Environmental detection water quality sample storage device

By designing a detachable partition component to divide the water quality sample storage device into multiple storage compartments, the problem that traditional devices cannot limit sampling bottles of different sizes and shapes is solved, and the effect of stable transportation and flexible use is achieved.

CN223341268UActive Publication Date: 2025-09-16姚凯儒
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Patent Information

Application Number
CN202422939081.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-09-16
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

Traditional water quality sample storage devices cannot effectively limit sampling bottles of different sizes and shapes, resulting in shaking and collisions during transportation, posing a safety hazard.

Method used

A storage device consisting of a box body and a box cover was designed. The box body was divided into multiple storage compartments through T-shaped slots and dividing components (I-shaped inserts, splicing arc grooves, 8-shaped connecting strips, and splicing pins), which enabled the positioning and placement of sampling bottles of different shapes and sizes. The dividing components could be disassembled and reassembled to meet different needs.

Benefits of technology

The stable storage of sampling bottles of different specifications and shapes is achieved, the protection effect during transportation is improved, and the versatility and flexibility of the device are enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water quality sample storage device for environmental detection, which relates to the technical field of water quality sample storage devices and comprises a storage box composed of a box body and a box cover, the box cover is movably connected to one end of the top of the box body through a hinge, and T-shaped clamping grooves are formed in two sides and two ends of the inner wall of the box body. The box body is connected with a dividing assembly through a T-shaped clamping groove, and the dividing assembly is used for dividing the box body into a plurality of storage grids so as to realize limiting placement of sampling bottles with different shapes and sizes. According to the utility model, the internal space of the box body can be separated in different sizes and shapes by arranging the separation assembly, and the positioning storage operation of sampling bottles (or water bags) in different specifications and shapes can be realized, so that the protection effect on samples can be effectively improved in the transportation process, and in addition, the transportation efficiency is improved. And the combined segmentation assembly can be disassembled for the second time and recombined, so that the universality and the flexibility of the device are higher.
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Description

Technical Field

[0001] The utility model relates to the technical field of water quality sample storage devices, in particular to a water quality sample storage device for environmental testing. Background Art

[0002] With the rapid development of society, people's living conditions are gradually getting better. However, as the living environment improves, environmental pollution is also getting worse, such as air pollution and water pollution. In order to ensure healthy drinking water in people's lives, it is necessary to regularly test the water quality of the water source. In the water quality test, the water to be tested is generally taken out through bottles and then brought back to the research institute for testing. On the way back, the bottles containing water samples are placed inside the box for storage and protection.

[0003] However, in actual water quality sample sampling, the specifications and sizes of the bottles used to hold the sample water are different, and their shapes are different. Some are round, some are square, and some use water bags to hold the sample water. The space of the storage compartment inside the traditional box is generally fixed. As a result, it is impossible to properly limit the sample water sampling bottles of different sizes and shapes. There is a gap between the sampling bottle that is smaller than the size of the box storage compartment and the inner wall of the storage compartment. During operation, the sampling bottle is very likely to shake and collide, which poses a transportation risk. Based on this, an environmental testing water quality sample storage device is provided. Utility Model Content

[0004] The purpose of the present invention is to provide a water quality sample storage device for environmental testing in order to solve the above-mentioned problems.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a storage device for water quality samples for environmental testing, comprising a storage box consisting of a box body and a box cover, wherein the box cover is movably connected to one end of the top of the box body by a hinge, and T-shaped slots are provided on both sides and both ends of the inner wall of the box body, and the box body is connected to a partition assembly via the T-shaped slots, and the partition assembly is used to divide the box body into a plurality of storage compartments for realizing the limited placement of sampling bottles of different shapes and sizes;

[0006] The splitting assembly includes an I-shaped insert, a splicing arc groove, an assembly slot, an 8-shaped connecting strip, and a splicing pin;

[0007] The splicing arc grooves are symmetrically arranged at both ends of the I-shaped insert, and the 8-shaped connecting strip is distributed between the two I-shaped inserts and is clamped to the inner sides of the two splicing arc grooves on the two I-shaped inserts;

[0008] The splicing pins extend from the top of the I-shaped insert, through the I-shaped insert, the assembly slot, and to the bottom of the I-shaped insert, and are used to achieve a rotatable connection between the I-shaped insert and the 8-shaped connecting strip. The partition plate composed of several I-shaped inserts is respectively connected to the inner sides of the T-shaped slots on both sides or both ends of the inner wall of the box through the first and last I-shaped inserts, thereby dividing the internal space of the box.

[0009] The assembly slots are symmetrically arranged on both sides of the transverse portion of the I-shaped insert. The transverse portion of one I-shaped insert is inserted into the inner side of the assembly slot on the side of another I-shaped insert, thereby connecting two vertically distributed I-shaped inserts to each other, thereby realizing a secondary division of the internal space of the box.

[0010] As a further solution of the present invention: a plurality of positioning holes are opened at the bottom of the box body, and the plurality of positioning holes are distributed in a matrix, and the height of the splicing pin is greater than the height of the I-shaped insertion strip, and the bottom of the splicing pin protrudes from the bottom of the I-shaped insertion strip and is inserted into the inner side of the positioning hole, so as to realize the distribution trajectory limitation of the partition plate.

[0011] As a further solution of the present invention: the 8-shaped connecting strip is composed of a straight block and two ball parts, the two ball parts are fixed at both ends of the straight block, and the outer diameter of the ball part matches the inner wall diameter of the splicing arc groove, and the top of the I-shaped insert and the top of the ball part are both provided with through holes for the splicing pin to pass through.

[0012] As a further solution of the present invention: a plurality of T-shaped slots are evenly arranged along the inner wall side and end surface of the box body, and the distribution spacing of the T-shaped slots matches the distribution spacing of the I-shaped inserts.

[0013] As a further solution of the present invention: the box body, box cover, and T-shaped slot are integrally formed by injection molding, the I-shaped insert strip, splicing arc groove, and assembly slot are integrally formed by injection molding, the 8-shaped connecting strip is separately formed by injection molding, and the splicing pin is separately formed by injection molding.

[0014] Compared with the prior art, the beneficial effects of the present invention are:

[0015] By setting up partition components, the internal space of the box can be separated into different sizes and shapes, and sampling bottles (or water bags) of different specifications and shapes can be positioned and stored. In this way, the protection effect of the samples can be effectively improved during transportation. In addition, the assembled dividing components can be disassembled and reassembled for a second time, thereby making the device more versatile and flexible. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a structural diagram of the utility model;

[0017] Figure 2 For the utility model Figure 1 A magnified view of position A in the middle;

[0018] Figure 3 This is a schematic diagram of the internal structure of the box of the present utility model;

[0019] Figure 4 This is a schematic diagram of the splitting component of the present invention.

[0020] In the figure: 1. Storage box; 101. Box body; 102. Box cover; 103. T-shaped slot; 104. Positioning hole; 2. Splitting assembly; 201. I-shaped insert; 202. Splicing arc groove; 203. Assembly slot; 204. 8-shaped connecting strip; 205. Splicing pin. DETAILED DESCRIPTION

[0021] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0022] See also Figures 1 to 4 In an embodiment of the present invention, a water quality sample storage device for environmental testing includes a storage box 1 consisting of a box body 101 and a box cover 102. The box cover 102 is movably connected to one end of the top of the box body 101 by a hinge. T-shaped slots 103 are provided on both sides and both ends of the inner wall of the box body 101. The box body 101 is connected to a partitioning component 2 through the T-shaped slots 103. The partitioning component 2 is used to divide the box body 101 into a plurality of storage compartments for realizing the limited placement of sampling bottles of different shapes and sizes.

[0023] The splitting component 2 includes an I-shaped insert 201, a splicing arc groove 202, an assembly slot 203, an 8-shaped connecting strip 204, and a splicing pin 205;

[0024] The arc-jointing grooves 202 are symmetrically arranged at both ends of the I-shaped insert 201 . The figure-8 connecting strip 204 is distributed between the two I-shaped inserts 201 and is clamped to the inner sides of the two arc-jointing grooves 202 on the two I-shaped inserts 201 .

[0025] The splicing pin 205 extends from the top of the I-shaped insert 201 through the I-shaped insert 201, the assembly slot 203, and the bottom of the I-shaped insert 201, thereby achieving a rotational connection between the I-shaped insert 201 and the 8-shaped connecting strip 204. The partition plate composed of several I-shaped inserts 201 is respectively connected to the inner sides of the T-shaped slots 103 on both sides or both ends of the inner wall of the box body 101 through the first and last I-shaped inserts 201, thereby dividing the internal space of the box body 101.

[0026] Assembly slots 203 are symmetrically located on either side of the transverse portion of the I-shaped insert 201. The transverse portion of one I-shaped insert 201 is inserted into the inner side of the assembly slot 203 of the other I-shaped insert 201, thereby interconnecting two vertically arranged I-shaped inserts 201 and achieving a secondary division of the interior space of the box 101.

[0027] Multiple T-shaped slots 103 are evenly arranged along the inner wall side and end surface of the box body 101. The distribution spacing of the T-shaped slots 103 matches the distribution spacing of the I-shaped inserts 201.

[0028] The 8-shaped connecting strip 204 is composed of a straight block and two ball parts. The two ball parts are fixed at both ends of the straight block, and the outer diameter of the ball parts matches the inner wall diameter of the splicing arc groove 202. The top of the I-shaped insert 201 and the top of the ball part are both provided with through holes for the splicing pin 205 to pass through.

[0029] In this embodiment, it should be noted that the box cover 102 and the box body 101 are locked together using a box body lock commonly used on the market, which will not be described in detail here.

[0030] When sampling water samples, the internal space of the box 101 can be divided according to the shape and specifications of the sampling bottle used. The operation steps are as follows:

[0031] A plurality of I-shaped inserts 201, 8-shaped connecting strips 204, and splicing pins 205 can be taken and spliced ​​together in sequence. The splicing pins 205 are inserted through the I-shaped inserts 201 and the 8-shaped connecting strips 204 to connect the plurality of I-shaped inserts 201 and the 8-shaped connecting strips 204. In this way, the plurality of I-shaped inserts 201 and the 8-shaped connecting strips 204 can be connected to each other. In this way, the partitions of different lengths can be assembled to meet different length requirements.

[0032] After that, the end of the I-shaped insert 201 at one end of the partition plate can be inserted into a T-shaped slot 102. If the length of the partition plate matches the internal length of the box body 101, the end of the I-shaped insert 201 at the other end of the partition plate can be inserted into a T-shaped slot 102 on the other side (or the other end). At this time, the first space division is completed. Then, take another partition plate and insert the I-shaped insert 201 at one end of it into an assembly slot 203 on the side of the first partition plate. The other end of the other partition plate can be snap-fitted into the T-shaped slot 102 on the inner wall of the box body 101 as needed, or wait to be assembled and connected with the third partition plate.

[0033] By cooperating with the above-mentioned multiple parts, the storage spaces of different sizes inside the box 101 can be separated. In addition, due to the structure of the 8-shaped connecting strip 204, there is a movable space between the two I-shaped inserting strips 201. That is, the I-shaped inserting strip 201 can rotate at a certain angle with the ball portion of the 8-shaped connecting strip 204 as the center, thereby making the trajectory of the partition plate arc-shaped. In this way, the trajectory of the separated storage space can be circular or irregular. In this way, the rectangular storage space can provide a positioning place for rectangular sampling bottles, the circular storage space can provide a positioning place for cylindrical sampling bottles, and the irregular storage space can provide a positioning place for water bags.

[0034] By cooperating with the above multiple parts, the positioning and storage operations of sampling bottles (or water bags) of different specifications and shapes can be realized, which can effectively improve the protection effect of samples during transportation. In addition, the assembled splitting component 2 can be disassembled and reassembled a second time, thereby making the device more versatile and flexible.

[0035] Please refer to Figures 1 to 4 A plurality of positioning holes 104 are provided at the bottom of the box body 101, and the positioning holes 104 are distributed in a matrix. The height of the splicing pin 205 is greater than the height of the I-shaped insert 201. The bottom of the splicing pin 205 protrudes from the bottom of the I-shaped insert 201 and is inserted into the inner side of the positioning hole 104, which is used to realize the distribution trajectory limitation of the partition plate.

[0036] In this embodiment: when a partition plate is composed of several I-shaped inserts 201, the bottom of the splicing pin column 205 is flush with the bottom of the I-shaped insert 201, and the top of the splicing pin column 205 protrudes from the top of the I-shaped insert 201. When the partition plate is then installed inside the box body 101, after determining the trajectory of the partition plate, the top of the splicing pin column 205 is pressed to move the splicing pin column 205 downward, and the bottom of the splicing pin column 205 protrudes from the bottom of the I-shaped insert 201 and is inserted into each positioning hole 104. This not only achieves the fixation of the trajectory of the partition plate, but also provides a connection limit between the bottom of the partition plate and the bottom of the box body 101. In this way, the limiting protection effect of the sampling bottle (or water bag) can be further improved.

[0037] Please refer to Figures 1 to 4 The box body 101, the box cover 102, and the T-shaped slot 103 are integrally formed by the injection molding process, the I-shaped insert 201, the splicing arc groove 202, and the assembly slot 203 are integrally formed by the injection molding process, the 8-shaped connecting strip 204 is separately formed by the injection molding process, and the splicing pin 205 is separately formed by the injection molding process.

[0038] In this embodiment: the overall processing and production process of the storage box 1 and the dividing component 2 is simple, and when used later, it is easy to assemble and has high flexibility in use, which can better meet customer needs.

[0039] The above is only a preferred specific implementation method of the present invention, but the protection scope of the present invention is not limited to this. Any technician familiar with the technical field within the technical scope disclosed by the present invention can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A water quality sample storage device for environmental testing, comprising a storage box (1) consisting of a box body (101) and a box cover (102), wherein the box cover (102) is movably connected to one end of the top of the box body (101) via a hinge, and is characterized in that: T-shaped slots (103) are provided on both sides and ends of the inner wall of the box (101), and the box (101) is connected to a partitioning assembly (2) via the T-shaped slots (103). The partitioning assembly (2) is used to divide the box (101) into a plurality of storage compartments for limiting the placement of sampling bottles of different shapes and sizes. The splitting assembly (2) comprises an I-shaped insert (201), a splicing arc groove (202), an assembly slot (203), an 8-shaped connecting strip (204), and a splicing pin (205); The splicing arc grooves (202) are symmetrically arranged at both ends of the I-shaped insert (201); the 8-shaped connecting strip (204) is distributed between the two I-shaped inserts (201) and is clamped to the inner sides of the two splicing arc grooves (202) on the two I-shaped inserts (201); The splicing pin (205) sequentially passes through the I-shaped insert (201), the assembly slot (203) and the bottom of the I-shaped insert (201) from the top of the I-shaped insert (201), and is used to realize the rotational connection between the I-shaped insert (201) and the 8-shaped connecting strip (204). The partition plate composed of a plurality of I-shaped inserts (201) is respectively connected to the inner sides of the T-shaped slots (103) on both sides or both ends of the inner wall of the box body (101) through the first and last two I-shaped inserts (201), thereby realizing the division of the internal space of the box body (101); The assembly slots (203) are symmetrically arranged on both sides of the transverse portion of the I-shaped insert (201), and are used to connect two vertically distributed I-shaped inserts (201) to each other by inserting the transverse portion of one I-shaped insert (201) into the inner side of the assembly slot (203) of another I-shaped insert (201), thereby realizing a secondary division of the internal space of the box (101).

2. The environmental testing water quality sample storage device according to claim 1, characterized in that: The bottom of the box body (101) is provided with a plurality of positioning holes (104), the plurality of positioning holes (104) being distributed in a matrix, and the height of the splicing pin (205) being greater than the height of the I-shaped insert (201), the bottom of the splicing pin (205) protruding from the bottom of the I-shaped insert (201) and inserted into the inner side of the positioning hole (104), for realizing the distribution track limitation of the partition plate.

3. The environmental testing water quality sample storage device according to claim 1, characterized in that: The 8-shaped connecting strip (204) is composed of a straight block and two ball parts. The two ball parts are fixed at both ends of the straight block, and the outer diameter of the ball parts matches the inner wall diameter of the splicing arc groove (202). The top of the I-shaped inserting strip (201) and the top of the ball parts are both provided with through holes for the splicing pin (205) to pass through.

4. The environmental testing water quality sample storage device according to claim 1, characterized in that: A plurality of T-shaped slots (103) are evenly arranged along the inner wall side surfaces and end surfaces of the box body (101), and the distribution spacing of the T-shaped slots (103) matches the distribution spacing of the I-shaped inserts (201).

5. The environmental testing water quality sample storage device according to claim 1, characterized in that: The box body (101), the box cover (102), and the T-shaped slot (103) are integrally formed by an injection molding process; the I-shaped insert strip (201), the splicing arc slot (202), and the assembly slot (203) are integrally formed by an injection molding process; the 8-shaped connecting strip (204) is separately formed by an injection molding process; and the splicing pin (205) is separately formed by an injection molding process.