Whole book dynamic immersion type deacidification treatment device
The dynamic immersion deacidification device solves the problems of uneven deacidification and local residual acidic substances in books, achieving efficient and safe deacidification of the entire book while ensuring that the original appearance of the paper remains unchanged.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN RUILI CULTURAL RELICS PROTECTION TECH CO LTD
- Filing Date
- 2025-09-16
- Publication Date
- 2026-07-31
AI Technical Summary
In existing technologies, the deacidification treatment of the entire book has the problem that the deacidification solution is difficult to penetrate evenly, resulting in incomplete deacidification and easy acid reversion. In addition, existing methods are complicated, dangerous, or can damage the paper.
The device employs a dynamic immersion deacidification treatment unit, which drives the treatment box and paper to rotate via a drive component, allowing the deacidification solution to fully immerse the paper. Combined with a stable frame structure and sealing design, it ensures uniform immersion without damage.
This method achieves uniform deacidification of the entire book, reduces soaking time, avoids localized residual acidic substances, and ensures the stability and safety of the paper's original appearance.
Smart Images

Figure CN224578552U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of book-type cultural relic processing technology, and in particular to a whole-book dynamic immersion deacidification treatment device. Background Technology
[0002] Paper artifacts, especially ancient books and archives, carry invaluable historical and cultural information, but their long-term preservation faces a serious threat from paper acidification. Paper acidification primarily stems from acidic chemicals remaining from the papermaking process, acidic pollutants in the environment, and organic acids produced during the paper's own aging process. These acidic components catalyze the hydrolysis of cellulose, leading to a decrease in the paper's degree of polymerization, loss of strength, and ultimately, yellowing, brittleness, and even powdering. Statistics show that a large number of documents in my country suffer from acidification. For example, among the 670,000 volumes of Republican-era documents held by the National Library of China, over 50% have a pH value below 5.0, indicating severe acidification. Without effective deacidification treatment, the remaining lifespan of these documents may be less than a century.
[0003] Currently, deacidification technologies are mainly divided into two categories: liquid-phase deacidification and gas-phase deacidification. Liquid-phase deacidification includes aqueous solution deacidification and organic solution deacidification: Aqueous solution deacidification (such as soaking in alkaline aqueous solution) is lower in cost and has a better deacidification effect, but the treated paper is prone to shrinkage and deformation, and water-soluble ink may bleed and spread. Furthermore, it cannot be used to soak the entire book, otherwise it will lead to page adhesion and secondary damage. Organic solution deacidification (such as using solvents like hydrofluoroether to carry alkaline substances) can reduce paper deformation and accelerate drying, but organic solvents are usually flammable and toxic, and may dissolve ink, posing a threat to operator safety and the environment. Gas-phase deacidification (such as using alkaline gases like ethylene oxide and diethylzinc) can theoretically deacidify the entire book, but diethylzinc is prone to spontaneous combustion and explosion upon contact with air, posing a high risk. While the ethylene oxide method has potential, residual gas needs to be controlled, and the equipment must be airtight.
[0004] In addition, existing technologies have introduced some improved solutions to address the problem of deacidifying entire books. These include using a vacuum-sealed device to introduce a vaporized deacidifying agent (such as ethylene oxide), or using a dual-chamber system combining immersion and vaporization to treat the entire book. However, these methods still have significant limitations: when the entire book is immersed in the deacidifying solution, due to the complexity of the book's binding structure and paper pores, the solution cannot penetrate evenly into the book's interior and all fiber pores, easily causing uneven deacidification and localized residual acidic substances, resulting in incomplete deacidification and a tendency for acid reversion later. Furthermore, existing methods require high-quality equipment (e.g., vacuum level and sealing), are complex to operate, and may affect the original morphology of the paper and the stability of the writing. Therefore, there is an urgent need to develop a highly efficient method that can achieve uniform and thorough deacidification of entire books without disassembly or damage to their original appearance. Utility Model Content
[0005] The purpose of this invention is to provide a whole-book dynamic immersion deacidification treatment device to address the above-mentioned shortcomings. This device solves the problem that in the prior art, when books are soaked in deacidification solution, the complex binding structure and paper pores make it difficult for the deacidification solution to penetrate evenly into the interior of the book and all fiber pores, which easily leads to uneven deacidification and local residual acidic substances, resulting in incomplete deacidification and easy acid reversion in the later stage.
[0006] This utility model is achieved through the following solution: The whole-book dynamic immersion deacidification treatment device includes a frame, a drive assembly, a treatment box, and a treatment frame; the frame is provided with a rotating rod that rotates in conjunction with the drive assembly and the treatment box; the treatment frame can be sealed and placed into the treatment box; the drive assembly can drive the treatment box to rotate through the rotating rod; the treatment frame is provided with a fixing part for fixing the paper to be immersed.
[0007] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the frame includes a supporting base, a supporting upright, and supporting connecting rods; the supporting upright is obliquely arranged at both ends of the supporting base, and the supporting upright and the supporting base form a triangular supporting frame; the supporting connecting rod is arranged between adjacent triangular supporting frames, and a bearing seat that cooperates with the rotating rod is provided on the supporting connecting rod; a flange that cooperates with the treatment box is provided on the end of the rotating rod away from the drive assembly.
[0008] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the treatment box includes a box body structure, a box cover structure, and a flange connector; the flange connector is disposed on the box body structure, the box cover structure is hinged to the box body structure, and a sealing layer is provided on the contact surface of the box cover structure and the box body structure; a quick-opening assembly is also provided between the box body structure and the box cover structure.
[0009] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the quick-opening assembly includes multiple parallel quick-opening components; the quick-opening component includes a first hinge seat, a connecting seat, a second hinge seat, and a locking handle; the first hinge seat and the second hinge seat are respectively disposed on the front and rear end faces of the housing assembly, one end of the connecting seat is connected to the first hinge seat, and a connecting sleeve is provided on the other end, with openings in the side wall of the connecting sleeve; the connecting seat is connected to the housing structure.
[0010] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the locking handle is hinged to the second hinge seat; the locking handle includes a rod body and a handle part; one end of the rod body is hinged to the second hinge seat, and the other end is provided with an external thread that mates with the handle part, and the handle part is provided with a threaded groove; the handle part is connected to the rod body through the threaded groove, and an abutment ring is also sleeved on the rod body.
[0011] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the two sides of the box structure are provided with liquid inlet and liquid outlet; valves are provided on both the liquid inlet and liquid outlet; the drive assembly includes a motor, a reducer and a drive shaft; the output end of the motor is connected to the reducer, the reducer is connected to the drive shaft, and the drive shaft is connected to the rotating rod.
[0012] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the treatment frame includes a frame structure and a first treatment box; the frame structure has a cavity inside for accommodating the first treatment box; the frame structure has a first through hole around its perimeter; the first treatment box has a second through hole around its perimeter; the frame structure has a detachable top frame at its top, and a handrail is provided on the top frame.
[0013] Based on the structure of the above-described dynamic immersion deacidification treatment device, the treatment frame includes a frame structure and a second treatment box; the frame structure has an internal cavity for accommodating the second treatment box; the frame structure has a first through hole around its perimeter; the second treatment box has a third through hole around its perimeter; the frame structure has a partition and a first top plate inside, the size of the partition and the side frame of the frame structure being adapted to the width of the second treatment box; the dimension from the first top plate to the bottom frame of the frame structure is adapted to the length of the second treatment box; the first top plate is detachably connected to the frame structure; the top of the frame structure has a detachable top frame, and a handrail is provided on the top frame.
[0014] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the treatment frame includes a frame structure and a book-hanging assembly; the top of the frame structure is provided with a detachable top frame, and a handrail is provided on the top frame; the book-hanging assembly is located inside the frame structure near the top frame; a first through hole is provided around the frame structure; the book-hanging assembly includes a support strip and a book-hanging strip, the support strip is arranged parallel inside the frame structure, and the support strip is provided with multiple sets of connecting holes, which are arranged along the length direction of the support strip; locking holes that cooperate with the connecting holes are provided on both sides of the book-hanging strip, and the support strip and the book-hanging strip are connected as one unit by bolts.
[0015] Based on the structure of the above-mentioned dynamic immersion deacidification treatment device, the treatment frame includes a frame structure and a book-hanging assembly; the top of the frame structure is provided with a detachable top frame, and the top frame is provided with a handrail; a second top plate is detachably provided inside the frame structure; the book-hanging assembly is located inside the frame structure near the second top plate; a first through hole is provided around the frame structure; the book-hanging assembly includes a support strip and a book-hanging strip, the support strip is arranged parallel inside the frame structure, and the support strip is provided with multiple sets of connecting holes, which are arranged along the length direction of the support strip; locking holes that cooperate with the connecting holes are provided on both sides of the book-hanging strip, and the support strip and the book-hanging strip are connected as one unit by bolts.
[0016] In summary, due to the adoption of the above technical solution, the beneficial effects of this utility model are: 1. When paper needs to be deacidified, the paper is fixed in the processing frame, and deacidification solution is poured into the processing box. The driving component drives the processing box and the paper inside to rotate. During the rotation, the deacidification solution can fully wet the paper. Compared with traditional static soaking, it can greatly reduce the soaking time and improve the wetting effect.
[0017] 2. The frame of this design utilizes angled support frames to create a stable triangular structure on both sides. Supporting rods connect the entire frame as a whole, lifting the drive assembly and processing box. This prevents interference between the processing box and other components during rotation, ensuring efficient dynamic rotation and impregnation. Rollers are also included to facilitate movement of the entire processing unit. When moved to the designated position, rotating support pads ensure stable contact with the ground, guaranteeing frame stability during rotation. The rotating rods, secured by bearing seats, rotate stably on the frame. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall appearance and structure of the present utility model; Figure 2 This is a schematic diagram of the overall internal structure of this utility model; Figure 3 This is a schematic diagram of the quick-opening component in this utility model; Figure 4 This is a schematic diagram of the structure of the first processing box in this utility model; Figure 5 This is a schematic diagram of the appearance structure of the processing frame in this utility model when it is the first structure; Figure 6 This is a schematic diagram of the internal structure of the processing frame in the present invention when it is the first type of structure; Figure 7 This is a schematic diagram of the structure of the second processing box in this utility model; Figure 8 This is a schematic diagram of the internal structure of the processing frame in this utility model when it is the second type of structure; Figure 9 This is a schematic diagram of the internal structure of the processing frame in this utility model when it is the third type of structure; Figure 10 This is a schematic diagram of the internal structure of the processing frame in this utility model when it is the fourth type of structure; Figure Descriptions: 1. Frame; 2. Drive assembly; 3. Processing box; 4. Processing frame; 5. Rotating rod; 6. Dust cover; 7. Book; 11. Support base; 12. Support stand; 13. Support connecting rod; 14. Bearing seat; 15. Roller; 16. Contact pad; 17. Flange; 21. Motor; 22. Reducer; 23. Drive shaft; 31. Box structure; 32. Box cover structure; 33. Flange connector; 34. Sealing layer; 35. Quick-release component; 36. Liquid inlet; 37. Liquid outlet; 351. First hinge seat; 352. Connecting... 353. Second hinge seat; 354. Locking handle; 355. Connecting sleeve; 356. Rod body; 357. Handle body; 358. Abutment ring; 41. Frame structure; 42. First processing box; 43. First through hole; 44. Second through hole; 45. Top frame; 46. Handrail; 47. Second processing box; 48. Third through hole; 49. Partition; 410. First top plate; 411. Side frame; 412. Bottom frame; 413. Support bar; 414. Book hanging bar; 415. Connecting hole; 416. Second top plate. Detailed Implementation
[0019] All features disclosed in this specification, or all steps in all disclosed methods or processes, may be combined in any way, except for mutually exclusive features and / or steps.
[0020] Any feature disclosed in this specification (including any appended claims and abstract) may be replaced by other equivalent or similar features, unless specifically stated otherwise. That is, unless specifically stated otherwise, each feature is merely one example of a series of equivalent or similar features.
[0021] In the description of this utility model, it should be understood that the terms "upper", "lower", "left", "right", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0022] Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature.
[0023] Example 1 like Figures 1-10 As shown, this utility model provides a technical solution: The whole dynamic immersion deacidification treatment device includes a frame 1, a drive assembly 2, a treatment box 3 and a treatment frame 4; the frame 1 is provided with a rotating rod 5 that rotates in conjunction with the drive assembly 2 and the treatment box 3; the treatment frame 4 can be sealed and placed into the treatment box 3; the drive assembly 2 can drive the treatment box 3 to rotate through the rotating rod 5, and the treatment frame 4 is provided with a fixing part for fixing the paper to be soaked. Based on the above structure, when paper needs to be deacidified, the paper is fixed in the processing frame 4, and deacidification liquid is poured into the processing box 3. The action of the drive component 2 drives the processing box 3 and the paper inside to rotate. During the rotation, the deacidification liquid can fully wet the paper. Compared with traditional static soaking, it can greatly reduce the soaking time and improve the wetting effect.
[0024] As an example, the frame 1 may include a support base 11, a support frame 12, and a support link 13; the support frame 12 is obliquely arranged at both ends of the support base 11, and the support frame 12 and the support base 11 form a triangular support frame; the support link 13 is arranged between adjacent triangular support frames, and a bearing seat 14 that cooperates with the rotating rod 5 is provided on the support link 13; two bearing seats 14 are provided on the support link 13. Rollers 15 and contact pads 16 can be provided at the bottom of the support base 11; the contact pad 16 is provided with a threaded rod that connects to the support base 11 and a support pad that contacts the ground; the support pad and the threaded rod are integrally formed, and the support base 11 is provided with a threaded hole that mates with the threaded rod; the support pad is raised or lowered by rotating the threaded rod.
[0025] A flange 17 for use with the processing box 3 may be provided on the end of the rotating rod 5 away from the drive assembly 2; Based on the above structure, the frame 1 of this solution forms a stable triangular structure on both sides by setting an inclined support frame 12. At the same time, the entire frame 1 is connected into a whole by a support connecting rod 13. The frame 1 lifts the drive assembly 2 and the processing box 3, so that the processing box 3 will not interfere with other components when rotating, ensuring the efficient execution of the dynamic rotation immersion process. In addition, the solution is equipped with rollers 15 to facilitate the movement of the entire processing device. When it is moved to the predetermined position, it is stably contacted with the ground by rotating support pads, ensuring the stability of the frame 1 during rotation; the rotating rod 5 can rotate more stably on the frame 1 through the bearing seat 14.
[0026] As an example, the drive assembly 2 may include a motor 21, a reducer 22, and a drive shaft 23; the output end of the motor 21 is connected to the reducer 22, the reducer 22 is connected to the drive shaft 23, and the drive shaft 23 is connected to the rotating rod 5.
[0027] Based on the above structure, the motor 21 provides a power source for the entire processing device, causing the drive shaft 23 and its connected rotating rod 5 and processing box 3 to rotate.
[0028] As an example, the processing box 3 may include a box structure 31, a box cover structure 32, and a flange connector 33; the flange connector 33 is disposed on the box structure 31, the box cover structure 32 is hinged to the box structure 31, and a sealing layer 34 is disposed on the contact surface between the box cover structure 32 and the box structure 31; a quick-opening assembly is also disposed between the box structure 31 and the box cover structure 32. Based on the above structure, the box structure 31 is connected and fixed to the end flange 17 of the rotating rod 5 through the flange connector 33; the flange connection can make the connection between the rotating rod 5 and the box structure 31 more stable; the quick-opening component in this solution can quickly close the box structure 31 and the box cover structure 32 and squeeze the sealing layer 34 to achieve a seal; while ensuring the opening and closing efficiency, the overall sealing performance is guaranteed, and the internal deacidification liquid is prevented from flowing out.
[0029] As an example, the quick-opening assembly may include multiple parallel quick-opening parts 35; the quick-opening part 35 may include a first hinge seat 351, a connecting seat 352, a second hinge seat 353, and a locking handle 354; the first hinge seat 351 and the second hinge seat 353 are respectively disposed on the front and rear end faces of the housing assembly, the connecting seat 352 is generally L-shaped, one end of the connecting seat 352 is connected to the first hinge seat 351, and the other end is provided with a connecting sleeve 355, the side wall of the connecting sleeve 355 is provided with an opening; the connecting seat 352 is connected to the housing structure 31.
[0030] The locking handle 354 is hinged to the second hinge seat 353; the locking handle 354 may include a rod body 356 and a handle part 357; one end of the rod body 356 is hinged to the second hinge seat 353, and the other end is provided with an external thread that mates with the handle part 357, and the handle part 357 is provided with a threaded groove; the handle part 357 is connected to the rod body 356 through the threaded groove, and an abutment ring 358 may also be sleeved on the rod body 356; Based on the above structure, when the box structure 31 needs to be closed, the box cover structure 32 is placed on the box structure 31, and the rod part 356 is pulled into the connecting sleeve 355 through the side wall opening of the connecting sleeve 355. By rotating the handle part 357, the abutment ring 358 abuts against the end of the connecting sleeve 355, thereby achieving rapid closing of the box cover structure 32. Conversely, rapid opening of the box cover structure 32 is achieved. During the rapid closing process, the box cover structure 32 will squeeze the sealing layer 34 to achieve a seal.
[0031] As an example, an inlet 36 and a drain 37 can be provided on both sides of the housing structure 31; valves are provided on both the inlet 36 and the drain 37.
[0032] Based on the above structure, the deacidification solution can be injected directly into the tank structure 31 through the inlet 36; at the same time, the deacidification solution can be quickly discharged through the outlet 37.
[0033] As an example, processing box 4 is configured with four different structures depending on the type of paper being processed: The first structure is used to process unbound paper documents of size 4K; at this time, the processing frame 4 may include a frame structure 41 and a first processing box 42; the frame structure 41 is provided with a cavity for accommodating the first processing box 42; a first through hole 43 is provided around the frame structure 41; and a second through hole 44 is provided around the first processing box 42. The end of the first processing box 42 can be opened to hold unbound paper of size 4K; the first through holes 43 are evenly spaced around the frame structure 41; the second through holes 44 are evenly spaced around the circumference of the first processing box 42.
[0034] The size of the first processing box 42 is adapted to the internal dimensions of the frame structure 41, and multiple first processing boxes 42 can be set in the frame structure 41.
[0035] A detachable top frame 45 is provided on the top of the frame structure 41, and a handrail 46 is provided on the top frame 45.
[0036] Based on the above structure, the top frame 45 is removed during use, and then the first processing box 42 containing the paper is placed into the frame structure 41. The entire processing box 4 can be easily removed from the processing box 3 by setting the handle 46. A first through hole 43 is also set in the frame structure 41, and a second through hole 44 is set in the first processing box 42 so that the deacidifying liquid can freely enter and exit the first processing box 42 during the rotation of the processing box 3, so as to efficiently wet the paper in the first processing box 42.
[0037] The second structure is used to process unbound paper documents of A4 size; at this time, the processing frame 4 may include a frame structure 41 and a second processing box 47; the frame structure 41 is provided with a cavity for accommodating the second processing box 47; a first through hole 43 is provided around the frame structure 41; and a third through hole 48 is provided around the second processing box 47. The end of the second processing box 47 can be opened to hold unbound paper of A4 size; the first through holes 43 are evenly spaced in multiple places around the frame structure 41; the third through holes 48 are evenly spaced in multiple places around the second processing box 47.
[0038] A partition 49 and a first top plate 410 are provided inside the frame structure 41. The partition 49 is symmetrically arranged inside the frame, and the size of the partition 49 and the side frame 411 of the frame structure 41 are adapted to the width of the second processing box 47. The size of the first top plate 410 to the bottom frame 412 of the frame structure 41 is adapted to the length of the second processing box 47. The cavity structure formed by the partition 49, the first top plate 410, the side frame 411 and the bottom frame 412 can just accommodate the second processing box 47. Multiple second processing boxes 47 can be set in the frame structure 41. The first top plate 410 is detachably connected to the frame structure 41.
[0039] A detachable top frame 45 is provided on the top of the frame structure 41, and a handrail 46 is provided on the top frame 45.
[0040] Based on the above structure, when in use, the top frame 45 and the first top plate 410 are removed, and then the second processing box 47 containing the paper is placed into the frame structure 41; then it is fixed in sequence; by setting the handle 46, the entire processing frame 4 can be easily taken out from the processing box 3. The frame structure 41 is also provided with a first through hole 43, and the second processing box 47 is provided with a third through hole 48, so that the deacidifying liquid can freely enter and exit the second processing box 47 during the rotation of the processing box 3, so as to efficiently wet the paper in the second processing box 47.
[0041] The third structure is used to process 4K bound paper documents; at this time, the processing frame 4 may include a frame structure 41 and a book hanging assembly; a detachable top frame 45 is provided on the top of the frame structure 41, and a handrail 46 is provided on the top frame 45; the book hanging assembly is located inside the frame structure 41 near the top frame 45; a first through hole 43 is provided around the frame structure 41. The book-hanging assembly may include a support strip 413 and a book-hanging strip 414. The support strip 413 is arranged parallel inside the frame structure 41, and the support strip 413 is provided with multiple sets of connecting holes 415, which are arranged along the length of the support strip 413. The book-hanging strip 414 is provided with locking holes on both sides that cooperate with the connecting holes 415. The support strip 413 and the book-hanging strip 414 are connected as one unit by bolts.
[0042] Based on the above structure, multiple sets of connecting holes 415 are provided on the support strip 413, which can adjust the fixed position of the hanging strip 414 and adjust the position within a certain range according to the size of different books 7. This allows the books 7 to be better inserted into the hanging strip 414. Usually, the books 7 are turned to the center position and then hung on the hanging strip 414. Since there is only a small space between the binding of the books 7 and the top frame 45, the books 7 cannot fall off the hanging strip 414 when the processing frame 4 rotates, thus realizing dynamic immersion operation.
[0043] The fourth structure is used to process A4-sized bound paper documents; in this case, the processing frame 4 may include a frame structure 41 and a book hanging assembly; a detachable top frame 45 is provided on the top of the frame structure 41, and a handrail 46 is provided on the top frame 45; a second top plate 416 is detachably provided inside the frame structure 41; the book hanging assembly is located inside the frame structure 41 near the second top plate 416; a first through hole 43 is provided around the frame structure 41. The book-hanging assembly may include a support strip 413 and a book-hanging strip 414. The support strip 413 is arranged parallel inside the frame structure 41, and the support strip 413 is provided with multiple sets of connecting holes 415, which are arranged along the length of the support strip 413. The book-hanging strip 414 is provided with locking holes on both sides that cooperate with the connecting holes 415. The support strip 413 and the book-hanging strip 414 are connected as one unit by bolts.
[0044] Based on the above structure, multiple sets of connecting holes 415 are provided on the support strip 413, which can adjust the fixed position of the hanging strip 414 and adjust the position within a certain range according to the size of different books 7. This allows the books 7 to be better inserted into the hanging strip 414. Usually, the books 7 are turned to the center position and then hung on the hanging strip 414. Since there is only a small space between the binding part of the books 7 and the second top plate 416, the books 7 cannot fall off the hanging strip 414 when the processing frame 4 rotates, thus realizing dynamic immersion operation.
[0045] As an example, a dust cover 6 can also be installed on the rack 1. By installing the dust cover 6, dust can be reduced to a certain extent from entering the drive assembly 2.
[0046] As an example, this solution may also include a deacidification liquid recovery component (not shown) at the bottom, which can recover the deacidification liquid discharged from the treatment tank 3.
[0047] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A dynamic immersion deacidification treatment device, characterized in that: It includes a frame (1), a drive assembly (2), a processing box (3) and a processing frame (4); the frame (1) is provided with a rotating rod (5) that rotates in conjunction with the drive assembly (2) and the processing box (3); the processing frame (4) can be sealed and placed into the processing box (3); the drive assembly (2) can drive the processing box (3) to rotate through the rotating rod (5); the processing frame (4) is provided with a fixing part for fixing the paper to be soaked.
2. The whole-house dynamic immersion deacidification treatment device as described in claim 1, characterized in that: The frame (1) includes a support base (11), a support stand (12), and a support link (13); the support stand (12) is obliquely arranged at both ends of the support base (11), and the support stand (12) and the support base (11) form a triangular support frame; the support link (13) is arranged between adjacent triangular support frames; the support link (13) is provided with a bearing seat (14) that cooperates with the rotating rod (5); the end of the rotating rod (5) away from the drive assembly (2) is provided with a flange (17) that cooperates with the processing box (3).
3. The whole-house dynamic immersion deacidification treatment device as described in claim 2, characterized in that: The processing box (3) includes a box body structure (31), a box cover structure (32), and a flange connector (33); the flange connector (33) is disposed on the box body structure (31), the box cover structure (32) is hinged to the box body structure (31), and a sealing layer (34) is provided on the contact surface between the box cover structure (32) and the box body structure (31); a quick-opening assembly is also provided between the box body structure (31) and the box cover structure (32).
4. The whole-house dynamic immersion deacidification treatment device as described in claim 3, characterized in that: The quick-opening assembly includes multiple parallel quick-opening parts (35); the quick-opening part (35) includes a first hinge seat (351), a connecting seat (352), a second hinge seat (353), and a locking handle (354); the first hinge seat (351) and the second hinge seat (353) are respectively disposed on the front and rear end faces of the housing assembly, one end of the connecting seat (352) is connected to the first hinge seat (351), and the other end is provided with a connecting sleeve (355), and the side wall of the connecting sleeve (355) is provided with an opening; the connecting seat (352) is connected to the housing structure (31).
5. The whole-house dynamic immersion deacidification treatment device as described in claim 4, characterized in that: The locking handle (354) is hinged to the second hinge seat (353); the locking handle (354) includes a rod body (356) and a handle (357); one end of the rod body (356) is hinged to the second hinge seat (353), and the other end is provided with an external thread that mates with the handle (357); the handle (357) is provided with a threaded groove; the handle (357) is connected to the rod body (356) through the threaded groove, and the rod body (356) is also fitted with an abutment ring (358).
6. The whole-house dynamic immersion deacidification treatment device as described in any one of claims 3 to 5, characterized in that: The box structure (31) has an inlet (36) and a outlet (37) on both sides; valves are provided on both the inlet (36) and the outlet (37); the drive assembly (2) includes a motor (21), a reducer (22) and a drive shaft (23); the output end of the motor (21) is connected to the reducer (22), the reducer (22) is connected to the drive shaft (23), and the drive shaft (23) is connected to the rotating rod (5).
7. The whole-house dynamic immersion deacidification treatment device as described in any one of claims 1 to 5, characterized in that: The processing frame (4) includes a frame structure (41) and a first processing box (42); the frame structure (41) has a cavity inside for accommodating the first processing box (42); the frame structure (41) has a first through hole (43) around its perimeter; the first processing box (42) has a second through hole (44) around its perimeter; the frame structure (41) has a detachable top frame (45) on its top, and a handrail (46) is provided on the top frame (45).
8. The whole-house dynamic immersion deacidification treatment device as described in any one of claims 1 to 5, characterized in that: The processing frame (4) includes a frame structure (41) and a second processing box (47); the frame structure (41) has a cavity inside for accommodating the second processing box (47); the frame structure (41) has a first through hole (43) around its perimeter; the second processing box (47) has a third through hole (48) around its perimeter; the frame structure (41) has a partition (49) and a first top plate (410) inside its perimeter, the size of the partition (49) and the side frame (411) of the frame structure (41) being adapted to the width of the second processing box (47); the size of the first top plate (410) to the bottom frame (412) of the frame structure (41) being adapted to the length of the second processing box (47); the first top plate (410) and the frame structure (41) are detachably connected; the top of the frame structure (41) has a detachable top frame (45), and a handrail (46) is provided on the top frame (45).
9. The whole-house dynamic immersion deacidification treatment device as described in any one of claims 1 to 5, characterized in that: The processing frame (4) includes a frame structure (41) and a book hanging assembly; the top of the frame structure (41) is provided with a detachable top frame (45), and a handrail (46) is provided on the top frame (45); the book hanging assembly is located inside the frame structure (41) near the top frame (45); a first through hole (43) is provided around the frame structure (41); the book hanging assembly includes a support strip (413) and a book hanging strip (414), the support strip (413) is arranged parallel inside the frame structure (41), the support strip (413) is provided with multiple sets of connecting holes (415), the connecting holes (415) are set in multiple directions along the length of the support strip (413); the book hanging strip (414) is provided with locking holes on both sides that cooperate with the connecting holes (415), and the support strip (413) and the book hanging strip (414) are connected as one unit by bolts.
10. The whole-house dynamic immersion deacidification treatment device as described in any one of claims 1 to 5, characterized in that: The processing frame (4) includes a frame structure (41) and a book-hanging assembly; the top of the frame structure (41) is provided with a detachable top frame (45), and a handrail (46) is provided on the top frame (45); a second top plate (416) is detachably provided inside the frame structure (41); the book-hanging assembly is located inside the frame structure (41) near the second top plate (416); a first through hole (43) is provided around the frame structure (41); the book-hanging assembly The component includes a support strip (413) and a book hanging strip (414). The support strip (413) is arranged parallel inside the frame structure (41). The support strip (413) is provided with multiple sets of connecting holes (415). The connecting holes (415) are arranged in multiple ways along the length of the support strip (413). The book hanging strip (414) is provided with locking holes on both sides that cooperate with the connecting holes (415). The support strip (413) and the book hanging strip (414) are connected as one unit by bolts.