The invention relates, in general, to electrical power distribution systems, especially for aircraft and, in particular, electrical power distribution systems provided with power distribution plates.
It is known that an electrical power distribution system within an aircraft has a pyramidal structure.
The electrical power is first of all generated using part of the power supplied by the engines of the aircraft to drive electrical power generators. The electrical power generated is delivered to distribution cabinets, also referred to as distribution “cores”, in order to be subsequently redistributed either to loads or to secondary distribution boxes, at different amperages.
Power distribution plates are used to carry currents within the power distribution system, in particular within the distribution cabinets, due to the power levels carried within the cabinet, which may reach values in the megawatt range. They generally include an insulating plate to which an electrical distribution busbar is fastened.
The distribution busbars of the power plates are conventionally connected using an electrical connection device which includes a connector that is fastened to one end of a power busbar and in which another power busbar is connected.
The busbars 5 and 6 are connected by means of a connector 7 taking the overall form of a fork, fastened by a first end 8 to one of the busbars and comprising, at its opposite end, power contact branches, such as 9, being used for the electrical connection of the other busbar 5, interposed between power contacts 10.
With reference to
Such a connection device is an effective means for connecting distribution plates which convey only one voltage level.
However, when it comes to conveying multiple voltage levels, the plates and their connection devices must be duplicated.
This is especially the case when two power busbars are used to convey voltages having different polarities, for example positive and negative, which has drawbacks in terms of bulk, cost and complexity of assembly.
The object of the invention is to overcome these drawbacks.
One subject of the invention, according to a first aspect, is a device for electrically connecting power distribution plates, comprising a connector fastened to one end of a first plate and comprising power contacts for a second plate.
The connector comprises a pair of separate electrical connection parts which together electrically connect two power busbars of the first plate to two power busbars of the second plate and each include, at one end, a base for electrically connecting and mechanically fastening the part to a power busbar of the first plate and a power contact branch extending from the base and intended to interact with a power busbar of the second plate.
Thus, by using a pair of electrical connection parts, it is possible to connect two power busbars having different respective potential levels simultaneously, thereby facilitating the connection of the power busbars, decreasing the number of connectors used to connect the busbars and allowing the general bulk of the power plates to be decreased.
The electrical connection device allows two dual-polarity power distribution plates to be electrically connected, or else two plates at a single potential to be electrically connected to a plate at two potentials.
According to another feature, the connection parts are made of metal, preferably of aluminum.
Advantageously, the power contacts comprise elastically deformable conductive strips fastened to the contact branches.
Stated otherwise, each contact branch comprises power contacts in the form of elastically deformable conductive strips.
Another subject of the invention, according to a second aspect, is an electrical power distribution system comprising power distribution plates and devices for electrically connecting plates each comprising a connector fastened to one end of a first plate and comprising power contacts for a second plate.
The connector comprises a pair of separate electrical connection parts which together electrically connect two power busbars of the first plate to two power busbars of the second plate and each include a base for electrically connecting and mechanically fastening the part to a power busbar of the first plate and a power contact branch extending from the base and intended to interact with a power busbar of the second plate.
In one embodiment, the distribution plates each comprise an insulating plate and two power busbars having different polarities provided on two mutually opposite faces of the plate.
Thus, the connection parts are advantageously fastened on either side of the first plate.
The power busbars may be bonded or screwed to the insulating plate.
Regarding the connection parts, they may be fastened to the first plate by means of screwing or crimping or fastened by force thereto by means of pads.
The electrical connection device allows two dual-polarity power distribution plates to be electrically connected, or else two plates at a single potential to be electrically connected to a plate at two potentials.
Other objects, features and advantages of the invention will become apparent on reading the following description, which is given solely by way of non-limiting example and with reference to the appended drawings, in which:
The electrical connection device, denoted by the general numerical reference 12, is intended to provide the electrical connection of two dual-polarity power distribution plates 13 and 14.
Specifically, as may be seen, each power distribution plate 13 and 14 includes an insulating plate, such as 15 (individually, 15a or 15b), for example made of polychlorobiphenyl (PCB) and two power busbars 16 (individually, 16a or 16b) and 17 (individually, 17a or 17b) fastened to, for example by bonding or screwing, or else mounted by force on, two mutually opposite faces of corresponding the insulating plate 15.
These two busbars are intended to be set to two different potential levels VD1 and VD2. They are, for example, made of aluminum or of copper.
Regarding the electrical connection device, the latter comprises a connector consisting of a pair of connection parts 18 and 19 each comprising, at one end, a base, such as 20a or 20b, for electrically connecting and mechanically fastening the power busbars of one of the plates 14 or 14′ to a contact branch 21 (individually, 21b or 21a) extending from the base 20 (individually, 20b and 20a) in the direction of the other plate.
Stated otherwise, the two connection parts 18 and 19 each provide the electrical connection of a busbar of one of the plates to a busbar of the other plate. The busbars are thus fastened, by one of their ends, on either side of the second distribution plate 14 and are electrically connected, by their other end, to the other plate 13.
The connection parts may be made of metal, for example of aluminum or of copper.
As may be seen in
These electrical contacts are for example fastened to the branches 21, for example by welding or by screwed clip-fastening.
The connection parts 18 and 19 may be fastened to the plates 14′, 14 by any suitable means.
In one embodiment, this fastening is achieved by brazing, screwing or crimping or using a pin riveted to the connection parts and to the distribution plates.
They may also be force-fitted to the first plate by providing pads on the connection parts.
Advantageously, two fastening points are used, for example two pins that are riveted in order to prevent any rotation of the connection device with respect to the distribution plate to which it is fastened.
Of course, the connection parts may be formed as a single part with the power busbars without departing from the scope of the invention.
As will be appreciated, the invention that has just been described allows the simultaneous electrical connection of two power busbars using a single electrical connection device, thereby optimizing the volume used and decreasing manufacturing costs.
An electrical connection device according to the invention does indeed allow currents to be carried between the distribution plate busbars at two different potentials VD1 and VD2 (arrows F1 and F2).
It has also been shown that the electrical connection device according to the invention allows improved insertion of the power plates insofar as only one connector is necessary to connect the power busbars.
Lastly, the superposition of the two polarities in a non-inductive network makes it possible to limit line inductances.
Lastly, the invention that has just been disclosed is not limited to the embodiment described.
Specifically, in the embodiment described with reference to
In the embodiment of
The plate 13 at two potentials, which comprises the insulating plate and the two power busbars 16 and 17, is connected to the two contact branches 21 (individually, 21a and 21b) as described above with reference to
The plates at a single potential each have a single power busbar, such as 23 (individually, 23a or 23b), fastened to a single insulating plate, such as 24 (individually, 24a or 24b).
The bases 20a and 20b are thus provided on the side of the connection part facing the power busbar to which it is fastened.
Number | Date | Country | Kind |
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16 56755 | Jul 2016 | FR | national |
Number | Name | Date | Kind |
---|---|---|---|
3104276 | Cataldo | Sep 1963 | A |
3180924 | Rowe | Apr 1965 | A |
3183298 | Weimer et al. | May 1965 | A |
3365537 | Fehr, Jr. | Jan 1968 | A |
3555293 | Shannon et al. | Jan 1971 | A |
3647937 | Jorgensen | Mar 1972 | A |
3852515 | Jorgensen | Dec 1974 | A |
4009920 | Hicks, Jr. et al. | Mar 1977 | A |
4627680 | Weimer | Dec 1986 | A |
4705334 | Slicer et al. | Nov 1987 | A |
4842533 | Beberman et al. | Jun 1989 | A |
4849581 | Larkin et al. | Jul 1989 | A |
4886940 | Gagnon et al. | Dec 1989 | A |
4950841 | Walker | Aug 1990 | A |
5011421 | Duke et al. | Apr 1991 | A |
5401906 | Bryant | Mar 1995 | A |
5619014 | Faulkner | Apr 1997 | A |
5760339 | Faulkner et al. | Jun 1998 | A |
6435888 | Reed, Jr. | Aug 2002 | B1 |
8177569 | Dozier et al. | May 2012 | B1 |
8864510 | Walgenbach et al. | Oct 2014 | B2 |
9071028 | Falk | Jun 2015 | B2 |
9520703 | Jaena et al. | Dec 2016 | B2 |
20040123458 | Korsunsky et al. | Jul 2004 | A1 |
20110136388 | Fu et al. | Jun 2011 | A1 |
20110151701 | Ngo | Jun 2011 | A1 |
20110300760 | Ngo | Dec 2011 | A1 |
20120190219 | Pai et al. | Jul 2012 | A1 |
20130135792 | Deshayes | May 2013 | A1 |
20150244123 | Steinberger et al. | Aug 2015 | A1 |
20160156169 | Jaena et al. | Jun 2016 | A1 |
Number | Date | Country | |
---|---|---|---|
20180316162 A1 | Nov 2018 | US |
Number | Date | Country | |
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Parent | 15638079 | Jun 2017 | US |
Child | 16029446 | US |