A cellulose acetate granular wind dust collector

CN224641623UActive Publication Date: 2026-08-18HUBEI XINYANG SPECIAL FIBER CO LTD
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Patent Information

Application Number
CN202522019995.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2026-08-18
Estimated Expiration
2035-09-19

AI Technical Summary

Technical Problem

[0004]常规的醋酸纤维素颗粒风力除尘器其结构相对复杂,结构之间相对固定,使得在设备结构的维护操作上,相对不便,使作业人员的操作费时费力,进而影响维护的作业效率

Benefits of technology

1、本实用新型,通过采用矩形法兰结构的连接方式将整个接料组件安装于风室组件的底部,同时利用螺栓结构的使用,配合衔接桩的设置,将出料阀安装于接料斗的底部,使接料斗和出料阀之间具有良好的结构拆分性,利用上述结构的使用,一方面可以最大程度的确保箱体、接料斗、出料阀相互之间具有灵活的结构拆分性,以保障维护操作的相对便捷性,另一方面又可以确保结构之间连接的牢固性与稳定性,尽可能的避免装置运作的过程中出现结构松脱等不必要的问题出现。

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Abstract

The utility model discloses a cellulose acetate granule wind force dust remover relates to cellulose acetate granule processing technical field, including air chamber subassembly and material receiving subassembly, the top of air chamber subassembly is connected with the feed pipe, the material receiving subassembly is installed in the bottom of air chamber subassembly, and the one side of air chamber subassembly is installed with the wind force subassembly, and the inside one side of air chamber subassembly is installed with the filter baffle. The cellulose acetate granule wind force dust remover, through with the material receiving subassembly between air chamber subassembly adopts rectangular flange structure and connects each other, can ensure that the structure between having relatively convenient structure dismounting nature, to facilitate the structure maintenance of filter baffle installed in the air chamber subassembly, cooperate and utilize the use of bolt structure and the convergence stake, can carry out structure maintenance in the first time when the discharge valve appears structure block, and the flange structure is also adopted and is connected between the wind force subassembly and air chamber subassembly, further makes the equipment structure's dismounting maintenance become relatively convenient.
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Description

Technical Field

[0001] This utility model relates to the field of cellulose acetate particle processing technology, specifically to a cellulose acetate particle wind-powered dust collector. Background Technology

[0002] Cellulose acetate is a thermoplastic resin obtained by esterification using acetic acid as a solvent and acetic anhydride as an acetylation agent under the action of a catalyst. It is the earliest commercially produced and continuously developing cellulose organic acid ester among cellulose derivatives. As a porous membrane material, cellulose acetate has the characteristics of high selectivity, high water permeability, and simple processing.

[0003] During its processing and production, wind-powered dust collectors are often used. A wind-powered dust collector for cellulose acetate granules is a dust removal device designed to handle cellulose acetate granules, improving dust removal efficiency through wind power.

[0004] Conventional cellulose acetate granular wind dust collectors have a relatively complex structure with relatively fixed components, making maintenance and operation relatively inconvenient, time-consuming and labor-intensive for operators, and thus affecting maintenance efficiency.

[0005] Therefore, in view of this, we have studied and improved the existing structure and its shortcomings, and proposed a cellulose acetate particle wind dust collector. Utility Model Content

[0006] The purpose of this invention is to provide a cellulose acetate particle wind-powered dust collector to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a cellulose acetate granule wind-powered dust collector, comprising a wind chamber assembly and a receiving assembly. The top of the wind chamber assembly is connected to a feed pipe, the receiving assembly is installed at the bottom of the wind chamber assembly, and a wind turbine assembly is installed on one side of the wind chamber assembly. A barrier mesh frame is installed on the side of the wind chamber assembly away from the wind turbine assembly, and a filter baffle is installed on the inner side of the wind chamber assembly. The receiving assembly includes a receiving hopper, a discharge valve, and a connecting pile. The discharge valve is installed at the bottom of the receiving hopper, and a connecting pile is provided between the discharge valve and the receiving hopper.

[0008] Furthermore, the air chamber assembly includes a housing, a wear-resistant plate, and a fixing frame. The inner wall surface of the housing is covered with a wear-resistant plate, and the fixing frames are symmetrically installed on the left and right sides inside the housing.

[0009] Furthermore, the air chamber assembly also includes an air outlet and an air inlet. An air outlet is provided on one side surface of the housing, and an air inlet is provided on the side of the housing away from the air outlet.

[0010] Furthermore, the feed pipe is welded to the box body and fixed to the top center of the box body, and the feed pipe is interconnected with the interior of the box body. Moreover, a flange structure is provided at the end of the feed pipe away from the box body.

[0011] Furthermore, the receiving hopper and the housing are connected to each other by a rectangular flange structure, and the interiors of the housing and the receiving hopper are interconnected. The filter baffle is vertically installed inside the housing near the air outlet by a fixing bracket.

[0012] Furthermore, the bottom of the receiving hopper is connected and fixed to the connecting pile by bolts, and the discharge valve and the connecting pile are set as an integral structure.

[0013] Furthermore, the wind power component includes a stabilizer, a servo motor, and a fan. The servo motor is installed in the middle of one side of the stabilizer, and the fan is installed inside the stabilizer.

[0014] Furthermore, the fan is connected to the power output end of the servo motor via a coupling, the stabilizer is connected and fixed to the air inlet via a circular flange structure, and the barrier mesh is fixed to the outer surface of the air outlet.

[0015] This utility model provides a cellulose acetate granule wind-powered dust collector, which has the following beneficial effects: 1. This utility model uses a rectangular flange structure to install the entire receiving assembly at the bottom of the air chamber assembly. Simultaneously, by utilizing bolts and connecting piles, the discharge valve is installed at the bottom of the receiving hopper. This allows for good structural disassembly between the receiving hopper and the discharge valve. Using this structure, on the one hand, it maximizes the flexibility of structural disassembly between the housing, receiving hopper, and discharge valve, ensuring relative convenience for maintenance and operation. On the other hand, it ensures the firmness and stability of the connections between the structures, minimizing unnecessary problems such as structural loosening during device operation.

[0016] 2. This utility model, by installing a barrier mesh frame on the outside of the air outlet on one side of the housing, effectively prevents foreign objects from entering without affecting the ventilation of the internal structure of the housing. On the other hand, it also minimizes the risk of materials inside the housing being blown to the outside of the air chamber assembly due to the operation of the wind power component. In addition, since the entire wind power component is connected and fixed to the outside of the air inlet using a central flange structure, the entire wind power component and the air chamber assembly have good structural disassembly and assembly, thereby ensuring the stability of the structural connection and further improving the ease of maintenance of the device structure. At the same time, the barrier mesh frame installed on the outside of the air inlet also prevents foreign objects from entering the interior of the air chamber assembly when the fan connected to the power output end rotates at high speed and blows the inside of the housing under the drive of the servo motor, thus preventing any impact on the quality of the materials. Attached Figure Description

[0017] Figure 1 This is a side view of the main body structure of a cellulose acetate granule wind-powered dust collector according to the present invention; Figure 2 This is a bottom view of the main body structure of a cellulose acetate granule wind-powered dust collector according to this utility model; Figure 3 This is a schematic diagram of the internal structure of the air chamber assembly of a cellulose acetate granule wind-powered dust collector according to this utility model.

[0018] In the diagram: 1. Air chamber assembly; 101. Housing; 102. Wear-resistant plate; 103. Fixing frame; 104. Air outlet; 105. Air inlet; 2. Feed pipe; 3. Receiving assembly; 301. Receiving hopper; 302. Discharge valve; 303. Connecting pile; 4. Wind power assembly; 401. Stabilizing frame; 402. Servo motor; 403. Fan; 5. Barrier mesh frame; 6. Filter plate. Detailed Implementation

[0019] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0020] like Figures 1 to 3As shown, a cellulose acetate granule wind-powered dust collector includes a wind chamber assembly 1 and a receiving assembly 3. A feed pipe 2 is connected to the top of the wind chamber assembly 1, and the receiving assembly 3 is installed at the bottom of the wind chamber assembly 1. A wind turbine assembly 4 is installed on one side of the wind chamber assembly 1, and a barrier mesh frame 5 is installed on the side of the wind chamber assembly 1 away from the wind turbine assembly 4. A filter baffle 6 is installed on the inner side of the wind chamber assembly 1. The receiving assembly 3 includes a receiving hopper 301, a discharge valve 302, and a connecting pile 303. The discharge valve 302 is installed at the bottom of the receiving hopper 301, and a connecting pile 303 is provided between the discharge valve 302 and the receiving hopper 301. The receiving hopper 301 is connected to the housing 101 via a rectangular flange. The structures are interconnected, and the interiors of the housing 101 and the receiving hopper 301 are interconnected. The filter baffle 6 is vertically installed inside the housing 101 near the air outlet 104 via the fixing bracket 103. The bottom of the receiving hopper 301 is connected and fixed to the connecting pile 303 by bolts. The discharge valve 302 and the connecting pile 303 are integrated. The entire receiving assembly 3 is installed at the bottom of the air chamber assembly 1 by using a rectangular flange connection. At the same time, the discharge valve 302 is installed at the bottom of the receiving hopper 301 by using bolts and connecting pile 303, so that the receiving hopper 301 and the discharge valve 302 have good structural separability.

[0021] like Figures 1 to 3 As shown, the air chamber assembly 1 includes a housing 101, a wear-resistant plate 102, and a fixing frame 103. The inner wall surface of the housing 101 is covered with the wear-resistant plate 102, and the fixing frames 103 are symmetrically installed on the left and right sides inside the housing 101. The air chamber assembly 1 also includes an air outlet 104 and an air inlet 105. An air outlet 104 is opened on one side surface of the housing 101, and an air inlet 105 is opened on the side of the housing 101 away from the air outlet 104. The feed pipe 2 is welded to the housing 101 and fixed to the top center of the housing 101. The feed pipe 2 is interconnected with the interior of the housing 101, and a flange structure is provided at the end of the feed pipe 2 away from the housing 101. The wind power assembly 4 includes a stabilizer 401 and a servo... The servo motor 402 and fan 403 are installed in the middle of one side of the stabilizer 401. The fan 403 is installed inside the stabilizer 401. The fan 403 is connected to the power output end of the servo motor 402 through a coupling. The stabilizer 401 is connected and fixed to the air inlet 105 through a circular flange structure. The barrier mesh 5 is fixed to the outer surface of the air outlet 104. The barrier mesh 5 is installed on the outside of the air inlet 105. Under the drive of the servo motor 402, when the fan 403 connected to the power output end rotates at high speed and blows the inside of the housing 101, it can prevent foreign objects at the tail from entering the inside of the air chamber assembly 1 as much as possible, so as to prevent the quality of the material from being affected.

[0022] In summary, as Figures 1 to 3As shown, when using this cellulose acetate granule wind-powered dust collector, firstly, the air chamber assembly 1 is connected to the feeding equipment via the feed pipe 2, which has a flange structure on the top, through the connecting pipe. Then, the wind power assembly 4 located outside the air inlet 105 on one side of the housing 101 is started. Driven by the servo motor 402 on one side of the stabilizer 401, the fan 403 connected to its power output end will rotate at high speed and generate sufficient wind power inside the housing 101. At this time, under the operation of the upstream feeding equipment, cellulose acetate particles are gradually conveyed into the interior of the housing 101. Due to the horizontal wind force generated by the operation of the wind power component 4, the cellulose acetate particles that enter the housing 101 vertically are blown. With the help of the filter baffle 6 installed inside the housing 101 near the air outlet 104 by the fixing frame 103, the blown cellulose acetate particles are blocked. At the same time, under the action of the wind force, the dust mixed between the cellulose acetate particles is blown to the surface of the filter baffle 6 and is adsorbed and collected. After the cellulose acetate particles hit the wear-resistant plate 102 on the inner wall surface of the housing 101 and the surface of the filter baffle 6, they fall vertically into the interior of the receiving hopper 301 and are gathered. With the assistance of the discharge valve 302, they are conveyed to the downstream equipment for the next processing operation.

[0023] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.

Claims

1. A cellulose acetate granule wind-powered dust collector, comprising a wind chamber assembly (1) and a material receiving assembly (3), characterized in that: The top of the air chamber assembly (1) is connected to a feed pipe (2), the receiving assembly (3) is installed at the bottom of the air chamber assembly (1), and a wind power assembly (4) is installed on one side of the air chamber assembly (1). A barrier mesh frame (5) is installed on the side of the air chamber assembly (1) away from the wind power assembly (4). At the same time, a filter baffle (6) is installed on the inside side of the air chamber assembly (1). The receiving assembly (3) includes a receiving hopper (301), a discharge valve (302) and a connecting pile (303). The bottom of the receiving hopper (301) is equipped with a discharge valve (302), and a connecting pile (303) is provided between the discharge valve (302) and the receiving hopper (301).

2. The cellulose acetate granule wind-powered dust collector according to claim 1, characterized in that, The air chamber assembly (1) includes a housing (101), a wear-resistant plate (102) and a fixing frame (103). The inner wall surface of the housing (101) is covered with a wear-resistant plate (102), and the fixing frame (103) is symmetrically installed on the left and right sides inside the housing (101).

3. The cellulose acetate granule wind-powered dust collector according to claim 2, characterized in that, The air chamber assembly (1) further includes an air outlet (104) and an air inlet (105). An air outlet (104) is provided on one side surface of the housing (101), and an air inlet (105) is provided on the side of the housing (101) away from the air outlet (104).

4. The cellulose acetate granule wind-powered dust collector according to claim 2, characterized in that, The feed pipe (2) is welded to the box body (101) and fixed to the top middle of the box body (101). The feed pipe (2) is connected to the interior of the box body (101), and a flange structure is provided at the end of the feed pipe (2) away from the box body (101).

5. A cellulose acetate granular wind-powered dust collector according to claim 3, characterized in that, The receiving hopper (301) and the box (101) are connected to each other by a rectangular flange structure, and the interiors of the box (101) and the receiving hopper (301) are interconnected. The filter baffle (6) is vertically installed inside the box (101) near the air outlet (104) by a fixing frame (103).

6. The cellulose acetate granule wind-powered dust collector according to claim 1, characterized in that, The bottom of the receiving hopper (301) is connected and fixed to the connecting pile (303) by bolts, and the discharge valve (302) and the connecting pile (303) are set as an integral structure.

7. A cellulose acetate granular wind-powered dust collector according to claim 3, characterized in that, The wind power component (4) includes a stabilizer (401), a servo motor (402) and a fan (403). The servo motor (402) is installed in the middle of one side of the stabilizer (401), and the fan (403) is installed inside the stabilizer (401).

8. A cellulose acetate granular wind-powered dust collector according to claim 7, characterized in that, The fan (403) is connected to the power output end of the servo motor (402) via a coupling. The stabilizer (401) is connected and fixed to the air inlet (105) via a circular flange structure. The barrier mesh (5) is fixed to the outer surface of the air outlet (104).