BATTERY PROVIDED WITH THREE ELECTRICAL CONNECTION TONGUES
20170244169 · 2017-08-24
Inventors
Cpc classification
H01Q7/00
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M50/00
ELECTRICITY
H01Q9/0421
ELECTRICITY
H01Q1/44
ELECTRICITY
H01M2220/30
ELECTRICITY
International classification
Abstract
Disclosed is a battery having a positive terminal and a negative terminal and two electrical connection tongues, each tongue secured to one of the terminals thereof. The battery also includes at least one additional connection tongue secured to one of the terminals thereof, forming a radiating element with the electrical connection tongue secured to the same terminal of the battery.
Claims
1. A battery equipped with a positive terminal and a negative terminal and two electrical connection tabs (11, 12), each secured to one of its terminals, said battery further comprising at least one additional connection tab (14) secured to one of its terminals, forming a radiating element with the electrical connection tab that is secured to the same terminal of the battery.
2. The battery as claimed in claim 1, wherein the additional connection tab (14) is connected to an electronic circuit (13).
3. The battery as claimed in claim 1 wherein the additional connection tab (14) forms a loop antenna with the tab associated with the same terminal of the battery.
4. The battery as claimed in claim 1 wherein the additional connection tab (14) forms a monopole antenna.
5. The battery as claimed in claim 1 wherein the additional connection tab (14) forms, with one of the electrical connection tabs (11, 12), a planar inverted-F antenna (PIFA).
6. The battery as claimed in claim 5, wherein a first connection tab is connected to one of the terminals of the battery and to ground, a second connection tab is connected to the other terminal and receives an excitation signal, and wherein the additional connection tab is left free and forms a monopole.
7. The battery as claimed in claim 6, wherein the resonant frequency of the antenna is set by the length and/or the width and/or the thickness and/or the positioning of the additional connection tab.
8. The battery as claimed in claim 1 wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
9. The battery as claimed in claim 2, wherein the additional connection tab (14) forms a loop antenna with the tab associated with the same terminal of the battery.
10. The battery as claimed in claim 2, wherein the additional connection tab (14) forms a monopole antenna.
11. The battery as claimed in claim 2, wherein the additional connection tab (14) forms, with one of the electrical connection tabs (11, 12), a planar inverted-F antenna (PIFA).
12. The battery as claimed in claim 2, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
13. The battery as claimed in claim 3, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
14. The battery as claimed in claim 4, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
15. The battery as claimed in claim 5, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
16. The battery as claimed in claim 6, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
17. The battery as claimed in claim 7, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
18. The battery as claimed in claim 9, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
19. The battery as claimed in claim 10, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
20. The battery as claimed in claim 11, wherein the positioning of the additional connection tab (14) on the periphery of the battery allows the gain of the antenna to be adjusted by varying the free radiating volume of the antenna.
Description
[0023] Other objects, features and advantages of the present invention will become apparent from the following description, provided by way of non-limiting example and with reference to the appended drawings, in which:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] As illustrated in
[0033] This battery is equipped, in a manner known per se, with two electrical connection tabs 11 and 12. Each of these tabs is secured, in a manner known per se (most commonly by means of welding, but also by means of clamping, etc.), to one of the terminals of the battery.
[0034] Such a battery is placed on an electronic circuit board (PCB) 13 so as to supply this electronic circuit board with electrical power and to receive or transmit signals S from/to a remote electronic device (not shown).
[0035] When the connection tabs of the battery are used as an antenna, the received/transmitted signal S passes through the interior of the battery in order to pass from one tab to the other. As mentioned above, this passage through the interior of the battery induces variations in parasitic impedance, which are difficult to measure and to model. Additionally, these variations are not stable over time and vary depending on the chemical compounds used in the battery, on the wear of the battery, on its method of manufacture, on the battery manufacturer, etc.
[0036] The aim of the present invention is therefore to be unaffected by parasitic variations produced in batteries used as antennas.
[0037] To this end, according to the invention (
[0038] As a variant, as will be seen below, the connection tab 14 could equally be secured to the negative terminal of the battery, without affecting the scope of the invention.
[0039] As shown in
[0040] By adding the additional connection tab 14, the radiofrequency currents received or transmitted by the loop antenna 11, 14 are forced to pass around the periphery of the battery without ever penetrating the interior. Consequently, by channeling these radiofrequency currents outside the battery, the received/transmitted signal S is no longer subject to the variations in impedance linked to the internal parameters of the battery.
[0041] The addition of the additional tab 14 is inexpensive, since it is just a simple conductive metal tab. This tab is also not difficult to put in place, since it is fixed to the battery in the same way as the connection tabs 11 and 12 that are already present. However, it makes it possible to channel (guide) the received/transmitted signal S outside the battery and to keep it out of the variation-causing areas located inside the battery.
[0042] The invention thus makes it possible, in an inexpensive manner, to avoid determining and modeling the variations in impedance taking place inside of the battery, these phenomena being unstable and still little understood.
[0043] As shown in
[0044] Again, the positioning of the additional connection tab 14 on the periphery of the battery may take any value. For example, the tab 14 may be positioned substantially in parallel to the tab 12 (
[0045] Of course, the additional connection tab 14 may also assume any intermediate positions between those shown in
[0046]
[0047] The battery 10 is a button cell having (in a manner known per se) an annular crown C forming the positive terminal of the battery and a cylindrical central portion D forming the negative terminal of the battery. Of course, this is only one exemplary embodiment, the positive and negative terminals of the battery could equally be inverted and/or take different forms from those shown.
[0048] In this exemplary embodiment, an electrical connection tab 11 is connected to the positive terminal of the battery (i.e. to the crown-shaped portion C) and an electrical connection tab 12 is connected to the negative terminal of the battery (i.e. to the cylindrical central portion D). According to the invention, the additional connection tab 14 itself is connected to the positive terminal of the battery (crown C) and forms, with the tab 11, an antenna.
[0049] As may be seen more clearly in
[0050] The portion B of the annular crown C serves as a radiating element with the connection tab 11 and the additional tab 14. It is actually this portion that transmits and receives the radiofrequency signals. The portions A and B of the annular crown C and the electrical 11 and additional 14 connection tabs together form an inverted F (see in particular
[0051] It should be noted that in the exemplary embodiment illustrated in
[0052] Of course, the additional connection tab 14 may be connected to the negative terminal of the battery (
[0053] In the context of this embodiment, the connection tab 11 that is connected to the positive terminal of the battery is additionally associated with an inductor 15, the role of which is to prevent the radiofrequency signal from traveling back toward a microprocessor or any other component of the electronic circuit.
[0054] It should be noted that in the exemplary embodiment illustrated in
[0055] These antennas of PIFA-type have the advantage of being easy to adjust (to optimize) without excessive losses in terms of signal level (in dB) so as to obtain the desired resonant frequency for the antenna thus formed.
[0056] It should be noted that for all of the embodiments described above, the resonant frequency of the antenna is set by the length and/or the width and/or the positioning and/or the thickness of the additional connection tab 14.
[0057] It should be noted that the number of additional tabs may be greater than one. Likewise, the dimensions (length, width, thickness) of the electrical connection tabs and of the one or more additional tabs may be modified in order to facilitate the adjustment of the resonant frequency of the antenna.