1. Field of the Invention
The present invention relates to an antenna, and more particularly to a satellite antenna for receiving signals from satellites or other sources.
2. Description of Related Art
Satellite antennas are used in various fields that need data from and passed through satellites. For example, a site may need a satellite antenna to receive satellite images from a meteorological satellite to track clouds and storms. A television may also need a satellite antenna to receiver satellite TV programs.
A conventional satellite antenna comprises a stand and an adjustable antenna dish mounted on the stand. The antenna dish may be turned or rotated by hand to a direction to receive signals clearly from a satellite. However, adjusting the direction of the antenna dish manually can be imprecise.
To overcome the shortcomings, the present invention provides a satellite antenna to mitigate or obviate the aforementioned problems.
The main objective of the invention is to provide an improved satellite antenna that has a dish-turning assembly, two dish-rotating assemblies and a dish-pivoting assembly to very precisely point an antenna dish.
The satellite antenna in accordance with the present invention comprises an antenna, a stand assembly, an adjustable bracket, a mounting bracket, a dish-turning assembly, two dish-rotating assemblies and a dish-pivoting assembly. The antenna is mounted on the mounting bracket. The mounting bracket rotates on the adjustable bracket. The adjustable bracket is mounted on the stand assembly and is positioned by the dish-turning assembly, dish-rotating assemblies and dish-pivoting assembly.
Other objects, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
The stand assembly (10) has a post (11) and at least three legs (12). The post (11) has a top end and a bottom end. The at least three legs (12) are attached to the bottom end of the post (11).
The adjustable bracket (20) is mounted rotatably on the post (11) and has a post bracket (21), a (22) pivot pin (23) and an elevation bracket (22). The post bracket (21) is mounted rotatably on the top end of the post (11) and has a top end and a bottom end.
The pivot pin (23) is mounted transversely through the post bracket (21) near the top end.
The elevation bracket (22) is mounted pivotally on the pivot pin (23), is U-shaped and has a cross face (24), two wings (25) and two optional mounting tabs (26). The cross face (24) has a top end, a front, a rear and two sides. The two wings (25) extend respectively from the sides of the cross face (24), are parallel to each other and are mounted pivotally on the pivot pin (23). Each wing (25) has a top end, a curved bottom edge, a tail (27) and a curved side slot (28). The top ends of the wings are penetrated by and pivot on the pivot pin (23). The tail (27) is formed on the wing (25) close to the curved bottom edge opposite from the cross face (24). The curved side slot (28) is defined through the wing (25) close to the curved bottom edge. The two optional mounting tabs (26) are formed respectively on and extend out from the sides of the cross face (24), and each has a front, a rear and a through hole (261). The through hole (261) is defined through the optional mounting tab (26).
The mounting bracket (30) is U-shaped, is mounted rotatably on the front of the cross face (24) of the elevation bracket (22) and has two sides, a cross member (31), an optional top slider (33) and two optional bottom sliders (35).
The cross member (31) has a top edge, a bottom edge, two side edges, an optional top curved slot (32) and an optional bottom curved slot (34). The cross member (31) is mounted rotatably on the cross face (24) of the elevation bracket (22). The optional top curved slot (32) is defined near the top edge of the cross member (31). The optional bottom curved slot (34) is defined near the bottom edge of the cross member (31) and is concentric with the optional top curved slot (32).
The optional top slider (33) is mounted slidably in the optional top curved slot (32), is attached to the top end of the cross face (24) of the elevation bracket (22) and has a bolt and a nut (331). The bolt has a distal end that passes through optional top curved slot (32) and the cross face (24). The nut (331) screws onto the distal end of the bolt to keep the cross face (24) and the cross member (31) from rotating.
The optional two bottom sliders (35) slide in the optional bottom curved slot (34) and pass respectively through the through holes (261) in the optional mounting tabs (26) on the sides of the cross face (24). Each of the optional two bottom sliders (35) has a distal end.
The antenna dish (40) receives signals from satellites or other sources and is attached to the sides of the mounting bracket (30).
The dish-turning assembly (50) precisely adjusts the antenna dish (40) bearing, is mounted on the post (11) and is attached to the cross member (31) of the mounting bracket (30). The dish-turning assembly (50) has a clamp (51), a clamp connector (52), a mounting bracket connector (53), a dish-turning bolt (55) and two dish-turning nuts (56). The clamp (51) is attached to the post (11) under the post bracket (21). The clamp connector (52) is attached to and extends out from the clamp (51).
The mounting bracket connector (53) is attached to the cross member (31) of the mounting bracket (30) and has a connector pin (531), an L-shaped mounting bracket tab and a dish-turning tab (54)). The L-shaped mounting bracket tab is attached to the cross member (31) and has a transverse tab and a longitudinal tab. The transverse tab is attached to the cross member (31) near the bottom edge and has a through hole (not shown). The longitudinal tab has a through hole through which the connector pin (531) passes. The dish-turning tab (54) is L-shaped, is connected rotatably to the mounting bracket connector (53) with the connector pin (531) and has a longitudinal tab and a transverse tab. The longitudinal tab of the dish-turning tab (54) is connected to rotatably to the longitudinal tab of the mounting bracket tab and has a through hole (not shown). The through hole of the longitudinal tab of the dish-turning tab (54) corresponds to the through hole in the longitudinal tab of the mounting bracket tab. The transverse tab of the dish-turning tab (54) has two sides and an elongated hole (541). The elongated through hole (541) is defined through the transverse tab of the dish-turning tab (54).
The dish-turning bolt (55) passes through the elongated through hole (541) that allows the dish-turning bolt (55) to move slightly inside the elongated through hole (541). The dish-turning bolt (55) is connected to the clamp connector (52) and has a proximal end and a distal end. The proximal end is connected to the clamp connector (52) and may be welded to the clamp connector (52), attached to the clamp connector (52) with a mounting nut or formed integrally with the clamp connector (52). The distal end passes through the elongated through hole (541) in the dish-turning tab (54) attached to the mounting bracket connector (53), which allows the dish-turning bolt (55) to move slightly inside the elongated through hole (54). The two dish-turning nuts (56) are mounted on the dish-turning bolt (55) respectively on the opposite sides of transverse tab of the dish-turning tab (54) attached to the mounting bracket connector (53).
The two optional dish-rotating assemblies (60) precisely rotate the antenna dish (40) in a plane parallel to the cross member (31) of the mounting bracket (30). Each of optional dish-rotating assemblies (60) has a top connector (61), a bottom connector (63), a dish-rotating bolt (65) and two dish-rotating nuts (66). The top connector (61) is attached rotatably to the cross member (31) of the mounting bracket (30) and has a dish-rotating tab (62) and an elongated through hole (621). The dish-rotating tab (62) has two sides. The elongated through hole (621) is defined through the dish-rotating tab (62). The bottom connectors (63) are rotatably attached respectively to the distal ends of the optional bottom sliders (35) on the mounting bracket (30) through the through holes (261) in the optional mounting tabs (26). The dish-rotating bolt (65) has a proximal end and a distal end. The proximal end is attached securely to the bottom connector (63), and the distal end passes through the elongated through hole (621) in the dish-rotating tab (62). The two dish-rotating nuts (66) are mounted on the dish-rotating bolt (65) respectively on opposite sides of the dish-rotating tab (62).
With further reference to
With reference
With reference
With reference
The dish-turning assembly (50) can precisely regulate the turn of the antenna dish (40). The optional dish-rotating assemblies (60) can precisely regulate the rotation of the antenna dish (40). The dish-pivoting assembly (70) can precisely regulate the angle of elevation of the antenna dish (40). The satellite antenna of the invention is able to receive accurately signals from satellites or other air waves.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Name | Date | Kind |
---|---|---|---|
6445361 | Liu et al. | Sep 2002 | B2 |
6630912 | Ehrenberg et al. | Oct 2003 | B2 |
6762731 | Chou | Jul 2004 | B1 |
6873304 | Malhotra | Mar 2005 | B1 |
20010045912 | Li et al. | Nov 2001 | A1 |
20040196207 | Schefter et al. | Oct 2004 | A1 |
20050057428 | Fujita | Mar 2005 | A1 |