Storage battery detection clamping device

By introducing an adjustment mechanism into the battery detection and clamping device, the position of the battery on the conveying platform is adjusted, and the detection accuracy problem caused by inconsistent position is solved, and higher detection accuracy and reliability are achieved.

CN222965259UActive Publication Date: 2025-06-10庞红艳
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Patent Information

Application Number
CN202421030789.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-05-13
Publication Date
2025-06-10
Estimated Expiration
2034-05-13

AI Technical Summary

Technical Problem

When multiple batteries are detected simultaneously, the existing battery detection and clamping devices cause inconsistent battery positions due to differences in size, shape, weight, and vibration and inclination of the conveying platform, which affects the contact stability and detection accuracy of the detection needle and electrode.

Method used

A battery detection and clamping device including a fixing bracket, a transport mechanism, a clamping mechanism, an adjustment mechanism and a detection mechanism are designed. The position of the battery on the conveying platform is adjusted through the adjustment mechanism to ensure that each battery enters the clamping mechanism in the correct posture and position, and ensures stable and accurate contact between the detection mechanism and the electrode.

Benefits of technology

Through the use of the adjustment mechanism, the correct position and attitude of each battery is ensured, the accuracy and reliability of the detection results are improved, and the detection accuracy problems caused by inconsistent positions are avoided.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of storage battery detection, in particular to a storage battery detection clamping device which comprises a fixing support, a conveying mechanism, a clamping mechanism, an adjusting mechanism and a detection mechanism, the conveying mechanism is arranged in the fixing support, the clamping mechanism is arranged on the conveying mechanism, and the adjusting mechanism is arranged on the clamping mechanism. The clamping mechanism is used for clamping and fixing the storage battery when the storage battery is detected, the adjusting mechanism is arranged on the clamping mechanism, and the adjusting mechanism is used for adjusting the placing position of the storage battery on the conveying platform before the storage battery is clamped and fixed by the clamping mechanism. Before the storage batteries are clamped and fixed by the clamping mechanism through the adjusting mechanism, the placing positions of the storage batteries on the conveying platform are adjusted, so that each storage battery can enter the clamping mechanism in a correct posture and position, the stable and accurate contact between the detection mechanism and the electrodes of the storage batteries is ensured, and the detection efficiency is improved. And the accuracy and the reliability of a detection result are ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of battery detection, in particular to a battery detection clamping device. Background Art

[0002] A storage battery is an energy storage device. Common batteries include lead-acid batteries and lithium iron phosphate batteries, etc. Among them, a lead-acid battery is a storage battery whose electrodes are mainly made of lead and its oxides, and the electrolyte is a sulfuric acid solution. In the discharged state of the lead-acid battery, the main component of the positive electrode is lead dioxide, and the main component of the negative electrode is lead. In the charged state, the main components of both the positive and negative electrodes are lead sulfate. After the lead-acid battery is processed, in order to ensure that the lead-acid battery can be used normally, it needs to be subjected to power-on detection before leaving the factory.

[0003] In the prior art, a Chinese patent with the authorization announcement number CN219891289U discloses a battery detection clamping device, which includes a bottom bin. A conveyor belt conveying platform is arranged in the bottom bin. The top surface of the bottom bin is fixed with a U-shaped plate. A clamping bin is fixed on the inner wall of the U-shaped plate. A fixing component is arranged between the clamping bins. The top surface of the U-shaped plate is fixed with a cylinder. The bottom end of the cylinder is fixed with a connecting plate. The bottom surface of the connecting plate is fixed with a detection cylinder. A clamping component is arranged in the detection cylinder. When in use, the storage battery is placed on the conveyor belt conveying platform and conveyed to the lower part of the U-shaped plate. It is automatically fixed and clamped by the fixing component. The cylinder drives the two detection cylinders to move downwards to sleeve the two electrodes inside the detection cylinders and clamp them through the clamping component, so as to automatically perform power-on detection on the storage battery. After the detection is completed, the detection cylinder moves upwards, the fixing component releases the fixation, and the storage battery is continuously conveyed to the left through the conveyor belt conveying platform. The degree of automation is relatively high. There is no need for workers to carry the storage batteries one by one for detection, which greatly improves the detection efficiency and is more practical.

[0004] The technical problem still existing in this technical document is that when multiple storage batteries are conveyed on the conveying platform, due to differences in factors such as the size, shape, and weight of the storage batteries, or because of reasons such as the vibration and inclination of the conveying platform, the positions of the storage batteries placed on the conveying platform may be inconsistent, which may lead to unstable or inaccurate contact between the detection needle and the battery electrode, thereby affecting the detection accuracy of the storage battery. Summary of the Utility Model

[0005] Aiming at the above problems, the purpose of the utility model is to overcome the deficiencies of the prior art and design a battery detection clamping device.

[0006] To achieve the above object, the present utility model provides the following technical solutions: A battery detection clamping device includes a fixed bracket, a transportation mechanism, a clamping mechanism, an adjustment mechanism, and a detection mechanism. The transportation mechanism is arranged inside the fixed bracket and is used for the transportation and positioning of the battery on the fixed bracket. The clamping mechanism is arranged on the transportation mechanism and is used for clamping and fixing the battery when the battery is being detected. The adjustment mechanism is arranged on the clamping mechanism and is used for adjusting the position of the battery placed on the transportation platform before the battery is clamped and fixed by the clamping mechanism. The detection mechanism is arranged on the transportation mechanism and is used for performing power-on detection on the battery after the battery is clamped and fixed by the clamping mechanism.

[0007] As a preferred embodiment of the present utility model, the adjustment mechanism includes a first adjustment component and a second adjustment component. The first adjustment component and the second adjustment component are arranged on the clamping mechanism. The first adjustment component is used for adjusting the position of the battery on the transportation platform along the transportation direction of the transportation mechanism, and the second adjustment component is used for adjusting the position of the battery on the transportation platform perpendicular to the transportation direction of the transportation mechanism.

[0008] As a preferred embodiment of the present utility model, the first adjustment component includes two connecting plates, a first telescopic cylinder, and a first pressing plate. The two connecting plates are symmetrically arranged on the clamping mechanism, and each connecting plate is equipped with a first telescopic cylinder. The output end of each first telescopic cylinder is provided with a first pressing plate.

[0009] As a preferred embodiment of the present utility model, the second adjustment component includes a chute, a second pressing plate, and a driving component. The chute is arranged vertically on the clamping mechanism. The second pressing plate is slidably arranged on the chute, and the driving component is used for controlling the sliding of the second pressing plate on the chute.

[0010] As a preferred embodiment of the present utility model, the driving component includes a screw rod, a slider, and a rotating motor. The screw rod is rotatably arranged vertically in the chute. The output end of the rotating motor is coaxially connected to the screw rod. The slider is arranged on the second pressing plate, and the slider is provided with a threaded hole that is in threaded cooperation with the screw rod.

[0011] As a preferred embodiment of the present utility model, the first adjustment component further includes a first buffer pad, and the first buffer pad is arranged on the first pressing plate.

[0012] As a preferred embodiment of the present utility model, the second adjustment component further includes a second buffer pad, and the second buffer pad is arranged on the second pressing plate.

[0013] As a preferred embodiment of the present utility model, the clamping mechanism includes two connecting frames, a second telescopic cylinder, and a movable plate. The two connecting frames are symmetrically arranged on the transportation mechanism. Each connecting frame is equipped with a second telescopic cylinder, and the output end of each second telescopic cylinder is provided with a movable plate. The adjusting mechanism is arranged on the movable plate.

[0014] The beneficial effects of the present utility model compared with the prior art are as follows:

[0015] Before the storage battery is clamped and fixed by the clamping mechanism, the present utility model adjusts the position of the storage battery placed on the conveying platform through the adjusting mechanism, so as to ensure that each storage battery can enter the clamping mechanism in the correct posture and position, thereby ensuring the stable and accurate contact between the detection mechanism and the electrodes of the storage battery, and further ensuring the accuracy and reliability of the detection results.

[0016] The additional aspects and advantages of the present utility model will be partially given in the following description, partially will become obvious from the following description, or will be understood through the practice of the present utility model. Description of the Drawings

[0017] The above and / or additional aspects and advantages of the present utility model will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, wherein:

[0018] Figure 1 is a three-dimensional structural schematic diagram of a storage battery detection clamping device.

[0019] Figure 2 is a side structural view of a storage battery detection clamping device.

[0020] Figure 3 is a three-dimensional structural schematic diagram of the clamping mechanism in a storage battery detection clamping device.

[0021] Figure 4 is a three-dimensional structural schematic diagram of the first adjustment component in a storage battery detection clamping device.

[0022] Figure 5 is a three-dimensional structural schematic diagram of the second adjustment component in a storage battery detection clamping device.

[0023] The reference numerals include:

[0024] Fixed bracket 1, transportation mechanism 2, clamping mechanism 3, connecting frame 3a, second telescopic cylinder 3b, movable plate 3c, adjusting mechanism 4, first adjustment component 4a, connecting plate 4a1, first telescopic cylinder 4a2, first pressing plate 4a3, first buffer pad 4a4, second adjustment component 4b, sliding groove 4b1, second pressing plate 4b2, driving component 4b3, screw 4b31, slider 4b32, rotary motor 4b33, second buffer pad 4b4, detection mechanism 5. Detailed implementation manners

[0025] The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present utility model and should not be construed as a limitation to the present utility model.

[0026] As Figures 1 to 5 shown, a battery detection clamping device of the present utility model includes a fixed bracket 1, a transportation mechanism 2, a clamping mechanism 3, an adjustment mechanism 4, and a detection mechanism 5. The transportation mechanism 2 is arranged inside the fixed bracket 1, and the transportation mechanism 2 is used for the transportation and positioning of the battery on the fixed bracket 1. The clamping mechanism 3 is arranged on the transportation mechanism 2, and the clamping mechanism 3 is used for clamping and fixing the battery when the battery is being detected. The adjustment mechanism 4 is arranged on the clamping mechanism 3, and the adjustment mechanism 4 is used for adjusting the position of the battery placed on the transportation platform before the battery is clamped and fixed by the clamping mechanism 3. The detection mechanism 5 is arranged on the transportation mechanism 2, and the detection mechanism 5 is used for performing power-on detection on the battery after the battery is clamped and fixed by the clamping mechanism 3. By means of the adjustment mechanism 4, the position of the battery placed on the transportation platform is adjusted before the battery is clamped and fixed by the clamping mechanism 3, so as to ensure that each battery can enter the clamping mechanism 3 in the correct posture and position, thereby ensuring the stable and accurate contact between the detection mechanism 5 and the battery electrodes, and further ensuring the accuracy and reliability of the detection results.

[0027] Specifically, referring to Figure 3 shown, the adjustment mechanism 4 includes a first adjustment component 4a and a second adjustment component 4b. The first adjustment component 4a and the second adjustment component 4b are arranged on the clamping mechanism 3. The first adjustment component 4a is used for adjusting the position of the battery on the transportation platform along the transportation direction of the transportation mechanism 2. When the battery deviates from the expected position, the first adjustment component 4a can adjust it to align the battery with the expected position in the transportation direction of the transportation mechanism 2. The second adjustment component 4b is used for adjusting the position of the battery on the transportation platform perpendicular to the transportation direction of the transportation mechanism 2. When the battery deviates from the expected position, the second adjustment component 4b can adjust it to align the battery with the expected position perpendicular to the transportation direction of the transportation mechanism 2.

[0028] First, through the adjustment of the first adjustment component 4a, align the storage battery with the transportation direction of the transportation mechanism 2; then, through the adjustment of the second adjustment component 4b, align the storage battery with the expected position exactly, so as to ensure that each storage battery can enter the clamping mechanism 3 in the correct posture and position, thus ensuring the stable and accurate contact between the detection mechanism 5 and the storage battery electrodes, and further ensuring the accuracy and reliability of the detection results.

[0029] Specifically, referring to Figure 4 As shown, the first adjustment component 4a includes two connecting plates 4a1, a first telescopic cylinder 4a2 and a first pressing plate 4a3. The two connecting plates 4a1 are symmetrically arranged on the clamping mechanism 3. Each connecting plate 4a1 is equipped with a first telescopic cylinder 4a2, and a first pressing plate 4a3 is provided at the output end of each first telescopic cylinder 4a2.

[0030] When the storage battery is placed on the conveying platform and moves to the clamping mechanism 3, the first adjustment component 4a starts to work. The two first telescopic cylinders 4a2 are started simultaneously, and the first pressing plates 4a3 are pushed close to the storage battery through telescopic movement. Since the two connecting plates 4a1 are symmetrically arranged, the two first pressing plates 4a3 will apply pressure on both sides of the storage battery at the same time, so that it is adjusted in the transportation direction. When the position of the storage battery is adjusted in place, the first telescopic cylinder 4a2 stops working, and the first pressing plate 4a3 keeps the storage battery fixed.

[0031] Specifically, referring to Figure 5 As shown, the second adjustment component 4b includes a chute 4b1, a second pressing plate 4b2 and a driving component 4b3. The chute 4b1 is arranged vertically on the clamping mechanism 3. The second pressing plate 4b2 is slidably arranged on the chute 4b1, and the driving component 4b3 is used to control the sliding of the second pressing plate 4b2 on the chute 4b1.

[0032] After the first adjustment component 4a stops moving, the second adjustment component 4b starts to work. The driving component 4b3 is started, and the second pressing plate 4b2 is driven to move vertically along the chute 4b1 through the transmission mechanism. Since the chute 4b1 is arranged vertically, the vertical movement of the second pressing plate 4b2 will directly act on the storage battery, so that it is adjusted in the direction perpendicular to the transportation direction. By adjusting the position of the second pressing plate 4b2, it can be ensured that the storage battery is exactly aligned with the clamping mechanism 3. When the position of the storage battery is adjusted in place, the driving component 4b3 stops working, and the second pressing plate 4b2 keeps the storage battery fixed. The clamping mechanism 3 clamps and fixes the storage battery. After the storage battery is detected, the clamping mechanism 3 stops clamping and fixing the storage battery. Then the driving component 4b3 is started to move the second pressing plate 4b2 to the initial position. Finally, the first telescopic cylinder 4a2 starts to work to return the two first pressing plates 4a3 to the initial position.

[0033] Specifically, refer to Figure 5 As shown, the driving assembly 4b3 includes a screw rod 4b31, a slider 4b32, and a rotary motor 4b33. The screw rod 4b31 is vertically and rotatably arranged in the chute 4b1. The output end of the rotary motor 4b33 is coaxially connected to the screw rod 4b31. The slider 4b32 is arranged on the second pressing plate 4b2, and a threaded hole that is in threaded cooperation with the screw rod 4b31 is provided on the slider 4b32.

[0034] Specifically, refer to Figure 5 As shown, the first adjusting assembly 4a further includes a first buffer pad 4a4, and the first buffer pad 4a4 is arranged on the first pressing plate 4a3. When the first pressing plate 4a3 adjusts the position of the storage battery under the drive of the first telescopic cylinder 4a2, the first buffer pad 4a4 plays a role of buffering and shock absorption. It can absorb the impact force generated due to the position adjustment, preventing the storage battery from being damaged due to sudden collision. At the same time, the first buffer pad 4a4 also increases the friction force between the first pressing plate 4a3 and the storage battery, making the position adjustment more stable and reliable, and reducing the adjustment errors caused by sliding.

[0035] Specifically, refer to Figure 5 As shown, the second adjusting assembly 4b further includes a second buffer pad 4b4, and the second buffer pad 4b4 is arranged on the second pressing plate 4b2. When the second pressing plate 4b2 vertically moves along the chute 4b1 under the drive of the driving assembly 4b3 to adjust the position of the storage battery, the second buffer pad 4b4 plays a role of buffering and shock absorption. It can absorb the impact force generated due to the vertical movement, preventing the storage battery from being damaged due to sudden collision. At the same time, the second buffer pad 4b4 increases the friction force between the second pressing plate 4b2 and the storage battery, making the vertical position adjustment more stable and reliable, and reducing the adjustment errors caused by sliding.

[0036] Specifically, refer to Figure 3 As shown, the clamping mechanism 3 includes two connecting frames 3a, a second telescopic cylinder 3b, and a movable plate 3c. The two connecting frames 3a are symmetrically arranged on the conveying mechanism 2. Each connecting frame 3a is equipped with a second telescopic cylinder 3b, and a movable plate 3c is provided at the output end of each second telescopic cylinder 3b. The adjusting mechanism 4 is arranged on the movable plate 3c. When the storage battery is conveyed to the position of the clamping mechanism 3, the second telescopic cylinder 3b is activated to push the movable plate 3c towards the storage battery. After the movable plate 3c contacts the storage battery, it continues to push until the storage battery is stably clamped at a predetermined position. At this time, the adjusting mechanism 4 starts to work to precisely adjust the position of the storage battery to ensure that it is aligned with the detection needle. After the adjustment is completed, the clamping mechanism 3 maintains the fixation of the storage battery and waits for the detection mechanism 5 to perform detection. After the detection is completed, the second telescopic cylinder 3b moves in the reverse direction to release the storage battery, enabling it to continue to be conveyed along the conveying mechanism 2.

[0037] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above exemplary embodiments, and the present utility model can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present utility model. Any reference signs in the claims should not be construed as limiting the claims involved.

Claims

1. A battery detection clamping device, characterized in that: The invention comprises a fixed support (1), a transport mechanism (2), a clamping mechanism (3), an adjusting mechanism (4) and a detection mechanism (5), wherein the transport mechanism (2) is arranged in the fixed support (1), and the transport mechanism (2) is used for transporting and positioning the battery on the fixed support (1); the clamping mechanism (3) is arranged on the transport mechanism (2), and the clamping mechanism (3) is used for clamping and fixing the battery when the battery is being detected; the adjusting mechanism (4) is arranged on the clamping mechanism (3), and the adjusting mechanism (4) is used for adjusting the position of the battery on the transport platform before the battery is clamped and fixed by the clamping mechanism (3); the detection mechanism (5) is arranged on the transport mechanism (2), and the detection mechanism (5) is used for conducting a power-on detection on the battery after the battery is clamped and fixed by the clamping mechanism (3); The adjustment mechanism (4) comprises a first adjustment component (4a) and a second adjustment component (4b), wherein the first adjustment component (4a) and the second adjustment component (4b) are arranged on the clamping mechanism (3), wherein the first adjustment component (4a) is used to adjust the position of the battery on the conveying platform along the conveying direction of the conveying mechanism (2), and the second adjustment component (4b) is used to adjust the position of the battery on the conveying platform perpendicular to the conveying direction of the conveying mechanism (2).

2. A battery detection clamping device according to claim 1, characterized in that: The first adjustment component (4a) comprises two connecting plates (4a1), a first telescopic cylinder (4a2) and a first pressure plate (4a3), wherein the two connecting plates (4a1) are symmetrically arranged on the clamping mechanism (3), each connecting plate (4a1) is installed with a first telescopic cylinder (4a2), and a first pressure plate (4a3) is provided at the output end of each first telescopic cylinder (4a2).

3. A battery detection clamping device according to claim 1, characterized in that: The second adjustment component (4b) comprises a slide groove (4b1), a second pressure plate (4b2) and a driving component (4b3); the slide groove (4b1) is vertically arranged on the clamping mechanism (3); the second pressure plate (4b2) is slidably arranged on the slide groove (4b1); and the driving component (4b3) is used to control the sliding of the second pressure plate (4b2) on the slide groove (4b1).

4. A battery detection clamping device according to claim 3, characterized in that: The driving assembly (4b3) comprises a screw (4b31), a slider (4b32) and a rotary motor (4b33); the screw (4b31) is rotatably arranged in a vertical state in a slide groove (4b1); the output end of the rotary motor (4b33) is coaxially connected to the screw (4b31); the slider (4b32) is arranged on a second pressure plate (4b2); and the slider (4b32) is provided with a threaded hole that is threadably matched with the screw (4b31).

5. A battery detection clamping device according to claim 2, characterized in that: The first adjustment component (4a) further comprises a first buffer pad (4a4), and the first buffer pad (4a4) is arranged on the first pressure plate (4a3).

6. A battery detection clamping device according to claim 3, characterized in that: The second adjustment component (4b) further comprises a second buffer pad (4b4), and the second buffer pad (4b4) is arranged on the second pressure plate (4b2).

7. A battery detection clamping device according to claim 1, characterized in that: The clamping mechanism (3) comprises two connecting frames (3a), a second telescopic cylinder (3b) and a movable plate (3c); the two connecting frames (3a) are symmetrically arranged on the transport mechanism (2); each connecting frame (3a) is installed with a second telescopic cylinder (3b); a movable plate (3c) is provided at the output end of each second telescopic cylinder (3b); and the adjusting mechanism (4) is arranged on the movable plate (3c).

Citation Information

Patent Citations

  • Storage battery detection clamping device

    CN219891289U