Efficient cyclone desilter structure
Patent Information
- Application Number
- CN202521594682.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-29
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-07-29
AI Technical Summary
[0005]本实用新型的目的在于提供一种高效旋流除泥器结构,以解决上述背景技术中提到的现有技术中的用尼龙绳除草的机械遇到较为坚硬的植被不能进行处理的问题
1.本实用新型通过设置有螺纹孔、第一螺纹杆、连接口、输送壳、第一连接环、第二接口和第二连接环,通过螺纹孔可以旋转连接第一螺纹杆,使得连接口能够连接在输送壳上端,通过第二螺纹杆可以使得第一接口能够在进行连接时不会脱落,通过第一连接环可以与底座进行连接,通过第二接口可以与第二连接环连接,通过挡环可以对水流进行限制使得水流在进行输送时喷射的更为快速,通过第三螺纹杆可以使得第二连接环与装置进行连接时不会脱落。
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Figure CN224657023U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hydrocyclone desliming technology, specifically to a high-efficiency hydrocyclone desliming structure. Background Technology
[0002] A hydrocyclone separator is a device used for solid-liquid separation. It is mainly used to remove larger solid particles from liquids. It is not only used in the field of solids control in oil drilling, but also widely used in many other fields, such as trenchless drilling mud purification, geological exploration cuttings disposal, mine tailings wastewater treatment, construction mud dewatering, food industry impurity removal, pharmaceutical industry drug purification, and water treatment wastewater purification.
[0003] However, existing hydrocyclone desliming devices are prone to clogging the feed inlet and cone bottom discharge outlet of the hydrocyclone when the treated liquid contains fibrous, large solid particles or high concentrations of viscous substances, leading to equipment interruption and frequent shutdowns for cleaning.
[0004] Therefore, in order to solve the above problems, a high-efficiency cyclone desliming device structure is proposed. Utility Model Content
[0005] The purpose of this invention is to provide a high-efficiency cyclone desander structure to solve the problem mentioned in the background art that existing machinery using nylon ropes for weeding cannot handle relatively hard vegetation.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a high-efficiency cyclone desliming device structure, comprising: a connecting port, a conveying shell, and a transmission structure. The base in the connecting port is connected to a first threaded rod via a threaded hole. The lower end of the first threaded rod is connected to a first connecting ring. A conical shell is welded to the lower end of the first connecting ring. A third connecting ring in the transmission structure is bolted to the inner side of the conical shell. The lower end of the third connecting ring is connected to a rotating groove via a spacer mesh.
[0007] Preferably, the base in the connection port is hollowed out into threaded holes on all four sides, a conveying pipe is welded to the upper end of the base, a first interface is welded to the upper end of the conveying pipe, and a second threaded rod is rotatably connected to the four sides of the first interface.
[0008] Preferably, a first interface is welded to the upper end of the conveying pipe, and a second threaded rod is rotatably connected to the four sides of the first interface.
[0009] Preferably, a first connecting ring is welded to the upper end of the conical shell in the conveying shell, a second interface is welded to the lower end of the conical shell, and a retaining ring is welded to the inner side of the second interface.
[0010] Preferably, the lower end of the second interface is welded to the upper end of the second connecting ring, and the second connecting ring is rotatably connected to the third threaded rod on all four sides.
[0011] Preferably, the lower end of the third connecting ring in the transmission structure is bolted to the spacer mesh, the inner side of the spacer mesh is hinged to the outer side of the rotating groove, and the upper end of the rotating groove is bolted to the lower end of the connecting column.
[0012] Preferably, the four sides of the connecting column are hollowed out to form a conveying port, the upper end of the connecting column is bolted to a rotating structure, the upper end of the rotating structure is bolted to a rotating rod, the conveying port communicates with the spray outlet, the lower end of the rotating groove is bolted to a rotating blade, and the upper end of the rotating blade is hollowed out to form a spray outlet.
[0013] Compared with the prior art, the beneficial effects of this utility model are: 1. This utility model comprises a threaded hole, a first threaded rod, a connecting port, a conveying shell, a first connecting ring, a second interface, and a second connecting ring. The threaded hole allows the first threaded rod to be rotatably connected, enabling the connecting port to be connected to the upper end of the conveying shell. The second threaded rod ensures that the first interface will not detach during connection. The first connecting ring can be connected to the base, and the second interface can be connected to the second connecting ring. The retaining ring restricts the water flow, allowing the water to be sprayed more rapidly during conveying. The third threaded rod ensures that the second connecting ring will not detach when connected to the device.
[0014] 2. This utility model is provided with a third connecting ring, a spacer net, a vortex blade, and a connecting column. The third connecting ring can limit the spacer net, and the spacer net can separate the water flow. This allows the vortex blade to drive the water to be transported more quickly when it is working. The water can be transmitted to the upper end of the vortex blade through the spray outlet through the hollowed-out delivery port on the outside of the connecting column, so that the water can drive the vortex blade to rotate. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural schematic diagram of the present invention; Figure 2 This is a three-dimensional cross-sectional view of the structure of this utility model; Figure 3 This is a three-dimensional structural diagram of the connection port of this utility model; Figure 4 This is a three-dimensional schematic diagram of the transmission structure of this utility model.
[0016] In the diagram: 1. Connecting port; 101. Base; 102. Threaded hole; 103. First threaded rod; 104. Conveying pipe; 105. First interface; 106. Second threaded rod; 2. Conveying shell; 201. Conical shell; 202. First connecting ring; 203. Second interface; 204. Retaining ring; 205. Second connecting ring; 206. Third threaded rod; 207. Third interface; 3. Transmission structure; 301. Third connecting ring; 302. Output net; 303. Connecting column; 304. Conveying port; 305. Rotating structure; 306. Rotating rod; 307. Rotating groove; 308. Rotary blade; 309. Spray outlet. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0018] Please see Figure 1-4 One embodiment provided by this utility model: A high-efficiency hydrocyclone desliming device structure includes: a connection port 1, a conveying shell 2, and a transmission structure 3. The base 101 in the connection port 1 is connected to a first threaded rod 103 through a threaded hole 102. The lower end of the first threaded rod 103 is connected to a first connecting ring 202. A conical shell 201 is welded to the lower end of the first connecting ring 202. A third connecting ring 301 in the transmission structure 3 is bolted to the inner side of the conical shell 201. The lower end of the third connecting ring 301 is connected to a rotating groove 307 through a spacer mesh 302.
[0019] Furthermore, the base 101 in the connection port 1 is hollowed out on all four sides to form threaded holes 102. The upper end of the base 101 is welded with a conveying pipe 104. The upper end of the conveying pipe 104 is welded with a first interface 105. The first interface 105 is rotatably connected to the second threaded rod 106 on all four sides. The threaded holes 102 are used to rotatably connect to the first threaded rod 103, so that the connection port 1 can be connected to the upper end of the conveying shell 2.
[0020] Furthermore, a first interface 105 is welded to the upper end of the conveying pipe 104, and a second threaded rod 106 is rotatably connected to the four sides of the first interface 105. The second threaded rod 106 is used to ensure that the first interface 105 will not fall off during connection.
[0021] Furthermore, a first connecting ring 202 is welded to the upper end of the conical shell 201 in the conveying shell 2, a second interface 203 is welded to the lower end of the conical shell 201, and a retaining ring 204 is welded to the inner side of the second interface 203. The first connecting ring 202 is used to connect with the base 101, the second interface 203 is used to connect with the second connecting ring 205, and the retaining ring 204 is used to restrict the water flow so that the water is sprayed more quickly during the conveying process.
[0022] Furthermore, the lower end of the second interface 203 is welded to the upper end of the second connecting ring 205, and the second connecting ring 205 is rotatably connected to the third threaded rod 206 on all four sides. The third threaded rod 206 is used to ensure that the second connecting ring 205 will not fall off when connected to the device.
[0023] Furthermore, the lower end of the third connecting ring 301 in the transmission structure 3 is bolted to the spacer mesh 302. The inner side of the spacer mesh 302 is connected to the outer side of the rotating groove 307 by a hinge. The upper end of the rotating groove 307 is bolted to the lower end of the connecting column 303. The third connecting ring 301 is used to limit the spacer mesh 302. The spacer mesh 302 is used to separate the water flow, so that the vortex can drive the water to be transported more quickly when it is working. The hollowed-out conveying port 304 on the outer side of the connecting column 303 is used to allow large solid particles or high-concentration viscous substances to be transported to the upper end of the vortex through the spray port 309, so that the water can drive the vortex to rotate and flush them out.
[0024] Furthermore, the four sides of the connecting column 303 are hollowed out to form a conveying port 304. The upper end of the connecting column 303 is bolted to the rotating structure 305. The upper end of the rotating structure 305 is bolted to the rotating rod 306. The conveying port 304 is connected to the spray outlet 309. The lower end of the rotating groove 307 is bolted to the blade 308. The upper end of the blade 308 is hollowed out to form the spray outlet 309. The blade 308 is used to drive the water to spray.
[0025] Working principle: When in use, the first interface 105 and the second connecting ring 205 are connected to the device and the second threaded rod 106 and the third threaded rod 206 are used to limit them. Then, the rotating rod 306 is rotated, which causes the rotating structure 305 and the blade 308 to rotate. When the rotating structure 305 rotates, it disperses the water flow at the upper end of the conical shell 201, so that the water can enter the lower end of the conical shell 201 through the spacer mesh 302. The baffle ring 204 further restricts the spray, so that the water flow washes away the mud.
[0026] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model in any way. Those skilled in the art can readily implement this utility model based on the accompanying drawings and the above description. However, any modifications, alterations, or variations made by those skilled in the art without departing from the scope of the utility model's technical solution, utilizing the disclosed technical content, are equivalent embodiments of this utility model. Furthermore, any equivalent changes, alterations, or variations made to the above embodiments based on the essential technology of this utility model are still within the protection scope of this utility model's technical solution.
Claims
1. A high-efficiency hydrocyclone desliming device structure, comprising: The connection port (1), the conveying shell (2), and the transmission structure (3) are characterized in that: the base (101) in the connection port (1) is connected to the first threaded rod (103) by a threaded hole (102), the lower end of the first threaded rod (103) is connected to the first connecting ring (202), the lower end of the first connecting ring (202) is welded to a conical shell (201), the inner side of the conical shell (201) is connected to the third connecting ring (301) in the transmission structure (3) by bolts, and the lower end of the third connecting ring (301) is connected to the rotating groove (307) by a spacer mesh (302).
2. The high-efficiency hydrocyclone desliming device structure according to claim 1, characterized in that: The base (101) in the connection port (1) is hollowed out on all four sides to form threaded holes (102). A conveying pipe (104) is welded to the upper end of the base (101). A first interface (105) is welded to the upper end of the conveying pipe (104). A second threaded rod (106) is rotatably connected to the four sides of the first interface (105).
3. The high-efficiency hydrocyclone desliming device structure according to claim 1, characterized in that: The upper end of the conical shell (201) in the conveying shell (2) is welded with a first connecting ring (202), the lower end of the conical shell (201) is welded with a second interface (203), and the inner side of the second interface (203) is welded with a retaining ring (204).
4. The high-efficiency hydrocyclone desliming device structure according to claim 3, characterized in that: The lower end of the second interface (203) is welded to the upper end of the second connecting ring (205), and the second connecting ring (205) is rotatably connected to the third threaded rod (206) on all four sides.
5. The high-efficiency hydrocyclone desliming device structure according to claim 1, characterized in that: The lower end of the third connecting ring (301) in the transmission structure (3) is bolted to the spacer mesh (302), the inner side of the spacer mesh (302) is connected to the outer side of the rotating groove (307) by a hinge shaft, and the upper end of the rotating groove (307) is bolted to the lower end of the connecting column (303).
6. The high-efficiency hydrocyclone desliming device structure according to claim 5, characterized in that: The connecting column (303) is hollowed out on all four sides to form a conveying port (304). The upper end of the connecting column (303) is bolted to a rotating structure (305). The upper end of the rotating structure (305) is bolted to a rotating rod (306). The conveying port (304) is connected to the spray outlet (309). The lower end of the rotating groove (307) is bolted to a swivel blade (308). The upper end of the swivel blade (308) is hollowed out to form a spray outlet (309).