The invention relates to a heating device for an air-conditioning unit, comprising a docking station for the heating electrodes. The invention also relates to an air-conditioning unit comprising such a heating device. The invention relates lastly to a method for mechanically and electrically connecting the electrodes of the heating device.
The invention will be particularly applicable in the field of motor vehicles.
Electric heating devices that are intended to be integrated into vehicle air-conditioning units are known. These are either additional radiators, combined with heating radiators through which a heat transfer fluid flows, in vehicles with an internal combustion engine, or main radiators, in electric or hybrid vehicles.
Such heating devices comprise a heating body accommodating heating units that are provided with heating elements that are supplied with electric current by electrodes. For electrical safety reasons, it may be necessary to isolate the heating elements and their supply electrodes from the outside. To this end, the heating units comprise tubes inside which the heating elements and their electrodes are located, the inner surface of the tubes being provided with an electrically insulating layer in order to isolate the heating elements and their electrodes.
These heating devices comprise a distribution unit capable of controlling the current flowing in the heating units, in particular via an electronic board.
Switches for controlling the current flowing in the electrodes are soldered to this electronic board. Each switch is electrically connected to the electronic board, on the one hand, and to an electrode, on the other hand.
This dual connection is not easy to produce on production lines. In particular, keeping the switch in position in order to solder it to the electronic board is not easy to achieve, and said switch risks not being oriented exactly as it should be, and, second of all, it is all the more difficult to connect the electrodes.
Specifically, in addition to the electrical connection, there is also a mechanical connection to be produced between each switch and the electronic board, so that all of the components are correctly positioned in relation to one another both at the time of their assembly and for the entire service life of the heating device in general.
The present invention aims to overcome the various drawbacks set out above by way of a heating device allowing an electrical and mechanical connection between the heating body and the distribution unit that is simple to implement and that ensures correct positioning of all of the components at the time of connection, as well as for the entire service life of the heating device, and doing so with a limitation in terms of the relative movements between the components in order to avoid vibration problems and improve the reliability of the heating device.
This aim is achieved by virtue of a heating device for an air-conditioning unit having, as is conventional, a heating body supplied with current via a distribution unit in order to heat an airflow passing through said heating body, the heating body comprising an alignment of tubes containing:
This device is mainly characterized in that the distribution unit comprises a docking station for the electrodes, said docking station having a plurality of receptacles accommodating the electrodes and in which there are means for mechanically and electrically connecting the electrodes to the distribution unit.
The main idea of this invention consists in providing a docking station, which acts as a bridge between the components belonging to the heating body and the components belonging to the distribution unit, and that have to be connected to one another. In this case, this docking station makes it possible to correctly position the electrodes in order to connect them. In addition, the docking station makes it possible to correctly position mechanical and electrical connection means, which will be described later on. The docking station thus forms a stable base, which serves as a reference for positioning the various components.
According to the various embodiments of the invention, which may be taken together or separately:
The invention also relates to an air-conditioning unit comprising a heating device as described above.
Moreover, the invention relates lastly to a method for mechanically and electrically connecting an electrode of a heating device as described above. In this case, this method comprises the following steps:
The invention will be better understood, and other aims, details, features and advantages thereof will become more clearly apparent from the following detailed explanatory description of at least one embodiment of the invention, which is provided by way of a purely illustrative and non-limiting example, with reference to the appended schematic drawings.
In these drawings:
With reference to
Said heating device 1 comprises a heating body 2 supplied with electric current in order to heat an airflow passing through said heating body 2.
Said heating body 2 in this case has a substantially parallelepipedal configuration extending on the surface. It is intended to be positioned transverse to the airflow to be heated. More precisely, said airflow is intended to be oriented perpendicular to said heating body 2, that is to say perpendicular to the plane of
The heating body 2 is formed by a succession of aligned metal tubes 4. Inside each tube 4 are heating elements 8 that are flowed through by said current. The heating elements 8 are for example PTC (positive temperature coefficient) effect resistors. These heating elements 8 are particularly visible in
Electrodes 9 are located on either side of the heating elements 8 for their supply of electric current. More particularly, each heating element 8 is surrounded by a positive electrode 9 and by a negative electrode 9.
In order to electrically insulate the tube 4 from the electrodes 9 and the heating elements 8, layers 12 of electrically insulating and thermally conductive material are located between each electrode 9 and an inner wall of the tube 4.
Each tube 4/heating elements 8/electrodes 9 assembly forms what is called a heating unit.
Said heating units are selectively supplied with current. This is understood to mean that each heating unit is supplied with current independently of the others and may therefore be flowed through by a current that is different, in particular in terms of its magnitude, from the current flowing through the other heating units. The value of the current involved in this case is in particular the value of the average current or of the effective current.
Returning to
Said heating body 2 comprises a frame 5, in particular made of plastic, accommodating said heating units and used to hold said tubes 4. The tubes 4 are also held in position by way of intermediate plates 22.
Preferably, the heating device 1 furthermore comprises a distribution unit 3 able to control the current flowing in said heating body 2.
Said distribution unit 3 is advantageously configured so as to drive the current being supplied to the heating body 2, in particular the various heating units, in particular using driven switches 15, making it possible to control a respective flow of current in each of the heating units. These switches 15 (visible in
In order to be able to correctly keep the switches 15 in place when they are fixed to the electronic board 11, a docking station 6 is provided and located just above the upper face of the electronic board 11. This docking station 6 is in particular visible in
This docking station 6 is thus arranged at the junction between the heating body 2 with its heating units, on the one hand, and the distribution unit 3 with its electronic board 11, on the other hand. The docking station 6 consists of an intermediate base that facilitates the electrical and mechanical connection of the heating body 2 to the distribution unit 3.
As may be seen in
More precisely, the docking station 6 has a lower face facing the electronic board 11, and an upper face facing the tubes 4. The docking station 6 consists of a bar, or a strip, extending over the entire length of the heating body 2, following the alignment of the electrodes 9 at the outlet of the tube 4.
This lower face is provided with a central rib 23 that is oriented longitudinally along the docking station 6. This rib 23 is able to rest on the upper surface of the electronic board 11, so as to have flat contact between the docking station 6 and the electronic board 11. This flat contact first makes it possible to position the docking station 6 above the electronic board 11 in a stable manner. Moreover, the docking station 6 makes it possible to increase the mechanical strength of the electronic board 11 according to two principles:
There is therefore a space between the docking station 6 and the electronic board 11 on either side of the rib 23. Ideally and if necessary, this space is dimensioned so as to be able to allow other components to be soldered to the electronic board 11, underneath the docking station 6.
The upper face, for its part, illustrated in
This switch 15 is more particularly shown in
Returning to
According to one possible configuration, for each receptacle 17, the faces 14a of the studs located facing one another are beveled in the direction of the central orifice so as to form guide ramps for guiding the electrode 9 toward the central orifice where the switch 15 is located. These studs 14 thus form a V into which the electrode 9 is inserted. This guidance of the electrodes 9 makes it possible to improve the assembly between the heating body 2 and the distribution unit 3.
The faces 14b of the studs 14 that are located facing one another between two successive receptacles 17 are for their part oriented perpendicular to the docking station 6.
Generally speaking, the docking station 6 has as many receptacles 17 as there are electrodes 9 in the heating body 2, each receptacle 17 accommodating an electrode 9.
More precisely, the electrodes 9 each have a free end projecting from the tubes 4. Each free end has a male coupling 10 able to enter the female coupling of the switch 15. This male coupling 10 may be formed in one piece with the electrode 9, or may consist of a separate piece mounted on the electrode 9, as is the case in the example visible in
For each heating unit, the male couplings 10 of the two electrodes 9 extend in the axial direction of the tube 4 but with a transverse offset. The male couplings 10 are thus situated in a quincunx.
Therefore, for each tube 4, the docking station 6 has two receptacles 17 in a quincunx matching the arrangement of the male couplings 10 of the two corresponding electrodes 9, one positive and the other negative. In this way, the switches 15 inserted into these receptacles 17 are placed at a distance from one another, since it is important to comply with an isolation distance between the switches 15 belonging to the positive current line and the switches 15 belonging to the negative current line.
Thus, as shown in
The docking station 6 is perforated between the adjacent receptacles 17, via windows 16. This makes it possible to use a minimum amount of material and to obtain a lightweight bar.
The docking station 6 is made from an electrically insulating plastic material. Such a material also allows good resistance to temperature, flammability and humidity.
The docking station 6 is obtained by molding or by plastic injection.
Specifically, the connection between the heating body 2 and the distribution unit 3 takes place as follows.
The docking station 6 is positioned on the electronic board 11, so that its rib 23 bears on the upper surface of the board 11. When the docking station 6 and the board 11 are correctly positioned with respect to one another, the switches 15 are inserted into the receptacles 17 provided for this purpose, and more precisely into the orifices of the receptacles 17. The pins 7 of the switches 15 are then inserted into small holes provided for this purpose in the electronic board 11. The switches 15 are then in a stable position in the receptacles 17 of the docking station 6, and it is possible to solder the pins 7 to the electronic board 11.
The last step then consists in inserting the male couplings 10 of the electrodes 9 into the switches 15 of the docking station 6. This last step may be performed in a single movement, via a rectilinear translation of the heating body 2 with respect to the docking station 6, given that a switch 15 is provided facing each male coupling 10.
This single movement is in particular made possible by virtue of the guidance of the male couplings 10 via the guide studs 14 and by virtue of the quick connector provided on the first connection face 18 of the switch 15. Specifically, it is enough to slide the male coupling 10 into the first connection face 18 of the switch 15 and the flexible blades 20 create the electrical connection as well as the mechanical connection of the male coupling 10, since they exert pressure on it so as to keep it in position.
With such a connection, the movements of the electronic board 11 are greatly limited, thereby making it possible to avoid vibration problems, and to improve the reliability of the electronic board 11, and of the heating device 1 in general.
The invention also relates to an air-conditioning unit comprising a heating device 1 as described above. Said air-conditioning unit comprises a body for the flow of the airflow, inside which body said heating device 1 is located.
With regard to the above description, the optimum dimensional relationships for the parts of the invention, including variations in size, materials, shapes, function and modes of operation, assembly and use, are considered to be apparent and obvious to those skilled in the art, and all relationships equivalent to what is illustrated in the drawings and what is described in the specification are intended to be included in the present invention.
Number | Date | Country | Kind |
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1762533 | Dec 2017 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/FR2018/053250 | 12/13/2018 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/122616 | 6/27/2019 | WO | A |
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20 | Duchman | Aug 1836 | A |
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20120085742 | Niederer | Apr 2012 | A1 |
20120087642 | Bohlender | Apr 2012 | A1 |
20140319114 | Gong | Oct 2014 | A1 |
20230182536 | Buerck | Jun 2023 | A1 |
Number | Date | Country |
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1510728 | Jul 2004 | CN |
101097092 | Jan 2008 | CN |
104798259 | Jul 2015 | CN |
105165114 | Dec 2015 | CN |
107264231 | Oct 2017 | CN |
206556229 | Oct 2017 | CN |
111742183 | Oct 2020 | CN |
3228950 | Oct 2017 | EP |
3032388 | Aug 2016 | FR |
2000-168345 | Jun 2000 | JP |
2005-085697 | Mar 2005 | JP |
2008-007106 | Jan 2008 | JP |
2007129608 | Nov 2007 | WO |
2018073530 | Apr 2018 | WO |
Entry |
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International Search Report and Written Opinion in corresponding International Application No. PCT/FR2018/053250, mailed Apr. 10, 2019 (13 pages). |
The Notice of Reasons for Rejection issued in corresponding Japanese Application No. 2020-533722, mailed Jun. 18, 2021 (8 pages). |
The First Office Action issued in corresponding Chinese Application No. 201880081201.5, issued Mar. 22, 2021 (12 pages). |
Number | Date | Country | |
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20200309410 A1 | Oct 2020 | US |