Vibrating type chemical refining sampling device

The spiral feed rod and the vibration motor are used to drive the filter sleeve to vibrate and combined with the chute guidance, the problem of inconvenient sampling and screening in the existing technology is solved, and the efficient screening effect of chemical refinement sampling is achieved.

CN223320091UActive Publication Date: 2025-09-09GANSU JINTE CHEM CO LTD
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Patent Information

Application Number
CN202422329411.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-24
Publication Date
2025-09-09
Estimated Expiration
2034-09-24

AI Technical Summary

Technical Problem

In the existing chemical refinement sampling process, the vibration mode is usually overall vibration, which makes sampling inconvenient for screening and reduces the sampling effect.

Method used

The spiral feed rod and the vibration motor are used to transport the raw materials into the installation sleeve through the spiral feed rod. The vibration motor drives the filter sleeve to vibrate. Combined with the chute guide and the spiral spring auxiliary reset, the sampling is screened.

Benefits of technology

It realizes the effective screening of samples, ensures the sampling effect, and ensures the separation efficiency of materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of chemical refining sampling, in particular to a vibrating type chemical refining sampling device. Comprising a mounting plate and a vibration motor, a driving motor, a first spiral conveying rod and a second spiral conveying pipe are mounted on the outer side of the mounting plate, a first mounting sleeve and a second mounting sleeve are welded to the mounting plate, the front end of the first mounting sleeve is in threaded connection with a feeding sleeve, and a feeding hole is formed in the end, away from the first mounting sleeve, of the feeding sleeve; the vibration motor is mounted at the top end of the first mounting sleeve, a filtering sleeve is connected to the lower portion of the vibration motor, and spiral springs are symmetrically mounted on the upper side and the lower side of the filtering sleeve. A first spiral conveying rod rotates to convey raw materials into a first mounting sleeve, a vibration motor drives a filtering sleeve to vibrate, the filtering sleeve vibrates in a guiding mode along a sliding groove, a spiral spring assists the filtering sleeve in resetting, samples can be screened through vibration of the filtering sleeve, the samples can be screened in the mode, and the sampling effect is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of chemical refinement sampling, in particular to a vibration type chemical refinement sampling device. Background Art

[0002] Chemical refinement sampling typically involves sampling raw materials, intermediates, or finished products during the chemical production process, followed by detailed analysis and testing. This sampling process is crucial for ensuring product quality, controlling production processes, complying with safety regulations, and conducting research and development. Existing chemical refinement sampling involves workers holding a sampling tube and drawing up the raw materials during production. However, this process often requires vibration to prevent pipe blockage. However, existing vibration methods typically involve overall vibration, making it difficult to screen the sample, reducing sampling effectiveness. Utility Model Content

[0003] In view of the above problems, the purpose of the present invention is to provide a vibrating chemical refinement sampling device to solve the problem that the existing vibration mode is usually overall vibration, which is not convenient for screening samples and reduces the sampling effect.

[0004] To achieve the above objectives, the technical solution adopted by the utility model is: a vibration type chemical refinement sampling device, comprising a mounting plate and a vibration motor, a hand-held handle is installed on the outer side of the mounting plate, and a driving motor is installed on the outer side of the mounting plate, the output end of the driving motor is connected to a spiral feeding rod 1, and the side of the spiral feeding rod 1 close to the mounting plate is connected to a spiral feeding pipe 2 through a synchronous belt, a mounting sleeve 1 is welded and installed on the mounting plate, and the lower side of the mounting sleeve 1 is connected to the mounting sleeve 2 through a flange, the front end of the mounting sleeve 1 is threadedly connected to the feeding sleeve, and a sealing gasket is installed at the connection between the mounting sleeve 1 and the feeding sleeve, the outer side of the mounting sleeve 1 is threadedly connected to the coarse material collecting box, the outer side of the mounting sleeve 2 is threadedly connected to the fine material collecting box, the feed sleeve is provided with a feeding hole at one end away from the mounting sleeve 1, the vibration motor is installed on the top of the mounting sleeve 1, and a filter sleeve is connected below the vibration motor, and coil springs are symmetrically installed on the upper and lower sides of the filter sleeve.

[0005] The beneficial effects of the present invention are as follows: the spiral feed rod rotates to transport the raw materials to the inside of the installation sleeve, the vibration motor drives the filter sleeve to vibrate, the filter sleeve vibrates along the guide of the slide groove, the spiral spring assists the filter sleeve to reset, and the vibration of the filter sleeve can be used to screen the samples. The above method can be used to screen the samples, ensuring the sampling effect.

[0006] To facilitate the sliding of the filter sleeve:

[0007] As a further improvement of the above technical solution: a sliding groove is provided on the installation sleeve at a position close to the filter sleeve.

[0008] The beneficial effect of this improvement is that the sliding of the filter sleeve can be guided and limited by the slide groove, thereby facilitating the vibration of the filter sleeve and facilitating the screening of the sampled material.

[0009] To facilitate the vibration of the filter sleeve:

[0010] As a further improvement of the above technical solution: the filter sleeve and the installation sleeve 1 are arranged parallel to each other.

[0011] The beneficial effect of this improvement is that the mutually parallel arrangement can make the filter sleeve more reliable and stable when vibrating, thereby facilitating the vibration of the filter sleeve.

[0012] As a further improvement of the above technical solution: the vibration motors are symmetrically distributed on the top of the mounting sleeve 1.

[0013] The beneficial effect of this improvement is that the symmetrically distributed vibration motors can drive the filter sleeve to rotate reliably and smoothly.

[0014] To ensure that the sealing gasket seals the connection between the feed sleeve and the installation sleeve:

[0015] As a further improvement of the above technical solution: the sealing gasket and the feed sleeve are arranged with their axes coincident.

[0016] The beneficial effect of this improvement is that the axis overlap setting can enable the sealing gasket to fully and reliably seal the connection between the feed sleeve and the installation sleeve.

[0017] To facilitate feeding:

[0018] As a further improvement of the above technical solution: the feed hole is circumferentially opened on the feed sleeve.

[0019] The beneficial effect of this improvement is that the circumferentially opened feed holes can facilitate the entry of materials into the interior of the feed sleeve.

[0020] In order to facilitate the rotation of the spiral feed pipe 2:

[0021] As a further improvement of the above technical solution: a bearing is installed at the connection between the second spiral feeding pipe and the second mounting sleeve.

[0022] The beneficial effect of this improvement is that the friction force when the spiral feeding pipe rotates can be effectively reduced by the bearing.

[0023] In order to make the spiral feed rod 1 and the spiral feed pipe 2 rotate synchronously:

[0024] As a further improvement of the above technical solution: the first spiral feeding rod and the second spiral feeding pipe are arranged parallel to each other.

[0025] The beneficial effect of this improvement is that the parallel arrangement can make the spiral feeding rod 1 drive the spiral feeding pipe 2 to rotate and collect more reliably and stably through the synchronous belt. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is a schematic diagram of the overall axonometric structure.

[0027] Figure 2 It is a schematic diagram of the overall axonometric cross-sectional structure.

[0028] Figure 3 It is a schematic diagram of the overall main structure.

[0029] Figure 4 It is a schematic diagram of the overall right view structure.

[0030] Figure 5 for Figure 3 Enlarged structural diagram at point A in the middle.

[0031] In the figure: 1. Mounting plate; 11. Handle; 12. Drive motor; 2. Screw feed rod 1; 21. Screw feed pipe 2; 3. Mounting sleeve 1; 31. Mounting sleeve 2; 32. Feed sleeve; 33. Sealing gasket; 34. Coarse material collection box; 35. Fine material collection box; 36. Feed hole; 4. Vibration motor; 41. Filter sleeve; 42. Coil spring. DETAILED DESCRIPTION

[0032] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention is described in detail below with reference to the accompanying drawings. The description in this part is only exemplary and explanatory and should not have any limiting effect on the scope of protection of the present invention.

[0033] like Figure 1-5As shown, a vibrating chemical refinement sampling device includes a mounting plate 1 and a vibration motor 4. A hand-held handle 11 is installed on the outside of the mounting plate 1, and a drive motor 12 is installed on the outside of the mounting plate 1. The output end of the drive motor 12 is connected to a spiral feed rod 2, and the side of the spiral feed rod 2 close to the mounting plate 1 is connected to a spiral feed pipe 21 through a synchronous belt. A mounting sleeve 3 is welded and installed on the mounting plate 1, and a mounting sleeve 2 31 is connected to the bottom of the mounting sleeve 3 through a flange. The front end of the mounting sleeve 3 is threadedly connected to a feed sleeve 32, and a sealing gasket 33 is installed at the connection between the mounting sleeve 3 and the feed sleeve 32. The outer thread is connected to a coarse material collection box 34, the outer thread of the mounting sleeve 31 is connected to a fine material collection box 35, the feed sleeve 32 is provided with a feed hole 36 at one end away from the mounting sleeve 3, the vibration motor 4 is installed at the top of the mounting sleeve 3, and the bottom of the vibration motor 4 is connected to a filter sleeve 41, and the upper and lower sides of the filter sleeve 41 are symmetrically installed with coil springs 42. The spiral feed rod 2 rotates to transport the raw materials to the inside of the mounting sleeve 3, the vibration motor 4 drives the filter sleeve 41 to vibrate, and the filter sleeve 41 vibrates along the guide chute. The coil spring 42 assists the filter sleeve 41 to reset, and the sample can be screened by the vibration of the filter sleeve 41. The above method can screen the samples and ensure the sampling effect. The installation sleeve 3 is provided with a slide groove near the filter sleeve 41, and the slide groove can guide and limit the sliding of the filter sleeve 41, thereby facilitating the vibration of the filter sleeve 41 and facilitating the screening of the sampled materials. The filter sleeve 41 and the installation sleeve 3 are arranged in parallel with each other. The parallel arrangement can make the filter sleeve 41 more reliable and stable when vibrating, thereby facilitating the vibration of the filter sleeve 41. The vibration motor 4 is symmetrically distributed on the top of the installation sleeve 3. The symmetrically distributed vibration motor 4 can drive the filter sleeve 41 to rotate reliably and smoothly. The sealing gasket 33 and the feed sleeve 3 are arranged in parallel with each other. 2 adopts an axial overlap setting, and the axial overlap setting can enable the sealing gasket 33 to fully and reliably seal the connection between the feed sleeve 32 and the mounting sleeve 3. The feed hole 36 is circumferentially opened on the feed sleeve 32, and the circumferentially opened feed hole 36 can facilitate the material to enter the interior of the feed sleeve 32. A bearing is installed at the connection between the spiral conveying pipe 2 21 and the mounting sleeve 2 31. The bearing can effectively reduce the friction force of the spiral conveying pipe 2 21 when it rotates. The spiral conveying rod 1 2 and the spiral conveying pipe 2 21 are arranged in parallel with each other. The parallel setting can make the spiral conveying rod 1 2 drive the spiral conveying pipe 2 21 to rotate through the synchronous belt, and the collection is more reliable and stable.

[0034] The working principle of the present invention is as follows: when using the device, the user holds the handle 11, inserts the device into the sampling port, and then turns on the driving motor 12. The driving motor 12 drives the spiral feeding rod 2 to rotate, and the spiral feeding rod 2 drives the spiral feeding pipe 2 21 to move synchronously through the synchronous belt. The spiral feeding rod 2 rotates to transport the raw materials to the interior of the installation sleeve 3, and the vibration motor 4 drives the filter sleeve 41 to vibrate. The filter sleeve 41 vibrates along the guide groove, and the spiral spring 42 assists the filter sleeve 41 to reset. The vibration of the filter sleeve 41 can screen the sample, and the coarse material enters the interior of the coarse material collecting box 34 through the installation sleeve 3, and the fine material enters the interior of the installation sleeve 3 through the filter sleeve 41. Driven by the spiral feeding pipe 2 21, it enters the interior of the fine material collecting box 35. The above method can be used to screen the sample, ensuring the sampling effect. After the sampling is completed, the device is taken out, and the coarse material collection box 34 and the fine material collection box 35 are screwed out to complete the sampling.

[0035] It should be noted that, in this article, the terms "comprises", "includes" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or apparatus that includes a series of elements includes not only those elements, but also includes other elements not explicitly listed, or also includes elements that are inherent to such process, method, article or apparatus.

[0036] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only used to help understand the method and core ideas of the present invention. The above is only a preferred implementation method of the present invention. It should be pointed out that due to the limitations of textual expression, there are objectively infinite specific structures. For ordinary technicians in this technical field, without departing from the principles of the present invention, they can make several improvements, modifications or changes, and can also combine the above technical features in an appropriate manner; these improvements, modifications, changes or combinations, or the direct application of the concept and technical solution of the utility model to other occasions without improvement, should be regarded as the scope of protection of the present utility model.

Claims

1. A vibrating chemical refinement sampling device, comprising a mounting plate (1) and a vibrating motor (4), characterized in that: A hand-held handle (11) is installed on the outside of the mounting plate (1), and a driving motor (12) is installed on the outside of the mounting plate (1). The output end of the driving motor (12) is connected to a spiral feeding rod (2), and the side of the spiral feeding rod (2) close to the mounting plate (1) is connected to a spiral feeding pipe (21) through a synchronous belt. A mounting sleeve (3) is welded and installed on the mounting plate (1), and the lower part of the mounting sleeve (3) is connected to the mounting sleeve (31) through a flange. The front end of the mounting sleeve (3) is threadedly connected to the feed sleeve (32), and the mounting sleeve A sealing gasket (33) is installed at the connection between the first (3) and the feed sleeve (32); the outer side of the mounting sleeve (3) is threadedly connected to a coarse material collection box (34); the outer side of the mounting sleeve (31) is threadedly connected to a fine material collection box (35); a feed hole (36) is provided at one end of the feed sleeve (32) away from the mounting sleeve (3); the vibration motor (4) is installed at the top of the mounting sleeve (3), and a filter sleeve (41) is connected below the vibration motor (4); and coil springs (42) are symmetrically installed on the upper and lower sides of the filter sleeve (41).

2. A vibrating chemical refinement sampling device according to claim 1, characterized in that: The installation sleeve 1 (3) is provided with a sliding groove at a position close to the filter sleeve (41).

3. A vibrating chemical refinement sampling device according to claim 1, characterized in that: The filter sleeve (41) and the installation sleeve (3) are arranged parallel to each other.

4. A vibrating chemical refinement sampling device according to claim 1, characterized in that: The vibration motor (4) is symmetrically distributed on the top of the mounting sleeve (3).

5. The vibrating chemical refinement sampling device according to claim 1, characterized in that: The sealing gasket (33) and the feed sleeve (32) are arranged so that their axes coincide with each other.

6. A vibrating chemical refinement sampling device according to claim 1, characterized in that: The feed hole (36) is circumferentially opened on the feed sleeve (32).

7. A vibrating chemical refinement sampling device according to claim 1, characterized in that: A bearing is installed at the connection between the second spiral feeding pipe (21) and the second mounting sleeve (31).

8. The vibrating chemical refinement sampling device according to claim 1, characterized in that: The first spiral feeding rod (2) and the second spiral feeding pipe (21) are arranged parallel to each other.