Seal ring oil immersion treatment device

By introducing a negative pressure mechanism into the sealing ring oil immersion device and connecting it with an external negative pressure filter, oil mist is captured and filtered, solving the problem of oil mist pollution in the environment. This achieves efficient and environmentally friendly sealing ring oil immersion treatment, improving production efficiency and equipment convenience.

CN224072435UActive Publication Date: 2026-04-03BEIJING SANCHANG RUBBER PRODS
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing mesh belt sealing ring oil immersion devices cause oil mist to evaporate and pollute the environment due to their open structure, reducing ease of use and equipment protection.

Method used

Design a sealing ring oil immersion treatment device, which adopts a negative pressure mechanism connected to an external negative pressure filter device, captures and filters oil mist through a negative pressure tank, and combines a closed structure and a stable oil immersion tank to ensure that the oil mist does not evaporate to the outside, while realizing continuous and automated conveying of sealing rings.

Benefits of technology

It effectively prevents oil mist evaporation, protects the workshop environment, reduces cleaning and maintenance costs, improves production efficiency and ease of use of equipment, and enhances health protection for operators.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a sealing ring oil immersion treatment device, and relates to the field of oil immersion devices. The sealing ring oil immersion treatment device comprises a device body, a feeding port and a discharging port are formed in the two sides of the device body respectively, a net belt is installed in the device body in a transmission mode, and two sets of negative pressure mechanisms are installed on the two sides above the net belt in a mirror image mode. The negative pressure cavity formed in the inner side of the mounting frame provides an effective space for oil mist capturing, the negative pressure cavity is communicated with an external negative pressure filtering device through the through pipe, the stability of the negative pressure environment is ensured, oil mist can be rapidly sucked in and filtered, meanwhile, the multiple negative pressure grooves formed in the surfaces of the first plate face and the second plate face further enhance the adsorption capacity, and the oil mist can be effectively captured. The negative pressure grooves can more effectively capture oil mist and prevent the oil mist from being volatilized to the outside, and pollution of the oil mist to the workshop environment is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of oil immersion devices, specifically an oil immersion treatment device for sealing rings. Background Technology

[0002] The mesh belt oil immersion device has significant advantages in the field of sealing rings. It achieves continuous and uniform oil immersion of sealing rings through a mesh belt conveyor system, which greatly improves the oil immersion efficiency. The device is flexibly designed and can adapt to sealing rings of different sizes and shapes. It is highly automated, reduces manual intervention, and improves production efficiency and the stability of oil immersion quality. After oil immersion, a uniform oil film is formed on the surface of the sealing ring, which effectively isolates air, moisture and corrosive media, slows down aging and wear, and extends service life.

[0003] Existing mesh belt seal oil immersion devices transport multiple seals via a mesh belt through an immersion tank to achieve oil immersion. However, a problem exists in practical use: the open structure of existing oil immersion devices often leads to oil mist evaporation and environmental pollution, thus reducing the ease of use and causing some pollution to the workshop environment. Therefore, the inventors urgently need to design a structure that can prevent the oil inside the oil immersion device from evaporating to the outside, thereby improving the protection of the external environment. Utility Model Content

[0004] Therefore, the purpose of this utility model is to provide a sealing ring oil immersion treatment device to solve the technical problem that open structures often lead to oil mist volatilization, which not only pollutes the environment but also reduces the ease of use of the equipment.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a sealing ring oil immersion treatment device, comprising a device body, with an inlet and an outlet respectively opened on both sides of the device body, a mesh belt internally installed for transmission, and two sets of negative pressure mechanisms mirror-installed on both sides above the mesh belt, each negative pressure mechanism including a mounting frame, the top of the mounting frame being connected to an external negative pressure filter device through a pipe, a first plate and a second plate respectively installed on the bottom and one side of the mounting frame, both the first plate and the second plate having negative pressure grooves, the first plate and the second plate covering the inlet and the outlet.

[0006] By adopting the above technical solution, the inlet and outlet ports on both sides of the main body of the device, together with the mesh belt installed in the internal transmission, realize the continuous and automated conveying of the sealing ring, which greatly improves the production efficiency. The two sets of negative pressure mechanisms installed in mirror on both sides above the mesh belt are connected to the external negative pressure filter through the pipe above the mounting frame, which effectively captures and filters oil mist, prevents it from evaporating to the outside, thereby protecting the workshop environment and reducing cleaning and maintenance costs.

[0007] Furthermore, a negative pressure cavity is formed on the inner side of the mounting frame, and several negative pressure grooves are provided.

[0008] By adopting the above technical solution, the negative pressure cavity provides a stable negative pressure environment for the negative pressure tank, ensuring that the oil mist can be effectively adsorbed and filtered. The opening of several negative pressure tanks increases the adsorption area and improves the adsorption efficiency, so that the oil mist can be quickly captured and processed when passing through the negative pressure mechanism.

[0009] Furthermore, the first plate surface is parallel to the mesh belt, and there is a gap between the first plate surface and the mesh belt to provide a channel for the sealing ring to pass through.

[0010] By adopting the above technical solution, the gap provides a passage for the sealing ring to pass through, ensuring that the sealing ring can pass smoothly through the negative pressure mechanism without being stuck or damaged. At the same time, this parallel structure also allows the first plate to better cooperate with the mesh belt, forming a stable conveying system and improving conveying efficiency.

[0011] Furthermore, an oil immersion tank is formed on the lower inner side of the main body of the device, the second plate has an inclined structure, and the second plate is positioned opposite to the oil immersion tank.

[0012] By adopting the above technical solution, the oil immersion tank provides sufficient oil immersion space for the sealing ring, ensuring that the sealing ring can fully contact the oil and improving the oil immersion effect.

[0013] Furthermore, the mesh belt is supported in a "V" shape by several limiting rollers and transmission rollers, and the middle part of the mesh belt is immersed in the oil soaking tank. The mesh belt is connected to the output end of the drive mechanism on one side.

[0014] By adopting the above technical solution, this structure makes the conveyor belt more stable and reliable when conveying the sealing ring, reducing the possibility of deviation and shaking. At the same time, the "V" shaped structure also increases the contact area between the sealing ring and the oil, improving the oil immersion efficiency.

[0015] Furthermore, the back of the main body of the device has several through holes on the upper part, and a receiving frame is fixed on the surface. The receiving frame is positioned opposite to the several through holes for filling the oil tank with oil. An oil outlet is formed on the lower back of the main body of the device.

[0016] By adopting the above technical solution, it is convenient to add oil to the oil immersion tank. The receiving frame and the through hole are positioned opposite each other, so that the oil can be accurately injected into the oil immersion tank, avoiding oil waste and splashing.

[0017] Furthermore, an inspection port is installed on the upper front side of the main body of the device, and a discharge plate is installed on one side of the main body of the device opposite to the discharge port. Curtains are hung at both the inlet and outlet.

[0018] By adopting the above technical solution, the inspection port provides convenience for equipment maintenance and repair. When the equipment malfunctions or needs cleaning, staff can quickly enter the device through the inspection port to operate, improving maintenance efficiency. At the same time, the material discharge plate installed on one side of the main body of the device, opposite to the discharge port, allows the sealing ring to slide smoothly down the material discharge plate to the designated position after it comes out of the discharge port.

[0019] In summary, the present invention has the following main advantages:

[0020] This invention utilizes a negative pressure mechanism, which plays a crucial role in the oil immersion process of the sealing ring. The negative pressure cavity formed inside the mounting frame provides effective space for oil mist capture. Connected to an external negative pressure filter via a connecting pipe, it ensures a stable negative pressure environment, allowing oil mist to be quickly drawn in and filtered. Simultaneously, multiple negative pressure grooves on the surfaces of the first and second plates further enhance the adsorption force. These grooves more effectively capture oil mist, preventing it from evaporating to the outside and reducing pollution of the workshop environment. Furthermore, the negative pressure mechanism improves the working environment for operators, protecting their health and making the entire oil immersion process more environmentally friendly and efficient. Attached Figure Description

[0021] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0022] Figure 2 This is a schematic diagram of the back structure of this utility model;

[0023] Figure 3 This is a schematic diagram of the internal cross-sectional structure of the present invention;

[0024] Figure 4 This is a schematic diagram of the negative pressure mechanism of this utility model.

[0025] In the diagram: 1. Main body of the device; 2. Mesh belt; 3. Negative pressure mechanism; 301. Mounting frame; 302. First plate; 303. Second plate; 304. Negative pressure cavity; 305. Negative pressure groove; 306. Through pipe; 4. Oil immersion tank; 5. Feeding plate; 6. Drive mechanism; 7. Cloth curtain; 801. Through hole; 802. Receiving frame; 803. Oil outlet; 9. Inspection port. Detailed Implementation

[0026] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0027] Example 1:

[0028] An oil immersion treatment device for sealing rings, such as Figure 1-4 As shown, the device includes a main body 1, with an inlet and an outlet on each side. A mesh belt 2 is internally mounted on the main body 1. Two sets of negative pressure mechanisms 3 are mirror-mounted on both sides above the mesh belt 2. Each negative pressure mechanism 3 includes a mounting frame 301. The top of the mounting frame 301 is connected to an external negative pressure filter via a pipe 306. A first plate 302 and a second plate 303 are mounted on the bottom and one side of the mounting frame 301, respectively. Negative pressure grooves 305 are formed on the surfaces of both the first and second plates 302 and 303, which cover the inlet and outlet. The inlet and outlet ports on both sides of the main body 1, together with the mesh belt 2 installed in the internal transmission, realize the continuous and automated conveying of the sealing ring, which greatly improves the production efficiency. The two sets of negative pressure mechanisms 3 installed in mirror on both sides above the mesh belt 2 are connected to the external negative pressure filter through the through pipe 306 above the mounting frame 301, effectively capturing and filtering oil mist and preventing it from evaporating to the outside, thereby protecting the workshop environment and reducing cleaning and maintenance costs. At the same time, the negative pressure grooves 305 opened on the surface of the first plate 302 and the second plate 303 further enhance the negative pressure adsorption effect and ensure the efficient filtration of oil mist.

[0029] See Figure 4 A negative pressure cavity 304 is formed on the inner side of the mounting frame 301, and several negative pressure grooves 305 are provided. The negative pressure cavity 304 provides a stable negative pressure environment for the negative pressure grooves 305, ensuring that the oil mist can be effectively adsorbed and filtered. The opening of several negative pressure grooves 305 increases the adsorption area and improves the adsorption efficiency, so that the oil mist can be quickly captured and processed when passing through the negative pressure mechanism 3. At the same time, it also enhances the structural stability of the negative pressure mechanism 3, enabling it to better withstand the pressure brought by the negative pressure and extend its service life.

[0030] See Figure 3 , Figure 4The first plate 302 is parallel to the mesh belt 2, and there is a gap between the first plate 302 and the mesh belt 2 to provide a passage for the sealing ring. The gap provides a passage for the sealing ring to pass through, ensuring that the sealing ring can pass smoothly through the negative pressure mechanism 3 without being stuck or damaged. At the same time, this parallel structure also allows the first plate 302 to better cooperate with the mesh belt 2 to form a stable conveying system, improving the conveying efficiency. The size of the gap can also be designed according to the size of the sealing ring, so that the device can adapt to the oil immersion treatment requirements of sealing rings of different specifications, enhancing the versatility and flexibility of the device.

[0031] See Figure 1 , Figure 2 , Figure 3 An oil immersion tank 4 is formed on the lower inner side of the main body 1 of the device. The second plate surface 303 has an inclined structure and is positioned opposite to the oil immersion tank 4. The oil immersion tank 4 provides sufficient oil immersion space for the sealing ring, ensuring that the sealing ring can fully contact the oil and improving the oil immersion effect. The inclined structure of the second plate surface 303 and its position opposite to the oil immersion tank 4, together with the setting of the first plate surface 302, can cover the inlet and outlet, play an effective negative pressure adsorption system, and further enhance the protection against the external environment.

[0032] See Figure 1 , Figure 2 , Figure 3 The mesh belt 2 is supported in a "V" shape by several limiting rollers and drive rollers, and the middle part of the mesh belt 2 is immersed in the oil immersion tank 4. The mesh belt 2 is connected to the output end of the drive mechanism 6 on one side. This structure makes the mesh belt 2 more stable and reliable when conveying the sealing ring, reducing the possibility of deviation and shaking. At the same time, the "V" shape also increases the contact area between the sealing ring and the oil, improving the oil immersion efficiency. The middle part of the mesh belt 2 is immersed in the oil immersion tank 4, ensuring that the sealing ring can be fully immersed in oil, and the oil immersion process is more uniform and thorough.

[0033] Example 2:

[0034] See Figure 2 , Figure 3 The back of the main body 1 has several through holes 801 on the upper part, and a receiving frame 802 is fixed on the surface. The receiving frame 802 is positioned opposite to the through holes 801 for filling the oil tank 4 with oil. An oil outlet 803 is formed on the lower back of the main body 1, which facilitates the filling of oil into the oil tank 4. The positioning of the receiving frame 802 and the through holes 801 allows the oil to be accurately injected into the oil tank 4, avoiding waste and splashing of oil. At the same time, the oil outlet 803 formed on the lower back of the main body 1 facilitates the discharge and recycling of oil, reduces production costs, and makes the oil management system of the entire oil immersion treatment device more complete and efficient, improving the ease of use of the device.

[0035] See Figure 1 , Figure 2 The device body 1 has an inspection port 9 installed on the upper front side. A discharge plate 5 is installed on one side of the device body 1, opposite to the discharge port. Cloth curtains 7 are hung at both the inlet and outlet. The inspection port 9 facilitates the maintenance and repair of the equipment. When the equipment malfunctions or needs cleaning, staff can quickly enter the device through the inspection port 9 to operate, improving maintenance efficiency. At the same time, the discharge plate 5 installed on one side of the device body 1, opposite to the discharge port, allows the sealing ring to slide smoothly down to the designated position after exiting the discharge port, reducing the trouble of manual handling. The cloth curtains 7 hanging at both the inlet and outlet further reduce the leakage of oil mist and the entry of external impurities, protecting the workshop environment and the quality of the sealing ring.

[0036] The implementation principle of this embodiment is as follows: The sealing ring oil immersion treatment device constructs a closed treatment space through the main body 1 of the device. The mesh belt 2 installed inside the device is used to continuously transport the sealing ring. The negative pressure mechanism 3 installed on both sides above the mesh belt 2 plays a key role. The negative pressure cavity 304 is formed inside the mounting frame 301 in the negative pressure mechanism 3 and is connected to the external negative pressure filter device through the pipe 306. Multiple negative pressure grooves 305 opened on the surface of the first plate 302 and the second plate 303 enhance the adsorption force, effectively capture oil mist, and prevent it from evaporating to the outside, thereby reducing the pollution to the environment. At the same time, the oil immersion tank 4 below the inner side of the main body 1 of the device provides an oil immersion environment for the sealing ring. The middle part of the mesh belt 2 is immersed in the oil immersion tank 4 to ensure that the sealing ring is fully in contact with the oil.

[0037] The through hole 801 and receiving frame 802 on the upper back of the main body 1 facilitate oil filling, the oil outlet 803 on the lower back is used for oil discharge, the inspection port 9 on the upper front side facilitates equipment maintenance, the material discharge plate 5 on one side ensures smooth discharge of the sealing ring, and the cloth curtain 7 at the inlet and outlet further reduces oil mist evaporation, thereby achieving efficient and environmentally friendly oil immersion treatment of the sealing ring.

[0038] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, and variations are within the scope of the claims of the present invention and are protected by patent law.

Claims

1. A sealing ring oil immersion treatment device, characterized in that: Including device body (1), both sides of device body (1) are provided with feed inlet and discharge outlet respectively, the inside of device body (1) is drivenly installed with mesh belt (2), the upper side of mesh belt (2) is mirror image installed with two groups of negative pressure mechanism (3), negative pressure mechanism (3) includes installation frame (301), the upper side of installation frame (301) is communicated with outside negative pressure filtering device through pipe (306), the bottom surface and one side of installation frame (301) are installed with first plate surface (302) and second plate surface (303) respectively, the surface of first plate surface (302) and second plate surface (303) are provided with negative pressure groove (305), first plate surface (302) and second plate surface (303) cover feed inlet and discharge outlet.

2. The oil immersion treatment device for a seal ring according to claim 1, characterized by: The inside of installation frame (301) is formed with negative pressure cavity (304), and the negative pressure groove (305) is provided with a plurality of.

3. The oil immersion treatment device for a seal ring according to claim 1, characterized by: The first plate surface (302) is parallel to the mesh belt (2), and there is a gap between the first plate surface (302) and the mesh belt (2) for the passage of the sealing ring.

4. The oil immersion treatment device for a seal ring according to claim 1, characterized by: The inside of device body (1) is formed with oil immersion pool (4) below, the second plate surface (303) is inclined surface structure, and the second plate surface (303) is opposite to the position of oil immersion pool (4).

5. The oil immersion treatment device for a seal ring according to claim 4, characterized by: The mesh belt (2) is supported by a plurality of limiting rollers and transmission rollers to be "V" shaped structure in the middle part of mesh belt (2), and the middle part of mesh belt (2) is immersed in the inside of oil immersion pool (4), and the mesh belt (2) is transmission connected with the output end of one side driving mechanism (6).

6. The oil immersion treatment device for a seal ring according to claim 1, characterized by: A plurality of through holes (801) are formed on the back of device body (1) above, and a receiving frame (802) is fixed on the surface, the receiving frame (802) is opposite to the position of a plurality of through holes (801), for oil filling of oil immersion pool (4), and an oil outlet (803) is formed on the back of device body (1) below.

7. The oil immersion treatment device for a seal ring according to claim 1, characterized by: An access hole (9) is installed on the front side of device body (1) above, a discharge plate (5) is installed on one side of device body (1) and opposite to the position of discharge outlet, and a cloth curtain (7) is hung on the feed inlet and discharge outlet.