METHOD FOR ARRANGEMENT OF LEAKY COAXIAL CABLES APPLIED TO STRIP-SHAPED ELONGATED AREA
20200358199 ยท 2020-11-12
Inventors
- ZhiXing YANG (Yixing City, CN)
- Zhonghua LIU (Yixing City, CN)
- Huiyi JIN (Yixing City, CN)
- Cenjia LV (Yixing City, CN)
- Guang WU (Yixing City, CN)
- Yongping SHI (Yixing City, CN)
- Bin CHEN (Yixing City, CN)
Cpc classification
International classification
Abstract
A method for arrangement of leaky coaxial cables applied to a strip-shaped elongated area, includes: reducing a quantitative radiation performance of initial ends of the leaky coaxial cable combination structures of two areas symmetrically arranged with respect to a central area in a length direction of the strip-shaped elongated area to ensure a small transmission loss, on the premise of ensuring that a comprehensive loss of a link tail end of the leaky coaxial cable is constant; and reducing an appropriate transmission loss of tail ends of the leaky coaxial cable combination structures of the two areas at the central area to increase the radiation performance.
Claims
1. A method for arrangement of leaky coaxial cables applied to a strip-shaped elongated area, comprising: reducing a quantitative radiation performance of initial ends of the leaky coaxial cable combination structures of two areas symmetrically arranged with respect to a central area in a length direction of the strip-shaped elongated area to ensure a small transmission loss, on the premise of ensuring that a comprehensive loss of a link tail end of the leaky coaxial cable is constant; and reducing an appropriate transmission loss of tail ends of the leaky coaxial cable combination structures of the two areas at the central area to increase the radiation performance.
2. The method according to claim 1, wherein: each of the leaky coaxial cable combination structures comprises a breakpoint-free leaky coaxial cable and a half jumper; the half jumpers of the leaky coaxial cable combination structures of the two areas are combined to form an integral jumper; both ends of the jumper in the length direction are respectively connected to tail ends of corresponding leaky coaxial cables located at the both ends, and initial ends of two of the leaky coaxial cables are located at both ends of the strip-shaped elongated area in the length directions; a groove hole on each of the breakpoint-free leaky coaxial cables has at least two different groove hole parameters; and the groove hole parameters comprise a groove hole shape, a gradient pitch, a groove width, a groove length, a grooving dip angle, a hole spacing, and a combined groove hole pattern.
3. The method according to claim 2, wherein the groove hole shape comprises, but is not limited to, a splayed shape, a U shape, a vertical strip shape, or an inclined strip shape.
4. The according to claim 2, wherein: each of the breakpoint-free leaky coaxial cables comprises groove holes having at least two pitches; a groove group composed of groove holes with a large pitch is disposed at the initial end of the leaky coaxial cable; and a groove group composed of groove holes with a small pitch is disposed at the tail end of the leaky coaxial cable.
5. The method according to claim 2, wherein: each of the breakpoint-free leaky coaxial cables comprises groove holes having at least two groove lengths; a groove group composed of groove holes with a relatively small groove length is disposed at the initial end of the leaky coaxial cable; and a groove group composed of groove holes with a relatively large groove length is disposed at the tail end of the leaky coaxial cable.
6. The method according to claim 2, wherein: each of the breakpoint-free leaky coaxial cables comprises groove holes having at least two groove widths; a groove group composed of groove holes with a relatively small groove width is disposed at the initial end of the leaky coaxial cable; and a groove group composed of groove holes with a relatively large groove width is disposed at the tail end of the leaky coaxial cable.
7. The method according to claim 2, wherein: each of the breakpoint-free leaky coaxial cables comprises groove holes having two grooving dip angles being between the groove hole of the splayed groove hole close to the initial end and a central axis; a groove group composed of groove holes with a relatively small grooving dip angle is disposed at the initial end of the leaky coaxial cable; and a groove group composed of groove holes with a relatively large grooving dip angle is disposed at the tail end of the leaky coaxial cable.
8. The method according to claim 1, wherein: each of the leaky coaxial cable combination structures comprises a first leaky coaxial cable, a transition jumper, and a half second leaky coaxial cable; the half second leaky coaxial cables of the leaky coaxial cable combination structures of the two areas are combined to form an integral second leaky coaxial cable; both ends of the second leaky coaxial cable in the length direction are respectively connected to inner ends of the corresponding transition jumpers at both ends; outer ends of each of the transition jumpers are respectively connected to the tail ends of the first leaky coaxial cable; and initial ends of two of the first leaky coaxial cables are located at both ends of the strip-shaped elongated area in the length direction.
9. The method according to claim 8, wherein: the specification of the second leaky coaxial cable is smaller than that of the first leaky coaxial cable; the groove hole parameters of the first leaky coaxial cable and second leaky coaxial cable are the same; and the second leaky coaxial cable with a smaller specification is selected according to a design margin for switching, to achieve an objective of smoothly increasing an end transmission loss and shortening a switching area.
10. The method according to claim 8, wherein: the specification of the second leaky coaxial cable and the specification of the first leaky coaxial cable are the same; the groove hole parameters of the first leaky coaxial cable and second leaky coaxial cable are different; the first leaky coaxial cable is an initial end of the leaky coaxial cable combination structure; any half second leaky coaxial cable of each of the second leaky coaxial cables is a tail end of the leaky coaxial cable combination structure of the corresponding area; and a low attenuation leaky coaxial cable is used as the first cable, and a high radiation leaky coaxial cable is used as the second cable.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0033] A method for arrangement of leaky coaxial cables applied to a strip-shaped elongated area includes: for leaky coaxial cable combination structures of two areas symmetrically arranged with respect to a central area in a length direction of the strip-shaped elongated area, on the premise of ensuring that a comprehensive loss of a link tail end of the leaky coaxial cable is constant, reducing a quantitative radiation performance of initial ends of the leaky coaxial cable combination structures of the two areas relatively far from the central area to ensure a small transmission loss, and reducing an appropriate transmission loss of tail ends of the leaky coaxial cable combination structures of the two areas at the central area to increase the radiation performance.
[0034] In the first solution, referring to
[0035] The groove hole shape includes, but is not limited to, a splayed shape, a U shape, a vertical strip shape, or an inclined strip shape.
[0036] In the first embodiment, referring to
[0037] In the second embodiment, referring to
[0038] In the third embodiment, referring to
[0039] In the fourth embodiment, referring to
[0040] In the fifth embodiment, referring to
[0041] In an embodiment, one breakpoint-free leaky coaxial cable is provided with at least two groups of gradient groove holes, including, but not limited to, the above-mentioned five modes used separately or in combination. When the above-mentioned five modes are combined, the modes need to be arranged according to the above-mentioned rules, and the more the number of grooving groups is, the smoother the compressive loss transition is. For specific grooving parameters, reference is made to the performance of the leaky coaxial cable when the respective grooving parameters exist separately.
[0042] In the second and third solutions, each leaky coaxial cable combination structure includes a first leaky coaxial cable 3, a transition jumper 4, and a half second leaky coaxial cable, where the half second leaky coaxial cables of the leaky coaxial cable combination structures of the two areas are combined to form an integral second leaky coaxial cable 5, and both ends of the second leaky coaxial cable 5 in the length direction are respectively connected to inner ends of the corresponding transition jumpers 4 at both ends. Outer ends of each of the transition jumpers 4 are respectively connected to the tail ends of the first leaky coaxial cable 3, and initial ends of two first leaky coaxial cables 3 are located at both ends of the strip-shaped elongated area in the length direction.
[0043] In the second solution, referring to
[0044] In third solution, referring to
[0045] In an embodiment, referring to
[0046] A schematic view of the signal field intensity of the A-B interval in the conventional coverage mode is shown in
[0047] A schematic view of the signal field intensity of the A-B interval in the coverage mode of this solution is shown in
[0048] The three solutions can be used to solve the problems of excessive field intensity at the initial end of the leaky coaxial cable, too long end switching area, poor switching effect and low signal-to-noise ratio, and can be selected specifically according to actual application scenarios and functional requirements. This solution has guiding significance for the effective application of the leaky coaxial cable in long-distance laying (the information source equipment spacing >200 m) and the application of a leaky coaxial cable-based MIMO solution.
[0049] The specific embodiments of the present disclosure have been described in detail above, but the contents are only preferred embodiments of the present disclosure and cannot be considered as limiting the implementation scope of the present disclosure. Any equivalent changes and improvements made in accordance with the application scope of the present disclosure shall still fall within the scope of this patent.