The present disclosure relates generally to an antenna structure, and more particularly to a parabolic antenna with a changeable configuration.
With the advancement in wireless communications, various antennas have been developed to meet various requirements, and the demand for wireless signal bandwidth and data transmission rates is increasing. Therefore, there is a need for manufacturers to develop an antenna with high peak gain and high wireless transmission rates.
Among all kinds of antennas, dish antennas have an advantage of high gain, but a coverage is relatively narrow, and it must point to a specific direction. A conventional dish antenna 10 is illustrated in
Although the conventional dish antenna 10 can transmit wireless signals, the transmitting device 14 can only be applied to one size of the disc 12. That is, it is impossible to expand range on the disc surface 12 where the wireless signals are projected on because of restriction of the structure of the reflecting surface 144a even the disc 12 is replaced with a larger disc. Therefore, the applicability of the dish antenna 10 is limited.
In view of the above, the primary objective of the present disclosure is to provide a parabolic antenna, which could form different configurations to increase the applicability.
The present disclosure provides a parabolic antenna, including a main disc, a transmitting device, and a reflecting member, wherein the main disc has a main surface which is arc-shaped. The transmitting device is disposed on the main disc and includes a transmitter and a reflector, wherein the transmitter corresponds to the reflector. The reflector has a reflecting surface which is arc-shaped and corresponds to the main surface of the main disc. The reflecting member is detachably engaged with the reflecting surface of the reflector, wherein the reflecting member corresponds to the transmitter.
With the aforementioned design, the reflecting member could be engaged with the reflecting surface of the reflector or be detached from the reflecting surface, so that the parabolic antenna could form various configurations and provide different reflecting performances to increase the applicability.
The present disclosure will be best understood by referring to the following detailed description of some illustrative embodiments in conjunction with the accompanying drawings, in which
A parabolic antenna 1 according to a first embodiment of the present disclosure is illustrated in
The main disc 20 is made of a metal material and has a main surface 202 with arc-shaped, an open side 204, and an engaging hole 206 disposed on a bottom of the main disc 20. A peripheral portion of the open side 204 has an engaging portion 208 adapted to be engaged with the extending disc 38. In the current embodiment, the engaging portion 208 is an annular flange, wherein a plurality of assembled holes 208a is disposed on the annular flange along a circumferential direction of the annular flange. A maximum inner diameter of the main surface 202 is a first inner diameter D1. In the current embodiment, the first inner diameter D1 is 450 mm as an example, but not limited thereto. In addition, in other embodiments, the main surface 202 of the main disc 20 could be selectively configured with mesh holes as could reduce a weight, wind resistance and facilitate drainage.
The transmitting device 24 is disposed on the main disc 20 and includes a wave-guided tube 26, a transmitter 28, and a reflector 30. Preferably, the wave-guided tube 26, the transmitter 28, and the reflector 30 are made of metal or conductive materials. In the current embodiment, a body portion of the wave-guided tube 26 has a flange 262 protruding outward from an outer surface of the body portion along a radial direction of the wave-guided tube 26, so that when a first end of the wave-guided tube 26 passes through the engaging hole 206 of the main disc 20, the flange 262 could be engaged with a periphery of the engaging hole 206 to be fixed. The transmitter 28 is disposed at the first end of the wave-guided tube 26. In the current embodiment, the transmitter 28 includes two exciters in orthogonal configuration. The reflector 30 is disposed relative to the transmitter 28 to reflect a signal sent from the transmitter 28 to a corresponding position. The reflector 30 has a reflecting surface 302 and an opposite surface 304 opposed to the reflecting surface 302. In the current embodiment, the reflecting surface 302 in an arc shape that is convex to the main surface 202 of the main disc 20. The opposite surface 304 faces a direction away from the main surface 202.
In addition, the transmitting device 24 further includes a support 32 which is disposed on a second end of the wave-guided tube 26 opposite to the first end and is adapted to fix the reflector 30 at a predetermined position. The support 32 includes a plurality of supporting rods 322 between which a plurality of hollow portions 324 is formed. In the current embodiment, the hollow portions 324 are located between the reflector 30 and the wave-guided tube 26 in a longitudinal axis direction of the wave-guided tube 20. In the current embodiment, the transmitting device 24 further includes a cover 34 which fits around the second end of the wave-guided tube 26 and is adapted to seal an opening of the wave-guided tube 26, thereby preventing foreign matter or water from entering the wave-guided tube 26. The reflector 30 also provides with a cover 36 which covers the opposite surface 304, thereby preventing the opposite surface 304 from accumulating water. Preferably, the cover 34 of the transmitting device 24 and the cover 36 of the reflector 30 are made of a non-metal material, such as plastic.
The extending disc 38 has a first open side 382, a second open side 384, and an extending surface 386 located between the first open side 382 and the second open side 384, wherein an inner diameter of the extending disc 38 gradually increases from the first open side 382 toward the second open side 384. The first open side 382 is detachably engaged with the open side 204 of the main disc 20. A maximum inner diameter of the extending surface 386 is a second inner diameter D2, wherein the second inner diameter D2 is greater than the first inner diameter D1. In the current embodiment, the second inner diameter D2 is, but not limited to, 650 mm. Preferably, the extending disc 38 is made of metal or conductive materials. In the current embodiment, the extending disc 38 is formed by splicing a plurality of curved plates 40 along a circumferential direction. However, in other embodiments, the extending disc 38 could be an annular curved plate integrally formed as a monolithic unit. Each of the curved plates 40 has a curved surface, wherein the curved surfaces 42 of the curved plates 40 constitutes the extending surface 386. In other embodiments, the extending surface 386 could be selectively configured with mesh holes as could reduce a weight of the extending disc 38, reduce wind resistance, and facilitate drainage.
Two opposite sides of each of the curved plates 40 respectively have a first engaging portion 401 and a second engaging portion 402. The first engaging portion 401 of each of the curved plates 40 is engaged with the second engaging portion 402 of an adjacent one of the curved plates 40. In the current embodiment, the first engaging portion 401 includes a first folding edge 44 while the second engaging portion 402 includes a second folding edge 46. The first folding edge 44 of each of the curved plates 40 is adjacent to the second folding edge 46 of another one of the curved plates 40. Each of the first folding edges 44 and each of the second folding edges 46 respectively have at least one assembled hole 442, 462. The first folding edge 44 and the second folding edge 46 which are adjacent are engaged with each other by passing an engaging member 50 through the corresponding assembled holes 442, 462. In the current embodiment, each of the engaging members 50 includes a bolt 502 and a nut 504.
To increase a convenience of assembly, in the current embodiment, the first folding edge 44 of each of the curved plates 40 is provided with at least one positioning member 52, and the second folding edge 46 of each of the curved plates 40 is provided with at least one positioning hole 464. In the current embodiment, the number of the at least one positioning member 52 on the first folding edge 44 of the first engaging portion 401 of each of the curved plates 40 is two, and the number of the at least one positioning hole 464 on the second folding edge 46 of the second engaging portion 402 of each of the curved plates 40 is two The positioning members 52 on each of the first folding edges 44 respectively penetrates through the positioning holes 464 of the adjacent one of the second folding edges 46. In the current embodiment, each of the positioning members 52 has a head portion 522 and a body portion 524. An end of the body portion 524 of each of the positioning members 52 is engaged with the first folding edge 44. Each of the positioning holes 464 has a first section 464a and a second section 464b with which the first section 464a communicates. An outer diameter of the head portion 522 of each of the positioning members 52 is smaller than a diameter of each of the first sections 464a and is greater than a diameter of each of the second sections 464b.
During a process of assembling, at first, the head portion 522 of each of the positioning members 52 on each of the first folding edges 44 penetrates through the first section 464a of the adjacent one of the second folding edges 46 to be located at an outside of the first section 464a (as shown in
Each of the curved plates 40 further has a third engaging portion 403 located between the first engaging portion 401 and the second engaging portion 402. The third engaging portion 403 forms an engaging portion of the extending disc 38 and is engaged with the engaging portion 208 of the main disc 20. In the current embodiment, the third engaging portion 403 includes a third folding edge 48 connected between the first folding edge 44 and the second folding edge 46. The third folding edge 48 has at least one assembled hole 482. The assembled hole 482 of each of the third folding edges 48 corresponds to one of the assembled holes 208a of the engaging portion 208 of the main disc 20 for being detachably engaged with another engaging member (e.g. bolt and nut).
Referring to
The second end 544 of the reflecting member 54 has an attaching surface 544a abutting against the reflecting surface 302, wherein a shape of the attaching surface 544a is complementary to that of the reflecting surface 302 of the reflector 30. Referring to
The parabolic antenna 1 further includes a fixing mechanism with which the reflecting member 54 and the reflecting surface 302 are fixed. In the current embodiment, the reflector 30 has a through-hole 30a penetrating through the reflecting surface 302 and the opposite surface 304. The reflecting member 54 has a fixing hole 546 corresponding to the through-hole 30a. The axis i passes through the through-hole 30a and the fixing hole 546. A fixing member 56 passes through the through-hole 30a to be engaged with the fixing hole 546, thereby the reflecting member 54 is fixed on the reflecting surface 302. The through-hole 30a, the fixing hole 546, and the fixing member 56 constitute the fixing mechanism of the current embodiment. In the current embodiment, the fixing hole 546 is a threaded hole as an example, and the fixing member 56 is a bolt as an example, however, these are not a limitation of the present disclosure. In other embodiments, the fixing hole 546 could be a circular hole, and the fixing member 56 could be a fixing pin that could be detachably engaged with the fixing hole 546.
The parabolic antenna 1 could be assembled to two different configurations including a first configuration shown in
Alternatively, the main disc 20 with the extending disc 38 attached, and the reflecting member 54 with the reflecting surface 302 attached form the second configuration shown in
A reflector 60 and a reflecting member 62 configured in a parabolic antenna according to a second embodiment are illustrated in
The reflecting member 62 has a fixing rod 622, wherein an axis i passing through a center of the fixing hole 606 and a center of the fixing rod 622 is defined on the reflecting member 62. The fixing rod 622 is disposed in the fixing hole 606 to fix the reflecting member 62 to the reflecting surface 604. The fixing hole 606 and the fixing rod 622 constitute the fixing mechanism of the current embodiment.
In the current embodiment, the fixing hole 606 is a threaded hole as an example, and the fixing rod 622 has an external thread, so that the fixing rod 622 could be screwed into the fixing hole 606; however, these are not a limitation of the present disclosure. In other embodiments, the fixing rod 622 could be circular or a shape complementary to that of the fixing hole 606, which could achieve detachable engagement as well.
A parabolic antenna 3 according to a third embodiment is illustrated in
It must be pointed out that the embodiments described above are only some preferred embodiments of the present disclosure. All equivalent structures which employ the concepts disclosed in this specification and the appended claims should fall within the scope of the present disclosure.
Number | Date | Country | Kind |
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202022606120.X | Nov 2020 | CN | national |
202121071982.5 | May 2021 | CN | national |
Number | Date | Country |
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1065438 | Mar 1998 | JP |
2016111429 | Jun 2016 | JP |
2017204748 | Nov 2017 | JP |
Number | Date | Country | |
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20220149537 A1 | May 2022 | US |