The invention relates to radiofrequency antennas, especially those which can be embedded in portable telecommunications devices.
The antenna is a key element of a portable telecommunications device.
The development of mobile radio applications and the development of novel telecommunications standards involve using antennas likely to be embedded on different types of equipment.
Solutions for antennas particularly effective in size, volume and weight are therefore preferred.
Solutions for antennas known as “patch” antennas, with plane radiating metallic structures are known conventionally. Folded-up “patch” antennas or even slot “patch” antennas are known especially.
However, the metallic patterns in these structures typically have dimensions fractions of the operating wavelength (for example, structure semi-wave, quarter-wave structure, etc.) such that they still have a particularly large bulk.
The invention proposes a solution of a compact antenna which is easy to manufacture.
To this end, the invention proposes a multi-level compact antenna comprising: a ground plane; a radiating element comprising n≧2 portions extending in n≧2 planes parallel according to a planar pattern, the planes defining a volume above the ground plane, the radiating element comprising a first end connected to the ground plane and a second end terminating via an open circuit.
The invention is advantageously completed by the following characteristics, taken singly or in any of their technically possible combinations:
The advantages of the invention are multiple.
The structure of the antenna is simple due to use of a radiating element which is folded up.
The folded-up radiating element givers the antenna a compact structure.
As the positioning of the excitation line and the length of the radiating element can be adjusted, this gives the antenna simple adjustment in performance.
Other characteristics, aims and advantages of the invention will emerge from the following description which is purely illustrative and non-limiting and which must be considered with respect to the appended drawings, in which:
In all figures, similar elements have identical references.
In relation to
To have an antenna with reduced volume, the radiating element 20 comprises n≧2 (n=3) portions 21, 22, 23 which extend in n≧2 (n=3) parallel planes 210, 220, 230 according to a planar pattern. The planes define a volume V above the ground plane 10.
Each portion 21, 22, 23 is connected to the portion of the immediately upper and/or lower plane.
The radiating element 20 also comprises a first end 2 connected to the ground plane 10 and a second end 2′ which terminates in an open circuit.
To interconnect the different portions, the radiating element comprises, apart from the portions, several sections 200 (n sections) of radiating elements for connecting together the portions which extend in the parallel planes. A section is connected between the ground plane 10 and the n=1st portion of radiating element. In this way, each section 200 ensures the electrical links between each portion 21, 22, 23 of radiating element.
As will be clear, the radiating element 20 is in a single piece and the dimensions of the different portions 21, 22, 23 are such that the electrical character of inductive nature is preferred.
To supply the multi-level compact antenna, the latter comprises an excitation probe 100 (of coaxial type) comprising a central core 102 connected to the radiating element 20 and an external conductor 101 connected to the ground plane 10. In particular the central core 102 of the excitation probe is connected at a point P of the n=1st portion 21 of the radiating element 20.
The choice of the relative position of the point P with respect to the connection to the ground plane 10 of the radiating element 20 by means of the first end 2 easily regulates the value of the level of adaptation of the antenna.
The radiating element can be a metallic wire of section of between 0.1 mm2 and 5 mm2, typically 1 mm2.
Alternatively, the radiating element can be a metallic ribbon of width, fixed or continuously variable, or tiered with increase of this width from the first end 2 towards the second end 2′, of between 0.5 mm and 10 mm, typically 2.5 mm for a fixed width and thickness of between 10 μm and 500 μm, typically 50 μm. In this case the ribbon can be obtained by cutting or etching of a metallic film.
According to the first embodiment of
So the multi-level compact antenna of
According to a second embodiment, illustrated in
In addition, the radiating element 30 comprises a first end 3 connected directly to the ground plane 10 and a second end 3′ which terminates in an open circuit.
In this way, the multi-level compact antenna of
In the same way as in the first embodiment, to interconnect the different portions the radiating element 30 comprises, apart from the portions, several sections 300 (n sections) of radiating elements for connecting together the portions which extend in the planes parallel. A section is connected between the ground plane 10 and the n=1st portion of radiating element. So each section 300 ensures electrical links between each portion 31, 32, 33 of radiating element.
According to a third embodiment, illustrated in
In addition, the radiating element 40 comprises a first end 4 connected directly to the ground plane 10 and a second end 4′ which terminates in an open circuit.
In this way, the multi-level compact antenna of the
In the same way as in the first and second embodiments, to interconnect the different portions the radiating element 40 comprises, apart from the portions, several sections 400 (n sections) of radiating elements to connect together the portions extending in the parallel planes. A section is connected between the ground plane 10 and the n=1st portion of radiating element. So, each section 400 ensures electrical links between each portion 41, 42, 43, 44, 45 of radiating element.
According to a fourth embodiment, illustrated in
According to this embodiment, the portions extend according to the following alternation: a first plane 510 perpendicular to the ground plane 10, a second plane 520 perpendicular to the ground plane 10 and perpendicular to the first plane 510, a third plane 530 parallel to the ground plane 10 and perpendicular to the first 510 and second 520 planes, a fourth plane 540 perpendicular to the ground plane 10 and perpendicular to the third plane 530, a fifth plane 550 parallel to the ground plane 10 and perpendicular to the fourth plane 540.
Also, the radiating element 50 comprises a first end 5 directly connected to the ground plane 10 and a second end 5′ terminating in an open circuit.
The radiating element 50 especially comprises portions in the form of meanders.
In this fourth embodiment and in contrast to the other embodiments described earlier, there are no sections connecting the different portions extending in the parallel planes but it is portions of radiating elements which connect these different portions according to the same planar pattern, here in the form of meanders.
In each of the embodiments described hereinabove, the total length of the radiating element and the form of each portion adjust the value of the operating frequency of the multi-level compact antenna.
The planar pattern according to which the portion extends is selected from the following group: meanders (see
In each of the embodiments, each portion is folded up to give it the factor of preferred form (meanders, spiral, teeth, sinusoidal or chevrons).
Alternatively, in each of the embodiments described hereinabove, the spaces between the successive empty planes can be filled by dielectric materials, which will preferably be selected with relative permittivities of very low value, in principle the closest possible to 1, and dielectric losses also as low as possible (tg(δ)=0).
An antenna according to the first embodiment illustrated in
The operating measured frequency is 151.0 MHz, with a level of adaptation less than −20 dB at this frequency, and this for a value of reference impedance of 50 Ω. The width of the bandwidth (for a value of the level of adaptation less than −10 dB) in this case is of the order of 1.8 MHz. This radiating element is further contained in a parallelepiped volume of dimensions 50×50×22 mm3. Given the operating frequency of 151.0 MHz, the largest dimension of the antenna (of a value of 50 mm) is of the order of λ/40, resulting in extreme compactness.
Number | Date | Country | Kind |
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1355019 | May 2013 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/061266 | 5/30/2014 | WO | 00 |