WIRELESS SIGNAL TRANSCEIVER
20220345902 ยท 2022-10-27
Assignee
Inventors
Cpc classification
International classification
Abstract
A wireless signal transceiver includes a main body part, an antenna array, and a refraction element. The antenna array is disposed in the main body part, and is configured to transmit or receive at least one wireless signal beam. The refraction element is disposed at a first end of the main body part, and the first end is opposite to the antenna array. The refraction element is used to receive the wireless signal beam and refracts the wireless signal beam to generate and transmit a plurality of outputted wireless signal beams.
Claims
1. A wireless signal transceiver, comprising: a main body part; an antenna array, disposed in the main body part and configured to transmit at least one wireless signal beam; and a refraction element, disposed at a first end of the main body part and opposite to the antenna array, wherein the refraction element is configured to transmit or receive the at least one wireless signal beam and refract the at least one wireless signal beam to generate and transmit a plurality of outputted wireless signal beams.
2. The wireless signal transceiver according to claim 1, wherein a distance between the antenna array and the refraction element is greater than 10 times a wavelength of the at least one wireless signal beam.
3. The wireless signal transceiver according to claim 1, wherein the main body part is a pyramid.
4. The wireless signal transceiver according to claim 3, wherein the refraction element has a prism structure and is disposed on a top corner of the pyramid.
5. The wireless signal transceiver according to claim 4, wherein the refraction element first focuses the at least one wireless signal beam to generate a plurality of sub beams, and then the refraction element reflects and refracts the sub beams to respectively generate the outputted wireless signal beams.
6. The wireless signal transceiver according to claim 4, wherein the refraction element first defocuses the at least one wireless signal beam to generate a plurality of sub beams, and then the refraction element reflects and refracts the sub beams to respectively generate the outputted wireless signal beams,
7. The wireless signal transceiver according to claim 1, wherein the main body part has a cannular structure.
8. The wireless signal transceiver according to claim 7, wherein the refraction element has an annular structure and is disposed on a top edge of the main body part, and an inward surface of the annular structure is an inclined surface.
9. The wireless signal transceiver according to claim 8, wherein a shape of a vertical section of the refraction element is a triangle.
10. The wireless signal transceiver according to claim 7, wherein an included angle is formed between an emission direction of the at least one wireless signal beam transmitted by the antenna array and a vertical axis of the main body part, wherein the included angle ranges from 20 degrees to 40 degrees.
11. The wireless signal transceiver according to claim 7, wherein a material of the refraction element is an acrylic fiber, celulose acetat, epoxy resin, high-density polyethylene, polycatbonate, polytetrafluoroethylene, polyester, polystyrene, or vinylidene chloride.
12. The wireless signal transceiver according to claim 1, wherein a transmission direction of each of the outputted wireless signal beams and a transmission direction of the wireless signal beam have an angular deviation.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0006]
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
DESCRIPTION OF THE EMBODIMENTS
[0013] Please refer to
[0014] The antenna array 130 may be configured to transmit and receive one or more wireless signal beams. The wireless signal beam may be transmitted to the refraction element 120. The refraction element 120 is configured to refract the wireless signal beam to generate specific multiple corresponding wireless signal beam directions, which facilitates wireless signal transmission in specific directions. Please refer to
[0015] In this way, it can be seen that the wireless signal transceiver 100 of the invention can deflect the wireless signal beam WR1 emitted directly upward by the antenna array 130 through the refraction element 120 to generate the outputted wireless signal beams TWR1 and TWR2 sent out toward two sides of the wireless signal transceiver 100, which enables the wireless signal transceiver 100 to achieve an effect of beam coverage in a horizontal direction.
[0016] It is worth mentioning that, in the embodiment, a distance between the antenna array 130 and the refraction element 120 may be greater than 10 times a wavelength of the wireless signal beam WR1.
[0017] Furthermore, the refraction element 120 in the embodiment of the invention may be an octagonal prism structure. The material constituting the refraction element 120 may be an acrylic fiber, celulose acetat, epoxy resin, high-density polyethylene (HDPE), polycatbonate, polytetrafluoroethylene (PTFE), polyester, polystyrene, or vinylidene chloride, and the material constituting the refraction element 120 has a refractive index from 1.35 to 1.63.
[0018] Please refer to
[0019] TWR1 to be transmitted out of the refraction element 310. Transmission directions of the wireless signal beam WR1 and the outputted wireless signal beams TWR2 and TWR1 have a certain angular deviation.
[0020] Please refer to
[0021] WR1 may be split into two portions, which are respectively reflected by surfaces S3 and S4 of the refraction element 410 to respectively generate outputted wireless signal beams TWR2 and TWR1 to be transmitted out of the refraction element 410. Transmission directions of the wireless signal beam WRI and the outputted wireless signal beams TWR2 and TWR1 have a certain angular deviation.
[0022] The antenna array 430 may emit the wireless signal beams at different angles to the refraction element 410, which enables beam directions to be respectively directed to the surface S1 or S2 by phase control.
[0023] Please refer to
[0024] In the embodiment, the refraction element 520 has an annular structure and is disposed on a top edge of the main body part 510. Please refer to
[0025] The material constituting the refraction element 520 may be an acrylic fiber, celulose acetat, epoxy resin, high-density polyethylene (HDPE), polycatbonate, polytetrafluoroethylene (PTFE), polyester, polystyrene, or vinylidene chloride, and the material constituting the refraction element 520 may have a refractive index from 1.35 to 1.63.
[0026] The same as the foregoing embodiments, in the embodiment, a distance between the refraction element 520 and the antenna array 530 may be greater than 10 times a wavelength of the wireless signal beam sent by the antenna array 530.
[0027] A transmission path of the wireless signal beam in the embodiment may be understood from FIG, 7, which is a schematic view of a path of a wireless signal beam of the wireless signal transceiver according to the embodiment of
[0028] According to
[0029] Incidentally, in the embodiment, there is an included angle between a transmission direction of the wireless signal beam WR1 emitted by the antenna array 530 and a vertical axis V-axis of the antenna array 530, and the included angle may range from 20 degrees to 40 degrees. For example, the included angle may be 30 degrees.
[0030] In summary of the above, the wireless signal transceiver of the invention transmits the wireless signal beam to the refraction element located at the upper end of the wireless signal transceiver, and deflects the wireless signal beam through the refraction element to emit the wireless signal beam from the side of the wireless signal transceiver. In this way, the wireless signal beam can be deflected at a large angle to be transmitted to the horizontal direction, and the horizontal coverage of the wireless signal can be enhanced,