10, comprising at least one phase winding having the at least one winding.
12. A transformer arrangement comprising a transformer according to claim 10, the transformer being immersed in an electrically insulating medium inside a transformer tank.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] Further objects and advantages of, and features of the disclosure will be apparent from the following description of one or more embodiments, with reference to the appended drawings, where:
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DETAILED DESCRIPTION
[0047] The present disclosure is developed in more detail below referring to the appended drawings which show examples of embodiments. The disclosure should not be viewed as limited to the described examples of embodiments; instead, it is defined by the appended patent claims. Like numbers refer to like elements throughout the description.
[0048]
[0049] Symmetric movements (piston-like displacements) of the transformer 20 (
[0050]
[0051] The piston-like movement of symmetric vibrations leads to an oscillating compression and expansion of the windings, especially along a coil axis z.
[0052]
[0053] The winding 110 comprises a plurality of winding portions 116 arranged along the coil axis z. The plurality of winding portions 116 comprise a first winding portion 116a arranged at the first end 110a of the winding 110 and a second winding portion 116b arranged at the second end 110b of the winding 110. The winding 110 further comprises at least a third winding portion 116c arranged along the coil axis z between the first winding portion 116a and the second winding portion 116b. The first winding portion 116a and the second winding portion 116b have a first winding portion stiffness as seen along the coil axis z and the at least third winding portion 116c has a second winding portion stiffness as seen along the coil axis z. The second winding portion stiffness is greater than the first winding portion stiffness.
[0054] The first winding portion 116a and the second winding portion 116b sandwich the third winding portion 116c between them. Conventional windings, such as illustrated in
[0055] Since it has been discovered that a middle part of the winding 110 expands and contracts significantly more than other parts of the winding 110 due to symmetric vibrations at the operating frequency, arranging the middle part of the winding 110 with a greater stiffness reduces/dampens the movement of the winding 110 and thereby reduces noise emissions. The greater stiffness of the middle part is achieved by the third winding portion 116c which has the second winding portion stiffness, which is greater than the first winding portion stiffness of the first winding portion 116a and the second winding portion 116b.
[0056] The third portion 116c has a third portion center point C3 on the coil axis z, equidistantly spaced at a distance d from the first winding portion 116a and from the second winding portion 116b. The third portion center point C3 may, as illustrated in
[0057] Depending on the construction and design of a transformer and how phase windings are mounted and assembled with each other, the largest movements of the winding 110 may arise closer to the first end 110a than to the second end 110b, i.e., not exactly at the winding center point C. It is therefore advantageous to make the winding 110 stiffer in a portion closer to the first end 110a than in the axial center of the winding C. Accordingly, the third winding portion 116c, which is stiffer than the first winding portion 116a and the second winding portion 116b, is arranged closer to the first end 110a than to the second end 110b. It follows that an axial extension a1 of the first winding portion 116a may be shorter than an axial extension a2 of the second winding portion 116b, as exemplified in
[0058] It should herein be understood that the first end 110a may be an upper end of the winding 110 when installed in a transformer 100 and the second end 110b may be a lower end of the winding 110 when installed in a transformer 100, or vice versa. Thus, in operation, the largest movements of the vibrating winding 110 occur somewhat closer to the upper end 110a of the winding 110 than to the lower end 110b. Alternatively, the largest movements of the vibrating winding 110 may occur somewhat closer to the lower end 110a of the winding 110 than to the upper end 110b. The illustrated exemplary embodiments show the first end 110a as the upper end and the second end 110b as the lower end.
[0059] The winding 110 is provided with a plurality of spacers 130 between the coil turns 120. The first winding portion 116a and the second winding portion 116b are provided with at least one first type of spacers 130a, as exemplified by the detailed view in
[0060] The spacers 130 are conventionally distributed along the axial length of the winding 110, between the coil turns 120, so as to separate and electrically insulate the coil turns 120 of the winding 110 from each other. The elasticity/stiffness of the spacers 130 affect the elasticity/stiffness of the winding 110. The stiffness of a winding portion 116 may thus be adapted and configured using spacers 130 of different kinds. According to the present disclosure, a stiffer second type of spacers 130b, having a greater modulus of elasticity, is arranged between the coil turns 120 of the third winding portion 116c, as compared to the first type of spacers 130a of the first winding portion 116a and of the second winding portion 116b. Thereby, the second winding portion stiffness is greater than the first winding portion stiffness.
[0061] In another embodiment, exemplified in
[0062] The second type of spacers 130b are thus characterized in that they are all of greater stiffness than each of the at least one first type of spacers 130a. The second type of spacers 130b may comprise different spacers 130b, such that each sub-portion 116c1, . . . 116cn has spacers 130b of a respective stiffness (modulus of elasticity). The second type of spacers 130b may for instance comprise two kinds of spacers 130b. Thereby, the third winding portion 116c may for instance have two different kinds of sub-portions 116c1, 116c2 which are arranged along the coil axis, for instance arranging a plurality of a first sub-portion in an alternating configuration with a plurality of second sub-portions other. Using the example of two different sub-portions, it is also conceivable to arrange a first sub-portion 116c1 on a first side of the third portion center point C3 and to arrange a second sub-portion 116c2 on a second side of the third portion center point C3.
[0063] It is also conceivable to configure the first winding portion 116a and the second winding portion 116b with first sub-portions and second sub-portions, respectively (not shown). Each first sub-portion and each second sub-portion would then comprise one first type of spacers 130a. Each first and second sub-portion stiffness would be configured to be lesser than each of the sub-portion portion stiffnesses of the third winding portion 116c. Stiffer first sub-portions and second sub-portions would then be arranged closer to the third winding portion 116c than less stiff sub-portions and second sub-portions, such that the first winding portion 116a and the second winding portion 116b exhibit a higher stiffness near the third winding portion 116c than farther away from the third winding portion 116c.
[0064] A distribution of the plurality of sub-portions 116c1, . . . 116cn of the third winding portion 116c forms an aggregate winding portion stiffness of the third winding portion 116c. The plurality of sub-portions 116c1, . . . 116cn may be configured such that the aggregate winding portion stiffness of the third winding portion 116c, located on a first side of the winding center point C as seen along the coil axis z, is greater than an aggregate winding portion stiffness of the third winding portion 116c located on a second side of the winding center point C as seen along the coil axis z.
[0065] The aggregate stiffness of the third winding portion 116c along the coil axis may thus be configured by arranging the sub-portions 116c1, . . . 116cn in a pre-determined manner. By arranging one or more sub-portions 116c1, . . . 116cn having a greater stiffness on the first side of the winding center point C and arranging one or more sub-portions 116c1, . . . 116cn having a lower stiffness on the second side of the winding center point C it is ensured that the third winding portion 116c is stiffer closer to the first end 110a than to the second end 110b. Thereby, the large movements of the winding 110 may be dampened more efficiently.
[0066] It should herein be understood that the first side of the winding center point C is located closer to the first end 110a than to the second end 110b of the winding 110.
[0067] The spacers 130 may be selected such that the modulus of elasticity of the first type of spacers 130a is 0.1 GPa-3 GPa, preferably 0.5 GPa-1.5 GPa, and most preferably 0.9 GPa-1.1 GPa. The modulus of elasticity of the at least one second type of spacers 130b may be selected to be more than 50 GPa, preferably more than 80 GPa, and most preferably more than 105 GPa. In one example, the material of the first type of spacers 130a may be selected to be pressboard and a material of the at least one second type of spacers 130b may be selected to be steatite.
[0068] Conventional spacers 130 are usually made of pressboard which has a modulus of elasticity of around 1 GPa. It can be seen that the stiffnesses (moduli of elasticity) suggested for the second type of spacers 130b is much higher than the first type of spacers 130a. Steatite, which has a modulus of elasticity of around 110 GPa, has been shown to have a particularly large damping effect on the noise generation in combination with the first winding portion 116a and the second winding portion 116b being provided with conventional pressboard spacers.
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