TRANSFORMER WITH AIR-FLOW RE-DIRECTOR
20240006111 ยท 2024-01-04
Inventors
Cpc classification
International classification
Abstract
A transformer including a core, a plurality of winding coils arranged in proximity of the core to inductively couple to the core, a plurality of air-gaps to allow air flow in the proximity of at least one of the core and winding coils, and an air-flow re-director including a plurality of independently adjustable surfaces angled to re-direct a flow of a portion of a cooling air received into the re-director into at least one pre-determined air-gap.
Claims
1. A transformer comprising: a core; a plurality of winding coils arranged in proximity of the core to inductively couple to the core; a plurality of air-gaps to allow air flow in the proximity of at least one of the core and winding coils; and an air-flow re-director including a plurality of independently adjustable surfaces angled to re-direct a flow of a portion of a cooling air received into the re-director into at least one pre-determined air-gap.
2. The transformer of claim 1, wherein at least two of the independently adjustable surfaces are angled differently from each other to direct flows from different portions of the received cooling air to different pre-determined air-gaps.
3. The transformer of claim 1, the air-flow re-director further comprising: a support structure wherein the independently adjustable surfaces are adjustably attached to the support structure.
4. The transformer of claim 1, wherein the air-flow re-director is coupled to a fan system that provides the cooling air.
5. The transformer of claim 1, wherein the air-flow re-director is integrally formed with at least a portion of a fan system that provides the cooling air.
6. The transformer of claim 4, wherein the fan system comprises an axial fan system.
7. The transformer of claim 1, wherein at least one of the winding coils is configured to operate at a different voltage than the other winding coils.
8. The transformer of claim 1, wherein at least one air-gap comprises an external surface of a coil positioned farthest from the core.
9. The transformer of claim 1, wherein the air-flow re-director is positioned at a predetermined dielectric distance from the core and winding coils.
10. The transformer of claim 1, wherein the air-flow re-director is of a substantially dielectric composition.
11. The transformer of claim 1, wherein the air-gaps are defined by at least one of the core and winding coils.
12. The transformer of claim 1, wherein the transformer comprises a dry-type transformer.
13. The transformer of claim 3, the air-flow re-director further comprising: an air-duct to receive the cooling air and to direct the cooling air to the independently adjustable surfaces.
14. An air-flow re-director comprising a plurality of independently adjustable surfaces angled to re-direct a flow of a portion of a cooling air received into the re-director into at least one pre-determined air-gap of a plurality of air-gaps proximate to at least one of a core and a winding coil of a transformer.
15. The air-flow re-director of claim 14, wherein at least two of the independently adjustable surfaces are angled differently from each other to direct flows from different portions of the received cooling air to different pre-determined air-gaps.
16. The air-flow re-director of claim 14, the air-flow re-director further comprising: a support structure wherein the independently adjustable surfaces are adjustably attached to the support structure.
17. The air-flow re-director of claim 14, wherein the air-flow re-director is coupled to a fan system that provides the cooling air.
18. The air-flow re-director of claim 17, wherein the fan system comprises an axial fan system.
19. The air-flow re-director of claim 14, wherein the air-flow re-director is integrally formed with at least a portion of a fan system that provides the cooling air.
20. A method comprising: disposing an air-flow re-director proximate to a transformer comprising a core and a plurality of winding coils arranged in proximity of the core to inductively couple to the core; and angling a plurality of independently adjustable surfaces of the air-flow re-director to re-direct a flow of a portion of a cooling air received into the re-director into at least one pre-determined air-gap of a plurality of air-gaps to allow air flow in the proximity of at least one of the core and winding coils.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] Aspects of the present disclosure are illustrated by way of example. In the accompanying figures, like reference numbers indicate similar elements.
[0009]
[0010]
[0011]
[0012]
DETAILED DESCRIPTION
[0013] Examples are described herein in the context of an air-cooled dry-type transformer. Exemplary embodiments provided in the following description are illustrative only and not intended to limit the scope of the present disclosure. Reference will now be made in detail to implementations of examples as illustrated in the accompanying drawings. The same reference indicators will be used throughout the drawings and the following description to refer to the same or like items.
[0014] In the interest of clarity, not all of the routine features of the examples described herein are shown and described. It will, of course, be appreciated that in any such actual implementation, numerous implementation-specific details may nevertheless exist in order to achieve goals such as compliance with application- and business-related constraints, and that these specific goals can vary from one implementation to another.
[0015]
[0016] As further shown in
[0017] As previously mentioned, currently centrifugal fans, such as 16b shown in
[0018] To address the above, in the exemplary embodiments of the disclosure, transformer 10a includes an air-flow re-director 19 with independently adjustable surfaces, such as 21-15 as later shown in
[0019]
[0020] In an exemplary embodiment, at least two of the independently adjustable surfaces 21-25 are angled differently from each other to direct flows from different portions of the received cooling air to different pre-determined air-gaps 15a-e. For example, independently adjustable surface 21 is set at an angle which redirects a received air-flow portion 29a to a new direction shown symbolically by arrow 21c. In another example, independently adjustable surface 24 is set at an angle which redirects a received air-flow portion 29c to a new direction shown symbolically by arrow 24c. As described below and in great detail in conjunction with
[0021] In an exemplary embodiment, air-flow re-director 19 includes a support structure 20, such as a frame, to which the independently adjustable surfaces 21-25 are adjustably attached, or with which they are integrally formed. In an exemplary embodiment, one or more of the independently adjustable surfaces 21-25 may be rotatably attached to the support structure 20 at rotating points 21a-25a and 21b-25b, such as via a screw or a controllable rotate shaft or other rotatably connections, or a guide railing (not shown) or other adjusting methods. The rotatable connection enables each of independently adjustable surfaces 21-25 to be moved along a wide range of angled settings, such as symbolically shown by arrow 27. In another exemplary embodiment, surfaces 21-25 are integrally formed with support structures 20 at predetermined angles, such as angles and for directing air toward one or more pre-determined air-gaps 15a-e.
[0022] The support structure 20 may also function as an air-guide to reduce or eliminate the outwardly divergent direction of the air flow, such as shown symbolically by arrows 17a and 17b in
[0023] The example support structure 20 in
[0024] In an exemplary embodiment, the air-flow re-director 19 is coupled via the support structure 20, as shown symbolically by arrows 28a and 28b, to a fan system (not shown) that provides the cooling air 29. The fan system may include an air duct 27, or be connected to the air-flow re-director 19 via an air duct 27, that provides the cooling air 29. In another exemplary embodiment, the air-flow re-director 19 is integrally formed with at least a portion of the fan system, such as with the centrifugal fan 16b.
[0025] The operation of the air-flow redirector 19 will now be explained in greater detail in conjunction with
[0026] As shown in the exemplary setting of
[0027] Likewise, other independently adjustable surfaces, such as 22, 23 and 25, can each be set at angles so to redirect their air flow portions to different air-gaps or sub-portions thereof. In the exemplary setting of
[0028] In an exemplary embodiment, more than one independently adjustable surface can be directed to any air-gap(s) or sub-portion(s) thereof based on the cooling needs of each air-gap or sub-portion(s) thereof. For example more than one independently adjustable surface can be angled so to redirect air-flow to air-gap(s) or sub-portion(s) thereof corresponding to winding coils 12 or 13, for cooling of high-voltage or low-voltage coil windings, respectively.
[0029] In an exemplary embodiment, air-flow portions are directed to their pre-determined air-gap(s) or sub-portion(s) at substantially the same angle as their corresponding redirecting adjustable surface, such as at angle of adjustable surface 21, or at an angle ranging between adjustable surfaces adjacent to an air flow portion, such as air-flow portion 24c being redirected at an angle (e.g. an average angle) between angles and of adjacent adjustable surfaces 23 and 24.
[0030] In an exemplary embodiment, air-flow re-director 19 is of a dielectric composition (e.g. plastic) and positioned at a predetermined dielectric distance dl (e.g. 4-20 cm) from the housing 14, as shown in
[0031]
[0032] The above-described exemplary embodiments enables a more efficient providing and distribution of cooling-air to the air-gaps in a transformer which helps with better reduction in temperature rise of the transformer resulting in improvement to the reliability of the transformer, heat transfer efficiency, and material cost savings. amongst other benefits.
[0033] The previous description is provided to enable any person skilled in the art to practice the various aspects described herein. Various modifications to these aspects will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other aspects.
[0034] The foregoing description has been presented only for the purpose of illustration and description and is not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Numerous modifications and adaptations thereof will be apparent to those skilled in the art without departing from the spirit and scope of the disclosure.
[0035] Reference herein to an example or implementation means that a particular feature, structure, operation, or other characteristic described in connection with the example may be included in at least one implementation of the disclosure. The disclosure is not restricted to the particular examples or implementations described as such. The appearance of the phrases in one example, in an example, in one implementation, or in an implementation, or variations of the same in various places in the specification does not necessarily refer to the same example or implementation. Any particular feature, structure, operation, or other characteristic described in this specification in relation to one example or implementation may be combined with other features, structures, operations, or other characteristics described in respect of any other example or implementation.
[0036] Use herein of the word or is intended to cover inclusive and exclusive OR conditions. In other words, A or B or C includes any or all of the following alternative combinations as appropriate for a particular usage: A alone; B alone; C alone; A and B only; A and C only; B and C only; and A and B and C.