Glass cleaning frame and cleaning system

By designing a glass cleaning rack with a main support body, telescopic components, and an adjustment mechanism to drive the movement of the support bars, the problem of existing technologies being unable to adapt to glass of different shapes has been solved, achieving a highly efficient glass cleaning process.

CN224058222UActive Publication Date: 2026-03-31SICHUAN XUHONG OPTOELECTRONICS TECH +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-05
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing cleaning racks are difficult to effectively support and adapt to glass of different shapes, especially V-shaped and U-shaped glass, resulting in the need for frequent disassembly and adjustment, wasting time and increasing costs.

Method used

A glass cleaning rack is designed, including a support body, a telescopic component, first and second support bars, and an adjustment mechanism. The adjustment mechanism drives the support bars to move to clamp the glass. The telescopic component adjusts its length to accommodate different sizes. The rotating shaft provides additional rotational freedom and is fixed in position by a locking mechanism to ensure stable clamping.

Benefits of technology

It effectively supports and clamps glass of different shapes, reducing readjustment time and improving cleaning efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a glass cleaning frame and a cleaning system, and relates to the technical field of ultrasonic glass cleaning. The glass cleaning frame is used for ultrasonic cleaning and comprises a support body, at least two telescopic pieces, a first adjusting structure, a first supporting strip, a second supporting strip and a second adjusting mechanism, the two telescopic pieces are arranged on the two sides of the support body respectively, and the telescopic pieces can stretch out and draw back in the vertical direction; the first adjusting structure is connected with one end of the telescopic piece; the first supporting strips are connected with the first adjusting structure, and the first adjusting structure can drive the first supporting strips to move oppositely in the horizontal direction so as to clamp glass. The number of the second supporting strips is at least two, and the two second supporting strips are slidably connected to the support body in the second direction. The second adjusting mechanism makes contact with the second supporting strips and can drive the two second supporting strips to slide in the horizontal direction so as to clamp the glass. The glass supporting device can effectively support and adapt to glass of different shapes.
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Description

Technical Field

[0001] This disclosure relates to the field of ultrasonic glass cleaning technology, and in particular to a glass cleaning rack and cleaning system. Background Technology

[0002] With the rapid development of the automotive industry, the demand for vehicle cover plates is increasing, and cleaning is a crucial step in their production. Vehicle cover plates also come in various shapes and sizes. Besides flat plates, there are curved ones. To better fit automotive interior designs or enhance user experience, many in-vehicle displays adopt curved designs. This design provides a better visual effect and sometimes enhances the tactile feedback. Curved glass can be processed into various special shapes such as "C-shaped," "V-shaped," "S-shaped," "U-shaped," and "W-shaped" to achieve aesthetic appeal and meet specific needs.

[0003] Currently, vehicle cover plates are typically fixed in a cleaning rack, which is then placed in an ultrasonic cleaner for ultrasonic cleaning.

[0004] Cleaning racks are often not suitable for products of various shapes, especially V-shaped and U-shaped glass. The cleaning racks have difficulty providing effective support for the bottom of the glass, and they need to be disassembled and adjusted during use, which greatly wastes production time and increases time costs. Utility Model Content

[0005] One of the technical problems this disclosure aims to solve is: how to effectively support and adapt to glass of different shapes, thereby avoiding the need for disassembly and adjustment of the cleaning rack and improving its efficiency.

[0006] To address the aforementioned technical problems, this disclosure provides a glass cleaning rack for ultrasonic cleaning, comprising:

[0007] Support body;

[0008] The support includes at least two telescopic components, which are respectively located on both sides of the main body of the support. The telescopic components can extend and retract in the vertical direction.

[0009] The first adjustment structure is connected to one end of the telescopic component;

[0010] The first support bar is connected to the first adjustment structure, which can drive the first support bar to move in opposite directions in the horizontal direction to clamp the glass.

[0011] The second support bar is provided in at least two forms, and the two second support bars are slidably connected to the main body of the bracket along the second direction.

[0012] The second adjustment mechanism is in contact with the second support bar and can drive the two second support bars to slide horizontally to clamp the glass.

[0013] In some embodiments, the first support bar is rotatably connected to the first adjustment structure via a rotating shaft, the extension direction of which is perpendicular to the horizontal and vertical directions.

[0014] In some embodiments, it further includes:

[0015] A damper is connected to a shaft to provide rotational force to the shaft.

[0016] In some embodiments, it also includes:

[0017] The first locking mechanism is connected to the rotating shaft and is used to lock the rotational position of the first support bar.

[0018] In some embodiments, the telescopic member includes:

[0019] First connector;

[0020] The second connector is sleeved outside the first connector.

[0021] A second locking mechanism is disposed between the first connector and the second connector to lock the relative positions of the first connector and the second connector.

[0022] In some embodiments, the first adjustment structure includes:

[0023] Connecting sleeve, the connecting sleeve and the telescopic component are fixedly connected;

[0024] Connecting rod, the connecting rod is set inside the connecting sleeve;

[0025] The locking screw is threaded into the through hole on the side wall of the connecting sleeve. One end of the locking screw can contact the connecting rod to lock the position of the connecting rod.

[0026] In some embodiments, support rods are provided on both sides of the bracket body, and a second adjustment mechanism is threadedly connected to the threaded hole of the support rod. The second adjustment mechanism passes through the threaded hole and contacts the second support bar. A scale line is provided on the bracket body along the horizontal direction, and the end of the second support bar corresponds to the position of the scale line.

[0027] The telescopic component is fixedly connected to the support rod.

[0028] In some embodiments, it also includes:

[0029] The bottom support is provided in multiple parts, and the multiple bottom support parts are evenly spaced on the side of the bracket body away from the second support bar;

[0030] The first support bar is positioned between the bottom support and the second support bar.

[0031] In some embodiments, it also includes:

[0032] The lifting mechanism is connected to the bottom support to enable the bottom support to move vertically.

[0033] This disclosure also provides a cleaning system, including a glass cleaning rack as described above, and an ultrasonic cleaner, wherein the glass cleaning rack is disposed within the ultrasonic cleaner.

[0034] Through the above technical solution, the glass cleaning rack provided in this disclosure drives the second support bar to move horizontally through the second adjustment mechanism to initially clamp glass of different sizes; the telescopic length of the telescopic component can be adjusted according to the shape of the glass to adjust the vertical position of the first support bar, and the first support bar is driven to move horizontally through the first adjustment mechanism to clamp and support the glass, thereby effectively supporting and adapting to glass of different shapes, thus avoiding the need to disassemble and adjust the cleaning rack and improving the efficiency of use. Attached Figure Description

[0035] To more clearly illustrate the technical solutions in the embodiments of this disclosure or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0036] Figure 1 This is a top view of the glass washing rack disclosed in an embodiment of this disclosure;

[0037] Figure 2 This is a front view structural schematic diagram of the glass cleaning rack disclosed in this embodiment;

[0038] Figure 3 This is a partial structural schematic diagram of the glass cleaning rack disclosed in this embodiment.

[0039] 1. Bracket body; 11. Support rod; 2. First adjustment mechanism; 21. Locking screw; 22. Connecting sleeve; 23. Connecting rod; 3. First support bar; 4. Second support bar; 5. Second adjustment mechanism; 7. Scale line; 8. Telescopic component; 81. Second connecting component; 82. Second locking mechanism; 83. First connecting component; 9. Rotating shaft. Detailed Implementation

[0040] The embodiments of this disclosure will be further described in detail below with reference to the accompanying drawings and examples. The detailed description of the embodiments and the accompanying drawings are used to illustrate the principles of this disclosure by way of example, but should not be used to limit the scope of this disclosure. This disclosure can be implemented in many different forms and is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

[0041] These embodiments are provided to make the disclosure thorough and complete, and to fully express the scope of the disclosure to those skilled in the art. It should be noted that, unless otherwise specifically stated, the relative arrangement of components and steps, material composition, numerical expressions, and values ​​set forth in these embodiments should be interpreted as exemplary only and not as limiting.

[0042] It should be noted that, in the description of this disclosure, unless otherwise stated, "a plurality of" means two or more; the terms "upper," "lower," "left," "right," "inner," and "outer," etc., indicating orientation or positional relationship, are only for the convenience of describing this disclosure and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this disclosure. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0043] Furthermore, the terms "first," "second," and similar terms used in this disclosure do not indicate any order, quantity, or importance, but are merely used to distinguish different parts. "Vertical" is not strictly vertical, but within the permissible margin of error. "Parallel" is not strictly parallel, but within the permissible margin of error. Terms such as "including" or "contains" mean that the element preceding the word encompasses the element listed after the word, and do not exclude the possibility of encompassing other elements as well.

[0044] It should also be noted that, in the description of this disclosure, unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this disclosure depending on the specific circumstances. When a particular device is described as being located between a first device and a second device, an intermediary device may or may not be present between the particular device and the first or second device.

[0045] All terms used in this disclosure have the same meaning as understood by one of ordinary skill in the art to which this disclosure pertains, unless otherwise specifically defined. It should also be understood that terms defined in general dictionaries should be interpreted as having meanings consistent with their meanings in the context of the relevant art, and not as idealized or highly formalized, unless expressly defined herein.

[0046] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, they should be considered part of the specification.

[0047] With the rapid development of the automotive industry, the demand for vehicle cover plates is increasing, and cleaning is a crucial step in their production. Vehicle cover plates also come in various shapes and sizes. Besides flat plates, there are curved ones. To better fit automotive interior designs or enhance user experience, many in-vehicle displays adopt curved designs. This design provides a better visual effect and sometimes enhances the tactile feedback. Curved glass can be processed into various special shapes such as "C-shaped," "V-shaped," "S-shaped," "U-shaped," and "W-shaped" to achieve aesthetic appeal and meet specific needs.

[0048] Currently, vehicle cover plates are typically fixed in a cleaning rack, which is then placed in an ultrasonic cleaner for ultrasonic cleaning.

[0049] Cleaning racks are often not suitable for products of various shapes, especially V-shaped and U-shaped glass. The cleaning racks have difficulty providing effective support for the bottom of the glass, and the cleaning racks need to be disassembled and adjusted during use, which greatly wastes production time and increases time costs.

[0050] To address the aforementioned issues, this disclosure proposes a glass cleaning rack and cleaning system that can effectively support and accommodate glass of different shapes, thereby avoiding the need for disassembly and adjustment of the cleaning rack and improving efficiency. Example 1

[0051] like Figure 1 , Figure 2 and Figure 3As shown, a glass cleaning rack for ultrasonic cleaning includes a support body 1, telescopic members 8, a first adjustment structure, a first support bar 3, a second support bar 4, and a second adjustment mechanism 5. At least two telescopic members 8 are provided, each located on one side of the support body 1, and each telescopic member 8 can extend and retract vertically. The first adjustment structure is connected to one end of each telescopic member 8. The first support bar 3 is connected to the first adjustment structure, which drives the first support bar 3 to move horizontally towards each other to clamp the glass. At least two second support bars 4 are provided, and the two second support bars 4 are slidably connected to the support body 1 along a second direction. The second adjustment mechanism 5 contacts the second support bars 4 and drives the two second support bars 4 to slide horizontally to clamp the glass.

[0052] The support body 1 refers to the basic frame used to support and fix other functional components (such as telescopic components 8, adjustment structures, support bars, etc.). It is the core of the entire cleaning rack, providing the necessary stability and strength to ensure that other components can effectively perform their functions, such as clamping and cleaning glassware of different shapes. Specifically, the support body 1 can be a metal support body 1, typically made of stainless steel or other corrosion-resistant metals, suitable for applications requiring resistance to chemical corrosion and high-pressure cleaning environments. Lightweight but sufficiently strong plastics or composite materials can also be used to reduce overall weight while maintaining durability. More specifically, the support body 1 can also be a frame-type support body 1, an open frame structure composed of multiple rods or plates. This design helps reduce weight and allows liquids and ultrasonic waves to better contact the items being cleaned. The support body 1 can also be a box-type support body 1, with a closed or semi-closed design, more suitable for occasions with high protection requirements, such as preventing external contaminants from entering the cleaning area. For example, the support body 1 can be open at the top, hollowed out at the bottom, and closed on all sides to prevent external contaminants from entering the cleaning area.

[0053] The telescopic component 8 is a component whose length or height can be changed to adapt to different size requirements or provide dynamic adjustment functionality. In glass washing rack systems, the telescopic component 8 is mainly used for vertical extension and retraction to accommodate glass products of different heights, ensuring they can be stably and effectively clamped and supported. Specifically, the telescopic component 8 can be a hydraulic telescopic component 8, which uses liquid pressure to drive a piston to achieve extension and retraction. It provides a large force output and is suitable for applications requiring high load capacity. Due to the presence of the liquid medium, it has good sealing and corrosion resistance. The telescopic component 8 can also be a pneumatic telescopic component 8, which uses compressed air to drive a piston to achieve extension and retraction. It has a relatively simple structure, fast response speed, and low cost. The telescopic component 8 can also be an electric telescopic component 8, which uses a motor to drive a lead screw or gear mechanism to achieve extension and retraction. It has high control precision and can achieve precise position control through programming, making it suitable for applications requiring precise positioning. It also has low noise and is easy to maintain. The telescopic component 8 can also be a manually adjustable telescopic component 8, which achieves extension and retraction by manually rotating a thread or other mechanical device. It does not require an external power source and is suitable for applications that do not require frequent adjustments or have low speed requirements. The manually adjustable telescopic component 8 has no seal, which can prevent vibration from damaging the seal of the telescopic component during ultrasonic cleaning.

[0054] In a glass cleaning rack system, the first adjustment structure is a component used to adjust and control the position of the first support bar 3. Its main function is to effectively clamp and support glass products of different widths and shapes by driving the first support bar 3 to move horizontally. This adjustment mechanism ensures that the cleaning rack can flexibly adapt to glass products of various sizes, thereby improving cleaning efficiency and reducing the time required for disassembly and readjustment. Specifically, the first adjustment structure can be a screw adjustment structure, where rotating the screw pushes or pulls the components connected to it (such as the first support bar 3), thereby achieving position adjustment. This structure is simple, low-cost, and highly accurate, suitable for applications requiring manual adjustment. The first adjustment structure can also be a rack and pinion adjustment structure, where a motor drives a gear to rotate, and the gear meshes with the rack, causing the rack to move linearly, thus moving the first support bar 3. The rack and pinion adjustment structure has high transmission efficiency, large force output, and good accuracy, suitable for scenarios requiring automated control. The first adjustment structure can also be a pneumatic / hydraulic adjustment structure, using the pressure of compressed air or hydraulic oil to push a piston, thereby driving the first support bar 3 to move. This structure has a fast response speed and large force output, suitable for applications requiring rapid adjustment. The first adjustment structure can also be an electric push rod adjustment structure. A motor drives a lead screw to rotate, which in turn pushes a push rod in a linear motion, thereby moving the first support bar 3. This offers high control precision, rapid response, and low noise, making it suitable for applications requiring precise position control. It is also moderately priced and easy to maintain. Alternatively, the first adjustment structure can be a spring adjustment structure, utilizing the spring force to provide the adjustment force. This can be combined with other mechanical structures. While simple in structure and low in cost, it has a limited adjustment range and relatively small force output, making it suitable for light loads with minimal dimensional changes.

[0055] The first support bar 3 is a key component that directly contacts and provides physical support to the glass products to be cleaned. Its main function is to move horizontally in conjunction with other adjusting structures (such as the first adjusting structure) to clamp and fix glass products of different shapes and sizes, ensuring they are stably and effectively supported during ultrasonic cleaning. Specifically, the first support bar 3 can be a fixed support bar, which is fixedly connected to the first adjusting structure and cannot be adjusted relative to it. Alternatively, it can be a manually adjustable support bar, whose position can be adjusted manually (e.g., by rotating a screw or knob). The manually adjustable support bar offers flexibility, allowing for manual adjustment of its position to accommodate glass products of different widths. The first support bar 3 has a strip-shaped structure with slots on its side walls for fixing the glass products.

[0056] The second support bar 4 is another key component, primarily used to provide additional support and clamping functions. Similar to the first support bar 3, the second support bar 4 works in conjunction with other adjustment mechanisms (such as the second adjustment mechanism 5) to slide horizontally to accommodate glass products of different shapes and sizes. Its main function is to ensure that the glass products can be stably and effectively fixed throughout the cleaning process, especially at the bottom and other difficult-to-support parts. The specific structure of the second support bar 4 is similar to that of the first support bar 3, and will not be described in detail here.

[0057] The second adjustment mechanism 5 is a key component for driving and controlling the position of the second support bar 4. Its main function is to adjust the position of the second support bar 4 mechanically or electrically, allowing it to slide horizontally to clamp glass products of different shapes and sizes. This adjustment mechanism ensures that the cleaning rack can flexibly adapt to the bottom or other difficult-to-support parts of various glass products, thereby improving cleaning efficiency and reducing the time spent on disassembly and readjustment. Similarly, the second adjustment mechanism 5 can be a screw adjustment mechanism, where rotating a screw pushes or pulls the components connected to it (such as the second support bar 4) to achieve position adjustment. The second adjustment mechanism 5 can also be a rack and pinion adjustment mechanism, where a motor drives a gear to rotate, the gear meshes with the rack, causing the rack to move linearly, thereby moving the second support bar 4. The second adjustment mechanism 5 can also be a pneumatic / hydraulic adjustment mechanism, using the pressure of compressed air or hydraulic oil to push a piston, thus driving the second support bar 4 to move. The second adjustment mechanism 5 can also be an electric push rod adjustment mechanism, where a motor drives a lead screw to rotate, the lead screw pushes a push rod to move linearly, thereby moving the second support bar 4. The second adjustment mechanism 5 can also be a spring-loaded adjustment mechanism, using the elasticity of a spring to provide adjustment force. The second adjustment mechanism 5 can also be a slider guide rail adjustment mechanism, with a support bar installed on the slider, and the slider sliding along the guide rail, usually driven by a mechanical or electric device.

[0058] Through the above technical solution, the glass cleaning rack provided in this disclosure drives the second support bar 4 to move horizontally through the second adjustment mechanism 5 to initially clamp the position of glass of different sizes; the telescopic length of the telescopic member 8 can be adjusted according to the shape of the glass to adjust the vertical position of the first support bar 3, and the first support bar 3 can be driven to move horizontally through the first adjustment mechanism 2 to clamp and support the glass, thereby effectively supporting and adapting to glass of different shapes, thus avoiding the need to disassemble and adjust the cleaning rack and improving the efficiency of use.

[0059] Specifically, during ultrasonic cleaning, to maximize the effective range of the ultrasonic waves, the clamps should minimize their contact area with the glass surface and ensure that they do not obstruct the propagation path of the ultrasonic waves. For example, when clamping V-shaped or inverted conical glass, the second support bar 4 can be clamped at the top edge of the glass, and the first support bar 3 can be clamped at the middle position of the glass in the vertical direction to effectively support the glass. When clamping U-shaped glass, since the width of the middle position and the top edge of the U-shaped glass are about the same, it is difficult to effectively support the glass if the second support bar 4 is clamped at the middle position of the glass. Therefore, the clamping position needs to be moved down to a position closer to the bottom of the U-shaped glass, so as to effectively support the U-shaped glass while clamping it.

[0060] like Figure 3 As shown, in some embodiments, the first support bar 3 is rotatably connected to the first adjustment structure via a pivot 9, the extension direction of the pivot 9 being perpendicular to both the horizontal and vertical directions. This design provides the first support bar 3 with additional rotational freedom, allowing it to better adapt to glass products of different shapes and sizes, especially those with complex geometries. The pivot connection refers to the first support bar 3 being connected to the first adjustment structure via a pivot 9 that can rotate about its axis.

[0061] For glass products with complex shapes such as V-shaped and U-shaped glass, traditional fixed support bars may not provide sufficient support. Connected by the pivot 9, the first support bar 3 can be adjusted at an appropriate angle according to the specific shape of the glass product, thus better supporting the bottom area. For glass products with a certain curvature, the first support bar 3 can rotate to adapt to changes in the curvature of the glass surface, ensuring that each contact point provides uniform support. On production lines that require frequent changes to glass products of different specifications, this design can significantly reduce readjustment time and improve production efficiency.

[0062] The first support bar 3 can be connected to the first adjustment structure via one or more manually or automatically controlled rotating shafts 9. The rotating shafts 9 are made of corrosion-resistant and durable materials to meet the requirements of ultrasonic cleaning environments. For precise angle adjustment, a manual knob, gear mechanism, or electric drive device may also be provided. These mechanisms allow users to fine-tune the angle of the first support bar 3 according to actual needs.

[0063] The axis of this pivot 9 is perpendicular to both the horizontal and vertical planes (i.e., the "normal" or "Y-axis direction"), allowing the first support bar 3 to be adjusted in an additional dimension to accommodate glass products of different shapes, especially those with irregular surfaces or varying curvature. This design also ensures that the first support bar 3 fits tightly against the surface of the glass product, providing a more stable clamping force and reducing the risk of the glass product slipping or shifting during cleaning.

[0064] In some embodiments, a damper is also included, connected to the rotating shaft 9 to provide a rotational effect to the shaft 9. A damper is a device used to absorb and dissipate energy, typically used to slow down mechanical motion or reduce vibration. In a specific case, the damper is connected to the rotating shaft 9 to provide a smooth and controllable effect on the rotation of the first support bar 3, preventing sudden, uncontrolled rotational movements, thereby ensuring operational safety and precision. The damper can provide uniform resistance, making the rotation of the rotating shaft 9 smoother and more controllable, which helps to avoid displacement or damage to the glass product due to sudden or rapid rotation. When adjusting the angle of the support bar, the damper can effectively prevent rebound due to inertia, ensuring that the support bar remains stable in the set position. By adjusting the resistance of the damper, fine control of the rotational speed of the rotating shaft 9 can be achieved, thereby improving the adjustment accuracy of the entire system, which is particularly important when handling glass products with complex shapes.

[0065] Specifically, dampers can be hydraulic dampers, which utilize the resistance generated when a liquid (usually oil) flows through a closed cavity to achieve a damping effect. They provide relatively stable resistance and are suitable for applications requiring high-precision control. However, maintenance is more complex, requiring regular inspection and replacement of seals. Dampers can also be pneumatic dampers, which utilize the resistance generated when compressed air flows through a closed cavity to achieve a damping effect. They offer fast response, relatively simple structure, and low cost. However, due to the compressibility of gas, the resistance is not stable enough. Dampers can also be friction dampers, which generate resistance through friction between two surfaces. They are simple in structure, low in cost, and easy to maintain. However, the friction force may change over time, affecting long-term stability. Dampers can also be magnetorheological dampers, which use a magnetic field to change the viscosity of a magnetorheological fluid, thereby adjusting the damping force. The damping force can be adjusted in real time via electronic control, offering high flexibility and adaptability. Spring dampers can also be used, providing resistance through the elastic force of a spring. They are simple in structure and low in cost, but have a relatively small force output, making them suitable for light load applications.

[0066] The damper can be installed near the rotating shaft 9 and directly connected to it. This allows for direct control of the rotation speed and stability of the rotating shaft 9. When handling products with complex shapes such as V-shaped, U-shaped, and curved glass, the damper helps the first support bar 3 better adapt to these shapes, providing a more stable clamping force while preventing accidents caused by sudden rotation. Under ultrasonic vibration conditions, the buffering effect provided by the damper ensures a secure connection between the first support bar 3 and the glass.

[0067] In some embodiments, a first locking mechanism is further included, which is connected to the rotating shaft 9 and used to lock the rotational position of the first support bar 3. The first locking mechanism is a device for fixing the rotational position of the first support bar 3. Connected to the rotating shaft 9, it can lock the support bar in a specific position after the angle of the first support bar 3 has been adjusted, preventing unnecessary movement or rotation of the support bar due to ultrasonic vibration or other external forces. This locking mechanism ensures the stability and safety of the glass products throughout the cleaning process.

[0068] Specifically, the first locking mechanism can be a mechanical locking mechanism, which fixes the rotating shaft 9 in a certain position through a physical locking device. It has a simple structure, low cost, and high reliability. For example, the first locking mechanism can be a screw, with the first support bar 3 rotatably connected to the rotating shaft 9 via a sleeve. The screw is bolted to the side wall of the rotating shaft 9, and the screw's tightening force presses against the rotating shaft 9 to restrict its rotation. The first support bar 3 can also be a friction locking mechanism, which increases friction to prevent the free rotation of the rotating shaft 9, typically using a spring or hydraulic device to provide continuous pressure. Friction locking mechanisms provide a relatively stable locking effect and are suitable for applications requiring a certain degree of flexibility. The first locking mechanism can also be a ratchet locking mechanism, which uses the cooperation of a ratchet and pawl to allow the rotating shaft 9 to rotate unidirectionally or bidirectionally and automatically locks upon release. It is easy to operate, has a reliable locking effect, and is suitable for applications requiring frequent adjustments and rapid locking. The first locking mechanism can also be an electric locking mechanism, which uses a motor to drive a locking device (such as an electromagnetic lock, electric clamp, etc.) to lock and unlock the rotating shaft 9. The first locking mechanism can also be a hydraulic / pneumatic locking mechanism, which uses hydraulic or pneumatic devices to provide pressure to lock the rotating shaft 9 in a certain position, providing a large locking force, and is suitable for applications requiring high load capacity.

[0069] like Figure 3 As shown, in some embodiments, the telescopic member 8 includes a first connector 83, a second connector 81, and a second locking mechanism. The second connector 81 is sleeved outside the first connector 83, and the second locking mechanism is disposed between the first connector 83 and the second connector 81 to lock the relative positions of the first connector 83 and the second connector 81.

[0070] The first connector 83 is the inner part of the telescopic member 8 and can be a fixed or movable rod-like structure. As the core part of the telescopic member 8, the first connector 83 provides the main support and guiding functions. It is typically fixed to the support body 1 or other basic structure. The second connector 81 is the part sleeved on the outside of the first connector 83, typically a sliding sleeve or shell. The second connector 81 achieves overall length adjustment of the telescopic member 8 by sliding on its outer side. The relative sliding between the second connector 81 and the first connector 83 provides the telescopic function. A second locking mechanism is provided between the first connector 83 and the second connector 81 to lock their relative positions. After the length of the telescopic member 8 is adjusted, the second locking mechanism can fix the first connector 83 and the second connector 81 in a specific position, preventing accidental sliding or loosening during use.

[0071] Specifically, the first connecting member 83 can be a mechanical locking mechanism, which uses a physical locking device (such as a bolt, clamp, etc.) to fix the first connecting member 83 and the second connecting member 81 together. This design is simple in structure, low in cost, and highly reliable. More specifically, the second locking mechanism can be a pin. The first connecting member 83 can have multiple first connecting holes, and the second connecting member 81 can have a second connecting hole. The pin is inserted into the first and second connecting holes to complete the locking. Alternatively, the second locking mechanism can be a screw, which is threaded into the threaded hole of the second connecting member 81. One end of the screw contacts the first connecting member 83, and the tightening force of the screw fixes the first connecting member 83 and the second connecting member 81 together.

[0072] The first connecting member 83 can also be a friction-type locking mechanism, which increases friction to prevent relative sliding between the first connecting member 83 and the second connecting member 81. A spring or hydraulic device provides continuous pressure, offering a relatively stable locking effect suitable for applications requiring a certain degree of flexibility. The first connecting member 83 can also be an electric locking mechanism, using a motor to drive a locking device (such as an electromagnetic lock or electric clamp) to lock and unlock the first connecting member 83 and the second connecting member 81. The first connecting member 83 can also be a hydraulic / pneumatic locking mechanism, using hydraulic or pneumatic devices to provide pressure and lock the first connecting member 83 and the second connecting member 81 in a specific position. This provides a larger locking force and is suitable for applications requiring high load capacity.

[0073] like Figure 3As shown, in some embodiments, the first adjustment structure includes a connecting sleeve 22, a connecting rod 23, and a locking screw 21. The connecting sleeve 22 and the telescopic member 8 are fixedly connected. The connecting rod 23 is disposed inside the connecting sleeve 22. The locking screw 21 is threaded into a through hole in the side wall of the connecting sleeve 22, and one end of the locking screw 21 can contact the connecting rod 23 to lock the position of the connecting rod 23. This design allows the first support bar 3 to be precisely adjusted in the horizontal direction and its position is fixed by the locking screw 21, ensuring that the support bar will not move accidentally during cleaning. The connecting sleeve 22 is the core part of the first adjustment structure and is usually a hollow cylindrical component. It is fixedly connected to the telescopic member 8, providing a stable frame in which the connecting rod 23 can slide and be adjusted in position. The connecting rod 23 is a rod-shaped component that can slide inside the connecting sleeve 22 and is usually connected to the first support bar 3. By sliding inside the connecting sleeve 22, the connecting rod 23 can drive the first support bar 3 to move in the horizontal direction to accommodate glass products of different widths. The locking screw 21 is a screw threaded into a through hole on the side wall of the connecting sleeve 22. By rotating the locking screw 21, one end of it presses against the connecting rod 23, thereby locking the position of the connecting rod 23 and preventing it from sliding or shifting during use. Specifically, the connecting rod 23 may also have a threaded hole, and one end of the locking screw 21 connects to the threaded hole on the connecting rod 23 to further improve the locking effect.

[0074] In some embodiments, support rods 11 are provided on both sides of the bracket body 1, and a second adjustment mechanism 5 is threadedly connected to the threaded holes of the support rods 11. The second adjustment mechanism 5 passes through the threaded holes and contacts the first support bar 3; a telescopic member 8 is fixedly connected to the support rods 11. The support rods 11 are long rod-shaped components installed on both sides of the bracket body 1. The support rods 11 provide structural support and serve as the mounting base for the second adjustment mechanism 5. The support rods 11 have threaded holes for threaded connection with the second adjustment mechanism 5. The second adjustment mechanism 5 is a threaded adjustment device, which may include a screw and a handwheel or motor drive. By rotating the screw, it moves along the threaded holes on the support rods 11, thereby pushing or pulling the first support bar 3 to achieve fine-tuning and clamping in the horizontal direction. The support rods 11 are fixed on both sides of the bracket body 1, providing a stable support base for the entire adjustment structure. The support rods 11 have threaded holes for threaded connection with the second adjustment mechanism 5. The second adjustment mechanism 5 is threadedly connected to the threaded holes of the support rods 11. Rotating the second adjusting mechanism 5 (which can be done manually by turning a handwheel or driven by a motor) allows the adjusting mechanism to move back and forth along the threaded hole, thereby pushing or pulling the second support bar 4. When the second adjusting mechanism 5 moves along the support rod 11, it contacts the second support bar 4 and pushes it to move horizontally. By precisely controlling the moving distance of the second adjusting mechanism 5, the position of the second support bar 4 can be finely adjusted, ensuring that it can firmly clamp glass products of different widths.

[0075] like Figure 2 As shown, in some embodiments, a scale line 7 is provided horizontally on the main body of the support, and the end of the second support bar 4 corresponds to the position of the scale line 7. This design provides the user with an intuitive reference, making it easier and more precise to adjust the position of the second support bar 4. By setting the scale line 7, the position of the second support bar 4 can be pre-adjusted according to the size of the glass, thereby improving the efficiency of glass installation. When handling a large number of glass products of the same specifications, the scale line 7 can help the user adjust the second support bar 4 to the same position each time, ensuring consistency and reliability for each cleaning. Specifically, the scale line 7 is made of wear-resistant and corrosion-resistant materials (such as stainless steel or ceramic) to ensure that it will not wear or fade during long-term use. The scale line 7 can be directly engraved on the surface of the support frame, or it can be marked by pasting a durability label or spraying. For easy reading, the scale line 7 is clearly visible, and the numbers and markings are large enough. The end of the second support bar 4 is designed as a clear indicator point, such as an arrow shape or a protruding small piece, so that the user can clearly see its corresponding position with the scale line 7. A small pointer or mark can also be installed at the end of the second support bar 4 to make it easier to align with the scale line 7.

[0076] like Figure 1 As shown, in some embodiments, a bottom support member is also included, and multiple bottom support members are provided, which are evenly spaced on the side of the bracket body 1 away from the second support bar 4. The first support bar 3 is disposed between the bottom support members and the second support bar 4.

[0077] Bottom supports are components mounted on the support body 1, specifically designed to support the bottom area of ​​glass products. They are typically located at the bottom of the support body 1 and are evenly distributed to ensure that the glass products do not deform or become damaged due to lack of support during cleaning. Multiple evenly spaced bottom supports disperse the supporting force, ensuring that the glass products remain level and stable during cleaning, preventing tilting or slippage caused by uneven localized force. By adjusting the position of the bottom supports or using adjustable bottom supports, different shapes and sizes of glass products can be accommodated, improving the system's versatility and flexibility. The bottom supports are made of soft or abrasion-resistant materials (such as rubber, plastic, etc.) to reduce friction and damage to the glass surface, which is especially important in high-frequency vibration environments like ultrasonic cleaning. The shape of the bottom supports can be designed according to actual needs, including flat support blocks, curved support blocks, or support blocks with grooves, to better fit different shaped glass products. A first support strip 3 is positioned between the bottom supports and the second support strip 4, facilitating adjustment of the position of the first support strip 3 according to the shape of the glass.

[0078] In some embodiments, a lifting mechanism is also included, which is connected to the bottom support to enable the bottom support to move vertically. The lifting mechanism is a mechanical device used to move components vertically. In this system, the lifting mechanism is connected to the bottom support, and by controlling the height of the bottom support, it can adapt to glass products of different heights, providing more precise and stable support. Specifically, the lifting mechanism can be connected to each bottom support, allowing for individual adjustment of the position of each bottom support. Precise adjustment of the height of the bottom support ensures that each support point fits tightly against the bottom of the glass product, reducing the impact of vibration during cleaning on the glass surface and thus better protecting the glass product. Alternatively, the bottom supports can be connected together via a connecting rod 23, and then the height of multiple bottom supports can be adjusted uniformly by the lifting mechanism.

[0079] Specifically, the lifting mechanism can be a screw-driven lifting mechanism, which uses the rotation of a screw to push or pull the bottom support member, causing it to move vertically. This requires manual operation and is suitable for applications where frequent adjustments are not necessary. Alternatively, the lifting mechanism can be a hydraulic lifting mechanism, which uses the pressure of hydraulic oil to push a piston, thereby driving the bottom support member to move up and down. Another option is an electric push rod lifting mechanism, where a motor drives a lead screw to rotate, which in turn pushes a push rod to move linearly, thus moving the bottom support member up and down. Example 2

[0080] This disclosure also provides a cleaning system, including a glass cleaning rack as described above, and an ultrasonic cleaner, wherein the glass cleaning rack is disposed within the ultrasonic cleaner.

[0081] In the cleaning system, the glass cleaning rack is one of the core components, used to support and fix glass products of various shapes and sizes. The specific structure of the glass cleaning rack is as described in Example 1 and will not be repeated here. The glass cleaning rack is installed in an ultrasonic cleaner to achieve a highly efficient cleaning process. An ultrasonic cleaner utilizes the cavitation effect generated by ultrasonic vibration to remove dirt and impurities from the surface of glass products. The ultrasonic cleaner includes a cleaning tank, an ultrasonic transducer, a generator, a heating device, a filtration system, and a control system. The cleaning tank is a container for the cleaning fluid, made of stainless steel or other corrosion-resistant materials, and the glass cleaning rack is placed in the cleaning tank. The ultrasonic transducer converts electrical energy into mechanical vibration, generating high-frequency ultrasonic waves. The generator provides the transducer with the required high-frequency electrical signal. The heating device heats the cleaning fluid to improve the cleaning effect. The filtration system filters impurities from the cleaning fluid, extending its service life. The control system controls various parameters of the cleaning process, such as time, temperature, and frequency.

[0082] The cleaning system provided in this disclosure uses a second adjusting mechanism 5 to drive the second support bar 4 to move horizontally to initially clamp the position of glass of different sizes. The telescopic length of the telescopic member 8 can be adjusted according to the shape of the glass to adjust the vertical position of the first support bar 3. The first adjusting mechanism 2 drives the first support bar 3 to move horizontally to clamp and support the glass, thereby effectively supporting and adapting to glass of different shapes, thus avoiding the need to disassemble and adjust the cleaning rack and improving the efficiency of use.

[0083] The embodiments of this disclosure have now been described in detail. To avoid obscuring the concept of this disclosure, some details known in the art have not been described. Those skilled in the art can fully understand how to implement the technical solutions disclosed herein based on the above description.

[0084] While specific embodiments of this disclosure have been described in detail by way of examples, those skilled in the art should understand that the examples are for illustrative purposes only and not intended to limit the scope of this disclosure. Those skilled in the art should understand that modifications can be made to the above embodiments or equivalent substitutions can be made to some technical features without departing from the scope and spirit of this disclosure. In particular, as long as there is no structural conflict, the technical features mentioned in the various embodiments can be combined in any manner.

Claims

1. A glass washing rack for ultrasonic washing, characterized by, Include: Support body (1); Telescopic piece (8), the telescopic piece (8) is provided with at least two, two telescopic pieces (8) are respectively arranged on both sides of the support body (1), the telescopic piece (8) can be telescopic along the vertical direction; First adjusting structure (2), the first adjusting structure (2) and one end of the telescopic piece (8) are connected; First support bar (3), the first support bar (3) is connected with the first adjusting structure (2), the first adjusting structure (2) can drive the first support bar (3) to move along the horizontal direction and be opposite to each other to clamp the glass; Second support bar (4), the second support bar (4) is provided with at least two, two second support bars (4) are slidingly connected on the support body (1) along the second direction; Second adjusting mechanism (5), the second adjusting mechanism (5) is in contact with the second support bar (4), the second adjusting mechanism (5) can drive two second support bars (4) to slide along the horizontal direction to clamp the glass.

2. The glass cleaning frame according to claim 1, wherein the first support bar (3) is rotatably connected to the first adjusting structure (2) through a rotating shaft, and the extending direction of the rotating shaft is perpendicular to the horizontal direction and the vertical direction. Further include:

3. The glass rack of claim 2, wherein, Damper, the damper is connected with the rotating shaft to provide rotating effect for the rotating shaft. Further include:

4. The glass rack of claim 2, wherein, First locking mechanism, the first locking mechanism is connected with the rotating shaft, and is used for locking the rotating position of the first support bar.

5. The glass cleaning frame according to claim 1, wherein the telescopic piece (8) comprises: First connecting piece (83); Second connecting piece (81), the second connecting piece (81) is arranged outside the first connecting piece (83); Second locking mechanism (82), the second locking mechanism (82) is arranged between the first connecting piece (83) and the second connecting piece (81), and is used for locking the relative position of the first connecting piece (83) and the second connecting piece (81).

6. The glass cleaning frame according to claim 1, wherein the first adjusting structure (2) comprises: Connecting sleeve (22), the connecting sleeve (22) is fixedly connected with the telescopic piece (8); Connecting rod (23), the connecting rod (23) is arranged in the connecting sleeve (22); Locking screw (21), the locking screw (21) is threadedly connected in the through hole in the side wall of the connecting sleeve (22), one end of the locking screw (21) can be in contact with the connecting rod (23) to lock the position of the connecting rod (23).

7. The glass cleaning frame according to claim 1, wherein the support body (1) is provided with a support rod (11) on both sides, the second adjusting mechanism (5) is threadedly connected in the threaded hole of the support rod (11), the second adjusting mechanism (5) passes through the threaded hole and is in contact with the second support bar (4); the support body (1) is provided with a scale line (7) along the horizontal direction, and the end of the second support bar (4) corresponds to the position of the scale line (7). ​ ​ ​ ​ The telescopic part (8) is fixedly connected to the support rod (11).

8. The glass rack of claim 1, wherein, Further comprising: A plurality of bottom supports are provided, and the plurality of bottom supports are uniformly and spacedly arranged on the bracket body (1) away from the second support bar (4). The first support bar (3) is arranged between the bottom support and the second support bar (4).

9. The glass rack of claim 8, wherein, Further comprising: A lifting mechanism is connected to the bottom support to enable the bottom support to move in a vertical direction.

10. A cleaning system characterized by, The glass cleaning rack as claimed in any one of claims 1-9, further comprising an ultrasonic cleaning machine, and the glass cleaning rack is arranged in the ultrasonic cleaning machine.