INTERNAL SUPPORTS FOR SHELL FORM TRANSFORMERS
20220013273 · 2022-01-13
Assignee
Inventors
Cpc classification
International classification
Abstract
A transformer tank for a shell form transformer, for housing an active part of a three-phase transformer including transformer phases is provided. The tank includes a bottom tank part and a medium tank part comprising bottom plate and walls, a cover plate, reinforcing beams joined to the walls, interphase plates and stiffening supports for strengthening the cover plate. The interphase plates are to be arranged in a lower space of the tank, between adjacent transformer phases, extending from one wall to an opposite wall of the tank and coupled to the reinforcing beams. Each stiffening support is to be coupled to an interphase plate and extends in an upper space of the tank between the interphase plate and the cover plate, to cooperate with the cover plate. A three-phase shell form transformer and a method to assemble the transformer are also provided.
Claims
1. A transformer tank for a shell form transformer, for housing an active part of the three-phase transformer comprising transformer phases, the tank comprising: a bottom tank part and a medium tank part, wherein the bottom tank part and medium tank part comprise a bottom plate and walls; a cover plate; reinforcing beams joined to the walls; interphase plates to be arranged in a lower space of the tank, between adjacent transformer phases, extending from one wall to an opposite wall of the tank and coupled to the reinforcing beams, and stiffening supports for strengthening the cover plate, wherein each support is to be coupled to an interphase plate and extend in an upper space of the tank between the interphase plate and the cover plate, to cooperate with the cover plate.
2. The transformer tank according to claim 1, wherein the stiffening support comprises an elongated shape having a proximal end to be coupled to an interphase plate, and a distal end to be arranged to cooperate with the cover plate.
3. The transformer tank according to claim 1, wherein the stiffening support is a hollow support.
4. The transformer tank according to claim 1, wherein the stiffening support comprises a conduit for circulating a coolant.
5. The transformer tank according to claim 1, wherein the stiffening support comprises a first part to be coupled to an interphase plate and a second part to be arranged so as to cooperate with the cover plate.
6. The transformer tank according to claim 5, wherein the stiffening support further comprises complementary couplings to couple the first part and the second part together.
7. The transformer tank according to claim 1, the stiffening support further comprising a threaded stud in the proximal end to be coupled to the interphase plate.
8. The transformer tank according to claim 1, wherein the proximal end of the stiffening support is rounded for minimizing dielectric stress.
9. The transformer tank according to claim 1, further comprising a linking piece for cooperating with the stiffening support and a linking housing arranged on the cover plate.
10. The transformer tank according to claim 9, wherein the linking piece is a T-shaped piece or an elongated rod.
11. The transformer tank according to claim 1, wherein the cover plate has no external reinforcing ribs.
12. The transformer tank according to claim 1, wherein the tank comprises at least two stiffening supports attached between each interphase plate and the cover.
13. The transformer tank according to claim 1, further comprising eccentrics to be arranged between the linking housing and the stiffening support.
14. A three-phase shell form transformer comprising a transformer tank according to claim 1.
15. A method for assembling a transformer according claim 1, comprising: fixing the proximal end of each stiffening support to an interphase plate; closing the tank with the cover plate such that the distal end of each stiffening support is introduced through an opening of the bottom wall of a linking housing; inserting a linking piece at the distal end of each stiffening support; closing the removable cover of each linking housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Particular embodiments of the present device will be described in the following by way of non-limiting examples, with reference to the appended drawings, in which:
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION
[0030]
[0031] The tank 100A, 100B may comprise a bottom tank part 104 and a medium tank part 103A, 103B. The bottom tank part 104 and medium tank part 103A, 103B may comprise a bottom plate 130 and walls 120 thereby defining a hollow space or cavity. The tank 100A, 1008 may thus comprise a bottom plate 130 and four walls 120 which may be joined together, e.g. by welding or by any other suitable method.
[0032] In an example, the tank walls may comprise different lengths, that is, the tank may comprise two short walls or side walls, and two longer walls or front walls, thereby forming a rectangular cross-section tank.
[0033] Additionally, the tank 100A, 1008 may comprise reinforcing beams 160 which may be joined e.g. by welding, to the walls 120 of the tank for example at the medium tank part. The reinforcing beams 160 may be placed all around the hollow space thereby creating a ring-shape structure and may provide stiffness to the tank and also aid withstanding short-circuits loads.
[0034] In an example, the reinforcing beams 160 may comprise side beams which may be attached to the side walls of the tank, i.e. to the short walls, and main beams that may be attached to the front walls of the tank i.e. to the longer walls. The side beams may thus be shorter that main beams.
[0035] The tank 100A, 1008 may further comprise a cover plate 110A, 100B to be arranged on top of the walls 120 thereby closing the tank. The cover plate 110A, 1108 may be an independent part which may be separately manufactured and handled, and which may be joined, e.g. welded, to the structure formed by the walls 120 and the bottom plate 130 at a later stage. As a consequence, the tank 100A, 1008 may be transported partly disassembled to a predetermined location. The active part of the transformer i.e. the phases and the magnetic circuit, may be loaded and fitted into the bottom tank part. The medium tank part may afterwards be mounted over the active part and then the medium and bottom tank parts may be joined together e.g. by welding. The reinforcing beams may also be joined after loading the active part of the transformer. These operations may be done in factory. On site, the cover plate may be joined to the walls e.g. by welding, by screwing or by any other suitable method. Then, the input/output connections may be prepared, the tank may be filled with coolant and vacuum may be applied.
[0036] The cover plate 110A, 110B may comprise a plurality of openings and/or plugs (not shown) e.g. for inputting/outputting the generated electrical current, input/outputs for injecting/extracting the coolant, etc. Additionally, the cover plate 110A, 110B may comprise linking housings 140 which may comprise side walls 141, a bottom wall 142 comprising an opening and a detachable closure 143, thereby defining a cavity (see
[0037] The cover plate 110A, 100B may be made of a material, e.g. carbon steel or other non-metallic material, capable of safely closing the tank and withstanding the work pressures in the tank but flexible enough to bend under a certain stress. Besides, the cover plate 110A, 110B may have a predefined thickness e.g. about 2-3.5 cm, which may avoid the cover plate to bend under its own weight and which may be thick enough to enable the cover plate to withstand the normal operating overpressures and vacuum without breaking.
[0038] In an example, the walls 120, the bottom wall 130, the reinforcing beams and the cover plate 110 of the tank may be made of the same material e.g. carbon steel.
[0039] In some examples, such as the one of
[0040] The tank 100A, 100B may further comprise interphase plates 150 that may be arranged in a lower space extending from one wall to an opposite wall 120 of the tank 100A, 100B. In examples wherein the tank walls comprise side walls and front walls, the interphase plates 150 may extend from one front wall of the tank to an opposite front wall.
[0041] The interphase plates 150 may be joined to the reinforcing beams 160 e.g. by welding. In examples wherein reinforcing beams comprise main beams and side beams, the interphase plates 150 may be joined to main beams.
[0042] When in use, i.e. once transformer phases are loaded, each interphase plate 150 would be arranged between two adjacent transformer phases 201, to which each interphase plate may subsequently be attached e.g. welded to the main beams. In an example, the interphase plates 150 may be flat and/or substantially rectangular sheets which may be made of metal, e.g. a carbon steel. The interphase plates 150 provide stiffness to the tank and also help to withstand short-circuit loads.
[0043] In an example, the interphase plates 150 may comprise a magnetic shielding 153 (see
[0044] The tank 100A, 100B of any of the examples of
[0045] In an example, the proximal end 320, 420 may be rounded to minimize the dielectric stress at the coupling between the stiffening support 300, 400 and the interphase plate 150.
[0046] The stiffening supports 300, 400 may be arranged in an upper space of the tank between an interphase plate and the cover plate, and aligned with a linking housing 140 of the cover plate, whereby the stiffening support may be arranged to cooperate with the cover plate. The stiffening supports 300, 400 may be inserted into the cavity of the linking housing through the opening at the bottom wall 142 (see
[0047]
[0048] The linking housing 140 of the cover plate 110A, 110B may comprise a removable closure 143, side walls 141 and a bottom wall 142 thereby forming a cavity. The linking housing may comprise an adjusting element 700 to correct deviations of the stiffening support.
[0049] The stiffening supports 300, 400 may comprise a recess 331, 431 in the distal end (see
[0050]
[0051] In general, the tank 100A, 100B is transported from a factory to an operating location e.g. by truck. However, and subjected to e.g. local traffic restrictions and/or the capacity of the truck, there may be cases in which the dimensions of the tank are not suitable to transport the entire (assembled) tank e.g. because it exceeds the maximum allowed size.
[0052] For such cases, in order to comply with transport requirements, the cover plate may be a U-shaped plate 110B, such as in
[0053] Before being loaded in a truck, the phases 201 and the magnetic circuit of the transformer may be stacked into bottom tank part 104. Then, the medium tank part 103B with the reinforcing beams and the interphase plates may be mounted and joined to the bottom part. The assembly may then be filled with coolant and subject to vacuum after being closed with a transport cover plate (not shown), and transported to the operating location. Once the tank is on site, the transport cover plate may be removed and the U-shaped cover plate 110B may be attached, e.g. by welding, thereby assembling the whole tank 100B.
[0054] During transport, the vacuum and/or the standard overpressure caused by the coolant may cause stresses on the cover plate which may therefore need to be strengthened in order to avoid deformations. Similarly, once the transport cover plate is removed and the cover plate arranged, the stresses caused at least by the operating pressures, i.e. vacuum and coolant overpressure, may also need to be withstood. An embodiment of the stiffening support according to the present disclosure may be used for these purposes.
[0055] In an example, the stiffening support may be divided a first part and a second part. The first part may have a length suitable for being arranged between an interphase plate and the transport cover plate during transport, and a second part to be coupled to the first part, that once assembled together may form a stiffening support to be arranged between an interphase plate and the cover plate.
[0056] The example of
[0057] In addition, the first part 401 of the stiffening support 400 may comprise a coupling element 440, e.g. a threaded stud, for fixing the first part to an interphase plate 150 e.g. via a threaded hole. Similarly to the example of
[0058] The length of the first part 401 of the stiffening support 400 may therefore correspond to the distance from the interphase plate to the transport cover plate. The second part 402 may have length that enables, once both parts 401, 402 are connected together, to obtain a stiffening support 400 having a length that corresponds to the distance from interphase plates 150 to the flat portion 111B of the cover plate 110B.
[0059] By using a stiffening support comprising a first part and a second part, the manufacturing costs and also the assembling time are reduced, as there may not need to manufacture and/or replace two stiffening supports of different lengths.
[0060] The number of stiffening supports 300, 400 that may be arranged in a tank may vary e.g. depending on the dimensions of the cover plate, i.e. a greater surface may require a higher number of stiffening supports.
[0061] In an example, each interphase plate 150 may comprise a stiffening support 300, 400 arranged therein. In such example, the stiffening supports may be substantially centred between the tank walls e.g. centred between side walls in examples comprising side and front walls.
[0062] In some examples, each interphase plate 150 of a tank may comprise two or more stiffening supports.
[0063] The tank 100 may further comprise independent and separate linking pieces 500, 600. Each linking piece may be coupled in a recess 331, 431 of the distal end 330, 430 of a stiffening support 300, 400 thereby completing an inner stiffening structure. Such an inner stiffening structure may comprise an interphase plate, a stiffening support and a linking piece, and may provide more strength against deflection of the cover plate e.g. in case of overpressure or operating vacuum. Depending on the form of the linking pieces 500, 600 the conditions under which the linking pieces reinforce the cover plate may differ.
[0064] In an example (see
[0065] In another example (
[0066]
[0067] In the example, the elongated portion 501 of the T-shaped piece 500 may be coupled to the recess 331, 431 of the stiffening support 300, 400, e.g. by screwing, and the head 502 of the T-shaped piece may rest on the adjusting element 700. The T-shaped piece may therefore be fixedly coupled to the stiffening support.
[0068] In addition, a layer or a plurality of layers e.g. made of corrugated cardboard or pressboard 560 may be added between the removable closure 143 of the linking housing 140 and the head 502 of T-shaped piece 500 to snuggly fit the T-shaped linking piece inside the linking housing. By snuggly fitting the T-shaped linking piece, a direct contact between the head 502 and the removable closure 143 may be enabled which may reduce the impact when both surfaces come into contact.
[0069] Under operating vacuum, the cover plate 110 tends to bend inwardly. An inwardly deformation may cause the removable closure 143 of the linking housing to press against the corrugated cardboard 560 and thus, the head 501 of the linking piece. As the head of the linking piece 500 may be in direct contact with the adjusting element 700 and fixed to the stiffening support, the stress may be shifted from the cover plate to the stiffening support. Further deformation of the cover plate 110 may therefore be prevented.
[0070] In case of normal overpressures, the cover plate 110 tends to deform outwardly. The adjusting element 700 would then be pushed upwardly by the bottom wall 142 which may cause the adjusting element 700 to push the head of the linking piece 500. As the linking piece 500 may be fixed to the stiffening support, the loads of the cover plate 110 may therefore be shifted to the stiffening support 300, 400 which may withstand the stress and may thus avoid a further deformation of the cover plate 110.
[0071] In the example of
[0072] In the example, a layer or a plurality of layers e.g. made of corrugated cardboard or pressboard 660 may be added between the removable closure 143 of the linking housing 140 and elongated piece 600 the impact when both surfaces come into contact may thus be reduced.
[0073] Under operating vacuum, the cover plate 110 tends to inwardly deform. The removable closure 143 of the linking housing would therefore come into contact with the linking piece 600 which would be pushed against the stiffening support. In examples comprising a plurality of layers of corrugated cardboard or pressboard, the cover plate 143 would firstly contact the plurality of layers. As a result, the stress of the cover plate may be shifted to the stiffening support which would withstand the loads and so, a further inward deformation of the cover plate 110 may consequently be avoided.
[0074] In the event of overpressure, and contrary to the example of
[0075] In an example, the tank 100 may further comprise a reinforcing structure (not shown) e.g. a reinforcing cincture, a plurality of reinforcing beams, discrete C-shaped clamps, etc., on the external surface e.g. of the walls, to further reinforce the tank.
[0076]
[0077] Firstly, the proximal end of each stiffening support may be fixed, in block 801, to an interphase plate e.g. by a coupling element. In examples where the stiffening support is divided in a first and a second part, the method may further comprise joining the second part to the first part thereby assembling a stiffening support, after fixing the first part to the interphase plate.
[0078] The tank may afterwards be closed by arranging and fixing, e.g. by welding, the cover plate on the walls. The tank may be closed, in block 802, with the cover plate such that the distal end of each stiffening support may be introduced through an opening of the bottom wall of a linking housing. The stiffening support would thereby be arranged inside the cavity of the linking housing so as to cooperate with the cover plate.
[0079] In an example, an adjusting piece, e.g. a pair of assembled eccentrics, may be coupled around the stiffening support. The adjusting piece, e.g. the eccentrics, may be manipulated so as to correctly adjust the position of the stiffening supports with respect to the linking housings i.e. to correct any deviation. A linking piece may then be inserted, in block 803, in distal end of each stiffening support e.g. in a recess. In some examples, the linking piece may also be fixed to the support e.g. by screwing it. The removable closure of each linking housing may, in block 804, be closed e.g. by screwing it to the side walls of the linking housing.
[0080] Although only a number of particular embodiments and examples have been disclosed herein, it will be understood by those skilled in the art that other alternative embodiments and/or uses of the disclosed innovation and obvious modifications and equivalents thereof are possible. Furthermore, the present disclosure covers all possible combinations of the particular embodiments described. The scope of the present disclosure should not be limited by particular embodiments, but should be determined only by a fair reading of the claims that follow.