Efficient copper oxide sheet filtering device
By designing a high-efficiency copper oxide sheet filtration device, utilizing a support mechanism, filter box, filter arc screen, cleaning mechanism, and drive mechanism, the problems of low filtration efficiency and easy clogging of traditional copper oxide sheet filtration are solved, achieving a high-efficiency and stable filtration effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2026-03-20
AI Technical Summary
Traditional copper oxide sheet filtration methods are inefficient, prone to clogging, and complex to operate. They are particularly difficult to meet the high-efficiency filtration requirements when processing high-concentration mixtures, and lack timely cleaning and conveying functions, which affects production efficiency.
A high-efficiency copper oxide scale filtration device was designed, including a support mechanism, a filter box, a filter arc screen, a cleaning mechanism, a spiral conveyor blade, and a drive mechanism. The support mechanism provides stable support, the filter box guides the flow, the filter arc screen rotates for filtration, the cleaning mechanism cleans in a timely manner, the spiral conveyor blade transports the copper oxide scale, and the drive mechanism provides rotational power to achieve high-efficiency filtration.
It improves the efficiency and quality of copper oxide sheet filtration, prevents screen clogging, ensures stable operation of the filtration device, meets the requirements of high-efficiency filtration, and improves production efficiency.
Smart Images

Figure CN224009238U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of filter equipment, particularly to copper oxide skin high -efficient filter equipment. BACKGROUND
[0002] Copper oxide skin is a byproduct produced in the processing of copper materials, usually containing copper oxide, copper particles and other impurities. Because it has a certain recycling value, the filtration and recycling of copper oxide skin become an important link in the copper processing industry. Efficient copper oxide skin filtration not only improves the utilization rate of copper resources, but also reduces environmental pollution, which has important economic and ecological significance.
[0003] The traditional copper oxide skin filtration method mainly adopts static filtration or simple mechanical screening. Although these methods can separate part of the solid particles, they have problems such as low filtration efficiency, easy clogging of screen holes, and complex operation. Especially when dealing with high-concentration copper oxide skin mixture, the traditional filtration method often fails to meet the demand of efficient filtration. In addition, the existing filtration equipment usually lacks the function of timely cleaning and conveying of solid particles during the filtration process, resulting in gradual decline of filtration efficiency, and even frequent shutdown for cleaning, which seriously affects production efficiency. SUMMARY
[0004] To solve the above technical problems, the utility model provides a copper oxide skin high -efficient filter device that improves filtration efficiency.
[0005] The copper oxide skin high -efficient filter device of the utility model comprises:
[0006] The support mechanism is independently fixed and arranged;
[0007] The filter box is installed on the support mechanism, and a flow guide piece is installed at the bottom end of the filter box;
[0008] The mounting pipe is rotatably installed in the through hole of the filter box, and a filter arc screen is coaxially arranged on the mounting pipe;
[0009] The support pipe is installed at the other end of the filter arc screen, and the support pipe is rotatably connected with the filter box;
[0010] The cleaning mechanism is installed in the interior of the filter box, and is used for timely cleaning of the residual copper oxide on the filter arc screen;
[0011] The spiral conveying blade is coaxially installed in the interior of the filter arc screen;
[0012] The adding funnel is installed on the filter box, and the tail end of the adding funnel passes through the through hole of the filter box and is located in the filter arc screen;
[0013] The driving mechanism is installed on the filter box and is used for providing rotating force to the mounting pipe.
[0014] Further, the driving mechanism comprises:
[0015] The mounting frame is mounted on the filter box, and the driving motor is mounted on the mounting frame;
[0016] The driving shaft is coaxially mounted on the output end of the driving motor, and the transmission gear is coaxially mounted on the driving shaft;
[0017] The outer gear ring is coaxially mounted on the mounting pipe, and the transmission gear is meshingly mounted with the outer gear ring.
[0018] As a preferred, the driving shaft is rotatably mounted in cooperation with the filter box.
[0019] Further, the filter box is provided with a partition, and the outer gear ring and the transmission gear are located inside the partition.
[0020] As a preferred, the supporting mechanism comprises:
[0021] The two supporting frames are respectively mounted on the filter box, and the supporting frames are provided in a U-shaped structure;
[0022] The supporting beam is mounted on the two supporting frames.
[0023] Further, the supporting frame is provided with an adjusting foot at the bottom end, and the adjusting foot is further provided with a shock pad.
[0024] As a preferred, the cleaning mechanism comprises:
[0025] The air pipe is mounted on the top of the filter box, and the air pipe is mounted along the length direction of the filter screen;
[0026] The jet nozzle group is mounted on the air pipe along the length direction of the air pipe, and the jet nozzle group is composed of a plurality of independent nozzles mounted at equal intervals.
[0027] Further, a plurality of auxiliary beams are mounted at equal angles on the mounting pipe, and the other end of the auxiliary beam is connected with the supporting pipe.
[0028] This design incorporates a high-efficiency copper oxide scale filtration device: an independently fixed support mechanism provides stable support for the entire filtration system, ensuring stable operation; a flow guide at the bottom of the filter box effectively guides the filtered liquid out, improving work efficiency; a rotating mounting pipe and a coaxial filter arc screen efficiently filter solid particles in the mixture; the support pipe ensures the stability of the filter arc screen's rotation, enhancing the filtration effect; a cleaning mechanism promptly removes residual copper oxide scale from the filter arc screen, preventing clogging and ensuring filtration efficiency; a spiral conveyor transports the filtered copper oxide scale to one end for centralized collection and processing; a funnel facilitates the introduction of the mixture into the filter arc screen; and a drive mechanism provides rotational power to the mounting pipe, causing the filter arc screen to rotate and transport the filtered material. The entire device comprehensively improves the efficiency and quality of copper oxide scale filtration, meeting the requirements for high-efficiency copper oxide scale filtration. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the high-efficiency copper oxide filter device of this utility model at the first angle;
[0030] Figure 2 This is a schematic diagram of the high-efficiency copper oxide filter device of this utility model at the second angle;
[0031] Figure 3 This is a cross-sectional view of the filter box structure of the high-efficiency copper oxide sheet filtration device in this utility model;
[0032] Figure 4 This is a schematic diagram of the internal structure of the filter box of the high-efficiency copper oxide sheet filtration device in this utility model;
[0033] The attached diagram is labeled as follows: 1. Support mechanism; 11. Support frame; 12. Support beam; 13. Adjustable foot; 14. Shock-absorbing pad; 2. Filter box; 21. Flow guide; 3. Mounting pipe; 4. Filter arc screen; 5. Support pipe; 6. Cleaning mechanism; 61. Air pipe; 62. Air nozzle assembly; 7. Spiral conveyor blade; 8. Adding funnel; 9. Drive mechanism; 91. Mounting frame; 92. Drive motor; 93. Drive shaft; 94. Transmission gear; 95. External gear ring; 96. Isolation component; 10. Auxiliary beam. Detailed Implementation
[0034] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.
[0035] This utility model relates to a high-efficiency filtration device for copper oxide coating, such as... Figures 1 to 4 As shown, it includes:
[0036] Supporting mechanism 1, independently fixed, for supporting the entire filtering device;
[0037] Filtering box 2, mounted on the supporting mechanism 1, and a flow guide 21 is mounted at the bottom end of the filtering box 2 for guiding the filtered liquid to flow out;
[0038] Mounting pipe 3, rotatably mounted in the through hole of the filtering box 2, and a filtering arc screen 4 is coaxially arranged on the mounting pipe 3 for filtering the solid particles in the copper oxide skin mixture;
[0039] Supporting pipe 5, mounted at the other end of the filtering arc screen 4, and the supporting pipe 5 is rotatably connected with the filtering box 2, and the design of the supporting pipe 5 ensures that the filtering arc screen 4 remains stable during rotation;
[0040] Cleaning mechanism 6, mounted inside the filtering box 2, for timely cleaning the residual copper oxide on the filtering arc screen 4 to prevent the screen hole from being blocked;
[0041] Spiral conveying blade 7, coaxially mounted inside the filtering arc screen 4, for conveying the filtered copper oxide skin from one end of the filtering arc screen 4 to the other end for centralized collection and processing;
[0042] Adding funnel 8, mounted on the filtering box 2, and the tail end of the adding funnel 8 passes through the through hole of the filtering box 2 and is located in the filtering arc screen 4 for guiding the copper oxide skin mixture into the filtering arc screen 4;
[0043] Driving mechanism 9, mounted on the filtering box 2, for providing rotational force to the mounting pipe 3 to prevent the filtering arc screen 4 and the filtering material from being conveyed;
[0044] The working principle of the device is as follows:
[0045] The copper oxide skin mixture is introduced into the filtering arc screen 4 through the adding funnel 8, the driving mechanism 9 drives the mounting pipe 3 and the filtering arc screen 4 to rotate, the mixture moves on the filtering arc screen 4 with the rotating motion, the liquid and small particles flow into the bottom of the filtering box 2 through the screen hole and flow out through the flow guide 21, the solid copper oxide skin is intercepted by the filtering arc screen 4, the spiral conveying blade 7 rotates inside the filtering arc screen 4 to convey the intercepted solid copper oxide skin from one end of the filtering arc screen 4 to the other end for centralized collection and processing, and the copper oxide skin is at the bottom end during the overturning process of the filtering arc screen 4 by gravity, the cleaning mechanism 6 timely cleans the residual copper oxide skin attached to the surface of the screen hole during the rotation of the filtering arc screen 4 to prevent the screen hole from being blocked and ensure the filtering efficiency;
[0046] The independently fixed support mechanism 1 provides stable support for the whole filtering device, ensures stable operation, the flow guide 21 at the bottom of the filtering box 2 can effectively guide the filtered liquid to flow out, improve work efficiency, the rotationally installed mounting pipe 3 and the coaxial filtering arc screen 4 can efficiently filter the solid particles in the mixture, the support pipe 5 ensures the stability of the filtering arc screen 4 during rotation, improves the filtering effect, the cleaning mechanism 6 can clean the residual copper oxide skin on the filtering arc screen 4 in time, prevents the screen hole from being blocked, guarantees the filtering efficiency, the spiral conveying blade 7 can convey the filtered copper oxide skin to one end, which is convenient for centralized collection and treatment, the adding funnel 8 is convenient for guiding the mixture into the filtering arc screen 4, the driving mechanism 9 provides rotation force for the mounting pipe 3, so that the filtering arc screen 4 rotates and realizes conveying of the filtered material, the whole device improves the efficiency and quality of copper oxide skin filtering in all directions, and meets the needs of efficient copper oxide skin filtering.
[0047] As a preferred solution, as shown in Figures 1 to 3 The driving mechanism 9 comprises:
[0048] The mounting frame 91 is mounted on the filtering box 2, and the driving motor 92 is mounted on the mounting frame 91;
[0049] The driving shaft 93 is coaxially mounted on the output end of the driving motor 92, and the transmission gear 94 is coaxially mounted on the driving shaft 93;
[0050] The outer gear ring 95 is coaxially mounted on the mounting pipe 3, and the transmission gear 94 is meshed with the outer gear ring 95;
[0051] The driving shaft 93 is rotationally mounted in cooperation with the filtering box 2;
[0052] The mounting frame 91 mounted on the filtering box 2 stably bears the driving motor 92, guarantees that it will not shake or displace during operation, ensures stable power output, the driving motor 92 efficiently transmits power to the coaxially mounted transmission gear 94 through the driving shaft 93 at the output end, the transmission gear 94 is meshed with the outer gear ring 95 coaxially mounted on the mounting pipe 3, accurately converts the rotary power of the motor into the rotation of the mounting pipe 3, and then stably and efficiently rotates the filtering arc screen 4, realizes continuous and efficient filtering of the copper oxide skin mixture.
[0053] As a preferred solution, as shown in Figures 1 to 3 The filtering box 2 is provided with a isolation piece 96, and the outer gear ring 95 and the transmission gear 94 are located inside the isolation piece 96;
[0054] The isolation piece 96 can effectively isolate dust, sundries and the like from entering the transmission area, avoid poor gear meshing caused by foreign matter interference, ensure stable and accurate meshing of the outer gear ring 95 and the transmission gear 94, maintain the efficiency and stability of power transmission, and reduce the risk of equipment downtime caused by transmission failure.
[0055] As a preferred solution, as shown in Figures 1 to 2 The support mechanism 1 comprises:
[0056] Two support frames 11 are respectively installed on the filter box 2, and the support frame 11 is arranged in a U-shaped structure;
[0057] A support beam 12 is installed on the two support frames 11;
[0058] The two U-shaped support frames 11 respectively installed on the filter box 2 can form stable and comprehensive support on both sides of the filter box 2 by virtue of the unique U-shaped structure. The support beam 12 installed on the two support frames 11 further strengthens the structural strength of the entire support system. It not only stably connects the two support frames 11 as a whole, but also cooperates with the support frame 11 to share the pressure when the filter box 2 bears a large weight or is subjected to external force impact.
[0059] As a preferred solution, as shown in Figures 1 to 2 The bottom end of the support frame 11 is provided with an adjusting foot 13, and the adjusting foot 13 is further provided with a shock pad 14;
[0060] The adjusting foot 13 can finely adjust the height of the support mechanism 1 according to different ground conditions, so that the filter device can be stably placed on uneven ground, ensuring that the entire device remains horizontal and stable during operation, avoiding device tilting and shaking caused by uneven ground. The shock pad 14 can effectively absorb the vibration generated during the operation of the filter device, reducing the impact of vibration on the ground and the surrounding environment, while also reducing the damage of vibration to the structure of the device itself, reducing the wear and loosening between components, and reducing noise pollution.
[0061] As a preferred solution, as shown in Figures 1 to 3 The cleaning mechanism 6 comprises:
[0062] An air pipe 61 is installed at the top of the filter box 2, and the air pipe 61 is installed along the length direction of the filter arc screen 4;
[0063] A jet nozzle group 62 is installed along the length direction of the air pipe 61 on the air pipe 61, and the jet nozzle group 62 is composed of a plurality of equally spaced independent nozzles;
[0064] The air pipe 61 installed at the top of the filter box 2 and arranged along the length direction of the filter arc screen 4 can ensure the stable delivery of compressed gas and provide a reliable gas source for cleaning work. The jet nozzle group 62 installed along the length direction of the air pipe 61 is composed of a plurality of equally spaced independent nozzles, which can comprehensively and uniformly blow the filter arc screen 4. During the rotation of the filter arc screen 4, the high-pressure gas sprayed by these nozzles can accurately act on the screen surface, timely and effectively stripping the residual copper oxide skin from the screen, preventing screen clogging and maintaining the high-efficiency filtering performance of the filter arc screen 4.
[0065] As a preferred solution, as shown in Figures 3 to 4 The multiple auxiliary beams 10 are equiangularly installed on the mounting pipe 3, and the other ends of the auxiliary beams 10 are connected with the support pipe 5;
[0066] The multiple auxiliary beams 10 equiangularly installed on the mounting pipe 3 and connected with the support pipe 5 greatly enhance the structural stability of the whole filter arc screen 4 assembly, and the equiangular distribution of the auxiliary beams 10 can uniformly disperse the centrifugal force and other external forces borne by the filter arc screen 4 during rotation, avoid stress concentration, and ensure stable operation of the filter arc screen 4.
[0067] The copper oxide skin efficient filtering device has a common mechanical installation mode, connection mode or setting mode, and can be implemented as long as the beneficial effects can be achieved.
[0068] The above is only a preferred embodiment of the present application, and it should be pointed out that for ordinary skilled in the art, without departing from the technical principles of the present application, a number of improvements and modifications can be made, and these improvements and modifications should be considered as the protection scope of the present application.
Claims
1. A high-efficiency copper oxide filter, characterized in that, include: Support mechanism (1) is independently and fixedly installed; A filter box (2) is installed on the support mechanism (1), and a flow guide (21) is installed at the bottom of the filter box (2). The mounting tube (3) is rotatably installed in the through hole of the filter box (2), and a filter arc screen (4) is coaxially arranged on the mounting tube (3). A support tube (5) is installed at the other end of the filter arc screen (4), and the support tube (5) is rotatably connected to the filter box (2). The cleaning mechanism (6) is installed inside the filter box (2) and is used to clean the copper oxide residue on the filter arc screen (4) in a timely manner. The spiral conveyor blade (7) is coaxially installed inside the filter arc screen (4); Add a funnel (8) and install it on the filter box (2), with the tail end of the funnel (8) passing through the through hole of the filter box (2) and located in the filter arc screen (4); The drive mechanism (9) is installed on the filter box (2) and is used to provide rotational power to the mounting pipe (3).
2. The high-efficiency copper oxide filter as described in claim 1, characterized in that, The drive mechanism (9) includes: Mounting bracket (91) is mounted on the filter box (2), and a drive motor (92) is mounted on the mounting bracket (91). A drive shaft (93) is coaxially mounted on the output end of the drive motor (92), and a transmission gear (94) is coaxially mounted on the drive shaft (93). The external gear ring (95) is coaxially mounted on the mounting tube (3), and the transmission gear (94) meshes with the external gear ring (95).
3. The high-efficiency copper oxide filter as described in claim 2, characterized in that, The drive shaft (93) is rotatably mounted in conjunction with the filter box (2).
4. The high-efficiency copper oxide filter device as described in claim 2, characterized in that, An isolation element (96) is installed on the filter box (2), and the external gear ring (95) and the transmission gear (94) are located inside the isolation element (96).
5. The high-efficiency copper oxide filter as described in claim 1, characterized in that, The support mechanism (1) includes: Two support frames (11) are respectively installed on the filter box (2), and the support frames (11) are configured as U-shaped structures; Support beams (12) are mounted on the two support frames (11).
6. The high-efficiency copper oxide filter device as described in claim 5, characterized in that, The support frame (11) is provided with an adjustable foot (13) at the bottom, and a shock-absorbing pad (14) is also provided on the adjustable foot (13).
7. The high-efficiency copper oxide filter device as described in claim 1, characterized in that, The cleaning mechanism (6) includes: An air pipe (61) is installed on the top of the filter box (2), and the air pipe (61) is installed along the length of the filter arc screen (4); The nozzle assembly (62) is installed along the length of the air pipe (61) on the air pipe (61), and the nozzle assembly (62) consists of multiple independent nozzles installed at equal intervals.
8. The high-efficiency copper oxide filter device as described in claim 1, characterized in that, Multiple auxiliary beams (10) are installed at equal angles on the mounting pipe (3), and the other end of the auxiliary beams (10) is connected to the support pipe (5).