Industrial CT sample layering and distinguishing equipment

By designing an industrial CT sample layering and differentiation device, and utilizing adjustment blocks and locking structures to achieve layered storage and labeling of samples, the problem of sample confusion and difficulty in identification is solved, and storage efficiency is improved.

CN223495079UActive Publication Date: 2025-10-31HANGZHOU LIGHT & SHADOW INTELLIGENCE TECH CO LTD
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Patent Information

Application Number
CN202423181748.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-10-31
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

When storing different industrial CT samples in existing storage cabinets, the samples have different physical and chemical properties and are not stored separately, which can easily lead to sample confusion and make it difficult to accurately identify and distinguish them.

Method used

An industrial CT sample layering and differentiation device was designed, including a cabinet, a support assembly, an adjustment block, a connecting groove, and a locking structure. The adjustment block slides in the adjustment groove to drive the partition plate to adjust the area, and is fixed by the locking structure. Combined with the label plate, the sample is differentiated and labeled.

Benefits of technology

It enables effective separation and differentiation of different industrial CT samples, ensuring that samples are stored in appropriate areas, making it easy for managers to quickly find the required samples.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an industrial CT sample layering distinguishing equipment, including cabinet body, support subassembly, adjusting block, communication groove and locking structure, cabinet door is rotatingly connected to the left side and right side of cabinet body front face through rotating shaft respectively, the inner wall of cabinet body is provided with three sets of support subassembly, support subassembly includes the support plate, the top of support plate front end is provided with adjusting groove, and the top of support plate front end is provided with adjusting block, communication groove, locking structure. The storage cabinet comprises a cabinet body, a supporting assembly, an adjusting groove is formed in the cabinet body, an adjusting block is slidably connected to the inner wall of the adjusting groove, a communicating groove is formed in the inner wall of the adjusting block, a partition plate is fixedly connected to the top of the adjusting block, and a locking structure is arranged on the inner wall of the communicating groove. In the prior art, different industrial CT samples may have different physical and chemical properties, and if the stored samples are not separately stored, the samples are easily confused and are difficult to accurately identify and distinguish.
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Description

Technical Field

[0001] This utility model belongs to the field of industrial CT sample storage technology, and in particular relates to an industrial CT sample layering and differentiation device. Background Technology

[0002] Industrial CT, short for Industrial Computed Tomography, is a high-precision, non-destructive testing technology. It uses radiation sources such as X-rays or gamma rays to penetrate objects and reconstructs their internal structure using computer technology. Industrial CT can handle a wide range of sample types, from metallic to non-metallic materials, as well as various new ceramics and composite materials. Samples for industrial CT are typically stored in storage cabinets. These cabinets usually have a multi-layered structure, allowing different types of samples to be stored separately, ensuring that each sample has a corresponding storage location. This helps managers quickly locate the required samples and improves work efficiency.

[0003] The problem with existing technology is that when storing samples in storage cabinets, different industrial CT samples may have different physical and chemical properties. If the samples are not stored separately, they are easily confused and difficult to accurately identify and distinguish. Utility Model Content

[0004] To address the problems existing in the prior art, this utility model provides an industrial CT sample layering and differentiation device, which has the advantage of adjusting the placement area to separate and differentiate the stored samples. This solves the problem that when storing samples in existing storage cabinets, different industrial CT samples may have different physical and chemical properties, and if the stored samples are not separated, it is easy to cause sample confusion and make it difficult to accurately identify and differentiate them.

[0005] This utility model is implemented as follows: an industrial CT sample layering and differentiation device includes a cabinet, support components, adjusting blocks, a connecting groove, and a locking structure. Cabinet doors are rotatably connected to the left and right sides of the front of the cabinet via rotating shafts. Three sets of support components are provided on the inner wall of the cabinet. Each support component includes a support plate, which is fixedly connected to the inner wall of the cabinet. An adjusting groove is formed at the top of the front end of the support plate. Several fixing grooves are equidistantly formed on the rear side of the inner wall of the adjusting groove. An adjusting block is slidably connected to the inner wall of the adjusting groove. A connecting groove is provided on the inner wall of the adjusting block. A partition plate is fixedly connected to the top of the adjusting block. A support arm is fixedly connected to the front of the adjusting block. An extension arm is rotatably connected to the front of the support arm via a rotating shaft. A label plate is movably connected to the front of the extension arm. Two openings are formed on the back of the adjusting block. Two smooth rods are fixedly connected to the front and rear sides of the inner wall of the connecting groove. A locking structure is provided on the inner wall of the connecting groove.

[0006] In a preferred embodiment of this invention, the locking structure includes a linkage arm disposed on the front of the adjusting block. A pusher is fixedly connected to the front of the linkage arm, and the rear end of the linkage arm extends through the inner wall of the connecting groove. A linkage rod is fixedly connected to the rear end of the linkage arm. By setting the linkage arm, when the pusher is pressed backward, it can drive the linkage arm to slide backward on the front of the adjusting block. Thus, the sliding linkage arm can simultaneously drive the movement of the linkage rod.

[0007] In a preferred embodiment of this utility model, the linkage rod is disposed on the inner wall of the connecting groove, the top of the linkage rod is fixedly connected to the bottom of the rear end of the linkage arm, and two driven arms are sleeved on the outer surface of the linkage rod. By setting the linkage rod, the linkage rod can be driven by the linkage arm to move backward in the connecting groove, and the linkage rod moving in this way can drive the two driven arms to rotate relative to each other.

[0008] In a preferred embodiment of this invention, the two driven arms are respectively disposed on the inner wall of the connecting groove, and are staggered vertically. The ends of the two driven arms that are far apart from each other are rotatably connected to the upper and lower sides of the inner wall of the connecting groove via a rotating shaft. The surfaces of the ends of the two driven arms that are close to each other are respectively provided with linkage grooves. The inner walls of the two linkage grooves that are close to each other are respectively attached to the outer surface of the linkage rod. The sides of the two driven arms that are far apart from each other are respectively fixedly connected with movable push arms. By setting the driven arms, the linkage rod moves backward and simultaneously squeezes the inner walls of the two linkage grooves, thereby driving the two driven arms to rotate relative to each other in a staggered manner. Thus, the two driven arms rotate simultaneously and drive the two movable push arms to rotate synchronously.

[0009] In a preferred embodiment of this invention, the ends of the two movable push arms that are close to each other are fixedly connected to the ends of the two driven arms that are far apart from each other. The tops of the two movable push arms are respectively provided with openings, and the fronts of the two movable push arms are respectively provided with movable moving arms. By providing movable push arms, the two movable push arms can pass through the openings to offset the two smooth rods during rotation, and push the two movable moving arms respectively, thereby driving the two movable moving arms to move forward.

[0010] In a preferred embodiment of this invention, the two movable arms are slidably connected to the outer surfaces of the two smooth rods at their midpoints. The back sides of the two movable arms are respectively in contact with the front sides of the two movable push arms. A compound spring is fixedly connected to the back sides of the two movable arms. The rear ends of the two compound springs are fixedly connected to the inner wall of the communicating groove. The two compound springs are respectively sleeved on the outer surfaces of the two smooth rods. A fixing block is fixedly connected to the top of the two movable arms. By setting the movable arms, the two movable arms are pushed by the push arms and slide forward on the surfaces of the two smooth rods, stretching the two compound springs respectively. The sliding of the two movable arms then drives the two fixing blocks to move forward.

[0011] In a preferred embodiment of this invention, the two fixing blocks are respectively fixedly connected to the back of the top of the two movable arms. The rear ends of the two fixing blocks extend out of the inner wall of the communicating groove through openings. The rear ends of the two fixing blocks are respectively inserted into the inner wall of the fixing groove. By setting the fixing blocks, the two fixing blocks can simultaneously disengage from the fixing groove when moving forward and retract into the communicating groove through the openings, thereby releasing the fixing limit on the adjusting block. In this way, the adjusting block can slide left and right or be removed in the adjusting groove.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0013] 1. This utility model achieves the effect of solving the problem that when storing samples in existing storage cabinets, different industrial CT samples may have different physical and chemical properties. If the stored samples are not separated, it is easy to cause sample confusion and make it difficult to accurately identify and distinguish them.

[0014] 2. This utility model, by setting a support plate and an adjusting block, enables the connecting groove and the locking structure to work together. The adjusting block slides left and right in the adjusting groove to drive the partition plate to adjust the area, and the locking structure fixes the adjusting block. This distinguishes and separates the stored samples, and labels are used to distinguish different samples, ensuring that various samples can be stored in the appropriate area. At the same time, the labels are used for identification, making it easy for managers to quickly find the required samples. Attached Figure Description

[0015] Figure 1 This is a three-dimensional structural diagram of the cabinet provided in an embodiment of the present utility model;

[0016] Figure 2 This utility model provides a cross-sectional view of the cabinet and a structural schematic diagram of the support plate and partition plate.

[0017] Figure 3 This utility model provides a schematic diagram of the separation structure of the support plate and the partition plate, as well as a cross-sectional view of the adjusting block.

[0018] Figure 4 This is an exploded structural diagram of the smoothing rod and locking structure provided in an embodiment of the present invention.

[0019] In the diagram: 1. Cabinet body; 101. Cabinet door; 2. Support assembly; 201. Support plate; 3. Adjusting block; 301. Opening; 4. Connecting groove; 401. Smooth rod; 5. Locking structure; 6. Adjusting groove; 601. Fixing groove; 7. Divider plate; 701. Support arm; 702. Extension arm; 703. Label plate; 8. Linkage arm; 9. Pressing element; 10. Linkage rod; 11. Driven arm; 12. Linkage groove; 13. Moving push arm; 14. Through opening; 15. Moving sliding arm; 16. Reciprocating spring; 17. Fixing block. Detailed Implementation

[0020] To further understand the invention content, features and effects of this utility model, the following embodiments are provided, and detailed descriptions are given in conjunction with the accompanying drawings.

[0021] The structure of this utility model will now be described in detail with reference to the accompanying drawings.

[0022] like Figures 1 to 4 As shown in the figure, an industrial CT sample layering and differentiation device provided by this utility model includes a cabinet 1, a support assembly 2, an adjusting block 3, a connecting groove 4, and a locking structure 5. Cabinet doors 101 are rotatably connected to the left and right sides of the front of the cabinet 1 via rotating shafts. Three sets of support assemblies 2 are provided on the inner wall of the cabinet 1. Each support assembly 2 includes a support plate 201, which is fixedly connected to the inner wall of the cabinet 1. An adjusting groove 6 is provided at the top of the front end of the support plate 201, and several fixing grooves 601 are equidistantly provided on the rear side of the inner wall of the adjusting groove 6. An adjusting block 3 is slidably connected to the inner wall of the adjusting groove 6. A connecting groove 4 is provided on the inner wall of the adjusting block 3. A partition plate 7 is fixedly connected to the top of the adjusting block 3. A support arm 701 is fixedly connected to the front of the adjusting block 3. An extension arm 702 is rotatably connected to the front of the support arm 701 via a pivot. A label plate 703 is movably connected to the front of the extension arm 702. Two openings 301 are opened on the back of the adjusting block 3. Two smooth rods 401 are fixedly connected to the front and rear sides of the inner wall of the connecting groove 4. A locking structure 5 is provided on the inner wall of the connecting groove 4.

[0023] refer to Figure 2 and Figure 4 The locking structure 5 includes a linkage arm 8, which is located on the front of the adjusting block 3. A pusher 9 is fixedly connected to the front of the linkage arm 8. The rear end of the linkage arm 8 extends through the inner wall of the connecting groove 4. A linkage rod 10 is fixedly connected to the rear end of the linkage arm 8.

[0024] The above solution is adopted: by setting the linkage arm 8, when the pusher 9 is pressed backward, it can drive the linkage arm 8 to slide backward on the front of the adjustment block 3, and the sliding linkage arm 8 can simultaneously drive the linkage rod 10 to move.

[0025] refer to Figure 4The linkage rod 10 is set on the inner wall of the connecting groove 4. The top of the linkage rod 10 is fixedly connected to the bottom of the rear end of the linkage arm 8. Two driven arms 11 are sleeved on the outer surface of the linkage rod 10.

[0026] The above scheme is adopted: by setting the linkage rod 10, the linkage rod 10 can be driven by the linkage arm 8 to move backward in the connecting groove 4, and the linkage rod 10 moving in this way can drive the two driven arms 11 to rotate relative to each other.

[0027] refer to Figure 4 Two driven arms 11 are respectively arranged on the inner wall of the connecting groove 4. The two driven arms 11 are staggered vertically. The ends of the two driven arms 11 that are far apart from each other are rotatably connected to the upper and lower sides of the inner wall of the connecting groove 4 through a rotating shaft. The surfaces of the ends of the two driven arms 11 that are close to each other are respectively provided with linkage grooves 12. The inner walls of the two linkage grooves 12 that are close to each other are respectively attached to the outer surface of the linkage rod 10. The sides of the two driven arms 11 that are far apart from each other are respectively fixedly connected with a push arm 13.

[0028] The above scheme is adopted: by setting the driven arm 11, the linkage rod 10 presses the inner wall of the two linkage grooves 12 while moving backward, thereby driving the two driven arms 11 to rotate in a staggered relative manner. In this way, the two driven arms 11 drive the two moving push arms 13 to rotate synchronously while rotating.

[0029] refer to Figure 4 The two moving push arms 13 are fixedly connected at their close ends to the two moving arms 11 at their far ends. The tops of the two moving push arms 13 are respectively provided with openings 14, and the fronts of the two moving push arms 13 are respectively provided with moving arms 15.

[0030] The above scheme is adopted: by setting the moving push arm 13, the two moving push arms 13 can be offset from the two smooth rods 401 through the through port 14 during rotation, and push the two moving arms 15 respectively, thereby driving the two moving arms 15 to move forward.

[0031] refer to Figure 4 The two movable arms 15 are slidably connected to the outer surfaces of the two smooth rods 401 in the middle. The back sides of the two movable arms 15 are respectively in contact with the front sides of the two movable push arms 13. The back sides of the two movable arms 15 are respectively fixedly connected with a compound spring 16. The rear ends of the two compound springs 16 are fixedly connected to the inner wall of the connecting groove 4. The two compound springs 16 are respectively sleeved on the outer surfaces of the two smooth rods 401. The tops of the two movable arms 15 are respectively fixedly connected with a fixing block 17.

[0032] The above scheme is adopted: by setting the moving arms 15, the two moving arms 15 are pushed by the passive push arms 13 respectively, slide forward on the surface of the two smooth rods 401, and stretch the two compound springs 16 respectively. The two moving arms 15 slide and then drive the two fixed blocks 17 to move forward respectively.

[0033] refer to Figure 3 and Figure 4 Two fixed blocks 17 are fixedly connected to the back of the top of the two movable arms 15 respectively. The rear ends of the two fixed blocks 17 extend out of the inner wall of the communicating groove 4 through the opening 301 respectively. The rear ends of the two fixed blocks 17 are respectively inserted into the inner wall of the fixed groove 601.

[0034] The above solution is adopted: by setting fixed blocks 17, the two fixed blocks 17 can simultaneously disengage from the fixed groove 601 when moving forward, and retract into the communicating groove 4 through the opening 301, thereby releasing the fixed limit on the adjusting block 3. In this way, the adjusting block 3 can slide left and right or be removed in the adjusting groove 6.

[0035] The working principle of this utility model:

[0036] In use, the adjusting block 3, along with the partition plate 7, is moved onto the support plate 201. The adjusting block 3 is then aligned with the adjusting groove 6 and pressed down. As the adjusting block 3 moves into the adjusting groove 6, the two fixed blocks 17 are pressed against the surface of the support plate 201, causing them to retract into the connecting groove 4 and slide backward along the two movable arms 15. Simultaneously, the two repeating springs 16 are stretched. When the adjusting block 3 is fully inserted into the adjusting groove 6, the two repeating springs 16 pull the two movable arms 15 backward, causing the two fixed blocks 17 to insert into the fixed groove 601, thus adjusting the adjusting block 3. Fixed limits are set to fix the adjusting block 3 and the partition plate 7 on the support plate 201. Then, various samples can be placed on the support plate 201, and multiple samples can be separated by continuously adding adjusting blocks 3 and partition plates 7. When it is necessary to adjust the partition plate 7, the pusher 9 is pressed backward, which drives the linkage arm 8 to slide backward on the front of the adjusting block 3. At the same time, it drives the linkage rod 10 to move backward in the connecting groove 4. The movement of the linkage rod 10 presses the inner walls of the two linkage grooves 12, which drives the two driven arms 11 to move up and down relative to each other. The mechanism rotates, simultaneously driving the two movable push arms 13 to rotate synchronously. As the two movable push arms 13 rotate, they pass through the through-hole 14, offsetting the smooth rod 401, and simultaneously pushing the two movable moving arms 15 to slide forward on the smooth rod 401. When the two movable moving arms 15 slide forward, they stretch the two compound springs 16, causing the two fixed blocks 17 to disengage from the fixed groove 601, and then retract through the opening 301 into the connecting groove 4, thus releasing the fixing of the adjusting block 3. Subsequently, the adjusting block 3 can be slid left and right in the adjusting groove 6 for adjustment or removed. After adjustment, release the push button 9 to allow the two repeating springs 16 to pull the two moving arms 15, which in turn drive the two fixing blocks 17 to be inserted into the fixing slots 601, thus fixing the adjusting block 3 and adjusting the position of the separator 7. Then, the extension arm 702 can be rotated left and right to move the label plate 703 to the corresponding sample position. At the same time, the label plate 703 can be removed or slid to adjust its orientation and position. Corresponding label strips can be inserted into the label plate 703 to arrange and distinguish different samples in layers.

[0037] In summary, this industrial CT sample layering and differentiation device, through the coordinated operation of cabinet 1, support component 2, adjustment block 3, connecting groove 4, and locking structure 5, solves the problem that when storing samples in a storage cabinet, different industrial CT samples may have different physical and chemical properties, and if the stored samples are not separated, it is easy to cause sample confusion and make it difficult to accurately identify and differentiate them.

[0038] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0039] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An industrial CT sample layering and differentiation device, comprising a cabinet (1), a support assembly (2), an adjustment block (3), a connecting groove (4), and a locking structure (5), characterized in that: Cabinet doors (101) are rotatably connected to the left and right sides of the front of the cabinet (1) via pivots. Three sets of support components (2) are provided on the inner wall of the cabinet (1). Each support component (2) includes a support plate (201). The support plate (201) is fixedly connected to the inner wall of the cabinet (1). An adjustment groove (6) is provided at the top of the front end of the support plate (201). Several fixing grooves (601) are provided at equal intervals on the rear side of the inner wall of the adjustment groove (6). An adjustment block (3) is slidably connected to the inner wall of the adjustment groove (6). The inner wall of the adjustment block (3) is provided with... There is a connecting groove (4), the top of the adjusting block (3) is fixedly connected to a partition plate (7), the front of the adjusting block (3) is fixedly connected to a support arm (701), the front of the support arm (701) is rotatably connected to an extension arm (702) via a rotating shaft, the front of the extension arm (702) is movably connected to a label plate (703), the back of the adjusting block (3) has two openings (301), the front and rear sides of the inner wall of the connecting groove (4) are fixedly connected to two smooth rods (401), and the inner wall of the connecting groove (4) is provided with a locking structure (5).

2. The industrial CT sample layering and differentiation device as described in claim 1, characterized in that: The locking structure (5) includes a linkage arm (8), which is located on the front of the adjusting block (3). A pusher (9) is fixedly connected to the front of the linkage arm (8). The rear end of the linkage arm (8) extends through the inner wall of the connecting groove (4). A linkage rod (10) is fixedly connected to the rear end of the linkage arm (8).

3. The industrial CT sample layering and differentiation device as described in claim 2, characterized in that: The linkage rod (10) is disposed on the inner wall of the connecting groove (4). The top of the linkage rod (10) is fixedly connected to the bottom of the rear end of the linkage arm (8). Two driven arms (11) are sleeved on the outer surface of the linkage rod (10).

4. The industrial CT sample layering and differentiation device as described in claim 3, characterized in that: The two driven arms (11) are respectively arranged on the inner wall of the connecting groove (4) on the left and right. The two driven arms (11) are respectively staggered vertically. The ends of the two driven arms (11) that are far apart from each other are respectively connected to the upper and lower sides of the inner wall of the connecting groove (4) through a rotating shaft. The surfaces of the ends of the two driven arms (11) that are close to each other are respectively provided with linkage grooves (12). The inner walls of the two linkage grooves (12) that are close to each other are respectively attached to the outer surface of the linkage rod (10). The sides of the two driven arms (11) that are far apart from each other are respectively fixedly connected with a moving push arm (13).

5. The industrial CT sample layering and differentiation device as described in claim 4, characterized in that: The two moving push arms (13) are fixedly connected at their close ends to the two moving arms (11) at their far ends. The tops of the two moving push arms (13) are respectively provided with openings (14), and the fronts of the two moving push arms (13) are respectively provided with moving arms (15).

6. The industrial CT sample layering and differentiation device as described in claim 5, characterized in that: The two movable arms (15) are slidably connected to the outer surfaces of the two smooth rods (401) in the middle. The back sides of the two movable arms (15) are respectively in contact with the front sides of the two movable push arms (13). The back sides of the two movable arms (15) are respectively fixedly connected with a compound spring (16). The rear ends of the two compound springs (16) are fixedly connected to the inner wall of the connecting groove (4). The two compound springs (16) are respectively sleeved on the outer surfaces of the two smooth rods (401). The tops of the two movable arms (15) are respectively fixedly connected with a fixing block (17).

7. The industrial CT sample layering and differentiation device as described in claim 6, characterized in that: The two fixed blocks (17) are respectively fixedly connected to the back of the top of the two movable arms (15). The rear ends of the two fixed blocks (17) extend out of the inner wall of the communicating groove (4) through the opening (301). The rear ends of the two fixed blocks (17) are respectively inserted into the inner wall of the fixed groove (601).