WIDE BEAM RADIATION LEAKAGE COAXIAL CABLE
20240014567 ยท 2024-01-11
Inventors
- Haiyan SONG (Yixing, Jiangsu, CN)
- Zhonghua LIU (Yixing, Jiangsu, CN)
- Jianghua SHEN (Yixing, Jiangsu, CN)
- Huibing WANG (Yixing, Jiangsu, CN)
- Chao WU (Yixing, Jiangsu, CN)
- Xuezi XU (Yixing, Jiangsu, CN)
- Yi ZHOU (Yixing, Jiangsu, CN)
- Cenjia LV (Yixing, Jiangsu, CN)
- Lingfeng WANG (Yixing, Jiangsu, CN)
- Yuanjing LI (Yixing, Jiangsu, CN)
Cpc classification
International classification
Abstract
The present disclosure provides a wide beam radiation leakage coaxial cable, which includes an inner conductor, an insulating layer, an outer conductor and a sheath coaxially nested from inside to outside in sequence, at least two columns of slot groups are provided on the outer conductor, the columns of slot groups are distributed at different angles in the circumferential direction of the outer conductor, the included angle between two adjacent columns of slot groups is =/n, where is the target radiation width, n is the number of columns of slot groups, each column of slot groups includes a plurality of slot arrays periodically arranged in the axial direction of the outer conductor, the pitch of each column of slot groups is the same, the pitch phase of each column of slot groups on the same leakage cable section is consistent, and each slot array includes a plurality of slots.
Claims
1. A wide beam radiation leakage coaxial cable, comprising an inner conductor, an insulating layer, an outer conductor and a sheath coaxially arranged in sequence, wherein at least two columns of slot groups are provided on the outer conductor, wherein the at least two columns of slot groups are distributed at different angles in the circumferential direction of the outer conductor, and wherein the included angle between two adjacent columns of the at least two columns of slot groups is =/n, where is the target radiation width, n is the number of columns of slot groups, wherein each column of the slot groups further comprising a plurality of slot arrays which are periodically arranged in the axial direction of the outer conductor, wherein the pitch of each column of slot groups is the same, wherein the pitch phase of each column of slot groups on a same leakage cable section is completely consistent, and wherein each slot array further comprising a plurality of slots.
2. The wide beam radiation leakage coaxial cable according to claim 1, wherein the number of columns of slot groups is n=/, where is the lobe width of each column of slot groups.
3. The wide beam radiation leakage coaxial cable according to claim 1, wherein the slot is a straight slot, a splay slot, a U-shaped slot, an L-shaped slot, a T-shaped slot, an E-shaped slot or a triangular slot.
4. The wide beam radiation leakage coaxial cable according to claim 3, wherein the slot is a U-shaped slot or a splayed slot, and wherein two adjacent slots in the axis direction of the outer conductor are provided central-symmetrically.
5. The wide beam radiation leakage coaxial cable according to claim 1, wherein two adjacent columns of slot groups in the circumferential direction of the outer conductor are capable of completely overlap with each other after rotating around the axis of the outer conductor by an angle .
6. The wide beam radiation leakage coaxial cable according to claim 1, wherein the number of columns of the slot groups is n=2 to 6.
7. The wide beam radiation leakage coaxial cable according to claim 6, wherein when the number of columns of the slot groups is n=3 or 5, and the slot group located in the middle position overlap with the center line of the narrow side of the outer conductor.
8. The wide beam radiation leakage coaxial cable according to claim 1, wherein the distance of the slot group on the unfolded outer conductor is D=D.sub.insulation/360 degrees, where D.sub.insulation is the outer diameter of the insulation layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to explain the technical scheme of the embodiments of the present disclosure more clearly, the drawings needed in the embodiments will be briefly introduced hereinafter. It should be understood that the following drawings only show some embodiments of the present disclosure, so as not to be regarded as defining the scope. For those skilled in the art, other related drawings can be obtained according to these drawings without creative efforts.
[0016] The above features and advantages of the present disclosure can be better understood after reading the detailed description of the embodiments of the present disclosure in conjunction with the following drawings. In the drawings, components are not necessarily drawn to scale, and components with similar related features or characteristics may have the same or similar reference numerals.
[0017]
[0018]
[0019]
[0020]
[0021]
[0022] In the figures: 1inner conductor; 2insulating layer; 3outer conductor; 4sheath; 31slot group; 311first slot group; 312second slot group; 313third slot group; 32slot array; 33slot; 34center line; 35overlapping edge.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] The present disclosure will be described in detail with reference to the drawings and specific embodiments hereinafter. It should be noted that the aspects described with reference to the drawings and specific embodiments hereinafter are only exemplary and should not be construed as any limitation on the scope of protection of the present disclosure.
[0024] As shown in
[0025] By increasing the number of columns of slot groups 31 and distributing the slot groups 31 at different angles in the circumferential direction of the outer conductor 3, the radiation lobe width of all frequency points (especially higher frequencies) of the leakage cable can be increased in the operating frequency band, so that the radiation lobe width of the leakage cable is widened, and thus the leakage cable has stronger applicability in application scenarios.
[0026] In the prior art, patent CN201820503050.5 slightly deforms the original single slot group (i.e., radiation source) to form a complex radiation unit, expecting to increase the radial radiation angle of the leakage cable. However, in fact, an effective spatial phase is not formed in space, which belongs to the same radiation source and has limited effect on expanding the radiation angle. In this patent, each group of radiation units should be located on the same straight line (slightly offset at most), not in the same circumferential direction. The distance between different columns of slots cannot be too far, otherwise the signal coverage of the interval area will be weak. In the present disclosure, independent slot groups are added, that is, at least two slots are provided in the same circumferential direction. Because the phases of each slot group are the same, the leakage cable with a wider radiation lobe can be formed by superposition in the same phase, thus solving the problem that the slots need to face the target coverage when the leakage cable is installed.
[0027] The radiation lobe width can be controlled by setting the number of columns and distribution angles of the slot groups 31. For example, the insulation outer diameter of a 13/8-inch leakage cable is 42.0 mm, the lobe width of 3 dB at a certain frequency point is 90 degrees, and it is necessary to increase the lobe width to 270 degrees (that is, the target radiation width), and then n=/=270/90=3, that is, at least three columns of slot groups 31 are needed; =/n=270/3=90 degrees, that is, the included angle of the slot groups 31 on the cross section of the leakage cable is 90 degrees (minimum included angle); as shown in
[0028] When processing, it is only necessary to provide slot groups 31 on the unfolded outer conductor 3 at a distance D, D=D.sub.insulation/360 degrees, where D.sub.insulation is the outer diameter of the insulation layer 2. In the above example, it can be calculated that D=32.97 mm, so that the interval of each column of slot groups 31 on the expanded surface of the outer conductor before longitudinal wrapping is 32.97 mm.
[0029] It should be noted that in the present disclosure, the distance D and the included angle are calculated by the geometric center of the slot 33.
[0030] In addition, it should be noted that when the number of columns of slot groups is n=3 or 5 and other odd columns, the slot group 31 in the middle position should be centrally provided. As shown in
[0031] In the present disclosure, the slot 33 can be a straight slot, a splay slot or a U-shaped slot, or other slots such as an L-shaped slot, a T-shaped slot, an E-shaped slot or a triangular slot, which is not limited here.
[0032] If the slot 33 is a U-shaped slot or a splayed slot, two adjacent slots 33 in the axial direction of the outer conductor 3 can be designed to be central-symmetrically provided (as shown in
[0033] In this specification, various embodiments are described in a progressive way, each embodiment focuses on the differences from other embodiments, and it is enough to refer to the same and similar parts between various embodiments.
[0034] The previous description of the present disclosure is provided to enable those skilled in the art to make or use the present disclosure. Various modifications to the present disclosure will be obvious to those skilled in the art, and the universal principles defined herein can be applied to other variations without departing from the spirit or scope of the present disclosure. Therefore, the present disclosure is not intended to be limited to the examples and designs described herein, but should be given with the widest scope consistent with the principles and novel features disclosed herein.
[0035] The above description is only a preferred example of the present disclosure, rather than limit the present disclosure. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present disclosure should be included in the scope of protection of the present disclosure.