Cargo carrying table positioning detection mechanism

Through the scalar sales of the cargo table positioning detection mechanism and the scale mark, the problem of tilt or offset of the cargo table is solved, and fast and accurate position adjustment and assembly quality assurance is achieved.

CN223064512UActive Publication Date: 2025-07-04KUNSHAN SIWOPU INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202422105223.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2025-07-04
Estimated Expiration
2034-08-29

AI Technical Summary

Technical Problem

During the assembly of battery swap station equipment, the horizontal inclination or offset of the cargo table will affect the assembly quality, and there is a lack of effective detection tools and methods.

Method used

A cargo table positioning detection mechanism is designed, including a fixed base and position detection component, and the scalar pin and the cargo table positioning hole are inserted to observe the scalar pin slip through the scale line to determine the adjustable displacement of the cargo table.

Benefits of technology

Quickly and accurately detect and adjust the position of the cargo table to ensure assembly quality, and facilitate disassembly and suitable for a variety of scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a cargo carrying table positioning detection mechanism, which belongs to the technical field of cargo carrying table installation and detection, and specifically comprises a fixed base and a position detection assembly arranged on the fixed base, the position detection assembly comprises a connecting support and a scalar pin, the connecting support is provided with a linear long groove, and the linear long groove is provided with a positioning pin. The scalar pin slides in the linear long groove, one end of the scalar pin extends out of the linear long groove, the scalar pin is used for being positioned in a positioning hole in the cargo carrying table in an inserted mode, and scale marks used for observing the movement distance of the scalar pin are engraved on the connecting support. According to the product, the scalar pin is matched with the positioning hole in the cargo carrying table in an inserted mode, the correct displacement amount which should be moved at a time below the cargo carrying table can be determined by observing the sliding scale change of the scalar pin in the linear long groove, and therefore the cargo carrying table can be rapidly installed and used.
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Description

Technical Field

[0001] The utility model belongs to the technical field of loading platform installation detection, and particularly relates to a loading platform positioning detection mechanism. Background Technique

[0002] In the actual assembly process of the replacement power station equipment, the loading platform needs to carry materials, and usually the quality of the replacement power station equipment is relatively large. Therefore, if the problem of horizontal inclination / offset of the loading platform occurs during the use and installation process, it will directly affect the assembly quality.

[0003] Therefore, a tool that is convenient for detecting whether the loading platform has a horizontal inclination / offset and a product that can determine the inclination amount of the loading platform are needed to facilitate the correct adjustment of the position of the loading platform. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a loading platform positioning detection mechanism to solve the problems raised in the above background technique.

[0005] To achieve the above purpose, a technical solution adopted by the utility model is: a loading platform positioning detection mechanism, including a fixed base and a position detection component arranged thereon. The position detection component includes a connection bracket and a scalar pin. A linear long groove is opened on the connection bracket. The scalar pin slides in the linear long groove and one end of it extends out of the linear long groove. The scalar pin is used for insertion positioning with a positioning hole on the loading platform. Scale lines for observing the moving distance of the scalar pin are engraved on the connection bracket.

[0006] Preferably, the connection bracket includes a first reversing column and a second reversing column. A first reversing groove is opened on the fixed base. The shape of one end of the first reversing column fits the first reversing groove, and the first reversing column and the first reversing groove are in insertion fit. A second reversing groove is opened on the first reversing column. The shape of one end of the second reversing column fits the second reversing groove, and the second reversing column and the second reversing groove are in insertion fit.

[0007] Preferably, the shape of the end of the first reversing column inserted into the first reversing groove is a regular prism, and the shape of the end of the second reversing column inserted into the second reversing groove is a regular prism.

[0008] Preferably, a fixed connecting piece is arranged on the fixed base. A guiding groove is opened on the fixed base. The guiding groove buckles on the side peripheral wall of an external directional column and can be arranged along the direction of the directional column. The fixed connecting piece is used to fix the base on the directional column.

[0009] Preferably, the linear long groove is arranged at one end of the second commutation column away from the first commutation column, linearly penetrates through the second commutation column and has an opening on one side of the guiding groove, and a clamping groove is formed on the scalar pin so that the scalar pin is clamped on the linear long groove.

[0010] Preferably, a limiting block is detachably connected to the opening of the linear long groove.

[0011] Preferably, a central engraved line is engraved on the scalar pin along its length direction.

[0012] Preferably, a first fixing member for fixing the first commutation column in the first commutation groove is detachably connected to the fixed base, and a second fixing member for fixing the first commutation column in the first commutation groove is detachably connected to the second commutation column.

[0013] The beneficial effects of the present utility model: By inserting and matching the scalar pin with the positioning hole on the loading platform, and observing the scale change of the scalar pin sliding in the linear long groove, the correct displacement amount that the loading platform should move next can be determined. In this way, the installation and use of the loading platform can be quickly realized;

[0014] Since the first commutation column and the first commutation groove are in an insertion fit, and the second commutation column and the second commutation groove are in an insertion fit, the disassembly between various parts can be facilitated, and the product can be conveniently tidied up;

[0015] Among them, by setting the shape of the connection end of the commutation column and the commutation groove, the product can be effectively applied to more scenarios;

[0016] Among them, the cooperation between the guiding groove and the external positioning post can play a role in guiding and limiting, facilitating the movement and fixation of the fixed base. Description of the Drawings

[0017] Figure 1 is a schematic diagram of the connection relationship and positional relationship among the product, the loading platform, and the positioning post in the present utility model;

[0018] Figure 2 is a schematic structural diagram of the present utility model;

[0019] Figure 3 is an exploded view of the present utility model;

[0020] In the figure: 1. Loading platform; 2. Directional column; 3. Fixed base; 31. Fixed connecting piece; 4. Connecting bracket; 5. Scalar pin; 6. Limiting block; 7. First fixing member; 8. Second fixing member; 41. First commutation column; 42. Second commutation column; 51. Center line. Detailed Embodiments

[0021] The following elaborates on the preferred embodiments of the present utility model in conjunction with the accompanying drawings, so that the advantages and features of the present utility model can be more easily understood by those skilled in the art, thereby making the protection scope of the present utility model more clearly defined.

[0022] Embodiment:

[0023] Refer to Figure 2 , a cargo platform positioning detection mechanism, including a fixed base 3 and a position detection component arranged thereon. The position detection component includes a connecting bracket 4 and a scalar pin 5. A linear long groove is provided on the connecting bracket 4. The scalar pin 5 slides in the linear long groove and one end thereof extends out of the linear long groove. The scalar pin 5 is used for insertion positioning with a positioning hole on the cargo platform 1. Scale lines for observing the moving distance of the scalar pin 5 are engraved on the connecting bracket 4. A central scale line is engraved on the scalar pin 5 in its length direction to facilitate determining the moving distance of the scalar pin 5. The positioning hole is a self - contained structural feature on the cargo platform 1 for cooperating with the scalar pin 5 of this solution.

[0024] Among them, refer to Figure 1 , a fixed connecting piece 31 is provided on the fixed base 3. A guiding groove is provided on the fixed base 3. The guiding groove is buckled on the peripheral wall of an external orienting column 2 and can be arranged along the direction of the orienting column 2. The fixed connecting piece 31 is used to fix the fixed base 3 on the orienting column 2. The external orienting column 2 mentioned in this paragraph refers to an external fixing structure for cooperating with the fixed base 3. In this embodiment, the orienting column 2 is a square beam, so that the guiding and limiting effects achieved by cooperating with the guiding groove can be satisfied. Among them, by selecting an appropriate material for the square beam, the fixed connecting piece 31 can be a magnet. Of course, the fixed connecting piece 31 can also be a hoop or a structure with a similar function.

[0025] Among them, refer to Figure 3, the connecting bracket 4 includes a first reversing column 41 and a second reversing column 42. A first reversing groove is formed on the fixed base 3. One end of the first reversing column 41 is shaped to fit the first reversing groove, and the first reversing column 41 and the first reversing groove are in plug-in fit. A second reversing groove is formed on the reversing column. One end of the second reversing column 42 is shaped to fit the second reversing groove, and the second reversing column 42 and the second reversing groove are in plug-in fit. Among them, a first fixing member 7 for fixing the first reversing column 41 in the first reversing groove is detachably connected to the fixed base 3. A second fixing member 8 for fixing the first reversing column 41 in the first reversing groove is detachably connected to the second reversing column 42. In this embodiment, the first fixing member 7 and the second fixing member 8 can be bolts respectively penetrating the first reversing groove and the second reversing groove. Preferably, the end of the first reversing column 41 inserted into the first reversing groove is in the shape of a regular prism, and the end of the second reversing column 42 inserted into the second reversing groove is in the shape of a regular prism. For example, a regular triangular prism can achieve a 120-degree angle change of the second reversing column 42, and a regular quadrangular prism can achieve a 90-degree angle change of the second reversing column 42.

[0026] Refer to Figure 2 , Figure 3 , among which, the linear long groove is arranged at the end of the second reversing column 42 away from the first reversing column 41. The linear long groove penetrates through the second reversing column 42 and has an opening on one side of the guiding groove. A clamping groove is formed on the scalar pin 5 so that the scalar pin 5 is clamped on the linear long groove. For example, a conventional shape is that the cross-section is in the shape of "I"; among which, a limiting block 6 is detachably connected to the opening of the linear long groove. In this embodiment, the connection between the limiting block 6 and the second reversing column 42 can be realized by bolts.

[0027] Working process and principle:

[0028] When using the product in this solution, the fixed base 3 is installed on the external orientation column 2 according to the use requirements, fixed after adjusting the position, and then the position of the loading platform 1 is adjusted to achieve the alignment and insertion of the scalar pin 5 and the positioning hole. At this time, read the reading of the scalar pin 5 on the scale line, and the displacement amount that the loading platform 1 should be adjusted can be determined through the difference from the reference reading. The preferred operation method is to select two of these products to cooperate with the loading platform 1 including at least two positioning holes to determine.

[0029] The above are only the embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structural transformation made by using the description and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be included in the patent protection scope of the present invention by the same token.

Claims

1. A loading platform positioning and detecting mechanism, characterized in that: It includes a fixed base (3) and a position detection component arranged thereon. The position detection component includes a connecting bracket (4) and a scalar pin (5). A linear long groove is formed on the connecting bracket (4). The scalar pin (5) slides in the linear long groove and one end thereof extends out of the linear long groove. The scalar pin (5) is used for plug-in positioning with a positioning hole on the loading platform (1). Scale lines for observing the moving distance of the scalar pin (5) are engraved on the connecting bracket (4).

2. The positioning and detection mechanism for a loading platform according to claim 1, characterized in that: The connecting bracket (4) includes a first reversing column (41) and a second reversing column (42). A first reversing groove is formed on the fixed base (3). The shape of one end of the first reversing column (41) fits with the first reversing groove, and the first reversing column (41) and the first reversing groove are in plug-in fit. A second reversing groove is formed on the reversing column. The shape of one end of the second reversing column (42) fits with the second reversing groove, and the second reversing column (42) and the second reversing groove are in plug-in fit.

3. The positioning and detection mechanism for the loading platform according to claim 2, wherein: The shape of the end of the first reversing column (41) inserted into the first reversing groove is a regular prism. The shape of the end of the second reversing column (42) inserted into the second reversing groove is a regular prism.

4. A loading platform positioning and detecting mechanism according to claim 3, characterized in that: A fixed connecting piece (31) is arranged on the fixed base (3). A guiding groove is formed on the fixed base (3). The guiding groove is buckled on the side peripheral wall of an external orienting column (2) and can be arranged along the setting direction of the orienting column (2). The fixed connecting piece (31) is used for fixing the base on the orienting column (2).

5. A loading platform positioning and detecting mechanism according to claim 4, characterized in that: The linear long groove is arranged at one end of the second reversing column (42) far from the first reversing column (41). The linear long groove penetrates through the second reversing column (42) and one side of the guiding groove is open. A clamping groove is formed on the scalar pin (5) so that the scalar pin (5) is clamped on the linear long groove.

6. The positioning and detection mechanism for the loading platform according to claim 5, characterized in that: A limiting block (6) is detachably connected to the opening of the linear long groove.

7. The positioning and detection mechanism for the loading platform according to claim 6, characterized in that: Center scale lines are engraved on the scalar pin (5) in its length direction.

8. A loading platform positioning and detecting mechanism according to claim 7, characterized in that: A first fixing piece (7) for fixing the first reversing column (41) in the first reversing groove is detachably connected to the fixed base (3). A second fixing piece (8) for fixing the first reversing column (41) in the first reversing groove is detachably connected to the second reversing column (42).