Ultrasonic cleaning cup
By using a transparent outer shell and glass water tank in the ultrasonic cleaning cup, combined with a buffer gap and hanging bracket design, the problem of users being unable to observe the cleaning effect is solved, enabling real-time monitoring and improving the stability and safety of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN GEZHE TECH CO LTD
- Filing Date
- 2025-05-12
- Publication Date
- 2026-07-07
AI Technical Summary
The existing ultrasonic cleaning cups use a metal tank structure, which prevents users from visually seeing the cleaning effect on their glasses during the cleaning process, thus affecting the user experience.
The washing cup shell is made of transparent material and the water tank is made of glass. Combined with the design of buffer gaps, soft rubber holes and hanging racks, it ensures that users can observe the washing progress in real time and improves stability and safety.
Users can monitor the cleaning progress in real time, improving ease of use and intuitiveness, while also enhancing cleaning effectiveness, safety, and equipment durability.
Smart Images

Figure CN224471919U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ultrasonic cleaning, specifically an ultrasonic cleaning cup. Background Technology
[0002] As people's living standards improve, the frequency of eyeglasses use, whether for vision correction or fashion accessories, is increasing, making the maintenance of cleanliness particularly important. Traditional eyeglass cleaning methods, such as wiping with a lens cloth, not only fail to thoroughly remove stubborn stains but may also scratch the lens surface, affecting its optical performance and lifespan. Ultrasonic cleaning technology, as a highly efficient, convenient, and non-destructive cleaning method, is increasingly being applied to the field of eyeglass cleaning. Ultrasonic cleaning cups utilize the cavitation effect generated by ultrasound in liquids, forming microbubbles that rapidly burst, producing a powerful impact that can penetrate deep into crevices and tiny pores, effectively removing dust, grease, fingerprints, and other stains from the surface of eyeglasses and the crevices of the frames.
[0003] Existing ultrasonic cleaning cups typically have a water tank structure for placing eyeglasses, designed to provide a stable and suitable cleaning space for the glasses. However, since the water tank structure is often made of metal, the opaque nature of metal makes it impossible for users to see the cleaning effect of the glasses directly during the cleaning process. They can only judge by estimating the time or taking out the glasses after stopping the cleaning to check, which seriously affects the user experience.
[0004] This utility model was proposed in response to the shortcomings of the existing technology. Utility Model Content
[0005] The aforementioned problem arises because the water tank structure of existing ultrasonic cleaning cups is often made of metal, which prevents users from visually observing the cleaning effect during the eyeglass cleaning process, thus affecting the user experience. The technical solution adopted by this invention to solve this problem is as follows:
[0006] An ultrasonic cleaning cup includes a cleaning cup shell, a water tank located inside the cleaning cup shell, an ultrasonic transducer connected to the water tank, and a control board electrically connected to the ultrasonic transducer. The cleaning cup shell is made of a transparent material, and the water tank is made of glass.
[0007] Furthermore, the water tank is a cylindrical water tank that restricts the vertical placement of the glasses, the water tank has a depth of 100-250mm, and the water tank opening width is 45-100mm.
[0008] Furthermore, a buffer gap is provided between the outer shell of the cleaning cup and the water tank.
[0009] Furthermore, the top of the outer shell of the cleaning cup is provided with a cleaning cup top cover, and the cleaning cup top cover is provided with a soft rubber hole that communicates with the water tank and can undergo elastic deformation.
[0010] Furthermore, the top cover of the cleaning cup is provided with a vertically positioned bracket for placing eyeglasses on the side near the water tank.
[0011] Furthermore, the top cover of the cleaning cup includes a mounting bracket, which has a through hole corresponding to the soft rubber hole, a first mounting part for mounting the hanger, and a second mounting part. The top cover of the cleaning cup is detachably connected to the water tank through the second mounting part.
[0012] Furthermore, the first mounting part is a frame hook, which is located between the center and the edge of the mounting bracket, and the frame hook is provided with mounting holes for the bracket to extend into.
[0013] Furthermore, the second mounting part consists of several elastic limiting pieces, which extend obliquely in the vertical direction. The elastic limiting pieces extend into the water tank and abut against the inner wall of the water tank, so that the water tank restricts the installation position of the cleaning cup top cover.
[0014] Furthermore, the frame hook is integrally formed on the side of the mounting bracket near the water tank.
[0015] Furthermore, the outer shell of the cleaning cup is provided with a receiving cavity for installing the control board, the receiving cavity is located below the water tank, and the ultrasonic transducer is located on the bottom surface of the water tank.
[0016] The beneficial effects of this utility model are as follows:
[0017] This invention features a cleaning cup shell and a water tank, with the water tank located inside the shell. The cleaning cup shell is made of transparent material, and the water tank is made of glass, ensuring good transparency for both. This allows users to visually observe the cleaning process of the glasses inside the water tank without opening the ultrasonic cleaning cup, enabling them to monitor the cleaning progress and results in real time. This significantly improves the convenience and intuitiveness of using the ultrasonic cleaning cup. It effectively solves the problem that existing ultrasonic cleaning cups often use metal water tanks, which prevent users from visually observing the cleaning effect and negatively impact the user experience.
[0018] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0019] Figure 1This is one of the structural schematic diagrams of the ultrasonic cleaning cup of this utility model;
[0020] Figure 2 This is the second structural schematic diagram of the ultrasonic cleaning cup of this utility model;
[0021] Figure 3 for Figure 2 Cross-sectional view along line AA;
[0022] Figure 4 for Figure 3 An enlarged view of section B marked on the map;
[0023] Figure 5 This is an exploded view of the ultrasonic cleaning cup of this utility model;
[0024] Figure 6 This is an exploded view of the connection between the mounting bracket and the hanging bracket of this utility model. Detailed Implementation
[0025] The embodiments of this utility model will now be described in detail with reference to the accompanying drawings.
[0026] like Figures 1 to 6 An ultrasonic cleaning cup is shown, comprising a cleaning cup shell 1, a water tank 2 located inside the cleaning cup shell 1, an ultrasonic transducer 3 connected to the water tank 2, and a control board 4 electrically connected to the ultrasonic transducer 3. The cleaning cup shell 1 is made of transparent material, and the water tank 2 is made of glass material.
[0027] This invention features a cleaning cup shell and a water tank, with the water tank located inside the shell. The cleaning cup shell is made of transparent material, and the water tank is made of glass, ensuring good transparency for both. This allows users to visually observe the cleaning process of the glasses inside the water tank without opening the ultrasonic cleaning cup, enabling them to monitor the cleaning progress and results in real time. This significantly improves the convenience and intuitiveness of using the ultrasonic cleaning cup. It effectively solves the problem that existing ultrasonic cleaning cups often use metal water tanks, which prevent users from visually observing the cleaning effect and negatively impact the user experience.
[0028] Furthermore, the combination of the transparent cleaning cup shell 1 and the glass water tank 2 not only has practical functions, but also enhances the overall aesthetics of the ultrasonic cleaning cup, meeting the aesthetic needs of modern consumers.
[0029] Furthermore, the water tank 2 is made of glass, which has high hardness and good acoustic properties. Compared with water tank structures made of metal, especially softer metal, glass exhibits significant advantages in transmitting ultrasonic vibrations. Secondly, the glass water tank 2 has high hardness, which can better withstand the high-frequency vibrations generated by the ultrasonic transducer 3. At the same time, its uniform structure and low acoustic impedance characteristics allow ultrasonic waves to propagate efficiently within the water tank 2, thereby achieving a more uniform and thorough cleaning effect. Finally, the glass water tank 2 is not easily deformed or damaged during use, further improving the durability and reliability of the ultrasonic cleaning cup.
[0030] Furthermore, the sink 2 is made of glass, which has a certain degree of insulation. Compared with the traditional sink structure that often uses metal, the glass sink 2, with its insulation properties, can effectively block current conduction and prevent the risk of leakage, greatly improving the safety of the ultrasonic cleaning cup during use.
[0031] Furthermore, the ultrasonic transducer 3 is responsible for generating ultrasonic vibrations. It is connected to the water tank 2 and can transmit the ultrasonic vibrations to the cleaning fluid in the water tank 2, thereby effectively cleaning the glasses.
[0032] Optionally, in some embodiments, the water tank 2 is made of semi-transparent solid-color glass, such as gradient-colored microcrystalline glass and colored frosted glass, but is not limited to the above materials. Users can roughly observe the cleaning status of the glasses inside the water tank 2 through the semi-transparent solid-color glass. Although it is not as clear as transparent glass, it can still understand the cleaning progress and effect to a certain extent.
[0033] Furthermore, as a preferred embodiment of this utility model and not a limitation thereof, the sink 2 is made of transparent glass, such as tempered glass, borosilicate glass and microcrystalline glass, but is not limited to the above materials.
[0034] Optionally, in some embodiments, the outer shell 1 of the cleaning cup is made of a transparent plastic material, such as polycarbonate or polymethyl methacrylate, but is not limited to the above materials.
[0035] Optionally, in some embodiments, the outer shell 1 of the cleaning cup is made of a transparent glass material, such as tempered glass, borosilicate glass, and quartz glass, but is not limited to the above materials.
[0036] Furthermore, the control board 4 is electrically connected to the ultrasonic transducer 3, enabling precise control of the ultrasonic transducer 3. The control board 4 integrates circuitry, a microprocessor, and other key electronic components. Its main function is to receive user operation commands, process data, and transmit corresponding control signals to the ultrasonic transducer 3. In this way, the control board 4 can precisely adjust key parameters such as the frequency, power, and working time of the ultrasonic waves, thereby achieving diverse cleaning effects to meet the needs of different users and different cleaning scenarios.
[0037] like Figures 1 to 6 The water tank 2 shown is a cylindrical water tank that restricts the vertical placement of the glasses. The water tank 2 has a depth of 100-250mm and a mouth width of 45-100mm.
[0038] Specifically, the water tank 2 is a vertically oriented cylindrical tank that restricts the vertical placement of the glasses. Compared to traditional ultrasonic cleaners that can only place glasses flat, where the lenses of the glasses make large-area contact with the bottom of the water tank 2, the mechanical vibrations generated during machine operation can easily scratch the downward-facing lenses. Furthermore, the micro-jet generated during machine operation is significantly attenuated by the downward-facing side of the glasses, resulting in insufficient cleaning power on the upward-facing side. In contrast, the water tank 2 of this invention is designed as a cylindrical shape that restricts the vertical placement of the glasses, which reduces the contact between the lenses and the bottom of the water tank 2, helping to reduce the risk of scratching the lenses. This allows the cleaning power generated by the ultrasonic waves to surround and act on the glasses 360°, thereby effectively improving the cleaning efficiency of the glasses.
[0039] Furthermore, the depth of the water tank 2 is set at 100-250mm to allow it to accommodate glasses of different sizes while ensuring sufficient space for the microjet generated by the ultrasonic waves to fully act on the surface of the glasses for thorough cleaning. Within this depth range, the ultrasonic waves can better interact with the cleaning fluid as they propagate, generating microbubbles of appropriate intensity and quantity, thereby forming an effective microjet. If the water tank is too shallow, the ultrasonic waves may not be able to fully exert their effect; if the water tank is too deep, the ultrasonic energy may be excessively attenuated during propagation.
[0040] Furthermore, the 45-100mm diameter of the water tank provides a stable space for the glasses, preventing them from shaking or tipping over during cleaning. This ensures that the temples of the glasses have enough room to fit without the glasses becoming unstable due to an excessively large diameter. This effectively improves the stability and reliability of the ultrasonic cleaning cup. At the same time, the appropriate diameter width allows for control over the amount of cleaning solution used, meeting cleaning needs while avoiding waste and effectively enhancing the practicality of the ultrasonic cleaning cup.
[0041] Optionally, in some embodiments, the water tank 2 has a depth of 100mm. A depth of 100mm is suitable for cleaning small eyeglasses, such as children's eyeglasses or some lightweight fashion eyeglasses. The height of these eyeglasses is usually between 50-100mm. A water tank 2 depth of 100mm can ensure that the eyeglasses are completely submerged in the cleaning solution, while avoiding unnecessary space waste.
[0042] Optionally, in some embodiments, the depth of the water tank 2 is 250mm. The depth of the water tank 2 of 250mm can accommodate large glasses or specially designed glasses, such as sports glasses, aviator glasses, etc. The height of these glasses is usually between 150-200mm. The depth of the water tank 2 of 250mm can ensure that these glasses are completely submerged in the cleaning solution, thereby achieving a thorough cleaning.
[0043] Optionally, in some embodiments, the water tank 2 has a diameter of 45mm. The smaller diameter is suitable for cleaning small glasses, which can save cleaning fluid and water resources while ensuring that small glasses can be cleaned.
[0044] Optionally, in some embodiments, the water tank 2 has an opening width of 100mm. The larger opening is suitable for cleaning large or specially designed glasses. At the same time, the larger opening width can provide a more stable cleaning environment, allowing the ultrasonic waves to propagate more evenly in a wider liquid, and the microjet has a wider range of action, which can more effectively remove stains and impurities from the surface of the glasses.
[0045] like Figures 1 to 6 A buffer gap 11 is provided between the outer shell 1 of the cleaning cup and the water tank 2 shown;
[0046] Furthermore, when the ultrasonic transducer 3 is working, it will generate high-frequency vibrations. If these vibrations are directly transmitted to the outer shell 1 of the cleaning cup, the entire ultrasonic cleaning cup may shake on the placement surface, or even collide with surrounding objects. The buffer gap 11 can act as an isolation zone to absorb and buffer the energy generated by the ultrasonic vibration of the water tank 2, reduce the transmission of vibration to the outer shell 1 of the cleaning cup, and make the ultrasonic cleaning cup more stable when working.
[0047] Furthermore, vibrations transmitted to the outer shell 1 of the cleaning cup will generate noise, affecting the user experience. The buffer gap 11 can effectively reduce the transmission of this noise caused by vibration.
[0048] Furthermore, the buffer gap 11 can absorb and disperse external impacts, preventing external forces from acting directly on the water tank 2, thereby effectively reducing the deformation or damage of the water tank 2 caused by collisions or drops, which is beneficial to protecting the structural integrity of the water tank 2; secondly, the buffer gap 11 can provide additional protection for the water tank 2, reducing the risk of damage caused by external impacts.
[0049] like Figures 1 to 6 The top of the outer shell 1 of the washing cup shown is provided with a washing cup top cover 5, and the washing cup top cover 5 is provided with a soft rubber hole 51 that communicates with the water tank 2 and can undergo elastic deformation;
[0050] Specifically, the soft rubber hole 51 can fix makeup brushes, eyebrow pencils and other beauty products, allowing them to be stably and vertically inserted into the cleaning liquid in the water tank 2. This allows the cavitation effect of the ultrasonic waves to act more effectively on various parts of the makeup brushes, eyebrow pencils and other beauty products, and to more thoroughly remove makeup residue, dust and other dirt, thus improving the cleaning effect.
[0051] Furthermore, the soft rubber hole 51 has elastic deformation properties, which can closely fit the handle of makeup brushes, eyebrow pencils and other beauty products, and fix them firmly in place during the cleaning process. Even under ultrasonic vibration, these products will not shake or shift, thus ensuring the uniformity and consistency of the cleaning effect.
[0052] Furthermore, the soft rubber hole 51 can adapt to different sizes of beauty products. Whether it is a small eyebrow pencil or a thicker makeup brush, it can be fixed by its own elastic adjustment. This not only improves the versatility of the ultrasonic cleaning cup and meets the user's cleaning needs for products of various sizes, but also eliminates the need to prepare different cleaning devices.
[0053] Furthermore, the soft rubber hole 51 makes it very convenient to insert and remove beauty products. Users can simply insert or pull them out gently without the need for additional clamps or fixing devices, which helps to simplify the operation process and effectively improve the user experience.
[0054] like Figures 1 to 6 The top cover 5 of the washing cup shown is provided with a hanging bracket 52 arranged vertically on the side near the water tank 2 for placing glasses;
[0055] Furthermore, the hanging bracket 52 is set vertically, which makes it easy to hang the glasses on it, avoiding instability or tipping that may occur if the glasses are placed randomly during the cleaning process, keeping the glasses in a fixed position during the cleaning process and facilitating the cleaning operation.
[0056] Furthermore, the vertical bracket 52 can make full use of the vertical space on the side of the top cover 5 of the cleaning cup near the water tank 2, without taking up additional horizontal space, so that the overall structure of the ultrasonic cleaning cup is more compact and saves space occupied by the equipment.
[0057] Furthermore, hanging the glasses on the hanger 52 allows all parts of the glasses, such as the lenses and frames, to be better exposed to the cleaning solution, ensuring that the ultrasonic waves can act evenly on all parts of the glasses, improving cleaning efficiency and effectiveness, and avoiding cleaning dead spots caused by improper placement of the glasses.
[0058] Optionally, in some embodiments, the hanger 52 is located at the edge of the top cover 5 of the cleaning cup, so that when the glasses are hung on the hanger 52, the glasses fit against the inner wall of the water tank 2, making full use of the space at the edge of the water tank 2, so that more space can be freed up in the central area inside the water tank 2 for placing other items to be cleaned, such as makeup brushes, eyebrow pencils, etc., so that multiple items can be cleaned at the same time, improving the efficiency of the ultrasonic cleaning cup.
[0059] Furthermore, as a preferred embodiment of this utility model and not a limitation thereof, the hanger 52 is located between the center and the edge of the top cover 5 of the washing cup, so that when the glasses are hung on the hanger 52, the glasses are suspended in the middle of the water tank 2 and do not come into contact with the inner wall of the water tank 2.
[0060] like Figures 1 to 6 The cleaning cup top cover 5 shown includes a mounting bracket 53. The mounting bracket 53 is provided with a through hole 54 corresponding to the soft rubber hole 51, a first mounting part for mounting the hanging bracket 52, and a second mounting part. The cleaning cup top cover 5 is detachably connected to the water tank 2 through the second mounting part.
[0061] Furthermore, the top cover 5 of the cleaning cup integrates the soft rubber hole 51, the hanging bracket 52, and the connection function with the sink 2 through the mounting bracket 53, so that the top cover 5 of the cleaning cup can not only meet a variety of cleaning needs, such as fixing makeup brushes and placing glasses, but also maintain the compactness and neatness of the ultrasonic cleaning cup structure.
[0062] Furthermore, the top cover 5 of the washing cup is detachably connected to the sink 2 via the second mounting part, allowing users to easily open and close the top cover 5 of the washing cup. When putting in or taking out items to be washed, no complicated operations are required, saving time and effort and improving the user experience.
[0063] Furthermore, the bracket 52 can be securely installed on the top cover 5 of the cleaning cup via the first mounting part on the mounting bracket 53, ensuring that the bracket 52 will not loosen or be damaged due to vibration or external force during the cleaning process, thereby improving the stability and reliability of the equipment.
[0064] like Figures 1 to 6 The first mounting part shown is a frame hook 55, which is located between the center and the edge of the mounting bracket 53. The frame hook 55 is provided with a mounting hole 551 for the bracket 52 to extend into.
[0065] Furthermore, the frame hook 55 provides a stable support for the hanger 52. By inserting the hanger 52 into the frame hook 55 through the mounting hole 551, it can be ensured that the hanger 52 will not loosen or fall off during use. Even under the high-frequency vibration generated during ultrasonic cleaning, the hanger 52 can remain stable.
[0066] Furthermore, by rationally arranging the positions of the bracket hooks 55, multiple functions can be integrated on the top cover of the cleaning cup 5 without interfering with each other. For example, the bracket 52 can coexist with the soft rubber hole 51 to meet the user's cleaning needs for different types of items.
[0067] Specifically, the frame hook 55 includes a first frame hook and a second frame hook symmetrically arranged with the first frame hook. One side of the hanger 52 extends into the mounting hole 551 in the first frame hook, and the other side of the hanger 52 extends into the mounting hole 551 in the second frame hook. When the hanger 52 is fixed to the mounting bracket 53 by the first and second frame hooks, the user can hang the glasses on the hanger 52. The glasses are suspended in the middle of the water tank 2 and do not contact the inner wall of the water tank 2. The glasses are suspended in the middle of the water tank 2 and surrounded by cleaning fluid, which allows all parts of the glasses to fully and evenly contact the cleaning fluid. When the ultrasonic waves generated by the wave transducer 3 propagate in the cleaning fluid, the cavitation effect can act on every part of the glasses without obstruction, including both sides of the lenses, every corner of the frame, and the connection between the temples and the frame, thereby more effectively removing dirt from the surface and crevices of the glasses and achieving comprehensive and deep cleaning. Secondly, the glasses are suspended in the air and will not come into contact or collide with the inner wall of the water tank 2, thus effectively avoiding the risk of scratches or damage caused by contact. Finally, the hanger 52 is symmetrically fixed by the first and second frame hooks, which can provide stable support for the hanger 52 and ensure that it will not shake or shift during use.
[0068] like Figures 1 to 6 The second mounting part shown consists of several elastic limiting pieces 56. Several elastic limiting pieces 56 are inclinedly extended in the vertical direction. The elastic limiting pieces 56 extend into the water tank 2 and abut against the inner side wall of the water tank 2, so that the water tank 2 restricts the installation position of the cleaning cup top cover 5.
[0069] Furthermore, the elastic limiting piece 56 is designed so that the top cover 5 of the washing cup can be quickly installed onto or removed from the sink 2 without the use of any tools. The user only needs to align the top cover 5 of the washing cup with the sink 2 and press it down gently to complete the installation; when it needs to be removed, it can be lifted up gently.
[0070] Furthermore, the elastic limiting piece 56 abuts against the inner wall of the water tank 2, providing a stable connection force to ensure that the top cover 5 of the cleaning cup will not loosen or shift during use. Even under the high-frequency vibration generated during ultrasonic cleaning, the top cover 5 of the cleaning cup can remain stable.
[0071] Furthermore, through the synergistic effect of multiple elastic limiting pieces 56, the force borne by the top cover 5 of the cleaning cup can be evenly distributed, further enhancing the structural strength of the entire top cover 5 of the cleaning cup.
[0072] like Figures 1 to 6 The frame hook 55 shown is integrally formed on the side of the mounting bracket 53 near the water tank 2;
[0073] Furthermore, the one-piece molding design makes the bracket hook 55 and the mounting bracket 53 a single unit, eliminating structural instability caused by loose or damaged connecting parts. This significantly enhances the structural strength of the entire cleaning cup top cover 5, ensuring that the hook 52 and the mounting bracket 53 will not separate due to external force or vibration during use.
[0074] Furthermore, the one-piece molded structure can better distribute the weight and external force borne by the bracket 52, making the stress more uniform and further improving the stability and reliability of the equipment.
[0075] Furthermore, the one-piece molding design helps reduce assembly steps in the production process. During manufacturing, there is no need for additional connecting parts or complex assembly processes, thereby simplifying the production process and improving production efficiency.
[0076] like Figures 1 to 6 The cleaning cup shell 1 shown has a cavity 12 for mounting the control board 4 inside. The cavity 12 is located below the water tank 2, and the ultrasonic transducer 3 is located on the bottom surface of the water tank 2.
[0077] Furthermore, given the limited internal space of the ultrasonic cleaning cup, placing the accommodating cavity 12 below the water tank 2 fully utilizes the vertical space and avoids occupying too much additional space in the horizontal direction. This makes the overall structure of the ultrasonic cleaning cup more compact, helps reduce its overall volume, and makes it easier to place and carry, suitable for different usage scenarios.
[0078] Furthermore, the water tank 2, as the main cleaning area, is located at the top, making it convenient for users to place and remove items to be cleaned; the control board 4 is located at the bottom, with some isolation from the water tank 2, which facilitates wiring connections to other components and avoids the influence of the liquid in the water tank 2; secondly, the ultrasonic transducer 3 is set on the bottom surface of the water tank 2, which can directly transmit ultrasonic energy to the liquid in the water tank 2, which helps to improve energy transmission efficiency.
[0079] Optionally, the ultrasonic transducer 3 can be installed on the bottom surface of the water tank 2 using connection methods such as threaded connection or snap-fit connection.
[0080] Preferably, the ultrasonic transducer 3 is attached to the bottom surface of the water tank 2 by means of adhesive.
[0081] The implementation method of Example 1 is as follows:
[0082] An ultrasonic cleaning cup includes a cleaning cup shell 1, a water tank 2 located inside the cleaning cup shell 1, an ultrasonic transducer 3 connected to the water tank 2, and a control board 4 electrically connected to the ultrasonic transducer 3. The cleaning cup shell 1 is made of transparent glass material, such as tempered glass, borosilicate glass, and quartz glass, and the water tank 2 is made of transparent glass material, such as tempered glass, borosilicate glass, and microcrystalline glass.
[0083] This invention features a cleaning cup shell and a water tank, with the water tank located inside the shell. The cleaning cup shell is made of transparent material, and the water tank is made of glass, ensuring good transparency for both. This allows users to visually observe the cleaning process of the glasses inside the water tank without opening the ultrasonic cleaning cup, enabling them to monitor the cleaning progress and results in real time. This significantly improves the convenience and intuitiveness of using the ultrasonic cleaning cup. It effectively solves the problem that existing ultrasonic cleaning cups often use metal water tanks, which prevent users from visually observing the cleaning effect and negatively impact the user experience.
[0084] The implementation method of Example 2 is as follows:
[0085] Based on Example 1, Example 2 also has the following implementation method: the water tank 2 is a cylindrical water tank that restricts the vertical placement of the glasses. The water tank 2 has a depth of 100mm and a mouth width of 45mm.
[0086] The implementation method of Example 3 is as follows:
[0087] Based on Example 1, Example 3 also has the following implementation method: a buffer gap 11 is provided between the outer shell 1 of the cleaning cup and the water tank 2.
[0088] The implementation method of Example 4 is as follows:
[0089] Based on Example 1, Example 4 also has the following implementation method: The top of the outer shell 1 of the cleaning cup is provided with a cleaning cup top cover 5, and the cleaning cup top cover 5 is provided with a soft rubber hole 51 that connects to the water tank 2 and can undergo elastic deformation.
[0090] The implementation method of Example 5 is as follows:
[0091] Based on Example 4, Example 5 also has the following implementation method: The top cover 5 of the cleaning cup is provided with a hanging bracket 52 arranged vertically on the side near the water tank 2 for placing glasses.
[0092] The implementation method of Example 6 is as follows:
[0093] Based on Example 5, Example 6 also has the following implementation method: The top cover of the cleaning cup 5 includes a mounting bracket 53. The mounting bracket 53 is provided with a through hole 54 corresponding to the soft rubber hole 51, a first mounting part for mounting the hanging bracket 52, and a second mounting part. The top cover of the cleaning cup 5 is detachably connected to the water tank 2 through the second mounting part.
[0094] The implementation method of Example 7 is as follows:
[0095] Based on Example 6, Example 7 also has the following implementation method: The first mounting part is a frame hook 55, which is located between the center and the edge of the mounting bracket 53. The frame hook 55 is provided with a mounting hole 551 for the hanging bracket 52 to extend into.
[0096] The implementation method of Example 8 is as follows:
[0097] Based on Example 6, Example 8 also has the following implementation method: The second mounting part is a plurality of elastic limiting pieces 56. The plurality of elastic limiting pieces 56 are inclinedly extended in the vertical direction. The elastic limiting pieces 56 extend into the water tank 2 and abut against the inner side wall of the water tank 2, so that the water tank 2 restricts the installation position of the cleaning cup top cover 5.
[0098] The implementation method of Example 9 is as follows:
[0099] Based on Example 7, Example 9 also has the following implementation method: the frame hook 55 is integrally formed on the side of the mounting bracket 53 near the water tank 2.
[0100] The implementation method of Example 10 is as follows:
[0101] Based on Example 1, Example 10 also has the following implementation method: The outer shell 1 of the cleaning cup is provided with a receiving cavity 12 for installing the control board 4. The receiving cavity 12 is located below the water tank 2, and the ultrasonic transducer 3 is located on the bottom surface of the water tank 2.
[0102] The implementation method of Example 11 is as follows:
[0103] The difference between Example 11 and Example 1 is that the outer shell of the cleaning cup 1 is made of transparent plastic material, such as polycarbonate or polymethyl methacrylate.
[0104] The implementation method of Example Twelve is as follows:
[0105] The difference between Example 12 and Example 2 is that the depth of water tank 2 is 250mm and the width of the opening of water tank 2 is 100mm.
[0106] The implementation method of Example Thirteen is as follows:
[0107] The difference between Example 13 and Example 2 is that the depth of water tank 2 is 100mm and the width of the opening of water tank 2 is 100mm.
[0108] The implementation method of Example Fourteen is as follows:
[0109] The difference between Example 14 and Example 2 is that the depth of water tank 2 is 250mm and the width of the opening of water tank 2 is 45mm.
[0110] The above examples are merely illustrative of the technical content of this utility model to facilitate reader understanding, but do not imply that the implementation of this utility model is limited to these embodiments. Any technical extensions or re-creations made based on this utility model are protected by this utility model. The scope of protection of this utility model is defined by the claims.
Claims
1. An ultrasonic cleaning cup, characterized in that: The device includes a cleaning cup shell (1), a water tank (2) located inside the cleaning cup shell (1), an ultrasonic transducer (3) connected to the water tank (2), and a control board (4) electrically connected to the ultrasonic transducer (3). The cleaning cup shell (1) is made of transparent material, and the water tank (2) is made of glass material. A buffer gap (11) is provided between the outer shell (1) of the cleaning cup and the water tank (2).
2. The ultrasonic cleaning cup according to claim 1, characterized in that: The water tank (2) is a cylindrical water tank that restricts the vertical placement of the glasses. The depth of the water tank (2) is 100-250mm, and the width of the opening of the water tank (2) is 45-100mm.
3. An ultrasonic cleaning cup according to claim 1, characterized in that: The top of the outer shell (1) of the cleaning cup is provided with a cleaning cup top cover (5), and the cleaning cup top cover (5) is provided with a soft rubber hole (51) that connects to the water tank (2) and can undergo elastic deformation.
4. An ultrasonic cleaning cup according to claim 3, characterized in that: The top cover (5) of the cleaning cup is provided with a hanging bracket (52) arranged vertically on the side near the water tank (2) for placing glasses.
5. An ultrasonic cleaning cup according to claim 4, characterized in that: The top cover (5) of the cleaning cup includes a mounting bracket (53). The mounting bracket (53) is provided with a through hole (54) corresponding to the soft rubber hole (51), a first mounting part for mounting the hanging bracket (52), and a second mounting part. The top cover (5) of the cleaning cup is detachably connected to the water tank (2) through the second mounting part.
6. An ultrasonic cleaning cup according to claim 5, characterized in that: The first mounting part is a frame hook (55), which is located between the center and the edge of the mounting bracket (53). The frame hook (55) is provided with a mounting hole (551) for the bracket (52) to extend into.
7. An ultrasonic cleaning cup according to claim 5, characterized in that: The second mounting part consists of several elastic limiting pieces (56). Several elastic limiting pieces (56) are inclined and extended in the vertical direction. The elastic limiting pieces (56) extend into the water tank (2) and abut against the inner side wall of the water tank (2) so that the water tank (2) restricts the installation position of the cleaning cup top cover (5).
8. An ultrasonic cleaning cup according to claim 6, characterized in that: The frame hook (55) is integrally formed on the side of the mounting bracket (53) near the water tank (2).
9. An ultrasonic cleaning cup according to claim 1, characterized in that: The outer shell (1) of the cleaning cup is provided with a cavity (12) for installing the control board (4). The cavity (12) is located below the water tank (2), and the ultrasonic transducer (3) is located on the bottom surface of the water tank (2).