Sectional structure of motor and electric lifting window without disassembling sectionals for maintaining motor

By incorporating a removable receiving groove and a rotatable connecting cover plate into the profile structure of the electric lifting window, the problem of needing to disassemble the profile for maintenance in the motor concealment design is solved. This enables convenient motor maintenance and maintains the strength of the profile, thereby improving the service life of the motor and the aesthetics of the window.

CN116677283BActive Publication Date: 2026-05-15SHENZHEN HOPO WINDOW CONTROL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHENZHEN HOPO WINDOW CONTROL TECH CO LTD
Filing Date
2023-06-02
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

The existing motor-concealed design of electric lift windows requires disassembly of the profile during maintenance, which can damage the profile structure, increase maintenance costs and time, and the installation process requires milling through the profile, reducing its strength.

Method used

Design a profile structure that allows motor maintenance without disassembling the profile. By setting a detachable receiving groove and a rotatably connected cover plate in the outer frame structure, the motor can be detachably installed in the receiving groove. The motor can be conveniently repaired or replaced by using a rotating fulcrum and adsorption components. The frame reinforcement plate improves the strength.

Benefits of technology

It enables convenient maintenance or replacement of the motor without disassembling the profile, avoiding damage to the profile, maintaining the strength and aesthetics of the profile, and extending the service life of the motor.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a profile structure for maintaining a motor without disassembling the profile and an electric lifting window using the profile structure, the profile structure comprising an outer frame structure, a cover plate, the outer frame structure being provided with a containing groove, and the motor being detachably arranged in the containing groove; the cover plate is rotationally connected with the outer frame structure to open or close the containing groove. The electric lifting window comprises a window body, the outer frame structure is arranged on one side of the window body, and the motor drives the window body to move along the vertical direction. When a user needs to maintain or replace the motor, the containing groove is opened by rotating the cover plate relative to the outer frame structure, so that the user can maintain or replace the motor in the containing groove. After the motor is maintained or replaced, the containing groove is closed by rotating the cover plate relative to the outer frame structure. The motor can be maintained without disassembling the profile structure, the parts are prevented from being damaged in the disassembling process, the motor can be installed without milling through the outer frame structure, the strength of the outer frame structure can be maintained, and the internal motor can be better protected.
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Description

Technical Field

[0001] This application relates to the field of door and window technology, and more particularly to a profile structure that allows for motor maintenance without disassembling the profile, and an electric lifting window using the profile structure. Background Technology

[0002] Electric lift windows are a modern window system that uses electromechanical devices to control the opening and closing of windows. They replace traditional manual operation, providing a more convenient and intelligent window control experience. Electric lift windows typically use a motor as a power source to drive the window's opening and closing. The motor is usually installed inside the window frame or on the side of the window, and is linked to the window via mechanical devices such as connecting rods or chains to raise or lower the window.

[0003] To enhance the overall aesthetics and extend the lifespan of their motors, motorized sliding windows on the market typically conceal the motors within the frame structure. This conceals the motor, ensuring a clean and attractive appearance without compromising the window's overall aesthetics. Furthermore, it reduces the risk of moisture damage and extends the motor's lifespan.

[0004] However, the motor-concealed design of electric lift windows has a long-standing problem: the motor is easily damaged. Currently, maintaining the motor of electric lift windows often requires disassembling the already tightly fastened profile. Once the profile structure is disassembled, it is easy to damage the profile structure, resulting in high maintenance and material costs, making it difficult to repair the motor of the electric lift window.

[0005] Chinese patent number CN 217159415U discloses a hidden structure for an electric sliding window motor. The window frame includes a base and a partition. One side of the partition is a snap-fit ​​surface, which is detachably connected to the window frame cover plate and forms a closed cavity. The motor is installed inside the closed cavity. However, because the upper end of the snap-fit ​​surface is connected to the window frame cover plate via snap-fit ​​parts, and the lower end of the snap-fit ​​surface is connected to the window frame cover plate via a hook structure, and the partition plate is connected to the window frame cover plate via snap-fit, when the motor is damaged, it is necessary to first remove the window frame cover plate from the upper and lower ends of the snap-fit ​​surface before the motor can be repaired or directly replaced. This greatly increases the time cost of repair. Furthermore, the upper end of the partition snap-fit ​​surface is connected to the window frame cover plate via snap-fit ​​parts, and the lower end of the snap-fit ​​surface is connected to the window frame cover plate via a hook structure to prevent the window frame cover plate from falling and causing safety hazards. However, the snap-fit ​​parts and hook structure of the window frame cover plate are easily damaged during disassembly. If disassembly is not done properly, it can easily lead to damage to the window frame cover plate and partition plate, requiring replacement of parts and resulting in high labor and material costs.

[0006] Furthermore, currently available motorized lift windows require milling through the profile wall to install the motor, creating sufficient space for insertion and achieving a concealed, aesthetically pleasing effect. However, this method compromises the original strength of the profile. Please refer to [reference needed]. Figure 1 There is a type of electric lift window frame structure 700 on the market, including a fixed frame 710 and a cover 720. The fixed frame 710 has a curved arm 721, a groove 711, a locking point 712, and a sealing rib 713. The cover 720 has a curved arm 721 and a locking arm 722. The fixed frame 710 is a closed profile, so during installation, the first step is to mill through the sealing rib 713 to install the motor 8 inside the fixed frame 710 and to facilitate the later maintenance of the motor 8. However, at this time, the strength of the fixed frame 710 has been greatly reduced, resulting in the original strength of the fixed frame 710 not being realized. In addition, after the motor 8 is installed, the cover 720 needs to be installed to cover the gap in the fixed frame 710 after milling through the profile. The curved arm 721 needs to be installed in conjunction with the groove 711 and rotated counterclockwise until the locking point 712 and the locking arm 722 are tightly fastened to prevent the cover 720 from falling off and causing a safety hazard. Because the curved arm 721 and the curved arm 721 groove 711 are installed together and rotated counterclockwise to the locking point 712 and tightly fastened to the locking arm 722, when the cover 720 is removed for maintenance of the motor 8, the curved arm 721 groove 711 and the locking point 712 are easily damaged, so the cover 720 needs to be replaced, resulting in high labor and material costs.

[0007] Therefore, it is necessary to propose a profile structure that can maintain the motor without disassembling the profile and an electric lifting window that uses it. The motor can be repaired or replaced without disassembling the profile, and the motor can be installed without processing the profile, while not reducing the original strength of the profile. Summary of the Invention

[0008] The purpose of this application is to overcome the shortcomings of the prior art and propose a profile structure that allows for motor maintenance without disassembling the profile and an electric lifting window using this profile structure. This addresses a series of problems, such as the easy damage to the concealed motor in the electric lifting window, and the need to disassemble the already tightly fastened or connected profile for motor maintenance, which can easily damage the profile during disassembly.

[0009] This application is achieved through the following technical solution:

[0010] This application proposes a profile structure that allows for motor maintenance without disassembling the profile, applicable to an electric lift window. The structure includes an outer frame and a cover plate. The outer frame has a receiving groove in which the motor is detachably housed. The cover plate is rotatably connected to the outer frame to open or close the receiving groove. When the receiving groove is open, the motor can be removed from the receiving groove.

[0011] In one embodiment of this application, one of the cover plate or the outer frame structure has a rotation fulcrum, and the other of the cover plate or the outer frame structure has a rotation groove. The rotation fulcrum is disposed in the rotation groove so that the cover plate can rotate about the center of the rotation fulcrum.

[0012] In one embodiment of this application, the outer frame structure includes a frame and a plurality of reinforcing plates, the frame having the receiving groove; the plurality of reinforcing plates are disposed on the side wall of the frame on the receiving groove to support the opening of the receiving groove.

[0013] In one embodiment of this application, the reinforcing plate is a steel plate, and the reinforcing plate is positioned away from the motor.

[0014] In one embodiment of this application, the outer frame structure further includes a clamping member and a cover plate. The clamping member is clamped onto the frame and has the rotation fulcrum. The cover plate has the rotation groove and the rotation fulcrum is located in the rotation groove so that the cover plate can rotate around the center relative to the rotation fulcrum.

[0015] In one embodiment of this application, the clamping member has a first adsorption member on the side away from the receiving groove, and the cover plate has a second adsorption member on the side facing the receiving groove. When the cover plate rotates in a first direction, the first adsorption member and the second adsorption member attract each other, and the receiving groove closes.

[0016] In one embodiment of this application, the side of the clamping member opposite to the receiving groove has a buffer member, and when the receiving groove is closed, the buffer member abuts against the cover plate.

[0017] In one embodiment of this application, the frame has a locking groove on the side wall of the receiving groove and at the adjacent end, the locking member has a locking hook, and the locking hook is engaged in the locking groove; the frame has a fixing groove on one side of the locking groove, the outer frame structure also includes a nut and a bolt, the nut is engaged in the fixing groove, and the bolt passes through the locking member and extends into the fixing groove to be threadedly connected to the nut.

[0018] In one embodiment of this application, a first adsorption groove is formed on the side of the clamping member away from the receiving groove, and the first adsorption member is clamped in the first adsorption groove to fix the first adsorption member in the first adsorption groove; a second adsorption groove is formed on the side of the cover plate facing the receiving groove, and the second adsorption member is clamped in the second adsorption groove to fix the second adsorption member in the second adsorption groove; a buffer groove is formed on the side of the clamping member away from the receiving groove, and the buffer member is clamped in the buffer groove.

[0019] This application proposes an electrically operated lifting window, including a window body and a profile structure that allows maintenance of the motor without disassembling the profile. The outer frame structure is located on one side of the window body, and the motor drives the window body to move in the vertical direction.

[0020] Compared with the prior art, the beneficial effects of this application are:

[0021] 1. The motor is detachably housed within the receiving slot. When the user needs to repair or replace the motor, the cover plate is rotated relative to the outer frame structure, opening or closing the receiving slot to facilitate motor repair or replacement. Thus, by rotating the cover plate, the motor can be maintained without disassembling the profile structure. This profile structure eliminates the disassembly step, avoiding damage to the cover plate or outer frame structure during disassembly, and especially preventing breakage at the snap-fit ​​joints.

[0022] 2. The motor can be installed without milling through the frame, which allows the frame to maintain its strength and better protect the internal motor. In addition, the reinforcing plate is set on the side wall of the frame's receiving groove, which supports the frame opening and improves the frame's bending strength, allowing the outer frame structure to maintain its strength and thus better protect the motor.

[0023] 3. The reinforcing plate is made of steel, which greatly improves the strength of the frame and prevents the frame from deforming towards the inside of the receiving groove, thus avoiding a reduction in the space of the receiving groove due to frame deformation. It also improves the bending strength at the closed opening of the frame. Since the frame is made of aluminum, the steel plate is stronger than aluminum, resulting in a greater overall improvement in the strength of the profile structure.

[0024] 4. When the cover plate rotates in the first direction, the first and second adsorption components attract each other. Because the buffer component limits and blocks the first side plate, the first and second adsorption components do not actually contact each other, resulting in a small gap between them. However, the suction force between the first and second adsorption components still exists. This prevents collisions between the first and second adsorption components, achieving good safety and quiet operation, while maintaining the attractive force.

[0025] 5. Both the first adsorption component and the buffer component face the first side plate. When the cover plate rotates in the first direction, the first side plate collides with the buffer component. By setting a reinforcing rib on the side of the clamping component away from the first side plate, the contact force of the clamping component will be greatly improved, and the situation of the clamping component breaking due to the impact of the first side plate will be avoided.

[0026] 6. An electrically operated lifting window includes a window body and a profile structure that allows for motor maintenance without disassembling the profile. The outer frame structure is located on one side of the window body, and the motor drives the window body to move vertically. The motor is concealed by the profile structure, resulting in a neat and aesthetically pleasing appearance that does not compromise the overall aesthetics of the window. Simultaneously, the motor is less susceptible to moisture damage, and can be repaired or replaced without disassembling the profile structure, significantly extending the motor's lifespan.

[0027] Other features and advantages of this application will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the application. The objectives and other advantages of this application may be realized and obtained by means of the structures pointed out in the description, claims and drawings. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in the embodiments of this application 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 some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0029] Figure 1 This is an overall side view of the electric lift window profile structure in the prior art;

[0030] Figure 2 This is an overall side view of the profile structure provided in an embodiment of this application;

[0031] Figure 3 A side view (closed state) of the profile structure provided in an embodiment of this application;

[0032] Figure 4 An overall side view (open state) of the profile structure provided in an embodiment of this application;

[0033] Figure 5 A side view of the frame provided in an embodiment of this application;

[0034] Figure 6 A side view of a clamping component provided in an embodiment of this application;

[0035] Figure 7 A side view of the cover plate provided in an embodiment of this application;

[0036] Figure 8 Side view of the frame and reinforcing plate provided in an embodiment of this application;

[0037] Figure 9 for Figure 8 View of the border and reinforcement plate from the C-direction.

[0038] Explanation of reference numerals in the attached figures:

[0039] 1. The motor's profile structure allows for maintenance without disassembling the profile; 100, frame; 110, receiving groove; 120, clamping groove; 130, fixing groove; 140, reinforcing groove; 200, reinforcing plate; 300, clamping component; 310, clamping part; 311, clamping hook; 320, fixing part; 321, rotating fulcrum; 322, buffer groove; 323, buffer component; 324, first adsorption groove; 325, first adsorption component; 330, reinforcing rib; 331. Arc-shaped surface; 400, nut; 500, bolt; 600, cover plate; 610, first side plate; 611, second adsorption groove; 612, second adsorption component; 613, rotating groove; 620, second side plate; 700, electric lifting window profile structure; 710, fixed frame; 711, curved arm groove; 712, locking point; 713, sealing rib; 720, cover; 721, curved arm; 722, locking arm; A, first direction; B, second direction; 8, motor. Detailed Implementation

[0040] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0041] To enable those skilled in the art to better understand the technical solutions in this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0042] It should be noted that when a component is referred to as being "fixed to" or "set on" another component, it can be directly on or indirectly set on the other component; when a component is referred to as being "connected to" another component, it can be directly connected to or indirectly connected to the other component.

[0043] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0044] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" or "several" means two or more, unless otherwise explicitly specified.

[0045] It should be noted that the structures, proportions, sizes, etc., shown in the accompanying drawings of this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed in the specification, and are not intended to limit the conditions under which this application can be implemented. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size should still fall within the scope of the technical content disclosed in this application, provided that they do not affect the effects and purposes that this application can produce.

[0046] This application proposes an electrically operated lifting window, including a window body and a profile structure that allows maintenance of the motor without disassembling the profile. The outer frame structure is located on one side of the window body, and the motor drives the window body to move in the vertical direction.

[0047] This application proposes a profile structure that allows for motor maintenance without disassembling the profile, applicable to motorized lifting windows, comprising:

[0048] The outer frame structure has an accommodating slot, and the motor is detachably installed in the accommodating slot;

[0049] The cover plate is rotatably connected to the outer frame structure to open or close the receiving slot. When the receiving slot is open, the motor can be removed from the receiving slot.

[0050] Please refer to Figures 2 to 9In one embodiment, a profile structure 1 that allows motor maintenance without disassembling the profile includes an outer frame structure and a cover plate 600. The outer frame structure has a receiving groove 110, in which the motor 8 is detachably disposed. The cover plate 600 is rotatably connected to the outer frame structure to open or close the receiving groove 110. When the receiving groove 110 is open, the motor 8 can be removed from the receiving groove 110. Specifically, when the user needs to repair or replace the motor 8, the receiving groove 110 can be opened by rotating the cover plate 600 relative to the outer frame structure, so that the user can repair or replace the motor 8 in the receiving groove 110.

[0051] It is worth noting that in existing technologies, the motor-driven lift window with a concealed motor design uses a snap-fit ​​connection for its profile. This requires disassembling external components to access or replace the internal motor 8, and the snap-fit ​​connection is highly susceptible to breakage during disassembly. Please refer to [reference needed]. Figure 1 In the existing technology, there is also an electric lifting window profile structure 700, where the fixed frame 710 is a closed profile. Therefore, during installation, the closed rib 713 must be milled through before the motor 8 can be installed inside the fixed frame 710. After the motor 8 is installed, the cover 720 must be installed to cover the gap in the fixed frame 710 after milling through the profile. The curved arm 721 and the curved arm groove 711 need to be installed together and rotated counterclockwise until the locking point 712 and the locking arm 722 are tightly fastened to prevent the cover 720 from falling off and causing a safety hazard.

[0052] In this application, by detachably housing the motor 8 within the receiving groove 110, when the user needs to repair or replace the motor 8, the receiving groove 110 is opened by rotating the cover plate 600 relative to the outer frame structure, facilitating the user's repair or replacement of the motor 8 within the receiving groove 110. After the motor 8 has been repaired or replaced, the receiving groove 110 is closed by rotating the cover plate 600 relative to the outer frame structure. Thus, this profile structure allows for maintenance of the motor 8 without disassembling the profile through rotation. Compared to existing technologies, this profile structure eliminates the disassembly step, avoiding damage to components during disassembly, especially preventing breakage at the snap-fit ​​joint. Furthermore, the motor 8 can be installed on the outer frame structure without milling through it, allowing the outer frame structure to maintain its strength and better protect the internal motor 8.

[0053] Please refer to Figure 3 and Figure 4 In one embodiment, one of the cover plate 600 or the outer frame structure has a rotation fulcrum 321, and the other of the cover plate 600 or the outer frame structure has a rotation groove 613. The rotation fulcrum 321 is disposed within the rotation groove 613 to allow the cover plate 600 to rotate about the center of the rotation fulcrum 321. Specifically, the receiving groove 110 is opened or closed by rotating the cover plate 600 about the center of the rotation fulcrum 321.

[0054] Please refer to Figure 5 , Figure 8 , Figure 9 In one embodiment, the outer frame structure includes a frame 100 and several reinforcing plates 200. The frame 100 has a receiving groove 110. The several reinforcing plates 200 are disposed on the side wall of the frame 100 in the receiving groove 110 to support the opening of the receiving groove 110. Specifically, the frame 100 is designed in a U-shape and is a non-closed profile. The side wall of the frame 100 in the receiving groove 110 is designed with a reinforcing groove 140, which is connected to the receiving groove 110. The two ends of the steel plate are detachably engaged in the reinforcing groove 140, so that the opening of the frame 100 is supported, that is, the opening of the receiving groove 110 is supported, and the strength of the frame 100 is strengthened, thereby improving the bending strength of the frame 100. The frame 100 profile is made of ordinary aluminum material, while steel is stronger than aluminum. Therefore, the reinforcing plates 200 are preferably steel plates, which greatly improves the strength of the frame 100. In addition, the reinforcing plate 200 can also prevent the frame 100 from deforming toward the inside of the receiving groove 110, thus preventing the space of the receiving groove 110 from becoming smaller due to the deformation of the frame 100.

[0055] Please refer to Figure 9 In one embodiment, the reinforcing plate 200 is a steel plate, and there are multiple reinforcing plates 200. When repairing or replacing the motor 8, since the reinforcing plates 200 are positioned away from the motor 8, each reinforcing plate 200 is evenly spaced from the adjacent reinforcing plates 200, and the width of the reinforcing plate 200 is 10cm, the user can reach into the receiving groove 110 to repair or replace the motor 8 without removing the reinforcing plate 200.

[0056] It is worth noting that currently available motorized lift windows require milling through the profile wall to install the motor into the window frame, in order to create sufficient space for insertion and achieve a concealed, aesthetically pleasing effect. However, this method compromises the original strength of the profile, increasing unnecessary material and labor costs and resulting in resource waste. Please refer to [reference needed]. Figure 1 In the existing technology, an electric lifting window profile structure 700 has a fixed frame 710 that is a closed profile. Therefore, during installation, the first step is to mill through the closed rib 713 to install the motor 8 inside the fixed frame 710 and to facilitate the later maintenance of the motor 8. However, at this time, the strength of the fixed frame 710 is greatly reduced, resulting in the original strength of the fixed frame 710 not being realized. After the motor 8 is installed, a cover 720 needs to be installed to cover the gap in the fixed frame 710 after milling through the profile. The bent arm 721 needs to be installed in conjunction with the bent arm groove 711 and rotated counterclockwise until the locking point 712 and the locking arm 722 are tightly fastened to prevent the cover 720 from falling off and causing a safety hazard.

[0057] Please refer to Figure 9In this application, the frame 100 can be installed without milling through it, so that the frame 100 can maintain its strength and better protect the internal motor 8. Furthermore, the reinforcing plate 200 is detachably provided on the side wall of the frame 100 in the receiving groove 110, so that the opening of the frame 100 is supported, the strength of the frame 100 is strengthened, thereby improving the bending strength of the frame 100, so that the motor 8 is better protected, and the strength of the frame 100 is demonstrated.

[0058] Please refer to Figure 3 , Figure 4 , Figure 6 , Figure 7 In one embodiment, the outer frame structure further includes a clamping member 300 and a cover plate 600. The clamping member 300 is clamped on the frame 100 and has a rotation fulcrum 321. The cover plate 600 has a rotation groove 613 and the rotation fulcrum 321 is located in the rotation groove 613 so that the cover plate 600 can rotate around the rotation fulcrum 321. Specifically, the pivot point 321 is spherical and is located within the rotating groove 613, allowing the cover plate 600 to rotate around the pivot point 321. The cover plate 600 is L-shaped, and the frame 100 is U-shaped, a non-closed profile. By rotating the cover plate 600 around the pivot point 321, the receiving groove 110 can be opened or closed. When the cover plate 600 rotates along the first direction A, the cover plate 600 and the frame 100 enclose the receiving groove 110, making the receiving groove 110 closed. When the cover plate 600 rotates along the second direction B, one end of the cover plate 600 moves away from the frame 100, making the receiving groove 110 open. By rotating the cover plate 600 relative to the frame 100, the receiving groove 110 is made open, facilitating user maintenance or replacement of the motor 8 within the receiving groove 110.

[0059] Please refer to Figure 3In one embodiment, the clamping member 300 has a first adsorption member 325 on the side facing away from the receiving groove 110, and the cover plate 600 has a second adsorption member 612 on the side facing the receiving groove 110. When the cover plate 600 rotates along the first direction A, the first adsorption member 325 and the second adsorption member 612 attract each other, and the receiving groove 110 closes simultaneously. Specifically, both the first adsorption member 325 and the second adsorption member 612 are magnets, so that when the cover plate 600 rotates along the first direction A, the first adsorption member 325 and the second adsorption member 612 attract each other. The clamping member 300 has a first adsorption groove 324 on the side opposite to the receiving groove 110. The first adsorption member 325 is clamped in the first adsorption groove 324. The first adsorption member 325 has a first magnetic hole. The bolt 500 passes through the first magnetic hole and is screwed into the clamping member 300 to fix the first adsorption member 325 in the first adsorption groove 324. The cover plate 600 has a second adsorption groove 611 on the side facing the receiving groove 110. The second adsorption member 612 is clamped in the second adsorption groove 611. The second adsorption member 612 has a second magnetic hole. The second fastener passes through the second magnetic hole and is screwed into the cover plate 600 to fix the second adsorption member 612 in the second adsorption groove 611. When the cover plate 600 rotates in the first direction A, the second adsorption member 612 on the cover plate 600 attracts the first adsorption member 325 on the clamping member 300, and the receiving groove 110 is closed, while preventing the cover plate 600 from falling off.

[0060] Please refer to Figure 3 In one embodiment, the cover plate 600 is provided with a first side plate 610 and a second side plate 620. The first side plate 610 and the second side plate 620 are fixedly connected and form an L-shape. A rotating groove 613 is provided at the end of the first side plate 610 away from the second side plate 620. The rotating groove 613 is a semi-circular arc groove. A second adsorption groove 611 is provided on the side of the first side plate 610 facing the receiving groove 110. The second adsorption member 612 is engaged in the second adsorption groove 611. Specifically, the user can hold the second side plate 620 to rotate the cover plate 600 along the first direction A, so that the second adsorption member 612 on the first side plate 610 attracts the first adsorption member 325 on the clamping member 300, so that the receiving groove 110 is in a closed state.

[0061] Please refer to Figure 4 In one embodiment, when the second adsorption member 612 on the first side plate 610 attracts the first adsorption member 325 on the clamping member 300, the end of the second side plate 620 away from the first side plate 610 has a certain distance from the frame 100, so that the user can put his hand into the receiving groove 110 and hold the second side plate 620 to rotate the cover plate 600 along the second direction B, so that the receiving groove 110 is in an open state.

[0062] Please refer to Figure 3In one embodiment, the clamping member 300 has a buffer member 323 on the side opposite to the receiving groove 110. When the receiving groove 110 is closed, the buffer member 323 abuts against the cover plate 600. Specifically, the clamping member 300 has a buffer groove 322 on the side opposite to the receiving groove 110, and the buffer member 323 is clamped in the buffer groove 322. The buffer member 323 is preferably an adhesive strip. When the cover plate 600 rotates along the first direction A, the first adsorption member 325 and the second adsorption member 612 attract each other, while the buffer member 323 limits the first side plate 610 so that the first adsorption member 325 and the second adsorption member 612 are not tightly adsorbed together. Furthermore, the receiving groove 110 is in a closed state, and the cover plate 600 will not fall off or shake due to the action of the first adsorption member 325 and the second adsorption member 612. At the same time, it prevents the first adsorption member 325 and the second adsorption member 612 from colliding, achieving good safety and quiet operation.

[0063] Please refer to Figure 3 In one embodiment, when the cover plate 600 rotates along the first direction A, the first adsorption member 325 and the second adsorption member 612 attract each other. However, because the buffer member 323 limits the first side plate 610, the first adsorption member 325 and the second adsorption member 612 do not actually contact each other, and there will be a gap of about 2mm between the first adsorption member 325 and the second adsorption member 612, but the attraction force still exists. In this way, the collision between the first adsorption member 325 and the second adsorption member 612 can be prevented, achieving good safety and quiet operation, while the attraction force still exists.

[0064] In another embodiment, the buffer 323 limits the first side plate 610, and the first adsorption member 325 is still in actual contact with the second adsorption member 612, but the collision sound between the first adsorption member 325 and the second adsorption member 612 is greatly reduced.

[0065] Please refer to Figure 3 and Figure 4 In one embodiment, the clamping member 300 has a reinforcing rib 330 on the side facing the receiving groove 110 and away from the first side plate 610. Specifically, when the cover plate 600 rotates along the first direction A, the first adsorption member 325 and the buffer member 323 both face the first side plate 610, causing the first side plate 610 to collide with the buffer member 323 or with the first adsorption member 325 and the buffer member 323. This causes the clamping member 300 to deform towards the receiving groove. Over time, this can easily lead to the clamping member 300 breaking. By providing a reinforcing rib 330 on the side of the clamping member 300 away from the first side plate 610, the contact force of the clamping member 300 will be greatly improved, preventing the clamping member 300 from breaking due to the impact of the first side plate 610.

[0066] Please refer to Figure 2In one embodiment, the frame 100 has a locking groove 120 on the side wall of the receiving groove 110 and near the end. The locking member 300 has a locking hook 311, which is locked in the locking groove 120. The frame 100 has a fixing groove 130 on one side of the locking groove 120. The outer frame structure also includes a nut 400 and a bolt 500. The nut 400 is locked in the fixing groove 130, and the bolt 500 passes through the locking member 300 and extends into the fixing groove 130 to be threadedly connected to the nut 400.

[0067] Please refer to Figure 2 In one embodiment, the clamping member 300 includes a clamping portion 310 and a fixing portion 320. The clamping portion 310 faces the frame 100, and a clamping hook 311, a nut 400, and a bolt 500 are all mounted on the clamping portion 310. The fixing portion 320 faces the first side plate 610, and a rotation fulcrum 321, a buffer 323, and a first suction member 325 are all mounted on the fixing portion 320. A reinforcing rib 330 is located between the clamping portion 310 and the fixing portion 320 and is fixedly connected to both, thereby enhancing the deformation capability of the clamping member 300. The side of the fixing portion 320 facing the receiving groove 110, between the fixing portion 320 and the reinforcing rib 330, is an arc-shaped surface 331, thereby enhancing the deformation capability of the clamping member 300.

[0068] Please refer to Figures 2 to 9 The specific implementation process of this application allows for the maintenance of the motor profile structure 1 without disassembling the profile. Applied to electric lifting windows, when a user needs to repair or replace the motor 8 in the receiving slot 110, they reach into the receiving slot 110 and grasp the second side plate 620 of the cover plate 600, rotating the cover plate 600 along the second direction B, so that the cover plate 600 rotates around the center of the rotation fulcrum 321. At this time, the receiving slot 110 is in an open state, and the user can repair or replace the motor 8 in the receiving slot 110. After the motor 8 is repaired or replaced, the cover plate 600 is rotated along the first direction A, so that the second suction member 612 attracts the first suction member 325, and at the same time, the first side plate 610 of the cover plate 600 abuts against the buffer member 323 of the clamping member 300. At this time, the receiving slot 110 is in a closed state, and the repair or replacement of the motor 8 is completed. The above process does not require disassembly of the profile structure, avoiding damage to the connection parts of the cover plate 600, clamping parts 300 or frame 100, and is simple and easy to use; before installing the motor 8, there is no need to mill through the profile structure, avoiding a reduction in the strength of the frame 100.

[0069] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A profile structure that allows for motor maintenance without disassembling the profile, applied to an electric lift window, characterized in that, include: The outer frame structure has an accommodating slot, and the motor is detachably installed in the accommodating slot; The cover plate is rotatably connected to the outer frame structure to open or close the receiving slot. When the receiving slot is open, the motor can be removed from the receiving slot. The outer frame structure includes a frame, several reinforcing plates, fasteners, and a cover plate. The frame has a horizontally oriented accommodating groove. Several reinforcing plates are disposed on the sidewalls of the frame in the accommodating groove to support the opening of the accommodating groove. The reinforcing plates are arranged along the extension direction of the frame and do not contact the motor. The reinforcing plates are located away from the motor. Each reinforcing plate is evenly spaced from its adjacent reinforcing plates. Users can reach into the accommodating groove to repair or replace the motor without removing the reinforcing plates. The clamping member is clamped onto the frame. The clamping member has a rotating fulcrum. The cover plate has a rotating groove. The rotating fulcrum is located in the rotating groove so that the cover plate can rotate around the center of the rotating fulcrum. The side of the clamping member away from the receiving groove has a first suction member. The side of the cover plate facing the receiving groove has a second suction member. When the cover plate rotates in the first direction, the first suction member and the second suction member attract each other, and the receiving groove closes at the same time. The cover plate is provided with a first side plate and a second side plate. The first side plate and the second side plate are fixedly connected to form an L-shape. A rotating groove is provided at the end of the first side plate away from the second side plate. The rotating groove is a semi-circular arc groove shape. The user can hold the second side plate to rotate the cover plate in a first direction, so that the second adsorption member on the first side plate attracts the first adsorption member on the clamping member, thereby making the receiving groove closed. When the second adsorption member on the first side plate attracts the first adsorption member on the clamping member, the end of the second side plate away from the first side plate has a gap with the frame, so that the user can put his hand into the receiving groove and hold the second side plate to rotate the cover plate in the second direction, so that the receiving groove is in an open state.

2. The profile structure for maintaining the motor without disassembling the profile as described in claim 1, characterized in that, The reinforcing plate is a steel plate.

3. The profile structure for maintaining the motor without disassembling the profile as described in claim 1, characterized in that, The clamping member has a buffer on the side opposite to the receiving groove. When the receiving groove is closed, the buffer abuts against the cover plate.

4. The profile structure for maintaining the motor without disassembling the profile as described in claim 1, characterized in that, The frame has a locking groove on the side wall of the receiving groove and at the adjacent end, and the locking member has a locking hook, which is engaged in the locking groove. The frame has a fixing groove on one side of the clamping groove. The outer frame structure also includes a nut and a bolt. The nut is clamped in the fixing groove, and the bolt passes through the clamping member and extends into the fixing groove to be threadedly connected to the nut.

5. The profile structure for maintaining the motor without disassembling the profile as described in claim 3, characterized in that, The clamping member has a first adsorption groove on the side opposite to the receiving groove, and the first adsorption member is clamped in the first adsorption groove to fix the first adsorption member in the first adsorption groove. The cover plate has a second adsorption groove on the side facing the receiving groove, and the second adsorption element is engaged in the second adsorption groove to fix the second adsorption element in the second adsorption groove. The clamping member has a buffer groove on the side opposite to the receiving groove, and the buffer member is clamped in the buffer groove.

6. An electrically operated lifting window, characterized in that, The device includes a window and a profile structure as described in any one of claims 1 to 5 that allows for motor maintenance without disassembly of the profile. The outer frame structure is located on one side of the window, and the motor drives the window to move in the vertical direction.