Radio spectrum detection device

By adopting Y-shaped columns, L-shaped blocks and support structures in the radio spectrum detection device, combined with the bearing structure of linear arrays, spherical arrays and surface arrays, the specific carrier problem of radio signal detection is solved, the effect of fixed position during rotation is achieved, and the accuracy and efficiency of radio signal detection is improved.

CN223217578UActive Publication Date: 2025-08-12ZHEJIANG RUITONG ELECTRONIC TECH CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202421369436.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-15
Publication Date
2025-08-12
Estimated Expiration
2034-06-15

AI Technical Summary

Technical Problem

The prior art has failed to effectively solve the problem of interference of specific carriers and methods for radio signal detection, especially the frequency changes of radio frequency signals and local oscillator signals on the radio signal transceiver and receive devices.

Method used

The Y-shaped column, L-shaped block and support structure are adopted, combined with the bearing structure of linear array, spherical array and surface array to ensure that each array is fixed during rotation, and the best detection of radio signals is used to utilize the characteristics of linear array, spherical array and surface array.

Benefits of technology

The position of linear arrays, ball arrays and surface arrays is fixed during rotation, which improves the accuracy and efficiency of radio signal detection, and facilitates the best results of each array.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223217578U_ABST
    Figure CN223217578U_ABST
Patent Text Reader

Abstract

The utility model discloses a radio frequency spectrum detection device, comprising a Y-shaped column, the Y-shaped column is provided with a first branch section, a second branch section and a main body section, and the main body section, the first branch section and the second branch section are integrally formed; a linear array bearing structure for bearing a linear array is arranged on one side, far away from the main body block, of the first branch section, and the first branch section is fixedly connected with the linear array bearing structure; a ball array bearing structure for bearing the ball array is arranged on the side, away from the main body block, of the second branch section, and the second branch section is fixedly connected with the ball array bearing structure. The radio frequency spectrum detection device disclosed by the utility model has the beneficial effects that the linear array and the spherical array do not rotate along with the relative rotation of the main body block relative to the first branch section and the second branch section, so that the positions of the linear array and the spherical array are kept relatively fixed, and the best effect can be exerted according to the characteristics of the linear array and the spherical array; and the linear array and the spherical array can conveniently detect radio signals of corresponding frequency spectrums.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model belongs to the field of radio equipment, and in particular relates to a radio spectrum detection device. Background Art

[0002] The publication number is CN115102570A, the subject name is invention patent application for intermediate frequency analog circuit, analog baseband circuit and radio signal transmitting and receiving device, and its IPC classification number is H04B1 / 50, H04B1 / 04, H04B1 / 10. Its technical solution discloses "including at least one transmitting and receiving channel 110, a radio frequency front-end module 120, an analog baseband module 130 and a digital baseband module 140" and "the analog baseband module 130 may include an intermediate frequency analog circuit unit 131 and an analog-to-digital conversion unit 132. The intermediate frequency analog circuit unit 131 is used to amplify the intermediate frequency analog signal; the analog-to-digital conversion unit 132 is used to convert the amplified intermediate frequency analog signal into the baseband signal."

[0003] As can be seen, the above invention patent application discloses a radio signal transceiver device including a circuit structure. However, the technical solution disclosed in the above invention patent application, which aims to "solve the problem of interference with the radio signal transceiver device caused by rapid frequency changes of the radio frequency signal and / or the local oscillator signal," does not further disclose how the radio signal is detected or the specific carrier for radio signal detection, requiring further improvement. Utility Model Content

[0004] The present invention aims to overcome the above-mentioned drawbacks in view of the existing technology and provides a radio spectrum detection device.

[0005] The utility model adopts the following technical solutions, the radio spectrum detection device includes:

[0006] A Y-shaped column, the Y-shaped column comprises a first branch section, a second branch section, and a main section integrally formed with the first branch section and the second branch section; a linear array bearing structure for bearing a linear array is provided on a side of the first branch section away from the main block, and the first branch section is fixedly connected to the linear array bearing structure; a ball array bearing structure for bearing a ball array is provided on a side of the second branch section away from the main block, and the second branch section is fixedly connected to the ball array bearing structure;

[0007] An L-shaped block, the L-shaped block comprising an extension block and a protruding block, and a main body block integrally formed with the extension block and the protruding block, wherein the first branch segment and the second branch segment are respectively located on both sides of the main body block and are respectively hinged to the main body block;

[0008] The supporting body has one end fixedly connected to the extension block, and the other end fixedly connected to the array bearing structure for bearing the array.

[0009] As a further preferred technical solution of the above technical solution, the area array supporting structure includes an area array substrate and an area array reinforcement frame. The area array is embedded in the area array substrate. The area array reinforcement frame and the area array are located on opposite sides of the area array substrate. The area array reinforcement frame is fixedly connected to the area array substrate, and the support body is connected to the area array reinforcement frame.

[0010] As a further preferred technical solution of the above technical solution, the linear array bearing structure includes a first positioning column, the linear array is partially inscribed in the first positioning column, and the first positioning column is fixedly connected to the first branch segment.

[0011] As a further preferred technical solution of the above technical solution, the ball array supporting structure includes a second positioning column, and the top of the second positioning column is inscribed in the ball array.

[0012] As a further preferred technical solution of the above technical solution, the ball array bearing structure also includes a telescopic mechanism, which includes a sleeve and a base. The bottom of the second positioning column is inscribed in the sleeve, and the sleeve is fixedly connected to the base.

[0013] The radio spectrum detection device disclosed in the present utility model has the following beneficial effects:

[0014] 1. The linear array and the spherical array do not rotate with the relative rotation of the main block relative to the first branch segment and the second branch segment, and the positions of the linear array and the spherical array are kept relatively fixed, which is conducive to achieving the best effect according to the characteristics of the linear array and the spherical array, and facilitating the linear array and the spherical array to detect radio signals of the corresponding spectrum.

[0015] 2. The main body can rotate relative to the first branch segment and the second branch segment, thereby driving the array to rotate, which helps to achieve the best effect based on the characteristics of the array and facilitates the array to detect radio signals of the corresponding spectrum. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is the main view of this application.

[0017] Figure 2 It is a three-dimensional diagram of the present application from a top-down perspective (including a partially enlarged structure).

[0018] Figure 3 It is a stereogram of the style direction of this application.

[0019] Figure 4 It is the right view of this application.

[0020] The reference numerals include: 100-Y-shaped column; 110-first branch section; 120-second branch section; 130-main section; 200-L-shaped block; 210-main block; 220-extension block; 230-protruding block; 300-support body; 400-area array bearing structure; 410-area array; 420-area array substrate; 430-area array reinforcement frame; 500-linear array bearing structure; 510-linear array; 520-first positioning column; 600-ball array bearing structure; 610-ball array; 620-second positioning column; 630-telescopic mechanism; 631-sleeve; 632-base. DETAILED DESCRIPTION

[0021] The utility model discloses a radio spectrum detection device, which is described in conjunction with the preferred embodiment (Example 1) and the accompanying drawings. Figure 1-3 , the specific implementation methods of the utility model are further described.

[0022] See attached figure Figures 1 to 4 , Figures 1 to 4 The radio spectrum detection device is shown in different perspectives.

[0023] Example 1.

[0024] Preferably, the radio spectrum detection device includes:

[0025] A Y-shaped column 100 is provided with a first branch section 110, a second branch section 120, and a main body section 130 integrally formed with the first branch section 110 and the second branch section 120. A linear array supporting structure 500 for supporting a linear array 510 is provided on a side of the first branch section 110 away from the main body block 210, and the first branch section 110 is fixedly connected to the linear array supporting structure 500. A spherical array supporting structure 600 for supporting a spherical array 610 is provided on a side of the second branch section 120 away from the main body block 210, and the second branch section 120 is fixedly connected to the spherical array supporting structure 600. This prevents the linear array 510 and the spherical array 610 from rotating as the main body block 210 rotates relative to the first branch section 110 and the second branch section 120, thereby maintaining the positions of the linear array 510 and the spherical array 610 relatively fixed, thereby facilitating the linear array 510 and the spherical array 610 to achieve optimal results based on their characteristics and facilitating the linear array 510 and the spherical array 610 to detect radio signals of corresponding frequency spectra.

[0026] An L-shaped block 200 includes an extension block 220 and a protruding block 230, and a main block 210 integrally formed with the extension block 220 and the protruding block 230. The first branch segment 110 and the second branch segment 120 are respectively located on either side of the main block 210 and are hingedly connected to the main block 210, allowing the main block 210 to rotate relative to the first branch segment 110 and the second branch segment 120, thereby driving the rotation of the array 410. This helps to achieve the best effect based on the characteristics of the array 410 and facilitates the array 410 to detect radio signals of the corresponding spectrum;

[0027] The support body 300 has one end fixedly connected to the extension block 220 , and the other end fixedly connected to the array supporting structure 400 for supporting the array 410 .

[0028] The area array supporting structure 400 includes an area array substrate 420 and an area array reinforcement frame 430. The area array 410 is embedded in the area array substrate 420. The area array reinforcement frame 430 and the area array 410 are located on opposite sides of the area array substrate 420. The area array reinforcement frame 430 is fixedly connected to the area array substrate 420. The support body 300 is connected to the area array reinforcement frame 430, thereby improving the overall strength of the area array supporting structure 400 and improving the stability of the area array 410 during rotation.

[0029] The linear array supporting structure 500 includes a first positioning column 520 , the linear array 510 is partially inscribed in the first positioning column 520 , and the first positioning column 520 is fixedly connected to the first branch section 110 so that the linear array 510 remains in a vertical state.

[0030] The ball array supporting structure 600 includes a second positioning column 620 , the top of which is inscribed in the ball array 610 . The second positioning column 620 is used to support the ball array 610 to maintain a vertical state.

[0031] Among them, the ball array supporting structure 600 also includes a telescopic mechanism 630, which includes a sleeve 631 and a base 632. The bottom of the second positioning column 620 is connected to the sleeve 631, and the sleeve 631 is fixedly connected to the base 632, so that when necessary, the second positioning column 620 can be extended or extended relative to the sleeve 631, thereby adjusting the relative height of the ball array 610, making it convenient for the ball array 610 to more accurately detect radio signals of the corresponding spectrum.

[0032] It is worth mentioning that the technical features such as the specific model of the array involved in this utility model patent application should be regarded as prior art. The specific structure, working principle and possible control method and spatial layout method of these technical features can be selected by conventional choices in the field and should not be regarded as the inventive point of this utility model patent. This utility model patent will not be further elaborated.

[0033] For those skilled in the art, it is still possible to modify the technical solutions described in the aforementioned embodiments, or to replace some of the technical features therein with equivalents. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present utility model should be included in the scope of protection of the present utility model.

Claims

1. A radio spectrum detection device, characterized in that: include: A Y-shaped column, the Y-shaped column comprises a first branch section, a second branch section, and a main section integrally formed with the first branch section and the second branch section; a linear array bearing structure for bearing a linear array is provided on a side of the first branch section away from the main block, and the first branch section is fixedly connected to the linear array bearing structure; a ball array bearing structure for bearing a ball array is provided on a side of the second branch section away from the main block, and the second branch section is fixedly connected to the ball array bearing structure; An L-shaped block, the L-shaped block comprising an extension block and a protruding block, and a main body block integrally formed with the extension block and the protruding block, wherein the first branch segment and the second branch segment are respectively located on both sides of the main body block and are respectively hinged to the main body block; The supporting body has one end fixedly connected to the extension block, and the other end fixedly connected to the array bearing structure for bearing the array.

2. The radio spectrum detection device according to claim 1, characterized in that: The area array supporting structure includes an area array substrate and an area array reinforcement frame. The area array is embedded in the area array substrate. The area array reinforcement frame and the area array are located on opposite sides of the area array substrate. The area array reinforcement frame is fixedly connected to the area array substrate, and the support body is connected to the area array reinforcement frame.

3. The radio spectrum detection device according to claim 1, wherein: The linear array bearing structure includes a first positioning column, the linear array is partially inscribed in the first positioning column, and the first positioning column is fixedly connected to the first branch segment.

4. The radio spectrum detection device according to claim 1, wherein: The ball array supporting structure includes a second positioning column, and the top of the second positioning column is inscribed in the ball array.

5. The radio spectrum detection device according to claim 4, characterized in that: The ball array bearing structure also includes a telescopic mechanism, which includes a sleeve and a base. The bottom of the second positioning column is inscribed in the sleeve, and the sleeve is fixedly connected to the base.

Citation Information

Patent Citations

  • Intermediate frequency analog circuit, analog baseband circuit and radio signal transmitting and receiving device

    CN115102570A