Vehicle spoiler assembly

JP2024524509A5Active Publication Date: 2025-06-25AGC GLASS EUROPE SA
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Patent Information

Application Number
JP2024500018
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-07-09
Filing Date
2022-07-08
Publication Date
2025-06-25
Estimated Expiration
2042-07-08

AI Technical Summary

Technical Problem

Existing vehicle spoiler designs are limited in accommodating multiple antennas of different types and frequencies, leading to interference, reduced performance, and aesthetic issues, with shark fin enclosures compromising aerodynamics and design.

Method used

A spoiler assembly with a housing that integrates satellite, telematics, and V2X antennas, arranged in specific zones to optimize performance and coexistence, using a lower part and cover part configuration to minimize aerodynamic impact and enhance aesthetics.

Benefits of technology

The arrangement allows for high data throughput and connectivity without compromising cabin space or appearance, improving antenna performance through spatial and temporal multiplexing and using the vehicle body as a ground plane.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a spoiler assembly (100) for a vehicle, the spoiler assembly (100) comprising: a. a spoiler housing (10) having left and right ends and having a lower portion (10a) and a cover portion (10b), the inner portion (10a) having an inner surface facing the inner surface of the cover portion (10b); and b. a plurality of antenna elements (30, 31, 32) disposed on a surface of the spoiler housing and operating at different ranges of frequencies, the spoiler housing having at least one central region (Zone A) and at least one lateral region (Zone B) on either side of the central region (Zone A) and at an end of the spoiler housing. According to the present invention, at least one satellite antenna element (30) is provided in a central region (Zone A) and at least one cellular and / or telematics antenna element (31a, 31b) is provided in at least one side region (Zone B) at the left and right ends of the spoiler housing (10).
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Description

[Technical field]

[0001] The present invention relates to a spoiler assembly for a vehicle. An aspect of the present invention also relates to a vehicle having a spoiler assembly. Limited antennas, such as broadcast antennas integrated with heating grids, are found on vehicle glass windows because the antennas cannot be installed in the visible area of ​​the glass window. Thus, the shark fin is generally considered a possible location for most telematics and satellite antennas. [Background technology]

[0002] The advantage of the shark fin is that its location is ideal for antennas without any obstruction. Antennas can also benefit from the roof of the car as a ground plane for these antennas. However, for aesthetic reasons, the size and shape of the shark fin is rather small while accommodating several antennas, namely usually a GPS antenna, two cellular antennas and possibly a WiFi antenna. However, the use of the shark fin does not only have advantages. Thus, interference between antennas when closely spaced can affect the performance of the antenna system. Furthermore, due to the already limited space, the shark fin cannot be used to increase new applications, such as V2X or future 5G. Therefore, an alternative solution is needed.

[0003] It has been well known for many years that vehicle spoilers can also be used as housings for vehicle antennas: for example, JP 2003273617 A describes a wire car antenna integrated into the spoiler as an alternative to a visible vehicle antenna on the roof.

[0004] From US Pat. No. 6,927,736 a satellite antenna mounted on a car spoiler is also known.

[0005] EP 1843429A1 and GB 2578597A describe multiple antennas arranged on a car spoiler. Multiple antennas and radio unit receivers are provided in the electronics and electrical devices in the spoiler. Therefore, the space in the spoiler is limited, and therefore the number and design of antennas arranged on the spoiler are also limited.

[0006] These above mentioned prior arts propose integrating different types of antennas into a vehicle spoiler, but none of them provide a systematic approach to integrating multiple antennas into a vehicle spoiler, optimizing the performance of the antenna based on the application of the antenna, while allowing several antennas of different applications to coexist in the same spoiler housing.

[0007] There is now a demand to integrate more and different types of antennas into the spoiler. The need for a diversity of antennas operating at higher frequencies such as telematics antennas (e.g. cellular, satellite, V2X) and lower frequencies such as over-the-air (AM / FM / DAB / TV) antennas as well as types of antenna power supply causes several problems, e.g.: - Different telematics antenna positions to maximize antenna performance, - How antennas for different applications can coexist in the spoiler, for example between high frequency telematics applications and radio broadcasting at lower frequencies (AM / FM / DAB / TV). Summary of the Invention

[0008] The present invention provides a spoiler assembly for a vehicle, the assembly including a spoiler housing having a left lateral end and a right lateral end, a plurality of antenna elements, the plurality of antenna elements being a satellite antenna, a telematics antenna including a cellular antenna, and a V2X antenna and a radio broadcast antenna, arranged to coexist on the spoiler while maintaining better performance of the antennas. The satellite antenna, the telematics antenna including a cellular antenna, and the V2X antenna are arranged to protrude in a required direction relative to a surface of the spoiler housing. Such an arrangement improves the performance of each antenna relative to its antenna function and allows maximum use of the spoiler for antenna integration.

[0009] According to the invention, the spoiler housing has a lower part and a cover part (upper part), the lower part having an inner surface facing the inner surface of the cover part. The spoiler housing can be made in one or two pieces.

[0010] Conventionally mounting an antenna on the roof of a vehicle requires a shark fin enclosure to effectively protect the antenna and hide it from view. However, such an enclosure necessarily has a negative impact on the aerodynamics of the vehicle. Furthermore, the high data rates required by 4G / 5G communication protocols may require multiple antennas. In addition, satellite antenna reception also benefits from being mounted on the roof. Having more than one cellular or satellite antenna requires increasing the size of the shark fin or providing multiple roof-top antenna enclosures. This has the undesirable effect of further reducing the aerodynamic performance of the vehicle. Furthermore, shark fin enclosures are unsightly, which poses design challenges to ensure that the enclosure does not affect the aesthetic appearance of the vehicle. Despite attempts to make the shark fin enclosure look pleasant, a shark fin-like enclosure on the roof is still visually intrusive to the appearance of the vehicle. Furthermore, when placing the antenna in a less intrusive location, such as another external component (e.g., side mirror, bumper, or under the roof), reception is somewhat impaired and attenuation problems with the coaxial cable are exacerbated. Furthermore, such locations do not have sufficient volume for optimal configuration of the antenna assembly. In the case of under-roof placement, providing the space required for an effective antenna assembly would unacceptably compromise vehicle headroom. It would also necessitate the use of plastic and / or glass roof covers, which would adversely affect the mechanical properties of the vehicle.

[0011] Having multiple antenna elements protruding in the required direction (upwards, downwards, parallel to reach the highest / required performance) relative to the spoiler housing allows the antenna to be appropriately configured to provide the necessary data throughput and bandwidth requirements of modern communication standards such as satellite antennas, cellular antennas and telematics (e.g., 2G, 3G and 4G (LTE) and 5G), GNSS and V2X or Wifi antennas in combination with radio broadcast antennas operating at lower frequencies with little or no aerodynamic penalty that would otherwise occur if the antennas were located elsewhere on the vehicle (e.g., traditional roof top enclosure). Furthermore, this arrangement allows high data throughput and connectivity to be achieved without compromising the cabin space or the appearance of the vehicle. In another embodiment, the V2X antenna is for V2V and is compliant with dedicated short-range communication standards (e.g., IEEE 802.11p) and the Cellular V2X (C-V2X) standard proposed by 3GPP.

[0012] According to the present invention, multiple telematics antenna elements, cellular antennas and radio broadcast antennas are arranged on the spoiler in locations dictated by the type of application, data throughput and bandwidth requirements. Thus, the antenna elements may be configured as an antenna array allowing spatial and temporal multiplexing of received and transmitted signals.

[0013] According to the present invention, the spoiler housing has at least one central region (Zone A) and at least one side region (Zone B) on either side of the central region (Zone A) and at the end of the spoiler housing. A satellite antenna is located in the central region (Zone A) generally associated with where the brake lights are to be located. The brake lights are lights mounted on the rear of the vehicle that turn on when the brakes are applied to serve as a warning to following drivers. According to the present invention, a satellite antenna including a GPS for navigation, a SDARS for satellite digital audio radio service, and a satellite communication antenna is located near the center of the spoiler.

[0014] At least one cellular and / or telematics antenna element is provided in side regions (Zone B) on either side of the central region (Zone A). It is understood that each side region (Zone B) has one side that terminates at an end (right end and left end) of the spoiler housing.

[0015] According to an embodiment of the present invention, at least V2X and / or Wifi antenna elements are further provided between the satellite antenna elements and the cellular and / or telematics antenna elements. The V2X and / or Wifi antenna elements are provided in an area (Zone C) provided between the central area (Zone A) and the side area (Zone B). The V2X antenna for vehicle-to-vehicle and road-to-vehicle communication applications is vertically positioned and between the cellular and the center of the spoiler. There can be a single V2X antenna or dual antennas in the spoiler that help to give 360 ​​degree coverage around the vehicle.

[0016] If a WiFi antenna is provided, it is placed between the cellular / telematics antenna and the V2X antenna.

[0017] Thus, according to one embodiment of the present invention, the spoiler housing may be divided into at least three regions: a. A central area (Zone A) in which the satellite antenna elements are located; b. at least one lateral area (Zone B) at the left and right ends of the spoiler housing providing cellular and / or telematics antenna elements; c. A further area (Zone C) provided between the central area (Zone A) and the side areas (Zone B) providing V2X and / or Wifi antenna elements.

[0018] In an embodiment, the cellular 2G / 3G / 4G and 5G antennas are positioned off-center and evenly distributed on both sides of the spoiler to maximize diversity and performance in the MIMO system. In an embodiment, advantageously, the telematics including the cellular antenna elements in the side area (Zone B) are configured as a multiple-input multiple-output (MIMO) array. In an embodiment, the number of antenna elements depends on the required application, for example there can be four cellular antennas for 4G or 5G as required by the known 3GPP®. 3GPP® is the third generation partnership project and is the body that defines the standards for communication systems (e.g., 4G, 5G). It gives the minimum recommended number of antenna elements for advanced 4G and 5G data applications that require high data throughput. For 5G, for example, it is proposed to use a massive MIMO antenna diversity scheme. Including more antennas further increases the receive diversity, allowing for higher data transmission and reception rates and the possibility of using beamforming. For example, in some embodiments, the antenna elements are configured to perform adaptive beamforming, for example to increase antenna gain as a function of the directionality of received / transmitted signals.

[0019] Preferably, each antenna element is connected to a first transceiver installed in the vehicle. The antenna and transceiver work together to receive and transmit a specific type of signal, for example, the antenna element is a satellite antenna element (e.g., Global Navigation Satellite System (GNSS)) using GPS, GLONASS, Galileo or BeiDou systems located in the central area (Zone A), or a telematics / cellular antenna (2G, 3G, 4G, 5G, LTE) located in the side area (Zone B), or a V2X and / or Wifi antenna. In another embodiment, the V2X antenna and transceiver are for V2V and comply with dedicated short-range communication standards (e.g., IEEE 802.11p) and the Cellular V2X (C-V2X) standard proposed by 3GPP.

[0020] One of the advantages of the antenna system arrangement as proposed in this invention is that all the above mentioned antennas can co-exist with over-the-air broadcast antennas including AM / FM / DAB / TV (hence these antennas can be made of wire or foil).

[0021] If the antenna is made of metal foil, the foil antenna can also act as a ground plane for satellite antennas, V2X antennas, further improving the performance of these antennas.

[0022] If co-located, preferably the cellular antenna is located at the end of the spoiler with minimal contact with the foil.

[0023] To optimize signal reception, such V2X antenna elements may be oriented vertically, with the vertical polarization of the transmitter / receiver at the base station or roadside unit (RSU) aligned with the vehicle. The roadside unit (RSU) is a device installed on the road to communicate with the car, for example, for payments. The projection direction (vertical, horizontal, parallel) is selected to allow the antenna to extend in an unobtrusive space without the significant aerodynamic penalty that traditional roof-top antenna assemblies suffer from. This is especially true when wide bandwidth reception is required, since the required antenna length is proportional to the minimum wavelength required to be received and / or transmitted.

[0024] To efficiently use the overall width of the spoiler and provide the spacing required for spatial decorrelation between receive / transmit signals at different antenna elements, the antenna elements may be spaced laterally within the spoiler housing.

[0025] Preferably, the antenna element is located on the spoiler housing and configured to project in the required direction (downward, upward, parallel) relative to an inner surface of the spoiler housing, which for example may be the upper (or top) aerodynamic surface of the spoiler housing.

[0026] Advantageously, the spoiler housing may include an upper portion and a lower portion, with the antenna element arranged to project downwardly from the upper portion to the lower portion. The upper portion may thus include an aerodynamic spoiler surface and a lower portion configured to accommodate at least a portion of the downward facing antenna element. Advantageously, the lower portion is a downward facing antenna fin that provides good vehicle aesthetics without adversely affecting the aerodynamics of the vehicle. The downward facing fin may extend only partially across the width of the upper aerodynamic portion, for example across a central portion, to minimize mass, and may be configured to have only the volume necessary to accommodate the downward facing antenna element.

[0027] In other embodiments, the antenna element is configured to project downwardly from a lower surface of the upper portion. In this manner, the upper and lower portions may be conveniently designed and / or manufactured separately. For example, the upper portion may be designed based on aerodynamics, with the lower portion designed solely to hold the antenna. The upper and lower portions may also be separated from one another, again simplifying manufacturing, and the thermal, electromagnetic and mechanical properties of the lower portion may be designed solely based on the design requirements of the antenna element and antenna element assembly.

[0028] In another aspect of the invention there is provided a vehicle including a spoiler assembly as described above. Preferably the vehicle includes a transceiver coupled to the antenna element. The transceiver may be included in the spoiler housing or may be located elsewhere on the vehicle. [Brief description of the drawings]

[0029] In order that the invention may be more readily understood, embodiments thereof will now be described, by way of example, with reference to the three accompanying drawings in which: [Figure 1] 1 is an illustration of a vehicle including a spoiler assembly according to the present invention. [Diagram 2] FIG. 1 is an illustration including a spoiler assembly with brake lights illustrating the central region (Zone A). [Diagram 3]FIG. 1 shows a diagram of a spoiler assembly with an integrated antenna in accordance with an embodiment of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0030] The vehicle 1 in Figure 1 is an automobile including a rear spoiler 10 mounted to the rear of the vehicle and extending from the roof of the vehicle to provide an aerodynamic surface substantially aligned with the vehicle roof to provide a continuous surface. The transverse and longitudinal axes 20 and 21 of the vehicle are shown as in the drawings, whereby references to the transverse and longitudinal axes are made to these axes of the vehicle. Although an automobile is shown, the invention is applicable to other types of motorized vehicles that utilize spoilers.

[0031] According to the invention, the spoiler housing has a lower part 10a and a cover part 10b (upper part), the lower part 10a having an inner surface facing the inner surface of the cover part. The spoiler housing can be made in one or two pieces.

[0032] Figure 2 shows a motor vehicle including a rear spoiler 10 mounted on the rear of the vehicle and extending from the roof of the vehicle. In order to define or to better understand what is referred to in the present invention as a central area, the rear spoiler is provided with brake lights 11 as an example. The central area (Zone A) generally relates to the area where the brake lights 11 are usually integrated into the spoiler assembly. The central area is also the zone corresponding to the zone below the area where possible brake lights are provided.

[0033] As shown in Figure 3, an antenna assembly 300 is installed within the rear spoiler 10. The antenna assembly includes one or more antennas distributed laterally within the spoiler.

[0034] FIG. 3 shows an embodiment in which the SDARs or GNSS antenna elements 30 are located in a central area (Zone A), the V2X antenna elements 32 are located in an area located between the central area (Zone A) and the lateral area (Zone B), and the LTE 31a, 31b antennas are provided in lateral areas at the ends of the spoiler housing coinciding with the horizontal axis 20. The antennas are coupled to each receiver. These antennas are adapted to receive and transmit signals in the bandwidth applicable to each function. The antennas can be, for example, PCB or patch type antennas, often printed on a dielectric substrate, or an array of radiating antenna elements, or two-dimensional or three-dimensional antennas providing circular polarization. The location of the antennas with different functions according to the invention allows an efficient combination of different types of antennas while eliminating spatial ringing. The antennas can be printed or foil antennas, and one or more antennas can be located remote from the communication unit or integrated in a circuit board with the module of the communication unit. Each patch antenna can be formed by a patch or area of ​​conductive material on a substrate. Typically, the patch antenna may be rectangular, but this is not necessarily rectangular. Other shapes are possible, such as polygonal, T-shaped, L-shaped, etc. When the antenna is installed on the vehicle, it may be oriented perpendicular to the spoiler assembly. For example, the antenna plane may be perpendicular to the plane of the spoiler assembly (e.g., the inner surface of the lower portion 10a of the spoiler housing) so that the antenna provides a preferred vertical polarization for a particular application (e.g., V2X). In general, the orientation of the antenna is configured to match the orientation of a transmitting antenna, i.e., at a base station, or a satellite, or a roadside unit, or another antenna on another vehicle. For example, satellite broadcast and transmission systems are typically circularly polarized, making a patch antenna suitable for communication, while V2X communication is vertically polarized, making a vertically oriented antenna the appropriate choice.

[0035] According to a preferred embodiment of the present invention, the antenna is provided on an inner surface of the lower portion 10a facing the inner surface of the cover portion of the spoiler housing 10. However, it is understood that the antenna may also be provided on a fin in the spoiler housing, the fin being fixed to the inner surface of the inner portion 10a and / or the inner surface of the cover portion 10b. The inner surface of the inner portion 10a faces the inner surface of the cover portion 10b.

[0036] The satellite antenna 30 may be a satellite navigation antenna (e.g., for GPS, Baidu, or any other similar service), or a satellite digital audio radio service (SDARS), or a satellite communication module for satellite internet or satellite telecommunications. These antennas may be installed alone in the central area (Zone A) or may coexist with other satellite antennas in the same zone. These antennas may be patch-type antennas, often printed on a dielectric substrate, or an array of radiating antenna elements, or two-dimensional or three-dimensional antennas that provide circular polarization. According to the invention, the satellite antenna elements 30 are placed in the central area (Zone A), which gives several advantages related to the performance and service or application of the antenna. First, the central area has the advantage of being close to the vehicle body and having a symmetrical distance to both sizes of the vehicle body, which helps the satellite antenna to have a symmetrical radiation pattern, which is important for applications (e.g., SDARS). Furthermore, these antennas can take advantage of the vehicle body as a large ground plane to further improve gain and performance. As will become clear later, the satellite antenna can also use the conductive foil of the radio broadcast antenna as a ground plane. These conditions further improve the radiation characteristics of the satellite antenna and therefore improve the quality of service.

[0037] The LTE (Long Term Evolution) / 4G antennas 31a-31b may include an array of antennas arranged to provide spatial diversity, including MIMO (multiple input multiple output) capabilities, to improve data throughput, i.e., where one or more of the antennas in the array are used to transmit data and another antenna is used to transmit data. The configuration in the present invention further improves spatial diversity, since two or more LTE antennas are distributed in the side area (Zone B). Another advantage is that the side area is less affected by the entire vehicle body, so one antenna or module can provide coverage on one side of the car, while another antenna on the other side of the spoiler covers the other side. In many cases, the radiation patterns of these antennas on both lateral sides of the spoiler complement each other, and thus the combination of these two or more antennas in both lateral areas provides full coverage of the vehicle.

[0038] Furthermore, the signal-to-noise ratio of the antenna can be improved by a specific configuration of an embodiment of the present invention. The LTE antenna provided in the side area (Zone B) is used for telecommunications in the 4G telecommunications band, for example with a highest frequency of 2.6 GHz. In this embodiment, an LTE / 4G antenna (or antenna array) is shown, but other cellular telecommunications bands (for example 2G, 3G and 5G) can be used.

[0039] Two LTE antennas 31a, 31b are provided, spaced apart laterally across the horizontal axis 20 so as to be spaced apart across the spoiler housing. The spacing between the LTE antennas is ideally arranged so that there is at least 10 dB of decoupling between the antennas and a multiple input multiple output configuration is possible. Thus, the space in the spoiler is optimally utilized to provide the LTE antennas with high data throughput. Each antenna 31a, 31b may be a PCB type antenna, including a conductive layer arranged on a substrate. However, any other suitable type of antenna may be used, including a three-dimensional volume antenna, or even a three-dimensional metal antenna, since the antennas may be integrated into the spoiler, which has a certain volume. The antennas may be mounted by respective brackets fixed to the inner surface of the spoiler. The number of LTE antennas may be increased according to the requirements of the car manufacturer. Thus, four LTEs may be provided in the spoiler.

[0040] A further V2X antenna 32 is installed in an area called Zone C, which is installed in the spoiler housing between the central area (Zone A) and the side area (Zone B). There can be one or two V2X antennas installed in the spoiler. In a preferred embodiment, in the case of two V2X antennas, they are installed in Zone C on both sides of the assembly spoiler, one of the antennas providing coverage in front of the spoiler while the other antenna provides coverage behind the spoiler. In this configuration, high gain antennas can be used, which improves the communication distance for V2X applications, which is important for some scenarios (e.g. main roads). When only a single V2X antenna is used, the antenna provides full coverage (360 degrees) around the vehicle. In this case, the antenna is a kind of omnidirectional antenna. It is understood that the number of antenna elements and the antenna shape should be adapted according to the requirements of the vehicle manufacturer. Due to the present invention and its location as described above, the V2X antenna elements can be installed perpendicular to the spoiler, providing the vertical polarization required for this application, while not being affected by the presence of the vehicle brake lights in the central area (Zone A). Zone C is also far from the edge of the spoiler (Zone B). Thus, the V2X antenna can still provide excellent coverage in front and around, without much impact of the vehicle body. This is especially important when using a single V2X antenna and needing 360 degree coverage surrounding the vehicle. One particular advantage of the present invention is that due to hardware and cable costs, it is the preferred solution of car manufacturers when a single V2X antenna can provide full service for V2X communications, but is not required.

[0041] Thus, the present invention allows for arrangements for multiple antenna services on a spoiler assembly while still maximizing the performance of each of the antenna services, taking into account the required characteristics of each service and the physical impact of the vehicle body on the service.

[0042] The perspective view of FIG. 3, showing a cross-sectional view of the spoiler looking from left to right along the horizontal axis 20, illustrates how the LTE antennas 31-a, 31-b near each end of the spoiler housing may be positioned within the inner surface of the lower portion 10a of the spoiler housing in side regions (Zone B) on either side of a central region (Zone A). As shown, a portion of each LTE antenna 31-a, 31-b projects downwardly into the lower portion 10a of the housing. In this embodiment, the lower portion 10a takes the form of a single downwardly directed antenna fin that forms part of the housing. As shown, the laterally spaced antennas are generally aligned with a vertical axis 21 that is perpendicular to the horizontal axis 20.

[0043] By having vertically oriented antennas 31-a, 31-b protruding downwards relative to the aerodynamic surface above the spoiler, the antennas 31-a, 31-b are out of the view of the observer of the vehicle, thus making the vehicle look more attractive. By protruding the antennas downwards, forward reception necessarily requires the signal to travel through the vehicle itself, which causes some degradation of the forward antenna gain. However, as proposed in the present invention, by selecting an appropriate location for each application in the spoiler housing, such a drawback is compensated for by a better performance of the antenna. For example, cellular antennas on both sides of the spoiler can be complemented with each other antenna (i.e. covering different areas), and the combination of antennas gives a perfect match.

[0044] In a particular embodiment, the spoiler assembly includes a radio broadcast antenna for analog AM / FM or digital DAB / TV services. In this embodiment, the radio broadcast antenna may be made of wire or conductive film, for example a foil antenna or an antenna realized with a plastic film (e.g. PET). The invention also proposes to preferably place those foil antennas in Zone A and Zone C with minimal contact with Zone B. Furthermore, the invention proposes to have a satellite antenna in Zone A installed above the foil antenna. This has the advantage of using the foil antenna as a ground plane for the satellite antenna, further improving the performance of the satellite antenna and at the same time not blocking the vehicle's communication link with the satellite. Since the design of the satellite antenna is rather small, the presence of the satellite antenna above the foil antenna is minimal so that there is no impact on the performance of the foil antenna. Furthermore, the invention proposes to place the foil antenna below the V2X and / or WiFi antenna in Zone C. Since in the case of the V2X antenna the communication occurs not below the spoiler direction but in a horizontal plane or at a certain altitude, the presence of the foil antenna below acts as a ground plane and further improves the performance of the V2X antenna. Again, since V2X antennas are often mounted vertically, the overlap area on the foil antenna is fairly limited and minimal so as to have no impact on the performance of the foil antenna. Finally, the foil antenna in the design stage can already anticipate the presence of these antennas and therefore include any impact if necessary. In this embodiment, preferably the cellular or telematics antenna in zone B has minimal contact with the foil antenna. If necessary, it is proposed that the cellular or telematics antenna is installed above the foil antenna. In this case, the foil antenna acts as a ground plane for the cellular and telematics antennas. For a particular design of the cellular or telematics antenna, this configuration brings important advantages as the ground plane for these antennas is expanded by the foil antenna, thus further improving the performance of these cellular or telematics antennas.

[0045] In this embodiment, the lower portion 10a is integrally formed with the cover (upper) portion 10b of the spoiler housing 10. However, in other embodiments, the spoiler housing may be formed of two distinct components, one component including the cover (upper) portion 10b and the other component including the lower portion 10a.

[0046] Thus, an example placement of the LTE antennas 31a, 31b may be configured in a manner that seals the LTE antennas 31a, 31b to the spoiler housing under the fins. In other embodiments, the lower portion 10a of the spoiler housing may include multiple fins that each seal one or more antennas.

[0047] In another embodiment, a portion of the antenna resides within the upper portion of the lower portion 10a of the housing. This has the advantage of using available space in the aerodynamic portion of the spoiler and minimizing the space required by the lower portion 10a of the housing, which may adversely affect the overall weight and aerodynamic performance of the spoiler. However, in other embodiments, the entirety of the antenna may protrude from or below a plane generally corresponding to the boundary between the upper and lower portions, so as to include substantially the entirety of the vertically oriented antenna element within the lower portion.

[0048] While the above embodiment orients the antenna vertically within the spoiler assembly, in other embodiments the antenna may project generally downward by being oriented at an angle to the vertical axis, which may help reduce the required downward space or allow the antenna to fit within a given shape of the spoiler housing without unduly compromising antenna reception.

[0049] In another embodiment, the antenna is positioned at 45 degrees to the vertical axis. This design freedom can help reduce the space required within the spoiler housing and allow the antenna to fit within a given shape of the spoiler housing without unduly compromising antenna reception (i.e., due to orientation changes).

[0050] In FIG. 3, cellular antennas are provided in the side area (Zone B). As mentioned above, the antennas may be configured as an array to increase data throughput, for example, by a MIMO configuration. This is particularly important for future use of high data rate protocols such as 4G and 5G, and potentially V2X protocols. As can be seen, additional cellular antennas may be included in the spoiler housing to further increase data throughput for such configurations without creating significant aerodynamic penalties for the vehicle. Additionally, in embodiments, the depth of the spoiler housing may be appropriately increased to accommodate longer vertical antennas and provide greater signal bandwidth. In another application, the antennas may be configured to receive or transmit signals using beamforming techniques. This may be used to identify the direction of the received signal and further focus the directivity of the antenna's reception or transmission to improve the antenna gain in that direction. Beamforming performance may be improved with additional antennas, thus potentially beneficially utilizing the additional space created by having antennas protruding downward from the surface of the spoiler to provide these additional or improved functions without affecting the aerodynamics of the vehicle, for example.

[0051] In the above embodiments, a V2X receiver / transceiver and associated antennas are described. In one embodiment, the V2X receiver / transceiver and antennas are for V2V (vehicle-to-vehicle) communication and are compliant with Dedicated Short-Range Communications (DSRC) standards (e.g., IEEE 802.11p) and C-V2X standards.

Claims

1. A spoiler assembly (100) for a vehicle, a. A spoiler housing (10) having a left end and a right end, and having a lower portion (10a) and a cover portion (10b), wherein the inner portion (10a) has an inner surface facing the inner surface of the cover portion (10b), the spoiler housing (10); b. A plurality of antenna elements (30, 31, 32) arranged on the surface of the spoiler housing and operating at different frequency ranges, the plurality of antenna elements (30, 31, 32); comprising c. The spoiler housing has at least one central region (zone A) and at least one lateral region (zone B) on both sides of the central region (zone A) and at the ends of the spoiler housing, In the central region (zone A), at least one satellite antenna element (30) is provided, and in at least one lateral region (zone B) at the left and right ends of the spoiler housing (10), at least one cellular antenna element and / or a telematics antenna element (31a, 31b) are provided, the spoiler assembly (100).

2. In a further region (zone C) arranged between the central region (zone A) and the lateral region (zone B), a V2X (32) and / or a Wifi antenna element are provided, the spoiler assembly (100) according to claim 1.

3. At least the Wifi antenna is arranged between the telematics antenna element and / or the cellular antenna element (31a, 31b) and the V2X antenna (32), the spoiler assembly (100) according to claim 2.

4. In the central region (zone A), at least one satellite antenna (30) operating at a frequency of 1 to 40 GHz is provided, the spoiler assembly (100) according to claim 1.

5. The antenna element provided in the lateral region (zone B) is configured as a multiple-input multiple-output array (MIMO), the spoiler assembly (100) according to claim 1.

6. The antenna element provided in at least one central region (zone A) is a satellite antenna (30) selected from among satellite radio, GPS navigation, satellite Internet, and satellite communication, the spoiler assembly (100) according to claim 1.

7. The spoiler assembly (100) according to claim 1, wherein the antenna elements (31a, 31b) provided in the side region (zone B) are one of 2G, 3G, 4G, LTE, and 5G antennas.

8. The spoiler assembly (100) according to claim 1, wherein two or more LTE antenna elements are provided.

9. The spoiler assembly (100) according to claim 1, wherein the antenna elements are laterally spaced within the spoiler housing.

10. The spoiler assembly (100) according to claim 1, wherein a second V2X antenna element is provided, and the first V2X element and the second V2X element have the same or different orientations or the same or different shapes.

11. The spoiler assembly (100) according to claim 1, wherein at least one radio broadcast antenna is provided to provide services for analog signals such as AM and FM or digital signals such as DAB, and TV services.

12. The at least one radio broadcast antenna according to claim 11 is made of a flexible film having a wire or metal foil or printed metal pattern, and the metal foil or flexible film is preferably disposed under the satellite antenna in the central region (zone A) and functions as a ground plane for the satellite antenna. The spoiler assembly (100).

13. The broadcast antenna according to claim 11 or 12 is made of a flexible film having a wire or metal foil or printed metal pattern, and the metal foil or flexible film is preferably disposed under the V2X antenna and functions as a ground plane for the V2X antenna (32). The spoiler assembly (100).

14. The broadcast antenna element is made of a flexible film having a wire or metal foil or printed metal pattern, and the metal foil or flexible film is preferably disposed adjacent to or directly below the cellular and / or telematics antennas (31a, 31b) in the side region (zone B). Preferably, the cellular antennas (31a, 31b) do not overlap with the broadcast antenna element in order to reduce the mutual influence between the services. The spoiler assembly (100) according to claim 11 or 12.

15. A vehicle including the spoiler assembly according to claim 1.