Formation and capacity grading device
By introducing a guide assembly into the chemical fractionation device, the movement of the probe assembly is achieved, which solves the high cost problem caused by the probe module track and achieves low-cost and efficient operation of the equipment.
Patent Information
- Application Number
- CN202422455031.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-10-10
AI Technical Summary
In existing chemical content separation devices, each probe module is provided with a track, which increases the manufacturing cost.
By arranging a guide assembly between the first frame body and the second frame body, including a first slide rail and a slide groove, the movement of the probe assembly is achieved, avoiding the need to separately arrange a track for each probe module.
It saves the manufacturing cost of the device, improves the operating efficiency and reliability of the equipment, simplifies the maintenance process, and reduces maintenance costs.
Smart Images

Figure CN223378235U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of chemical fractionation and storage, and in particular to a chemical fractionation and storage device. Background Art
[0002] After the production of battery cells is completed, each battery cell needs to be chemically processed and capacitated. Chemical formation refers to activating the active materials in the battery cell through the first charge, and capacitation refers to charging and discharging tests on the battery to determine the battery capacity, that is, capacity sorting and performance screening, and then selecting battery cells with similar performance to form a battery module.
[0003] In the related art, during the process of cell splitting, the battery cells need to be charged and discharged with the help of a power module. The power module is connected to the probe assembly through flying wires, and the battery cells are charged and discharged through the probe assembly. A track is set for each probe module of the probe assembly so that when the probe needs to be repaired, the probe module can be pulled out along the respective track to repair the probe. In this way, each probe module is provided with a track, which greatly increases the manufacturing cost of the cell splitting device. Utility Model Content
[0004] An embodiment of the present application discloses a chemical separation and containment device, which can move relative to the first frame through the second frame, thereby driving the probe assembly on the second frame to move relative to the first frame. There is no need to set a track for each probe on the probe assembly to move the probe, which can save the manufacturing cost of the device.
[0005] In order to achieve the above-mentioned purpose, the embodiment of the present application discloses a chemical fractionation and storage device, which includes:
[0006] a first frame;
[0007] a second frame body, the second frame body being arranged opposite to the first frame body and spaced apart in a vertical direction;
[0008] a probe assembly, the probe assembly being disposed in the second frame; and
[0009] A guide assembly, wherein the guide assembly includes a first slide rail and a first sliding groove, the first sliding groove is provided on the first frame, the first sliding groove extends along a first horizontal direction, the first slide rail includes a first connecting portion and a first guide portion connected to each other, the first guide portion slides in cooperation with the first sliding groove, and the first connecting portion is connected to the second frame so that at least part of the second frame can be moved in or out from under the first frame.
[0010] As an optional implementation, the first guide portion is perpendicular to the first connecting portion.
[0011] As an optional embodiment, the guide assembly also includes a second slide rail, the second slide rail includes a second connecting portion and a second guide portion connected to each other, the second connecting portion is connected to the first frame, and the first frame, the second connecting portion and the second guide portion are arranged to form the first sliding groove.
[0012] As an optional embodiment, a second sliding groove is provided on the upper side of the second frame body, and the second frame body, the first connecting portion and the first guide portion surround and form the second sliding groove, and the second guide portion is slidably engaged with the second sliding groove.
[0013] As an optional embodiment, a first preset gap is formed between the first guide portion and the first frame body along the vertical direction, and a second preset gap is formed between the second guide portion and the second frame body along the vertical direction.
[0014] As an optional embodiment, a rolling member is provided between the first slide rail and the second slide rail to enable a rolling connection between the first slide rail and the second slide rail.
[0015] As an optional embodiment, the rolling element includes a first rolling element, the first guide portion includes a first surface, the first surface is opposite to the second guide portion along the vertical direction, and the first rolling element is arranged between the first surface and the second guide portion.
[0016] As an optional embodiment, the rolling member also includes a second rolling member, the first guide portion also includes a second surface, the second surface is opposite to the second connecting portion along a second horizontal direction, and the second rolling member is arranged between the second surface and the second connecting portion, wherein the second horizontal direction is perpendicular to the first horizontal direction.
[0017] As an optional embodiment, the chemical fractionation device also includes a third slide rail, which is arranged on the second frame and extends along the second horizontal direction. The probe assembly can be slidably connected to the third slide rail so that the probe assembly can move along the second horizontal direction, wherein the second horizontal direction is perpendicular to the first horizontal direction.
[0018] As an optional embodiment, the first frame includes a first plate and a second plate arranged opposite to each other along the first horizontal direction, a third plate and a fourth plate arranged opposite to each other along the second horizontal direction, the first plate and the second plate are both connected to the third plate, the first plate and the second plate are both connected to the fourth plate, and the second slide rail is arranged below the third plate and the fourth plate;
[0019] The second frame includes a first frame and a second frame opposite to each other along the first horizontal direction, the first slide rail is arranged above the first frame and the second frame, the first frame and the second frame are connected through the first slide rail, the first frame, the second frame and the first slide rail are arranged to form an accommodating space, and the probe assembly is arranged in the accommodating space.
[0020] As an optional embodiment, a plurality of sliders are provided on the third slide rail, and the sliders are slidably connected to the third slide rail. The probe assembly includes a plurality of probe modules, and the plurality of probe modules are arranged at intervals, and one probe module is correspondingly installed on one slider.
[0021] As an optional embodiment, the chemical separation and capacity device also includes a third frame. When the second frame is moved into the first frame, the third frame is located below the second frame and is movably arranged along the vertical direction. The third frame is used to place batteries. When the third frame moves back and forth along the vertical direction, it can drive the battery to dock or detach with the probe assembly.
[0022] Compared with the prior art, the present invention has the following advantages:
[0023] The embodiment of the present application provides a chemical component storage device, which includes a first frame and a second frame arranged at intervals in the vertical direction, a probe assembly arranged in the second frame, and a guide assembly arranged between the first frame and the second frame, the guide assembly including a first slide rail and a first sliding groove, the first sliding groove being arranged on the lower side of the first frame, the first sliding groove extending along the first horizontal direction, the first slide rail including a first connecting portion and a first guide portion connected to each other, the first guide portion slidingly cooperates with the first sliding groove, and the end of the first connecting portion away from the first guide portion is connected to the second frame so that the second frame can be moved in or out from under the first frame. By slidingly cooperating with the first guide portion and the first sliding groove, the end of the first connecting portion away from the first guide portion is connected to the second frame, the guide assembly can drive the second frame to move relative to the first frame, and then the probe assembly on the second frame can move relative to the first frame, so that there is no need to set a track for each probe module on the probe assembly to move the probe, which can save the manufacturing cost of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0025] Figure 1It is a front view of the chemical fractionation and capacity device disclosed in an embodiment of the present application;
[0026] Figure 2 for Figure 1 A magnified view of part A;
[0027] Figure 3 This is a schematic diagram of the connection between the first frame and the second frame disclosed in an embodiment of the present application.
[0028] Description of reference numerals:
[0029] 100-chemical fractionation device;
[0030] 1-first frame; 11-first plate; 12-second plate; 13-third plate; 14-fourth plate;
[0031] 2-second frame; 21-first frame; 22-second frame;
[0032] 3-probe assembly; 31-probe module;
[0033] 4-guide assembly; 41-first slide rail; 411-first guide portion; 412-first connecting portion; 42-first sliding groove; 43-second slide rail; 431-second guide portion; 432-second connecting portion; 44-second sliding groove; 45-first rolling element; 46-second rolling element;
[0034] 5-third slide rail; 6-slider; 7-third frame;
[0035] M-first preset gap; N-second preset gap;
[0036] X-first horizontal direction; Y-second horizontal direction; Z-vertical direction. DETAILED DESCRIPTION
[0037] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0038] In this application, terms such as "upper," "lower," "left," "right," "front," "back," "top," "bottom," "inner," "outer," "vertical," "horizontal," "transverse," and "longitudinal" indicate positions or locations based on the positions or locations shown in the accompanying drawings. These terms are primarily intended to better describe this application and its embodiments and are not intended to limit the devices, elements, or components indicated to having a specific orientation, or to being constructed or operated in a specific orientation.
[0039] Furthermore, some of the above terms may be used to express other meanings besides indicating a position or location. For example, the term "on" may also be used to indicate a dependency or connection in certain circumstances. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.
[0040] Furthermore, the terms "installed," "disposed," "provided with," "connected," and "connected" should be interpreted broadly. For example, they can refer to fixed connections, removable connections, or integral structures; mechanical connections or electrical connections; direct connections, indirect connections through an intermediary, or internal communication between two devices, elements, or components. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.
[0041] Furthermore, the terms "first," "second," etc., are primarily used to distinguish between different devices, elements, or components (which may or may not be of the same type and configuration), and are not intended to indicate or imply the relative importance or quantity of the devices, elements, or components indicated. Unless otherwise specified, "plurality" means two or more.
[0042] The chemical separation device realizes charging and discharging by docking and detaching the probe assembly with the battery. When a problem occurs with the probe assembly in the chemical separation device, the probe assembly needs to be repaired or replaced. In the related art, a track is set for each probe module in the probe assembly of the chemical separation device. When the probe needs to be repaired and replaced, the probe module is pulled out along the track to facilitate repair and replacement. However, the track is set for each probe module, which greatly increases the cost of manufacturing the device.
[0043] Based on this, the present application discloses a chemical separation and storage device, which drives the second frame to move relative to the first frame through a guide assembly, and then the probe assembly on the second frame can move relative to the first frame. There is no need to set a track on each probe module on the probe assembly to move the probe, which can save the manufacturing cost of the device.
[0044] The technical solution of the present application will be further described below with reference to specific embodiments and drawings.
[0045] See also Figures 1 to 3 , Figure 1 : is a front view of the chemical fractionation and capacity device 100 disclosed in an embodiment of the present application, Figure 2 for Figure 1 A magnified view of the middle part, Figure 3Schematic diagram of the connection between the first frame 1 and the second frame 2 disclosed in an embodiment of the present application. An embodiment of the present application discloses a chemical component storage device 100, which includes a first frame 1, a second frame 2, a probe assembly 3 and a guide assembly 4. The second frame 2 and the first frame 1 are arranged relative to each other in a vertical direction Z. The probe assembly 3 is arranged on the second frame 2. The guide assembly 4 includes a first slide rail 41 and a first sliding groove 42. The first sliding groove 42 is arranged on the lower side of the first frame 1. The first sliding groove 42 extends along the first horizontal direction X. The first slide rail 41 includes a first connecting portion 412 and a first guide portion 411 that are connected to each other. The first guide portion 411 is slidably engaged with the first sliding groove 42. The end of the first connecting portion 412 away from the first guide portion 411 is connected to the second frame 2 so that at least part of the second frame 2 can be moved into or out from under the first frame 1.
[0046] The first horizontal direction X refers to the direction in which the probe assembly 3 is pulled out. Figure 1 The direction perpendicular to the inside of the paper; at least part of the second frame body 2 can be moved in or out from under the first frame body 1, which means that the second frame body 2 can be partially located below the first frame body 1 or entirely located below the first frame body 1, or the second frame body 2 can be entirely located outside the bottom of the first frame body 1.
[0047] In this embodiment, the first slide rail 41 is arranged below the first frame body 1, and the first connecting portion 412 of the first slide rail 41 is connected to the second frame body 2 at one end away from the first guide portion 411, that is, the first slide rail 41 is located between the first frame body 1 and the second frame body 2, and the first sliding groove 42 is set based on the first frame body 1, and the length of the first connecting portion 412 itself ensures that a certain distance is maintained between the first frame body 1 and the second frame body 2, so as to ensure that when the second frame body 2 slides along the first horizontal direction X with the help of the first slide rail 41, the second frame body 2 can always maintain a certain distance from the first frame body 1, thereby avoiding friction between the first frame body 1 and the second frame body 2 during the sliding process due to the inclination of the slide rail, thereby ensuring the service life of the device, and avoiding frequent maintenance of the first frame body 1 and the second frame body 2, saving maintenance costs.
[0048] In this way, by combining the first frame 1 and the second frame 2 to achieve coordination and movement between structures, the second frame 2 is arranged relative to the interval along the vertical direction of the first frame 1, ensuring the effective use of space. The probe assembly 3 placed in the second frame 2 is used for charge and discharge testing of the battery, and the cooperation of the first slide rail of the guide assembly 4 and the first sliding groove not only limits the range and path of movement of the second frame 2, but also simplifies its operation and maintenance process, avoiding the need to set a track separately for the probe assembly 3. By arranging the first connecting portion 412 and the first guide portion 411, not only can the smooth movement of the second frame 2 be achieved, the interference between components and the invalid space occupation are reduced, but also a more convenient operating process is provided when repairing the probe. This design not only saves space and materials, reduces costs, and while improving efficiency, ensures the practicality and long-term reliability of the device, and realizes efficient automation and low cost of the production process.
[0049] Furthermore, if Figure 2 As shown, the first guide portion 411 is perpendicular to the first connecting portion 412. Thus, when the first guide portion 411 partially extends into the first sliding groove 42 and slides with the first sliding groove 42, the vertical connection between the first guide portion 411 and the first connecting portion 412 allows the first connecting portion 412 to provide a good support base for the first guide portion 411, and when the first guide portion 411 slides in the first sliding groove 42, it is more stable, ensuring the stability of the second frame body 2 when it moves out of or into the bottom of the first frame body 1.
[0050] In some embodiments, as Figure 2 As shown, the guide assembly 4 also includes a second slide rail 43, the second slide rail 43 includes a second connecting portion 432 and a second guide portion 431 connected to each other, the second connecting portion 432 is connected to the first frame 1 at one end away from the second guide portion 431, and the first frame 1, the second connecting portion 432 and the second guide portion 431 are arranged to form a first sliding groove 42.
[0051] In this way, the guide assembly 4, which includes the first slide rail 41 and the second slide rail 43, not only achieves the precise positioning and stable operation of the second frame 2 in the first horizontal direction X, but also forms a stable and smooth first sliding groove 42 in the vertical direction Z through the support and cooperation of the second slide rail and the first frame, providing a stable sliding foundation for the second frame 2, while providing a precise guide path, which can ensure that the second frame 2 moves on a predetermined track, thereby improving the accuracy and reliability of sliding. In addition, the second slide rail 43 is firmly connected to the first frame 1 through the second connecting portion 432. This direct and stable connection method ensures the stability of the guide assembly 4 in the overall structure. The mutual connection between the second guide portion 431 and the second connecting portion 432 further enhances the strength and rigidity of the second slide rail 43 itself, so that the second frame 2 can remain stable during the sliding process, reducing shaking and deviation.
[0052] It should be noted that if Figure 3 As shown, there are two first rails 41 and two second rails 43, and the two first rails 41 are arranged on both sides of the bottom of the first frame along the second horizontal direction Y, and the two second rails 43 are arranged on both sides of the top of the second frame along the second horizontal direction Y. The second horizontal direction Y is a direction perpendicular to the first horizontal direction X, that is, Figure 3 From left to right and from right to left. Slide rails are set on both sides of the frame, so that the first frame 1 and the second frame 2 are more stably supported during the sliding process, reducing the shaking or tilting that may be caused by the single-rail support. At the same time, the double-rail design makes the force more uniform during the sliding process, reducing the risk of wear or damage caused by uneven force. In addition, the two slide rails work simultaneously, providing a greater load-bearing capacity for connecting the first frame 1 and the second frame 2, so that the entire frame can bear heavier loads or cope with greater impact forces.
[0053] In some embodiments, as Figure 2 As shown, a second sliding groove 44 is provided on the upper side of the second frame 2 . The second frame 2 , the first connecting portion 412 and the first guide portion 411 surround and form the second sliding groove 44 . The second guide portion 431 is slidably engaged with the second sliding groove 44 .
[0054] In this way, the design of the first sliding groove 42 and the second sliding groove 44 provides dual support and guidance for the sliding of the second frame 2, thereby enhancing the stability of the overall structure. Through the close connection between the first connecting portion 412, the first guide portion 411 and the second frame 2, and the sliding fit between the second guide portion 431 and the second sliding groove 44, the stability of the second frame 2 during the sliding process is further ensured, reducing shaking and deviation. At the same time, through the form of sliding fit between the slide rail and the sliding groove, combined with the first slide rail 41 and the second slide rail 43 to form a connection method similar to "snap-fit", it helps to reduce the friction of the second frame 2 during the sliding process, and improve the smoothness and precision of the second frame 2 sliding along the first horizontal direction X. In addition, the connection method between the first slide rail 41 and the second slide rail 43 allows the first frame 1 and the second frame 2 to be assembled by assembling the first slide rail 41 and the second slide rail 43, thereby making the installation process simpler and faster, reducing the difficulty and cost of installation, and during maintenance, the frame can be easily disassembled and replaced, improving maintenance efficiency.
[0055] Further, combined with Figure 1 and Figure 2 A first preset gap M is defined between the first guide portion 411 and the first frame body 1 along the vertical direction Z, and a second preset gap is defined between the second guide portion 431 and the second frame body 2 along the vertical direction Z. It should be noted that when the battery is docked with the probe assembly 3 on the second frame body 2, the battery exerts a certain upward contact force on the probe assembly 3 along the vertical direction Z. This upward contact force exerted by the battery also causes the second frame body 2 to be displaced upward to a certain extent along the vertical direction Z.
[0056] Therefore, by setting a first preset gap M between the first guide portion 411 and the first frame 1 along the vertical direction Z, and setting a second preset gap between the second guide portion 431 and the second frame 2 along the vertical direction Z, on the one hand, a moderate buffer space can be provided for the second frame 2. This helps to avoid strong direct contact between the slide rail and the frame, thereby reducing the risk of damage to the slide rail and the frame while improving working stability. On the other hand, setting a preset gap can prevent the second frame 2 from sliding along the first horizontal direction X due to the direct contact between the slide rail and the frame, resulting in a large friction force when sliding. Long-term gapless contact will cause surface wear of the guide portion and the frame, and the preset gap can reduce such wear, maintain the accuracy and stability of the device, reduce the direct contact area between the slide rail and the frame, thereby reducing the friction during relative motion, and help to extend the service life of the slide rail and the frame.
[0057] In some embodiments, a rolling element is provided between the first and second rails 41, 43 to provide a rolling connection between the first and second rails 41, 43. Thus, by providing a rolling element between the first and second rails 41, 43, the relative motion between the first and second rails 41, 43 is transformed from sliding friction to rolling friction. Because rolling friction has much less resistance than sliding friction, it significantly reduces energy loss during relative motion between the first and second rails 41, 43. Furthermore, the rolling connection reduces vibration and noise caused by friction, making the relative motion between the first and second rails 41, 43 smoother and quieter. Furthermore, the presence of the rolling element prevents the first and second rails 41, 43 from becoming stuck due to friction, ensuring smooth movement of the second frame 2 along the first horizontal direction X. Compared to embodiments in which a cam follower is provided between the first and second rails 41, 43, which is more expensive, the use of a rolling element not only enables relative sliding between the first and second rails 41, 43, but also further reduces the manufacturing cost of the device.
[0058] It is worth noting that, in addition to setting a rolling member between the first slide rail 41 and the second slide rail 43 to achieve a rolling connection as described in the above embodiment, some lubricating oil or other liquid medium that can enable the first slide rail 41 and the second slide rail 43 to slide can be added between the first slide rail 41 and the second slide rail 43, and even a slider can be set between the first slide rail 41 and the second slide rail 43. As long as the relative movement between the first slide rail 41 and the second slide rail 43 can be achieved, this embodiment does not limit this.
[0059] Alternatively, as Figure 2 As shown, the rolling member includes a first rolling member 45 and a second rolling member 46, the first guide portion 411 includes a first surface and a second surface, the first surface is opposite to the second guide portion 431 along the vertical direction Z, and the second surface is opposite to the second connecting portion 432 along the second horizontal direction Y, the first rolling member 45 is arranged between the first surface and the second guide portion 431, and the second rolling member 46 is arranged between the second surface and the second connecting portion 432.
[0060] In this way, the first rolling member 45 and the second rolling member 46 are provided so that point contact is formed between the first rolling member 45 and the first surface of the first guide portion 411. Similarly, point contact is formed between the second rolling member 46 and the second surface of the first guide portion 411, thereby reducing the direct contact area with the slide rail, thereby reducing the wear rate between the first slide rail 41 and the second slide rail 43, helping to extend the service life of the slide rail and reduce maintenance and replacement costs.
[0061] It should be understood that the first rolling member 45 and the second rolling member 46 include balls, universal balls, rollers or other components that can achieve rolling connection, and the first rolling member 45 can be set only between the first surface of the first guide portion 411 and the second guide portion 431, or the second rolling member 46 can be set only between the second surface of the first guide portion 411 and the second connection portion 432. This embodiment does not make specific limitations on this.
[0062] Exemplarily, the first rolling member 45 and the second rolling member 46 are universal ball transfers, which can roll freely in multiple directions, allowing the first rolling member 45 and the second rolling member 46 to easily cope with changes in various directions. Whether it is a lifting movement in the vertical direction Z or a translational movement in the first horizontal direction X, the universal ball transfer can provide stable rolling support. The rolling contact mode of the universal ball transfer can significantly reduce frictional resistance, making the first rolling member 45 and the second rolling member 46 smoother during the rolling process and reducing mechanical wear. Due to the reduction in frictional resistance, the rolling surface wear of the universal ball transfer will also be reduced accordingly, thereby extending the service life of the rolling member and thus extending the service life of the device. In addition, the installation of the universal ball transfer is relatively simple. Usually, it only needs to be placed in a predetermined position and fixed, which simplifies the installation process and reduces installation costs and time.
[0063] It is worth noting that, in addition to the arrangement of the first rolling member 45 and the second rolling member 46 in the above embodiment, another arrangement may be adopted: the second guide portion 431 includes a third surface and a fourth surface, the third surface being opposite to the first guide portion 411 along the vertical direction Z, and the fourth surface being opposite to the first connecting portion 412 along the second horizontal direction Y. The first rolling member 45 is arranged between the third surface and the first guide portion 411, and the second rolling member 46 is arranged between the fourth surface and the first connecting portion 412. The advantages of this arrangement are similar to those of the above embodiment and are not further described in detail in this embodiment.
[0064] In some embodiments, combined Figure 1 and Figure 3 The first frame body 1 includes a first plate 11 and a second plate 12 arranged opposite to each other along a first horizontal direction X, and a third plate 13 and a fourth plate 14 arranged opposite to each other along a second horizontal direction Y. The first plate 11 and the second plate 12 are both connected to the third plate 13, and the first plate 11 and the second plate 12 are both connected to the fourth plate 14. The second slide rail 43 is disposed below the third plate 13 and the fourth plate 14. The second frame body 2 includes a first frame 21 and a second frame 22 opposite to each other along the first horizontal direction X. The first slide rail 41 is disposed above the first frame 21 and the second frame 22. The first frame 21 and the second frame 22 are connected by the first slide rail 41. The first frame 21, the second frame 22 and the first slide rail 41 enclose a receiving space, and the probe assembly 3 is disposed in the receiving space.
[0065] Thus, on the one hand, the first frame 1 forms a stable quadrilateral structure by interconnecting the first plate 11, the second plate 12, the third plate 13 and the fourth plate 14. This structure has good mechanical stability and strength. The second slide rail 43 is arranged below the third plate 13 and the fourth plate 14. This design enables the slide rail to be firmly supported, thereby ensuring stability and reliability during the sliding process. On the other hand, the first frame 1 and the second frame 2 are respectively composed of relatively arranged plate-like structures, and the two are cleverly connected by the slide rail. This design can optimize the overall spatial layout, making the structure of the device more compact and highly functional.
[0066] In some embodiments, as Figure 1 As shown, the chemical fractionation and storage device 100 further includes a third slide rail 5, which is arranged on the second frame 2 and extends along the second horizontal direction Y. The probe assembly 3 can be slidably connected to the third slide rail 5 so that the probe assembly 3 can move along the second horizontal direction Y.
[0067] Thus, the third rail 5 extends along the second horizontal direction Y, enabling the probe assembly 3 to move precisely in this direction. This facilitates precise alignment of the probes with the battery electrodes during testing, thereby improving the accuracy and reliability of testing. Slidingly connected to the third rail 5, the probe assembly 3 can be quickly adjusted as needed to accommodate batteries of varying sizes or layouts. Furthermore, the third rail 5 provides a stable support structure for the probe assembly 3, reducing the risk of errors or damage due to vibration or impact during testing.
[0068] Furthermore, if Figure 1 As shown, a plurality of sliders 6 are provided on the third slide rail 5 , and the sliders 6 are slidably connected to the third slide rail 5 . The probe assembly 3 includes a plurality of probe modules 31 , and the plurality of probe modules 31 are arranged at intervals, and one probe module 31 is correspondingly installed on one slider 6 .
[0069] The multiple sliders 6 refer to the sliders 6 being three, four, five or more. The sliders 6 are set corresponding to the number of the probe modules 31 , which is not specifically limited in this embodiment.
[0070] In this way, each probe module 31 is connected to the third slide rail 5 through an independent slider 6, so that each probe module 31 can be independently adjusted and controlled. This improves the flexibility and scalability of the system, and the number and layout of the probe modules 31 can be adjusted according to actual needs. In addition, the precise sliding of each slider 6 on the third slide rail 5 ensures the precise positioning of the corresponding probe module 31, which helps to improve the accuracy and reliability of the test results. In addition, multiple probe modules 31 can be tested at different positions at the same time, realizing parallel testing of multiple batteries or areas, which can improve detection efficiency and shorten the detection cycle.
[0071] In some embodiments, as Figure 1 As shown, the chemical separation and capacity device 100 also includes a third frame 7. When the second frame 2 is moved under the first frame 1, the third frame 7 is located under the second frame 2 and is movably arranged along the vertical direction Z. The third frame 7 is used to lift the tray loaded with batteries. When the third frame 7 moves back and forth along the vertical direction Z, it can drive the battery to dock or detach with the probe assembly 3.
[0072] Since the third frame 7 is movably arranged along the vertical direction Z, when the third frame 7 is placed with a battery, when the third frame 7 moves along the vertical direction Z toward the second frame 2, the battery can be driven to move along the vertical direction Z toward the probe assembly 3, thereby allowing the battery to dock with the probe assembly 3. When the battery docks with the probe assembly 3, the battery can be capacitated by the probe assembly 3. When the third frame 7 moves along the vertical direction Z toward the direction away from the second frame 2, the battery can be driven to move along the vertical direction Z toward the direction away from the second frame 2, thereby allowing the battery to detach from the probe assembly 3. When the battery detaches from the probe assembly 3, the battery capacitation can be stopped.
[0073] Like this, by the lifting of the 3rd framework 7 of automatic control, can realize the automatic docking and the disengagement of battery and probe assembly 3, improve production efficiency and reduce human error.And, when needs maintenance or replacement battery, can by the motion of controlling the 3rd framework 7 battery is taken out or put in quickly, simplify operation process and reduce maintenance time.In addition, in the process of battery and probe assembly 3 docking and disengagement, the slow lifting of the 3rd framework 7 can reduce mechanical shock and vibration, thereby protect battery and probe assembly 3 from being damaged.By controlling the motion trajectory and the speed of the 3rd framework 7, can avoid the collision or the friction between the battery and the probe assembly 3 caused by misoperation, and then guarantee the smooth carrying out of the capacity division process.
[0074] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some or all of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the scope of the technical solutions of the embodiments of the present application.
Claims
1. A chemical fractionation and content device (100), characterized in that: include: a first frame (1); a second frame (2), the second frame (2) and the first frame (1) being arranged opposite to each other with a distance therebetween along a vertical direction (Z); a probe assembly (3), the probe assembly (3) being arranged on the second frame (2); and A guide assembly (4), wherein the guide assembly (4) includes a first slide rail (41) and a first sliding groove (42), wherein the first sliding groove (42) is provided on the first frame (1), and the first sliding groove (42) extends along a first horizontal direction (X), and the first slide rail (41) includes a first connecting portion (412) and a first guide portion (411) connected to each other, wherein the first guide portion (411) is slidably engaged with the first sliding groove (42), and the first connecting portion (412) is connected to the second frame (2) so that at least a portion of the second frame (2) can be moved into or out from under the first frame (1).
2. The chemical fractionation and content-distribution device (100) according to claim 1, characterized in that: The first guiding portion (411) is perpendicular to the first connecting portion (412).
3. The chemical fractionation and content-distribution device (100) according to claim 1, characterized in that: The guide assembly (4) further includes a second slide rail (43), the second slide rail (43) including a second connecting portion (432) and a second guide portion (431) connected to each other, the second connecting portion (432) being connected to the first frame (1), and the first frame (1), the second connecting portion (432) and the second guide portion (431) being arranged to form the first sliding groove (42).
4. The chemical fractionation and content-distribution device (100) according to claim 3, characterized in that: The first guide portion (411) and the first frame (1) have a first preset gap (M) along the vertical direction (Z), and the second guide portion (431) and the second frame (2) have a second preset gap (N) along the vertical direction (Z).
5. The chemical fractionation and content-distribution device (100) according to claim 3, characterized in that: A rolling element is provided between the first slide rail (41) and the second slide rail (43) so as to achieve rolling connection between the first slide rail (41) and the second slide rail (43).
6. The chemical fractionation and volume fractionation device (100) according to claim 5, characterized in that: The rolling element includes a first rolling element (45), the first guide portion (411) includes a first surface, the first surface is opposite to the second guide portion (431) along the vertical direction (Z), and the first rolling element (45) is arranged between the first surface and the second guide portion (431).
7. The chemical fractionation and volumetric device (100) according to claim 6, characterized in that: The rolling member further includes a second rolling member (46), the first guide portion (411) further includes a second surface, the second surface is opposite to the second connecting portion (432) along a second horizontal direction (Y), and the second rolling member (46) is arranged between the second surface and the second connecting portion (432), wherein the second horizontal direction (Y) is perpendicular to the first horizontal direction (X).
8. The chemical fractionation and volume fractionation device (100) according to claim 7, characterized in that: The first frame (1) comprises a first plate (11) and a second plate (12) arranged opposite to each other along the first horizontal direction (X), a third plate (13) and a fourth plate (14) arranged opposite to each other along the second horizontal direction (Y), the first plate (11) and the second plate (12) are both connected to the third plate (13), the first plate (11) and the second plate (12) are both connected to the fourth plate (14), and the second slide rail (43) is arranged below the third plate (13) and the fourth plate (14); The second frame (2) includes a first frame (21) and a second frame (22) which are opposite to each other along the first horizontal direction (X); the first slide rail (41) is arranged above the first frame (21) and the second frame (22); the first frame (21) and the second frame (22) are connected via the first slide rail (41); the first frame (21), the second frame (22) and the first slide rail (41) are arranged to form an accommodating space; the probe assembly (3) is arranged in the accommodating space.
9. The chemical fractionation and content-storage device (100) according to claim 1, characterized in that: The chemical component storage device (100) further includes a third slide rail (5), which is arranged on the second frame (2) and extends along a second horizontal direction (Y). The probe assembly (3) is slidably connected to the third slide rail (5) so that the probe assembly (3) can move along the second horizontal direction (Y), wherein the second horizontal direction (Y) is perpendicular to the first horizontal direction (X).
10. The chemical fractionation and volume fractionation device (100) according to claim 9, characterized in that: A plurality of sliders (6) are provided on the third slide rail (5), and the sliders (6) are slidably connected to the third slide rail (5). The probe assembly (3) includes a plurality of probe modules (31), and the plurality of probe modules (31) are arranged at intervals, and one probe module (31) is correspondingly installed on one slider (6).