Multi-channel test result sorting mechanism

By designing a multi-channel test result sorting mechanism and adopting a cable tray and alignment block structure, the problem of messy line connections was solved, and stable distribution and limit protection of data lines were achieved, thereby improving the reliability of the test equipment.

CN223872601UActive Publication Date: 2026-02-03SHENZHEN HUAZONG TECH CO LTD
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Patent Information

Application Number
CN202423224150.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2026-02-03
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

In multi-channel testing, messy wiring connections make troubleshooting difficult, and existing equipment cannot effectively prevent wiring twisting and breakage.

Method used

Design a multi-channel test result sorting mechanism, which adopts a cable tray and alignment block structure. The orderly arrangement and stable connection of data cables are achieved through the cooperation of locking pins and springs. The limiting protection of the arc-shaped seat and springs ensures that the data cables are stably distributed in the cable tray channel.

Benefits of technology

This achieves orderly arrangement and stable connection of data cables, avoiding cable twisting and damage, and improving the reliability and maintenance efficiency of testing equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of multi-channel testing, in particular to a multi-channel testing result sorting mechanism which comprises an analyzer, a screen is embedded in the top of the analyzer, a control panel is installed on one side of the analyzer, heat dissipation fans are fixedly embedded in the two sides of the analyzer, and the heat dissipation fans are installed on the top of the analyzer. A signal interface is formed in the front surface of the analyzer, and a data line is inserted into the signal interface. According to the analyzer, the flat cable seat structure is arranged on the front surface of the analyzer and is matched with the data lines of the signal interface, so that the data lines can be distributed in the flat cable channel, and the data lines can be orderly arranged after being communicated with the signal interface; through a first arc-shaped seat connected to a second spring and a second arc-shaped seat connected to a third spring, tight and stable abutting of the data line can be achieved, it can be guaranteed that the line cannot be distorted or damaged in the wire arrangement channel, and the limiting protection effect is achieved for some thicker and harder data lines.
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Description

Technical Field

[0001] This utility model relates to the field of multi-channel testing technology, and in particular to a mechanism for sorting multi-channel test results. Background Technology

[0002] Multichannel testing refers to the simultaneous testing and measurement of multiple channels (or signal sources). This testing method has applications in many fields, such as electronic engineering, communication systems, audio processing, and medical imaging. The main purpose of multichannel testing is to simultaneously acquire and analyze data from different channels, thereby gaining a more comprehensive understanding of the system's performance and behavior.

[0003] Multi-channel test sorting equipment is primarily used to classify and filter test data in multi-channel testing environments. These devices typically possess high-precision data acquisition capabilities, powerful data processing capabilities, and flexible configuration options.

[0004] Data acquisition cards are one of the core components of multi-channel test systems. They can simultaneously acquire analog and digital signals from multiple channels and transmit them to a computer for processing and analysis.

[0005] An oscilloscope is an instrument used to observe and measure electrical signals. Modern oscilloscopes typically feature multiple input channels and high sampling rates, making them suitable for multi-channel testing.

[0006] A multichannel analyzer is a device specifically designed for multichannel signal analysis, typically possessing powerful data processing capabilities and a variety of analytical functions.

[0007] Currently, multi-channel testing involves multiple lines coexisting with the test equipment. To avoid confusion at the connection points, the lines at several connection points need to be arranged in an orderly manner to prevent failures from occurring in a timely manner when a numerical problem occurs in a single test channel. Utility Model Content

[0008] The purpose of this invention is to address the aforementioned shortcomings in the existing technology by proposing a multi-channel test result sorting mechanism.

[0009] To achieve the above objectives, the present invention adopts the following technical solution:

[0010] Design a multi-channel test result sorting mechanism, including an analyzer, a screen is embedded in the top of the analyzer, a control panel is installed on one side of the analyzer, cooling fans are embedded in both sides of the analyzer, a signal interface is provided on the front of the analyzer, and a data cable is inserted into the signal interface.

[0011] The analyzer has a ribbon cable connector on one side of the signal interface. The front of the ribbon cable connector is covered with a cover plate. The data cable extends outward through the ribbon cable connector. An alignment seat is fixed on the surface of the analyzer. An alignment block is fixed on the back of the ribbon cable connector. The alignment block and the alignment seat slide and insert into each other.

[0012] In detail, the alignment block has a pin groove inside, and a locking pin is provided inside the pin groove. The end face of the locking pin is an arc surface structure, and the locking pin is slidably sleeved with the inner wall of the pin groove.

[0013] In detail, a spring is provided inside the pin groove, and the two ends of the spring are fixedly connected to the surface of the locking pin and the inner wall of the pin groove, respectively.

[0014] In detail, the surface of the positioning seat is provided with a pin hole that penetrates through it, and the surface of the locking pin is connected to the interior of the pin hole.

[0015] In detail, the ribbon cable holder has a ribbon cable channel inside, through which the data cable passes, and a notch is provided at one end of the ribbon cable channel on the cover plate.

[0016] In detail, a second spring is fixed inside the cable channel, and an arc-shaped seat is fixed at the other end of the second spring. The other end of the arc-shaped seat is tightly attached to the surface of the data cable.

[0017] In detail, a spring three is fixed to one side of the cover plate located in the cable channel, and an arc-shaped seat two is fixed to the other end of the spring three. The other end of the arc-shaped seat two is tightly attached to the surface of the data cable.

[0018] In detail, the cable tray has a slot inside, and the cover plate has an elastic clip fixed on its surface. The elastic clip and the slot are engaged with each other.

[0019] The design scheme proposed in this utility model has the following beneficial effects in application:

[0020] 1. By setting up a ribbon cable holder structure on the front of the analyzer, it is designed to fit the data cable of the signal interface, allowing the data cable to be distributed in the ribbon cable channel. This ensures that the data cables are arranged in an orderly manner after being connected to the signal interface. When the data cable is placed in the ribbon cable channel, the arc-shaped seat one connected to spring two and the arc-shaped seat two connected to spring three can stabilize the data cable and prevent the cable from twisting or breaking in the ribbon cable channel. For some thicker and harder data cables, it provides a limiting protection effect.

[0021] 2. By cooperating with the alignment block and the alignment seat, the ribbon cable connector can be quickly connected to the lower end of the signal interface of the analyzer when using the ribbon cable connector. At this time, when the position of the locking pin corresponds to the position of the pin hole, the locking pin can pass through the pin hole for setting by the reset effect of the spring, so as to achieve stable installation of the ribbon cable connector and the analyzer. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0023] Figure 2 This is a side view of the present invention.

[0024] Figure 3 This is an enlarged schematic diagram of point A in this utility model;

[0025] Figure 4 This is a top view of the cable tray and cover plate of this utility model;

[0026] Figure 5 This is a schematic diagram showing the distribution of the two arc-shaped seats of this utility model.

[0027] In the diagram: 1. Analyzer; 11. Screen; 12. Control panel; 13. Cooling fan; 14. Signal interface; 15. Data cable; 16. Ribbon cable connector; 17. Cover plate; 18. Alignment seat; 19. Alignment block; 2. Pin groove; 21. Locking pin; 22. Spring 1; 23. Pin hole; 3. Ribbon cable channel; 31. Spring 2; 32. Arc-shaped seat 1; 33. Spring 3; 34. Arc-shaped seat 2; 4. Locking groove; 41. Elastic lock. Detailed Implementation

[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0029] Reference Figures 1-5 A multi-channel test result sorting mechanism includes an analyzer 1, characterized in that: a screen 11 is embedded in the top of the analyzer 1, a control panel 12 is installed on one side of the analyzer 1, cooling fans 13 are embedded in both sides of the analyzer 1, a signal interface 14 is provided on the front of the analyzer 1, and a data cable 15 is inserted into the signal interface 14.

[0030] The analyzer 1 has a ribbon cable holder 16 on one side of the signal interface 14. The front of the ribbon cable holder 16 is covered by a cover plate 17. The data cable 15 extends outward through the ribbon cable holder 16. The surface of the analyzer 1 is fixed with an alignment seat 18, and the back of the ribbon cable holder 16 is fixed with an alignment block 19. The alignment block 19 and the alignment seat 18 are slidably inserted and connected.

[0031] It should be further explained that the positioning block 19 has a pin groove 2 inside, and a locking pin 21 is provided inside the pin groove 2. The end face of the locking pin 21 is an arc surface structure, and the locking pin 21 is slidably sleeved with the inner wall of the pin groove 2.

[0032] It should be further noted that a spring 22 is provided inside the pin groove 2. The two ends of the spring 22 are fixedly connected to the surface of the locking pin 21 and the inner wall of the pin groove 2, respectively. The spring 22 can ensure the stable extension and repositioning of the locking pin 21.

[0033] It should be further explained that a pin hole 23 is provided on the surface of the mounting base 18, and the surface of the locking pin 21 is connected to the interior of the pin hole 23. Through the cooperation of the locking pin 21 and the pin hole 23, the cable tray 16 and the analyzer 1 can be stably installed.

[0034] It should be further noted that the ribbon cable connector 16 has a ribbon cable channel 3 inside, through which the data cable 15 passes. The ribbon cable channel 3 has a notch at one end of the cover plate 17.

[0035] It should be further noted that a second spring 31 is fixed inside the cable channel 3, and an arc-shaped seat 32 is fixed at the other end of the second spring 31. The other end of the arc-shaped seat 32 is tightly attached to the surface of the data cable 15.

[0036] It should be further explained that a spring 33 is fixed on one side of the cover plate 17 located in the ribbon cable channel 3, and an arc-shaped seat 2 34 is fixed on the other end of the spring 33. The other end of the arc-shaped seat 2 34 is tightly attached to the surface of the data cable 15. By connecting the arc-shaped seat 1 32 and the arc-shaped seat 2 34, the data cable 15 can be firmly fixed in the ribbon cable channel 3. This can stabilize the data cable 15, which has a larger diameter and is harder, in the ribbon cable channel 3 and prevent it from twisting in the ribbon cable channel 3.

[0037] It should be further explained that the inside of the cable connector 16 is provided with a slot 4, and the surface of the cover plate 17 is fixed with an elastic clip 41. The elastic clip 41 and the slot 4 are interlocked. The shape of the elastic clip 41 and the inner shape of the slot 4 are both regular hexagons, and the elastic clip 41 is made of rubber material.

[0038] Operating mode: When the data cable 15 needs to be arranged in an orderly manner after being connected to the signal interface 14, the alignment block 19 cooperates with the alignment seat 18 to enable the ribbon cable 16 to be quickly connected to the lower end of the signal interface 14 of the analyzer 1 when using the ribbon cable 16. At this time, when the position of the locking pin 21 corresponds to the position of the pin hole 23, the spring 22 resets the locking pin 21 to pass through the pin hole 23 for setting, which can realize the stable installation of the ribbon cable 16 and the analyzer 1.

[0039] By providing a ribbon cable holder 16 structure on the front of the analyzer 1, which is fitted to the data line 15 of the signal interface 14, the data line 15 can be distributed in the ribbon cable channel 3, achieving orderly arrangement of each data line 15 after being connected to the signal interface 14. When the data line 15 is placed in the ribbon cable channel 3, the arc-shaped seat 32 connected to the spring 2 31 and the arc-shaped seat 34 connected to the spring 33 can achieve a stable and compacted fit for the data line 15, ensuring that the line will not be twisted or broken in the ribbon cable channel 3. For some thicker and harder data lines 15, it plays a limiting protection role.

[0040] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A mechanism for sorting multi-channel test results, comprising an analyzer (1), characterized in that: The analyzer (1) has a screen (11) embedded in the top, a control panel (12) installed on one side of the analyzer (1), and cooling fans (13) embedded in both sides of the analyzer (1). The analyzer (1) has a signal interface (14) on the front, and a data cable (15) is inserted into the signal interface (14). The analyzer (1) has a ribbon cable socket (16) on one side of the signal interface (14). The front of the ribbon cable socket (16) is covered with a cover plate (17). The data cable (15) extends outward through the ribbon cable socket (16). The surface of the analyzer (1) is fixed with an alignment seat (18). The back of the ribbon cable socket (16) is fixed with an alignment block (19). The alignment block (19) and the alignment seat (18) slide and insert into each other.

2. The mechanism for sorting multi-channel test results according to claim 1, characterized in that: The alignment block (19) has a pin groove (2) inside, and a locking pin (21) is provided inside the pin groove (2). The end face of the locking pin (21) is an arc surface structure, and the locking pin (21) is slidably sleeved with the inner wall of the pin groove (2).

3. The mechanism for sorting multi-channel test results according to claim 2, characterized in that: A spring (22) is provided inside the pin groove (2), and the two ends of the spring (22) are fixedly connected to the surface of the locking pin (21) and the inner wall of the pin groove (2), respectively.

4. The mechanism for sorting multi-channel test results according to claim 3, characterized in that: The surface of the positioning seat (18) is provided with a pin hole (23) that penetrates its interior, and the surface of the locking pin (21) is connected to the interior of the pin hole (23).

5. The mechanism for sorting multi-channel test results according to claim 1, characterized in that: The cable tray (16) has a cable tray channel (3) inside, and the data cable (15) passes through the cable tray channel (3). The cable tray channel (3) has a notch at one end of the cover plate (17).

6. The mechanism for sorting multi-channel test results according to claim 5, characterized in that: A second spring (31) is fixed inside the cable channel (3), and an arc-shaped seat (32) is fixed at the other end of the second spring (31). The other end of the arc-shaped seat (32) is tightly attached to the surface of the data cable (15).

7. The mechanism for sorting multi-channel test results according to claim 6, characterized in that: The cover plate (17) is fixed with a spring three (33) on one side of the cable channel (3), and an arc-shaped seat two (34) is fixed at the other end of the spring three (33). The other end of the arc-shaped seat two (34) is closely attached to the surface of the data cable (15).

8. The mechanism for sorting multi-channel test results according to claim 7, characterized in that: The cable tray (16) has a slot (4) inside, and the cover plate (17) has an elastic clip (41) fixed on its surface. The elastic clip (41) and the slot (4) are engaged with each other.