The present invention relates generally to a contactless connector and a contactless connector assembly including the contactless connector, and more particularly to a contactless connector and a contactless connector assembly capable of transmission of light signal.
With the popularization of Internet technology and calculator technology in daily life, during data transmission, people often use physical contact between electrical connectors to transmit data between different electronic devices to connect one electronic device to another electronic device, frequent insertion and extraction operations will inevitably lead to structural damage to these electrical connectors, resulting in poor contact and shortening the life of the electrical connectors.
Wireless data transmission (such as Bluetooth and Wi-Fi transmission) through a contactless interface instead of the usual electrical connectors, solves the above disadvantages. However, due to the limitation of transfer rate, wireless data transfer is not suitable for mass data transfer, and transferring relatively large files will take a lot of time. In addition, data security is also a technical problem to be solved by wireless data transmission.
Improved contactless connector and contactless connector assembly are desired.
A main object of the present invention is to provide a contactless connector that enables efficient transmission of signals.
To achieve the above-mentioned object, a contactless connector comprises: a light emitter for emitting light; a light-transmitting member at least partially covering the light emitter; and an alignment mechanism that enables an alignment error between the light emitter and a light receiver on another contactless connector to be not greater than 5 microns; wherein the light-transmitting member includes a mating surface that is matched with an opposite surface of the another contactless connector and there is an elastic member on the opposite surface of the another contactless connector to adjust alignment of the alignment mechanism.
Another main object of the present invention is to provide a contactless connector assembly that can transmit signals through light.
To achieve the above-mentioned object, a contactless connector assembly comprises: a first contactless connector including a light emitter for emitting light and a light-transmitting member at least partially covering the light emitter; a second contactless connector cooperating with the first contactless connector to transmit signals and including a light receiver and a second light-transmitting member at least partially covering the light receiver; and an alignment mechanism that enables an alignment error between the light emitter and the light receiver to be not greater than 5 microns.
Compared to prior art, the contactless connector and the contactless connector assembly of the present invention transmit data through optical signals to form a contactless transmission interface, and the alignment mechanism ensures the effective transmission of signals between the two contactless connectors. The contactless connector assembly of the present invention has broad application prospects, and it transmits data through optical signals and achieves precise alignment to ensure effective signal transmission.
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The first contactless connector 100 in the present invention has the function of converting electrical signals into optical signals and sending out optical signals. The second contactless connector 500 has the function of receiving the optical signals and converting the optical signals to electrical signals. The first contactless connector 100 and the second contactless connector 500 can both have the functions of sending out and receiving optical signals. Specifically, it is achieved by the following, the first contactless connector 100 further includes a second light receiver 21 that can receive optical signals and convert the received optical signals into electrical signals, and a second amplifier chip 31 that amplifies the electrical signals. The second amplifier chip 31 and the light emitter control chip 30 are integrated into a single chip 301. The second contactless connector 500 further includes a second light emitter 71 that can convert electrical signals into optical signals, and a second light emitter control chip 81 disposed on the second circuit board 60 for controlling the work of the second light emitter 71. The amplifier chip 80 and the second light emitter control chip 81 are integrated into a single chip 801. The amplifier chip 80 and the second amplifier chip 31 are both post-amplifier integrated circuit controller. The light emitter control chip 30 and the second light emitter control chip 81 are both laser diode drive controllers. The wavelength of the light emitted by the light emitter 20 and the second light emitter 71 is 850 nm. The wavelength of light emitted by the light emitter 20 can also be other suitable wavelengths. Both the second light receiver 21 and the light receiver 70 can be gallium arsenide photodiodes or indium phosphide photodiodes. As required, one or more optical paths may be set between the first contactless connector 100 and the second contactless connector 500. Specifically, it can be realized by the following: the light emitter 20 and the second light receiver 21 can be set as one or more, and the corresponding light receivers 70 and the second light emitter 71 can be set as one or more. The first circuit board 10 is provided with conductive pads 13 for inputting electrical signals and conductive pads 14 for outputting electrical signals. The second circuit board 60 is provided with conductive pads 63 for inputting electrical signals and conductive pad 64 for outputting electrical signals. Each conductive pad can be connected to the spring terminal of the board end base (not shown) or connected to the flexible board 18.
The first contactless connector 100 further includes a first mounting seat 25 mounted on the first circuit board 10, The light emitter 20 and the second light receiver 21 can be mounted on the first mounting seat 25. The height of the first mounting seat 25 is designed according to actual needs. The light emitter 20 and the second light receiver 21 can also be directly mounted on the first circuit board 10. Similarly, the second contactless connector 500 may also include a second mounting seat 75 mounted on the second circuit board.
The contactless connector of the present invention has a smaller size. In the present invention, each of the first contactless connector 100 and the second contactless connector is substantially rectangular, with a length of 18.5 mm, a width of 10 mm, and a height of 5 mm.
For ease of understanding, in the following description, the first contactless connector 100 is only provided with the light emitter 20, and the second contactless connector 500 is only provided with the light receiver 70. The contactless connector assembly 900 further includes an alignment mechanism so that the alignment error of the light emitter 20 and the light receiver 70 is no greater than 5 microns. The first light-transmitting member 40 includes a first matching surface 401, and the second light-transmitting member 90 includes a second matching surface 901 that cooperates with the first matching surface 401. There is an elastic member 50 provided on the surface 403 opposite to the first matching surface 401 of the first light-transmitting member 40 for adjusting the alignment of the alignment mechanism. Specifically, in this embodiment, the elastic member 50 is a spring. The first contactless connector 100 further includes a first magnetic element 11 disposed on the first circuit board 10. The first magnetic element 11 and the light emitter are disposed on opposite sides of the first circuit board 10. The second contactless connector 500 further includes a second magnetic element 61 disposed on the second circuit board 60. The second magnetic element 61 and the light receiver 70 are disposed on opposite sides of the second circuit board 60. The first magnetic element 11 and the second magnetic element 31 are attracted to each other to align the alignment mechanisms with each other and provide the mating force between the first contactless connector 100 and the second contactless connector 500. Both the magnetic element 11 and the magnetic element 61 can be magnets. The first contactless connector 100 further comprises a first housing 101 for securing it. The second contactless connector 500 further includes a second housing 501 for securing it.
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The contactless connector and the contactless connector assembly of the present invention form a contactless transmission interface, transmit data through optical signals, and the alignment mechanism ensures the effective transmission of signals between the two contactless connectors. The contactless connector assembly 900 of the present invention has broad application prospects. It can be applied to interfaces that need to transmit high-speed data and video, such as data center switches, it can be applied to equipment that is extremely sensitive to EMI, such as medical and military. In addition, the optical signal can be transmitted in air or liquid, and it can transmit a variety of signals because of the chip and photoelectric conversion functions, such as LVDS (Low Voltage Differential Signaling), TMDS (Time Minimized Differential Signaling), CML (Current Mode Logic) and other signals that can be transmitted.
The contactless connector of the present invention has a very small size and can be applied to 3C consumer products, such as mobile phones, notebooks or tablet computers, and it can also available for short-distance and high-speed board connections, such as data center switches or servers. It can also be used as anti-electromagnetic interference equipment such as operating table endoscope. It's also available to connect the two connectors via optical fiber to transmit the signal inside the large panel or TV GPU (graphics card) to the controller.
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The contactless connector assembly of the present invention can be used for wireless charging, signal transmission between wireless phones, double panels and detachable laptops, foldable and expandable laptop applications, video wall applications, internal transmission for a large TV or laptop. In addition, the contactless connector and connector assembly of the present invention realize signal transmission through optical signals, with low loss and stable signal transmission, and the contactless connector can be used in many fields. The optical communication module includes an optical signal emitter and an optical signal receiver, the optical signal emitter and the optical signal receiver are aligned by the engagement of the positioning pins and the positioning grooves, and the attraction of the magnets. The optical signal receiver is mechanically coupled to the optical transceiver to ensure light transmission through the transceiver's lens and the receiver's lens.
Number | Date | Country | Kind |
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202110292124.1 | Mar 2021 | CN | national |