Sample storage box for geological analysis of deep-buried rock mass

By designing a storage mechanism for multiple sample storage tanks, sealing covers and movable plates, combined with reset clamping and insulation mechanisms, the problem of large space occupied by the multi-sample storage box and sample leakage during transportation is solved, achieving convenient and safe sample transportation.

CN223059550UActive Publication Date: 2025-07-04POWERCHINA BEIJING ENG CORP
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Patent Information

Application Number
CN202422142350.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-07-04
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

In the prior art, a single sample storage box can only store a single geological sample. Multiple boxes require a large space to occupy, and it is easy to shake during transportation, resulting in sample leakage.

Method used

A storage mechanism including a storage tank, a sealing cover and a movable plate is designed, equipped with a reset clamping mechanism and a thermal insulation mechanism to ensure the sealing and thermal insulation of the sample during transportation.

Benefits of technology

It realizes the convenience and security of simultaneous storage of multiple samples, avoids sample leakage, maintains the light-shielding and dust-proofing of samples and the temperature stability of the samples.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a sample storage box for geological analysis of a deep-buried rock mass. The sample storage box comprises a shell cover; the storage bin is formed in the shell cover; the bin cover is rotationally connected to the top end of the shell cover; the storage mechanism is arranged in the shell cover; and the reset clamping mechanism is mounted on the side wall of each storage unit and is used for enabling the movable plate to automatically reset after the movable plate is opened and keeping the sealed connection between the movable plate and the storage groove. According to the sample storage box, the sealing cover can be used for shading and preventing dust, the sealing cover can be stretched so that samples can be stored and taken out conveniently, the samples can be stored and taken out more easily through rotation opening of the movable plate, the use convenience of the storage box is improved, and meanwhile the protection performance on the samples is improved. By arranging a reset clamping mechanism, the safety and the shading and dustproof performance of the sample storage box in the transportation process are further improved; and through the arrangement of the heat preservation mechanism, the device has a heat preservation transportation function, and the use functionality of the sample storage box can be greatly improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of engineering geological analysis, and particularly relates to a sample storage box for deep-buried rock mass geological analysis. Background Art

[0002] Engineering geological analysis is an important part of engineering geology, mainly studying geological conditions such as the rock properties, physical and mechanical properties, hydrogeological properties, and tectonic rock samples in the area of an engineering construction project to support the planning, investigation, design, and construction operation of the engineering construction project.

[0003] Engineering geological analysis is an indispensable geological research and investigation work, which requires geological samples for geological condition experiments, tests, and analysis. In the prior art, when using a traditional sample storage box to transport geological samples, there are the following deficiencies: (1) Usually, a single sample storage box can only store a single geological sample. When it is necessary to store and transport multiple geological samples, multiple sample storage boxes are required, which occupy a large space and are inconvenient to use; (2) The sample storage box is prone to shaking during transportation, resulting in sample leakage. Content of the Utility Model

[0004] In view of the defects existing in the prior art, the utility model provides a sample storage box for deep-buried rock mass geological analysis, which can effectively solve the above problems.

[0005] The technical solution adopted by the utility model is as follows:

[0006] The utility model provides a sample storage box for deep-buried rock mass geological analysis, comprising:

[0007] An outer shell cover (1);

[0008] A storage bin (2), which is opened inside the outer shell cover (1);

[0009] A bin cover (3), which is rotatably connected to the top of the outer shell cover (1);

[0010] A storage mechanism (4), which is arranged inside the outer shell cover (1). The storage mechanism (4) includes a support plate (404) and a plurality of storage units placed on the support plate (404); each storage unit includes a storage slot (401), a sealing cover (402), and a movable plate (403); the sealing cover (402) is arranged at the top of the storage slot (401), and the movable plate (403) is installed outside the storage slot (401);

[0011] A reset clamping mechanism (6) is installed on the side wall of each storage unit and is used to automatically reset the movable plate (403) after it is opened, so as to maintain the sealed connection between the movable plate (403) and the storage slot (401).

[0012] Preferably, the bottom outer shape of each storage slot (401) matches the shape in the width direction of the support plate (404).

[0013] Preferably, there is a distance interval between the support plate (404) and the bottom of the outer shell cover (1).

[0014] Preferably, the sealing cover (402) and the top of the storage slot (401) are connected in a push-pull sliding manner.

[0015] Preferably, the reset clamping mechanism (6) includes a connecting seat (601), a tension spring (602) and a clamping plate (603); the connecting seat (601) is fixedly connected to the inner side wall of the storage slot (401), the tension spring (602) is installed on the outer side wall of the connecting seat (601), one side of the tension spring (602) is fixedly connected to the clamping plate (603), the clamping plate (603) is elastically telescopicly connected to the tension spring (602), and the movable plate (403) is inserted into the clamping plate (603) to apply a thrust in the closing direction to the movable plate (403).

[0016] Preferably, the inner side wall of the outer shell cover (1) is provided with heat insulation material.

[0017] Preferably, a heat preservation mechanism (5) is installed on the inner side wall of the outer shell cover (1).

[0018] Preferably, the heat preservation mechanism (5) includes a condensation plate (501), a drain pipe (502) and a condensation pipe (503);

[0019] The condensation plate (501) is fixedly connected to the inner side wall of the outer shell cover (1), a drain pipe (502) is arranged outside the condensation plate (501), the drain pipe (502) is fixedly installed at the top of the condensation plate (501) through a buckle, and the drainage end of the drain pipe (502) communicates to the outside of the outer shell cover (1); the condensation pipe (503) is fixedly arranged outside the condensation plate (501), and the condensation pipe (503) is coiled around the outer side wall of the condensation plate (501).

[0020] The sample storage box provided by the present utility model for deep-buried rock mass geological analysis has the following advantages:

[0021] (1) By providing a storage slot, a sealing cover and a movable plate, when using the storage box to store rock samples, the sealing cover can be used to block light and dust. The sealing cover can be stretched to facilitate the storage and retrieval of samples. In addition, by rotating and opening the movable plate, it is also easier to store and retrieve samples, thus greatly improving the convenience of use of the storage box and enhancing the protection performance of the samples at the same time.

[0022] (2) By providing a reset clamping mechanism, the safety, light-blocking and dust-proof performance of the sample storage box during transportation are further improved;

[0023] (3) By providing a condensation plate, a drain pipe, a condensation tube and a warehouse cover, after using the storage box to store rock samples deep in the mountain, when transporting and processing the samples, by arranging the condensation tube inside the outer shell cover, the rock samples inside the storage bin can be thermally insulated. Moreover, generally, deep-buried rock masses are in a relatively low-temperature environment. When transported out of the mountain and into the normal environment, the condensed water generated by heat insulation and temperature difference heat preservation can be discharged through the drain pipe. Just like in the case of transporting from a high-temperature mountain environment in a heat-insulated state, the device has a heat-insulated transportation function, which can greatly improve the functional performance of the sample storage box. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;

[0025] Figure 2 For the present utility model Figure 1 is a schematic diagram of the overall structure of the storage mechanism in;

[0026] Figure 3 For the present utility model Figure 1 is a schematic diagram of the overall structure of the heat preservation mechanism in;

[0027] Figure 4 For the present utility model Figure 2 is an enlarged schematic diagram of the structure at A in.

[0028] In the figure:

[0029] 1. Outer shell cover; 2. Storage bin; 3. Warehouse cover; 4. Storage mechanism; 401. Storage slot; 402. Sealing cover; 403. Movable plate; 404. Support plate; 5. Heat preservation mechanism; 501. Condensation plate; 502. Drain pipe; 503. Condensation tube; 6. Reset clamping mechanism; 601. Connection seat; 602. Tensile spring; 603. Clamping plate. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0030] In order to make the technical problems, technical solutions and beneficial effects solved by the present utility model clearer and more understandable, the present utility model will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.

[0031] As shown in the attached Figure 1 to the attached Figure 4 figures, the present utility model provides a sample storage box for engineering geological analysis of deep-buried rock masses, including:

[0032] An outer shell cover 1;

[0033] A storage bin 2, which is opened inside the outer shell cover 1;

[0034] A bin cover 3, which is rotatably connected to the top of the outer shell cover 1;

[0035] A storage mechanism 4, which is arranged inside the outer shell cover 1. The storage mechanism 4 includes a support plate 404 and a plurality of storage units placed on the support plate 404; there is a distance interval between the support plate 404 and the bottom of the outer shell cover 1. Each storage unit includes a storage slot 401, a sealing cover 402 and a movable plate 403; a sealing cover 402 is arranged at the top of the storage slot 401, a movable plate 403 is installed outside the storage slot 401, and the sealing cover 402 is arranged on the top of the storage slot 401.

[0036] A reset clamping mechanism 6, which is installed on the side wall of each storage unit and is used to automatically reset the movable plate 403 after it is opened, so as to maintain the sealed connection between the movable plate 403 and the storage slot 401.

[0037] In this application, a plurality of storage units are arranged inside the sample storage box, so that multiple geological samples can be stored and transported at the same time, occupying a small space and being convenient to use.

[0038] Through the setting of the sealing cover 402, the geological samples stored inside the storage slot 401 can be shielded from light and dust, and the movable plate 403 can be opened movably. At the same time, the sealing cover 402 and the top of the storage slot 401 can be connected in a push-pull sliding manner, which is convenient for taking out and storing samples.

[0039] As can be seen from the above, when geological samples are stored inside the storage slot 401, the samples can be shielded from light and dust through the stretching of the sealing cover 402, and through the rotation and opening of the movable plate 403, it is convenient to store and take out samples, thereby greatly increasing the use convenience of the storage box and the protection performance of the samples.

[0040] In addition, the bottom profile shape of each storage slot 401 matches the shape in the width direction of the support plate 404. The length of the support plate 404 is designed to be an integer multiple of the width direction of each storage slot 401. Therefore, when multiple sample storage units are placed above the support plate 404, through the limiting effect of the support plate 404, the sample storage units are closely arranged, and the shaking of the sample storage units inside the sample storage box during transportation can be avoided.

[0041] As shown in the Figure 4 attachment, to improve the light-shielding and dust-proof performance and the use convenience of the storage mechanism 4, a reset clamping mechanism 6 is installed in each storage unit. The reset clamping mechanism 6 includes a connecting seat 601, a tension spring 602, and a clamping plate 603. The connecting seat 601 is fixedly connected to the inner side wall of the storage slot 401. A tension spring 602 is installed on the outer side wall of the connecting seat 601. A clamping plate 603 is fixedly connected to the outer side of one side of the tension spring 602. The clamping plate 603 is elastically telescopically connected to the tension spring 602. A movable plate 403 is inserted into the clamping plate 603, and a thrust in the closing direction is applied to the movable plate 403.

[0042] Specifically, through the elastic telescoping between the connecting seat 601 and the tension spring 602, an elastic rotation operation of the movable plate 403 after being clamped inside the clamping plate 603 can be performed. Thus, when the movable plate 403 rotates and opens, a rebound process can be carried out, and the movable plate 403 is pressed against the notch of the storage slot 401, realizing the tight sealing effect between the movable plate 403 and the storage slot 401.

[0043] By setting the reset clamping mechanism 6, the following advantages are achieved: (1) After a geological sample is placed into the storage unit, it is not necessary for the staff to manually operate. Through the reset clamping mechanism 6, the tight sealing effect between the movable plate 403 and the storage slot 401 can be automatically realized, achieving the light-shielding and dust-proof treatment of the geological sample, and preventing the staff from forgetting to close the movable plate 403; (2) By setting the reset clamping mechanism 6, the continuous sealing effect between the movable plate 403 and the storage slot 401 is maintained, and the problem that the movable plate 403 opens due to shaking during the transportation of the sample storage box can be avoided, improving the safety during transportation, ensuring that the geological sample does not leak during transportation, and at the same time ensuring the light-shielding and dust-proof treatment of the geological sample during transportation.

[0044] Furthermore, in this application, a heat preservation mechanism 5 is also provided in the sample storage box. As shown in the Figure 3As shown in the figure, the material of the outer shell cover 1 is made of heat-insulating material. A heat preservation mechanism 5 is installed on the inner side wall of the outer shell cover 1. The heat preservation mechanism 5 includes a condensation plate 501, a drain pipe 502 and a condensation pipe 503. The condensation plate 501 is fixedly connected to the inner side wall of the outer shell cover 1. A drain pipe 502 is arranged outside the condensation plate 501. The drain pipe 502 is fixedly installed at the top of the condensation plate 501 through a buckle. The drainage end of the drain pipe 502 communicates to the outside of the outer shell cover 1 of the sample storage box; The condensation pipe 503 is fixedly arranged outside the condensation plate 501, and the condensation pipe 503 is coiled around the outer side wall of the condensation plate 501.

[0045] As can be seen from the above, when carrying out the heat preservation transportation of geological samples, through the setting of the heat-insulating material and the condensation pipe 503 inside the outer shell cover 1, the storage bin 2 can be heat-preserved, and the condensed water after heat preservation can be discharged through the drain pipe 502, so that the device has the function of heat preservation transportation, greatly increasing the usability of the sample storage box.

[0046] Currently, new energy construction projects basically exist in the construction areas of buildings buried deep under mountains, such as the underground powerhouse building area of a pumped storage power station. The geological environment of deep-buried rock masses is different from the external environment. During transportation and processing, geological samples are easily affected by temperature changes and it is difficult to reflect their true environmental state in deep-buried mountains, affecting the analysis results of engineering geological conditions and subsequent geological analysis work. By setting the heat preservation mechanism 5 in this application, samples that maintain the true environmental state of deep-buried mountains can be provided, thus solving the above problems.

[0047] Compared with the prior art, the beneficial effects of the present utility model are:

[0048] (1) Through the provided storage groove, sealing cover and movable plate, when using the storage box to store rock samples, the sealing cover can be used to block light and dust. The sealing cover can be stretched to facilitate the storage and retrieval of samples. In addition, by rotating and opening the movable plate, the storage and retrieval of samples can also be made easier, thus greatly improving the usability of the storage box and at the same time increasing the protection performance of the samples.

[0049] (2) By setting the reset clamping mechanism, the safety, light-blocking and dust-proof performance of the sample storage box during transportation are further improved;

[0050] (3) Through the condensate plate, drain pipe, condensing pipe and the storage box cover provided by the present utility model, after using the storage box to store and deeply bury the rock samples in the mountain body, when transporting and processing the samples, by arranging the condensing pipe inside the outer shell cover, heat preservation treatment can be carried out on the rock samples inside the storage bin. Moreover, generally, the deeply buried rock masses are mostly in a low-temperature environment state. When they are transported out of the mountain body and enter the normal environment, the condensed water generated by heat insulation and temperature difference heat preservation can be discharged through the drain pipe. Just like the heat preservation state during transportation from a high-temperature mountain environment, the device has the function of heat preservation transportation, which can greatly improve the usability of the sample storage box.

[0051] The above are only the preferred embodiments of the present utility model. It should be noted that for those of ordinary skill in the art of this technology, without departing from the principle of the present utility model, several improvements and refinements can still be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.

Claims

1. A sample storage box for deep-buried rock mass geological analysis, characterized in that, Comprising: A housing cover (1); A storage bin (2) which is provided inside the housing cover (1); A bin cover (3) which is rotatably connected to the top end of the housing cover (1); A storage mechanism (4) which is arranged inside the housing cover (1). The storage mechanism (4) includes a support plate (404) and a plurality of storage units placed on the support plate (404). Each storage unit includes a storage slot (401), a sealing cover (402) and a movable plate (403). The sealing cover (402) is arranged at the top end of the storage slot (401), and the movable plate (403) is installed outside the storage slot (401); A reset clamping mechanism (6) which is installed on the side wall of each storage unit and is used to automatically reset the movable plate (403) after it is opened, so as to maintain the sealed connection between the movable plate (403) and the storage slot (401).

2. The sample storage box for deep-buried rock mass geological analysis according to claim 1, characterized in that, The outer shape of the bottom of each storage slot (401) matches the shape in the width direction of the support plate (404).

3. A sample storage box for deep-buried rock mass geological analysis according to claim 1, characterized in that, There is a distance interval between the support plate (404) and the bottom of the housing cover (1).

4. A sample storage box for deep buried rock mass geological analysis according to claim 1, characterized in that, The sealing cover (402) and the top of the storage slot (401) are connected in a push-pull sliding manner.

5. A sample storage box for deep-buried rock mass geological analysis according to claim 1, characterized in that, The reset clamping mechanism (6) includes a connecting seat (601), a tension spring (602) and a clamping plate (603). The connecting seat (601) is fixedly connected to the inner side wall of the storage slot (401), the tension spring (602) is installed on the outer side wall of the connecting seat (601), one side of the tension spring (602) is fixedly connected to the clamping plate (603), the clamping plate (603) is elastically telescopically connected to the tension spring (602), and the movable plate (403) is inserted into the clamping plate (603) to apply a closing-direction thrust to the movable plate (403).

6. The sample storage box for deep buried rock mass geological analysis according to claim 1, characterized in that, The inner side wall of the housing cover (1) is provided with heat-insulating material.

7. A sample storage box for deep-buried rock mass geological analysis according to claim 1, characterized in that, A heat preservation mechanism (5) is installed on the inner side wall of the housing cover (1).

8. A sample storage box for deep-buried rock mass geological analysis according to claim 7, characterized in that, The heat preservation mechanism (5) includes a condensation plate (501), a drain pipe (502) and a condensation pipe (503); The condensation plate (501) is fixedly connected to the inner side wall of the housing cover (1), a drain pipe (502) is arranged outside the condensation plate (501), the drain pipe (502) is fixedly installed at the top end of the condensation plate (501) through a buckle, and the drainage end of the drain pipe (502) communicates to the outside of the housing cover (1). The condensation pipe (503) is fixedly arranged outside the condensation plate (501), and the condensation pipe (503) is coiled around the outer side wall of the condensation plate (501).

Citation Information

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