Window scraping machine with efficient atomization function

By using a single water inlet and a water-tight structure to divide the water tank into two water storage cavities in the window scraper, and connecting them through a sealing structure, the problems of cumbersome water filling operation and inconsistent atomization efficiency are solved, achieving convenient water filling and improved atomization efficiency.

CN223473661UActive Publication Date: 2025-10-28SHENZHEN YIJIE INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202422678468.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-04
Publication Date
2025-10-28
Estimated Expiration
2034-11-04

AI Technical Summary

Technical Problem

Existing window scraping robots are cumbersome to operate when adding water, with multiple water inlets causing inconvenience and inconsistent atomization efficiency.

Method used

Design a high-efficiency atomizing window scraper. It uses a single water inlet and a water-blocking structure to divide the water in the water tank into two water storage cavities, and connects the two cavities through a sealing structure to ensure convenient water addition and consistent atomization efficiency.

Benefits of technology

This technology simplifies the water filling process for window scrapers and improves atomization efficiency, ensuring consistent water volume within the storage cavity and guaranteeing the stability and safety of the atomization effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

A window scraping machine with an efficient atomization function comprises a water tank used for storing water, the water tank is provided with a first atomization structure and a second atomization structure which are used for atomizing the water in the water tank, and the first atomization structure and the second atomization structure are communicated with a first water storage cavity and a second water storage cavity in the water tank respectively. A water inlet structure communicated with the first water storage cavity and the second water storage cavity is arranged on the water tank and comprises a sealing structure used for sealing a communication channel of the first water storage cavity and the second water storage cavity. The single water inlet hole and the water separation structure are arranged to carry out water adding and flow dividing on the first water storage cavity and the second water storage cavity in the water tank, a user can conveniently carry out water adding operation on the two water storage cavities, and the two water storage cavities communicate with the two atomization pieces, so that the atomization efficiency is remarkably improved when the window scraping machine is used for cleaning.
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Description

[Technical Field]

[0002] This utility model relates to the field of window scraper technology, and in particular to a high-efficiency atomizing window scraper. [Background Technology]

[0004] In modern home cleaning, window cleaning robots are gradually becoming an essential assistant for many families. Whether it is a high-rise apartment or a villa, cleaning windows is often a headache. A high-performance window cleaning robot can not only complete this task quickly, but also make our lives more convenient and comfortable. Window cleaning robots work vertically on the glass. Most window cleaning robots on the market use a single water chamber with a single atomizing plate for spraying. Adding an atomizing plate requires adding another water chamber and a water inlet. Setting multiple water inlets makes the operation of adding water to the window cleaning robot more cumbersome. [Utility Model Content]

[0006] To overcome the cumbersome operation of adding water to a window scraper with multiple water inlets, this invention aims to provide a high-efficiency atomizing window scraper. This invention is achieved through the following technical solution:

[0007] A high-efficiency atomizing window scraper includes a water tank for storing water. The water tank is provided with a first atomizing structure and a second atomizing structure for atomizing the water in the water tank. The first atomizing structure and the second atomizing structure are respectively connected to a first water storage cavity and a second water storage cavity in the water tank. The water tank is provided with a water inlet structure communicating with the first water storage cavity and the second water storage cavity. The water inlet structure includes a sealing structure for sealing the communication channel between the first water storage cavity and the second water storage cavity.

[0008] As described above, in a high-efficiency atomizing window scraper, the water inlet structure includes a water inlet provided on a water tank, and the water inlet is connected to a water-proof structure that separates the cavity inside the water tank into a first water storage cavity and a second water storage cavity.

[0009] As described above, in a high-efficiency atomizing window scraper, the sealing structure includes a sealing groove for engaging a water-proof structure, and a sealing plug capable of sealing the water inlet is provided on one side of the sealing groove.

[0010] As described above, in a high-efficiency atomizing window scraper, the water tank includes a tank body for storing water and a tank cover connected to the tank body, with the water inlet distributed on the tank cover.

[0011] As described above, the high-efficiency atomizing window scraper includes a first water-blocking structure disposed on the cover near the water inlet and a second water-blocking structure disposed on the body away from the water inlet. The first water-blocking structure and the second water-blocking structure can be matched and connected to achieve simultaneous water addition from both sides.

[0012] As described above, a high-efficiency atomizing window scraper includes a first water-proof structure comprising a first hollow ring extending axially toward a second water-proof structure. The first hollow ring is provided with a guide protrusion that serves as a guide and a first stop that cooperates with and connects to the second water-proof structure. A first water-proof notch is provided on one side of the guide protrusion to allow water from the inlet to flow into the first water storage cavity and the second water storage cavity.

[0013] As described above, in a high-efficiency atomizing window scraper, the second water-proof structure includes a second hollow ring body that can be matched and connected to the first hollow ring body. The second hollow ring body is provided with a second stop that is connected to the first stop. The second hollow ring body is provided with a guide partition protrusion that abuts against the guide protrusion. On one side of the guide partition protrusion, there is a second water-proof notch that allows water from the inlet to flow into the first water storage cavity and the second water storage cavity. The second hollow ring body is connected to a water tank separator that separates the water tank.

[0014] As described above, a high-efficiency atomizing window scraper has a first groove on the cover, a sealing structure connected with a sealing cap for matching and connecting with the first groove, a connecting hole on one side of the water inlet, and a connecting adhesive on the sealing cap for connecting with the connecting hole so that the sealing cap is fixed on the connecting hole.

[0015] As described above, a high-efficiency atomizing window scraper includes a first atomizing structure comprising a first atomizing hole disposed on a housing and a first atomizing plate mounted on the first atomizing hole, and a second atomizing structure comprising a second atomizing hole disposed on a housing and a second atomizing plate mounted on the second atomizing hole.

[0016] As described above, in a high-efficiency atomizing window scraper, the sealing plug is provided with a snap-fit ​​protrusion that can snap into the first waterproof notch, and the sealing plug is provided with an elastic hole to enhance the elasticity of the sealing plug.

[0017] Compared with the prior art, the present invention has the following advantages:

[0018] 1. By setting a single water inlet and a water-blocking structure, the first and second water storage cavities in the water tank are filled and diverted, making it convenient for users to add water. The two water storage cavities are connected to two atomizing plates, which significantly improves the atomization efficiency of the window scraper during cleaning.

[0019] 2. The first and second water storage cavities are sealed by a single sealing structure, making it easier for the operator to seal them after adding water.

[0020] 3. After the water entering the water tank is diverted by the water-blocking structure, the water volume in the first water storage cavity and the second water storage cavity remains basically the same, ensuring consistent atomization efficiency when the machine is working.

Brief Description of the Drawings

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments.

[0023] Figure 1 This is a schematic diagram of a high-efficiency atomizing window scraper with a housing according to the present invention;

[0024] Figure 2 This is a structural schematic diagram of a high-efficiency atomizing window scraper according to the present invention;

[0025] Figure 3 This is an exploded structural diagram of a high-efficiency atomizing window scraper according to the present invention;

[0026] Figure 4 This is a front view schematic diagram of the structure of a high-efficiency atomizing window scraper according to the present invention;

[0027] Figure 5 This is a cross-sectional view of the structure of a high-efficiency atomizing window scraper according to the present invention;

[0028] Figure 6 This is a schematic diagram of a high-efficiency atomizing window scraper sealing structure according to the present invention;

[0029] Figure 7 This is a schematic diagram of a high-efficiency atomizing window scraper cover according to the present invention;

[0030] Figure 8 This is a schematic diagram of a high-efficiency atomizing window scraper cover according to the present invention;

[0031] Figure 9 This is a schematic diagram of a high-efficiency atomizing window scraper housing according to the present invention;

[0032] Figure 10 This is a schematic diagram of a sealed water-filling structure box according to the present invention. [Specific implementation method]

[0034] To make the technical problems solved by this application, the technical solutions, and the beneficial effects clearer, this application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application.

[0035] Please see Figures 1 to 10A high-efficiency atomizing window scraper includes a water tank 2 for storing water. The water tank 2 is equipped with a first atomizing structure 601 and a second atomizing structure 602 for atomizing the water in the water tank 2. The first atomizing structure 601 and the second atomizing structure 602 are respectively connected to a first water storage cavity 201 and a second water storage cavity 202 in the water tank 2. The water tank 2 is equipped with a water inlet structure 10 that communicates with the first water storage cavity 201 and the second water storage cavity 202. The water inlet structure 10 includes a sealing structure for sealing the communication channel between the first water storage cavity 201 and the second water storage cavity 202. 8. Water is added to the window scraper through the water inlet structure 10. The first and second water storage cavities have the same volume, ensuring the same atomization time when the first and second atomization structures are working. This avoids water remaining in other water storage cavities after one atomization is completed. Water is added to the first and second water storage cavities through a single channel, which facilitates water addition to the window scraper and ensures that the water volume in the first and second water storage cavities is basically the same when water is added, reducing the water addition time when the window scraper is used. By optimizing the water tank structure, the convenience and efficiency of water addition to the window scraper are achieved, and the atomization efficiency is improved.

[0036] Furthermore, as a preferred embodiment of this solution and not a limitation, the water inlet structure 10 includes a water inlet 1 disposed on the water tank 2. The water inlet 1 is connected to a water-proof structure 5 that separates the cavity inside the water tank 2 into a first water storage cavity 201 and a second water storage cavity 202. The water tank 2 includes a tank body 21 for storing water and a tank cover 22 connected to the tank body 21. The water inlets 1 are distributed on the tank cover 22. The water-proof structure 5 includes a first water-proof structure 51 disposed on the tank cover 22 near the water inlet 1 and a second water-proof structure 52 disposed on the tank body 21 away from the water inlet 1. The first water-proof structure 51 and the second water-proof structure 52 can be matched and connected to realize simultaneous water addition on both sides, and are also used to control the water diversion. The tank body 21 and the tank cover 22 are connected by ultrasonic welding, so that the water tank can form a relatively sealed container. Water is added through the water inlet 1. When the water is added to the top, the two water storage cavities are interconnected and the water level is the same. Thus, the water storage capacity of the two water storage cavities is the same. The first water-proof structure and the second water-proof structure can guide the water flow and ensure that the water flow can enter the first water storage cavity and the second water storage cavity according to the predetermined path. The second water-proof structure can further control and adjust the direction.

[0037] Furthermore, as a preferred embodiment of this solution and not a limitation thereof, the first water-proof structure 51 includes a first hollow annular body 511 extending axially toward the second water-proof structure 52. The first hollow annular body 511 is provided with a guide protrusion 512 that serves as a guide and a first stop 5111 that cooperates with and connects to the second water-proof structure 52. On one side of the guide protrusion 512, there is a first water-proof notch 513 that allows water from the inlet 1 to flow into the first water storage cavity 201 and the second water storage cavity 202. The guide protrusions 512 are symmetrically distributed, and the first water-proof notch 513 is mirrored on both sides of the central plane of the guide protrusions 512. The symmetrical distribution of the guide protrusions 512 and the design of the first stop 5111 ensure the precise alignment of the first water-proof structure 51 and the second water-proof structure 52 during connection, reducing installation errors. The cooperative connection design of the first stop 5111 and the second water-proof structure 52 ensures the sealing of the connection and prevents water leakage.

[0038] Furthermore, as a preferred embodiment of this solution and not a limitation, the second water-proof structure 52 includes a second hollow ring 521 that can be matched and connected to the first hollow ring 511. The second hollow ring 521 has a second stop 5211 that mates with the first stop 5111. The second hollow ring 521 has a guide separating protrusion 522 that abuts against the guide protrusion 512. On one side of the guide separating protrusion 522, there is a second water-proof notch 523 that allows water from the inlet 1 to flow into the first water storage cavity and the second water storage cavity. The guide separating protrusion 522 and the guide protrusion 512 are disposed on the same plane. The second water-proof notch 523 and the first water-proof notch 513 are mirror-distributed on both sides of the central plane of the guide protrusion 512, so that water from the inlet 1 enters the separated water tank through the second water-proof notch 523 and the first water-proof notch 513. The second hollow ring 521 is connected to a water tank separator 525 that separates the water tank. The concentric ring 521 can be matched and connected with the first hollow ring 511 in the first water-proof structure 51 to form a tight whole. The second stop 5211 is matched and connected with the first stop 5111 to ensure the sealing and stability of the connection and to provide positioning. The guide partition protrusion 522 abuts against the guide protrusion 512 in the first water-proof structure 51 to separate the two water tanks. The second water-proof notch 523 is set on one side of the guide partition protrusion 522 and works together with the first water-proof notch 513 to guide the water flow from the inlet 1 to the separated first water storage cavity and second water storage cavity. The second water-proof notch 523 and the first water-proof notch 513 are mirrored on both sides with the center plane of the guide protrusion 512 as the reference to ensure the uniform distribution of water flow. The first stop 5111 is a convex stop for ultrasonic welding, and the second stop 5211 is a concave stop. Under the action of the ultrasonic machine, the convex stop and the concave stop melt, realizing the connection between the box body and the box cover and ensuring the sealing of the connection.

[0039] Furthermore, as a preferred embodiment of this solution and not a limitation, the water inlet 1 is distributed on the cover 22, and a connection hole 221 is connected to one side of the water inlet 1. The water inlet 1 and the connection hole 221 are disposed on the first groove 231 of the cover 22. The first atomizing structure 601 and the second atomizing structure 602 are provided with wire-clamping plugs 7 for shielding the wires. The wire-clamping plugs 7 are used to shield and fix the wires, prevent the wires from being exposed, and improve safety.

[0040] Furthermore, as a preferred embodiment of this solution and not a limitation, the water tank 2 can be installed on the outer casing 101 of the window scraper. The side of the water tank 2 closest to the inside of the casing is an arc-shaped plane, and the side away from the inside of the casing is a straight outer surface. When there is water in the water tank 2, the atomizing plate 6 works to atomize the water in the water tank 2. When the atomizing plate 6 is working, the water tank 2 is in an upright state.

[0041] Furthermore, as a preferred embodiment of this solution and not a limitation thereof, the first atomizing structure 601 includes a first atomizing hole 6011 disposed on the housing 21 and a first atomizing plate 6012 mounted on the first atomizing hole 6011, and the second atomizing structure 602 includes a second atomizing hole 6021 disposed on the housing 21 and a second atomizing plate 6022 mounted on the second atomizing hole 6021. The first atomizing plate 6012 and the second atomizing plate 6022 are used to atomize the water flow, and are usually made of ceramic or metal sheets that vibrate at high frequency, which can produce fine water droplets to form a mist.

[0042] Furthermore, as a preferred embodiment of this solution and not a limitation, the sealing structure 8 includes a sealing groove 81 for engaging the water-proof structure 5. A sealing plug 83 is provided on one side of the sealing groove 81 to seal the water inlet 1. The sealing structure 8 provides a sealed connection to the water inlet, ensuring the seal between the water inlet and the water tank and preventing leakage. The sealing groove 81 is located on the sealing structure 8 and can cooperate with the guide protrusion 512 in the first water-proof structure 51 and the guide separating protrusion 522 in the second water-proof structure 52, ensuring accurate positioning and stability of the sealing structure 8. The sealing plug 83 is located on one side of the sealing groove 81 and can seal the first water-proof gap 513 and the second water-proof gap 523, ensuring that these gaps are tightly closed when water flow is not required, preventing water leakage. The cooperative connection design of the sealing groove 81 with the guide protrusion 512 and the guide separating protrusion 522 ensures precise alignment of the sealing structure 8 during installation.

[0043] Furthermore, as a preferred embodiment of this solution and not a limitation thereof, the sealing plug 83 is provided with a snap-fit ​​protrusion 831 capable of snapping into the first water-proof notch 513, and the sealing plug 83 is provided with an elastic hole 832 for enhancing the elasticity of the sealing plug 83. The design of the snap-fit ​​protrusion 831 ensures that the sealing plug 83 can be firmly snapped into the first water-proof notch 513, preventing loosening and leakage caused by vibration or pressure changes. The design of the elastic hole 832 increases the elasticity of the sealing plug 83, allowing it to better fit the notch when under pressure, further improving the sealing performance. The dual design of the snap-fit ​​protrusion 831 and the elastic hole 832 ensures the stability and reliability of the sealing plug 83 under various conditions, reducing problems caused by poor sealing.

[0044] Furthermore, as a preferred embodiment of this solution and not a limitation, the cover 22 is provided with a first groove 231, the sealing structure 8 is connected with a sealing cap 9 for matching and connecting with the first groove 231, one side of the water inlet 1 is provided with a connecting hole 221, the sealing cap 9 is provided with a connecting adhesive 91 for connecting with the connecting hole 221 so that the sealing cap 9 is fixed on the connecting hole 221 and connected to the sealing structure 8 for cooperating and connecting with the first groove 231 of the cover 22, and is provided on the sealing cap 9 for connecting with the connecting hole 221, ensuring that the connection between the sealing cap 9 and the cover 22 is tight and sealed, and the design of the connecting adhesive 91 enables the sealing cap 9 to be firmly fixed on the cover 22.

[0045] The working principle of this embodiment is as follows:

[0046] A high-efficiency atomizing window scraper allows water to enter through an inlet. A guide partition protrusion separates the water, allowing it to flow into a first and second water storage cavity. The water in both cavities is atomized into water vapor by an atomizing plate, facilitating cleaning. The elasticity of the sealing plug material and its structural design ensure that the plug, when connected to a water-blocking structure, keeps the water on both sides separate. The first and second water-blocking gaps in the water-blocking structure are sealed by the plug. The guide partition protrusion, in conjunction with the sealing groove, withstands water pressure when the water tank is placed vertically. Water is added to both the first and second water storage cavities through a single inlet, facilitating water filling while ensuring that the water volume in both cavities is approximately the same. The connection between the sealing and water-blocking structures ensures that the window scraper can withstand water pressure at the inlet during use, guaranteeing its normal operation.

[0047] The above are implementation methods provided in conjunction with specific content, and it is not intended that the specific implementation of this application is limited to these descriptions. Any methods or structures that are similar to those of this application, or any technical deductions or substitutions made based on the concept of this application, should be considered within the scope of protection of this application.

Claims

1. A high-efficiency atomizing window scraper, characterized in that, The system includes a water tank (2) for storing water. The water tank (2) is provided with a first atomizing structure (601) and a second atomizing structure (602) for atomizing the water in the water tank (2). The first atomizing structure (601) and the second atomizing structure (602) are respectively connected to a first water storage cavity (201) and a second water storage cavity (202) in the water tank (2). The water tank (2) is provided with a water inlet structure (10) that communicates with the first water storage cavity (201) and the second water storage cavity (202). The water inlet structure (10) includes a sealing structure (8) for sealing the communication channel between the first water storage cavity (201) and the second water storage cavity (202).

2. A high-efficiency atomizing window scraper according to claim 1, characterized in that... The water inlet structure (10) includes a water inlet (1) provided on the water tank (2), and the water inlet (1) is connected to a water-proof structure (5) that separates the cavity in the water tank (2) into a first water storage cavity (201) and a second water storage cavity (202).

3. A high-efficiency atomizing window scraper according to claim 2, characterized in that... The sealing structure (8) includes a sealing groove (81) for engaging the water-proof structure (5), and a sealing plug (83) is provided on one side of the sealing groove (81) to block the water inlet (1).

4. A high-efficiency atomizing window scraper according to claim 3, characterized in that... The water tank (2) includes a tank body (21) for storing water and a tank cover (22) connected to the tank body (21), and the water inlet (1) is distributed on the tank cover (22).

5. A high-efficiency atomizing window scraper according to claim 4, characterized in that... The water-proof structure (5) includes a first water-proof structure (51) set on the cover (22) near the water inlet (1) and a second water-proof structure (52) set on the body (21) away from the water inlet (1). The first water-proof structure (51) and the second water-proof structure (52) can be matched and connected to realize water addition on both sides at the same time.

6. A high-efficiency atomizing window scraper according to claim 5, characterized in that... The first water-proof structure (51) includes a first hollow ring (511) extending axially toward the second water-proof structure (52). The first hollow ring (511) is provided with a guide protrusion (512) that plays a guiding role and a first stop (5111) that cooperates with and connects to the second water-proof structure (52). On one side of the guide protrusion (512), there is a first water-proof notch (513) that allows water from the inlet (1) to flow to the first water storage cavity (201) and the second water storage cavity (202).

7. A high-efficiency atomizing window scraper according to claim 6, characterized in that... The second water-proof structure (52) includes a second hollow ring (521) that can be matched and connected with the first hollow ring (511). The second hollow ring (521) is provided with a second stop (5211) that is connected to the first stop (5111). The second hollow ring (521) is provided with a guide partition protrusion (522) that abuts against the guide protrusion (512). On one side of the guide partition protrusion (522), there is a second water-proof notch (523) that allows water from the inlet (1) to flow to the first water storage cavity (201) and the second water storage cavity (202). The second hollow ring (521) is connected to a water tank divider (525) that divides the water tank.

8. A high-efficiency atomizing window scraper according to claim 4, characterized in that... The box cover (22) is provided with a first groove (231), the sealing structure (8) is connected with a sealing cover (9) for matching and connecting with the first groove (231), the water inlet (1) is provided with a connecting hole (221) on one side, and the sealing cover (9) is provided with a connecting adhesive (91) for connecting with the connecting hole (221) so that the sealing cover (9) is fixed on the connecting hole (221).

9. A high-efficiency atomizing window scraper according to claim 4, characterized in that... The first atomizing structure (601) includes a first atomizing hole (6011) disposed on the housing (21) and a first atomizing plate (6012) mounted on the first atomizing hole (6011). The second atomizing structure (602) includes a second atomizing hole (6021) disposed on the housing (21) and a second atomizing plate (6022) mounted on the second atomizing hole (6021).

10. A high-efficiency atomizing window scraper according to claim 6, characterized in that, The sealing plug (83) is provided with a snap-fit ​​protrusion (831) that can snap into the first water-proof notch (513), and the sealing plug (83) is provided with an elastic hole (832) to enhance the elasticity of the sealing plug (83).