heat dissipation device for an electronic computer
The heat dissipation device addresses airflow reduction and assembly complexity in vehicle roof antenna modules by using a truncated ramp and deflector to enhance airflow efficiency and reduce noise and mass.
Patent Information
- Application Number
- FR2022006810
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-07-05
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2042-07-05
AI Technical Summary
Existing heat dissipation devices for vehicle roof antenna modules suffer from reduced airflow due to the use of seals, leading to increased fan rotation speed, noise, and higher mass, while also being costly and complex to assemble.
A heat dissipation device with a truncated ramp and deflector configuration that allows liquid drainage without a seal, enabling a larger fan and reduced noise by directing airflow efficiently.
The solution enhances airflow efficiency, reduces noise and energy consumption, and simplifies assembly by eliminating the need for seals, thus lowering costs and mass.
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Abstract
Description
Title of the invention: heat dissipation device for an electronic computer Technical field
[0001] The invention belongs to the field of thermal control of electronic devices and relates in particular to a device for cooling an electronic device intended to be integrated into the roof of a vehicle. Prior art
[0002] Most modern vehicles today are configured to receive different types of radio frequency signals. For example, they are configured to receive digital or FM radio signals, signals transmitted by geolocation satellites, establish Wi-Fi or Bluetooth connections, or establish communications through a cellular access network. These communication technologies do not operate in the same frequency bands and require specific antenna configurations and demodulators.
[0003] In order to facilitate their integration into a vehicle, these communication technologies are most often integrated into a single device, for example a TCU (Telecom Control Unit). The TCU can also integrate the antennas necessary for receiving and transmitting radiofrequency signals. This is called an intelligent antenna (or IAM for Intelligent Antenna Module in English). This type of antenna is generally intended to be integrated between the headliner and the roof of the vehicle, the antennas protruding above the roof through an orifice provided for this purpose. The antennas can be covered with a hood, for example in the shape of a shark fin.
[0004] Such an antenna module integrated into the roof is therefore exposed to high temperatures and to a risk of water infiltration through the hole made in the roof through which the antennas protrude. The module must also be compact to fit between the roof lining and the roof.
[0005] In order to meet these various constraints, a roof antenna module has been proposed for a vehicle as shown in [Fig.l]. The antenna module comprises a chassis 101 and a cover 102 forming a housing in which an electronic card 103 and a radial fan 105 are housed. The chassis 101 is configured to form a ramp 108 arranged opposite a lateral exhaust 110 of the fan 105 and configured to force an air flow 109 along the upper part of the chassis 101.
[0006] The antenna module of [Fig.l] is integrated between a headliner 107 and the roof 100 of the vehicle. An air guide 106 is interposed between the headliner 107 and the hood lower face 102 of the antenna module, so that the air enters through a grid 108 before being guided by the guide 106 towards the inlet 111 of the fan 105, so as to create an air flow passing through the lower face and the upper face of the antenna module to cool components 104 of the electronic card 103.
[0007] In order to protect the electronic circuit 103 in the event of water infiltration, a seal 112 is provided. The seal 112 prevents liquid flowing on the ramp 108 from reaching the electronic card 103.
[0008] Such a configuration is not entirely satisfactory.
[0009] Indeed, implanting the seal 112 and compressing it results in a loss of almost 25% of the available thickness. This reduces the rotor height of the fan by the same amount. The volume of air circulated by it is therefore reduced and limits the flow rate / noise ratio (a small fan must rotate faster to provide the same flow rate).
[0010] Installing the seal 112 requires increasing the size of the cover and installing screws to ensure its compression and sealing. The mass of the computer, its assembly time, its cost and its mass are high.
[0011] Thus, there is a need for a heat dissipation device which does not have the aforementioned drawbacks. Summary of the invention
[0012] To this end, a heat dissipation device is proposed for an electronic computer comprising a radial fan housed in the thickness of a housing of said computer and configured to circulate an air flow from a lower face of the housing to the top of the housing via a ramp positioned opposite the exhaust of the fan.
[0013] The device is remarkable in that: - The lower part of the ramp is truncated to provide a space between said ramp and the fan and to allow the flow of a liquid from an upper part to the underside of the housing, and - a deflector is positioned at the fan outlet to direct the air flow towards said ramp.
[0014] The deflector allows for a clearance to be provided to prevent water from entering the circuit compartment while limiting the recirculation of air between the exhaust and the intake by the spacing provided between the ramp and the fan.
[0015] In this way, a liquid such as rainwater can flow freely from the top face of the case to the bottom of the case without the need for a gasket. The absence of a gasket allows the use of a thicker fan that can rotate more slowly for an equivalent flow rate. Noise is thus reduced. The size of the cover can also be reduced, thus limiting the mass of the computer. Finally, product assembly is simpler and less expensive.
[0016] According to a particular embodiment, the deflector is formed by a part of the stator of the fan.
[0017] The deflector is thus formed in the material of the fan. Its weight is thus limited and its installation is facilitated.
[0018] According to a particular embodiment, the deflector is oriented to direct the air flow in a direction substantially parallel to the ramp.
[0019] By aligning the deflector with the slope of the ramp, air recirculation is further limited and cooling performance is improved. Brief description of the figures
[0020] Other aspects, aims and advantages of the invention will appear on reading the following description of one of its embodiments, given by way of non-limiting example. The invention will also be better understood with reference to the appended drawings in which:
[0021] [Fig.l] is a sectional view of a prior art antenna module,
[0022] [Fig. 2] is an exploded view of an antenna module according to an embodiment by particularity of the invention,
[0023] [Fig. 3] is a sectional view of an antenna module according to a particular embodiment,
[0024] [Fig.4] is a sectional view of an antenna module according to a particular embodiment on which air flows are represented. Detailed description
[0025] [Fig. 2] is an exploded view of an antenna module comprising a cooling device according to a particular embodiment of the invention. The antenna module is for example installed in the roof of a vehicle, between the headliner and the roof.
[0026] The antenna module comprises a housing composed of a chassis 200 and a lower cover 201 housing an electronic card 203 of a computer. The chassis is for example made of metal such as aluminum or magnesium.
[0027] In order to cool the electronic card 203, a radial fan 204 is housed in the thickness of the antenna module. More precisely, the fan is placed in a housing provided for this purpose in the chassis 200. The fan 204 and the housing in which it is placed are configured to suck air from below the antenna module and blow it through a lateral exhaust on the upper part of the chassis.
[0028] [Fig. 2] also shows a roof lining 211 provided with a grille 212 intended to allow the air drawn in by the fan to pass through the roof lining and circulate from the cabin of the vehicle to the top of the chassis 200. Finally, [Fig. 2] shows a guide air 210 arranged between the underside of the antenna module and the roof lining 211, the purpose of which is on the one hand to prevent the roof lining from being pressed against the fan by the suction, and on the other hand to force air circulation on the underside of the housing. For this purpose, the ventilation grille 212 is not placed directly above the fan 204, but under the cover 201 so that the sucked air is forced to circulate along the cover 201 before entering the fan 204.
[0029] Thus, the air guide 210 inserted between the roof lining 211 and the underside of the antenna module makes it possible to guide the air which enters through the grille 212 towards the intake of the fan 204, so as to create an air flow passing through the lower face of the antenna module to cool the electronic card 203.
[0030] [Fig. 3] is a sectional view of an antenna module according to a particular embodiment. [Fig. 3] shows more precisely the part of the antenna module in which the fan 204 is integrated. It is specified that for the sake of clarity, the same references in the figures are used to designate identical elements.
[0031] [Fig. 3] shows the intake 205 of the fan 204 on the underside of the antenna module and the side exhaust 206 towards a ramp 207 formed by a part of the chassis 200 to guide the air flow along the upper side of the chassis.
[0032] In a particular embodiment, the lower part of the ramp 207 is truncated so as to provide a space 208 between the exhaust 206 of the fan 204 and the ramp 207. This space advantageously allows a liquid flowing on the ramp 207 to flow towards the underside of the antenna module and the cabin via the grid 212.
[0033] In a particular embodiment, the lower end of the ramp 207 forms a lip which covers the edge of the cover 201 to prevent liquid from infiltrating between the chassis and the cover.
[0034] To prevent the air expelled by the fan from being diverted and sucked through the gap 208, the device comprises a deflector 209. The deflector 209 is configured to direct the air flow leaving the fan into the ramp axis 207 and thus limit the recirculation of a portion of the air flow through the space 208 provided for the flow of water. For example, the slope of the deflector may be substantially equivalent to the slope of the ramp to minimize the angle of incidence of the air flow on the ramp. The efficiency of the fan is thus improved and its rotation speed and / or its size may be reduced compared to a configuration where the deflector would be absent.
[0035] In a particular embodiment, the deflector is integrated into the stator of the fan and made of the material of the fan, for example in a thermoplastic material lighter than the metal of which the frame is made. However, according to other embodiments of realization, the deflector is integrated into the chassis and made from the chassis material.
[0036] [Fig. 4] is a sectional view of an antenna module according to a particular embodiment in which air flows are represented. A first main air flow 300 is observed, circulated by the fan. The air flow 300 enters the fan through the lower face of the antenna module before being directed by the deflector towards the ramp and the upper part of the housing. A recirculation loop 301 is also observed, which is very largely limited by the presence of the deflector 209.
[0037] The proposed cooling device thus allows the flow of a liquid, for example the flow of infiltrated rainwater, from the top of the antenna module to the passenger compartment without it being necessary to provide a seal between the cover and the chassis. The space freed up by the absence of a seal allows the use of a larger fan, the rotation speed of which can then be reduced, which advantageously limits noise and energy consumption.
Claims
Claims
1. Heat dissipation device for an electronic computer comprising a housing composed of a chassis (200) and a lower cover (201), a radial fan (204) housed in the thickness of the housing, and a ramp (207) formed by a part of the chassis (200) positioned opposite the exhaust (206) of the fan (204), the fan (204) being configured to circulate an air flow from a lower face of the housing to the top of the housing via said ramp (207), the device being characterized in that: - The lower part of the ramp is truncated to provide a space (208) between said ramp and the fan (204) and allow the flow of a liquid from an upper part to the bottom of the housing, and - a deflector (209) is positioned at the outlet of the fan to direct the air flow towards said ramp (207).
2. Device according to claim 1 such that the deflector is formed by a part of the stator of the fan.
3. A device according to any preceding claim wherein the deflector is oriented to direct the airflow in a direction substantially parallel to the ramp.
4. A roof antenna module for a vehicle comprising a cooling device according to any one of the preceding claims.
5. A vehicle comprising an antenna module according to claim 4.