The present invention relates to the field of radio-frequency line technology; it relates in particular to an antenna coupler for connection of a radio-frequency antenna according to the preamble of claim 1.
In many technical appliances which contain a radio-frequency transmitter or receiver and at the same time have a high-voltage with respect to ground (mains voltage) conductively applied to them, an antenna is intended to be connected via a coaxial cable. The corresponding antenna and the coaxial cable must be galvanically isolated from the appliance since there would otherwise be a lethal danger if they were touched.
Until now, the problem has been solved, for example by two dipole antennas arranged parallel in the appliance, although this results in a high continuity attenuation of at least 6 dB for the useful signal, because of the undesired radial emission. The output power was fed into a coaxial cable in order to be passed on to a remote antenna.
Known decoupling using capacitors (U.S. Pat. No. 4,987,391) has either a low dielectric strength (1 kV) or a high continuity attenuation, since capacitors have to be physically large for a high dielectric strength, and this has a negative effect on the attenuation, because of the high inductive reactance and the undesirable emission.
It is known from the document U.S. Pat. No. 7,545,243 that line structures are suitable for galvanic decoupling.
However, one disadvantage of this known solution is likewise the low dielectric strength.
The object of the invention is therefore to further develop an antenna coupler for connection of a radio-frequency antenna in such a way that the above-mentioned disadvantages can be overcome.
The problem on which the invention is based is solved by the totality of the features of claim 1. Further embodiments are subject matter of dependent claims 2 to 10.
The antenna coupler according to the invention for galvanicily isolation of the antenna from the transmitter/receiver achieves a high dielectric strength voltage of up to 12 kV DC and mains AC voltage, but at the same time also an extraordinary low continuity attenuation for the radio-frequency useful signal. The antenna coupler according to the invention can achieve a particularly low continuity attenuation within desired frequency limits since the coupling lines, that is to say the first and second radio-frequency lines, can be arranged at a particularly short distance from one another in the depth direction of the multilayer printed-circuit board. The normally used layer thickness of the multilayer printed-circuit board can be used as the separation between the coupling lines. By way of example, a separation of 0.3 mm can be achieved.
A wide usable radio-frequency bandwidth is achieved, which may be more than one octave, for example from 800 MHz to 2200 MHz. This can be produced cost-effectively using multilayer printed-circuit boards, for example double or quadruple multilayer printed-circuit boards.
The antenna coupler is therefore preferably in the form of a multilayer printed-circuit board. The coupler is formed from two radio-frequency lines which are coupled in a suitable manner. The geometric arrangement of the metal surfaces (in particular copper surfaces) of the radio-frequency lines forms the coupler. The separations between the copper surfaces and the electrically insulating substrate material of the multilayer printed-circuit board ensure the necessary isolation dielectric strength.
In the present case, the radio-frequency lines are two coplanar lines, which are embedded one above the other in two different layers of the multilayer printed-circuit board. These lines preferably each consist of at least one stripline for the inner conductor and at least two striplines for the outer conductor.
These two sets of three conductors are in one preferred embodiment chosen to be separated and to have line widths such that the resultant line has a characteristic impedance of 50 Ohm. This allows the radio-frequency power to be passed on from the coaxial cable to the transmitter/receiver in the interior of the appliance without any joints and therefore with low losses.
The thickness of the dielectric (dielectric material) is preferably chosen to achieve a dielectric strength as required in the respective application.
In preferred embodiments, the connections of the coplanar lines on the surface of the printed-circuit board comply with a leakage current distance as required for the desired dielectric strength. For this purpose, in one exemplary embodiment, the coplanar line (typically on the antenna side) which is located in the inner layer of the printed-circuit board is lengthened beyond the coupling zone with a different geometry, that is to say for example with a different conductor width and/or conductor separations, before contact is made with the surface.
The preferred embodiment of the antenna coupler according to the invention is in the form of a coupling structure which is shielded on one side. The appliance-side coplanar line has an additional shielding surface added to it, which is connected to printed-circuit board plated-through holes. The shielding surface is preferably arranged such that, together with the striplines of the appliance-side coplanar line, it partially encapsulates the coaxial line, that is to say the antenna-side coplanar line. This results at least in the shielding side being less sensitive to being influenced by metal parts in the interior of the appliance.
By way of example, the known material FR-4, a glass-fiber-reinforced, epoxy-based material, which has a dielectric strength of more than 30 kV/mm is suitable for use as an insulating substrate material in order to achieve a high dielectric strength for the multilayer printed-circuit board.
Sufficiently long leakage current distance must be ensured on the surface of the printed-circuit board between the galvanically isolated parts. By way of example, a leakage current distance of somewhat more than 10 mm is required for a dielectric strength of 12 kV.
The antenna coupler according to the invention will be described in the following text with reference to the figures. Only a detail of the antenna coupler, specifically the coupling area in the multilayer printed-circuit board, is in each case illustrated.
The invention will be explained in more detail in the following text using exemplary embodiments and in conjunction with the drawing. The following color coding of the illustrated structural elements is used in the figures:
Light-blue: Air
Orange-red and yellow-green: Metal surfaces of striplines. Dark-blue and dark-green sections at the ends of striplines (center conductors) should be read in the same way as orange-red sections, that is to say they should be understood to be integral components of the respective stripline and, despite their different coloring, have the same meaning on these structural elements as an orange-red or yellow-green coloring.
Dark-green: Dielectric layer insulation
Light-green: Cover insulation or core layer (core) of the multilayer printed-circuit board.
In the figures:
The coplanar lines 3a, 3b, 4a, 4b are arranged on one face of a printed-circuit board core layer 6 and are shielded by an electrically conductive shielding structure 5, with this shielding structure 5 extending partially on the opposite, other of the two faces of the printed-circuit board core layer 6 and being designed such that the first radio-frequency line 3a, 3b and appliance side metal parts, which are not illustrated here and are not part of the antenna coupler, do not interact with the carrying of radio-frequency signals.
In
The coplanar lines 3a, 3b, 4a, 4b run parallel to one another in the longitudinal direction x in the multilayer printed-circuit board (2); apart from short antenna-side and appliance-side length sections (striplines 10a, 10b, 11a, 11b), the coplanar lines 3a, 3b, 4a, 4b completely cover one another in the longitudinal direction, and they completely cover one another in their lateral direction y at right angles to the longitudinal direction x.
The following values are helpful as exemplary dimensions for the embodiment of the antenna coupler according to the invention as described here, in which case the values indicated here for the width are to be observed in the y direction, the length values in the x direction and the thickness values in the z direction:
In
As already indicated with reference to
The invention proposed here is, of course, not restricted to the illustrated embodiments; without departing from the idea of the invention, it is, of course, also possible, for example, to couple the second radio-frequency line 4a, 4b on the antenna side, while the first radio-frequency line 3a, 3b can be coupled on the appliance side.
Number | Date | Country | Kind |
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09173079 | Oct 2009 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2010/004825 | 8/6/2010 | WO | 00 | 6/26/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2011/044965 | 4/21/2011 | WO | A |
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Number | Date | Country | |
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20120262254 A1 | Oct 2012 | US |