The present invention relates generally to electronics cooling, and more particularly to air cooling for a transformer assembly.
Some electronic components in aircraft, including transformers in motor controllers, are commonly located in housings mounted on fan ducts. Transformers in such settings are conventionally encased in thermally conductive potting material and cooled conductively. Potting is applied by filling a mold containing the transformer with liquid potting material. The potting material sets to provide structural support for the transformer and a conductive thermal interface between the transformer and the nearby fan duct, which is ordinarily cool relative to the transformer. Potting materials include silicone and thermosetting plastics, and add considerable undesirable weight to the transformer assembly. A cooling system which dispenses with the added weight of potting material without sacrificing either cooling capacity or structural support is highly desirable.
The present invention is directed to a cooling system for a transformer. The cooling system comprises a fan duct containing a fan, and a housing attached to the exterior of the fan duct. The fan duct and the housing together enclose an interior space containing a transformer with a plurality of core sections surrounded by windings and separated by gaps. The transformer is mounted on the fan duct, with an air channeling structure located between the transformer and the fan duct. A cooling airflow path passes through the air channeling structure and between the cores of the transformer.
a is a perspective drawing of an electronics housing mounted on a fan duct.
b is a perspective drawing of the fan duct of
a is a perspective drawing of the transformer of
b is a perspective drawing of the transformer of
a is a simplified cross-sectional view of the fan duct and transformer of
b is a simplified cross-sectional view of an alternative embodiment of the fan duct and transformer of
a shows cooling assembly 10, comprising fan duct 12, housing 14, transformer assembly 16, and outer cover 18. Fan duct 12 includes platform 24 and mounting frame 25. Fan duct 12 is a substantially cylindrical duct containing a fan (see
Housing 14 is a boxlike structure containing electronics including transformer assembly 16. Only three sides of housing 14 are shown in
b shows cooling assembly 10, comprising fan duct 12 and transformer assembly 16. Fan duct 12 features air passages 20, platform 24, and mounting frame 25 with housing attachment points 22. Transformer assembly 16 comprises transformer 26, support structure 28, and printed wiring board 30.
b depicts the same structure as
Transformer 26 is a conventional transformer for power conversion applications, and comprises a ferrous core having a plurality of sections surrounded by windings connected to printed wiring board 30. In one embodiment, transformer 26 is an autotransformer, and includes only one set of windings which serve as both primary and secondary windings. Support structure 28 is formed of two brackets which are bolted or soldered to platform 24, and which anchor both transformer 26 and printed wiring board 30 from opposite sides. Printed wiring board 28 is situated atop transformer 26, and provides electrical contacts for transformer 26. Together with an air channeling structure beneath transformer assembly 16 (see
a is an expanded perspective view of transformer assembly 16. Transformer assembly 16 is attached to platform 24, and comprises transformer 26, support structure 28, and printed wiring board 30. Transformer 26 includes core 34 and windings 36. Core 34 is formed of a solid, ferrous material, and has multiple sections, each wrapped in conductive windings 36. In one embodiment, transformer 26 may be a conventional autotransformer with a single winding 36 for each core section. Alternatively, transformer 26 may be a conventional multiple winding transformer, with separate primary and secondary windings 36. Printed wiring board 30 is attached to support structure 28 by fasteners 38, which may be bolts or screws, and to windings 36 by conductive pins 40. Printed wiring board 30 is separated from transformer 26 by an open space through which air may flow (see
b is a perspective view of transformer 26 with core 34 and windings 36 exposed. As depicted, core 34 has three flux sections 42 separated by gaps 44. Each flux section 42 is surrounded by one winding 36 with a plurality of turns. The rearmost winding 36a is displayed in its entirety, while the center winding 36b is broken away to expose flux section 42 of core 34. The forwardmost winding 36, which would wrap about the forwardmost flux section 42, is removed altogether so that the shape of core 34 is readily visible.
Pins 40 contact winding 36, forming terminals between turns of winding 36. A voltage across two pins 40 (and across a known number of turns) drives a current through winding 36, producing a magnetic field within flux section 42. By providing a voltage V1 across N1 turns, transformer 26 can draw a voltage V2 across N2 turns, thereby transforming one voltage into another, with V1/V2=N1/N2.
Gaps 44 provide a channel for cooling air to flow between adjacent flux sections 42 of core 34. Cooling air passing between printed wiring board 30 and transformer 26, through gaps 44, and through holes in fan duct 12 (see
Channel 52, cutout 48, and orifice 50 form an air channeling structure which guides air between gaps 44 (see
Support structure 28 is made up of two brackets 63, which support core 34 from opposite sides. Each bracket 63 has fingers 64, feet 65, and tabs 66. Tabs 66 are attached to printed wiring board 30 with fasteners 38, and support printed wiring board 30 above transformer 26. Feet 65 are anchored to platform 24 by fasteners 67, which, like fasteners 38, may be bolts or screws. Fingers 64 are elongated tabs which support flux sections 42 of core 34, and extend between core 34 and windings 36 (see
a is a simplified cross-sectional view of cooling assembly 10 taken along line 5-5 of
Transformer 26 is convectively cooled by air flowing through cutout 48 in thermal pad 46, and along channel 52 in fan duct 12. If orifice 50 connects to a low pressure region of fan duct 12, cooling air flows in cooling direction CD through gap 44, cutout 48, channel 52, and orifice 50. If orifice 50 connects to a high pressure region of fan duct 12, cooling air flow in the opposite direction, instead.
b is a simplified cross-sectional view of an alternative embodiment of cooling assembly 10, taken along line 5-5 of
As an alternative to channels 48, fan duct 12 may be provided with recess 68 containing fin core 70. Recess 68 is a rectangular recess in fan duct 12 shaped to hold fin core 70. Fin core 70 is a conventional lanced offset fin core formed of a lightweight, thermally conductive material such as aluminum, and diverts normal airflows by 90 degrees, channeling air from gaps 44 toward orifice 50. Fin core 70 abuts thermal pad 46, allowing additional heat transfer between windings 36 and airflow through fin core 70 via thermal pad 46.
By passing fan airflow through gap 44, cooling assembly 10 is able to adequately cool transformer 26 without relying on conductive cool via potting material. Support structure 28 anchors and supports transformer assembly 16 without relying on potting material for structural support. By eschewing potting material in favor of lightweight supports and air cooling, cooling assembly 10 provides significant weight reductions over conventional motor controller transformer assemblies.
While the invention has been described with reference to an exemplary embodiment(s), it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment(s) disclosed, but that the invention will include all embodiments falling within the scope of the appended claims.
Number | Name | Date | Kind |
---|---|---|---|
6882068 | Weeber et al. | Apr 2005 | B2 |
6909211 | Ciciliani et al. | Jun 2005 | B2 |
7265973 | Lanni | Sep 2007 | B2 |
7345561 | Meyer et al. | Mar 2008 | B2 |
7355851 | Lanni | Apr 2008 | B2 |
7567160 | Folts et al. | Jul 2009 | B2 |
7573362 | Thiel et al. | Aug 2009 | B2 |
7714686 | Meyer et al. | May 2010 | B2 |
7760060 | Kiuchi et al. | Jul 2010 | B2 |
7819641 | Decker et al. | Oct 2010 | B2 |
7898128 | Hattori et al. | Mar 2011 | B2 |
20110215890 | Abolhassani et al. | Sep 2011 | A1 |
Number | Date | Country |
---|---|---|
2005166777 | Jun 2005 | JP |
Number | Date | Country | |
---|---|---|---|
20120234520 A1 | Sep 2012 | US |