Boosting type induction bucket
By using a motor to drive the eccentric wheel to rotate and drive the piston to reciprocate, combined with the booster design of the duckbill valve and the one-way valve, the problem of slow drainage speed and clogging of existing water tanks is solved, achieving a fast, stable and efficient drainage effect.
Patent Information
- Application Number
- CN202423310354.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing water hoppers rely on gravity and natural flow, resulting in slow drainage speeds. This is especially true when the wastewater volume is large or contains a lot of solid impurities, which reduces drainage efficiency and makes the hoppers prone to clogging, increasing cleaning and maintenance costs.
The system uses an electric motor to drive an eccentric wheel to rotate, which in turn drives a piston to reciprocate inside the pumping pipe via a connecting rod. By using a duckbill valve and a check valve, negative pressure is applied for water intake and positive pressure for water drainage, ensuring unidirectional and continuous water flow. The system also incorporates a level sensor and a draining net to improve drainage efficiency.
It achieves a fast, stable, and continuous drainage process, improving drainage efficiency, preventing blockages, and reducing cleaning and maintenance costs.
Smart Images

Figure CN223621740U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of drainage equipment technology, specifically a booster-type induction water bucket. Background Technology
[0002] A water trough is a common water supply and drainage device, mainly used to collect and discharge wastewater. It can effectively clean and recycle sewage. Depending on its use and structure, water troughs can be divided into various types, such as kitchen water troughs, washing machine water troughs, and bathroom water troughs. These water troughs play an important role in their respective fields, ensuring the timely discharge and recycling of wastewater.
[0003] However, existing water hoppers rely solely on gravity and natural flow, which may result in slow drainage. When the wastewater volume is large or contains a lot of solid impurities, the drainage efficiency will be further reduced. Furthermore, due to reliance on natural flow, impurities in the wastewater are prone to accumulate in the pipes, causing blockages. This not only affects normal use but may also require additional cleaning and maintenance costs. Utility Model Content
[0004] To address the shortcomings of existing technologies, this application provides a booster-type induction water hopper, which has advantages such as active drainage. It solves the problem that existing water hoppers rely solely on gravity and natural flow, which may result in slow drainage speed. When the wastewater volume is large or contains a lot of solid impurities, the drainage efficiency will be further reduced. Furthermore, due to reliance on natural flow, impurities in the wastewater are prone to accumulate in the pipes, leading to blockages. This not only affects normal use but may also require additional cleaning and maintenance costs.
[0005] To achieve the above objectives, this application provides the following technical solution: a booster-type induction water bucket, comprising a water bucket body and a piston, wherein a water pumping pipe is fixedly connected to the bottom of the water bucket body, an installation pipe is fixedly connected to the bottom of the water pumping pipe, an outlet pipe is fixedly connected to the bottom of the outer wall of the installation pipe, a one-way valve is fixedly connected to the bottom of the outlet pipe, a motor is fixedly connected to one side of the installation pipe, an eccentric wheel is fixedly connected to the output end of the motor through the side of the installation pipe, a rotating seat is fixedly connected to the bottom of the piston, a connecting rod is rotatably connected inside the rotating seat, a retaining ring is fixedly connected to the inner wall of the water pumping pipe, and a plurality of duckbill valves arranged in a ring array are fixedly installed inside the water pumping pipe.
[0006] The above scheme uses a motor as a power source to drive an eccentric wheel to rotate. The eccentric wheel is connected to a piston via a connecting rod. When the eccentric wheel rotates, the connecting rod drives the piston to reciprocate within the pumping pipe. When the piston moves upward, the air pressure inside the pumping pipe decreases, creating a negative pressure. At this time, water from the water tank is drawn into the pumping pipe through a ring-shaped array of duckbill valves. The duckbill valves automatically open under negative pressure, allowing water to enter. During the piston's downward movement, the duckbill valves close due to their one-way sealing, preventing water from entering the pumping pipe. The water flows back into the water tank. When the piston moves downward, the water in the pumping pipe is compressed, increasing the pressure and opening the one-way valve. The water is then discharged through the outlet pipe. At this time, the one-way valve ensures that the water can only flow out in one direction to prevent backflow. The combined use of the one-way valve and the duckbill valve ensures the continuity and stability of the pumping. The device uses a motor to drive the eccentric wheel to rotate, a connecting rod to drive the piston to reciprocate, and the combined use of the one-way valve and the duckbill valve to pump wastewater and push it out quickly. This mechanically assisted method improves drainage efficiency compared to traditional gravity drainage.
[0007] Furthermore, the piston outer wall is fixedly fitted with two sealing rings arranged in a mirror image.
[0008] Through the above scheme, the main function of the sealing ring is to enhance the sealing between the piston and the pumping pipe wall, and to prevent water from leaking from the gap between the piston and the pipe wall during the pumping process.
[0009] Furthermore, a drain pipe is fixedly connected to the bottom end of the one-way valve.
[0010] With the above solution, the main function of the check valve is to ensure that water can only flow out in one direction and prevent backflow. When the check valve is opened, water will flow out from its interior and be guided to the required position through the drain pipe at the bottom. The drain pipe allows users to adjust the position and length of the drain pipe according to actual needs to adapt to different usage scenarios and drainage requirements.
[0011] Furthermore, a slide rail is fixedly connected to one side of the inner wall of the water tank body, a movable seat is slidably arranged inside the slide rail, an mounting base is fixedly connected to one side of the movable seat, and a liquid level sensor is fixedly connected inside the mounting base.
[0012] With the above scheme, the liquid level sensor is installed inside the mounting base, which slides on the slide rail via a movable seat, allowing the liquid level sensor to monitor different height positions inside the water tank body, thereby realizing the monitoring of the liquid level in the water tank. When the water in the water tank reaches the designated position, the water level sensor will start the pumping device to pump out the water.
[0013] Furthermore, an installation ring is fixedly connected to the inner wall of the water tank body, a drain net is slidably arranged inside the installation ring, and a handle is fixedly connected to one side of the upper end of the drain net.
[0014] With the above solution, the drain net is installed at the bottom of the inside of the water hopper body to block impurities and residues in the water, preventing impurities from entering the pumping device.
[0015] Furthermore, the end of the connecting rod away from the rotating seat is rotatably sleeved on the outer wall of the eccentric shaft of the eccentric wheel.
[0016] With the above scheme, one end of the connecting rod is fixedly connected to the rotating seat, while the other end is rotatably sleeved on the outer wall of the eccentric shaft of the eccentric wheel, so that the connecting rod swings back and forth with the rotation of the eccentric wheel, thereby driving the piston to reciprocate inside the water pipe.
[0017] Furthermore, the piston is slidably disposed inside the water pumping pipe.
[0018] With the above scheme, the piston is designed to slide smoothly inside the water pumping pipe. When the piston slides inside the water pumping pipe, it changes the volume inside the water pumping pipe, thereby creating negative or positive pressure to draw in or discharge water. When the piston slides upward, the volume inside the water pumping pipe increases, creating negative pressure, thereby drawing in water from the water tank body. When the piston slides downward, the volume inside the water pumping pipe decreases, creating positive pressure, and discharging water through the outlet pipe.
[0019] Furthermore, the eccentric wheel is rotatably disposed inside the mounting tube.
[0020] With the above scheme, the eccentric wheel can rotate rapidly inside the mounting pipe. One end of the connecting rod is connected to the eccentric part of the eccentric wheel, and the other end is connected to the piston. When the eccentric wheel rotates, its eccentric part will drive the connecting rod to swing back and forth, thereby driving the piston to reciprocate in the pumping pipe.
[0021] Compared with the prior art, the technical solution of this application has the following beneficial effects:
[0022] This type of booster-type induction water bucket uses a motor as a power source to drive an eccentric wheel to rotate. The eccentric wheel is connected to a piston via a connecting rod. When the eccentric wheel rotates, the connecting rod drives the piston to reciprocate within the pumping pipe. When the piston moves upward, the air pressure inside the pumping pipe decreases, creating a negative pressure. At this time, water from the water bucket body is drawn into the pumping pipe through a ring-shaped array of duckbill valves. The duckbill valves are designed to automatically open under negative pressure, allowing water to flow in. During the piston's downward movement, the duckbill valves close due to their one-way sealing property, preventing water from entering the pumping pipe. The water flows back into the water tank. When the piston moves downward, the water in the pumping pipe is compressed, the pressure increases, and the one-way valve is opened, allowing the water to be discharged through the outlet pipe. At this time, the one-way valve ensures that the water can only flow out in one direction to prevent backflow. The combined use of the one-way valve and the duckbill valve ensures the continuity and stability of the pumping. The device uses a motor to drive the eccentric wheel to rotate, a connecting rod to drive the piston to reciprocate, and the combined use of the one-way valve and the duckbill valve to pump wastewater and push it out quickly. This mechanical propulsion method improves drainage efficiency compared to traditional gravity drainage. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of this application;
[0024] Figure 2 This is a schematic diagram of the overall internal structure of the present application.
[0025] Figure 3 This is a schematic diagram of the drainage device structure of this application;
[0026] Figure 4 This is a schematic diagram of the installation structure of the drainage net in this application.
[0027] In the picture:
[0028] 1. Water tank body; 2. Pumping pipe; 3. Mounting pipe; 4. Outlet pipe; 5. One-way valve; 6. Motor; 7. Eccentric wheel; 8. Piston; 9. Sealing ring; 10. Rotating seat; 11. Connecting rod; 12. Retaining ring; 13. Duckbill valve; 14. Drain pipe; 15. Slide rail; 16. Moving seat; 17. Mounting seat; 18. Liquid level sensor; 19. Mounting ring; 20. Draining net; 21. Handle. Detailed Implementation
[0029] The technical solutions of the embodiments 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, and 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.
[0030] Please see Figure 1 , Figure 2 and Figure 3 This embodiment of a booster-type induction water bucket includes a water bucket body 1 and a piston 8. A water pumping pipe 2 is fixedly connected to the bottom of the water bucket body 1. An installation pipe 3 is fixedly connected to the bottom of the water pumping pipe 2. A water outlet pipe 4 is fixedly connected to the bottom of the outer wall of the installation pipe 3. A one-way valve 5 is fixedly connected to the bottom of the water outlet pipe 4. A motor 6 is fixedly connected to one side of the installation pipe 3. An eccentric wheel 7 is fixedly connected to the output end of the motor 6 through the installation pipe 3. A rotating seat 10 is fixedly connected to the bottom of the piston 8. A connecting rod 11 is rotatably connected inside the rotating seat 10. The motor 6 serves as the power source, driving the eccentric wheel 7 to rotate. The eccentric wheel 7 is connected to the piston 8 via the connecting rod 11. When the eccentric wheel 7 rotates, the connecting rod 11 drives the piston 8 to reciprocate within the water pumping pipe 2, pumping water. A retaining ring 12 is fixedly connected to the inner wall of pipe 2. Multiple duckbill valves 13 arranged in a ring array are fixedly installed inside the water pumping pipe 2. When the piston 8 moves upward, the air pressure in the water pumping pipe 2 decreases, forming a negative pressure. At this time, the water in the water tank body 1 is sucked into the water pumping pipe 2 through the duckbill valves 13 arranged in a ring array. The duckbill valves 13 are designed to open automatically under negative pressure, allowing water to flow in. During the process of the piston 8 pressing down, the duckbill valves 13 close due to their one-way sealing, preventing the water in the water pumping pipe 2 from flowing back into the water tank. When the piston 8 moves downward, the water in the water pumping pipe 2 is compressed, and the pressure increases, pushing open the one-way valve 5. The water is discharged through the outlet pipe 4. At this time, the one-way valve 5 ensures that the water can only flow out in one direction, preventing backflow.
[0031] Please see Figure 2 and Figure 3 Two mirror-shaped sealing rings 9 are fixedly fitted on the outer wall of the piston 8. The main function of the sealing rings 9 is to enhance the sealing between the piston 8 and the wall of the water pumping pipe 2, preventing water leakage from the gap between the piston 8 and the pipe wall during the pumping process. A drain pipe 14 is fixedly connected to the bottom end of the one-way valve 5. The main function of the one-way valve 5 is to ensure that water can only flow out in one direction and prevent backflow. When the one-way valve 5 is opened, water will flow out from its interior and be guided to the desired position through the drain pipe 14 at the bottom end. The drain pipe 14 allows the user to adjust its position and length according to actual needs to adapt to different usage scenarios. To meet drainage requirements, a slide rail 15 is fixedly connected to one side of the inner wall of the water tank body 1. A movable seat 16 is slidably arranged inside the slide rail 15. An mounting seat 17 is fixedly connected to one side of the movable seat 16. A liquid level sensor 18 is fixedly connected inside the mounting seat 17. The liquid level sensor 18 is installed inside the mounting seat 17, and the mounting seat 17 slides on the slide rail 15 via the movable seat 16, allowing the liquid level sensor 18 to monitor different height positions inside the water tank body 1, thereby monitoring the liquid level in the water tank. When the water in the water tank reaches a designated position, the water level sensor 18 will activate the pumping device to extract the water.
[0032] Please see Figure 3 and Figure 4 An installation ring 19 is fixedly connected to the inner wall of the water bucket body 1. A drain net 20 is slidably installed inside the installation ring 19. A handle 21 is fixedly connected to one side of the upper end of the drain net 20. The drain net 20 is installed at the bottom of the inside of the water bucket body 1 to block impurities and residues in the water, preventing impurities in the water from entering the pumping device. The end of the connecting rod 11 away from the rotating seat 10 is rotatably sleeved on the outer wall of the eccentric shaft of the eccentric wheel 7. One end of the connecting rod 11 is fixedly connected to the rotating seat 10, while the other end is rotatably sleeved on the outer wall of the eccentric shaft of the eccentric wheel 7, so that the connecting rod 11 swings back and forth with the rotation of the eccentric wheel 7, thereby driving the piston 8 to reciprocate inside the pumping pipe 2. The piston 8 is slidably installed inside the pumping pipe 2. The piston 8 is designed to be able to The pump pipe 2 slides smoothly inside. When the piston 8 slides inside the pump pipe 2, it changes the volume inside the pump pipe 2, thereby creating negative or positive pressure to draw in or discharge water. When the piston 8 slides upward, the volume inside the pump pipe 2 increases, creating negative pressure, thereby drawing in water from the water tank body 1. When the piston 8 slides downward, the volume inside the pump pipe 2 decreases, creating positive pressure, and discharging water through the outlet pipe 4. The eccentric wheel 7 is rotatably installed inside the mounting pipe 3. The eccentric wheel 7 can rotate rapidly inside the mounting pipe 3. One end of the connecting rod 11 is connected to the eccentric part of the eccentric wheel 7, and the other end is connected to the piston 8. When the eccentric wheel 7 rotates, its eccentric part will drive the connecting rod 11 to swing back and forth, thereby driving the piston 8 to reciprocate within the pump pipe 2.
[0033] In this embodiment, the booster-type induction water bucket uses a motor 6 as a power source to drive an eccentric wheel 7 to rotate. The eccentric wheel 7 is connected to a piston 8 via a connecting rod 11. When the eccentric wheel 7 rotates, the connecting rod 11 drives the piston 8 to reciprocate within the water suction pipe 2. When the piston 8 moves upward, the air pressure within the water suction pipe 2 decreases, creating a negative pressure. At this time, water from the water bucket body 1 is drawn into the water suction pipe 2 through duckbill valves 13 arranged in a ring array. The duckbill valves 13 are designed to automatically open under negative pressure, allowing water to flow in. During the downward movement of the piston 8, the duckbill valves 13 close due to their one-way sealing property. To prevent water in the pumping pipe 2 from flowing back into the water tank, when the piston 8 moves downward, the water in the pumping pipe 2 is compressed, the pressure increases, and the one-way valve 5 is opened, allowing water to be discharged through the outlet pipe 4. At this time, the one-way valve 5 ensures that the water can only flow out in one direction to prevent backflow. The combined use of the one-way valve 5 and the duckbill valve 13 ensures the continuity and stability of the pumping. The device uses the motor 6 to drive the eccentric wheel 7 to rotate, the connecting rod 11 to drive the piston 8 to reciprocate, and the combined use of the one-way valve 5 and the duckbill valve 13 to pump wastewater and push it out quickly. This mechanical propulsion method improves drainage efficiency compared to traditional gravity drainage.
[0034] It should be noted that the duckbill valve 13 is located on the outer wall of the water pipe 2 that extends into the water bucket body 1, and is close to the bottom of the water bucket body 1. Since the bottom of the water bucket body 1 is inclined around, water can be concentrated and smoothly drawn in by the duckbill valve 13.
[0035] The working principle of the above embodiments is as follows:
[0036] The water bucket body 1 is used to hold water. When water needs to be pumped, the motor 6 starts, driving the eccentric wheel 7 to rotate inside the mounting pipe 3. The rotation of the eccentric wheel 7 drives the piston 8 to reciprocate inside the pumping pipe 2 via the connecting rod 11. When the piston 8 moves upward, the air pressure inside the pumping pipe 2 decreases, creating a negative pressure. Under the action of the negative pressure, the duckbill valve 13 automatically opens, allowing water in the water bucket body 1 to be sucked into the pumping pipe 2 through the duckbill valve 13. Because the bottom of the water bucket body 1 is inclined around the perimeter, the water can be concentrated and smoothly sucked into the pumping pipe 13. When the piston 8 slides downward, the volume inside the pumping pipe 2 decreases, creating a positive pressure. At the same time, the duckbill valve 13 closes due to its one-way sealing property, preventing the pumping pipe from being pumped out. The water in the pumping pipe 2 flows back into the water tank. As the piston 8 continues to press down, the water in the pumping pipe 2 is compressed, and the pressure increases, opening the one-way valve 5. The water is discharged to the required position through the outlet pipe 4 and the drain pipe 14. The one-way valve 5 ensures that the water can only flow out in one direction to prevent backflow. The motor 6 continues to drive the eccentric wheel 7 to rotate, and the piston 8 reciprocates in the pumping pipe 2. The above process is repeated to achieve continuous pumping. The level sensor 18 adjusts the water level by sliding the movable seat 16 on the slide rail 15. When the water in the water tank reaches the designated position, a signal is sent to start the pumping device. During the pumping process, the drain net 20 is used to block impurities and residues in the water to prevent them from entering the pumping device.
[0037] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0038] Although embodiments of this application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A booster-type induction water bucket, comprising a water bucket body (1) and a piston (8), characterized in that: The bottom of the water tank body (1) is fixedly connected to a water pumping pipe (2), the bottom of the water pumping pipe (2) is fixedly connected to an installation pipe (3), the bottom of the outer wall of the installation pipe (3) is fixedly connected to a water outlet pipe (4), the bottom of the water outlet pipe (4) is fixedly connected to a one-way valve (5), a motor (6) is fixedly connected to one side of the installation pipe (3), the output end of the motor (6) passes through the installation pipe (3) and is fixedly connected to an eccentric wheel (7), the bottom of the piston (8) is fixedly connected to a rotating seat (10), a connecting rod (11) is rotatably connected inside the rotating seat (10), a retaining ring (12) is fixedly connected to the inner wall of the water pumping pipe (2), and multiple duckbill valves (13) arranged in a ring array are fixedly installed inside the water pumping pipe (2).
2. The booster-type induction water bucket according to claim 1, characterized in that: The piston (8) has two sealing rings (9) fixedly sleeved on its outer wall in a mirror-shaped arrangement.
3. The booster-type induction water bucket according to claim 1, characterized in that: The bottom end of the one-way valve (5) is fixedly connected to a drain pipe (14).
4. A booster-type induction water bucket according to claim 1, characterized in that: A slide rail (15) is fixedly connected to one side of the inner wall of the water tank body (1). A movable seat (16) is slidably arranged inside the slide rail (15). An installation seat (17) is fixedly connected to one side of the movable seat (16). A liquid level sensor (18) is fixedly connected inside the installation seat (17).
5. A booster-type induction water bucket according to claim 1, characterized in that: An installation ring (19) is fixedly connected to the inner wall of the water bucket body (1). A drain net (20) is slidably arranged inside the installation ring (19). A handle (21) is fixedly connected to one side of the upper end of the drain net (20).
6. A booster-type induction water bucket according to claim 1, characterized in that: The end of the connecting rod (11) away from the rotating seat (10) is rotatably sleeved on the outer wall of the eccentric shaft of the eccentric wheel (7).
7. A booster-type induction water bucket according to claim 1, characterized in that: The piston (8) is slidably disposed inside the pumping pipe (2).
8. A booster-type induction water bucket according to claim 1, characterized in that: The eccentric wheel (7) is rotatably disposed inside the mounting tube (3).