Automatic detection radio battery capacity grading instrument with interface protection

By introducing interface protection design into the automatic battery capacity detection instrument, including fans, vents, limit slots and protective components, the problem of the interface being easily affected by the external environment is solved, achieving higher detection accuracy and extending the equipment life.

CN223333057UActive Publication Date: 2025-09-12ZHUHAI AIHONG TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422700784.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-09-12
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

Existing automatic battery capacity analyzers have deficiencies in physical protection, and their interfaces are easily affected by external environmental factors, resulting in inaccurate test data and shortened instrument life.

Method used

An automatic radio battery capacity analyzer with interface protection is used, which includes a shell, a fan, a vent, a control panel, a limit slot and a protective component. Heat is dissipated through the fan and the vent, the protective component protects the interface, the limit slot and the fixing component ensure the battery positioning and fixation, and the splint system provides stability and protection.

Benefits of technology

It improves the accuracy of detection data and the service life of equipment, prevents interface damage and reduces safety risks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of battery capacity detection, and discloses a radio battery capacity automatic detection capacity grading instrument with interface protection, which comprises a shell, a fan is arranged on one side of the shell, an air vent is arranged at the top of the shell, a control panel is arranged on one side of the shell, a limiting groove is arranged in the shell, and the limiting groove is arranged in the shell. A protection assembly is arranged on one side of the shell, the protection assembly is used for protecting the interface and preventing the interface from being damaged by external factors, the protection assembly comprises a protection ring, a fixing assembly is arranged on one side of the shell, and the fixing assembly is used for further fixing and protecting a battery to be detected. According to the quick opening and closing device, an operator manually pokes the poking rod to drive the rotating disc to rotate in the connecting ring and further drive the sliding block and the baffle to move synchronously, so that the quick opening and closing effect is achieved, the problem that a traditional device is damaged due to the fact that an interface of the traditional device is exposed outside all the time when the traditional device is not used is solved, and the service life of the device is prolonged.
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Description

Technical Field

[0001] The utility model relates to the technical field of battery capacity detection, in particular to a capacity analyzer with interface protection for automatically detecting radio battery capacity. Background Art

[0002] With the continued widespread use of radios in daily life, emergency communications, and specific industries, the performance and quality control of radio batteries have become increasingly important. Battery capacity, as one of the key indicators for measuring battery performance, directly affects the service life and stability of radios. To accurately evaluate the capacity of radio batteries and conduct effective quality screening, automatic radio battery capacity analyzers have emerged. This instrument can charge and discharge the battery through a series of sophisticated test processes and accurately measure related parameters, thereby accurately determining and classifying battery capacity.

[0003] The existing automatic battery capacity analyzers have a common mechanical structure that uses a simple slot-type interface to connect the battery. The interface is designed into a corresponding shape according to different battery models, and metal contacts are set inside to achieve electrical connection with the positive and negative poles of the battery. At the same time, in order to facilitate the insertion and removal of the battery, the size of the slot is designed to be relatively precise, ensuring that the battery can be inserted tightly without being too tight. In terms of technical principles, the capacity detection is mainly based on the monitoring of the battery charging and discharging process. By setting a high-precision current sensor and voltage monitoring circuit in the charging and discharging circuit, the current and voltage data of the battery during charging and discharging are obtained in real time, and combined with the corresponding algorithm, the battery capacity is accurately calculated based on the time factor.

[0004] However, the existing automatic detection battery capacity analyzer has obvious deficiencies in physical protection. In actual use environments, the battery interface of the instrument lacks effective physical protection measures. The interface is usually directly exposed to the outside without any protective cover or sealing structure, which makes the interface extremely susceptible to external environmental factors. Impurities such as dust and moisture can easily enter the interface. Over time, the accumulation of dust will cause poor contact of the metal contacts at the interface, affecting the stability of the electrical connection between the battery and the instrument, and thus interfering with the accuracy of the test data. Once moisture enters the interface, it will cause a short circuit in some cases, which will not only damage the battery, but also cause serious damage to the circuit inside the instrument, shorten the service life of the instrument, and increase the cost of use and safety risks. Therefore, an automatic detection radio battery capacity analyzer with interface protection is proposed to solve the above problems. Utility Model Content

[0005] In order to make up for the above shortcomings, the utility model provides an automatic radio battery capacity detection analyzer with interface protection, aiming to improve the problem in the existing technology that the interface is easily affected by external environmental factors, thereby interfering with the accuracy of detection data, shortening the service life of the instrument and increasing safety risks.

[0006] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0007] An automatic radio battery capacity analyzer with interface protection includes a housing, a fan disposed on one side of the housing, a vent disposed on the top of the housing, a control panel disposed on one side of the housing, a limit slot disposed inside the housing, and a protective component disposed on one side of the housing for protecting the interface from damage caused by external factors.

[0008] The protective assembly includes a protective ring, which is fixedly connected to one side of the shell, one end of the protective ring is fixedly connected to a connecting ring, a rotating disk is slidably connected to the inside of the connecting ring, a lever is provided on the outer wall of the rotating disk, a slide groove is provided inside the rotating disk, a slider is slidably connected to the inside of the rotating disk, one side of the slider slides inside the slide groove, one side of the slider is fixedly connected to a baffle, and a fixing assembly is provided on one side of the shell, which is used to further fix and protect the battery to be tested;

[0009] As a further description of the above technical solution:

[0010] The fixing assembly includes a connecting plate and a connecting block, wherein the connecting plate is fixedly connected to one side of the housing, and the connecting block is fixedly connected to the outside of the connecting plate;

[0011] As a further description of the above technical solution:

[0012] The connecting block is internally connected to a first clamping plate for rotation, and the first clamping plate is internally connected to a second clamping plate for rotation;

[0013] As a further description of the above technical solution:

[0014] One side of the clamping plate is fixedly connected to a transmission plate, and one side of the transmission plate is provided with a spring;

[0015] As a further description of the above technical solution:

[0016] One end of the spring is fixedly connected to the inner side of the connecting plate, and the other end of the spring is fixedly connected to the outer side of the transmission plate;

[0017] As a further description of the above technical solution:

[0018] A gasket is fixedly connected to the inside of the second splint, and anti-slip grooves are provided inside the gasket;

[0019] As a further description of the above technical solution:

[0020] The first clamping plate and the second clamping plate are in an arc shape, and a space for placing batteries is formed between the first clamping plate and the second clamping plate.

[0021] The utility model has the following beneficial effects:

[0022] 1. In the present invention, the fan and the vent cooperate to dissipate heat quickly and efficiently for the mechanical components inside the housing. At the same time, the operator manually toggles the lever to drive the rotating disk to rotate inside the connecting ring, thereby further driving the slider and the baffle to move synchronously, thereby achieving a quick opening and closing effect, thereby solving the problem of traditional equipment being damaged due to its interfaces being exposed to the outside when not in use, thereby increasing the service life of the equipment.

[0023] 2. In the present invention, the battery to be tested can be quickly and accurately positioned in the designated testing area through the limiting groove, and the extrusion force of the battery drives the splint one and the splint two to shift in opposite directions synchronously, thereby driving the elastic deformation of the spring during the shifting process. When the battery is completely stuck in the splint one and the splint two, the elastic potential energy of the spring causes the splint one and the splint two to be quickly reset, thereby achieving the effect of further fixing the battery to be tested, so as to solve the problem that the electrical connection between the battery under test and the test interface will change when the traditional equipment is affected by external factors, thereby improving the evaluation accuracy of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a three-dimensional schematic diagram of a radio battery capacity automatic detection analyzer with interface protection proposed by the utility model;

[0025] Figure 2 for Figure 1 Enlarged view of point A in the middle;

[0026] Figure 3 This is a schematic diagram of the internal structure of the connecting ring of a radio battery capacity automatic detection instrument with interface protection proposed by the utility model;

[0027] Figure 4 for Figure 1 Enlarged view of point B in the middle.

[0028] Legend:

[0029] 1. Housing; 2. Fan; 3. Vent; 4. Control panel; 5. Protective ring; 6. Connecting ring; 7. Rotating plate; 8. Lever; 9. Slide; 10. Slider; 11. Limiting groove; 12. Connecting plate; 13. Connecting block; 14. Clamping plate 1; 15. Clamping plate 2; 16. Transmission plate; 17. Spring; 18. Gasket; 19. Anti-slip groove; 20. Baffle. DETAILED DESCRIPTION

[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0031] Reference Figure 1 - Figure 3 , the utility model provides an embodiment: an automatic detection radio battery capacity analyzer with interface protection, including a shell 1, the shell 1 adopts a stable and tough structure, and the overall closed design can effectively prevent the external environment from interfering with the internal circuit, a fan 2 is provided on one side of the shell 1, the fan 2 can take away excess heat through strong air flow during the operation of the device, keep the temperature inside the device stable, and avoid overheating from affecting the battery detection accuracy, a vent 3 is provided on the top of the shell 1 as a supplementary ventilation channel, used to enhance air circulation and reduce internal heat accumulation, especially during long-term detection work, to improve the heat dissipation efficiency of the system, a control panel 4 is provided on one side of the shell 1, and a limiting slot 11 is provided inside the shell 1, the function of the limiting slot 11 is to quickly place the battery to be tested, the slot width matches the battery size, ensures the accuracy of the battery during placement, and reduces errors, a protective component is provided on one side of the shell 1, the protective component is used to protect the interface to prevent it from being damaged by external factors;

[0032] The protective component includes a protective ring 5, which is fixedly connected to one side of the shell 1. The protective ring 5 is firmly installed on the side of the shell 1 through a fixed connection to form a protective barrier around the interface area to prevent dust, liquid or mechanical impact from causing damage to the interface. One end of the protective ring 5 is fixedly connected to a connecting ring 6, and the connecting ring 6 adopts a sliding connection method, which can be easily linked with the rotating disk 7. The connecting ring 6 is slidingly connected to the rotating disk 7. The outer wall of the rotating disk 7 is provided with a lever 8, and the inside of the rotating disk 7 is provided with a slide groove 9. The inside of the rotating disk 7 is slidingly connected with a slider 10, and one side of the slider 10 slides inside the slide groove 9. The slider 10 is fixedly connected to a baffle 20 on one side. The baffle 20 can completely block the interface when needed by cooperating with the slider 10 to prevent external environmental factors from interfering with the interface. A fixed component is provided on one side of the shell 1, and the fixed component is used to further fix and protect the battery to be tested.

[0033] Specifically, when the volume analyzer is used in some dusty environments, dust particles in the air can easily enter the interface, thereby affecting the smooth transmission of current, causing fluctuations in the detection data, and even causing short circuits, damaging the battery and the internal circuits of the instrument. The operator can control the movement of the device by manually toggling the lever 8. The manual operation of the lever 8 drives the rotating disk 7 to rotate inside the connecting ring 6. The rotation of the rotating disk 7 is transmitted to the slider 10, and the slider 10 slides along the slide groove 9 opened inside the rotating disk 7. During the sliding process, the slider 10 cooperates with the connecting ring 6 and synchronously pushes multiple baffles 20. The baffles 20 are driven by the slider 10 to move synchronously, ensuring that these baffles 20 can be quickly expanded or retracted according to design requirements. The synchronous expansion of the baffles 20 can effectively expose the interface, making it convenient for the staff to connect or operate when needed. When the work is completed and the interface is no longer needed, the operator only needs to reverse the lever 8 to rotate the rotating disk 7 in the opposite direction. The reverse movement of the rotating disk 7 drives the slider 10 to slide along the slide groove 9 again, and then drives the baffles 20 back to the original position for closed protection. At this time, the interface is quickly protected to avoid unnecessary interference or damage to it from the external environment.

[0034] Reference Figure 4The fixing assembly includes a connecting plate 12 and a connecting block 13. The connecting plate 12 is fixedly connected to one side of the housing 1 to provide a stable basic support. The connecting plate 12 takes into account the stability and shock resistance of the overall structure to ensure that the device is not prone to loosening or deformation during long-term operation. The connecting block 13 is fixedly connected to the outside of the connecting plate 12. Its function is to expand the connection range of the fixing assembly and increase the clamping force to avoid any detection error caused by battery movement. The internal rotation of the connecting block 13 is connected to a splint 14, which is relatively free to rotate. The movable structure has sufficient flexibility to adapt to batteries of different sizes and shapes. The internal rotation of the splint 14 is connected to the second splint 15 to form an adjustable clamping mechanism. The second splint 15 can provide double clamping force according to the rotation angle and direction of the splint 14 to ensure that the battery is always firmly fixed in the limiting groove 11. The transmission plate 16 is fixedly connected to one side of the splint 14, and a spring 17 is provided on one side of the transmission plate 16. The spring 17 is used to provide reverse elastic force to help the splint 14 and the second splint 15 to quickly reset after deformation.

[0035] Specifically, when the battery to be tested is affected by external factors, which may affect the accuracy of the test, further fixing measures are needed to ensure its stability in the test position. The operator first places the battery to be tested into the limit groove 11, and ensures that the battery can slide smoothly along the groove through its limiting effect. In this way, the battery can accurately reach the specified test position, avoiding positioning errors and significantly improving the accuracy and consistency of the test. When the battery to be tested reaches the specified position, the pushing force exerted on the battery will drive the battery to be clamped into the interior of clamp one 14 and clamp two 15. When the battery is clamped, the extrusion force between clamp one 14 and clamp two 15 causes them to produce a certain reverse offset during the clamping process. This offset also acts on the spring 17, forcing the spring 17 to compress. The compression of the spring 17 causes it to store elastic potential energy, providing energy for the subsequent reset action.

[0036] Reference Figure 4, one end of the spring 17 is fixedly connected to the inner side of the connecting plate 12, and the other end of the spring 17 is fixedly connected to the outer side of the transmission plate 16, so that the spring 17 can play an elastic buffer and adjustment role between the transmission plate 16 and the connecting plate 12, so that the splint system has better stability and adaptability during work, and avoids damage to components caused by external vibration or pressure changes. A gasket 18 is fixedly connected to the inside of the second splint 15. The function of the gasket 18 is to provide additional support for the second splint 15. At the same time, it can effectively reduce the friction and wear between the splints, extend its service life, and further protect the battery. Anti-slip grooves 19 are provided inside the gasket 18. These anti-slip grooves 19 are processed with precise technology to enhance the friction between the gasket 18 and the battery, and avoid displacement of the battery due to vibration or other external forces during use. The first splint 14 and the second splint 15 are arc-shaped, and a space for placing the battery is formed between the first splint 14 and the second splint 15.

[0037] Specifically, when the battery is fully inserted and stabilized inside the clamp 14 and the clamp 2 15, the spring 17 is no longer affected by external forces and releases the elastic potential energy stored previously. The rapid release of the spring 17 will quickly drive the clamp 14 and the clamp 2 15 back to the initial position, thus completing the reset action of the clamp 14 and the clamp 2 15. During reset, the rebound action of the clamp 14 and the clamp 2 15 ensures that the battery is firmly fixed and maintains a stable static state to facilitate the subsequent detection process. In order to ensure that the battery remains stationary during the entire detection process, the part of the clamp 1 14 and the clamp 2 15 that contacts the battery surface adopts an anti-slip groove 19 design. The function of the anti-slip groove 19 is to increase the friction with the battery surface, effectively preventing the battery from being displaced due to external vibration or other factors during the clamping process, and further ensuring the stability of the battery during the detection process.

[0038] Working principle: When using the device, the operator places the device in a stable position. When the device is running, the fan 2 and the vent 3 can be used to efficiently cool the mechanical components inside the device. The operator manually toggles the lever 8 to make it move. When the lever 8 moves, the rotating disk 7 is driven to rotate inside the connecting ring 6. At the same time, the slider 10 will slide synchronously along the slide groove 9 opened inside the rotating disk 7. Under the action of the sliding of the slider 10, multiple baffles 20 are further driven to move synchronously. With the synchronous and same-direction movement of multiple baffles 20, the interface can be quickly displayed for use. When the work is finished and the interface is no longer needed, the operator also toggles the lever 8 in the opposite direction to make the rotating disk 7 move in the opposite direction inside the connecting ring 6, thereby driving the slider 10 and the baffle 20 to move synchronously for opening and closing, thereby quickly protecting the interface and preventing the interface from being damaged by external factors when not in use. At the same time, the operator The operator places the battery to be tested into the limit slot 11, and the limiting effect of the limit slot 11 allows the battery to slide smoothly along the limit slot 11 to the designated testing position, thereby achieving precise positioning and improving the accuracy and consistency of the detection. When the battery to be tested reaches the designated position, the thrust of pushing the battery drives the battery to be clamped into the inside of the first and second clamps 14 and 15. Under the action of the extrusion force generated when it is clamped, the first and second clamps 14 and 15 will be further driven to deflect in the opposite direction at the same time, and the spring 17 will be compressed while deflecting, forcing the spring 17 to undergo elastic deformation and thus store elastic potential energy. When the battery is fully clamped, since the spring 17 has no force to maintain its elastic deformation state, it will quickly release its stored elastic potential energy, thereby quickly driving the first and second clamps 14 and 15 to reset. At the same time, by cooperating with the anti-slip grooves 19, the battery can be protected while being kept absolutely stationary during the detection process.

[0039] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An automatic radio battery capacity analyzer with interface protection, comprising a housing (1), characterized in that: A fan (2) is provided on one side of the housing (1), a vent (3) is provided on the top of the housing (1), a control panel (4) is provided on one side of the housing (1), a limiting slot (11) is provided inside the housing (1), and a protective component is provided on one side of the housing (1), the protective component being used to protect the interface from damage caused by external factors; The protective component comprises a protective ring (5), the protective ring (5) is fixedly connected to one side of the housing (1), one end of the protective ring (5) is fixedly connected to a connecting ring (6), a rotating disk (7) is slidably connected inside the connecting ring (6), a shifting rod (8) is provided on the outer wall of the rotating disk (7), a sliding groove (9) is provided inside the rotating disk (7), a slider (10) is slidably connected inside the rotating disk (7), one side of the slider (10) slides inside the sliding groove (9), and one side of the slider (10) is fixedly connected to a baffle (20), and a fixing component is provided on one side of the housing (1), and the fixing component is used to further fix and protect the battery to be tested.

2. The automatic radio battery capacity analyzer with interface protection according to claim 1, characterized in that: The fixing assembly comprises a connecting plate (12) and a connecting block (13); the connecting plate (12) is fixedly connected to one side of the housing (1); and the connecting block (13) is fixedly connected to the outside of the connecting plate (12).

3. The automatic radio battery capacity analyzer with interface protection according to claim 2, characterized in that: The connecting block (13) is internally connected to a first clamping plate (14) for rotation, and the first clamping plate (14) is internally connected to a second clamping plate (15) for rotation.

4. The automatic radio battery capacity analyzer with interface protection according to claim 3 is characterized by: One side of the clamping plate (14) is fixedly connected to a transmission plate (16), and one side of the transmission plate (16) is provided with a spring (17).

5. The automatic radio battery capacity analyzer with interface protection according to claim 4, characterized in that: One end of the spring (17) is fixedly connected to the inner side of the connecting plate (12), and the other end of the spring (17) is fixedly connected to the outer side of the transmission plate (16).

6. The automatic radio battery capacity analyzer with interface protection according to claim 5, characterized in that: A gasket (18) is fixedly connected inside the second clamping plate (15), and an anti-slip groove (19) is provided inside the gasket (18).

7. The automatic radio battery capacity analyzer with interface protection according to claim 3, characterized in that: The first clamping plate (14) and the second clamping plate (15) are in an arc shape, and a space for placing batteries is formed between the first clamping plate (14) and the second clamping plate (15).