3-D ANTENNA FOR WIRELESS COMMUNICATIONS
A wireless communications apparatus includes a housing having a first portion and a second portion. The first portion is adapted for insertion into a socket of an electronic device and the second portion includes an end cap. The wireless communications apparatus also includes a printed circuit board (PCB) enclosed within the housing, the PCB having a mounting surface and an antenna joined to the PCB and enclosed within the end cap. The antenna is oriented perpendicular to the mounting surface of the PCB.
This application is a non-provisional application of and claims the benefit of priority of U.S. Provisional Application No. 61/676,778, filed on Jul. 27, 2012, which is herein incorporated by references in its entirety for all purposes.
This application is related to commonly owned and concurrently filed U.S. patent application Ser. No. ______, titled, “Wireless Communications Antenna Assembly,” (Attorney Docket No. 79900-847032 (100320US)) and U.S. patent application Ser. No. ______, titled, “Wireless Communications Apparatus,” (Attorney Docket No. 79900-847034 (100310US)), the entire contents of which are herein incorporated by reference in their entirety for all purposes.
BACKGROUND OF THE INVENTIONWireless USB is a short-range wireless radio communication protocol. It was designed to operate in the 2.0 to 10.6 GHz frequency range. Wireless USB may be used for wireless communication between a computer and computer peripheral devices such as mice, keyboards, printers and scanners, as well as for communicating with game controllers, digital cameras, portable media players, hard disk drives and flash drives.
Other commercial wireless transceivers for providing wireless communication between a computer and peripheral devices use other standards such as Firewire (IEEE 1394) and the mini-USB standard. These other standards use a form factor with a different plug size.
A “nano” dongle is a USB dongle of a particular form factor in which the end cap protrudes beyond the socket surface by about 6.8 mm. A “pico” dongle is a USB dongle of a particular form factor in which the end cap protrudes beyond the socket surface by an amount less than a nano dongle. Thus, the length of the pico dongle end cap is less than the length of a nano dongle. A pico dongle form factor is desirable because it is convenient to leave the dongle plugged into a laptop or other mobile computing device rather than inserting the dongle before each use and removing the dongle before transporting the mobile computing device. Having the endcap of a dongle almost flush with the edge of a mobile computing device reduces the likelihood that the dongle may be damaged while the mobile computing device is in transit. However, creating a small dongle that has a sufficient radiation pattern and power may be a challenge. The size of a dongle limits the size of the electronics that may be used, especially the size of the antenna, which typically affects the radiation pattern. Thus, an improved antenna design is sought.
SUMMARY OF THE INVENTIONCertain embodiments of the invention relate to a wireless communications apparatus including a housing having a first portion and a second portion, the first portion adapted for insertion into a socket of an electronic device and the second portion comprising an end cap. The wireless communications apparatus may also include an antenna joined to the PCB and enclosed within the end cap, the antenna oriented perpendicular to the mounting surface of the PCB.
Other embodiments of the invention relate to a wireless communications system including an electronic device coupled to a processor. The wireless communications system may also include a peripheral device transmitting radiofrequency signals, a wireless communications apparatus comprising a plug having a first orientation and an antenna having a second orientation, wherein the first orientation and the second orientation are perpendicular to each other. Some embodiments can include the plug inserted into a communications port of the electronic device, the wireless communications apparatus receiving the radiofrequency signals transmitted by the peripheral device and delivering data to the processor based on the received radiofrequency signals.
Other embodiments of the invention relate to a wireless communications apparatus including an antenna device configured into a three dimensional profile, wherein the antenna device is configured to transmit wireless signals, wherein the three dimensional profile enables the antenna device to generate an average gain of at least minus 8 db. The wireless communications apparatus may also include a printed circuit board (PCB) configured to hold the antenna device and a bracket configured to house the printed circuit board and the antenna device.
In an alternate embodiment, the dongle module may use a different kind of mechanical plug such as Firewire, HDMI, or mini-USB. The components within a dongle of one of these alternative form factors, or any other form factor, may be scaled appropriately for the form factor. For example, the PCB and/or the antenna may be larger than the PCB and antenna described in the specific examples herein. In addition, dongles of different embodiments may replace or omit certain components described in the example herein. For example, a dongle may omit the metallic shell in favor of using a shell of plastic or other material, or may provide a different way to secure the endcap to the PCB without using a shell.
Dimension 330 illustrates the length of the PCB 200 in a pico dongle comprising the length of plug 331 and the length of the antenna 332. In some embodiments, the length of plug 331 in the pico dongle is roughly the same as the length of 321 in the nano dongle. The length of the antenna 332 includes a length of antenna 300 orientated perpendicular to the PCB 200 and a tail portion that is soldered to the PCB 200, according to an embodiment of the invention. The vertical portions are illustrated in
Because the illustrations are not drawn to scale, the plate antenna illustrated in FIG. 3B(2) appears to not fit in the endcap illustrated in FIG. 3B(1). However, as will be evident, the plate antenna does, in fact, fit in the endcap. Further, as illustrated in FIG. 3B(4), clips 342 are attached to the antenna 340 to enable the antenna to be joined to the PCB at appropriate coupling locations. Although two clips 342 are illustrated, additional or fewer clips can be utilized depending on the particular device geometry and design.
In an embodiment, the antenna may be three dimensional and made of wire, resembling the shape of a paper clip that has been bent so that it no longer lies flat. The length 333 of the antenna, as illustrated in
Such a 3D antenna may have a radiation pattern that allows improved ability to receive a signal from a transmitter and providing more flexibility regarding placement of the transmitter. The combination of removing the antenna from the metallic shell covering the plug and shaping the antenna to be three dimensional greatly enhances the effective radiation pattern and power of the dongle.
The size of the 3D antenna is not limited to the dimensions described in the examples. For example, a dongle in a HDMI form factor may be used with audio/video equipment, such as a television. Such a dongle may be plugged into the back of the television where size may be constrained. Thus, the antenna within a dongle may be smaller than other types of wireless antennas used for televisions. The antenna design and dimensions may also be adjusted to provide increased signal power. Thus, there may be different applications of a wireless communication device that require different sizes and configurations for a 3D wire antenna mounted perpendicular to a PCB. Further, the dongle may be used to connect to one device, or to multiple devices simultaneously. The devices that connect to the dongle may be of any suitable type, such as but not limited to a computer mouse, keyboard, video camera, audio/video receiver, audio headphones, cable box, desktop or mobile computer, smart phone, and tablet. In some embodiments, the dongle may be configured differently depending on which type of device it is intended to connect to.
In Step 730, subassembly 810 is inserted into bracket 830 from the top creating subassembly 840. In Step 740, the endcap 110 is placed over the antenna from the top and snaps into subassembly 840. Hooks in the endcap hold the endcap onto the bracket 830 of subassembly 840 to form subassembly 860. Removing the dongle from the USB socket requires holding the endcap and pulling in the direction away from the plug. Snapping the endcap onto the bracket from the top rather than from the end towards the plug avoids the endcap from separating from the dongle upon removing the dongle from the USB socket. In Step 750, the metallic shell 130 slides over the plug end of the dongle towards the endcap 110, overlapping a portion of the endcap and holding the endcap securely onto the dongle. Clips in the metallic shell snap into recesses on the sides of the bracket and the top of the overlapped portion of the endcap respectively. The entire assembly of the dongle may be performed without glue or other additional adhesive substance other than soldering the antenna to the PCB. This reduces the parts and time required for assembly.
It should be appreciated that the specific steps illustrated in
It is also understood that the examples and embodiments described herein are for illustrative purposes only and that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this application and scope of the appended claims.
Claims
1. A wireless communications apparatus comprising:
- a housing having a first portion and a second portion, the first portion adapted for insertion into a socket of an electronic device and the second portion comprising an end cap;
- a printed circuit board (PCB) enclosed within the housing, the PCB having a mounting surface;
- an antenna joined to the PCB and enclosed within the end cap, the antenna oriented perpendicular to the mounting surface of the PCB.
2. The wireless communications apparatus of claim 1 wherein the first portion of the housing comprises a metallic shell having a first open end and a second open end.
3. The wireless communications apparatus of claim 2 wherein a length of the end cap, measured along a direction running from the first open end of the metallic shell to the second open end of the metallic shell, is less than or equal to 3 mm.
4. The wireless communications apparatus of claim 2 wherein:
- the width of the end cap is greater than the width of the metallic shell, the width measured along a direction that is perpendicular to the direction running from the first open end of the metallic shell to the second open end of the metallic shell.
5. The wireless communications apparatus of claim 2 wherein the first portion of the PCB is encased in a metallic shell, and the width of the end cap is no wider than the width of the metallic shell, the width measured along a direction that is perpendicular to the direction running from the first open end of the metallic shell to the second open end of the metallic shell;
6. The wireless communications apparatus of claim 2 wherein the antenna is retractable within the metallic shell when not in use and extendable to outside of the metallic shell while in use.
7. The wireless communications apparatus of claim 2 wherein a first portion of the PCB in enclosed within the metallic shell and a second portion of the PCB is enclosed within the end cap.
8. The wireless communications apparatus of claim 1 wherein the antenna is constructed of metallic wire.
9. The wireless communications apparatus of claim 1 wherein the antenna is constructed of a metallic plate.
10. The wireless communications apparatus of claim 1 wherein the antenna is a three-dimensional (3D) antenna.
11. The wireless communications apparatus of claim 1 wherein the antenna is a two-dimensional (2D) antenna.
12. The wireless communications apparatus of claim 1 wherein the socket of the electronic device is compliant with a Universal Serial Bus standard.
13. The wireless communications apparatus of claim 1 wherein the socket of the electronic device is compliant with a standard IEEE 1394 interface.
14. The wireless communications apparatus of claim 1 wherein the socket of the electronic device is compliant with a High-Definition Multimedia Interface (HDMI).
15. The wireless communications apparatus of claim 1 wherein the socket of the electronic device is compliant with a mini-USB standard.
16. A wireless communications system comprising:
- an electronic device coupled to a processor;
- a peripheral device transmitting radiofrequency signals;
- a wireless communications apparatus comprising a plug having a first orientation and an antenna having a second orientation, wherein the first orientation and the second orientation are perpendicular to each other; and
- the plug inserted into a communications port of the electronic device, the wireless communications apparatus receiving the radiofrequency signals transmitted by the peripheral device and delivering data to the processor based on the received radiofrequency signals.
17. The wireless communications system of claim 16, wherein the communications port of the electronic device is a USB port.
18. The wireless communications system of claim 16, wherein the communications port of the electronic device is a standard IEEE 1394 interface port.
19. The wireless communications system of claim 16, wherein the communications port of the electronic device is a HDMI port.
20. The wireless communications system of claim 16, wherein the antenna comprises metallic wire.
21. The wireless communications system of claim 16, wherein the antenna comprises a metallic plate.
22. The wireless communications system of claim 16, wherein the antenna is three-dimensional.
23. The wireless communications system of claim 16, wherein the peripheral device is one of the group consisting of a computer mouse, keyboard, printer, scanner, game controller, digital camera, portable media players, hard disk drive and flash drive.
24. A wireless communications apparatus comprising:
- an antenna device configured into a three dimensional profile, wherein the antenna device is configured to transmit wireless signals, wherein the three dimensional profile enables the antenna device to generate an average gain of at least minus 8 dB;
- a printed circuit board (PCB) configured to hold the antenna device;
- and a bracket configured to house the printed circuit board and the antenna device.
25. The wireless communications apparatus of claim 24, wherein the average gain of at least minus −8 dB is measured in a plane orthogonal to the plane of the PCB.
26. The wireless communications apparatus of claim 25, wherein the average gain is at least minus −10 dB measured in a plane orthogonal to the plane of the PCB.
27. The wireless communications apparatus of claim 26, wherein the average gain is at least minus 15 dB measured in a plane orthogonal to the plane of the PCB.
28. The wireless communications apparatus of claim 24, further comprising a metallic sheath covering at least a portion of the bracket and at least a portion of the PCB.
29. The wireless communications apparatus of claim 28, wherein the antenna device is substantially not covered by the metallic sheath.
30. The wireless communications apparatus of claim 29, wherein the antenna device is substantially covered by an endcap.
31. The wireless communications apparatus of claim 30, wherein the length of the endcap is equal to or less than about 3 mm.
32. The wireless communications apparatus of claim 31, wherein the length of the endcap is equal to or less than about 1.8 mm.
Type: Application
Filed: Nov 7, 2012
Publication Date: Jan 30, 2014
Applicant: Logitech Europe S.A. (Morges)
Inventors: Laurent Cariou (Versonnex), Frédéric Fortin (Annemasse), Darragh Luttrell (Glanmire Co. Cork), Vilasinh Vilaylack (prevessin-Moens)
Application Number: 13/671,086
International Classification: H01Q 9/04 (20060101);