Visual battery standing and accommodating cavity

By introducing visualization components and sealing structures into the battery settling device, the problem of existing devices being unable to monitor battery status in real time is solved, enabling real-time monitoring and sealing of the battery settling process, thereby improving product qualification rate and device reliability.

CN224138245UActive Publication Date: 2026-04-17SHENZHEN XINHE TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN XINHE TECHNOLOGY CO LTD
Filing Date
2025-03-28
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing battery quiescent devices cannot monitor battery status in real time, making it difficult to detect abnormalities in a timely manner and affecting product qualification rates.

Method used

Design a visualized battery settling chamber, comprising a cylindrical substrate, a light-transmitting element, and an annular cover. Real-time monitoring of the battery settling process is achieved through an observation path, and the observation port is sealed by a sealing element.

Benefits of technology

This technology enables real-time monitoring of the battery resting process, timely detection of abnormal conditions, improved product quality pass rate, and ensured the normal operation of processes such as vacuuming, thereby enhancing the reliability of the device.

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Abstract

The utility model provides a visual battery standing accommodating cavity. The visual battery standing accommodating cavity comprises an accommodating cavity main body and a visual assembly arranged on the accommodating cavity main body, the visual assembly comprises a cylindrical base body, a light-transmitting part, a sealing part and an annular cover plate. An observation opening is formed in the cavity wall of the accommodating cavity main body; one end of the cylindrical base body is connected with the edge of the observation opening, and the other end of the cylindrical base body is connected with the annular cover plate, so that an observation path is formed; the light-transmitting part is arranged in the cylindrical base body and located on the observation path, an installation groove is formed in the inner wall of the side, close to the annular cover plate, of the cylindrical base body, the edge of the light-transmitting part is embedded in the installation groove, and the two sides of the edge of the light-transmitting part abut against the groove wall of the installation groove and the annular cover plate through sealing parts respectively so that sealing between the observation opening and the outside can be achieved. According to the utility model, the standing condition of the battery in the cavity can be monitored in real time by an operator, and the operator can discover problems in time and quickly deal with the problems, so that the quality abnormity of products is reduced, and the qualified rate of the products is improved.
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Description

Technical Field

[0001] This utility model relates to the field of battery static storage technology, specifically to a visualized battery static storage cavity. Background Technology

[0002] With the continuous growth of energy demand in modern society, batteries, as important energy storage devices, are widely used in many fields such as electric vehicles, energy storage power stations, and consumer electronics. Battery settling is an important step in the battery production process. Batteries need to be allowed to settle to further stabilize their internal chemical composition, thereby ensuring the consistency and stability of battery performance.

[0003] However, existing battery settling devices still have some shortcomings. For example, most current battery settling devices only provide storage space for batteries and do not allow operators to monitor the status of the batteries inside the device in real time. This makes it difficult for operators to detect and handle abnormalities that occur during the battery settling process, resulting in a low product yield. Utility Model Content

[0004] To overcome the shortcomings of the prior art, this utility model provides a visualized battery storage cavity, allowing operators to monitor the battery's storage status in real time, thereby improving the product quality pass rate. The specific technical solution is as follows:

[0005] The present invention provides a visualized battery static storage cavity, including a storage cavity body for storing batteries to be static and at least one set of visualized components disposed on the storage cavity body;

[0006] The visualization component includes a cylindrical substrate, a light-transmitting element, a sealing element, and an annular cover plate; an observation port is provided on the cavity wall of the receiving cavity body; the cylindrical substrate is located outside the receiving cavity body, with one end connected to the edge of the observation port and the other end connected to the annular cover plate, so as to form an observation path that passes through the annular cover plate, the cylindrical substrate, and the observation port in sequence;

[0007] The light-transmitting element is disposed in the cylindrical substrate and located on the observation path. An installation groove is formed on the inner wall of the cylindrical substrate near the annular cover plate. The edge of the light-transmitting element is embedded in the installation groove, and the two sides of the edge of the light-transmitting element abut against the groove wall of the installation groove and the annular cover plate respectively through the sealing element, so as to achieve the sealing between the observation port and the outside.

[0008] In one specific embodiment, a plurality of first abutment blocks are circumferentially spaced on the outer wall of the cylindrical substrate near the annular cover plate. The outer edge of the annular cover plate extends toward the main body of the receiving cavity to form a surrounding portion that surrounds the cylindrical substrate. A plurality of second abutment blocks are spaced on the inner edge of the surrounding portion. The plurality of second abutment blocks abut against the side of the plurality of first abutment blocks away from the annular cover plate in a corresponding manner.

[0009] In one specific embodiment, a fixing groove is formed on the end face of the cylindrical base near the annular cover plate, and a fixing hole corresponding to the fixing groove is formed on the annular cover plate. A fixing member is inserted through the fixing hole, one end of the fixing member abuts against the side of the annular cover plate away from the cylindrical base, and the other end is embedded in the fixing groove to achieve a fixed connection between the cylindrical base and the annular cover plate.

[0010] In one specific embodiment, the number of visualization components is 2, and the two sets of visualization components are arranged on opposite sides of the receiving cavity body, and the observation path formed by the two sets of visualization components is located on the same axis.

[0011] In one specific embodiment, the light-transmitting element includes tempered glass with its edge embedded in the mounting groove, and the sealing element includes a first sealing ring and a second sealing ring; one side of the edge of the tempered glass abuts against the groove wall of the mounting groove through the first sealing ring, and the other side of the edge of the tempered glass abuts against the inner edge of the annular cover plate through the second sealing ring.

[0012] In one specific embodiment, both the first sealing ring and the second sealing ring include any one of fluororubber sealing ring, silicone rubber sealing ring, hydrogenated nitrile rubber sealing ring and EPDM rubber sealing ring.

[0013] And / or, the diameter of the tempered glass is between 140mm and 160mm, and the thickness of the tempered glass is between 25mm and 35mm.

[0014] In one specific embodiment, the bottom of the receiving cavity body is provided with a notch, and the edge of the notch is provided with a plurality of locking elements at intervals along the circumferential direction. The receiving cavity body is used to connect to an external support base through the locking elements.

[0015] In one specific embodiment, the receiving cavity body is provided with a connecting pipe, one end of which is connected to the interior of the receiving cavity body, and the other end is used to connect to an external pressure gauge.

[0016] In one specific embodiment, the receiving cavity body is further provided with mounting ears and / or connecting platforms for connecting to external objects.

[0017] In one specific embodiment, the cylindrical substrate and the receiving cavity body are integrally formed.

[0018] This utility model has at least the following beneficial effects:

[0019] This invention provides a visualized battery settling chamber, allowing operators to observe the interior of the chamber through a light-transmitting element along an observation path. This enables real-time monitoring of the battery settling process within the chamber, allowing operators to promptly detect any abnormalities and take appropriate action, thus ensuring a high battery quality pass rate. Furthermore, the light-transmitting element, in conjunction with a sealing element, abuts against the wall of the mounting groove and the annular cover, achieving a good seal between the observation port and the outside environment. This ensures that processes such as vacuuming during battery settling can proceed normally and stably, resulting in excellent device reliability. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0022] Figure 2 This is a partial exploded view of the overall structure of this utility model;

[0023] Figure 3 for Figure 2 Detail A in the diagram;

[0024] Figure 4 This is a cross-sectional schematic diagram of the overall structure of this utility model.

[0025] Figure label:

[0026] 1-The main body of the receiving cavity; 11-Observation port; 12-Notch; 2-Visualization component; 21-Cylindrical base; 211-Mounting groove; 212-First abutting block; 213-Fixing groove; 22-Light-transmitting element; 23-Sealing element; 231-First sealing ring; 232-Second sealing ring; 24-Annular cover plate; 241-Enclosing part; 242-Second abutting block; 243-Fixing hole; 3-Locking element; 4-Connecting pipe; 5-Mounting ear; 51-U-shaped hole; 6-Connecting platform; 61-Screw hole. Detailed Implementation

[0027] Various embodiments of the present invention will be described more fully below. The present invention may have various embodiments, and adjustments and changes may be made therein. However, it should be understood that there is no intention to limit the various embodiments of the present invention to the specific embodiments disclosed herein, but rather the present invention should be understood to cover all adjustments, equivalents, and / or alternatives falling within the spirit and scope of the various embodiments of the present invention.

[0028] In the following, the terms “comprising” or “may include”, which may be used in various embodiments of the present invention, indicate the presence of the disclosed functions, operations, or elements, and do not limit the addition of one or more functions, operations, or elements. Furthermore, as used in various embodiments of the present invention, the terms “comprising,” “having,” and their cognates are intended only to indicate a specific feature, number, step, operation, element, component, or combination of the foregoing, and should not be construed as primarily excluding the presence of one or more other features, numbers, steps, operations, elements, components, or combinations of the foregoing, or the possibility of adding one or more combinations of features, numbers, steps, operations, elements, components, or combinations of the foregoing.

[0029] In various embodiments of this utility model, the expression "or" or "at least one of A and / or B" includes any combination or all combinations of the words listed simultaneously. For example, the expression "A or B" or "at least one of A and / or B" may include A, may include B, or may include both A and B.

[0030] The terms used in the various embodiments of this utility model (such as "first," "second," etc.) may modify various constituent elements in the various embodiments, but do not limit the corresponding constituent elements. For example, the above terms do not limit the order and / or importance of the elements. The above terms are only used for the purpose of distinguishing one element from other elements. For example, a first user device and a second user device refer to different user devices, although both are user devices. For example, without departing from the scope of the various embodiments of this utility model, a first element may be referred to as a second element, and similarly, a second element may be referred to as a first element.

[0031] It should be noted that, in this utility model, unless otherwise explicitly specified and defined, terms such as "installation," "connection," and "fixation" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0032] Please refer to Figures 1 to 4The present invention provides a visualized battery storage cavity, including a storage cavity body 1 for storing batteries to be stored and at least one set of visualized components 2 disposed on the storage cavity body 1.

[0033] Specifically, please refer to Figures 2 to 4 The visualization component 2 includes a cylindrical substrate 21, a light-transmitting element 22, a sealing element 23, and an annular cover plate 24. An observation port 11 is provided on the cavity wall of the receiving cavity body 1. The cylindrical substrate 21 is located outside the receiving cavity body 1, with one end connected to the edge of the observation port 11 and the other end connected to the annular cover plate 24, forming an observation path that sequentially passes through the annular cover plate 24, the cylindrical substrate 21, and the observation port 11.

[0034] The light-transmitting element 22 is disposed in the cylindrical base 21 and located on the observation path. An installation groove 211 is provided on the inner wall of the cylindrical base 21 near the annular cover plate 24. The edge of the light-transmitting element 22 is embedded in the installation groove 211, and the two sides of the edge of the light-transmitting element 22 abut against the groove wall of the installation groove 211 and the annular cover plate 24 respectively through the sealing element 23, so as to achieve the sealing between the observation port 11 and the outside world.

[0035] Understandably, in actual use, operators can observe the internal condition of the receiving cavity body 1 through the light-transmitting element 22 along the observation path, thereby monitoring the battery's settling process inside the receiving cavity body 1 in real time. Operators can promptly detect any abnormal states that occur during battery settling and take corresponding measures, thus ensuring the battery's quality pass rate. In addition, the light-transmitting element 22 of this utility model, in cooperation with the sealing element 23, abuts against the groove wall of the mounting groove 211 and the annular cover plate 24 respectively, achieving a good seal between the observation port 11 and the outside world. This ensures that processes such as vacuuming during battery settling can be carried out normally and stably, resulting in excellent device reliability.

[0036] For example, please refer to Figure 3 In some cases, the cylindrical base 21 can be cylindrical, the light-transmitting element 22 is disc-shaped and adapted to the cylindrical base 21, and the through hole in the center of the annular cover 24 is circular, thus ultimately providing the operator with a circular visualization window. In other cases, the cross-section of the cylindrical base 21 can also be rectangular, trapezoidal, or other arbitrary polygons. The structures of the light-transmitting element 22 and the annular cover 24 can be adapted to the structure of the cylindrical base 21 to provide the operator with visualization windows of other shapes. This utility model does not specifically limit this.

[0037] Preferably, the cylindrical base 21 is integrally formed with the cavity body 1 to ensure that the overall strength of the device can withstand the pressure environment during battery resting. Specifically, the cylindrical base 21 can be integrally formed with the cavity body 1 by welding. Both the cylindrical base 21 and the cavity body 1 can be made of stainless steel.

[0038] Preferably, please refer to Figure 4 The main body 1 of the present invention is provided with two sets of visualization components 2. The two sets of visualization components 2 are located on opposite sides of the main body 1 of the cavity, and the observation paths formed by the two sets of visualization components 2 are located on the same axis.

[0039] In one specific embodiment, please refer to Figure 3 and Figure 4 On the outer wall of the cylindrical base 21 near the annular cover plate 24, a plurality of first abutting blocks 212 are arranged circumferentially. The outer edge of the annular cover plate 24 extends toward the receiving cavity body 1 to form a surrounding portion 241 that surrounds the cylindrical base 21. A plurality of second abutting blocks 242 are arranged at intervals on the inner edge of the surrounding portion 241. The plurality of second abutting blocks 242 abut against the side of the plurality of first abutting blocks 212 away from the annular cover plate 24.

[0040] Specifically, in this embodiment, based on the connection between the cylindrical base 21 and the annular cover plate 24, the cylindrical base 21 and the annular cover plate 24 can be further prevented from separating by the second abutting block 242 abutting against the side of the first abutting block 212 away from the annular cover plate 24, thereby improving the connection stability between the cylindrical base 21 and the annular cover plate 24.

[0041] In practical applications, when installing the annular cover plate 24, the second abutting block 242 of the annular cover plate 24 is first staggered with the first abutting block 212 of the cylindrical base 21. The annular cover plate 24 is then pushed toward the cylindrical base 21 so that each second abutting block 242 passes through the gap between two adjacent first abutting blocks 212. After passing through, the annular cover plate 24 is rotated so that the second abutting block 242 changes from a staggered state with the first abutting block 212 to a corresponding state, thereby achieving the abutment between the first abutting block 212 and the second abutting block 242.

[0042] In one specific embodiment, please refer to Figure 3 A fixing groove 213 is provided on the end face of the cylindrical base 21 near the annular cover plate 24. A fixing hole 243 corresponding to the fixing groove 213 is provided on the annular cover plate 24. A fixing member (not shown in the figure) passes through the fixing hole 243. One end of the fixing member abuts against the side of the annular cover plate 24 away from the cylindrical base 21, and the other end is embedded in the fixing groove 213 to achieve a fixed connection between the cylindrical base 21 and the annular cover plate 24.

[0043] For example, there can be multiple fixing grooves 213 and multiple fixing holes 243. Multiple fixing grooves 213 can be opened at intervals along the annular direction on the end face of the cylindrical base 21 near the annular cover plate 24, and multiple fixing holes 243 are opened at intervals along the annular direction on the annular cover plate 24. Specifically, the fastener can be a screw (not shown in the figure). The screw passes through the fixing hole 243, with one end abutting against the side of the annular cover plate 24 away from the cylindrical base 21, and the other end embedded in the fixing groove 213 and threadedly connected to the inner wall of the fixing groove 213, thereby realizing the fixed connection between the cylindrical base 21 and the annular cover plate 24.

[0044] In the embodiment with the first abutment block 212 and the second abutment block 242, the plurality of fixing holes 243 can be configured to correspond one-to-one with the plurality of fixing grooves 213 on the cylindrical base 21 when the annular cover plate 24 rotates to the point where the first abutment block 212 abuts against the second abutment block 242. This allows the two connection and fixing methods—fixed member connection and abutment block abutment—to be synchronized, ensuring a stable connection.

[0045] In one specific embodiment, the light-transmitting element 22 may include tempered glass with its edge embedded in the mounting groove 211, and the sealing element 23 may include a first sealing ring 231 and a second sealing ring 232. Specifically, one side of the edge of the tempered glass abuts against the groove wall of the mounting groove 211 through the first sealing ring 231, and the other side of the edge of the tempered glass abuts against the inner edge of the annular cover plate 24 through the second sealing ring 232.

[0046] In this embodiment, since the light-transmitting element 22 is made of tempered glass, it ensures good light transmission performance while also preventing damage from pressure, further improving the reliability of the device. Preferably, the tempered glass is configured to withstand a gas pressure of at least 3 MPa.

[0047] In this embodiment, both the first sealing ring 231 and the second sealing ring 232 may be any one of fluororubber sealing rings, silicone rubber sealing rings, hydrogenated nitrile rubber sealing rings, and EPDM rubber sealing rings. Therefore, the first sealing ring 231 and the second sealing ring 232 can have good corrosion resistance to adapt to the environment during battery quilting.

[0048] It should be noted that the sealing rings made of the above materials are only preferred options in this embodiment. Sealing rings made of other corrosion-resistant materials may also be used in this embodiment.

[0049] Preferably, both the first sealing ring 231 and the second sealing ring 232 are fluororubber sealing rings.

[0050] Furthermore, in this embodiment, the diameter of the tempered glass can be set between 140mm and 160mm, and the thickness of the tempered glass can be set between 25mm and 35mm. For example, the diameter of the tempered glass is 150mm and the thickness is 30mm to meet the requirement of withstanding a gas pressure of at least 3MPa.

[0051] In one specific embodiment, please refer to Figure 1 The bottom of the receiving cavity body 1 has a notch 12, and multiple locking elements 3 are spaced apart along the edge of the notch 12 in a circumferential direction. The receiving cavity body 1 is used to connect to an external support base via the locking elements 3. Specifically, in practical applications, the bottom of the receiving cavity body 1 can be connected to an external support base via the locking elements 3, thereby forming a sealed space inside the receiving cavity body 1 for accommodating the battery to be placed. The locking elements 3 can specifically be... Figure 1 The bump shown.

[0052] In one specific embodiment, a connecting pipe 4 is provided on the receiving cavity body 1. One end of the connecting pipe 4 is connected to the inside of the receiving cavity body 1, and the other end is used to connect to an external pressure gauge. Thus, this embodiment can connect to an external pressure gauge through the connecting pipe 4 to monitor the air pressure and vacuum level inside the receiving cavity body 1 in real time, so as to ensure the stable static placement of the battery.

[0053] For example, there can be multiple connecting tubes 4. Furthermore, the connecting tubes 4 can also be used to allow other monitoring devices to extend into the cavity body 1, including but not limited to temperature sensors, humidity sensors, etc.

[0054] In one specific embodiment, please refer again to Figure 1 The cavity body 1 is also provided with mounting ears 5 and / or connecting platforms 6 for connecting to external objects.

[0055] Specifically, the receiving cavity body 1 can be connected to an external lifting device (not shown in the figure) via mounting ears 5 and / or connecting platform 6. For example, the mounting ear 5 may have a horizontal U-shaped hole 51, which can be engaged with a screw to fix the piston rod of the external lifting cylinder, thereby enabling the external lifting cylinder to drive the receiving cavity body 1 to rise and fall. Alternatively, the connecting platform 6 may have a screw hole 61, through which other connecting components can be installed to connect to the external lifting device.

[0056] Preferably, the mounting ear 5, the connecting platform 6, and the connecting tube 4 described in the above embodiments are all integrally formed with the receiving cavity body 1, for example, by welding, so as to ensure the overall strength of the device.

[0057] In summary, this utility model provides a visualized battery settling chamber, allowing operators to observe the interior of the chamber through a light-transmitting element along an observation path. This enables real-time monitoring of the battery settling process within the chamber, allowing operators to promptly detect any abnormalities and take appropriate action, thereby ensuring a high battery quality pass rate. Furthermore, the light-transmitting element, in conjunction with a sealing element, abuts against the wall of the mounting groove and the annular cover, achieving a good seal between the observation port and the outside environment. This ensures that processes such as vacuuming during battery settling can proceed normally and stably, resulting in excellent device reliability.

[0058] Those skilled in the art will understand that the accompanying drawings are merely schematic diagrams of a preferred embodiment, and the modules or processes shown in the drawings are not necessarily essential for implementing this utility model.

[0059] Those skilled in the art will understand that the modules in the apparatus of the implementation scenario can be distributed within the apparatus of the implementation scenario as described, or they can be located in one or more apparatuses different from this implementation scenario, with corresponding changes. The modules of the above-described implementation scenario can be combined into one module, or they can be further divided into multiple sub-modules.

[0060] The serial numbers of the above-mentioned utility models are for descriptive purposes only and do not represent the superiority or inferiority of the implementation scenarios.

[0061] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A visualized battery resting containment cavity, characterized in that, It includes a receiving cavity body for accommodating batteries to be placed in a static state and at least one set of visualization components disposed on the receiving cavity body; The visualization component includes a cylindrical substrate, a light-transmitting element, a sealing element, and an annular cover plate; an observation port is provided on the cavity wall of the receiving cavity body; the cylindrical substrate is located outside the receiving cavity body, with one end connected to the edge of the observation port and the other end connected to the annular cover plate, so as to form an observation path that passes through the annular cover plate, the cylindrical substrate, and the observation port in sequence; The light-transmitting element is disposed in the cylindrical substrate and located on the observation path. An installation groove is formed on the inner wall of the cylindrical substrate near the annular cover plate. The edge of the light-transmitting element is embedded in the installation groove, and the two sides of the edge of the light-transmitting element abut against the groove wall of the installation groove and the annular cover plate respectively through the sealing element, so as to achieve the sealing between the observation port and the outside.

2. The visualized battery rest holding cavity according to claim 1, wherein, Multiple first abutment blocks are circumferentially spaced on the outer wall of the cylindrical substrate near the annular cover plate. The outer edge of the annular cover plate extends toward the main body of the receiving cavity to form a surrounding portion that surrounds the cylindrical substrate. Multiple second abutment blocks are spaced on the inner edge of the surrounding portion. The multiple second abutment blocks abut against the side of the multiple first abutment blocks away from the annular cover plate in a corresponding manner.

3. The visualized battery rest holding cavity according to claim 1, wherein, A fixing groove is provided on the end face of the cylindrical base near the annular cover plate. A fixing hole corresponding to the fixing groove is provided on the annular cover plate. A fixing member is inserted through the fixing hole. One end of the fixing member abuts against the side of the annular cover plate away from the cylindrical base, and the other end is embedded in the fixing groove to achieve a fixed connection between the cylindrical base and the annular cover plate.

4. The visualized battery rest stand cavity according to claim 1, wherein, The number of visualization components is 2, and the two sets of visualization components are arranged on opposite sides of the main body of the receiving cavity, and the observation path formed by the two sets of visualization components is located on the same axis.

5. The visual battery rest stand of claim 1, wherein, The light-transmitting element includes tempered glass with its edge embedded in the mounting groove, and the sealing element includes a first sealing ring and a second sealing ring; one side of the edge of the tempered glass abuts against the groove wall of the mounting groove through the first sealing ring, and the other side of the edge of the tempered glass abuts against the inner edge of the annular cover plate through the second sealing ring.

6. The visualized battery rest holding cavity according to claim 5, wherein, Both the first sealing ring and the second sealing ring include any one of fluororubber sealing ring, silicone rubber sealing ring, hydrogenated nitrile rubber sealing ring and EPDM rubber sealing ring; And / or, the diameter of the tempered glass is between 140mm and 160mm, and the thickness of the tempered glass is between 25mm and 35mm.

7. The visual battery rest stand of claim 1, wherein, The bottom of the receiving cavity body is provided with a notch, and multiple locking elements are provided at intervals along the edge of the notch in a circumferential direction. The receiving cavity body is used to connect to an external support base through the locking elements.

8. The visual battery rest stand of claim 1, wherein, The main body of the receiving cavity is provided with a connecting pipe, one end of which is connected to the inside of the main body of the receiving cavity, and the other end is used to connect to an external pressure gauge.

9. The visual battery rest stand of claim 1, wherein, The main body of the receiving cavity is also provided with mounting ears and / or connecting platforms for connecting with external objects.

10. The visual battery rest stand of claim 1, wherein, The cylindrical base is integrally formed with the main body of the receiving cavity.