An ultrahigh pressure three-dimensional cleaning nozzle
By designing an adjustable-angle ultra-high pressure three-dimensional cleaning nozzle, the problem that fixed-angle nozzles cannot meet diverse needs has been solved, achieving flexible adjustment of the nozzle angle and improving cleaning efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LANZHOU HUARONG CLEANING & ANTICORROSION ENG
- Filing Date
- 2025-07-22
- Publication Date
- 2026-06-26
AI Technical Summary
Existing ultra-high pressure three-dimensional cleaning nozzles mostly adopt a fixed angle design, which cannot meet the needs of diverse scenarios, causing companies to frequently replace different models of nozzles, increasing production costs.
An ultra-high pressure three-dimensional cleaning nozzle was designed. The nozzle angle is adjustable through a connecting mechanism and an adjusting mechanism. A servo motor drives the connecting box to rotate, and combined with worm gear transmission, the nozzle can perform three-dimensional cleaning. Sealed bearings and sealing covers ensure sealing and stable delivery.
It enables flexible adjustment of the nozzle angle, improves the cleaning coverage and efficiency, reduces the frequency of nozzle replacement, and lowers production costs.
Smart Images

Figure CN224405512U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cleaning nozzle technology, and in particular to an ultra-high pressure three-dimensional cleaning nozzle. Background Technology
[0002] The application of ultra-high pressure three-dimensional cleaning nozzles is becoming increasingly widespread in fields such as industrial cleaning and building cleaning.
[0003] Currently, most ultra-high pressure three-dimensional cleaning nozzles on the market adopt a fixed angle design. The nozzle spray angle is usually limited to specific values such as 30°, 45° or 90°. Different cleaning operations have significantly different requirements for nozzle angle. Fixed angle nozzles cannot meet the needs of diverse scenarios. When using fixed angle nozzles, companies need to frequently change different models of nozzles to adapt to different tasks, which greatly increases the company's production costs.
[0004] Therefore, it is necessary to provide an ultra-high pressure three-dimensional cleaning nozzle to solve the problems mentioned in the background art. Utility Model Content
[0005] To address the aforementioned issues, this application provides an ultra-high pressure three-dimensional cleaning nozzle, which solves the problem mentioned in the background art that most ultra-high pressure three-dimensional cleaning nozzles on the field adopt a fixed angle design.
[0006] To achieve the objectives of this application, the following technical solution is provided:
[0007] This application provides an ultra-high pressure three-dimensional cleaning nozzle, including a connecting mechanism and an adjusting mechanism. The connecting mechanism includes a mounting frame, with a connecting box rotatably inserted into the bottom of the mounting frame. A first sealing bearing is embedded in the bottom of the connecting box, and a connecting tube is sleeved inside the first sealing bearing. A connector is installed at the top of the mounting frame. The adjusting mechanism includes a connector, with one side of the connector inserted into one end of the connecting tube and a first nozzle embedded in the other side of the connector. Movable seats are installed at both ends of the connector, and second sealing bearings are embedded in both sides of the movable seats. A guide tube is sleeved between each pair of second sealing bearings, and a second nozzle is inserted into the upper end of each guide tube.
[0008] In one possible implementation, a transmission box is fitted on one side of each of the movable seats, and one end of each guide tube extends into the interior of the transmission box and is fitted with a worm gear.
[0009] In one possible implementation, the inside of the transmission box is rotatably connected to a worm located above the worm wheel, and the worm and the worm wheel mesh with each other.
[0010] In one possible implementation, one end of the worm extends through the transmission box to the outside and is fitted with a rotating wheel.
[0011] In one possible implementation, a sealing cover is fitted on the other side of each of the movable seats, and the other end of each of the guide tubes extends into and communicates with the interior of the sealing cover. The opposing surfaces of a pair of sealing covers are connected to the two ends of one side of the connector through pipes.
[0012] In one possible implementation, a sealing cover is fitted on the other side of each of the movable seats, and the other end of each of the guide tubes extends into and communicates with the interior of the sealing cover. The opposing surfaces of a pair of sealing covers are connected to the two ends of one side of the connector through pipes.
[0013] In one possible implementation, a servo motor is fixedly mounted on the other end of the mounting bracket, and the output end of the servo motor is connected to the connecting box via a transmission.
[0014] The beneficial effects of this utility model are:
[0015] In this invention, the servo motor of the connecting mechanism drives the connecting box to rotate, which in turn rotates the connecting pipe and the adjusting mechanism, changing the angle of the connecting head. This allows the first and second nozzles to spray horizontally or vertically. The first sealing bearing ensures the sealing of the connecting pipe during rotation, preventing high-pressure liquid leakage. In the adjusting mechanism, the rotating wheel is driven by a worm gear meshing with a worm wheel to adjust the angle of the guide pipe and the second nozzle. When the second nozzle sprays, its direction is reversed, generating thrust that drives the connecting head to rotate. Combined with the rotation of the connecting mechanism, this achieves three-dimensional cleaning. The sealing cover is connected to the connecting head through a pipe, ensuring a stable supply of high-pressure liquid to the second nozzle, improving the cleaning coverage and efficiency. Attached Figure Description
[0016] The accompanying drawings are provided to further understand this application and form part of the specification. They are used together with the embodiments of this application to explain this application and do not constitute a limitation thereof.
[0017] Figure 1 This is a three-dimensional structural diagram of the ultra-high pressure three-dimensional cleaning nozzle disclosed in an embodiment of the present invention. Figure 1 ;
[0018] Figure 2 This is a three-dimensional structural diagram of the ultra-high pressure three-dimensional cleaning nozzle disclosed in an embodiment of the present invention. Figure 2 ;
[0019] Figure 3 This is a three-dimensional structural diagram of the ultra-high pressure three-dimensional cleaning nozzle disclosed in an embodiment of the present invention. Figure 3 ;
[0020] Figure 4This is a partial top cross-sectional view of the guide pipe and sealing cover of the ultra-high pressure three-dimensional cleaning nozzle disclosed in this utility model embodiment;
[0021] Figure 5 This is a front cross-sectional view of the transmission box of the ultra-high pressure three-dimensional cleaning nozzle disclosed in an embodiment of this utility model;
[0022] Figure 6 This is a partial front cross-sectional view of the mounting bracket and connecting box of the ultra-high pressure three-dimensional cleaning nozzle disclosed in an embodiment of this utility model;
[0023] Reference numerals: 1. Connecting mechanism; 101. Mounting bracket; 102. Connector; 103. Adapter; 104. Connecting box; 105. Connecting pipe; 106. Connecting pipe; 2. Adjusting mechanism; 201. Connector; 202. First nozzle; 203. Movable seat; 204. Guide pipe; 205. Second nozzle; 206. Transmission box; 207. Rotary wheel; 208. Sealing cover; 209. Worm gear; 210. Worm. Detailed Implementation
[0024] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0025] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature; in the description of this application, unless otherwise stated, "multiple" means three or more.
[0026] Figures 1-6An ultra-high pressure three-dimensional cleaning nozzle provided in this application includes a connecting mechanism 1 and an adjusting mechanism 2. The connecting mechanism 1 includes a mounting frame 101, with a connecting box 104 rotatably inserted into the bottom of the mounting frame 101. A first sealing bearing is embedded in the bottom of the connecting box 104, and a connecting tube 105 is sleeved inside the first sealing bearing. A connector 102 is installed at the top of the mounting frame 101. The adjusting mechanism 2 includes a connector 201, with one side of the connector 201 inserted into one end of the connecting tube 105 and a first nozzle 202 embedded in the other side of the connector 201. Movable seats 203 are installed at both ends of the connector 201, and second sealing bearings are embedded in both sides of the movable seats 203. A guide tube 204 is sleeved between each pair of second sealing bearings, and a second nozzle 205 is inserted into the upper end of each guide tube 204. A servo motor of the connecting mechanism 1 is also included. The drive connection box 104 rotates, causing the connection pipe 105 and the adjustment mechanism 2 to rotate, changing the angle of the connector 201. This allows the first nozzle 202 and the second nozzle 205 to spray horizontally or vertically. The first sealing bearing ensures the sealing of the connection pipe 105 during rotation, preventing high-pressure liquid leakage. In the adjustment mechanism 2, the rotating wheel 207 meshes with the worm gear 210 and worm wheel 209 to adjust the angle of the guide pipe 204 and the second nozzle 205. When the second nozzle 205 sprays, its direction is reversed, generating thrust that drives the connector 201 to rotate. Combined with the rotation of the connection mechanism 1, this achieves three-dimensional cleaning. The sealing cover 208 is connected to the connector 201 through a pipe, ensuring stable delivery of high-pressure liquid to the second nozzle 205, improving the cleaning coverage and efficiency.
[0027] In one possible implementation, a transmission box 206 is fitted on one side of each pair of movable seats 203. One end of the guide pipe 204 extends into the interior of the transmission box 206 and is fitted with a worm gear 209. A worm 210 is rotatably connected to the upper end of each worm gear 209 inside the transmission box 206, and the worm 210 meshes with the worm gear 209. A sealing cover 208 is fitted on the other side of each pair of movable seats 203. The other end of each guide pipe 204 extends into and communicates with the sealing cover 208. The opposing surfaces of the pair of sealing covers 208 are connected to both ends of one side of the connector 201 via pipes. The guide pipe 204 extends into the transmission box 206 and is fitted with the worm gear 209, providing a connection base for the transmission between the worm 210 and the worm gear 209. Based on this, the angle of the guide tube 204 is adjusted by the circumferential motion of the worm gear 209, thereby changing the spray direction of the second nozzle 205. The worm 210 meshes with the worm gear 209, converting the rotational motion of the worm 210 into the circumferential motion of the worm gear 209, which drives the guide tube 204 to rotate, thus achieving stable adjustment of the angle of the second nozzle 205. At the same time, the transmission between the worm 210 and the worm gear 209 has a self-locking function, which can fix the angle of the second nozzle 205 and prevent angle deviation caused by high-pressure backflow. The rotating wheel 207 serves as the operating end, allowing the operator to manually rotate the worm 210. Through intuitive rotation operation, the angle of the guide tube 204 and the second nozzle 205 can be precisely adjusted, meeting the needs of different cleaning scenarios and improving operational convenience.
[0028] In one possible implementation, an adapter 103 is fitted onto one end of the mounting bracket 101, and a connecting pipe 106 is provided on the upper side of one side of the connecting box 104. The connecting pipe 106 extends through the inner ring of the first sealed bearing to the outside and is rotatably connected to one end of the adapter 103. A servo motor is fixedly mounted on the other end of the mounting bracket 101, and the output end of the servo motor is drivenly connected to the connecting box 104. The sealing cover 208 is connected to the connector 201 through a pipe to form a closed high-pressure liquid transmission channel, ensuring that the liquid flows stably from the connector 201 into the guide pipe 204 and the second nozzle 205, preventing liquid leakage or pressure loss. To ensure cleaning effectiveness, the connecting pipe 106 passes through the first sealed bearing and is rotatably connected to the adapter 103. When the connecting box 104 rotates, it ensures that the high-pressure liquid is stably delivered from the adapter 103 to the connecting pipe 105, realizing continuous liquid supply during the rotation of the first nozzle 202 and the second nozzle 205, avoiding pipe twisting or liquid interruption due to rotation. The servo motor provides power to the connecting box 104, driving the connecting pipe 105 and the adjusting mechanism 2 to perform circumferential motion, enabling the first nozzle 202 and the second nozzle 205 to achieve circumferential cleaning. Through the control of the motor, it can adapt to different cleaning needs and improve cleaning efficiency and uniformity.
[0029] Working principle:
[0030] In use, high-pressure liquid enters the connecting pipe 106 and the connecting box 104 through the adapter 103, and then flows into the connector 201 through the connecting pipe 105. Part of it is sprayed out from the first nozzle 202, and the other part enters the sealing cover 208 through the pipe, and is sprayed out from the second nozzle 205 through the guide pipe 204. The servo motor on the mounting bracket 101 drives the connecting box 104 to rotate, and drives the connecting pipe 105 and the adjusting mechanism 2 to make circumferential motion through the first sealing bearing, so as to achieve circumferential cleaning in the horizontal direction. At the same time, the operator rotates the rotating wheel 207, which drives the worm gear 210 to mesh with the worm wheel 209 to adjust the angle of the guide pipe 204 and the second nozzle 205. Since the two second nozzles 205 spray in opposite directions, the reaction force generated when the high-pressure liquid is sprayed will push the connector 201 to rotate. Combined with the circumferential motion driven by the servo motor, a three-dimensional cleaning effect is formed. The first sealing bearing and the second sealing bearing respectively ensure the sealing of the connecting pipe 105 and the guide pipe 204 when they rotate, prevent high-pressure liquid leakage, and ensure cleaning efficiency and stability.
[0031] The above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit it. This application is not limited to the exact structures described above and illustrated in the accompanying drawings, and it should not be considered that the specific implementation of this application is limited to these descriptions. For those skilled in the art, various changes and modifications made without departing from the concept of this application should be considered to fall within the protection scope of this application.
Claims
1. An ultra-high pressure three-dimensional cleaning nozzle, characterized in that, The device includes a connecting mechanism (1) and an adjusting mechanism (2). The connecting mechanism (1) includes a mounting frame (101). A connecting box (104) is rotatably inserted into the bottom of the mounting frame (101). A first sealing bearing is embedded in the bottom of the connecting box (104). A connecting tube (105) is sleeved inside the first sealing bearing. A connector (102) is installed at the top of the mounting frame (101). The adjusting mechanism (2) includes a connector (201). One side of the connector (201) is inserted into one end of the connecting tube (105). A first nozzle (202) is embedded in the other side of the connector (201). Movable seats (203) are installed at both ends of the connector (201). Second sealing bearings are embedded in both sides of the movable seats (203). A guide tube (204) is sleeved between each pair of second sealing bearings. A second nozzle (205) is inserted into the upper end of each guide tube (204).
2. The ultra-high pressure three-dimensional cleaning nozzle according to claim 1, characterized in that, A transmission box (206) is fitted on one side of each of the pair of movable seats (203), and one end of the guide tube (204) extends into the interior of the transmission box (206) and is fitted with a worm gear (209).
3. The ultra-high pressure three-dimensional cleaning nozzle according to claim 2, characterized in that, The transmission box (206) is rotatably connected to a worm (210) at the upper end of the worm wheel (209), and the worm (210) meshes with the worm wheel (209).
4. The ultra-high pressure three-dimensional cleaning nozzle according to claim 3, characterized in that, One end of the worm gear (210) extends through the transmission box (206) to the outside and is fitted with a rotating wheel (207).
5. The ultra-high pressure three-dimensional cleaning nozzle according to claim 1, characterized in that, Each of the two movable seats (203) is fitted with a sealing cover (208) on the other side. The other end of each guide tube (204) extends into the interior of the sealing cover (208) and communicates with it. The opposing surfaces of the two sealing covers (208) are connected to one end of the connector (201) through pipes.
6. The ultra-high pressure three-dimensional cleaning nozzle according to claim 1, characterized in that, One end of the mounting bracket (101) is fitted with an adapter (103), and the upper side of the connecting box (104) is provided with a connecting pipe (106). The connecting pipe (106) extends through the inner ring of the first sealed bearing to the outside and is rotatably connected to one end of the adapter (103).
7. The ultra-high pressure three-dimensional cleaning nozzle according to claim 1, characterized in that, A servo motor is fixedly mounted on the other end of the mounting bracket (101), and the output end of the servo motor is connected to the connecting box (104) for transmission.