A cylindrical conformal all-metal dual-polarization phased array
By using the same structure of all-metal single-polarization phased array units in the cylindrical conformal dual-polarization phased array and loading metal walls on both sides of the magnetoelectric dipole, the problem of balancing wide scanning angle and low gain fluctuation is solved, and stable wide beam performance and low gain fluctuation are achieved.
Patent Information
- Application Number
- CN202510115038.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-24
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2045-01-24
AI Technical Summary
Existing cylindrical conformal dual-polarization phased arrays have difficulty balancing wide scanning angles and low gain fluctuation performance within a ±60° scanning range, especially in the miniaturization design of metal structures.
Using all-metal single-polarization phased array units with exactly the same structure, the radiation and reception of horizontally polarized and vertically polarized signals are achieved through different azimuth settings. Metal walls are loaded on both sides of the magneto-electric dipole. The magneto-electric dipole and the metal walls are superimposed to form a directional pattern similar to an "8" shape, ensuring a stable narrow beam directional pattern.
It achieves low gain fluctuation performance under wide scanning angles, and supports cylindrical conformal all-metal dual-polarization phased array to maintain stability and signal quality during large-angle beam scanning.
Smart Images

Figure CN120109534B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to an all-metal dual-polarization phased array, and in particular to a cylindrical conformal all-metal dual-polarization phased array. Background Art
[0002] Cylindrical conformal dual-polarization phased arrays (CDPPAs), with their flexible beam scanning capabilities, excellent anti-interference performance, and low air resistance, are becoming an increasingly indispensable component of wireless communication networks. CDPPA technology is particularly well-suited for space-constrained wireless communication and radar systems. CDPPAs can be tightly integrated with carrier surfaces, enabling effective operation even in confined environments. In long-range wireless communications, high-gain CDPPAs are an effective solution for overcoming path loss. Specifically, CDPPAs, which offer high gain characteristics and maintain low gain fluctuations over a wide scanning angle, are promising candidates in this field. These phased arrays not only effectively enhance signal strength but also maintain signal stability and quality while receiving signals from multiple directions. Given the significant advantages of metal structures in terms of low loss, high power handling, and efficient heat dissipation, metal has become the preferred material for high-gain CDPPAs. These characteristics enable the cylindrical conformal dual-polarization phased array to maintain high performance in complex and changing application environments while ensuring the long-term reliability of wireless communication and radar systems.
[0003] Typically, to obtain a ±60° scanning range, the period of the antenna elements in the phased array is approximately 0.5λ. H (λ H (The wavelength is the free-space wavelength at the highest frequency within the target operating band.) This design requirement significantly increases the difficulty of miniaturizing metal structures, significantly impacting beam scanning performance. While some existing cylindrical conformal dual-polarization phased arrays offer excellent broadband characteristics, they are limited in beam scanning range and gain fluctuation, unable to simultaneously achieve a ±60° scanning range and less than 3.5dB gain fluctuation. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a cylindrical conformal all-metal dual-polarization phased array that can achieve both wide scanning angle and low gain fluctuation performance.
[0005] The technical solution adopted by the present invention to solve the above technical problems is: a cylindrical conformal all-metal dual-polarized phased array, comprising a cylindrical surface and n×n all-metal single-polarized phased array units with identical structures, where n is an integer greater than or equal to 2; the n×n all-metal single-polarized phased array units are all arranged on the cylindrical surface and are evenly arranged in n rows and n columns to form an array. If the n all-metal single-polarized phased array units in the kth row are translated by 0.5λ along the row directionH The distance will completely overlap with the k+2th row of n all-metal single-polarization phased array units. If the kth row of n all-metal single-polarization phased array units are first translated by 0.25λ along the row direction H Then rotate 0.52λ around the circumference of the cylinder H Finally, each all-metal single-polarization phased array unit rotates 90° counterclockwise or clockwise around its center line, and will completely overlap with the n all-metal single-polarization phased array units in the k+1th row, k = 1, 2, ..., n-2, λ H is the free space wavelength at the highest operating frequency of the cylindrical conformal all-metal dual-polarized phased array, the n all-metal single-polarized phased array units in the 2m+1th row are all used to radiate or receive horizontally polarized signals, and the n all-metal single-polarized phased array units in the 2wth row are all used to radiate or receive vertically polarized signals. If n is an odd number, then m = 0, 1, ..., (n-1) / 2, w = 1, 2, ..., (n-1) / 2; if n is an even number, then m = 1, 2, ..., (n-2) / 2, w = 1, 2, ..., n / 2; each all-metal single-polarized phased array Each unit includes a feeding part and a radiating part. On the one hand, the feeding part is used to access external signals and transmit the accessed signals to the radiating part. The radiating part is used to radiate the signals transmitted to it by the feeding part into free space. On the other hand, the radiating part is used to receive signals in free space and transmit the signals to the feeding part. The feeding part is used to output the signals. The radiating part is realized by the magnetoelectric dipole and the metal wall. The metal wall is symmetrically loaded on both sides of the magnetoelectric dipole.
[0006] Compared with the prior art, the advantage of the present invention is that by using all-metal single-polarization phased array units of the same structure and arranging them in different orientations, the all-metal single-polarization phased array units in different orientations can respectively realize the radiation and reception of horizontally polarized signals and vertically polarized signals, thereby realizing dual polarization using all-metal single-polarization phased array units with exactly the same structure. In addition, in each all-metal single-polarization phased array unit, the radiation part is realized by loading metal walls on both sides of the magnetoelectric dipole, and the magnetoelectric dipole realizes stable narrow beam radiation pattern within the target frequency band. The metal wall is equivalent to a monopole, which radiates a directional pattern similar to an "8" shape. The narrow beam directional pattern and the directional pattern similar to the "8" shape are superimposed, which ensures that the active unit directional pattern of the cylindrical conformal all-metal dual-polarization phased array has a wide beam width performance. Benefiting from the wide beam active unit directional pattern having the ability to maintain low gain fluctuation performance at large angles, this supports the cylindrical conformal all-metal dual-polarization phased array to have low gain fluctuation performance during large-angle beam scanning. Therefore, the present invention has both wide scanning angle and low gain fluctuation performance.
[0007] Furthermore, in each of the all-metal single-polarization phased array units, the feed portion includes a first square block, a first cylinder, a second cylinder, a first rectangular block, a second rectangular block, a third rectangular block, and a fourth rectangular block. The length direction of the first square block is defined as the front-to-back direction, the width direction is defined as the left-to-right direction, and the height direction is defined as the up-down direction. The length of the first square block is equal to its width. A slot, a cylindrical hole, and a rectangular slot are sequentially provided on the first square block from bottom to top. The central axis of the slot coincides with the center line of the first square block in the up-down direction. The lower end surface of the slot coincides with the first square block. The lower end surface of the card slot is flush, the card slot is used to install an SMP connector for accessing external signals, the central axis of the cylindrical hole coincides with the center line of the first square block along the up-down direction, and the center line of the first square block along the up-down direction is the center line of the all-metal single-polarization phased array unit; the lower end surface of the cylindrical hole is connected to the upper end surface of the card slot, the length of the rectangular slot is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction, the length of the rectangular slot is greater than its width, the center line of the rectangular slot along the up-down direction coincides with the center line of the first square block along the up-down direction, and the lower end surface of the rectangular slot is connected to the upper end of the cylindrical hole. The upper end face of the rectangular groove and the upper end face of the first square block are in contact with each other, and are located in the same plane; the length of the rectangular groove is smaller than the length of the first square block, and the width is smaller than the width of the first square block; the first cylinder passes through the rectangular groove and the cylindrical hole from top to bottom in sequence and enters the slot, the first cylinder is coaxial with the cylindrical hole, the lower end face of the first cylinder is located between the upper end face and the lower end face of the slot, the upper end face of the first cylinder is located above the upper end face of the cylindrical hole, and there is a distance between the two, and the diameter of the first cylinder is smaller than the diameter of the cylindrical hole. diameter, the first cylinder does not contact the side wall of the card slot, and the lower end surface of the first cylinder is used to connect to the SMP connector; the second cylinder is located in the rectangular slot, the central axis of the second cylinder coincides with the center line of the first square block in the vertical direction, the diameter of the second cylinder is larger than the diameter of the cylindrical hole, the diameter of the second cylinder is smaller than the width of the rectangular slot, the lower end surface of the second cylinder is connected to the upper end surface of the first cylinder and is in a fitted state, the upper end surface of the second cylinder is located below the upper end surface of the first square block, and there is a distance between the two;The first rectangular block is located above the second cylinder, the length of the first rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the first rectangular block is greater than its width, the width of the first rectangular block is greater than the diameter of the second cylinder, the width of the first rectangular block is less than the width of the rectangular groove, the length of the first rectangular block is less than the length of the rectangular groove, the lower end face of the first rectangular block is connected to the upper end face of the second cylinder, and is in a fitted state, the center line of the first rectangular block in the up-down direction coincides with the center line of the first square block in the up-down direction, and the upper end face of the first rectangular block is located at below the upper end surface of the first square block, and there is a distance between the two; the second rectangular block is located above the first rectangular block, the length of the second rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction, the length of the second rectangular block is greater than its width, the length of the second rectangular block is greater than the length of the first rectangular block, the length of the second rectangular block is less than the length of the rectangular groove, the width of the second rectangular block is equal to the width of the first rectangular block, the height of the second rectangular block is greater than the height of the first rectangular block, and the center line of the second rectangular block in the up-down direction coincides with the center line of the first square block in the up-down direction. The lower end face of the second rectangular block is connected to the upper end face of the first rectangular block and is in a fitted state. The upper end face of the second rectangular block is located below the upper end face of the first square block, and there is a distance between the two. The third rectangular block is located above the second rectangular block. The length of the third rectangular block is greater than its width. The length of the third rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The plane that makes the first square block symmetrical in the left and right direction is called the first symmetrical plane, and the plane that makes the first square block symmetrical in the front and back direction is called the second symmetrical plane. The left end face of the third rectangular block is located to the right of the first symmetrical plane, and there is a distance between the two. There is a distance between them, the left end face of the third rectangular block is located on the left side of the right end face of the second rectangular block, and there is a distance between the two, the right end face of the third rectangular block is connected to the right end face of the rectangular groove, and is in a fitted state, the lower end face of the third rectangular block is connected to the upper end face of the second rectangular block, and is in a fitted state, the upper end face of the third rectangular block is flush with the upper end face of the first square block, the length of the third rectangular block is greater than the length of the second rectangular block and less than the length of the rectangular groove, the width of the third rectangular block is less than the width of the second rectangular block, and the third rectangular block is symmetrical front to back about the second symmetry plane;The fourth rectangular block is located above the second rectangular block and to the left of the first plane of symmetry. The fourth rectangular block has a length along the front-to-back direction, a width along the left-to-right direction, and a height along the top-to-bottom direction. The length of the fourth rectangular block is equal to the length of the third rectangular block, the width of the fourth rectangular block is equal to the width of the third rectangular block, and the height of the fourth rectangular block is less than the height of the third rectangular block. The right end face of the fourth rectangular block is located to the left of the first plane of symmetry, with a distance therebetween. The upper end face of the fourth rectangular block and the upper end face of the first rectangular block are located in the same plane. The left end face of the fourth rectangular block is connected to the left end face of the rectangular groove and is in a fitted state. The fourth rectangular block is front-to-back symmetrical about the second plane of symmetry.
[0008] Furthermore, in the radiation part of each of the all-metal single-polarization phased array units, the magnetoelectric dipole includes a fifth rectangular block, a sixth rectangular block, a seventh rectangular block, an eighth rectangular block, a ninth rectangular block, a tenth rectangular block, an eleventh rectangular block, a twelfth rectangular block, a thirteenth rectangular block, a fourteenth rectangular block, a fifteenth rectangular block, a sixteenth rectangular block, a first isosceles right-angled triangle block, a second isosceles right-angled triangle block, a third isosceles right-angled triangle block and a fourth isosceles right-angled triangle block, the fifth rectangular block is located above the first square block, the length of the fifth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction, the length of the fifth rectangular block is greater than its width, and the lower end of the fifth rectangular block The surface is connected to the upper end surface of the third rectangular block and is in a fitted state. The fifth rectangular block is located on the front side of the second symmetrical plane, and there is a distance between the two. The front end surface of the fifth rectangular block is located on the rear side of the front end surface of the third rectangular block, and there is a distance between the two. The right end surface of the fifth rectangular block is located on the left side of the right end surface of the third rectangular block, and there is a distance between the two. The left end surface of the fifth rectangular block is located on the right side of the left end surface of the third rectangular block, and there is a distance between the two. The sixth rectangular block is located on the rear side of the second symmetrical plane, and there is a distance between the two. The fifth rectangular block and the sixth rectangular block are relative to the second pair of The seventh rectangular block is located on the left side of the first symmetry plane, the seventh rectangular block and the fifth rectangular block are symmetrical about the first symmetry plane, the eighth rectangular block is located on the rear side of the second symmetry plane, the seventh rectangular block and the eighth rectangular block are symmetrical about the second symmetry plane, the ninth rectangular block is located on the right side of the fifth rectangular block, the length of the ninth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction, the length of the ninth rectangular block is greater than its width, the length of the ninth rectangular block is greater than the length of the fifth rectangular block, the height of the ninth rectangular block is equal to the height of the fifth rectangular block, and the The upper end face of the ninth rectangular block is flush with the upper end face of the fifth rectangular block, the lower end face of the ninth rectangular block is connected to the upper end face of the first square block and is in a fitted state, the left end face of the ninth rectangular block is connected to the right end face of the fifth rectangular block and is in a fitted state, the front end face of the ninth rectangular block is flush with the front end face of the third rectangular block, the rear end face of the ninth rectangular block is located on the rear side of the rear end face of the fifth rectangular block, and there is a distance between the two, the tenth rectangular block is located on the rear side of the second symmetry plane, the ninth rectangular block and the tenth rectangular block are symmetrical about the second symmetry plane, and the eleventh rectangular block is located on the left side of the first symmetry plane.The eleventh rectangular block and the ninth rectangular block are symmetrical about the first symmetry plane, the twelfth rectangular block is located on the rear side of the second symmetry plane, the eleventh rectangular block and the twelfth rectangular block are symmetrical about the second symmetry plane, the thirteenth rectangular block is located on the right side of the ninth rectangular block, the length of the thirteenth rectangular block is in the front-to-back direction, the width is in the left-right direction, and the height is in the up-down direction, the length of the thirteenth rectangular block is less than its width, the height of the thirteenth rectangular block is equal to the height of the ninth rectangular block, the sum of the length of the thirteenth rectangular block and its width is equal to the length of the ninth rectangular block, and the upper end surface of the thirteenth rectangular block is adjacent to the ninth rectangular block. The upper end face of the thirteenth rectangular block is flush with the upper end face of the first square block, the lower end face of the thirteenth rectangular block is connected to the upper end face of the first square block, and is in a fitted state, the left end face of the thirteenth rectangular block is connected to the right end face of the ninth rectangular block, and is in a fitted state, the rear end face of the thirteenth rectangular block is flush with the rear end face of the ninth rectangular block, the fourteenth rectangular block is located on the rear side of the second symmetry plane, the thirteenth rectangular block and the fourteenth rectangular block are symmetrical front to back with respect to the second symmetry plane, the fifteenth rectangular block is located on the left side of the first symmetry plane, the fifteenth rectangular block and the thirteenth rectangular block are symmetrical left to right with respect to the first symmetry plane, the sixteenth rectangular block is located on the rear side of the second symmetry plane, The fifteenth rectangular block and the sixteenth rectangular block are front-to-back with respect to the second symmetry plane, the first isosceles right triangle block is located on the right side of the ninth rectangular block and in front of the thirteenth rectangular block, the outer end face of the first isosceles right triangle block is formed by splicing the rear end face, left end face, right end face, upper end face and lower end face distributed in five directions of back, left, right, top and bottom, the upper end face and lower end face of the first isosceles right triangle block are exactly the same isosceles right triangles, the rear end face, left end face and right end face of the first isosceles right triangle block are all rectangles, the rear end face and left end face of the first isosceles right triangle block are exactly the same rectangles, and the two are perpendicular to each other, the first isosceles right triangle The rear end face, left end face and right end face of the block are all perpendicular to the upper end face of the first square block, the lower end face of the first isosceles right triangle block is connected to the upper end face of the first square block, and are in a fitted state, the left end face of the first isosceles right triangle block is connected to the right end face of the ninth rectangular block, and are in a fitted state, the rear end face of the first isosceles right triangle block is connected to the front end face of the thirteenth rectangular block, and are in a fitted state, the height of the first isosceles right triangle block is equal to the height of the ninth rectangular block; the length of the rear end face of the first isosceles right triangle block in the left-right direction is equal to the width of the thirteenth rectangular block; the second isosceles right triangle block 25 is located on the rear side of the second symmetry plane,The first isosceles right triangle block and the second isosceles right triangle 25 are front-to-back symmetrical about the second symmetry plane; the third isosceles right triangle block is located on the left side of the first symmetry plane, and the third isosceles right triangle block and the first isosceles right triangle block are left-right symmetrical about the first symmetry plane; the fourth isosceles right triangle block is located on the rear side of the second symmetry plane, and the third isosceles right triangle block and the fourth isosceles right triangle block are front-to-back symmetrical about the second symmetry plane;
[0009] Furthermore, in the radiating portion of each of the all-metal single-polarization phased array units, the metal wall includes a seventeenth rectangular block, an eighteenth rectangular block, a nineteenth rectangular block, a twentieth rectangular block, a twenty-first rectangular block, and a twenty-second rectangular block; the seventeenth rectangular block is located on the right side of the first symmetry plane, and there is a distance between the two. The length of the seventeenth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the seventeenth rectangular block is greater than its width. The lower end surface of the seventeenth rectangular block is connected to the upper end surface of the first square block and is in a fitted state. The right end face of the seventeenth rectangular block is flush with the right end face of the first square block, the height of the seventeenth rectangular block is less than the height of the fifth rectangular block, the seventeenth rectangular block is front-to-back symmetrical about the second symmetry plane, the left end face of the seventeenth rectangular block is located to the right of the right end face of the thirteenth rectangular block, and there is a distance between the two, the eighteenth rectangular block is located above the seventeenth rectangular block, the length of the eighteenth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the eighteenth rectangular block is equal to its width, and the The front end face of the eighteenth rectangular block is flush with the front end face of the seventeenth rectangular block, the left end face of the eighteenth rectangular block is flush with the left end face of the seventeenth rectangular block, the upper end face of the eighteenth rectangular block is located above the plane where the upper end face of the fifth rectangular block is located, and there is a distance between the two, the width of the eighteenth rectangular block is smaller than the width of the seventeenth rectangular block, the rear end face of the eighteenth rectangular block is located in front of the second symmetry plane, and there is a distance between the two, the nineteenth rectangular block is located on the rear side of the second symmetry plane, the eighteenth rectangular block and the nineteenth rectangular block are symmetrical front-to-back with respect to the second symmetry plane, the twentieth rectangular block is located on the left side of the first symmetry plane, the twentieth rectangular block and the seventeenth rectangular block are symmetrical left-right with respect to the first symmetry plane, the twenty-first rectangular block is located on the left side of the first symmetry plane, the twenty-first rectangular block and the eighteenth rectangular block are symmetrical left-to-right with respect to the first symmetry plane, the twenty-second rectangular block is located on the rear side of the second symmetry plane, and the twenty-first rectangular block and the twenty-second rectangular block are symmetrical front-to-back with respect to the second symmetry plane. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Figure 1 A three-dimensional diagram of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0011] Figure 2 A top view of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0012] Figure 3A three-dimensional diagram of an all-metal single-polarization phased array unit of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0013] Figure 4 An exploded view of an all-metal single-polarization phased array unit of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0014] Figure 5 A cross-sectional view of an all-metal single-polarization phased array unit of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0015] Figure 6 A top view of an all-metal single-polarization phased array unit of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0016] Figure 7 A front view of an all-metal single-polarization phased array unit of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0017] Figure 8 A side view of an all-metal single-polarization phased array unit of the cylindrical conformal all-metal dual-polarization phased array of the present invention;
[0018] FIG9( a ) is a simulation diagram of active standing waves when the cylindrical conformal all-metal dual-polarization phased array of the present invention is scanned along the E-plane direction;
[0019] FIG9( b ) is a simulation diagram of active standing waves when the cylindrical conformal all-metal dual-polarization phased array of the present invention is scanned along the H-plane direction;
[0020] FIG10( a ) is a normalized scanning pattern of the cylindrical conformal all-metal dual-polarization phased array of the present invention along the E-plane direction at 12 GHz;
[0021] FIG10( b ) is a normalized scanning pattern of the cylindrical conformal all-metal dual-polarization phased array of the present invention along the H-plane direction at 12 GHz;
[0022] FIG10( c ) is a normalized scanning pattern of the cylindrical conformal all-metal dual-polarization phased array of the present invention along the E-plane direction at 15 GHz;
[0023] FIG10( d ) is a normalized scanning pattern of the cylindrical conformal all-metal dual-polarization phased array of the present invention along the E-plane direction at 15 GHz. DETAILED DESCRIPTION
[0024] The present invention will be described in further detail below with reference to the accompanying drawings and embodiments.
[0025] Example 1: Figure 1 and Figure 2As shown, a cylindrical conformal all-metal dual-polarized phased array includes a cylindrical surface S1 and n×n all-metal single-polarized phased array units 1 with identical structures, where n is an integer greater than or equal to 2; the n×n all-metal single-polarized phased array units 1 are all arranged on the cylindrical surface S1 and are evenly arranged in n rows and n columns to form an array. If the n all-metal single-polarized phased array units 1 in the kth row are shifted by 0.5λ along the row direction H The distance will completely overlap with the k+2th row of n all-metal single-polarization phased array units 1. If the kth row of n all-metal single-polarization phased array units 1 are first translated by 0.25λ along the row direction H Then rotate 0.52λ around the circumferential direction of the cylinder S1 H Finally, after each all-metal single-polarization phased array unit 1 rotates 90° counterclockwise or clockwise around its center line, it will completely overlap with the n all-metal single-polarization phased array units 1 in the k+1th row, k = 1, 2, ..., n-2, λ H is the free space wavelength at the highest operating frequency of the cylindrical conformal all-metal dual-polarized phased array, the n all-metal single-polarized phased array units 1 in the 2m+1th row are all used to radiate or receive horizontally polarized signals, and the n all-metal single-polarized phased array units 1 in the 2wth row are all used to radiate or receive vertically polarized signals. If n is an odd number, then m = 0, 1, ..., (n-1) / 2, w = 1, 2, ..., (n-1) / 2; if n is an even number, then m = 1, 2, ..., (n-2) / 2, w = 1, 2, ..., n / 2; Each all-metal single-polarization phased array unit 1 includes a feeding part and a radiating part. On the one hand, the feeding part is used to access external signals and transmit the accessed signals to the radiating part. The radiating part is used to radiate the signals transmitted to it by the feeding part into free space. On the other hand, the radiating part is used to receive signals in free space and transmit the signals to the feeding part. The feeding part is used to output the signals. The radiating part is realized by the magnetoelectric dipole and the metal wall. The metal wall is symmetrically loaded on both sides of the magnetoelectric dipole.
[0026] In this embodiment, the free space wavelength λ at the highest operating frequency of the cylindrical conformal all-metal dual-polarization phased array design is H Different sizes, affected by λ H The influence of the value of , in the actual manufacturing of the cylindrical conformal all-metal dual-polarized phased array, two adjacent all-metal single-polarized phased array units 1 may partially overlap. In this case, the structure of the overlapping part of the two adjacent all-metal single-polarized phased array units 1 can be shared.
[0027] In this embodiment, all-metal single-polarized phased array elements with the same structure are arranged in different orientations, enabling the elements in different orientations to radiate and receive horizontally polarized signals and vertically polarized signals, respectively. This allows dual polarization to be achieved using all-metal single-polarized phased array elements with identical structures. Furthermore, in each all-metal single-polarized phased array element, the radiation portion is implemented by loading metal walls on both sides of a magneto-electric dipole. The magneto-electric dipole achieves stable narrow-beam radiation within the target frequency band, while the metal wall acts as a monopole, radiating an "8"-shaped pattern. The narrow beam pattern and the "8"-shaped pattern are superimposed, ensuring that the active element pattern of the cylindrical conformal all-metal dual-polarized phased array has a wide beamwidth. This wide-beam active element pattern maintains low gain fluctuation at large angles, enabling the cylindrical conformal all-metal dual-polarized phased array to exhibit low gain fluctuation during large-angle beam scanning.
[0028] Example 2: This example is basically the same as Example 1, except that: in this example, Figures 3 to 8As shown, in each all-metal single-polarization phased array unit 1, the feed part includes a first square block 2, a first cylinder 6, a second cylinder 7, a first rectangular block 8, a second rectangular block 9, a third rectangular block 10, and a fourth rectangular block 11. The length direction of the first square block 2 is defined as the front-to-back direction, the width direction is defined as the left-to-right direction, and the height direction is defined as the up-down direction. The length of the first square block 2 is equal to its width. The first square block 2 is provided with a slot 3, a cylindrical hole 4, and a rectangular slot 5 from bottom to top. The central axis of the slot 3 coincides with the center line of the first square block 2 in the up-down direction. The lower end surface of the card slot 3 is flush with the lower end surface of the first square block 2. The card slot 3 is used to install an SMP connector for accessing external signals. The central axis of the cylindrical hole 4 coincides with the center line of the first square block 2 in the vertical direction. The center line of the first square block 2 in the vertical direction is the center line of the all-metal single-polarization phased array unit 1; the lower end surface of the cylindrical hole 4 is connected to the upper end surface of the card slot 3. The length of the rectangular slot 5 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the rectangular slot 5 is greater than its width. The center line of the rectangular slot 5 in the vertical direction coincides with the center line of the first square block 2 in the up-down direction. The lower end face of the rectangular groove is connected to the upper end face of the cylindrical hole 4, and the upper end face of the rectangular groove 5 is in the same plane as the upper end face of the first square block 2; the length of the rectangular groove 5 is less than the length of the first square block, and the width is less than the width of the first square block; the first cylinder 6 passes through the rectangular groove 5 and the cylindrical hole 4 from top to bottom and enters the slot 3. The first cylinder 6 is coaxial with the cylindrical hole 4. The lower end face of the first cylinder 6 is located between the upper and lower end faces of the slot 3, and the upper end face of the first cylinder 6 is located above the upper end face of the cylindrical hole 4, and there is a distance between the two. The diameter of the first cylinder 6 is less than the diameter of the cylindrical hole 4. The diameter of the cylindrical hole 4, the first cylindrical body 6 does not contact the side wall of the card slot 3, and the lower end surface of the first cylindrical body 6 is used to connect with the SMP connector; the second cylindrical body 7 is located in the rectangular groove 5, and the central axis of the second cylindrical body 7 coincides with the center line of the first square block 2 in the vertical direction. The diameter of the second cylindrical body 7 is larger than the diameter of the cylindrical hole 4, and the diameter of the second cylindrical body 7 is smaller than the width of the rectangular groove 5. The lower end surface of the second cylindrical body 7 is connected to the upper end surface of the first cylindrical body 6 and is in a fitted state. The upper end surface of the second cylindrical body 7 is located below the upper end surface of the first square block 2, and there is a distance between the two;The first rectangular block 8 is located above the second cylinder 7. The length of the first rectangular block 8 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the first rectangular block 8 is greater than its width, the width of the first rectangular block 8 is greater than the diameter of the second cylinder 7, the width of the first rectangular block 8 is less than the width of the rectangular groove 5, the length of the first rectangular block 8 is less than the length of the rectangular groove 5, the lower end face of the first rectangular block 8 is connected to the upper end face of the second cylinder 7, and is in a fitted state. The center line of the first rectangular block 8 along the up-down direction coincides with the center line of the first square block 2 along the up-down direction, and the upper end face of the first rectangular block 8 is located above the first square block 2 The second rectangular block 9 is located above the first rectangular block 8, the length of the second rectangular block 9 is along the front-to-back direction, the width is along the left-right direction, and the height is along the up-down direction. The length of the second rectangular block 9 is greater than its width, the length of the second rectangular block 9 is greater than the length of the first rectangular block 8, the length of the second rectangular block 9 is less than the length of the rectangular groove 5, the width of the second rectangular block 9 is equal to the width of the first rectangular block 8, the height of the second rectangular block 9 is greater than the height of the first rectangular block 8, the center line of the second rectangular block 9 in the up-down direction coincides with the center line of the first square block 2 in the up-down direction, and the lower end surface of the second rectangular block 9 The upper end face of the second rectangular block 9 is connected to the upper end face of the first rectangular block 8 and is in a fitted state. The upper end face of the second rectangular block 9 is located below the upper end face of the first square block 2, and there is a distance between the two. The third rectangular block 10 is located above the second rectangular block 9. The length of the third rectangular block 10 is greater than its width. The length of the third rectangular block 10 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The plane that makes the first square block 2 bilaterally symmetrical is called the first symmetry plane L1, and the plane that makes the first square block 2 front-to-back symmetrical is called the second symmetry plane L2. The left end face of the third rectangular block 10 is located to the right of the first symmetry plane L1, and there is a distance between the two. There is a distance between the left end face of the third rectangular block 10 and the right end face of the second rectangular block 9, and there is a distance between the two. The right end face of the third rectangular block 10 is connected to the right end face of the rectangular groove 5 and is in a fitted state. The lower end face of the third rectangular block 10 is connected to the upper end face of the second rectangular block 9 and is in a fitted state. The upper end face of the third rectangular block 10 is flush with the upper end face of the first square block 2. The length of the third rectangular block 10 is greater than the length of the second rectangular block 9 and less than the length of the rectangular groove 5. The width of the third rectangular block 10 is less than the width of the second rectangular block 9. The third rectangular block 10 is front-to-back symmetrical about the second symmetry plane L2.The fourth rectangular block 11 is located above the second rectangular block 9 and to the left of the first plane of symmetry L1. The length of the fourth rectangular block 11 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the top-to-bottom direction. The length of the fourth rectangular block 11 is equal to the length of the third rectangular block 10, the width of the fourth rectangular block 11 is equal to the width of the third rectangular block 10, and the height of the fourth rectangular block 11 is less than the height of the third rectangular block 10. The right end face of the fourth rectangular block 11 is located to the left of the first plane of symmetry L1, with a distance between them. The upper end face of the fourth rectangular block 11 is coplanar with the upper end face of the first square block 2. The left end face of the fourth rectangular block is connected to the left end face of the rectangular groove 5 and is in a fitted state. The fourth rectangular block 11 is front-to-back symmetrical about the second plane of symmetry L2.
[0029] Example 3: This example is basically the same as Example 2, except that: in this example, Figures 3 to 8As shown, in the radiation part of each all-metal single-polarization phased array unit 1, the magnetoelectric dipole includes a fifth rectangular block 12, a sixth rectangular block 13, a seventh rectangular block 14, an eighth rectangular block 15, a ninth rectangular block 16, a tenth rectangular block 17, an eleventh rectangular block 18, a twelfth rectangular block 19, a thirteenth rectangular block 20, a fourteenth rectangular block 21, a fifteenth rectangular block 22, a sixteenth rectangular block 23, a first isosceles right-angled triangle block 24, a second isosceles right-angled triangle block 25, a third isosceles right-angled triangle block 26 and a fourth isosceles right-angled triangle block 27. The fifth rectangular block 12 is located above the first square block 2. The length of the fifth rectangular block 12 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The fifth rectangular block 12 is greater than its width, the lower end face of the fifth rectangular block 12 is connected to the upper end face of the third rectangular block 10, and they are in a fitted state, the fifth rectangular block 12 is located on the front side of the second symmetry plane L2, and there is a distance between the two, the front end face of the fifth rectangular block 12 is located on the rear side of the front end face of the third rectangular block 10, and there is a distance between the two, the right end face of the fifth rectangular block 12 is located on the left side of the right end face of the third rectangular block 10, and there is a distance between the two, the left end face of the fifth rectangular block 12 is located on the right side of the left end face of the third rectangular block 10, and there is a distance between the two; the sixth rectangular block 13 is located on the rear side of the second symmetry plane L2, and there is a distance between the two, the fifth rectangular block 12 and the sixth rectangular block 13 are about the second symmetry plane L2 is symmetrical in front and back, the seventh rectangular block 14 is located on the left side of the first symmetry plane L1, the seventh rectangular block 14 and the fifth rectangular block 12 are symmetrical with respect to the first symmetry plane L1, the eighth rectangular block 15 is located on the rear side of the second symmetry plane L2, the seventh rectangular block 14 and the eighth rectangular block 15 are symmetrical with respect to the second symmetry plane L2, the ninth rectangular block 16 is located on the right side of the fifth rectangular block 12, the length of the ninth rectangular block 16 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the ninth rectangular block 16 is greater than its width, the length of the ninth rectangular block 16 is greater than the length of the fifth rectangular block 12, the height of the ninth rectangular block 16 is equal to the height of the fifth rectangular block 12, and the upper end surface of the ninth rectangular block 16 is flush with the upper end surface of the fifth rectangular block 12. The lower end face of the ninth rectangular block 16 is connected to the upper end face of the first square block 2 and is in a fitted state. The left end face of the ninth rectangular block 16 is connected to the right end face of the fifth rectangular block 12 and is in a fitted state. The front end face of the ninth rectangular block 16 is flush with the front end face of the third rectangular block 10. The rear end face of the ninth rectangular block 16 is located on the rear side of the rear end face of the fifth rectangular block 12, and there is a distance between the two. The tenth rectangular block 17 is located on the rear side of the second symmetry plane. The ninth rectangular block 16 and the tenth rectangular block 17 are symmetrical front to back with respect to the second symmetry plane. The eleventh rectangular block 18 is located on the left side of the first symmetry plane. The eleventh rectangular block 18 and the ninth rectangular block 16 are symmetrical left to right with respect to the first symmetry plane. The twelfth rectangular block 19 is located on the rear side of the second symmetry plane.The eleventh rectangular block 18 and the twelfth rectangular block 19 are symmetrical front to back about the second symmetry plane, the thirteenth rectangular block 20 is located on the right side of the ninth rectangular block 16, the length of the thirteenth rectangular block 20 is in the reverse direction of front to back, the width is in the left to right direction, and the height is in the up and down direction. The length of the thirteenth rectangular block 20 is less than its width, the height of the thirteenth rectangular block 20 is equal to the height of the ninth rectangular block 16, the sum of the length of the thirteenth rectangular block 20 and its width is equal to the length of the ninth rectangular block 16, the upper end face of the thirteenth rectangular block 20 is flush with the upper end face of the ninth rectangular block 16, the lower end face of the thirteenth rectangular block 20 is connected to the upper end face of the first square block 2, and is in a fitted state, the left end face of the thirteenth rectangular block 20 is connected to the right end face of the ninth rectangular block 16, and is in a fitted state State, the rear end face of the thirteenth rectangular block 20 is flush with the rear end face of the ninth rectangular block 16, the fourteenth rectangular block 21 is located on the rear side of the second symmetry plane, the thirteenth rectangular block 20 and the fourteenth rectangular block 21 are symmetrical about the second symmetry plane, the fifteenth rectangular block 22 is located on the left side of the first symmetry plane, the fifteenth rectangular block 22 and the thirteenth rectangular block 20 are symmetrical about the first symmetry plane, the sixteenth rectangular block 23 is located on the rear side of the second symmetry plane, the fifteenth rectangular block 22 and the sixteenth rectangular block 23 are front-to-back about the second symmetry plane, the first isosceles right triangle block 24 is located on the right side of the ninth rectangular block 16 and in front of the thirteenth rectangular block 20, and the outer end face of the first isosceles right triangle block 24 is distributed in five directions: back, left, right, up, and down. The rear end face, left end face, right end face, upper end face and lower end face of the first isosceles right triangle block 24 are spliced together, the upper end face and lower end face of the first isosceles right triangle block 24 are exactly the same isosceles right triangle, the rear end face, left end face and right end face of the first isosceles right triangle block 24 are all rectangles, the rear end face and left end face of the first isosceles right triangle block 24 are exactly the same rectangle, and the two are perpendicular to each other, the rear end face, left end face and right end face of the first isosceles right triangle block 24 are all perpendicular to the upper end face of the first square block 2, the lower end face of the first isosceles right triangle block 24 is connected to the upper end face of the first square block 2, and are in a fitted state, the left end face of the first isosceles right triangle block 24 is connected to the right end face of the ninth rectangular block 16, and are in a fitted state, the first isosceles right triangle The rear end face of the rectangular block 24 is connected to the front end face of the thirteenth rectangular block 20 and is in a fitted state. The height of the first isosceles right triangle block 24 is equal to the height of the ninth rectangular block 16; the length of the rear end face of the first isosceles right triangle block 24 in the left-right direction is equal to the width of the thirteenth rectangular block 20; the second isosceles right triangle block 25 is located on the rear side of the second symmetry plane L2, and the first isosceles right triangle block 24 and the second isosceles right triangle 25 are symmetrical about the second symmetry plane; the third isosceles right triangle block 26 is located on the left side of the first symmetry plane L1, and the third isosceles right triangle block 26 and the first isosceles right triangle block 24 are symmetrical about the first symmetry plane L1; the fourth isosceles right triangle block 27 is located on the rear side of the second symmetry plane L2,The third isosceles right triangle block 26 and the fourth isosceles right triangle block 27 are symmetrical about the second symmetry plane L2; the metal wall includes a seventeenth rectangular block 28, an eighteenth rectangular block 29, a nineteenth rectangular block 30, a twentieth rectangular block 31, a twenty-first rectangular block 32 and a twenty-second rectangular block 33; the seventeenth rectangular block 28 is located on the right side of the first symmetry plane, and there is a distance between the two. The length of the seventeenth rectangular block 28 is along the front-to-back direction, the width is along the left-right direction, and the height is along the up-down direction. The length of the seventeenth rectangular block 28 is greater than its width. The seventeenth rectangular block 28 The lower end face of the seventeenth rectangular block 28 is connected to the upper end face of the first square block and is in a fitted state. The right end face of the seventeenth rectangular block 28 is flush with the right end face of the first square block 2. The height of the seventeenth rectangular block 28 is less than the height of the fifth rectangular block 12. The seventeenth rectangular block 28 is front-to-back symmetrical about the second symmetry plane. The left end face of the seventeenth rectangular block 28 is located to the right of the right end face of the thirteenth rectangular block 20, and there is a distance between the two. The eighteenth rectangular block 29 is located above the seventeenth rectangular block 28. The length of the eighteenth rectangular block 29 is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the top-to-bottom direction. The length of the eighteenth rectangular block 29 is equal to its width, the front end face of the eighteenth rectangular block 29 is flush with the front end face of the seventeenth rectangular block 28, the left end face of the eighteenth rectangular block 29 is flush with the left end face of the seventeenth rectangular block 28, the upper end face of the eighteenth rectangular block 29 is located above the plane where the upper end face of the fifth rectangular block 12 is located, and there is a distance between the two, the width of the eighteenth rectangular block 29 is less than the width of the seventeenth rectangular block 28, the rear end face of the eighteenth rectangular block 29 is located on the front side of the second symmetry plane, and there is a distance between the two, the nineteenth rectangular block 30 is located On the rear side of the second symmetry plane, the eighteenth rectangular block 29 and the nineteenth rectangular block 30 are front-to-back symmetrical about the second symmetry plane, the twentieth rectangular block 31 is located on the left side of the first symmetry plane, the twentieth rectangular block 31 and the seventeenth rectangular block 28 are left-to-right symmetrical about the first symmetry plane, the twenty-first rectangular block 32 is located on the left side of the first symmetry plane, the twenty-first rectangular block 32 and the eighteenth rectangular block 29 are left-to-right symmetrical about the first symmetry plane, the twenty-second rectangular block 33 is located on the rear side of the second symmetry plane, and the twenty-first rectangular block 32 and the twenty-second rectangular block 33 are front-to-back symmetrical about the second symmetry plane.
[0030] In this embodiment, when the cylindrical conformal all-metal dual-polarized phased array is in use, an SMP connector connected to the lower end surface of the first cylinder 6 therein is installed in the card slot 3 of each all-metal single-polarized phased array unit 1 .
[0031] When the cylindrical conformal all-metal dual-polarization phased array realizes the transmission function, the external transmission system transmits the signal to the feeding part of each all-metal single-polarization phased array unit 1 through each SMP connector. In each all-metal single-polarization phased array unit 1, first, the signal passes through the coaxial structure composed of the cylindrical hole 4 and the first cylinder 6. At this time, the TEM mode signal is transmitted. Further, the signal is transmitted to the rectangular slot 5 through the first cylinder 6 structure extending into the rectangular slot 5. A good matching transition of the signal is achieved through the three-level transition structure composed of the second cylinder 7, the first rectangular block 8 and the second rectangular block 9. Subsequently, the signal is transmitted to the double-ridge waveguide structure composed of the third rectangular block 10 and the fourth rectangular block 11. The TE10 mode signal is transmitted here. This process completes the stable conversion of the signal from TEM mode to TE10 mode. The TE10 mode signal is used to excite the radiation part. The TE10 mode signal is transmitted to the eleventh rectangular block 18 and the twelfth rectangular block At the magnetoelectric dipole composed of the thirteenth rectangular block 20, the fourteenth rectangular block 21, the fifteenth rectangular block 22, the sixteenth rectangular block 23, the seventeenth rectangular block 24, the eighteenth rectangular block 25, the first isosceles right-angled triangle block 26, the second isosceles right-angled triangle block 27, the third isosceles right-angled triangle block 28, the fourth isosceles right-angled triangle block 29, the nineteenth rectangular block 30, the twentieth rectangular block 31, the twenty-first rectangular block 32 and the twenty-second rectangular block 33, a stable directional radiation pattern is achieved. Furthermore, the metal wall composed of the fifth rectangular block 12, the sixth rectangular block 13, the seventh rectangular block 14, the eighth rectangular block 15, the ninth rectangular block 16 and the tenth rectangular block 17 can be equivalent to two monopole structures, which can expand the beam width of the radiation pattern of the all-metal single-polarization phased array unit 1. Thanks to the wide-beam unit radiation pattern, the phased array can maintain low gain fluctuation performance during the ±60° large-angle beam scanning process, and finally the signal is stably radiated into the free space to achieve signal transmission.
[0032] When the cylindrical conformal all-metal dual-polarized phased array realizes the receiving function, each SMP connector is connected to the external receiving system. In each all-metal single-polarized phased array unit 1, after the radiating part receives the signal in the target frequency band in free space, the metal wall composed of the fifth rectangular block 12, the sixth rectangular block 13, the seventh rectangular block 14, the eighth rectangular block 15, the ninth rectangular block 16 and the tenth rectangular block 17 and the magnetoelectric dipole composed of the eleventh rectangular block 18, the twelfth rectangular block 19, the thirteenth rectangular block 20, the fourteenth rectangular block 21, the fifteenth rectangular block 22, the sixteenth rectangular block 23, the seventeenth rectangular block 24, the eighteenth rectangular block 25, the first isosceles right triangle block 26, the second isosceles right triangle block 27, the third isosceles right triangle block 28, the fourth isosceles right triangle block 29, the nineteenth rectangular block 30, the twentieth rectangular block 31, the twenty-first rectangular block 32 and the twenty-second rectangular block 33 jointly realize the signal transmission. At the same time, the nineteenth rectangular block 30, the twentieth rectangular block 31, the twenty-first rectangular block 32 and the twenty-second rectangular block 33 realize good impedance matching transition for the target frequency band signal, and transmit the signal to the double-ridge waveguide structure composed of the third rectangular block 10 and the fourth rectangular block 11 to realize the transmission of TE10 mode signal. At this time, the signal is gradually converted from TE10 mode to TEM mode through the three-level transition structure composed of the second rectangular block 9, the first rectangular block 8 and the second cylinder 7. The TEM mode signal is further transmitted to the first cylinder 6. At this time, the signal is well impedance matched through the coaxial structure composed of the first cylinder 6 and the cylindrical hole 4. The signals within the target working frequency band can be stably transmitted to the feeding part, and further transmitted to the SMP connector through the coaxial structure. Finally, the signal is sent to the back-end receiving system by the SMP connector to realize signal reception.
[0033] In order to verify the performance of the cylindrical conformal all-metal dual-polarization phased array of the present invention, the cylindrical conformal all-metal dual-polarization phased array of the present invention was simulated, wherein the active standing wave simulation diagrams of the cylindrical conformal all-metal dual-polarization phased array of the present invention are shown in Figures 9(a) and 9(b), and the normalized beam scanning direction patterns of the cylindrical conformal all-metal dual-polarization phased array of the present invention are shown in Figures 10(a), 10(b), 10(c), and 10(d).
[0034] Figures 9(a) and 9(b) show the variations in active standing waves for a cylindrical conformal all-metal dual-polarized phased array when scanning along the E-plane and H-plane directions, respectively. The three curves in the figures correspond to the active standing waves for the cylindrical conformal all-metal dual-polarized phased array when the beam is pointed at 0°, 30°, and 60°, respectively. Analysis of Figures 9(a) and 9(b) shows that when the beam is pointed at no more than 60°, the active standing wave of the cylindrical conformal all-metal dual-polarized phased array of the present invention is guaranteed to be less than 3 within the target operating frequency band of 12-15 GHz.
[0035] Figures 10(a) and 10(b) show the beam scanning of the cylindrical conformal all-metal dual-polarized phased array of the present invention along the E-plane and H-plane directions at 12 GHz, respectively. Figures 10(c) and 10(d) show the beam scanning of the cylindrical conformal all-metal dual-polarized phased array of the present invention along the E-plane and H-plane directions at 15 GHz, respectively. Analysis of Figures 10(a), 10(b), 10(c), and 10(d) shows that the cylindrical conformal all-metal dual-polarized phased array of the present invention can achieve a scanning range of ±60° within the target operating frequency band of 12-15 GHz, with a gain fluctuation of less than 3.5 dB.
[0036] In summary, the cylindrical conformal all-metal dual-polarized phased array of the present invention improves the antenna unit structure and adopts an all-metal single-polarized phased array unit 1 to simultaneously achieve horizontal polarization and vertical polarization, thereby achieving a large angle scanning range while having low gain fluctuation performance.
Claims
1. A cylindrical conformal all-metal dual-polarization phased array, comprising a cylindrical surface, characterized in that The invention also includes n×n all-metal single-polarization phased array units with identical structures, where n is an integer greater than or equal to 2; the n×n all-metal single-polarization phased array units are all arranged on a cylindrical surface and are evenly arranged in n rows and n columns to form an array. If the n all-metal single-polarization phased array units in the kth row are shifted by 0.5 in the row direction, λ H The distance will completely overlap with the k+2th row of n all-metal single-polarization phased array units. If the kth row of n all-metal single-polarization phased array units are first translated by 0.25 in the row direction, λ H distance, and then rotate 0.52 around the circumference of the cylinder λ H Finally, after each all-metal single-polarization phased array unit rotates 90° counterclockwise or clockwise around its center line, it will completely overlap with the n all-metal single-polarization phased array units in the k+1th row, k=1, 2, …, n-2, λ H is the free-space wavelength at the highest operating frequency of a cylindrical conformal all-metal dual-polarized phased array. Each all-metal single-polarized phased array unit includes a feeding part and a radiating part. The feeding part is used to output the signal, and the radiating part is realized by a magnetoelectric dipole and a metal wall. The metal wall is symmetrically loaded on both sides of the magnetoelectric dipole. In each all-metal single-polarization phased array unit, the feeding part includes a first square block, a first cylinder, a second cylinder, a first rectangular block, a second rectangular block, a third rectangular block and a fourth rectangular block. The first square block is provided with a card slot, a cylindrical hole and a rectangular slot from bottom to top. The card slot is used to install an SMP connector for accessing external signals. The lower end face of the cylindrical hole is connected to the upper end face of the card slot, the lower end face of the rectangular slot is connected to the upper end face of the cylindrical hole, and the upper end face of the rectangular slot is in the same plane as the upper end face of the first square block; the first cylinder passes through the rectangular slot and the cylindrical hole from top to bottom and enters the card slot. The first cylinder does not contact the side wall of the card slot. The lower end face of the first cylinder is used to connect with the SMP Connector connection; the second cylinder is located in the rectangular groove, the lower end face of the second cylinder is connected to the upper end face of the first cylinder, and they are in a fitted state, the first rectangular block is located above the second cylinder, the lower end face of the first rectangular block is connected to the upper end face of the second cylinder, and they are in a fitted state, the second rectangular block is located above the first rectangular block, the lower end face of the second rectangular block is connected to the upper end face of the first rectangular block, and they are in a fitted state, the third rectangular block is located above the second rectangular block, the plane that makes the first square block symmetrical in the left and right is called the first symmetrical plane, the plane that makes the first square block symmetrical in the front and back is called the second symmetrical plane, the left end of the third rectangular block The surface is located on the right side of the first symmetry plane, the right end face of the third rectangular block is connected to the right end face of the rectangular groove, and are in a fit state, the lower end face of the third rectangular block is connected to the upper end face of the second rectangular block, and are in a fit state, the upper end face of the third rectangular block is flush with the upper end face of the first square block, the fourth rectangular block is located above the second rectangular block and on the left side of the first symmetry plane, the right end face of the fourth rectangular block is located on the left side of the first symmetry plane, the upper end face of the fourth rectangular block and the upper end face of the first square block are located in the same plane, the left end face of the fourth rectangular block is connected to the left end face of the rectangular groove, and are in a fit state, and the fourth rectangular block is symmetrical front to back about the second symmetry plane.
2. The cylindrical conformal all-metal dual-polarization phased array according to claim 1, characterized in that In the radiation part of each of the all-metal single-polarization phased array units, the magnetoelectric dipole includes a fifth rectangular block, a sixth rectangular block, a seventh rectangular block, an eighth rectangular block, a ninth rectangular block, a tenth rectangular block, an eleventh rectangular block, a twelfth rectangular block, a thirteenth rectangular block, a fourteenth rectangular block, a fifteenth rectangular block, a sixteenth rectangular block, a first isosceles right-angled triangle block, a second isosceles right-angled triangle block, a third isosceles right-angled triangle block and a fourth isosceles right-angled triangle block, the fifth rectangular block is located above the first square block, the length of the fifth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction, the length of the fifth rectangular block is greater than its width, and the lower end surface of the fifth rectangular block is connected to the upper end surface of the third rectangular block. And they are in a fitted state, the fifth rectangular block is located on the front side of the second symmetry plane, and there is a distance between the two, the front end face of the fifth rectangular block is located on the rear side of the front end face of the third rectangular block, and there is a distance between the two, the right end face of the fifth rectangular block is located on the left side of the right end face of the third rectangular block, and there is a distance between the two, the left end face of the fifth rectangular block is located on the right side of the left end face of the third rectangular block, and there is a distance between the two; the sixth rectangular block is located on the rear side of the second symmetry plane, and there is a distance between the two, the fifth rectangular block and the sixth rectangular block are front-to-back symmetrical about the second symmetry plane, the seventh rectangular block is located on the left side of the first symmetry plane, and the seventh rectangular block The fifth rectangular block is symmetrical with respect to the first symmetry plane, the eighth rectangular block is located on the rear side of the second symmetry plane, the seventh rectangular block and the eighth rectangular block are symmetrical with respect to the second symmetry plane, the ninth rectangular block is located on the right side of the fifth rectangular block, the length of the ninth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction, the length of the ninth rectangular block is greater than its width, the length of the ninth rectangular block is greater than the length of the fifth rectangular block, the height of the ninth rectangular block is greater than the height of the fifth rectangular block, the lower end face of the ninth rectangular block is connected to the upper end face of the first square block and is in a fitted state, the left end face of the ninth rectangular block is connected to the right end face of the fifth rectangular block, and The ninth rectangular block is in a fitted state, the front end face of the ninth rectangular block is flush with the front end face of the third rectangular block, the rear end face of the ninth rectangular block is located behind the rear end face of the fifth rectangular block, and there is a distance between the two, the tenth rectangular block is located behind the second symmetry plane, the ninth rectangular block and the tenth rectangular block are symmetrical front to back about the second symmetry plane, the eleventh rectangular block is located on the left side of the first symmetry plane, the eleventh rectangular block and the ninth rectangular block are symmetrical left to right about the first symmetry plane, the twelfth rectangular block is located behind the second symmetry plane, the eleventh rectangular block and the twelfth rectangular block are symmetrical front to back about the second symmetry plane, and the thirteenth rectangular block is located on the right side of the ninth rectangular block.The length of the thirteenth rectangular block is in the reverse direction of front and back, the width is in the left and right direction, and the height is in the up and down direction. The length of the thirteenth rectangular block is less than its width, the height of the thirteenth rectangular block is equal to the height of the ninth rectangular block, the sum of the length and width of the thirteenth rectangular block is equal to the length of the ninth rectangular block, the upper end face of the thirteenth rectangular block is flush with the upper end face of the ninth rectangular block, the lower end face of the thirteenth rectangular block is connected to the upper end face of the first square block, and is in a fitted state, the left end face of the thirteenth rectangular block is connected to the right end face of the ninth rectangular block, and is in a fitted state, the rear end face of the thirteenth rectangular block is flush with the rear end face of the ninth rectangular block, the fourteenth rectangular block is located on the rear side of the second symmetry plane, The thirteenth rectangular block and the fourteenth rectangular block are symmetrical front to back about the second symmetry plane, the fifteenth rectangular block is located on the left side of the first symmetry plane, the fifteenth rectangular block and the thirteenth rectangular block are symmetrical left to right about the first symmetry plane, the sixteenth rectangular block is located on the rear side of the second symmetry plane, the fifteenth rectangular block and the sixteenth rectangular block are front to back about the second symmetry plane, the first isosceles right triangle block is located on the right side of the ninth rectangular block and in front of the thirteenth rectangular block, the outer end face of the first isosceles right triangle block is formed by splicing the rear end face, left end face, right end face, upper end face and lower end face distributed in five directions of rear, left, right, upper and lower, the upper end face and lower end face of the first isosceles right triangle block The end faces are completely identical isosceles right triangles, the rear end face, left end face and right end face of the first isosceles right triangle block are all rectangles, the rear end face and left end face of the first isosceles right triangle block are completely identical rectangles, and the two are perpendicular to each other, the rear end face, left end face and right end face of the first isosceles right triangle block are all perpendicular to the upper end face of the first square block, the lower end face of the first isosceles right triangle block is connected to the upper end face of the first square block, and is in a fitted state, the left end face of the first isosceles right triangle block is connected to the right end face of the ninth rectangular block, and is in a fitted state, the rear end face of the first isosceles right triangle block is connected to the front end face of the thirteenth rectangular block, and is in a fitted state, the first isosceles right triangle block The height of the ninth rectangular block is equal to the height of the ninth rectangular block; the length of the rear end face of the first isosceles right triangle block in the left-right direction is equal to the width of the thirteenth rectangular block; the second isosceles right triangle block is located on the rear side of the second symmetry plane, and the first isosceles right triangle block and the second isosceles right triangle block are symmetrical front-to-back with respect to the second symmetry plane; the third isosceles right triangle block is located on the left side of the first symmetry plane, and the third isosceles right triangle block and the first isosceles right triangle block are symmetrical left-to-right with respect to the first symmetry plane; the fourth isosceles right triangle block is located on the rear side of the second symmetry plane, and the third isosceles right triangle block and the fourth isosceles right triangle block are symmetrical front-to-back with respect to the second symmetry plane; 3. The cylindrical conformal all-metal dual-polarization phased array according to claim 2, characterized in that In the radiation part of each of the all-metal single-polarization phased array units, the metal wall includes a seventeenth rectangular block, an eighteenth rectangular block, a nineteenth rectangular block, a twentieth rectangular block, a twenty-first rectangular block, and a twenty-second rectangular block; the seventeenth rectangular block is located on the right side of the first symmetry plane, and there is a distance between the two. The length of the seventeenth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the seventeenth rectangular block is greater than its width. The lower end face of the seventeenth rectangular block is connected to the upper end face of the first square block and is in a fitted state. The right end face of the seventeenth rectangular block is flush with the right end face of the first square block. The height of the seventeenth rectangular block is less than the height of the fifth rectangular block. The seventeenth rectangular block is front-to-back symmetrical about the second symmetry plane. The left end face of the seventeenth rectangular block is located to the right of the right end face of the thirteenth rectangular block, and there is a distance between the two. The eighteenth rectangular block is located above the seventeenth rectangular block. The length of the eighteenth rectangular block is along the front-to-back direction, the width is along the left-to-right direction, and the height is along the up-down direction. The length of the eighteenth rectangular block is equal to its width. The front end face of the eighteenth rectangular block is flush with the front end face of the seventeenth rectangular block, the left end face of the eighteenth rectangular block is flush with the left end face of the seventeenth rectangular block, the upper end face of the eighteenth rectangular block is located above the plane where the upper end face of the fifth rectangular block is located, and there is a distance between the two, the width of the eighteenth rectangular block is smaller than the width of the seventeenth rectangular block, the rear end face of the eighteenth rectangular block is located in front of the second symmetry plane, and there is a distance between the two, the nineteenth rectangular block is located on the rear side of the second symmetry plane, the eighteenth rectangular block and the nineteenth rectangular block are symmetrical front to back with respect to the second symmetry plane, the twentieth rectangular block is located on the left side of the first symmetry plane, the twentieth rectangular block and the seventeenth rectangular block are symmetrical left to right with respect to the first symmetry plane, the twenty-first rectangular block is located on the left side of the first symmetry plane, the twenty-first rectangular block and the eighteenth rectangular block are symmetrical left to right with respect to the first symmetry plane, the twenty-second rectangular block is located on the rear side of the second symmetry plane, and the twenty-first rectangular block and the twenty-second rectangular block are symmetrical front to back with respect to the second symmetry plane.
Citation Information
Patent Citations
Single-feed ultra-wideband circularly-polarized wide-beam magnetoelectric dipole antenna
CN114976651A
Plastic metallization phased array antenna
CN116565525A