GLAZING COMPRISING AN ANTENNA AND METHOD OF MANUFACTURING THE SAME AND USE OF THE SAME
20230092173 · 2023-03-23
Assignee
Inventors
Cpc classification
H01Q9/30
ELECTRICITY
International classification
H01Q1/52
ELECTRICITY
Abstract
A glazing comprises a ply of glazing material; an antenna at least partly disposed on the ply of glazing material comprising a feed point at one end thereof for connecting to an external circuit; an electronic device positioned on or near the glazing for emitting a frequency; and an anti-antenna for at least partly cancelling the frequency connected to the antenna by a bridge and extending back towards the feed point parallel with the antenna to an end.
Claims
1. A glazing comprising: a ply of glazing material; an antenna at least partly disposed on the ply of glazing material, the antenna comprising a feed point at one end thereof for connecting to an external circuit; an electronic device positioned on or near the glazing for emitting a frequency; and an anti-antenna for at least partly cancelling the frequency connected to the antenna by a bridge and extending back towards the feed point parallel with the antenna to an end.
2. A glazing according to claim 1, wherein a length from the bridge to the end divided by a first shortening factor of the anti-antenna is an odd multiple of a quarter wavelength in free space +/−25% of the frequency.
3. A glazing according to claim 1, wherein the electronic device is a second antenna having a length and a feed point wherein the length divided by a second shortening factor of the second antenna is an odd multiple of a quarter wavelength in free space +/−25% of the frequency.
4. A glazing according to claim 1, wherein a distance from the feed point to the end divided by a third shortening factor between the feed point and the end is a multiple of a half wavelength in free space +/−25% of the frequency.
5. A glazing according to claim 1, wherein the anti-antenna is a filter to cancel interference from the second antenna at the frequency or a plurality of anti-antennas is a plurality of filters to cancel interference from a plurality of electronic devices at a plurality of frequencies.
6. A glazing according to claim 1, wherein a length from the bridge to the end is from 300 to 500 mm for anti-FM function, or is from 50 to 70 mm for anti-LTE function.
7. A glazing according to claim 1, wherein a gap between the antenna and the anti-antenna is from 20 to 40 mm for anti-FM function; or a gap between the antenna and the anti-antenna is from 1 to 6 mm for anti-LTE function.
8. A glazing according to claim 1, wherein the antenna further comprises a connector extending from the feed point to a connection point on the ply of glazing material.
9. A glazing according to claim 8, wherein the connector is a flat cable and the anti-antenna and the bridge are configured on the flat cable.
10. A glazing according to claim 1, wherein the external circuit comprises an amplifier connected to the feed point and positioned on or near the glazing.
11. A glazing according to claim 1, wherein the antenna is a first antenna and the electronic device is a second antenna, and the second antenna is arranged in a vehicle bumper or a vehicle roof.
12. A glazing according to claim 1, wherein the ply of glazing material is toughened glass.
13. A glazing according to claim 1, wherein the ply of glazing material is a first ply of glazing material, and further comprising a second ply of glazing material bonded to the first ply of glazing material by a ply of interlayer material to form a laminated glass.
14. Method of manufacturing a glazing comprising: providing a ply of glazing material; disposing an antenna at least partly on the ply of glazing material, the antenna comprising: a feed point at an end of the antenna for connecting to an external circuit; positioning an electronic device on or near the glazing for emitting a frequency; providing an anti-antenna for at least partly cancelling the frequency, the anti-antenna being connected to the antenna by a bridge and extending back towards the feed point parallel with the antenna to an end.
15. Use of a glazing according to claim 1 as a window in a building or in a vehicle, as a windscreen, side window, rear window or roof window.
16. A glazing according to claim 1, wherein a length from the bridge to the end is from 360 to 450 mm for anti-FM function, or is from 50 to 70 mm for anti-LTE function.
17. A glazing according to claim 1, wherein a length from the bridge to the end is from 300 to 500 mm for anti-FM function, or is from 60 to 65 mm for anti-LTE function.
18. A glazing according to claim 1, wherein a length from the bridge to the end is from 360 to 450 mm for anti-FM function, or is from 60 to 65 mm for anti-LTE function.
19. A glazing according to claim 1, wherein a gap between the antenna and the anti-antenna is from 28 to 32 mm for anti-FM function; or a gap between the antenna and the anti-antenna is from 3 to 4 mm for anti-LTE function.
20. A glazing according to claim 1, wherein a length from the bridge to the end is from 50 to 70 mm for anti-LTE function and a gap between the antenna and the anti-antenna is from 1 to 6 mm for anti-LTE function.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DRAWINGS
[0045] The following is a description of the invention with reference to the drawings in which like references are used. Embodiments of the invention are described as non-limiting examples.
[0046]
[0047] The anti-antenna (5) has a length (A) from the bridge (6) to the end (7). A distance (B) is from the end (7) to the feed point (3). A gap (G) is between the antenna (1) and the anti-antenna (5). The electronic device (2) may be a second antenna (2) having a second feed point (4) and a length (A′). The electronic device (2) can be on part of a building or on a part of a vehicle, for example a bumper or a roof.
[0048] The anti-antenna (5) may have a length (A) from the bridge (6) to the end (7) divided by a first shortening factor (K1) of the anti-antenna (5) equal to an odd multiple of a quarter wavelength in free space +/−25% of the frequency (F).
[0049] The second antenna (2) may have a length (A′) and a feed point (4) wherein the length (A′) divided by a second shortening factor (K2) of the second antenna (2) is an odd multiple of a quarter wavelength in free space +/−25% of the frequency (F).
[0050] The distance (B) from the feed point (3) to the end (7) divided by a third shortening factor (K3) between the feed point (3) and the end (7) is a multiple of a half wavelength in free space +/−25% of the frequency (F).
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[0057] For example, the antenna (1) may extend away from the feed point (3) via a plurality of knee points.
Example 1 and Comparative Example
[0058] The following is a description of examples of the present invention. The present invention is not limited thereby. A comparative example is also described.
[0059]
[0060] The antenna (1) has length equivalent to 0.725 m in free space. For the Comparative Example (C-Ex) and Example 1, a lowest frequency at which peak radiation efficiency occurs is when the length is a quarter wavelength, i.e. wavelength 2.900 m and frequency 103 MHz, i.e. FM radio.
[0061] For the Comparative Example (C-Ex), similar peak radiation efficiency also occurs at a harmonic frequency, approximately 720 MHz. The harmonic frequency peak is undesirable because LTE signals transmitted by an electronic device (2), for example a mobile phone antenna, are received as interference at the feed point (3) of the antenna (1). LTE band is nominally 700 MHz; user equipment transmits 703 to 748 MHz and receives 758 to 803 MHz.
[0062] Example 1 comprises an anti-antenna (5) having a length (A) equivalent to 0.100 m in free space. Lowest frequency at which resonance occurs in the anti-antenna (5) is when the length (A) is a quarter of a wavelength, i.e. wavelength 0.400 m and frequency 750 MHz.
[0063] The anti-antenna (5) positioned adjacent the antenna (1) and separated therefrom by the gap (G) 3 mm causes peak attenuation of radiation efficiency −22 dB at 720 MHz. Attenuation occurs from 630 to 810 MHz, i.e. filter bandwidth is 180 MHz.
Examples 2 and 3
[0064]
[0065] Attenuation becomes stronger as the gap (G) becomes narrower. Example 3 having the gap (G) 1 mm causes radiation efficiency to reduce to −29 dB.
[0066] Attenuation occurs over a smaller frequency range as gap (G) becomes narrower. In Example 3, attenuation occurs from 690 to 810 MHz, i.e. filter bandwidth is 120 MHz.
[0067] Due to narrow bandwidth, the anti-antenna (5) has no influence on FM/DAB/TV.
Examples 4, 5, 6 and 7
[0068] A set of four examples uses a ply of glazing material (11) having thickness 3.15 mm and an antenna (1) deposited as silver print having thickness 0.01 mm, width 1 mm and length 0.7 m. An anti-antenna (5) is deposited parallel thereto with a gap (G) of 10 mm.
[0069]
[0070]
[0071] Having selected 40 mm (Example 7), the individual graph of
[0072] In case of a requirement for TV transmission 750 to 800 MHz, then anti-antenna length (A) of approximately 50 mm can be inferred from
[0073] Length (A) depends on a dielectric factor of the ply of glazing material (11) or the connector (8) acting as a substrate for the anti-antenna (5). To make samples, first shortening factor (K1) can be estimated as 0.7 for toughened glass, 0.6 for laminated glass or 0.5 for coated glass with laser etching lines. Samples should be tested in an anechoic chamber to measure actual frequencies filtered. To make a prototype, the actual frequencies filtered should be compared with the predetermined frequency (F) and length (A) made shorter or longer according to a revised estimate of the first shortening factor (K1). Similar estimating and testing can be used for length (A′) of the second antenna (2), distance (B) and corresponding second and third shortening factors (K2, K3).
Example 8
[0074] Example 8 is a laminated glazing (10) as
Multiple Anti-Antennas
[0075] A plurality of anti-antennas (5) may be provided on an antenna (1) each having a length (A1, A2, etc.) to cancel a predetermined frequency (F1, F2, etc.). This is advantageous to filter a plurality of undesired frequencies at the feed point (3) to an amplifier (20).
Anti-Antenna having a Complex Shape
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[0077] WO2017194961A1 (Baranski) incorporated by reference discloses a glazing wherein an antenna has a plurality of knee points forming a complex shape on a connector.
[0078] In
[0079] Total length of an anti-antenna (5) having a complex shape is a sum of parts, for example two parts having lengths A1, A2. Length A1 is from the bridge (6) to the knee point. Length A2 is from the knee point to the end (7) of the anti-antenna (5). A knee point means a bend between two straight sections.
KEY TO THE DRAWINGS
[0080] 1: Antenna [0081] 2: Electronic device [0082] 3: Feed point of antenna [0083] 4: Feed point of electronic device [0084] 5: Anti-antenna [0085] 6: Bridge [0086] 7: End of anti-antenna [0087] 8: Connector [0088] 9: Connection point [0089] 10: Glazing [0090] 11, 12: First and second plies of glazing material [0091] 13: Ply of interlayer material [0092] 15: Frame [0093] 20: External circuit [0094] A: Length of anti-antenna; A1, A2: Lengths of parts; A′: Length of electronic device [0095] B: Distance from feed point to end of anti-antenna [0096] F: Frequency emitted by electronic device [0097] G: Gap between antenna and anti-antenna [0098] K1, K2, K3: First, second and third shortening factors