Multi-pipe cooperative injection type peculiar smell purifier
By employing a multi-tube collaborative injection design, the problem of reduced purification efficiency in traditional odor purification equipment when the nozzles become clogged is solved, achieving continuous and efficient odor elimination and ensuring the stability of the purification process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI QIFEITE ENVIRONMENTAL BIOTECHNOLOGY CO LTD
- Filing Date
- 2025-05-22
- Publication Date
- 2026-05-19
AI Technical Summary
Traditional injection-type odor purification equipment cannot guarantee the continuity of odor elimination when the nozzle is clogged or malfunctions, resulting in reduced purification efficiency.
It adopts a multi-pipe collaborative injection design. The purified air is delivered to the delivery pipe through the purification module. The pushing component drives the sealing plate to move, so that the output pipe is connected to the nozzle. This ensures that multiple nozzles work in parallel. If one nozzle is blocked, the other nozzles can still maintain the spray coverage and ensure the continuity of the purification process.
It achieves continuous and efficient odor elimination, avoids interruptions in the purification process caused by a single nozzle malfunction, and improves purification efficiency.
Smart Images

Figure CN224261900U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a multi-tube synergistic injection odor purifier, belonging to the field of odor purification technology. Background Technology
[0002] As people's living standards improve and their environmental awareness increases, the requirements for air quality in their living and working environments are also rising. Odor problems not only bring unpleasant sensory experiences, but long-term exposure to odorous environments can also have adverse effects on human health. Traditional injection-type odor purification equipment typically uses a single nozzle. During the purification process, if the nozzle becomes clogged or malfunctions, the spray coverage area of the entire purification system will be significantly reduced, and the purification process may even be interrupted, failing to guarantee the continuity of odor elimination and greatly reducing the purification efficiency. Utility Model Content
[0003] The technical problem to be solved by this utility model is to provide a multi-tube coordinated injection odor purifier, which solves the problem in the prior art that when the nozzle is blocked or malfunctions, the continuous odor elimination work cannot be guaranteed, which greatly reduces the odor purification efficiency.
[0004] The technical problem to be solved by this utility model is achieved by the following technical solution: a multi-tube coordinated injection odor purifier, including a purification module and a delivery pipe, the delivery pipe being connected to the purification module, a plurality of output pipes being fixedly arranged on the delivery pipe, a nozzle being arranged at one end of the plurality of output pipes away from the delivery pipe, a sealing groove being opened inside the plurality of output pipes, a sealing plate being arranged inside the sealing groove, and mounting plates being fixedly arranged on the delivery pipe respectively aligned with the output pipes, and a pushing component for pushing the sealing plate being arranged on the mounting plate.
[0005] By adopting the above technical solution, the purified air is first delivered to the delivery pipe through the purification module, and then the delivery pipe delivers the air to each output pipe. Subsequently, the push component moves the sealing plate away from the sealing groove, so that the output pipe is connected to the nozzle. Then, the purified air is sprayed out through the nozzle. With multiple output pipes, the output pipes can be set at different positions to purify odors, which can quickly eliminate odors in the area. If one nozzle is blocked, the other nozzles can still maintain the original spray coverage, avoiding the interruption of the entire purification process due to the failure of a single nozzle, and ensuring the continuity of odor elimination.
[0006] The present invention is further configured such that: the pushing component includes a positioning plate, a positioning groove, a sliding groove, a sliding plate, and a limiting part; the positioning groove is formed on the mounting plate, the positioning plate is slidably disposed inside the positioning groove, the sliding groove is formed on the positioning plate, the sliding plate is slidably disposed inside the sliding groove, one end of the sliding plate extends to the outside of the positioning plate and is fixedly connected to the sealing plate, and the limiting part is disposed on the sliding plate and is used to limit the sliding plate.
[0007] The present invention is further configured such that: the limiting part includes a limiting groove, a connecting block, a first connecting groove, a second connecting groove, a third connecting groove, a spring, an assembly groove, and a lever plate; the limiting groove is formed on the sliding plate; the connecting block is slidably disposed inside the limiting groove; the first connecting groove, the second connecting groove, and the third connecting groove are formed on the inner wall of the sliding groove; one end of the connecting block extends to the outer side of the sliding plate and can be inserted into the first connecting groove, the second connecting groove, or the third connecting groove; the spring is located between the limiting groove and the connecting block; both ends of the spring are fixedly connected to the limiting groove and the connecting block, respectively; the assembly groove is formed on the positioning plate and communicates with the positioning groove; the lever plate is fixedly connected to the connecting block; one end of the lever plate extends to the outer side of the positioning plate and is slidably connected to the assembly groove.
[0008] By adopting the above technical solution, the pressing plate drives the connecting block to slide within the limiting groove. During the sliding process, the connecting block compresses the spring, causing it to move away from the first connecting groove, thus separating the connecting block from the first connecting groove and canceling the limiting of the sliding plate. Then, the pressing plate is pushed along the assembly groove towards the second connecting groove, causing the pressing plate to move within the sliding groove. Subsequently, the sliding plate drives the sealing plate to move away from the sealing groove. When the connecting block is aligned with the second connecting groove, the spring resets and pushes the connecting block into the interior of the second connecting groove, thus completing the limiting of the sliding plate and enabling the connection between the output pipe and the nozzle, completing the delivery of purified air.
[0009] The present invention is further configured such that: a guide groove is provided on the mounting plate, a guide rod is fixedly provided on the positioning plate, one end of the guide rod extends to the outside of the mounting plate and is slidably connected to the guide groove, and a drive structure for driving the guide rod to move is provided on the conveying pipe.
[0010] The present invention is further configured such that: the driving structure includes an extension plate, a threaded rod and a turntable; the extension plate is fixedly mounted on the end of the conveying pipe away from the purification module; the threaded rod is rotatably connected to the extension plate; one end of the threaded rod extends toward the purification module and is threadedly connected to the guide rod; and the turntable is fixedly mounted on the end of the threaded rod away from the purification module.
[0011] By adopting the above technical solution, the rotating turntable drives the threaded rod to rotate, which in turn drives all the guide rods to move synchronously. Then, the guide rods move along the guide groove, and at the same time, the guide rods drive the positioning plate to move along the positioning groove. Then, the positioning plate drives the sliding plate to move, which in turn drives the sealing plate to move away from the sealing groove, thereby realizing the connection between the output pipe and the nozzle. By rotating the threaded rod, all the sealing plates and sealing grooves can be connected or separated at the same time, which effectively improves the efficiency of the staff in eliminating odors.
[0012] The present invention is further configured such that the nozzle and the output pipe are detachably fixed.
[0013] By adopting the above technical solution, the detachable connection allows operators to easily replace or maintain the nozzles according to actual needs.
[0014] The beneficial effects of this utility model are as follows: First, the purified air is delivered to the delivery pipe through the purification module, and then the delivery pipe delivers the air to each output pipe. Then, the pushing component moves the sealing plate away from the sealing groove, so that the output pipe is connected to the nozzle. Then, the purified air is sprayed out through the nozzle. With multiple output pipes, the output pipes can be set at different positions to purify odors, which can quickly eliminate odors in the area. If one nozzle is blocked, the other nozzles can still maintain the original spray coverage, avoiding the interruption of the entire purification process due to the failure of a single nozzle, and ensuring the continuity of odor elimination. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0016] Figure 2 This is a three-dimensional schematic diagram of the conveying pipe in this utility model;
[0017] Figure 3 This is a schematic diagram of the explosion of the conveying pipe of this utility model;
[0018] Figure 4 This utility model Figure 3 Enlarged view of point A in the middle;
[0019] Figure 5 This is a schematic diagram showing the complete sealing of the sealing plate and sealing groove in this utility model;
[0020] Figure 6 This is a schematic diagram showing the sealing plate and sealing groove being separated in this utility model;
[0021] Figure 7 This is a schematic diagram showing the complete separation of the sealing plate and the sealing groove in this utility model;
[0022] Figure 8This is a schematic diagram showing the sealing plate and sealing groove being sealed separately in this utility model.
[0023] In the diagram: 1. Purification module; 2. Delivery pipe; 3. Output pipe; 4. Nozzle; 5. Sealing plate; 6. Mounting plate; 7. Sealing groove; 1011. Positioning plate; 1012. Positioning groove; 1013. Sliding groove; 1014. Sliding plate; 1021. Limiting groove; 1022. Connecting block; 1023. First connecting groove; 1024. Second connecting groove; 1025. Third connecting groove; 1026. Spring; 1027. Assembly groove; 1028. Paddle plate; 1031. Guide groove; 1032. Guide rod; 1051. Extension plate; 1052. Threaded rod; 1053. Turntable. Detailed Implementation
[0024] In order to make the technical means, creative features, objectives and effects of this utility model easier to understand, the following description, in conjunction with specific illustrations, further elaborates on this utility model.
[0025] like Figures 1 to 3 As shown, a multi-pipe coordinated injection odor purifier includes a purification module 1 and a delivery pipe 2. The delivery pipe 2 is connected to the purification module 1. The purification module 1 includes a purification box, which contains a high-pressure pump, a mixing box, a water mist separator, and a blower. Several output pipes 3 are fixedly connected to the delivery pipe 2. A nozzle 4 is provided at one end of each output pipe 3 away from the delivery pipe 2. A sealing groove 7 is opened inside the output pipe 3. A sealing plate 5 is provided inside the sealing groove 7. The sealing groove 7 and the sealing plate 5 are rectangular. Mounting plates 6 are fixedly installed on the delivery pipe 2, each aligned with one of the output pipes 3. A pushing component for pushing the sealing plate 5 is provided on the mounting plate 6.
[0026] like Figure 3 As shown, the pushing assembly includes a positioning plate 1011, a positioning groove 1012, a sliding groove 1013, a sliding plate 1014, and a limiting part. The positioning groove 1012 is horizontally opened on the mounting plate 6. The positioning plate 1011 slides along the opening direction of the positioning groove 1012. The sliding groove 1013 is opened on the positioning plate 1011. The opening direction of the sliding groove 1013 is the same as the opening direction of the positioning groove 1012. The sliding plate 1014 slides along the opening direction of the sliding groove 1013. One end of the sliding plate 1014 extends to the outside of the positioning plate 1011 and is fixedly connected to the sealing plate 5. The limiting part is provided on the sliding plate 1014 and is used to limit the sliding plate 1014.
[0027] like Figure 4As shown, the limiting part includes a limiting groove 1021, a connecting block 1022, a first connecting groove 1023, a second connecting groove 1024, a third connecting groove 1025, a spring 1026, an assembly groove 1027, and a lever 1028. The limiting groove 1021 is formed on opposite sides of the sliding plate 1014. The connecting block 1022 is slidably disposed inside the limiting groove 1021. The first connecting groove 1023, the second connecting groove 1024, and the third connecting groove 1025 are formed on the inner wall of the sliding groove 1013. One end of the connecting block 1022 extends to the sliding plate 1014. The outer side of 4 can be inserted into the first connecting groove 1023, the second connecting groove 1024 or the third connecting groove 1025. The spring 1026 is located between the limiting groove 1021 and the connecting block 1022. The two ends of the spring 1026 are fixedly connected to the limiting groove 1021 and the connecting block 1022 respectively. The assembly groove 1027 is vertically opened on the positioning plate 1011 and communicates with the positioning groove 1012. The lever 1028 is fixedly connected to the connecting block 1022. One end of the lever 1028 extends to the outer side of the positioning plate 1011 and is slidably connected to the assembly groove 1027.
[0028] like Figure 2 As shown, a guide groove 1031 is provided on the mounting plate 6, and a guide rod 1032 is fixedly provided on the positioning plate 1011. One end of the guide rod 1032 extends to the outside of the mounting plate 6 and is slidably connected to the guide groove 1031. A drive structure for driving the guide rod 1032 to move is provided on the conveying pipe 2.
[0029] like Figure 2 As shown, the drive structure includes an extension plate 1051, a threaded rod 1052, and a turntable 1053. The extension plate 1051 is fixedly mounted on the conveying pipe 2 at one end away from the purification module 1. The threaded rod 1052 is rotatably connected to the extension plate 1051. One end of the threaded rod 1052 extends toward the purification module 1 and is threadedly connected to the guide rod 1032. The turntable 1053 is fixedly mounted on the threaded rod 1052 at one end away from the purification module 1.
[0030] The nozzle 4 and the output pipe 3 are detachably fixed. The detachable fixing includes, but is not limited to, threaded connection and snap-fit connection. The nozzle 4 is provided with a threaded post, and the output pipe 3 is provided with a threaded hole. The nozzle 4 and the output pipe 3 are connected by threaded post and threaded hole. The nozzle 4 is provided with an elastic protrusion, and the output pipe 3 is provided with a groove. The nozzle 4 and the output pipe 3 are snapped together by the protrusion and the groove.
[0031] First, the purified air is delivered to the delivery pipe 2 through the purification module 1, which then delivers the air to each output pipe 3. Next, the push assembly moves the sealing plate 5 away from the sealing groove 7, connecting the output pipe 3 with the nozzle 4. The purified air is then sprayed out through the nozzle 4. With multiple output pipes 3, the output pipes 3 can be positioned at different locations to purify odors, quickly eliminating odors in the area. If one nozzle 4 becomes blocked, the other nozzles 4 can still maintain their original spray coverage, preventing the entire purification process from being interrupted due to the failure of a single nozzle 4, thus ensuring the continuity of odor elimination.
[0032] like Figures 5 to 6 As shown, pressing the dial 1028 causes the connecting block 1022 to slide within the limiting groove 1021. During the sliding process, the connecting block 1022 compresses the spring 1026, causing the connecting block 1022 to move away from the first connecting groove 1023, thus separating the connecting block 1022 from the first connecting groove 1023 and canceling the limiting of the sliding plate 1014. Then, the dial 1028 is pushed to move along the assembly groove 1027 towards the second connecting groove 1024, causing the dial 1028 to move the sliding plate 1014 within the sliding groove 1013. Subsequently, the sliding plate 1014 causes the sealing plate 5 to move away from the sealing groove 7. When the connecting block 1022 is aligned with the second connecting groove 1024, the spring 1026 resets and pushes the connecting block 1022 into the interior of the second connecting groove 1024, thus completing the limiting of the sliding plate 1014 and realizing the connection between the output pipe 3 and the nozzle 4, completing the delivery of purified air.
[0033] When the output pipe 3 and the nozzle 4 are closed, the sealing plate 5 and the sealing groove 7 are in contact. When the output pipe 3 and the nozzle 4 are connected, the sealing plate 5 and the sealing groove 7 are in a separate state and the sealing plate 5 is in contact with the inner wall of the output pipe 3.
[0034] like Figure 5 and Figure 7 As shown, when all the sealing plates 5 are in contact with the sealing groove 7, the turntable 1053 can be rotated to drive the threaded rod 1052 to rotate, causing the threaded rod 1052 to drive all the guide rods 1032 to move synchronously. Then, the guide rods 1032 move along the guide groove 1031, and at the same time, the guide rods 1032 drive the positioning plate 1011 to move along the positioning groove 1012. Then, the positioning plate 1011 drives the sliding plate 1014 to move, causing the sliding plate 1014 to drive the sealing plates 5 to move away from the sealing groove 7, thus connecting the output pipe 3 and the nozzle 4. By rotating the threaded rod 1052, all the sealing plates 5 can be separated from the sealing groove 7 at the same time, effectively improving the efficiency of the workers in eliminating odors.
[0035] like Figure 6 and Figure 8 As shown, when all the sealing plates 5 are separated from the sealing groove 7, pressing the lever 1028 causes the connecting block 1022 to slide within the limiting groove 1021. During the sliding process, the connecting block 1022 compresses the spring 1026, causing the connecting block 1022 to move away from the first connecting groove 1023, thus completing the separation of the connecting block 1022 from the first connecting groove 1023. This releases the limiting effect on the sliding plate 1014. Then, the lever 1028 is pushed along the assembly groove 1027 towards the third connecting groove 1025. The sliding plate 1028 moves in the direction of the sliding plate 1014 within the sliding groove 1013, and then the sliding plate 1014 moves the sealing plate 5 towards the sealing groove 7. When the connecting block 1022 is aligned with the third connecting groove 1025, the connecting block 1022 is pushed into the third connecting groove 1025 by the spring 1026 to complete the limiting of the sliding plate 1014 and the sealing plate 5 abuts against the sealing groove 7, thereby achieving the sealing of the corresponding output pipe 3 and nozzle 4.
[0036] The detachable connection allows operators to easily replace or maintain the nozzle 4 according to actual needs.
[0037] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments, and various changes and modifications can be made without departing from the spirit and scope of this utility model. All such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A multi-tube synergistic injection odor purifier, characterized in that: The device includes a purification module (1) and a delivery pipe (2). The delivery pipe (2) is connected to the purification module (1). Several output pipes (3) are fixedly connected to the delivery pipe (2). A nozzle (4) is provided at one end of each output pipe (3) away from the delivery pipe (2). A sealing groove (7) is opened inside each output pipe (3). A sealing plate (5) is provided inside the sealing groove (7). An mounting plate (6) is fixedly provided on the delivery pipe (2) and is aligned with the output pipes (3). A pushing component for pushing the sealing plate (5) is provided on the mounting plate (6).
2. The multi-tube synergistic injection odor purifier according to claim 1, characterized in that: The pushing assembly includes a positioning plate (1011), a positioning groove (1012), a sliding groove (1013), a sliding plate (1014), and a limiting part. The positioning groove (1012) is formed on the mounting plate (6). The positioning plate (1011) is slidably disposed inside the positioning groove (1012). The sliding groove (1013) is formed on the positioning plate (1011). The sliding plate (1014) is slidably disposed inside the sliding groove (1013). One end of the sliding plate (1014) extends to the outside of the positioning plate (1011) and is fixedly connected to the sealing plate (5). The limiting part is disposed on the sliding plate (1014) and is used to limit the sliding plate (1014).
3. The multi-tube synergistic injection odor purifier according to claim 2, characterized in that: The limiting part includes a limiting groove (1021), a connecting block (1022), a first connecting groove (1023), a second connecting groove (1024), a third connecting groove (1025), a spring (1026), an assembly groove (1027), and a lever (1028). The limiting groove (1021) is formed on the sliding plate (1014), and the connecting block (1022) is slidably disposed inside the limiting groove (1021). The first connecting groove (1023), the second connecting groove (1024), and the third connecting groove (1025) are formed on the inner wall of the sliding groove (1013). One end of the connecting block (1022) extends to the outside of the sliding plate (1014). The spring (1026) is located between the limiting groove (1021) and the connecting block (1022). The two ends of the spring (1026) are fixedly connected to the limiting groove (1021) and the connecting block (1022), respectively. The assembly groove (1027) is opened on the positioning plate (1011) and communicates with the positioning groove (1012). The lever (1028) is fixedly connected to the connecting block (1022). One end of the lever (1028) extends to the outside of the positioning plate (1011) and is slidably connected to the assembly groove (1027).
4. The multi-tube synergistic injection odor purifier according to claim 2, characterized in that: The mounting plate (6) is provided with a guide groove (1031), and a guide rod (1032) is fixedly provided on the positioning plate (1011). One end of the guide rod (1032) extends to the outside of the mounting plate (6) and is slidably connected to the guide groove (1031). The conveying pipe (2) is provided with a driving structure for driving the guide rod (1032) to move.
5. The multi-tube synergistic injection odor purifier according to claim 4, characterized in that: The drive structure includes an extension plate (1051), a threaded rod (1052), and a turntable (1053). The extension plate (1051) is fixedly mounted on the conveying pipe (2) at one end away from the purification module (1). The threaded rod (1052) is rotatably connected to the extension plate (1051). One end of the threaded rod (1052) extends toward the purification module (1) and is threadedly connected to the guide rod (1032). The turntable (1053) is fixedly mounted on the threaded rod (1052) at one end away from the purification module (1).
6. The multi-tube synergistic injection odor purifier according to claim 1, characterized in that: The nozzle (4) and the output pipe (3) are detachably fixed.