The present invention relates to multi-sector antennas, more specifically a multi sector antenna formed from N planar antennas.
The growing development of communications systems, particularly wireless, requires systems that are more and more complex and effective while maintaining manufacturing costs as low as possible and a minimum size. However in this domain, antennas represent an exception to this miniaturization. In fact, they are subject to physical laws that impose a minimum size for operation at a given frequency. Hence, for printed planar antennas, the dimensions are generally in the order of the wavelength at the central operating frequency. It cannot be denied that the printed planar structures are perfectly adapted for mass production of devices integrating passive and active functions. However as for the radiating elements, a planar structure does not authorize a complete control of antenna radiation, particularly in elevation. Moreover, the directivity and angular opening of the main lobe of the radiation pattern of the antenna are directly linked to the antenna dimensions that must be increased to obtain a high degree of directivity and/or large opening of the main lobe. Hence, multi-sector antennas using a planar structure currently on the market are bulky and costly.
The present invention proposes a three dimensional (3D) multi-sector antenna that reduces the projected size of the antenna while maintaining good radio electrical performance particularly in yield, frequency bandwidth and radiation pattern.
The present invention also proposes a three dimensional (3D) multi-sector antenna that is easy to implement and inexpensive.
The present invention therefore relates to a multi-sector antenna comprising N (N>1) planar antennas each constituted of a longitudinal radiation slot etched on a first substrate featuring a ground plane and supplied by an excitation line, the N first substrates being interconnected about the same axis. In accordance with the invention, the N first substrates are provided on at least one of the substrate sides parallel to the radiation axis of each antenna connection means fixed on a second substrate perpendicular to the N first substrates.
According to a characteristic of the invention, the N first substrates are made of plastics, more particularly materials of the PBT (Polybutylene Terephtalate) class.
Consequently, according to a first embodiment of the invention, each N first substrate is constituted by a plastic plate on which one side is metallized.
In an embodiment of the invention, the N first substrates are connected on a mast perpendicular to the second substrate.
According to another embodiment, two first substrates are realized on a single plate in plastic, one part, preferably one half of the first side and another part, preferably the other half of the second side of the plate, being metallized. Moreover, said plate is provided with means permitting its interconnection with at least one other plate.
According to another characteristic of the invention and according to a first embodiment, the N first substrates present on the side fixed to the second substrate a widened part forming said connection means.
According to another embodiment, the connection means are constituted by pins realized on at least one side of said first substrate. Moreover, the second substrate presents a ground plane connecting to the ground plane of the N first substrates, said plane featuring openings for the passage of excitation lines. When the connection means are constituted by pins, the second substrate comprises holes enabling the interlocking with the first substrates.
According to an embodiment of the invention, longitudinal radiation slot type antennas are “progressive wave” type antennas, particularly progressive opening or Vivaldi type antennas.
A three dimensional multi-sector antenna, particularly a Vivaldi type antenna, authorizes great flexibility in realization. The plastic technology enabling the design of 3D multi-sector antennas that can be directly placed on an electronic card like a CMS (surface mounted component) component.
This type of antenna finds applications in the wireless domain, for example for high definition wireless cameras working with frequency bands from 4.8 to 6 GHz.
Other characteristics and advantages of the present invention will emerge upon reading the following description of different embodiments, this description being made with reference to the drawings attached in the appendix, in which:
FIG. 9 shows the radiation pattern at 5.5 GHz of a sector of the antenna of
To simplify the description that follows, the same elements have the same references as the figures.
The present invention will be described in taking for a planar antenna constituted of a longitudinal radiation slot, a Vivaldi type antenna. The tapering of the Vivaldi antenna can have a form that is circular, rectangular, exponential, etc. Other radiating slot planar antenna types can also be possible without leaving the scope of the invention. On
A description will now be given, with reference to
A multi-sector antenna of this type was simulated with the electromagnetic simulation application HFSS based on the finished elements method of the ANSOFT corporation using the following values:
Operating frequency 5.5 GHz.
First substrate: plastic material having a permitivity of 3.5 and a loss tangent of 0.01. The substrate has a thickness of 0.77 mm.
Second substrate: Rogers 4003 type having a permitivity of 3.38 and a loss tangent of 0.0027 and having a thickness of 0.81 mm.
The results of the simulation are provided in
Now is described with reference to
With reference to
Certain improvements can be applied to the embodiments described above. For example, the mast can comprise additional positioning pins or be hollowed out in its lower part to be able to integrate components on a common substrate.
A fourth embodiment of the present invention will now be described with reference to
On the other side of the plate, the metallization is reversed. This structure provides two Vivaldi antennas. The rectangular plate 30 has in its middle a slot enabling interlacing with another rectangular plate 30′ of the same type as shown in
In compliance with the present invention and as shown in
Preferably, the hole corresponding to pin 33′ receiving the microstrip excitation line 32 is metallized. The other pins 33 being metallized, it ensures a ground continuity with the second substrate 34 whose top side is metallized. As for the preceding embodiments, the lower side of the substrate receives the microstrip lines connecting the excitation lines of the Vivaldi antennas at a common supply line by the intermediary of any adequate circuit.
This embodiment is simple and cheap to realize. It requires no soldering and the elements constituting the multi-sector antenna can be standardized.
The multi-sector antenna compliant with the present invention leads to an augmentation in directivity and a reduction in the beam width to cover a given sector using a three dimensional device.
This antenna has the following advantages:
a. Conservation of good performance in terms of gain and beam width while conserving reduced size.
b. Possibility of obtaining a greater number of sectors than with planar technology.
c. Diversification of form factors due to the addition of the third dimension.
d. Flexibility in design, construction and integration due to the “metallized plastic” technology that permits complex and varied forms.
Number | Date | Country | Kind |
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0655246 | Dec 2006 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/FR2007/052419 | 11/29/2007 | WO | 00 | 5/27/2009 |