Direct-connection solvent effect optimizer capable of efficiently filtering
By designing the synergistic operation of the filtration and conditioning components, the problem of poor filtration performance in existing technologies has been solved, achieving efficient liquid filtration and mixing, improving liquid purity and mixing uniformity, and meeting the requirements of high-precision filtration.
Patent Information
- Application Number
- CN202520393634.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-03-07
AI Technical Summary
Existing direct-connect solvent effect optimizers are not effective in filtration, failing to effectively and accurately screen and separate target components, resulting in impurity residues that affect experimental results and efficiency.
The system employs a collaborative design of filtration and conditioning components, including filter tubes, snap-fit plates, filter fillers, and rotating rings, to achieve multi-stage filtration and mixing regulation, ensuring liquid purity and mixing effectiveness.
It achieves efficient liquid filtration and mixing, ensuring the purity and uniformity of the outflowing liquid, meeting the requirements of high-precision filtration, and improving the accuracy and efficiency of experiments.
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Figure CN223818321U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of direct-connected solvent effect optimizer technology, and in particular to a high-efficiency filtering direct-connected solvent effect optimizer. Background Technology
[0002] The high-efficiency filtration direct-coupled solvent effect optimizer improves separation efficiency and reduces solvent usage and cost by optimizing the solvent system and solute interactions. It enhances the selective adsorption or dissolution of target substances by precisely controlling parameters such as solvent properties, flow rate, and temperature, thereby reducing energy consumption and environmental impact during the separation process. This optimizer is widely used in chemical, pharmaceutical, and environmental protection fields, improving operational efficiency and product quality while promoting sustainable development goals.
[0003] However, existing direct-connected solvent effect optimizers have significant shortcomings in practical applications. When performing the filtration function, their effect is unsatisfactory, and they cannot effectively and accurately screen and separate target components, resulting in a large amount of impurities remaining. This seriously affects the subsequent experimental analysis and application results, not only reducing work efficiency but also potentially causing deviations in experimental results.
[0004] Therefore, this application provides a high-efficiency filtering direct-connected solvent effect optimizer to meet the requirements. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing a highly efficient direct-connected solvent effect optimizer for filtration.
[0006] To achieve the above objectives, this utility model adopts the following technical solution: a high-efficiency filtration direct-connected solvent effect optimizer, comprising:
[0007] Connecting pipe and mixing pipe placed outside the connecting pipe;
[0008] A filter assembly is placed inside a connecting pipe. The filter assembly includes a filter tube fixed inside the connecting pipe. A snap-fit plate is snapped onto one side of the filter tube. A filter filler is snapped onto one side of the snap-fit plate. A snap-fit outer shell is snapped onto the other end of the filter filler. A first filter plate is provided on one side of the snap-fit outer shell. A second filter plate is provided on the side of the filter tube away from the snap-fit plate.
[0009] An adjusting assembly is located on one side of the mixing tube. The adjusting assembly includes a rotating ring rotatably connected to the outside of the mixing tube. A fixing plate is snapped into the inside of the rotating ring. Each fixing plate has a guide groove. A snap-fit post is provided inside the guide groove. A shrink plate is provided on the snap-fit post. A second guide plate is provided on the shrink plate. The other end of the second guide plate is connected to the rotating ring. A sliding groove is provided on the second guide plate.
[0010] Furthermore, a first mixing chamber is provided on the side of the filter tube away from the second filter plate, a transport pipe is provided on the other side of the filter filling, a third filter plate is provided on the side of the filter tube away from the transport pipe, a filter chamber is provided on the other side of the third filter plate, a second mixing chamber is provided on each of the filter chambers, and a fourth filter plate is provided at the other end of the filter chamber.
[0011] The beneficial effects of adopting the above-mentioned further solution are as follows: In the filtration assembly, when the liquid flows through the filter tube and reaches the first mixing chamber on the side away from the second filter plate, the different components are initially mixed. Then, it enters through the transport pipe and is filtered again by the third filter plate to remove impurities. Subsequently, the liquid flows into the filtration chamber and is further mixed in the second mixing chamber to achieve uniform distribution of components. Finally, the fourth filter plate performs final filtration to ensure the purity of the outflowing liquid and meet the requirements of high-precision filtration.
[0012] Furthermore, the other end of the connecting pipe is provided with a connecting outer pipe, the inside of which is provided with a threaded connection port, a first guide plate is provided on the side of the connecting outer pipe away from the threaded connection port, and a filter inlet is provided on the side of the connecting outer pipe away from the first guide plate.
[0013] The beneficial effects of adopting the above-mentioned further solution are: the connecting pipe at the other end of the connecting pipe has an internal threaded connection port that can be threadedly connected to the external pipe, which facilitates installation and disassembly; the first guide plate guides the liquid flow direction, making the liquid enter more smoothly; the filter inlet is the channel for the liquid to enter the entire filtration system; these components work together to ensure that the liquid enters the filter components smoothly and starts the subsequent filtration process.
[0014] Furthermore, a threaded retaining ring is provided on the side of the adjusting component away from the mixing tube, and an outlet tube is fixed inside the threaded retaining ring.
[0015] The beneficial effect of adopting the above-mentioned further solution is that the threaded fixing ring of the adjusting component away from the mixing pipe side can be tightened to fix the liquid outlet pipe, and the liquid flows out from the liquid outlet pipe after adjustment, so as to achieve stable liquid output.
[0016] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0017] 1. The filter assembly inside the connecting pipe can achieve a high-efficiency filtration effect. The filter tube is fixed inside the connecting pipe and plays the role of supporting other components and performing preliminary filtration. The snap-fit plate snaps into one side of the filter tube and firmly supports the filter pack. The filter pack can trap impurities of different particle sizes to achieve deep filtration. The snap-fit shell protects the filter pack. The first filter plate on one side can intercept larger particle impurities first, while on the side of the filter tube away from the snap-fit plate, the second filter plate filters the liquid again. Multiple processes work together to ensure higher purity of the outflowing liquid.
[0018] 2. The adjustment component is located on one side of the mixing tube, enabling precise control of the mixing effect. During use, rotating the rotating ring on the outside of the mixing tube drives the second guide plate connected to it to move. The sliding slot on the second guide plate, in conjunction with the snap-fit column, guides the shrink plate to slide along the guide groove on the fixed plate. The movement of the shrink plate can change the liquid flow path and flow rate, thereby adjusting the degree of mixing. The fixed plate plays a fixing and guiding role, ensuring that the entire adjustment process is stable and orderly, ultimately achieving flexible adjustment of the mixing effect to meet different usage needs. Attached Figure Description
[0019] Figure 1 This is a front view of a direct-connected solvent effect optimizer for high-efficiency filtration according to the present invention.
[0020] Figure 2 This is a cross-sectional view of a direct-connected solvent effect optimizer for high-efficiency filtration according to the present invention.
[0021] Figure 3 This is a structural diagram of the filtration component in a direct-connected solvent effect optimizer for high-efficiency filtration according to this utility model;
[0022] Figure 4 This is a structural diagram of the regulating component in a direct-connected solvent effect optimizer for high-efficiency filtration according to this utility model;
[0023] Figure 5 This is a structural diagram of the fixed tube in a direct-connected solvent effect optimizer for high-efficiency filtration according to this utility model.
[0024] Figure Labels
[0025] 1. Connecting pipe; 2. Mixing pipe; 3. Fixing pipe; 4. Discharge pipe; 5. Threaded retaining ring; 6. Connecting outer pipe; 7. Threaded connection port;
[0026] 8. Filter assembly; 81. Filter tube; 82. First filter plate; 83. Snap-fit housing; 84. Filter filler; 85. Second filter plate; 86. Snap-fit plate; 87. First mixing chamber; 88. Transport pipe; 89. Third filter plate; 810. Second mixing chamber; 811. Filter compartment; 812. Fourth filter plate;
[0027] 9. Adjustment component; 91. Rotating ring; 92. Fixing plate; 93. Guide groove; 94. Snap-fit post; 95. Shrink plate; 96. Second guide plate; 97. Sliding slot;
[0028] 10. First guide plate; 11. Filter inlet; 12. Liquid outlet. Detailed Implementation
[0029] 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.
[0030] like Figure 1 - Figure 5 As shown, this utility model provides a technical solution: a high-efficiency filtration direct-connected solvent effect optimizer, comprising: a connecting tube 1 and a mixing tube 2 placed outside the connecting tube 1;
[0031] A filter assembly 8 is placed inside the connecting pipe 1. The filter assembly 8 includes a filter tube 81 fixed inside the connecting pipe 1. A snap-fit plate 86 is snapped onto one side of the filter tube 81, and a filter filler 84 is snapped onto one side of the snap-fit plate 86. A snap-fit outer shell 83 is snapped onto the other end of the filter filler 84. A first filter plate 82 is provided on one side of the snap-fit outer shell 83, and a second filter plate 85 is provided on the side of the filter tube 81 away from the snap-fit plate 86. The filter assembly 8 inside the connecting pipe 1 can achieve a high-efficiency filtration effect. 81 is fixed inside the connecting pipe 1, serving to support other components and perform preliminary filtration. The snap-fit plate 86 snaps into one side of the inside of the filter pipe 81, firmly supporting the filter filling 84. The filter filling 84 can trap impurities of different particle sizes, achieving deep filtration. The snap-fit outer shell 83 protects the filter filling 84. The first filter plate 82 on one side can intercept larger particle impurities first, while on the side of the filter pipe 81 away from the snap-fit plate 86, the second filter plate 85 filters the liquid again. Multiple processes work together to ensure higher purity of the outflowing liquid.
[0032] Adjustment component 9 is located on one side of mixing tube 2. Adjustment component 9 includes a rotating ring 91 rotatably connected to the outside of mixing tube 2. A fixing plate 92 is engaged inside the rotating ring 91. Each fixing plate 92 has a guide groove 93. A locking post 94 is disposed inside the guide groove 93. A shrinking plate 95 is disposed on the locking post 94. A second guide plate 96 is disposed on the shrinking plate 95. The other end of the second guide plate 96 is connected to the rotating ring 91. A sliding groove 97 is disposed on the second guide plate 96. Adjustment component 9 is located on one side of mixing tube 2 and can... The precise control of the mixing effect is achieved by rotating the rotating ring 91 on the outside of the mixing tube 2 during use. The rotating ring 91 drives the second guide plate 96 connected to it to move. The sliding slot 97 on the second guide plate 96 cooperates with the snap-fit post 94 to guide the shrink plate 95 to slide along the guide groove 93 on the fixed plate 92. The movement of the shrink plate 95 can change the liquid flow path and flow rate, thereby adjusting the degree of mixing. The fixed plate 92 plays a fixing and guiding role, ensuring that the entire adjustment process is stable and orderly, and finally achieving flexible adjustment of the mixing effect to meet different usage needs.
[0033] Furthermore, such as Figure 1 - Figure 3 As shown: A first mixing chamber 87 is provided on the side of the filter tube 81 away from the second filter plate 85, and a transport pipe 88 is provided on the other side of the filter filler 84. A third filter plate 89 is provided on the side of the filter tube 81 away from the transport pipe 88, and a filter chamber 811 is provided on the other side of the third filter plate 89. A second mixing chamber 810 is provided on each of the filter chambers 811, and a fourth filter plate 812 is provided at the other end of the filter chamber 811. In the filter assembly 8, when the liquid flows through the filter tube 81 and reaches the first mixing chamber 87 on the side away from the second filter plate 85, different components are initially mixed. Then, it enters through the transport pipe 88 and is filtered again by the third filter plate 89 to remove impurities. Subsequently, the liquid flows into the filter chamber 811 and is further mixed in the second mixing chamber 810 to achieve uniform distribution of components. Finally, the fourth filter plate 812 performs final filtration to ensure the purity of the outflowing liquid and meet the requirements of high-precision filtration.
[0034] The above solutions still have device connectivity issues, such as... Figure 1 - Figure 5As shown: In this scheme, the other end of the connecting pipe 1 is provided with a connecting outer pipe 6. The connecting outer pipe 6 has a threaded connection port 7 inside. The side of the connecting outer pipe 6 away from the threaded connection port 7 is provided with a first guide plate 10. The side of the connecting outer pipe 6 away from the first guide plate 10 is provided with a filter inlet 11. The connecting outer pipe 6 at the other end of the connecting pipe 1 has a threaded connection port 7 inside that can be threaded to an external pipe for easy installation and disassembly. The first guide plate 10 guides the liquid flow direction, making the liquid enter more smoothly. The filter inlet 11 is the channel for the liquid to enter the entire filtration system. These components work together to ensure that the liquid enters the filter assembly 8 smoothly and starts the subsequent filtration process.
[0035] like Figure 1 - Figure 5 As shown, the filter assembly 8 inside the connecting pipe 1 is the core. The filter pipe 81 supports other components and initially filters the liquid. The snap-fit plate 86 supports the filter filler 84, which can deeply trap impurities. The snap-fit shell 83 protects the filter filler 84. The first filter plate 82 on one side intercepts large particles of impurities. The second filter plate 85 on the other side of the filter pipe 81 further filters the liquid. Multiple processes improve the purity of the liquid.
[0036] The adjusting component 9 is located on one side of the mixing tube 2. Rotating the rotating ring 91 on the outside of the mixing tube 2 drives the second guide plate 96 to move. Through the sliding slot 97 and the locking post 94, the shrink plate 95 is guided to slide along the guide groove 93 of the fixed plate 92, changing the liquid flow rate and path, and precisely adjusting the degree of mixing. The fixed plate 92 ensures stable adjustment.
[0037] When the liquid flows through the filter assembly 8, it is initially mixed in the first mixing chamber 87, filtered by the third filter plate 89 through the transport pipe 88, and further mixed in the second mixing chamber 810 of the filter chamber 811. Finally, it is filtered by the fourth filter plate 812 to ensure that the outflowing liquid is pure.
[0038] The connecting pipe 1 has an outer connecting pipe 6 at the other end, and a threaded connection port 7 for easy installation and disassembly. The first guide plate 10 guides the liquid, and the filter inlet 11 is the liquid entry channel. All components work together to allow the liquid to smoothly enter the filter assembly 8. The threaded fixing ring 5 on the side of the adjusting assembly 9 fixes the liquid outlet pipe 4. After adjustment, the liquid flows out from the liquid outlet pipe 4. The fixing pipe 3 on the outside of the connecting pipe 1 and the mixing pipe 2 provides structural stability. Finally, the liquid flows out from the liquid outlet 12 of the mixing pipe 2, meeting the usage requirements.
[0039] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.
Claims
1. A direct-connect solvent effect optimizer for high-efficiency filtration, characterized in that, include: Connecting pipe (1) and mixing pipe (2) placed outside the connecting pipe (1); A filter assembly (8) is placed inside a connecting pipe (1). The filter assembly (8) includes a filter tube (81) fixed inside the connecting pipe (1). A snap-fit plate (86) is snapped onto one side of the filter tube (81). A filter filler (84) is snapped onto one side of the snap-fit plate (86). A snap-fit outer shell (83) is snapped onto the other end of the filter filler (84). A first filter plate (82) is provided on one side of the snap-fit outer shell (83). A second filter plate (85) is provided on the side of the filter tube (81) away from the snap-fit plate (86). Adjustment component (9), the adjustment component (9) is placed on one side of mixing tube (2), the adjustment component (9) includes a rotating ring (91) rotatably connected to the outside of mixing tube (2), a fixing plate (92) is snapped into the inside of the rotating ring (91), a guide groove (93) is provided on the fixing plate (92), a snap-fit post (94) is provided inside the guide groove (93), a shrink plate (95) is provided on the snap-fit post (94), a second guide plate (96) is provided on the shrink plate (95), the other end of the second guide plate (96) is connected to the rotating ring (91), and a sliding groove (97) is provided on the second guide plate (96).
2. The direct-connected solvent effect optimizer for high-efficiency filtration according to claim 1, characterized in that, A first mixing chamber (87) is provided on the side of the filter tube (81) away from the second filter plate (85), and a transport pipe (88) is provided on the other side of the filter filler (84). A third filter plate (89) is provided on the side of the filter tube (81) away from the transport pipe (88), and a filter chamber (811) is provided on the other side of the third filter plate (89). A second mixing chamber (810) is provided on each of the filter chambers (811), and a fourth filter plate (812) is provided at the other end of the filter chamber (811).
3. The direct-connected solvent effect optimizer for high-efficiency filtration according to claim 1, characterized in that, The other end of the connecting pipe (1) is provided with a connecting outer pipe (6), and the connecting outer pipe (6) has a threaded connection port (7) inside. The connecting outer pipe (6) has a first guide plate (10) on the side away from the threaded connection port (7), and a filter inlet (11) on the side away from the first guide plate (10).
4. The direct-connected solvent effect optimizer for high-efficiency filtration according to claim 1, characterized in that, The mixing tube (2) has an outlet (12) on the side away from the filter assembly (8).
5. A direct-connect solvent effect optimizer for high-efficiency filtration according to claim 1, characterized in that, The adjusting component (9) is provided with a threaded retaining ring (5) on the other side away from the mixing tube (2), and the liquid outlet tube (4) is fixed inside the threaded retaining ring (5).
6. The direct-connected solvent effect optimizer for high-efficiency filtration according to claim 1, characterized in that, A fixing tube (3) is snapped onto the outside of both the connecting tube (1) and the mixing tube (2).