Material dipping device

By designing the slurry and slurry separation mechanism of the material slurry device, the problem of slurry cannot be recovered is solved and the efficient recycling of slurry is achieved.

CN120515664APending Publication Date: 2025-08-22湖南味康科技有限公司
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Patent Information

Application Number
CN202510419764.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-08-22

AI Technical Summary

Technical Problem

During the slurry process of existing materials, the slurry on the outer layer of adjacent materials will be sticky, resulting in the slurry being unable to be recycled and causing waste.

Method used

A material slurry device is designed, including a slurry mechanism and a slurry separation mechanism. The slurry mechanism realizes slurry through a slurry pool and a first conveyor belt, and the slurry separation mechanism realizes slurry separation and recovery through a second conveyor belt in an elastic mesh and a vibration structure.

Benefits of technology

The material is fully soaked and the slurry is effectively separated and recovered after the slurry is soaked, which improves the slurry's recovery efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a material dipping device, and relates to the field of material dipping. Comprising a slurry immersing mechanism and a slurry separating mechanism which are sequentially arranged along the process; the slurry soaking mechanism comprises a slurry pond and a first conveying belt, and the first conveying belt is arranged above the slurry pond and is sunken towards the interior of the slurry pond; the slurry separating mechanism comprises a second conveying belt and a liquid collecting plate, the second conveying belt is arranged behind the working procedure of the first conveying belt, and the second conveying belt is of an elastic net-shaped structure and internally provided with a vibration structure; the liquid collecting plate is arranged at the bottom of the second conveying belt and abuts against the horizontal plane of the second conveying belt. According to the device, materials can be fully soaked in slurry, the slurry is separated through vibration after slurry soaking is completed, the slurry is recycled, and the slurry recycling efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the field of material slurry soaking, and in particular to a material slurry soaking device. Background Art

[0002] Simply put, the immersion device immerses the product in the slurry, allowing the slurry to penetrate into the product and leaving a layer of slurry on the surface of the product to protect the product. During the production process, some products need to be immersed in the slurry device to facilitate subsequent processing and use of the product.

[0003] During the soaking process of existing materials (such as Pueraria lobata), the slurry on the outer layers of adjacent materials will stick together, and the excess slurry needs to be separated to achieve the uniformity of the materials after soaking. However, in this process, the slurry separated from the outer layer of the material cannot be recovered, resulting in waste of slurry. Summary of the Invention

[0004] In view of the above problems, embodiments of the present invention are proposed to provide a material slurry soaking device that overcomes the above problems or at least partially solves the above problems.

[0005] A material slurry soaking device includes a slurry soaking mechanism and a slurry separation mechanism arranged in sequence along the process;

[0006] The slurry soaking mechanism includes a slurry pool and a first conveyor belt, wherein the first conveyor belt is arranged above the slurry pool and is recessed into the slurry pool;

[0007] The slurry separation mechanism includes a second conveyor belt and a liquid collecting plate. The second conveyor belt is arranged behind the process of the first conveyor belt. The second conveyor belt has an elastic mesh structure and a vibration structure is provided inside it. The liquid collecting plate is arranged at the bottom of the second conveyor belt and abuts against the horizontal surface of the second conveyor belt.

[0008] Preferably, the first conveyor belt includes a horizontally arranged loading section and a unloading section and a recessed soaking section, and the loading section, the unloading section and the soaking section are respectively driven to rotate by a conveying roller group to form an independent circulating conveyor belt; the loading section and the unloading section are respectively connected to the two ends of the soaking section and are respectively located on the two side edges of the slurry pool.

[0009] Preferably, the immersion mechanism further includes a first limiting belt, which is provided above the immersion section and protrudes toward the interior of the slurry pool; a gap is provided between the immersion section and the first limiting belt for material to pass through.

[0010] Preferably, the edge of the slurry pool opposite to the unloading conveyor belt is inclined toward one side of the slurry pool.

[0011] Preferably, a conveying roller group is sleeved inside the first limiting belt.

[0012] Preferably, the slurry separation mechanism further includes a second limiting belt, which is arranged above the second conveyor belt and has a gap between the second limiting belt and the second conveyor belt for materials to pass through.

[0013] Preferably, a driving wheel set is provided in the second conveyor belt, and the driving wheel set is arranged inside the second conveyor belt and is in contact with its inner bottom for tensioning; or, the driving wheel set is arranged inside the second conveyor belt and is in contact with its inner top and inner bottom for tensioning respectively.

[0014] Preferably, the vibration structure includes end conveying wheels provided at both ends of the second conveying belt, and the end conveying wheels are driven to move horizontally back and forth by a first reciprocating driving member.

[0015] Preferably, the vibration structure further includes a plurality of internal transmission wheels arranged inside the second conveyor belt, the plurality of internal transmission wheels are arranged at intervals and close to the inner top of the second conveyor belt, and the internal transmission wheels are driven to move vertically back and forth by a second reciprocating drive member.

[0016] Preferably, fixed frames for mounting a driving wheel group, an end transmission wheel, an internal transmission wheel, a first reciprocating driving member and a second reciprocating driving member are respectively provided on both sides of the slurry separation mechanism; a first waist hole arranged horizontally is provided at a position relative to the end transmission wheel of the fixed frame, and a second waist hole arranged vertically is provided at a position relative to the internal transmission wheel of the fixed frame.

[0017] This application specifically includes the following advantages:

[0018] In an embodiment of the present application, a slurrying mechanism and a slurry separation mechanism are sequentially arranged along the process. The slurrying mechanism is used to drive the material to achieve slurrying, and the slurry separation mechanism is used to slurry the material after slurrying, thereby recovering the slurry. The slurrying mechanism includes a slurry pool and a first conveyor belt. By arranging the first conveyor belt above the slurry pool and recessing it into the slurry pool, the material can be driven into the slurry pool and taken out of the slurry pool after slurrying is completed. The slurry separation mechanism includes a second conveyor belt and a liquid collecting plate. By arranging the second conveyor belt behind the first conveyor belt and arranging it into an elastic mesh structure, a vibration structure is arranged inside the second conveyor belt, and the material after slurrying is completed can be vibrated, thereby throwing excess slurry attached to the material from the mesh conveyor belt to the liquid collecting plate below. The present application can ensure that the material is fully slurried and vibrate to separate the slurry after slurrying is completed, thereby recovering the slurry, thereby improving the slurry recovery efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solution of the present application, the following is a brief introduction to the drawings required for the description of the present application. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0020] Figure 1 It is a structural schematic diagram of the material slurry soaking device of the present invention;

[0021] Figure 2 It is a schematic diagram of one side of the fixing frame when the internal transmission wheel or the end transmission wheel of the present invention is a roller wheel;

[0022] Figure 3 This is a schematic structural diagram of the present invention when the internal transmission wheel or the end transmission wheel is a pulley;

[0023] Figure numerals: 1. immersion mechanism; 11. slurry pool; 111. pool edge; 12. first conveyor belt; 121. loading section; 122. unloading section; 123. immersion section; 124. conveying roller group; 13. first limiting belt; 2. slurry separation mechanism; 21. second conveyor belt; 22. liquid collecting plate; 23. second limiting belt; 24. driving wheel group; 25. end conveying wheel; 26. internal conveying wheel; 27. rotating bearing; 28. connecting plate; 29. ​​connecting shaft; 3. fixing frame; 31. first waist hole; 32. second waist hole; 4. telescopic rod. DETAILED DESCRIPTION

[0024] To make the objectives, features, and advantages of this application more readily apparent, the present application is further described below in conjunction with the accompanying drawings and specific embodiments. It is apparent that the embodiments described are only a portion of the embodiments of this application, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments in this application without inventive effort are also within the scope of protection of this application.

[0025] Reference Figure 1-Figure 3 , shows a schematic structural diagram of a material slurry soaking device of the present invention, which may specifically include a slurry soaking mechanism 1 and a slurry separation mechanism 2 arranged in sequence along the process;

[0026] The slurry soaking mechanism 1 includes a slurry pool 11 and a first conveyor belt 12. The first conveyor belt 12 is arranged above the slurry pool 11 and is recessed into the slurry pool 11.

[0027] The slurry separation mechanism 2 includes a second conveyor belt 21 and a liquid collecting plate 22. The second conveyor belt 21 is arranged behind the process of the first conveyor belt 12. The second conveyor belt 21 has an elastic mesh structure and a vibration structure is provided inside it; the liquid collecting plate 22 is arranged at the bottom of the second conveyor belt 21 and abuts against the horizontal surface of the second conveyor belt 21.

[0028] In an embodiment of the present application, a slurrying mechanism 1 and a slurry separation mechanism 2 are sequentially arranged along the process. The slurrying mechanism 1 is used to drive the material to achieve slurrying, and the slurry separation mechanism 2 is used to slurry the material after slurrying, thereby recovering the slurry. The slurrying mechanism 1 includes a slurry pool 11 and a first conveyor belt 12. By arranging the first conveyor belt 12 above the slurry pool 11 and recessing it into the slurry pool 11, it can drive the material into the slurry pool 11 and remove it from the slurry pool 11 after slurrying is completed. The slurry separation mechanism 2 includes a second conveyor belt 21 and a liquid collecting plate 22. By arranging the second conveyor belt 21 behind the first conveyor belt 12 and setting it as an elastic mesh structure, and setting a vibration structure inside it, it can drive the material after slurrying to vibrate, thereby throwing excess slurry attached to the material from the mesh conveyor belt to the liquid collecting plate 22 below. The present application can ensure that the material is fully slurried and vibrate to separate the slurry after slurrying is completed, thereby recovering the slurry, thereby improving the slurry recovery efficiency.

[0029] Next, a material slurry soaking device in this exemplary embodiment will be further described.

[0030] In the embodiment of the present application, the above-mentioned immersion mechanism 1 includes a slurry pool 11 and a first conveyor belt 12. The slurry pool 11 is filled with slurry. The first conveyor belt 12 is arranged above the slurry pool 11 and is recessed into the inside of the slurry pool 11 so that the first conveyor belt 12 can be immersed in the slurry, thereby allowing the material transported on the first conveyor belt 12 to be completely immersed in the slurry, so that the material is fully immersed in the slurry.

[0031] As an example, the top edge of the slurry pool 11 has a pool edge 111 extending horizontally outward, so that both ends of the first conveyor belt 12 can extend to the horizontal pool edges 111 on both sides to facilitate loading and unloading.

[0032] As an example, the first conveyor belt 12 can also be composed of a horizontally arranged loading section 121 and a lowering section 122 and a recessed immersion section 123. The loading section 121, the lowering section 122 and the immersion section 123 are driven to rotate by a conveying roller group 124 and form an independent circulating conveyor belt, that is, the three parts circulate independently; by dividing into three sections and independently conveying, the slurry can be prevented from being carried out by the conveyor belt. The loading section 121 and the lowering section 122 are respectively connected to the two ends of the immersion section 123 and are respectively located on the two side edges 111 of the slurry pool 11. The loading section 121 can convey the material to the feeding section, and the loading section 121 does not immerse in the slurry pool 11 to prevent it from being contaminated with slurry; the feeding section drives the material downward to immerse in the slurry pool 11 and convey it to the lowering section 122, and then the lowering section 122 conveys it to the slurry separation mechanism 2.

[0033] As an example, the pool edge 111 of the slurry pool 11 opposite to the unloading section 122 is inclined toward one side of the slurry pool 11, so that during the circulation conveying process, after the unloading section 122 transports the material to the slurry separation mechanism 2, the slurry attached to the unloading section 122 can flow into the slurry pool 11 along the inclined pool edge 111 to improve the slurry recovery efficiency.

[0034] As an example, the immersion mechanism 1 further includes a first limiting belt 13, which is disposed above the immersion section 123 and protrudes toward the interior of the slurry pool 11. A gap is defined between the immersion section 123 and the first limiting belt 13 for passage of material. By providing the downwardly protruding first limiting belt 13 on the immersion section 123 and cooperating with the recessed immersion section 123, the material can be positioned during movement, allowing the material to be fully immersed in the slurry pool 11 without changing its relative position.

[0035] As an example, a conveying roller group 124 can be sleeved inside the first limiting belt 13, so that the first limiting belt 13 can limit the material while assisting the immersion section 123 to synchronously convey the material. The conveying roller group 124 can be composed of a plurality of conveying rollers and a driving structure in the prior art, wherein there can be one or two active conveying rollers, which are located at one end or both ends of the first limiting belt 13, and a plurality of driven conveying rollers are spaced inside one side of the protrusion of the first limiting belt 13. The conveying rollers can be connected to the wall of the slurry pool 11, or a mounting frame can be set at the edge of the slurry pool 11 for connection and fixation. The driving structure can be a motor, a sprocket and a chain, or a motor, a gear and a toothed belt, or other structures that can drive the conveying rollers to rotate.

[0036] In the embodiment of the present application, the slurry separation mechanism 2 includes a second conveyor belt 21 and a liquid collecting plate 22. The second conveyor belt 21 is arranged behind the process of the first conveyor belt 12. The second conveyor belt 21 has an elastic mesh structure and a vibration structure inside. The liquid collecting plate 22 is arranged at the bottom of the second conveyor belt 21 and abuts against the horizontal surface of the second conveyor belt 21. The mesh structure of the second conveyor belt 21 allows the slurry to be automatically filtered to the liquid collecting plate 22 below. The elastic and meshed second conveyor belt 21 allows the vibration mechanism to vibrate the material and throw out the excess slurry, which then falls from the mesh gap into the liquid collecting plate 22. The collected slurry can then be returned to the slurry pool 11, thereby enabling efficient recovery of the slurry.

[0037] As an example, the slurry separation mechanism 2 further includes a second limiting belt 23, which is disposed above the second conveyor belt 21 and has a gap therebetween for the passage of materials. The second limiting belt 23 disposed above the second conveyor belt 21 allows the materials to be dynamically limited so that the relative positions of the materials do not change, thereby maintaining a stable positional relationship between the materials during the process.

[0038] As an example, a drive wheel assembly 24 is provided within the second conveyor belt 21. The drive wheel assembly 24 is disposed within the second conveyor belt 21 and is in contact with the inner bottom thereof for tensioning; alternatively, the drive wheel assembly 24 is disposed within the second conveyor belt 21 and is in contact with the inner top and inner bottom thereof for tensioning. The drive wheel assembly 24 can be composed of a plurality of rollers and a drive member as known in the art. The plurality of rollers are spaced apart and tensioned within the second conveyor belt 21, and are driven to rotate by a drive member. The drive member can be the same as the drive member of the conveyor roller assembly 124 of the first limiting belt 13.

[0039] As an example, the vibration structure includes end conveyor wheels 25 located at each end of the second conveyor belt 21. These wheels are driven to reciprocate horizontally by a first reciprocating drive member. Because the second conveyor belt 21 is elastic, the horizontal reciprocating movement of the end conveyor wheels 25 within it causes the second conveyor belt 21 to vibrate left and right, as well as slightly up and down. This in turn causes the material to vibrate, thereby removing the slurry from the material and the second conveyor belt 21. Furthermore, the roller structure assists in the transmission of the end portions of the second conveyor belt 21.

[0040] As an example, the vibration structure further includes a plurality of internal conveyor wheels 26 disposed within the second conveyor belt 21. The plurality of internal conveyor wheels 26 are spaced apart and located near the inner top of the second conveyor belt 21. The internal conveyor wheels 26 are driven to reciprocate vertically by a second reciprocating drive member. Because the second conveyor belt 21 is an elastic structure, when the internal conveyor wheels 26 at the inner top reciprocate up and down, the top surface of the second conveyor belt 21 can be vibrated up and down, thereby driving the material located on the top surface to vibrate up and down, and throwing off the slurry. The roller structure can assist in the top surface of the second conveyor belt 21 in conveying and can cooperate with the drive roller at the inner bottom to tension the second conveyor belt 21.

[0041] It should be noted that the conveying wheels at the top of the second conveyor belt 21 can all be set as internal conveying wheels 26 that can vibrate up and down, or can be set to be spaced and crossed with the driving rollers.

[0042] As an example, the two sides of the above-mentioned slurry separation mechanism 2 are respectively provided with a fixing frame 3 for installing the driving wheel group 24, the end transmission wheel 25, the internal transmission wheel 26, the first reciprocating driving member and the second reciprocating driving member; the fixing frame 3 and the end transmission wheel 25 are relative to each other. A horizontally arranged first waist hole 31 is opened, and the first waist hole 31 is provided for the end transmission wheel 25 to move back and forth left and right; the fixing frame 3 and the internal transmission wheel 26 are relative to each other. A vertically arranged second waist hole 32 is opened, and the second waist hole 32 is provided for the internal transmission wheel 26 to move back and forth up and down.

[0043] It should be noted that the internal transmission wheel 26 and the end transmission wheel 25 can be transmission rollers or transmission pulleys. When they are transmission rollers, a rotating bearing 27 can be sleeved on their ends. The rotating bearing 27 is slidably connected to the first waist hole 31 or the second waist hole 32. The first reciprocating drive member or the second reciprocating drive member is set on one side of the fixed frame 3 and can be connected to one side of the rotating bearing 27 through some rod-shaped connecting members to drive it to reciprocate, so that the end transmission wheel 25 and the internal transmission wheel 26 can rotate when they reciprocate up and down or left and right, thereby assisting the second conveyor belt 21 in transmission, such as Figure 2 When it is a transmission pulley, its two ends can be rotatably connected to the connecting plate 28, and the connecting plate 28 is slidably inserted into the first waist hole 31 or the second waist hole 32 through the connecting shaft 29, so that it can rotate when moving up and down or left and right, thereby assisting the second conveyor belt 21 in transmission, as shown. Figure 3 shown.

[0044] As an example, both the first and second reciprocating drive members can employ reciprocating drive structures or mechanisms known in the art. In this embodiment, the telescopic rod 4 is used as an example. The telescopic rod 4 can be an electric or pneumatic telescopic rod. The telescopic rod 4 drives the rotating bearing 27 or the connecting shaft 29 to move within the corresponding waist hole, achieving reciprocating motion. It should be noted that the first and second reciprocating drive members, as well as the drive members of the drive wheel assembly 24, can be disposed on either side of the fixed frame 3 to prevent interference between them.

[0045] Beneficial effects of the embodiments of the present application:

[0046] The concave material soaking section 123 and the raised first limiting belt 13 adapted in the soaking mechanism 1 can fully soak the material, and the positional relationship between the various materials remains stable during the soaking process;

[0047] The vibration structure in the slurry separation mechanism 2 can vibrate the material after slurry soaking to throw out excess slurry, thereby achieving slurry separation, and the positional relationship between the various materials remains stable during this process; and the thrown-out slurry falls onto the liquid collecting plate 22 through the mesh of the second conveyor belt 21, and the liquid collecting plate 22 transports the slurry back to the slurry pool 11, thereby realizing the recovery of excess slurry and improving the slurry recovery efficiency.

[0048] Although the preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they become aware of the basic creative concepts. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the embodiments of the present invention.

[0049] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the element.

[0050] The above is a detailed introduction to a material slurry soaking device provided by the present invention. Specific examples are used in this article to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method of the present invention and its core idea; at the same time, for general technical personnel in this field, based on the ideas of the present invention, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present invention.

Claims

1. A material slurry soaking device, characterized in that: It includes a slurry soaking mechanism and a slurry separation mechanism arranged in sequence along the process; The slurry soaking mechanism includes a slurry pool and a first conveyor belt, wherein the first conveyor belt is arranged above the slurry pool and is recessed into the slurry pool; The slurry separation mechanism includes a second conveyor belt and a liquid collecting plate. The second conveyor belt is arranged behind the process of the first conveyor belt. The second conveyor belt has an elastic mesh structure and a vibration structure is provided inside it. The liquid collecting plate is arranged at the bottom of the second conveyor belt and abuts against the horizontal surface of the second conveyor belt.

2. The material slurry soaking device according to claim 1, characterized in that: The first conveyor belt includes a horizontally arranged loading section and a unloading section and a recessed soaking section, and the loading section, the unloading section and the soaking section are respectively driven to rotate by a conveying roller group to form an independent circulating conveyor belt; the loading section and the unloading section are respectively connected to the two ends of the soaking section and are respectively located on the two side edges of the slurry pool.

3. The material slurry soaking device according to claim 2, characterized in that: The slurry soaking mechanism further includes a first limiting belt, which is arranged above the material soaking section and protrudes toward the inside of the slurry pool; a gap is provided between the material soaking section and the first limiting belt for material to pass through.

4. The material slurry soaking device according to claim 2, characterized in that: The pool edge of the slurry pool opposite to the unloading section is inclined toward one side of the slurry pool.

5. The material slurry soaking device according to claim 3, characterized in that: A conveying roller group is sleeved inside the first limiting belt.

6. The material slurry soaking device according to claim 1, characterized in that: The slurry separation mechanism further includes a second limiting belt, which is arranged above the second conveyor belt and has a gap between the second limiting belt and the second conveyor belt for materials to pass through.

7. The material slurry soaking device according to claim 1, characterized in that: A driving wheel set is provided in the second conveyor belt, and the driving wheel set is arranged inside the second conveyor belt and contacts and is tensioned with its inner bottom; or, the driving wheel set is arranged inside the second conveyor belt and contacts and is tensioned with its inner top and inner bottom respectively.

8. The material slurry soaking device according to claim 7, characterized in that: The vibration structure includes end conveying wheels arranged at both ends of the second conveying belt, and the end conveying wheels are driven to move horizontally back and forth by a first reciprocating driving member.

9. The material slurry soaking device according to claim 8, characterized in that: The vibration structure also includes a plurality of internal transmission wheels arranged inside the second conveyor belt. The plurality of internal transmission wheels are arranged at intervals and close to the inner top of the second conveyor belt. The internal transmission wheels are driven to move vertically back and forth by a second reciprocating drive member.

10. The material slurry soaking device according to claim 9, characterized in that: Fixed frames for mounting a driving wheel group, an end transmission wheel, an internal transmission wheel, a first reciprocating driving member, and a second reciprocating driving member are respectively provided on both sides of the slurry separation mechanism; a first waist hole arranged horizontally is provided at a position relative to the end transmission wheel of the fixed frame, and a second waist hole arranged vertically is provided at a position relative to the internal transmission wheel of the fixed frame.