Portable building material component analyzer

By designing the slide chute and slider on the transport box of the building material composition analyzer, as well as the combination of the snap-on structure and box cover, the portability and operational convenience of the analyzer when used on poor environment construction sites is solved, and the service life of the slider is extended.

CN222979577UActive Publication Date: 2025-06-13SHENZHEN CIVIL ENG TESTING CO LTD
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Patent Information

Application Number
CN202421853640.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-06-13
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

When used on construction sites with poor environments, existing building material composition analyzers are prone to contamination and limited internal space of the transport box, resulting in inconvenient operation.

Method used

A portable building material composition analyzer is designed, using a transport box and a clamping structure. Through the design of slide chutes and sliders, the analyzer body can slide upward to the upper end of the transport box. The clamping structure supports the analyzer body to ensure that it is not restricted by the transport box during use.

Benefits of technology

The portability and operation convenience of using the analyzer on a construction site with poor environment are achieved. At the same time, the pressure of the slider is reduced and its service life is extended through the configuration of the box cover and fixture.

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Abstract

The utility model relates to the technical field of analyzers, in particular to a portable building material component analyzer which comprises a transport box and an analyzer body installed in the transport box, sliding grooves extending in the height direction of the transport box are formed in the two sides of the interior of the transport box, and the sliding grooves penetrate through the upper end of the transport box; sliding blocks extend out of the two sides of the bottom end of the analyzer body towards the sliding grooves, the analyzer is slidably connected to the transport box, an opening of the transport box faces upwards, and clamping structures used for clamping the sliding blocks to the upper end of the transport box are arranged at the ends, away from the sliding grooves, of the sliding blocks. When the analyzer body is used, the sliding blocks are separated from the sliding grooves, at the moment, the clamping springs abut against the sliding blocks to extend, the sliding blocks extend to the upper surfaces of the two sides of the upper end of the transport box to clamp the analyzer body to prevent the analyzer body from falling, and therefore the detector cannot be limited by the transport box when using the analyzer body, and the detector can use the analyzer body more conveniently.
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Description

Technical Field

[0001] The present application relates to the technical field of analyzers, and in particular to a portable building material composition analyzer. Background Art

[0002] Building material composition analyzers are mainly used to analyze the elemental composition or compound content in building materials (such as concrete, bricks, gypsum, steel, etc.). By accurately measuring the components in the materials, the performance, quality, and applicability of the materials can be evaluated, providing an important basis for building design, material selection, and quality control.

[0003] In the prior art, there are various types of building material composition analyzers. There is a limestone building material analyzer, whose specific structure includes an analyzer housing, an analysis structure installed inside the analyzer housing, an analysis cup installed outside the analyzer housing and communicating with the analysis structure, and a display panel installed outside the analyzer housing and electrically connected to the analysis structure. The tester puts the sample mixed solution into the analysis cup, and it flows into the analysis structure through the analysis cup. The analysis structure sends the test result to the display panel, and the tester judges the specific components in the building material according to the data on the display panel.

[0004] However, building material composition analyzers are often used at construction sites. There are multiple areas at construction sites. In the prior art, in order to ensure that the tested building materials conform to the components of the materials in the corresponding areas, the building material composition analyzer is usually carried to the area for on-site testing. To facilitate the transportation of the analyzer, a transportation box is usually equipped for the analyzer. When the analyzer needs to be transported, the analyzer is simply placed in the transportation box and the transportation box can be carried to transport the analyzer. However, after arriving at the testing area, the tester needs to take the analyzer out of the transportation box and place it on the ground to extract the material samples in the area for testing. The environment at the construction site is relatively poor, so the bottom and sides of the analyzer placed on the ground are very easy to be contaminated, resulting in more troublesome subsequent cleaning. If the analyzer is directly placed in the transportation box for use, the space inside the transportation box is limited, making it inconvenient for the tester to operate the analyzer. Therefore, a portable building material composition analyzer is needed. Summary of the Utility Model

[0005] Aiming at the deficiencies of the prior art, the purpose of the present application is to provide a portable building material composition analyzer to solve the technical problem that it is inconvenient to use the analyzer in places with poor environments in the prior art.

[0006] The above-mentioned purpose of the present application is achieved through the following technical scheme: a portable building material composition analyzer, comprising a transport box and an analyzer body installed in the transport box, wherein slide grooves extending along the height direction of the transport box are provided on both sides of the interior of the transport box, the slide grooves penetrate the upper end of the transport box, and sliders extend toward the slide grooves on both sides of the bottom end of the analyzer body, the analyzer is slidably connected to the transport box, the transport box opening faces upward, and a clamping structure for clamping the slider on the upper end of the transport box is provided at one end of the slider away from the slide groove.

[0007] Furthermore, the clamping structure includes storage grooves opened on both sides of the bottom end of the analyzer body and a clamping spring located in the storage grooves. The slider is located in the storage groove and is slidably connected to the analyzer body. One end of the clamping spring is fixedly connected to the end of the slider away from the sliding groove, and the other end is fixedly connected to the side of the storage groove away from the sliding groove.

[0008] By adopting the above technical solution, the analyzer body is pulled upward to make the slider move upward along the slide groove. When it moves to the upper end of the transport box, the slider disengages from the slide groove. At this time, the locking spring extends the slider so that the slider extends to the upper surfaces on both sides of the upper end of the transport box, clamping the analyzer body to prevent it from falling. In this way, the tester will not be restricted by the transport box when using the analyzer body, making it more convenient for the tester to use the analyzer body. Moreover, through the restrictions of the slide groove and the slider, the tester only needs to slide the analyzer body upward to the top of the transport box to use the analyzer body. There is no need to worry about the analyzer body being skewed when taking it out. The skewed analyzer body will cause the slider to fail to abut the upper surfaces on both sides of the upper end of the transport box.

[0009] Furthermore, a paddle extends upward from one end of the sliding block away from the supporting spring.

[0010] By adopting the above technical solution, the detection personnel can easily push the slider to slide through the paddle, making it more convenient to put the analyzer body into the transport box.

[0011] Furthermore, the upper ends of both sides of the transport box adjacent to the slide slots are provided with plug-in notches, and the box covers are plugged into the plug-in notches.

[0012] By adopting the above technical solution, although the slider extends to the upper surfaces on both sides of the upper end of the transport box and can hold the analyzer body to prevent it from falling, the analyzer body is heavy, and it is very easy to cause the slider to break if it is supported by the slider alone. The arrangement of the plug-in notch and the box cover solves this technical problem. After the analyzer body moves to the upper end of the transport box and the slider extends to the upper surfaces on both sides of the upper end of the transport box, the box cover is slid to block the opening of the transport box and abut against the bottom surface of the analyzer body, thereby supporting the analyzer body and reducing the pressure on the slider, thereby improving the service life of the slider.

[0013] Furthermore, fixing devices for fixing the box cover are provided on both sides of the horizontal insertion notch of the box cover.

[0014] Furthermore, the fixing device includes two opposite fixing plates and a connecting hook located between the two fixing plates, a portal frame fixedly connected to the transport box is provided below the plug-in notch, and the connecting hook is rotatably connected to the fixing plate.

[0015] By adopting the above technical solution, although the setting of the box cover improves the service life of the slider, the setting of the box cover also causes the box cover to slide to both sides of the plug-in notch opened in the transport box when the transport box is moved. If one end slides into the sliding transport box and detaches from the plug-in notch, one end of the box cover will fall into the transport box and hit the analyzer body, causing damage to it. The setting of the fixing device solves this technical problem. After the sliding box cover covers the opening of the transport box, the connecting hooks on both sides of the box cover are rotated to hook the door frame, thereby limiting the movement of the box cover and preventing it from falling into the transport box and damaging the analyzer body.

[0016] Furthermore, a storage groove is provided on the upper surface of the box cover, and a rotating handle rotatably connected to the box cover is provided in the storage groove.

[0017] By adopting the above technical solution, the detection personnel can rotate the handle when they need to move the transport box, and the handle can be turned into a vertical state to carry the transport box and moved. When the box cover needs to support the analyzer body, the handle can be stored in the storage groove, and the box cover can be pushed to support the analyzer body, so that the handle can facilitate the movement of the transport box without affecting the use of the box cover.

[0018] Furthermore, a fixed handle is fixedly provided on the upper surface of the analyzer body.

[0019] By adopting the above technical solution, the fixed handle makes it convenient for the inspector to pull the analyzer body out of the transport box.

[0020] In summary, the present application includes at least one of the following beneficial technical effects:

[0021] By setting up the transport box and the clamping structure, the slide block moves upward along the slide groove by pulling the analyzer body upward. When it moves to the upper end of the transport box, the slide block disengages from the slide groove. At this time, the clamping spring extends the slide block so that the slide block extends to the upper surfaces on both sides of the upper end of the transport box, clamping the analyzer body to prevent it from falling. In this way, the tester will not be restricted by the transport box when using the analyzer body, making it more convenient for the tester to use the analyzer body. Moreover, through the restrictions of the slide groove and the slide block, the tester only needs to slide the analyzer body upward to the top of the transport box to use the analyzer body, and there is no need to worry about the analyzer body being tilted when taking it out.

[0022] Through the setting of the insertion notch and the box cover, it is realized that by sliding the box cover, the box cover blocks the opening of the transport box and abuts against the bottom surface of the analyzer body, thereby supporting the analyzer body, reducing the pressure on the slider, and thus achieving the purpose of prolonging the service life of the slider. Description of the Drawings

[0023] Figure 1 is a schematic diagram of the overall structure of the embodiment;

[0024] Figure 2 is along Figure 1 the sectional view taken along line A-A in

[0025] Figure 3 is Figure 2 the enlarged view of part A in

[0026] Figure 4 is another view of the overall structure of the embodiment.

[0027] Reference Signs: 1, transport box; 10, chute; 11, insertion notch; 12, gantry; 2, analyzer body; 20, slider; 21, paddle; 22, fixed handle; 3, clamping structure; 30, storage groove; 31, clamping spring; 4, box cover; 40, storage recess; 41, rotating handle; 5, fixing device; 50, fixing plate; 51, connecting hook. Detailed Description of the Embodiment

[0028] The following further describes the present application in detail with reference to the accompanying drawings.

[0029] Embodiment, referring to Figure 1 、 Figure 2 、 Figure 3, a portable building material composition analyzer, comprising a transport box 1 and an analyzer body 2 installed inside the transport box 1. On both sides inside the transport box 1, there are sliding grooves 10 extending along the height direction of the transport box 1. The sliding grooves 10 penetrate through the upper end of the transport box 1. On both sides of the bottom end of the analyzer body 2, there are sliding blocks 20 extending towards the sliding grooves 10. The analyzer is slidably connected to the transport box 1. The transport box 1 has an upward opening. At the end of the sliding block 20 away from the sliding groove 10, there is a clamping structure 3 for clamping the sliding block 20 at the upper end of the transport box 1. The clamping structure 3 includes receiving grooves 30 opened on both sides of the bottom end of the analyzer body 2 and clamping springs 31 located inside the receiving grooves 30. The sliding block 20 is slidably connected to the analyzer body 2 inside the receiving groove 30. One end of the clamping spring 31 is fixedly connected to the end of the sliding block 20 away from the sliding groove 10, and the other end is fixedly connected to the surface of the receiving groove 30 away from the sliding groove 10. At the end of the sliding block 20 away from the support spring, there is a dial 21 protruding upwards. By pulling up the analyzer body 2, the sliding block 20 moves continuously upwards along the sliding groove 10. When it moves to the upper end of the transport box 1, the sliding block 20 disengages from the sliding groove 10. At this time, the clamping spring 31 pushes against the sliding block 20 to extend, so that the sliding block 20 extends to the upper surfaces on both sides of the upper end of the transport box 1, clamping the analyzer body 2 to prevent it from descending. In this way, when the tester uses the analyzer body 2, they will not be restricted by the transport box 1, making it more convenient for the tester to use the analyzer body 2. Due to the restriction of the sliding groove 10 and the sliding block 20, the tester only needs to slide the analyzer body 2 upwards to the upper part of the transport box 1 to use the analyzer body 2, without worrying that the analyzer body 2 is skewed when taken out. A skewed analyzer body 2 will cause the sliding block to not abut against the upper surfaces on both sides of the upper end of the transport box 1. When the analyzer body 2 needs to be put into the transport box 1, by pushing the sliding block 20 towards the receiving groove 30 through the dial 21 to contract the sliding block 20, then pushing the analyzer body 2 downwards to make the sliding block 20 fall into the sliding groove 10, and then continuing to push the analyzer body 2 to the bottom surface of the transport box 1. And on the upper surface of the analyzer body 2, there is a fixed handle 22 fixedly provided. The fixed handle 22 facilitates the tester to pull out the analyzer body 2 from the transport box 1.

[0030] Although the sliding block 20 extends to the upper surfaces on both sides of the upper end of the transport box 1 and can clamp the analyzer body 2 to prevent it from descending, the analyzer body 2 is relatively heavy. Relying solely on the sliding block 20 to support the analyzer body 2 is very likely to cause the sliding block 20 to break. To solve this technical problem, in this embodiment, on both upper ends of the transport box 1 adjacent to the sliding grooves 10, there are inserted notches 11. A box cover 4 is inserted into the inserted notches 11. After the analyzer body 2 moves to the upper end of the transport box 1 and the sliding block 20 extends to the upper surfaces on both sides of the upper end of the transport box 1, by sliding the box cover 4, the box cover 4 blocks the opening of the transport box 1 and abuts against the bottom surface of the analyzer body 2, thereby supporting the analyzer body 2, reducing the pressure on the sliding block 20, and thus improving the service life of the sliding block 20.

[0031] Although the setting of the box cover 4 increases the service life of the slider 20, the setting of the box cover 4 also causes the box cover 4 to slide toward both sides of the insertion notch 11 of the transport box 1 when the transport box 1 is moved. If one end slides into the sliding transport box 1 and detaches from the insertion notch 11, the box cover 4 will fall into the transport box 1 and hit the analyzer body 2, causing damage to the analyzer body 2. In order to solve this technical problem, refer to Figure 4 In this embodiment, fixing devices 5 for fixing the box cover 4 are provided on both sides of the horizontal plug-in notch 11 of the box cover 4. The fixing devices 5 include two opposite fixing plates 50 and a connecting hook 51 located between the two fixing plates 50. A door-shaped frame 12 fixedly connected to the transport box 1 is provided below the plug-in notch 11. The connecting hook 51 is rotatably connected to the fixing plate 50. After the sliding box cover 4 covers the opening of the transport box 1, the connecting hooks 51 on both sides of the box cover 4 are rotated to hook the door-shaped frame 12, thereby limiting the movement of the box cover 4 and preventing it from falling into the transport box 1 and damaging the analyzer body 2.

[0032] In order to facilitate the movement of the transport box 1, the present embodiment has a storage groove 40 on the upper surface of the box cover 4, and a rotating handle 41 rotatably connected to the box cover 4 is provided in the storage groove 40. The setting of the rotating handle 41 allows the testing personnel to rotate it when they need to move the transport box 1. The rotating handle 41 is in a vertical state to carry the transport box 1 and is rotated when the box cover 4 needs to support the analyzer body 2. The rotating handle 41 is stored in the storage groove 40, and the box cover 4 is pushed to support the analyzer body 2, so that the rotating handle 41 does not affect the use of the box cover 4 while facilitating the movement of the transport box 1.

[0033] Specific implementation process: when the analyzer body 2 needs to be used, first rotate the connecting hook 51 to disengage it from the door frame 12, then pull out the box cover 4, and then hold the fixed handle 22 to pull the analyzer body 2 up. When it rises to the point where the slider 20 contacts the upper surfaces on both sides of the upper end of the transport box 1, push the box cover 4 so that its upper surface abuts against the bottom surface of the analyzer body 2, and the analyzer body 2 can be used. When the analyzer body 2 needs to be stored, pull the box cover 4 outward so that the box cover 4 no longer blocks the opening of the transport box 1, and then push the slider 20 toward the direction of the storage slot 30 through the paddle 21 to shrink the slider 20, and then push the analyzer body 2 downward to make the slider 20 fall into the slide slot 10, and then continue to push the analyzer body 2 to the bottom surface of the transport box 1.

[0034] The embodiments of this specific implementation method are all preferred embodiments of the present application, and are not intended to limit the protection scope of the application. Therefore, all equivalent changes made based on the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A portable building material component analyzer, comprising a transport box (1) and an analyzer body (2) installed in the transport box (1), characterized in that: The transport box (1) is provided with slide grooves (10) extending along the height direction of the transport box (1) on both sides of the interior thereof, the slide grooves (10) being connected to the upper end of the transport box (1), and sliders (20) extending from the slide grooves (10) on both sides of the bottom end of the analyzer body (2), the analyzer being slidably connected to the transport box (1), the transport box (1) being opened upward, and a clamping structure (3) for clamping the slider (20) on the upper end of the transport box (1) is provided at one end of the slider (20) away from the slide groove (10).

2. A portable building material composition analyzer according to claim 1, characterized in that: The clamping structure (3) comprises a receiving groove (30) provided on both sides of the bottom end of the analyzer body (2) and a clamping spring (31) located in the receiving groove (30); the sliding block (20) is located in the receiving groove (30) and is slidably connected to the analyzer body (2); one end of the clamping spring (31) is fixedly connected to an end of the sliding block (20) away from the sliding groove (10), and the other end is fixedly connected to a surface of the receiving groove (30) away from the sliding groove (10).

3. A portable building material composition analyzer according to claim 1, characterized in that: A paddle (21) extends upward from one end of the slider (20) away from the supporting spring.

4. A portable building material composition analyzer according to claim 1, characterized in that: Insertion notches (11) are provided at the upper ends of both sides of adjacent slide grooves (10) of the transport box (1), and a box cover (4) is inserted into the insertion notches (11).

5. A portable building material composition analyzer according to claim 4, characterized in that: Fixing devices (5) for fixing the box cover (4) are provided on both sides of the horizontal insertion notch (11) of the box cover (4).

6. A portable building material composition analyzer according to claim 5, characterized in that: The fixing device (5) comprises two opposite fixing plates (50) and a connecting hook (51) located between the two fixing plates (50); a gantry (12) fixedly connected to the transport box (1) is provided below the plug-in notch (11); and the connecting hook (51) is rotatably connected to the fixing plate (50).

7. A portable building material composition analyzer according to claim 4, characterized in that: The upper surface of the box cover (4) is provided with a receiving groove (40), and a rotating handle (41) rotatably connected to the box cover (4) is arranged in the receiving groove (40).

8. A portable building material component analyzer according to claim 1, characterized in that: A fixed handle (22) is fixedly provided on the upper surface of the analyzer body (2).