TRANSFORMER COOLING SYSTEM
20220285068 · 2022-09-08
Inventors
Cpc classification
H01F2027/328
ELECTRICITY
International classification
Abstract
A transformer cooling system, includes a dry transformer having a core including a leg, a winding body arranged around the leg, and a cooling channel extending in a direction of a longitudinal axis of the winding body. The cooling channel is disposed between an inner part of the winding body and an outer part of the winding body. The transformer cooling system further includes a housing for containing the dry transformer. The housing has an inlet portion for receiving air from outside the housing and an outlet portion for expelling air outside the housing. The transformer cooling system further includes a flow generating device arranged at the outlet portion and adapted to generate an under pressure for sucking the air from the inlet portion towards the flow generating device and to expel the air through the outlet portion outside the housing.
Claims
1. A transformer cooling system, comprising: a dry transformer, comprising: a core comprising a leg, a winding body arranged around the leg, a cooling channel extending in a direction of a longitudinal axis of the winding body, wherein the cooling channel is disposed between an inner part of the winding body and an outer part of the winding body, a housing for containing the dry transformer, the housing having an inlet portion for receiving air from outside the housing and an outlet portion for expelling air outside the housing, and a flow generating device arranged at the outlet portion and adapted to generate an under pressure for sucking the air from the inlet portion towards the flow generating device and to expel the air through the outlet portion outside the housing.
2. The transformer cooling system of claim 1, wherein the flow generating device comprises a first flow generating unit arranged at the outlet portion to force an air stream to flow from the inlet portion to the outlet portion of the housing through the cooling channel of the dry transformer.
3. The transformer cooling system of claim 2, wherein the first flow generating unit is an active flow generating unit working during operation in a sucking mode, in particular an air pump.
4. The transformer cooling system of claim 2, wherein the flow generating device comprises a second flow generating unit to create a further under pressure in the cooling channel of the dry transformer, the second flow generating unit being arranged upstream of the first flow generating unit in the direction of the air stream.
5. The transformer cooling system of claim 4, wherein the second flow generating unit is a pressure chamber located at one end of the winding body of the dry transformer and connected to the first flow generating unit through at least an outlet tube.
6. The transformer cooling system of claim 1, further comprising guidance plates arranged for guiding the air coming from the inlet portion along a close proximity of the winding body towards the outlet portion of the dry transformer.
7. The transformer cooling system of claim 1, wherein the cooling channel is arranged for guiding the air coming from the inlet portion longitudinally through the winding body.
8. The transformer cooling system of claim 1, wherein the winding body of the dry transformer comprises two winding body segments arranged separately in the longitudinal direction of the leg, wherein segment cooling channels are provided there between.
9. The transformer cooling system of claim 1, wherein the dry transformer comprises a two-limb transformer core surrounded on both of its limbs by hollow cylindrical winding elements.
10. The transformer cooling system of claim 1, wherein the inlet and outlet portions are provided on opposite sides of the transformer housing, the opposite sides being spaced apart from each other in the longitudinal direction of the leg.
11. The transformer cooling system of claim 1, wherein the flow generating device is arranged for generating the under pressure at an upstream side of the outlet portion.
12. The transformer cooling system of claim 1, wherein the flow generating device is arranged directly upstream of the outlet portion.
13. The transformer cooling system of claim 1, wherein the dry transformer is a three-phase transformer comprising three legs and three windings.
14. The transformer cooling system of claim 1, wherein the dry transformer is a traction transformer adapted for feeding a current to an electrical machine.
15. A transformer installation, comprising: a first dry transformer comprising: a first core comprising a first leg, a first winding body arranged around the first leg, a first cooling channel extending in a direction of a longitudinal axis of the first winding body, wherein the first cooling channel is disposed between an inner part of the first winding body and an outer part of the first winding body, a first housing for containing the first dry transformer, the first housing having a first inlet portion for receiving air from outside the housing and a first outlet portion for expelling air outside the first housing, and a first flow generating device arranged at the first outlet portion and adapted to generate an under pressure for sucking the air from the first inlet portion towards the first flow generating device and to expel the air through the first outlet portion outside the first housing; and a second dry transformer comprising: a second core comprising a second leg, a second winding body arranged around the second leg, a second cooling channel extending in a direction of a longitudinal axis of the second winding body, wherein the second cooling channel is disposed between an inner part of the second winding body and an outer part of the second winding body, a second housing for containing the second dry transformer, the second housing having a second inlet portion for receiving air from outside the housing and a second outlet portion for expelling air outside the second housing, and a second flow generating device arranged at the second outlet portion and adapted to generate an under pressure for sucking the air from the second inlet portion towards the second flow generating device and to expel the air through the second outlet portion outside the second housing; wherein the respective first and second housings of the first and second dry transformers are separate from each other.
16. A dry transformer comprising: a housing having an inlet portion for receiving air from outside the housing and an outlet portion for expelling air outside the housing; a core arranged within the housing; a winding body arranged around the core; a cooling channel extending in a direction of a longitudinal axis of the winding body, wherein the cooling channel is disposed within the winding body; and a flow generating device arranged within the housing at the outlet portion and adapted to generate an under pressure for sucking the air from the inlet portion towards the flow generating device and to expel the air through the outlet portion outside the housing.
17. The dry transformer of claim 16, wherein the flow generating device comprises a first flow generating unit arranged at the outlet portion to force an air stream to flow from the inlet portion to the outlet portion of the housing through the cooling channel of the dry transformer.
18. The dry transformer of claim 17, wherein the first flow generating unit is an active flow generating unit working during operation in a sucking mode, in particular an air pump.
19. The dry transformer of claim 17, wherein the flow generating device comprises a second flow generating unit to create a further under pressure in the cooling channel of the dry transformer, the second flow generating unit being arranged upstream of the first flow generating unit in the direction of the air stream.
20. The dry transformer of claim 16, further comprising guidance plates arranged for guiding the air coming from the inlet portion along a close proximity of the winding body towards the outlet portion of the dry transformer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] So that the manner in which the above recited features of the present disclosure can be understood in detail, a more particular description of the disclosure, briefly summarized above, may be had by reference to embodiments. The accompanying drawings relate to embodiments of the disclosure and are described in the following:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF EMBODIMENTS
[0026] Reference will now be made in detail to the various embodiments, one or more examples of which are illustrated in each figure. Each example is provided by way of explanation and is not meant as a limitation. For example, features illustrated or described as part of one embodiment can be used on or in conjunction with any other embodiment to yield yet a further embodiment. It is intended that the present disclosure includes such modifications and variations.
[0027] Within the following description of the drawings, the same reference numbers refer to the same or to similar components. Generally, only the differences with respect to the individual embodiments are described. Unless specified otherwise, the description of a part or aspect in one embodiment can apply to a corresponding part or aspect in another embodiment as well.
[0028] With exemplary reference to
[0029] The transformer cooling system 100 furthermore comprises a flow generating device 4 arranged at the outlet portion 24 and adapted to generate an under pressure for sucking the air from the inlet portion 22 towards the flow generating device 4 and to expel the air through the outlet portion 24 outside the housing 20. In particular, the flow generating device 4 is arranged for generating the under pressure at an upstream side of the outlet portion 24. More specifically, the flow generating device 4 is arranged directly upstream of the outlet portion 24.
[0030] By positioning the flow generating device 4 at the outlet portion 24 of the housing 20, it is possible to create an under pressure that forces an air flow from the inlet portion 22 to the outlet portion 24 of the housing 20. It is noted that generating under pressure at the outlet portion 24 requires less effort and then less power consumption compared to generating over pressure at the inlet portion 22 in order to achieve the same cooling efficiency. Therefore, a system configuration according to this embodiment may reduce the overall power consumption for cooling the entire system. Also, this configuration may reduce the overall costs of production since the expensive outlet grid can be eliminated.
[0031] According to some embodiments, which can be combined with other embodiments described herein, the flow generating device 4 comprises a first flow generating unit 41 arranged at the outlet portion 24 to force an air stream to flow from the inlet portion 22 to the outlet portion 24 of the housing 20 through the cooling channel 13 of the dry transformer 1. The first flow generating unit 41 can be an active flow generating unit working during operation in a sucking mode, in particular an air pump.
[0032] In this way, a simple and compact air pump at the outlet of the housing 20 can replace bulky ventilators at the entrance of the housing 20, thereby reducing the total volume of the cooling transformer system 100.
[0033] Referring to
[0034] According to some embodiments, which can be combined with other embodiments described herein, the cooling channel 13 is arranged for guiding the air coming from the inlet portion 22 longitudinally through the winding body 12. In particular, the air is guided along the longitudinal axis 14 of the winding body 12.
[0035] With exemplary reference to
[0036] It is noted that a combination of a first and second flow generating unit 41, 42, determines an under pressure at the outlet portion 24 able to force the air flow from the inlet to the outlet portion through the cooling channel 13 in a more efficient way. By such a configuration, the cooling process can effectively be carried out also without the necessity of guidance plates 44 and corresponding supporting elements and connections in proximity of the winding body 12, thereby reducing any possible flow turbulence determined by these elements.
[0037] According to some embodiments, which can be combined with other embodiments described herein, the second flow generating unit 42 is a pressure chamber located at one end of the winding body 12 of the dry transformer 1 and connected to the first flow generating unit 41 through at least an outlet tube 43. In particular, the air is directly sucked into the air pump 41 through the tube 43 and then blown directly into the environment. In this way, the air flows through the cooling channel 13 with a lower effort.
[0038]
[0039] Specifically, the dry transformer 1 comprises a two-limb transformer core 101 surrounded on both of its limbs by hollow cylindrical winding elements 12. As regards
[0040] As shown in
[0041] According to some embodiments, which can be combined with other embodiments described herein, the dry transformer 1 can be a traction transformer adapted for feeding a current to an electrical machine.
[0042] Additionally, as exemplarily shown in
[0043] With reference to
[0044] Additionally, a second flow generating device 4b is arranged in the second housing 52 for providing a cooling flow in the cooling channel 13 of the second dry transformer 1b. The second flow generating device 4b comprises a second air pump 41b and is connected to the outlet chamber 80, particularly via a pipe 45. In particular, the second flow generating device 4b can be any flow generating device as described herein e.g. with reference to
[0045]
[0046] With reference to
[0047] In view of the above, it is to be understood that embodiments of the present disclosure have one or more of the following advantages. Compared to the state of the art, the overall volume of the system can may be considerably reduced. In fact, the air pump for generating an under pressure at the outlet portion of the housing may be more compact than the ventilator apparatus required for generating an over pressure at the inlet portion of the housing. Also, by using the air pump instead of a ventilator apparatus, the power consumption may be strongly decreased, the cooling efficiency being the same. In addition, compared to the state of the art, some air guidance plates (incl. support structure, connections, cut-outs) can be eliminated. In fact, by combining two flow generating units at the outlet portion, such as an air pump and a pressure chamber connected to each other through outlet tubes, the cooled air can be directly guided to flow from the cooling channels directly to outside the housing. In addition, since the air pump is directly located at the outlet portion of the housing, some expensive outlet grid structures can be eliminated. This some may considerably reduce the production costs. The installation of transformers with shared elements, such as a common outlet chamber or a common flow generating unit may further reduce the size of transformer system.
[0048] While the foregoing is directed to embodiments, other and further embodiments may be devised without departing from the basic scope, and the scope is determined by the claims that follow.
REFERENCE NUMBERS
[0049] 1 dry transformer [0050] 1a, 1b first and second dry transformer [0051] 2 grid [0052] 3 ventilator [0053] 4 flow generating device [0054] 4a, 4b first and second flow generating device [0055] 10 core [0056] 11 legs [0057] 11a, 11b, 11c legs of three-phase transformer [0058] 12 winding body [0059] 12a, 12b, 12c windings of three-phase transformer [0060] 13 cooling channel [0061] 14 longitudinal axis [0062] 20 housing [0063] 22 inlet portion [0064] 24 outlet portion [0065] 30 space [0066] 41 first flow generating unit [0067] 42 second flow generating unit [0068] 43 outlet tube [0069] 44 guidance plates [0070] 45 pipe [0071] 51 first housing [0072] 52 second housing [0073] 80 outlet chamber [0074] 100, 100′ transformer cooling system [0075] 101 two limb core [0076] 121 inner part of the winding body [0077] 122 outer part of the winding body [0078] 123 winding body segment [0079] 131 cooling channel inlet [0080] 132 cooling channel outlet [0081] 133 air flow in the cooling channel [0082] 200 transformer installation [0083] d1 internal cooling channel diameter [0084] d2 outer cooling channel diameter