The following relates to a field of satellite communication antennas, in particular to a rail-type portable satellite communication antenna.
VSAT is also called small terminal, small data station or Very Small Aperture Terminal, and can support various services. The terminal has a compact structure with a small sized antenna, and also features low energy consumption, low cost, and easy installation. However, due to factors of gravity, rotary inertia, and wind load, etc., such conventional portable satellite communication antenna requires high accuracy of rotary clearance of transmission mechanism and strict manufacturing process.
This is because, rotary clearance of transmission mechanism should be smaller than one eighth (⅛) of half-power beamwidth, e.g. an antenna with 1 meter diameter at Ku-band has a half-power beamwidth (3 dB beamwidth) of 1.6° at the receiving end and a half-power beamwidth (3 dB beamwidth) of 1.4° at the transmitting end, therefore rotary clearance of transmission mechanism should be smaller than 0.175° (1.4*1.8), which requires harmonic gear or other mechanical structure with higher accuracy.
To solve above mentioned problems, a conventional satellite antenna disclosed in Chinese patent CN 101950844 B is shown in
Alternatively,
An aspect relates to a rail-type portable satellite communication antenna with communication module that ensures high precision of mechanical transmission for tracking signals, and the antenna also features light weight, compact size, easy to carry and manufacture.
For the above purposes, the technical solution is as follows.
A rail-type portable satellite communication antenna, comprising an antenna communication module, a supporting module, a rail base, and a driving module for driving the supporting module to rotate horizontally and to regulate its pitch angle; the rail base, the supporting module and driving module are located at bottom of the antenna communication module, and the driving module is located on the end surface of the supporting module, and the supporting module is connected slidably to the rail base.
Further, the supporting module comprises a horizontal rotary bracket, a pitch supporter, and a pitch driving mechanism; the pitch supporter, at its top end, is connected to a bottom of the antenna communication module angularly and the bottom end of the pitch supporter is connected to a connection point in the horizontal rotary bracket; the horizontal rotary bracket is shaped as polygon, the driving modules are connected in the polygon at each corner; a first limit wheel is configured at each connection point of the horizontal rotary bracket, and is also engaged with the rail base; the top end of the pitch driving mechanism is connected to the bottom of the antenna communication module and the bottom end of the pitch driving mechanism is connected to the horizontal rotary bracket.
Further, several grooves or holes are equally spaced on the rail base, to engage with the driving module.
Further, teeth are configured on the surface of the rail base, to engage with the driving module.
Further, the rail base is ring-shaped.
Further, the rail base is a rollable ring, or a segments-composable ring or a rollably-segments-composable ring.
Further, the driving module comprises a driving motor, a bearing wheel, and a driving gear; the driving motor and the driving gear are connected in a transmission manner; the bearing wheel is configured on the top of the rail base to bear the weight of the communication module; the driving gear is located on one side of the rail base, and is engaged with the grooves, holes or teeth; the first limit wheel is located on the other side of the rail base in order to limit the movement of the driving gear along the grooves, holes or teeth on the rail base.
Further, the driving module comprises a bearing wheel, a second limit wheel, a locking element and human machine interaction interface; the bearing wheel is configured on the top of the rail base to bear the weight of the communication module; the first limit wheel is arranged on one side of the rail base; the second limit wheel is located on the other side of the rail base in order to limit the movement of the driving module along the rail base; the locking element is located at the same side where the second limit wheel is located; the human machine interaction interface is located at the same side where the antenna communication module or the supporting module is located.
Further, the antenna communication module comprises a feed source device, a feed source bar, an antenna reflector and an equipment box; the equipment box is mounted on the bottom of the antenna reflector or on the horizontal rotary bracket; the feed source device is mounted on one side of the antenna reflector by the feed source bar; the supporting module further comprises a feed source supporter, whose top end supports the feed source bar and whose bottom end extends through the antenna reflector and connects the back side of the antenna reflector.
Further, the antenna communication module is a planar waveguide horn array antenna.
Comparing to the prior art, the advantage of the present disclosure is as follows:
The rail-type portable satellite communication antenna according to the present disclosure makes both the current regulating device and supporting device in one, that is, the “large-small-large” structural mode is abandoned, and the rail base and the supporting device are used to complete the adjusting and supporting function. Meanwhile the driving assembly are used to provide driving force during the adjustment to complete the horizontal rotation and the pitch tilt adjustment of the antenna.
Through the above designed structure, the supporting part used in the prior art disappear, so that the overall weight is greatly reduced, and at the same time, the entire device can be split and folded, so that the space occupied when stowed is small. In addition, for the precision requirements in the transmission process, the precision can be less than 0.2°.
Some of the embodiments will be described in detail, with references to the following figures, wherein like designations denote like members, wherein:
In the figures and in the detailed part of the description, the following reference numerals have been used:
Preferred embodiments of the present disclosure will be described hereinafter with reference to the figures. It should be understood that the preferred embodiments is merely explanation and interpretation of the present disclosure, and is not intended to limit the protection scope of the present disclosure.
The rail-type portable satellite communication antenna according to the present disclosure employs a rail base, which not only acts as a bracket but also cooperates with the driving module to complete operations of horizontal rotation, thereby making both the regulator and supporter in the prior art in one while regulating horizontal rotation and pitch angle in high precise. This causes a smaller size of the antenna after disassembled, and its lighter weight.
In order to understand the structure of the rail-type portable satellite communication antenna according to the present disclosure, the following will be specifically described with reference to
As shown in
The support module comprises a horizontal rotary bracket 302, a pitch supporter 303 and a pitch driving mechanism 304. The rail base 301 is ring-shaped, which can be in the states in
As shown in
Moreover, teeth 306(c) are configured on the surface of the rail base 301, to engage with the support module for its precisely horizontal rotation. Similarly, any gear transmission mechanisms having the same function of the teeth 306 would be within the protection scope of the present disclosure. Similarly, any other structures which accomplish a horizontal slide, such as friction driving structure, belt transmission or screw driving structure, are also within the protection scope of the present disclosure.
The top end of the pitch supporter 303 is connected to the bottom of the antenna communication module and the bottom end of the pitch supporter 303 is connected to a connection point in the horizontal rotary bracket 302. The pitch supporter 303 is at an angle to the horizontal rotary bracket 302 for better support to the antenna communication module.
The horizontal rotary bracket 302 is shaped as polygon and is shown as a triangle in the figures, providing stability, the driving modules are connected in the polygon at each corner. The horizontal rotary brackets 302 is not limited to triangle as shown in the figures, it can be adjusted according to actual requirement. A first limit wheel 305 clamping at the rail base 301 is provided at each connection point of the horizontal rotary brackets 302. The top end of the pitch driving mechanism 304 is connected to the bottom of the antenna communication module and the bottom end of the pitch driving mechanism 304 is connected to the horizontal rotary bracket 302.
The driving module comprises a driving motor 307, a bearing wheel 308, and a driving gear 309; the driving motor 307 and the driving gear 309 are connected in a transmission manner; the bearing wheel 308 is configured on the top of the rail base 301 to bear the weight of the communication module; the driving gear 309 is configured at one side of the rail base 301, to engage with the grooves 306(a) and the first limit wheel 305 is located at the other side of the rail base 301, to limit the movement of the driving gear 309 along the grooves 306(a).
The antenna communication module comprises a feed source device 311, a feed source bar 315, an antenna reflector 312 and an equipment box 313; the equipment box 313 is mounted on a bottom of the antenna reflector 312 or on the horizontal rotary bracket 302, and the feed source device 311 is mounted on one side of the antenna reflector 312 via the feed source bar 315. The support module also comprises a feed source supporter 314, whose top end supports the feed source bar 315 and whose bottom end extends through the antenna reflector 312 and connects the back side of the antenna reflector 312.
The equipment box 313 is located at the bottom of the antenna reflector 312 or on the horizontal rotary bracket 302 but is not limited to these two positions. It is possible to arrange the equipment box 313 at any suitable positions that does not affect the normal operation of the entire device, and such suitable positions also fall within the scope of protection of the present disclosure.
As shown in
Referring to
It should be noted that, the second limit wheel 310 is shown in the form of gear, as shown in
The entire weight in this embodiment is further reduced for omitting the driving motor, and the portability is enhanced.
Referring to
It is two different ways to utilize the antenna for the antenna reflector 312 being installed in forward direction or backward direction. Both ways have the same antenna gain and capacity to receive signals, but have differences that, antenna reflector 312 being installed in forward direction is used in an environment with a broad view ahead, while antenna reflector 312 being installed in backward direction is used in an environment with a broad view above, preventing from gathering dust or snow thereon, and has better wind-resistant and saves space.
This embodiment is different from the embodiment 1-3, in that planar waveguide horn array antenna is used in the antenna communication module, which is specifically shown in
Therefore, the installing direction can vary according requirement in actual application, which broaden the usable range.
Although the present invention has been disclosed in the form of preferred embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
For the sake of clarity, it is to be understood that the use of ‘a’ or ‘an’ throughout this application does not exclude a plurality, and ‘comprising’ does not exclude other steps or elements.
Number | Date | Country | Kind |
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201610693626.4 | Aug 2016 | CN | national |
This application claims priority to PCT Application No. PCT/CN2016/097323, having a filing date of Aug. 30, 2016, based off Chinese application No. 201610693626.4 having a filing date of Aug. 19, 2016, the entire contents of both of which are hereby incorporated by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/097323 | 8/30/2016 | WO | 00 |