An energy-saving water washing equipment

By using the partition and connection design of the dual-chamber washing equipment, and utilizing the power of water flow to drive the moving plate to achieve automatic control, the problem of high energy consumption and low efficiency of existing fabric washing equipment is solved, and the effect of efficient synchronous cleaning and energy saving is achieved.

CN117488498BActive Publication Date: 2025-12-02SHAOXING CHUANGCAI TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202311476594.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-08
Publication Date
2025-12-02
Estimated Expiration
2043-11-08

AI Technical Summary

Technical Problem

Existing fabric washing equipment consumes a lot of energy and has low washing efficiency during the washing process, especially when the fabric is transferred between two washing machines, heat loss leads to increased energy consumption during the heating process.

Method used

The washing equipment adopts a dual-chamber structure. Through the separation and connection design between the first and second chambers, the water flow power drives the moving plate to realize the automatic separation and connection of the chambers. Combined with the rotation of the stirring rod, the fabric is washed synchronously between the two chambers. The washing efficiency is improved by circulating water flow and hot steam preheating conveyor belt.

Benefits of technology

It achieves efficient and simultaneous processing of the fabric cleaning process, reduces energy consumption, improves cleaning efficiency, and enhances the cleaning effect through circulating water flow and hot steam preheating.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to an energy-saving washing device, including a washing machine. The washing machine internally comprises a first cavity and a second cavity. A first stirring rod is rotatably mounted inside the first cavity, and a second stirring rod is rotatably mounted inside the second cavity. A feed trough is located at the top of the first cavity, and a water inlet is located at the top of the second cavity. A drain outlet is located on the side of the second cavity away from the first cavity. A first blocking component and a second blocking component are provided at the connection between the first and second cavities to isolate materials. The first and second blocking components have the same structure and are arranged opposite to each other. The first blocking component includes a support plate, and a movable plate is movably mounted on the support plate. This application has the effects of increasing the washing effect, improving washing efficiency, and reducing washing energy consumption.
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Description

Technical Field

[0001] This application relates to the field of fabric washing equipment, and more particularly to an energy-saving washing equipment. Background Technology

[0002] Fabrics require multiple washes during the dyeing and printing process. Current cleaning methods utilize traditional immersion and washing in washing machines. The fabric is repeatedly immersed and moved within the machine to achieve cleaning. Washing machines are commonly used in desizing, scouring, and bleaching processes. To enhance the washing effect, at least two washing machines are typically connected via a fabric conveyor and padding machine to continuously clean the fabric. However, transferring fabric between two washing machines reduces cleaning efficiency.

[0003] Meanwhile, in the current fabric washing process, the fabric is usually initially cleaned with warm or hot water, and then some auxiliaries, such as detergent, are added to enhance the cleaning effect. However, since the current process usually requires at least two washing machines, the heat will gradually dissipate when the fabric is transported between the two washing machines, and it will be reheated after re-entering the washing machine, which leads to increased energy consumption during the heating process. Summary of the Invention

[0004] To address the issues of high energy consumption and low cleaning efficiency, this application provides an energy-saving water washing device.

[0005] The energy-saving water washing equipment provided in this application adopts the following technical solution:

[0006] An energy-saving washing device includes a washing machine. The washing machine has a first cavity and a second cavity connected internally. A first stirring rod is rotatably installed inside the first cavity, and a second stirring rod is rotatably installed inside the second cavity. A feed trough is opened at the top of the first cavity, and a water inlet is opened at the top of the second cavity. A drain outlet is also opened on the side of the second cavity away from the first cavity. A first blocking component and a second blocking component for isolating materials are provided at the connection between the first cavity and the second cavity. The first blocking component and the second blocking component have the same structure and are arranged opposite to each other. The first blocking component includes a support plate, and a movable plate is movably installed on the support plate. When the first blocking component and the second blocking component isolate the first cavity and the second cavity, the movable plate in the first blocking component and the movable plate in the second blocking component move closer to each other and close the connection between the first cavity and the second cavity.

[0007] By adopting the above technical solution, when it is necessary to clean the fabric, hot water is injected into the first and second chambers through the water inlet. After the water level in the first and second chambers reaches the cleaning condition, the moving plates in the first and second blocking components move closer to each other and separate the first and second chambers. At this time, the fabric to be cleaned is placed into the first chamber through the feeding trough, and the fabric is initially agitated and cleaned by rotating the first stirring rod. After the initial cleaning is completed, the moving plates in the first and second blocking components reset to reconnect the first and second chambers. At this time, the first stirring rod stops rotating, while the second stirring rod continues to rotate, causing the water flow in the second chamber to form a vortex and attract the fabric in the first chamber, thus allowing the fabric to enter the second chamber with the water flow. The movable plate in the second blocking component further isolates the connection point and adds detergent and other additives to the second chamber through the water inlet, allowing the second chamber to perform a secondary cleaning of the fabric, improving the cleaning effect. Simultaneously, while the fabric is being cleaned in the second chamber, the first chamber replenishes new fabric to be cleaned through the feed trough, enabling the first and second chambers to clean two batches of fabrics at the same time, increasing cleaning efficiency. After the fabric in the second chamber is cleaned, it is drained out along with the water through the drain outlet. Then, the drain outlet is closed, and hot water is replenished to the second chamber through the water inlet, allowing the fabric in the first chamber to re-enter the second chamber after cleaning, and simultaneously clean the next batch of fabrics. This ensures that the two batches of fabrics can be cleaned simultaneously, increasing cleaning efficiency.

[0008] Optionally, the movable plate in the first blocking component is rotatably provided with a first driving plate and a second driving plate on both sides, and the movable plate in the second blocking component is rotatably provided with a third driving plate and a fourth driving plate on both sides. When the first driving plate, the second driving plate, the third driving plate and the fourth driving plate are in the open state, they form a driving space with the side of the movable plate to bear the water flow pressure. When the water flow in the first cavity or the second cavity is stirred and rotated, the water flow forms pressure on the driving space, so that the water flow drives the movable plate to move relative to the support plate.

[0009] By adopting the above technical solution, when it is necessary to separate the first cavity and the second cavity, the first and third driving plates are in the open state, while the second and fourth driving plates are in the closed state. This allows the water flow in the first and second cavities to rotate as the first and second stirring rods rotate. At this time, the water flow in the first cavity rotates and pushes the driving space at the third driving plate, while the water flow in the second cavity rotates and pushes the driving space at the first driving plate. This causes the moving plates in the first and second blocking components to move closer together under the influence of the water flow, thus achieving separation through the two moving plates. When it is necessary to connect the first cavity and the second cavity, the second and fourth drive plates are in the open state, and the first and third drive plates are in the closed state. The first and second stirring rods are in a rotating state, so that the water flow in the first cavity pushes the driving space at the second drive plate, and at the same time, the water flow in the second cavity pushes the driving space at the fourth drive plate. This causes the moving plates in the first and second blocking components to move away from each other, so that the opening and closing of the first cavity and the second cavity does not require additional control electrical components, and can be synchronously driven by the stirring action built into the first and second cavities, saving energy.

[0010] Optionally, the first blocking component further includes a double-acting cylinder disposed inside the movable plate. The support plate has a sliding groove, and the double-acting cylinder can move relative to the sliding groove. The two protruding ends of the double-acting cylinder in the first blocking component are hinged to the first driving plate and the second driving plate, respectively. The two protruding ends of the double-acting cylinder in the second blocking component are hinged to the third driving plate and the fourth driving plate, respectively.

[0011] By adopting the above technical solution, when it is necessary to control the first, second, third, and fourth drive plates to be in an open or closed state, a double-acting cylinder can be used to control the first drive plate to be in an open state while the second drive plate is in a closed state, and vice versa. This allows the moving plates in the first and second blocking components to move under the propulsion of water flow, avoiding the problem of reverse thrust generated when the second or fourth drive plate closes the moving plate. Simultaneously, when the moving plate needs to be opened, the double-acting cylinder... The cylinder closes the first drive plate and opens the second drive plate, while simultaneously closing the third drive plate and opening the fourth drive plate. This causes the moving plates to move away from each other under the push of the water flow, which also avoids the first and third drive plates exerting a reverse thrust on the moving plate, increasing the stability during the switching of the moving plate's opening and closing states. At the same time, the sliding groove design ensures that when the moving plate drives the double-acting cylinder to move, there will be no interference between the double-acting cylinder and the support plate. The hinge connection between the double-acting cylinder and each drive plate ensures that each drive plate opens or closes under the push or pull of the extended end of the double-acting cylinder.

[0012] Optionally, the side of the movable plate is provided with an adsorption element. When the first blocking component and the second blocking component separate the material, the two adjacent movable plates are adsorbed and fixed by the adsorption element.

[0013] By adopting the above technical solution, when the moving plates in the first blocking component and the second blocking component approach each other to isolate the material, the two moving plates are adsorbed and fixed to each other by the adsorption component, so that when the first cavity and the second cavity are cleaning the fabric, there will be no mutual interference. This ensures that when the second cavity finishes cleaning the fabric and drains the fabric and water, the cleaning process in the first cavity will not be affected.

[0014] Optionally, the support plate has a sealing groove inside, and the movable plate has a hollow guide post. One end of the guide post is connected to one side of the adsorption element, and the other end of the guide post extends into the sealing groove. The guide post can move relative to the sealing groove.

[0015] By adopting the above technical solution, the hollow guide post can limit the wire harness connected to the adsorption component, and allow the wire harness to move with the guide post when the moving plate moves, thus avoiding the wire harness getting stuck between the moving plate and the support plate.

[0016] Optionally, a first sealing ring is provided inside the movable plate along the outer periphery of the guide post, and a second sealing ring is provided in the sealing groove along the outer periphery of the guide post.

[0017] By adopting the above technical solution, the first sealing ring and the second sealing ring cooperate to limit the outer periphery of the guide post, so that the guide post and the moving plate, and the guide post and the support plate are sealed, preventing water from directly entering the interior of the guide post and causing the wire harness to be soaked in water.

[0018] Optionally, the bottom and top of the support plate are provided with limiting members, the limiting members are located between the support plate and the movable plate, and the movable plate is provided with a limiting protrusion on the side near the support plate. When the first blocking component and the second blocking component isolate the material, the limiting member limits the limiting protrusion.

[0019] By adopting the above technical solution, when the moving plate moves relative to the support plate to separate the material, the limiting protrusion moves close to the position of the limiting member, and then the limiting member blocks the limiting protrusion, thereby limiting the movement stroke of the moving plate.

[0020] Optionally, the second cavity has a circulation inlet on the bottom side away from the first cavity, and the first cavity has a circulation outlet on the side away from the second cavity. A circulation pipe is provided between the circulation inlet and the circulation outlet, and the circulation pipe is connected to a drive component for driving the water flow.

[0021] By adopting the above technical solution, when the fabric in the first cavity is moved to the second cavity, the circulation inlet pumps water into the second cavity and the circulation outlet injects water into the first cavity, so that the water in the first cavity flows into the second cavity. Combined with the water vortex inside the second cavity, the fabric can more easily enter the second cavity from the first cavity, thereby making the fabric cleaning process more stable.

[0022] Optionally, a conveyor belt is provided on the upper part of the feeding trough, and the two ends of the conveyor belt are wound around the outer periphery of the rotating roller. The rotating roller is hollow. The washing machine is connected to the rotating roller through a support frame. The rotating roller and the support frame are rotatably engaged. An air passage is provided inside the support frame. One end of the air passage is connected to the inside of the rotating roller, and the other end of the air passage is connected to the inside of the first cavity.

[0023] By adopting the above technical solution, when the fabric is stirred and cleaned with hot water inside the first cavity, the hot steam rises and enters the center of the rotating roller along the air path, which raises the temperature of the rotating roller itself and then heats the conveyor belt. This allows the conveyor belt to preheat the fabric while transporting it, so that the fabric has a certain initial temperature before cleaning and improves the subsequent cleaning effect.

[0024] Optionally, a screen is provided at the connection between the first cavity and the second cavity, which can be raised and lowered. When the material in the first cavity moves into the second cavity, the screen descends and blocks the material from moving into the first cavity through the connection.

[0025] By adopting the above technical solution, after the fabric in the first cavity moves into the second cavity, the screen descends and blocks the fabric in the second cavity. When the first stirring rod and the second stirring rod control the water flow to rotate and drive the moving plate to close, the fabric can be prevented from flowing into the first cavity or the closing point of the moving plate, thus increasing the stability of the fabric washing process.

[0026] In summary, this application includes at least one of the following beneficial technical effects:

[0027] 1. When it is necessary to clean fabrics, the first chamber and the second chamber work together to clean two batches of fabrics simultaneously, increasing cleaning efficiency. After the fabrics in the second chamber are cleaned, the fabrics and water in the second chamber are discharged out through the drain outlet. Then, the drain outlet is closed and hot water is replenished to the second chamber through the water inlet. After the fabrics in the first chamber are cleaned, they can re-enter the second chamber and clean the next batch of fabrics simultaneously. This allows for the simultaneous cleaning of two batches of fabrics, increasing cleaning efficiency.

[0028] 2. When the first cavity and the second cavity are isolated or connected, by controlling the opening or closing state of the first drive plate, the second drive plate, the third drive plate and the second drive plate, the first stirring rod and the second stirring rod rotate and stir, and the water flow in the first cavity and the second cavity is driven to rotate. Then, the rotation of the water flow pushes the drive space, so that the moving plate in the first blocking component and the moving plate in the second blocking component move closer to each other or further away from each other. So that the opening and closing of the first cavity and the second cavity does not require additional control electrical appliances, and can be synchronously driven by the stirring action built into the first cavity and the second cavity, saving energy.

[0029] 3. When moving the fabric from the first chamber to the second chamber, the circulation inlet pumps water into the second chamber and the circulation outlet injects water into the first chamber, causing the water in the first chamber to flow into the second chamber. This, combined with the water vortex inside the second chamber, makes it easier for the fabric to enter the second chamber from the first chamber, thereby making the fabric cleaning process more stable. Attached Figure Description

[0030] Figure 1 This is a three-dimensional structural diagram of this application.

[0031] Figure 2 This is a side view of this application.

[0032] Figure 3 This application is Figure 2 Cross-sectional view along line AA.

[0033] Figure 4 This is a front view of this application.

[0034] Figure 5 This application is Figure 4 Cross-sectional view along line BB.

[0035] Figure 6 This application is Figure 5 Enlarged schematic diagram of part A in the middle.

[0036] Figure 7 This is a top view of the washing machine after the top of the machine has been removed.

[0037] Figure 8 This application is Figure 7 Enlarged schematic diagram of section B.

[0038] Reference numerals: 1. Washing machine; 11. First chamber; 111. First stirring rod; 12. Second chamber; 121. Second stirring rod; 13. Water inlet; 14. Feed trough; 15. Drain outlet; 16. Circulation inlet; 17. Circulation outlet; 18. Circulation pipeline; 19. Driving component; 2. First blocking component; 21. Support plate; 211. Slide groove; 212. Sealing groove; 213. Second sealing ring; 214. Limiting component; 22. Moving plate; 221. Double-acting cylinder; 222. Adsorption component; 223. Guide column; 224. First sealing ring; 225. Limiting protrusion; 23. First driving plate; 24. Second driving plate; 3. Second blocking component; 31. Third driving plate; 32. Fourth driving plate; 4. Conveyor belt; 41. Rotating roller; 42. Support frame; 5. Screen. Detailed Implementation

[0039] The following is in conjunction with the appendix Figure 1-8 This application will be described in further detail.

[0040] This application discloses an energy-saving water washing device, referring to... Figure 1The washing machine includes a washing machine 1 and a conveyor belt 4. The washing machine 1 has a water inlet 13 and a feeding trough 14 on its top. The water inlet 13 is connected to a water pipe for injecting hot water and a material pipe for replenishing auxiliaries. The water inlet 13 is used to inject hot water and detergents and other auxiliaries. The fabric enters the washing machine 1 from the feeding trough 14. One end of the conveyor belt 4 is located above the feeding trough 14. When the fabric is transported by the conveyor belt 4, the conveyor belt 4 transports the fabric to the feeding trough 14 and falls into the washing machine 1. The washing machine 1 also has a drain outlet 15 on one side. After the fabric in the washing machine 1 is cleaned, the fabric and water are discharged out through the drain outlet 15.

[0041] Reference Figure 2 and Figure 3 The washing machine 1 has a first cavity 11 and a second cavity 12. Both the first cavity 11 and the second cavity 12 are circular and are connected to each other. The water inlet 13 is located at the top of the second cavity 12, the feed trough 14 is located at the top of the first cavity 11, and the drain outlet 15 is located on the side of the second cavity 12 away from the first cavity 11. A baffle is movable outside the drain outlet 15. The baffle is opened or closed by electric drive or manual movement. The first stirring rod 111 is rotatably installed at the center of the first cavity 11, and the second stirring rod 121 is rotatably installed at the center of the second cavity 12.

[0042] Reference Figure 3 The second cavity 12 has a circulation inlet 16 at its bottom away from the first cavity 11, and the first cavity 11 has a circulation outlet 17 on its side away from the second cavity 12. The circulation inlet 16 and the circulation outlet 17 are connected by a circulation pipe 18. Both the circulation inlet 16 and the circulation outlet 17 are equipped with filter screens for blocking fabric. A drive unit 19 is connected inside the circulation pipe 18. The drive unit 19 pumps water from the circulation inlet 16 and injects water into the circulation outlet 17, so that the water in the first cavity 11 flows to the second cavity 12. The drive unit 19 is a water pump.

[0043] Reference Figure 3 The conveyor belt 4 is wound around the outer periphery of two hollow rotating rollers 41 at both ends. One end of the rotating roller 41 is connected to the support frame 42 by a motor. The rotating roller 41 is rotated by the motor and drives the conveyor belt 4 to rotate. The other end of the rotating roller 41 is connected to the support frame 42 by a rotating bearing. An air passage is opened inside the support frame 42. One end of the air passage is connected to the inside of the first cavity 11, and the other end of the air passage is connected to the end of the rotating roller 41 with the rotating bearing. Hot air is delivered to the inside of the rotating roller 41 through the air passage.

[0044] Reference Figure 3The washing machine 1 has a screen 5 that can be raised and lowered on top. The screen 5 is located at the connection between the first cavity 11 and the second cavity 12, on the side closer to the second cavity 12. The raising and lowering of the screen 5 is controlled by a motor and a gear rack transmission method.

[0045] Reference Figure 4 and Figure 5 The first blocking component 2 and the second blocking component 3 are located at the connection between the first cavity 11 and the second cavity 12, and the first blocking component 2 and the second blocking component 3 have the same structure and are arranged opposite to each other.

[0046] Reference Figure 5 and Figure 6 The first blocking component 2 includes a movable plate 22 and a support plate 21. The support plate 21 is connected to the washing machine 1. The movable plate 22 is movably mounted on the support plate 21. The movable plate 22 has an electromagnet-made adsorption component 222 inside. The movable plate 22 is provided with a guide post 223 for limiting the connection harness of the adsorption component 222. The guide post 223 is hollow inside. The support plate 21 is provided with a sealing groove 212. The guide post 223 is movably mounted in the sealing groove 212. The movable plate 22 is provided with a first sealing ring 224 along the outer periphery of the guide post 223. The sealing groove 212 is provided with a second sealing ring 213 along the outer periphery of the guide post 223. At the same time, the movable plate 22 is also connected to a double-acting cylinder 221. The support plate 21 has a sliding groove 211 inside. When the movable plate 22 moves along the support plate 21, the double-acting cylinder 221 moves along the sliding groove 211.

[0047] Reference Figure 5 and Figure 6 The support plate 21 is provided with limiting members 214 at the top and bottom, and the moving plate 22 is provided with limiting protrusions 225 at the top and bottom. When the first blocking member 2 and the moving plate 22 in the second blocking member 3 approach each other, the limiting member 214 limits and blocks the limiting protrusions 225.

[0048] Reference Figure 7 and Figure 8 The conveyor belt 4 and the support frame 42 are located on one side of the first cavity 11. The first blocking component 2 and the second blocking component 3 are located at the connection between the first cavity 11 and the second cavity 12. The first blocking component 2 is rotatably mounted with the first driving plate 23 and the second driving plate 24 on both sides. The second blocking component 3 is rotatably mounted with the third driving plate 31 and the fourth driving plate 32 on both sides.

[0049] Reference Figure 7 and Figure 8The first stirring rod 111 and the second stirring rod 121 both rotate counterclockwise. The direction of the opening of the driving space formed by the first driving plate 23 and the side of the moving plate 22 is opposite to the rotation direction of the water flow in the second cavity 12. The direction of the opening of the driving space formed by the third driving plate 31 and the side of the moving plate 22 is opposite to the rotation direction of the water flow in the second cavity 12. The direction of the opening of the driving space formed by the second driving plate 24 and the side of the moving plate 22 is opposite to the rotation direction of the water flow in the first cavity 11. The direction of the opening of the driving space formed by the third driving plate 31 and the side of the moving plate 22 is opposite to the rotation direction of the water flow in the first cavity 11. This allows the moving plate 22 in the first blocking component 2 to be moved and closed by the first driving plate 23 or moved and opened by the second driving plate 24. The moving plate 22 in the second blocking component 3 is moved and closed by the third driving plate 31 or moved and opened by the fourth driving plate 32.

[0050] Reference Figure 8 The two extended ends of the double-acting cylinder 221 in the first blocking component 2 are hinged to the first driving plate 23 and the second driving plate 24, respectively. The two extended ends of the double-acting cylinder 221 in the second blocking component 3 are hinged to the third driving plate 31 and the fourth driving plate 32, respectively. When the first driving plate 23 is in the open / closed state, the second driving plate 24 is in the closed / open state. When the third driving plate 31 is in the open / closed state, the fourth driving plate 32 is in the closed / open state.

[0051] The implementation principle of an energy-saving washing device according to an embodiment of this application is as follows: When washing fabrics, hot water is injected into the first cavity 11 and the second cavity 12, which are in a connected state, through the water inlet 13. After the water level in the first cavity 11 and the second cavity 12 reaches the washing condition, the double-acting cylinder 221 is activated, which in turn drives the first drive plate 23 and the third drive plate 31 to open. At this time, the first stirring rod 111 and the second stirring rod 121 rotate counterclockwise, causing the water flow to rotate, so that the water flow pushes the first drive plate 23 and the third drive plate 31, which in turn drives the moving plates 22 in the first blocking component 2 and the second blocking component 3 to move closer to each other and isolate the first cavity 11 and the second cavity 12. Subsequently, the electromagnet... The adsorption element 222 fixes the two moving plates 22 in place. The fabric to be cleaned is then placed from the feed trough 14 into the first cavity 11 via the conveyor belt 4. The fabric is then initially agitated and cleaned by the rotation of the first stirring rod 111. After the initial cleaning, the adsorption element 222, made of an electromagnet, is de-energized, and the double-acting cylinder 221 restarts, controlling the second drive plate 24 and the fourth drive plate 32 to open. With the first stirring rod 111 and the second stirring rod 121 rotating the water flow, the water flow pushes the second drive plate 24 and the fourth drive plate 32, causing the moving plates 22 in the first blocking component 2 and the second blocking component 3 to move away from each other, reconnecting the first cavity 11 and the second cavity 12. At this time, the first stirring rod 111... The stirring rod 111 stops rotating, while the second stirring rod 121 continues to rotate, causing the water flow in the second cavity 12 to form a vortex and attract the fabric in the first cavity 11. Simultaneously, the drive unit 19 activates to pump water from the circulation inlet 16 and inject water into the circulation outlet 17, causing the water inside the first cavity 11 to flow into the second cavity 12. This allows the fabric to enter the second cavity 12 with the water flow. Subsequently, the screen 5 descends to block the fabric inside the second cavity 12. Meanwhile, the first stirring rod 111 and the second stirring rod 121 continue to rotate. At this point, the moving plates 22 in the first blocking component 2 and the second blocking component 3 again isolate the connection point through the first drive plate 23 and the third drive plate 31. After the isolation is completed, the screen 5 rises synchronously and retracts, and then... Detergent and other additives are added to the second chamber 12 through the water inlet 13, allowing the second chamber 12, in conjunction with the second stirring rod 121, to perform a secondary cleaning of the fabric. Simultaneously, while the second chamber 12 is performing this secondary cleaning, the first chamber 11 receives new fabric to be cleaned through the feed trough 14. This allows the first chamber 11 and the second chamber 12 to clean two batches of fabric simultaneously. After the fabric in the second chamber 12 is cleaned, it is drained along with water through the drain outlet 15. The drain outlet 15 is then closed, and hot water is replenished to the second chamber 12 again through the water inlet 13. After the initial cleaning in the first chamber 11 is completed, the moving plate 22 is opened via the second drive plate 24 and the fourth drive plate 32.This allows the fabrics in the first chamber 11 to be cleaned and then re-enter the second chamber 12 for simultaneous cleaning of the next batch of fabrics, thus enabling the simultaneous cleaning of two batches of fabrics in subsequent processes.

[0052] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. An energy-saving water washing device, characterized in that: The washing machine (1) includes a first cavity (11) and a second cavity (12) connected inside the washing machine (1). The first cavity (11) is rotatably equipped with a first stirring rod (111), and the second cavity (12) is rotatably equipped with a second stirring rod (121). The top of the first cavity (11) is provided with a feed trough (14), and the top of the second cavity (12) is provided with a water inlet (13). The side of the second cavity (12) away from the first cavity (11) is also provided with a drain outlet (15). A first blocking component for isolating materials is provided at the connection between the first cavity (11) and the second cavity (12). (2) and the second blocking component (3), the first blocking component (2) and the second blocking component (3) have the same structure and are arranged opposite to each other. The first blocking component (2) includes a support plate (21), and a movable plate (22) is movably provided on the support plate (21). When the first blocking component (2) and the second blocking component (3) isolate the first cavity (11) and the second cavity (12), the movable plate (22) in the first blocking component (2) and the movable plate (22) in the second blocking component (3) move closer to each other and close the connection between the first cavity (11) and the second cavity (12). The first blocking component (2) has a first driving plate (23) and a second driving plate (24) rotatably mounted on both sides of the movable plate (22). The second blocking component (3) has a third driving plate (31) and a fourth driving plate (32) rotatably mounted on both sides of the movable plate (22). When the first driving plate (23), the second driving plate (24), the third driving plate (31) and the fourth driving plate (32) are in the open state, they form a driving space with the side of the movable plate (22) to bear the water flow pressure. When the water flow in the first cavity (11) or the second cavity (12) is stirred and rotated, the water flow forms pressure on the driving space, so that the water flow drives the movable plate (22) to move relative to the support plate (21).

2. The energy-saving water washing equipment according to claim 1, characterized in that: The first blocking component (2) further includes a double-acting cylinder (221) disposed inside the moving plate (22). The support plate (21) has a sliding groove (211). The double-acting cylinder (221) can move relative to the sliding groove (211). The two protruding ends of the double-acting cylinder (221) in the first blocking component (2) are hinged to the first driving plate (23) and the second driving plate (24), respectively. The two protruding ends of the double-acting cylinder (221) in the second blocking component (3) are hinged to the third driving plate (31) and the fourth driving plate (32), respectively.

3. The energy-saving water washing equipment according to claim 1, characterized in that: The movable plate (22) is provided with an adsorption element (222) on its side. When the first blocking component (2) and the second blocking component (3) separate the material, the two adjacent movable plates (22) are adsorbed and fixed by the adsorption element (222).

4. The energy-saving water washing equipment according to claim 3, characterized in that: The support plate (21) has a sealing groove (212) inside, and the movable plate (22) has a hollow guide post (223). One end of the guide post (223) is connected to one side of the adsorption member (222), and the other end of the guide post (223) extends into the sealing groove (212). The guide post (223) can move relative to the sealing groove (212).

5. The energy-saving water washing equipment according to claim 4, characterized in that: The movable plate (22) is provided with a first sealing ring (224) along the outer periphery of the guide post (223), and the sealing groove (212) is provided with a second sealing ring (213) along the outer periphery of the guide post (223).

6. The energy-saving water washing equipment according to claim 1, characterized in that: The support plate (21) is provided with limiting members (214) at the bottom and top. The limiting members (214) are located between the support plate (21) and the moving plate (22). The moving plate (22) is provided with a limiting protrusion (225) on the side close to the support plate (21). When the first blocking component (2) and the second blocking component (3) isolate the material, the limiting member (214) limits the limiting protrusion (225).

7. The energy-saving water washing equipment according to claim 1, characterized in that: The second cavity (12) has a circulation inlet (16) at the bottom of the side away from the first cavity (11), and the first cavity (11) has a circulation outlet (17) on the side away from the second cavity (12). A circulation pipe (18) is provided between the circulation inlet (16) and the circulation outlet (17), and the circulation pipe (18) is connected to a driving component (19) for driving the water flow.

8. The energy-saving water washing equipment according to claim 1, characterized in that: A conveyor belt (4) is provided on the upper part of the feed trough (14). The two ends of the conveyor belt (4) are wound around the outer periphery of the rotating roller (41). The rotating roller (41) is hollow. The washing machine (1) is connected to the rotating roller (41) through a support frame (42). The rotating roller (41) and the support frame (42) are rotatably engaged. An air passage is provided inside the support frame (42). One end of the air passage is connected to the inside of the rotating roller (41), and the other end of the air passage is connected to the inside of the first cavity (11).

9. The energy-saving water washing equipment according to claim 1, characterized in that: A screen (5) is provided at the connection between the first cavity (11) and the second cavity (12) in a height-adjustable manner. When the material in the first cavity (11) moves into the second cavity (12), the screen (5) descends and blocks the material from moving into the first cavity (11) through the connection.

Citation Information

Patent Citations

  • Water washing device and production process for TR elastic cloth

    CN111235791A

  • Efficient washing machine

    CN205741298U

  • Cloth washing machine

    CN211947557U