A slide rail connector for a drawer
Patent Information
- Application Number
- CN202521252705.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-18
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-06-18
AI Technical Summary
[0003]现有的抽屉滑轨主要用于连接抽屉和柜体,以实现抽屉的顺畅开合,然而,在实际安装过程中,滑轨与抽屉之间常常会出现横向偏差,导致抽屉无法正常安装或开合不畅,用户需要将已固定的滑轨拆卸下来重新调整位置,严重影响装配效率
本实用新型通过设置安装在滑轨的弹性连接件、以及安装在抽屉的连接基座,连接基座设有横向调节机构,横向调节机构包括驱动件和锁定件,连接基座通过锁定件与弹性连接件连接,当需要调节滑轨和抽屉的横向偏差时,用户能够利用驱动件,以使得锁定件能够带动弹性连接件相对连接基座移动,从而调整滑轨和抽屉的横向偏差,无需拆卸滑轨,大大简化了安装步骤,有效解决了现有滑轨在实际安装过程中,滑轨和抽屉之间常常存在横向偏差,用户需要将已固定的滑轨拆卸下来重新调整位置,严重影响装配效率的问题。
Smart Images

Figure CN224654927U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of drawer slide connection technology, specifically a drawer slide connector. Background Technology
[0002] As people's living standards continue to improve and their demands for quality home life increase, drawer slides are being used more and more widely in various types of furniture. As an important connecting component, drawer slides can effectively improve the opening and closing performance of drawers, making drawer use smoother and more convenient.
[0003] Existing drawer slides are mainly used to connect drawers and cabinets to enable smooth opening and closing of drawers. However, in actual installation, lateral deviations often occur between the slides and the drawers, causing the drawers to fail to install properly or to open and close poorly. Users need to disassemble the fixed slides and readjust their positions, which seriously affects assembly efficiency.
[0004] This utility model was proposed in response to the shortcomings of the existing technology. Utility Model Content
[0005] Regarding the aforementioned problem that existing drawer slides often exhibit lateral misalignment between the slides and drawers during actual installation, requiring users to disassemble the fixed slides and readjust their positions, severely impacting assembly efficiency, the technical solution adopted by this utility model to solve this problem is: A drawer slide connector includes an elastic connector mounted on the slide and a connecting base mounted on the drawer. The connecting base is provided with a lateral adjustment mechanism, which includes a drive member and a locking member connected to the drive member. The connecting base is connected to the elastic connector through the locking member. When the drive member is driven, the locking member causes the elastic connector to move relative to the connecting base.
[0006] Furthermore, the connecting base is provided with a height adjustment component that is connected to the drawer. The height adjustment component is movably installed on the connecting base to adjust the gap between the drawer and the slide rail in the vertical direction.
[0007] Furthermore, the connecting base is provided with a mounting groove for mounting a driving component. The driving component is an adjusting wheel that is movably disposed in the mounting groove. One end of the locking component is threadedly connected to the adjusting wheel. When the adjusting wheel is rotated, the locking component moves relative to the connecting base.
[0008] Furthermore, the elastic connector includes a positioning protrusion, and the locking member is provided with a positioning groove. The positioning protrusion and the positioning groove are interlocked to limit the installation position of the connecting base and the elastic connector.
[0009] Furthermore, the elastic connector includes a first locking tooth located near the locking member and a actuating surface connected to the first locking tooth. The locking member is provided with a second locking tooth that engages with the first locking tooth. When the actuating surface is moved by force, the elastic connector undergoes elastic deformation, so that the first locking tooth can move closer to or further away from the second locking tooth.
[0010] Furthermore, the height adjustment component includes a height adjustment surface connected to the bottom of the drawer and a height adjustment portion located on the side of the height adjustment surface away from the bottom of the drawer. The elastic connector includes a contact end surface connected to the height adjustment portion. The height adjustment portion is arc-shaped, and the thickness of the height adjustment portion gradually increases from the side close to the contact end surface to the side away from the contact end surface.
[0011] Furthermore, the height adjustment component includes a toggle block, and the connecting base is provided with a toggle groove that is arc-shaped and into which the toggle block extends. The bending angle of the toggle groove is the same as the bending angle of the height adjustment part. When the toggle block moves along the extension direction of the toggle groove, the height adjustment part rotates relative to the contact end face to adjust the gap between the drawer and the slide rail in the vertical direction.
[0012] Furthermore, the connecting base is provided with a spacing adjustment component for adjusting the distance between the slide rail and the drawer panel. The spacing adjustment component has an inclined spacing adjustment surface on the side near the slide rail. A sliding mechanism is provided between the spacing adjustment component and the connecting base. The spacing adjustment component can move relative to the connecting base through the sliding mechanism to move closer to or further away from the slide rail.
[0013] Furthermore, the sliding mechanism includes a groove located on the connecting base and a sliding surface located on the spacing adjustment member and slidably connected to the groove.
[0014] Furthermore, the slide groove is provided with a locking post protruding towards the sliding surface, and the sliding surface is provided with a locking groove that cooperates with the locking post, and the locking groove is spaced apart along the length direction of the sliding surface.
[0015] The beneficial effects of this utility model are as follows: This utility model incorporates an elastic connector installed on the slide rail and a connecting base installed on the drawer. The connecting base is equipped with a lateral adjustment mechanism, which includes a driving component and a locking component. The connecting base is connected to the elastic connector via the locking component. When it is necessary to adjust the lateral deviation between the slide rail and the drawer, the user can use the driving component to move the locking component relative to the connecting base, thereby adjusting the lateral deviation between the slide rail and the drawer without disassembling the slide rail. This greatly simplifies the installation process and effectively solves the problem that in the actual installation of existing slide rails, there is often a lateral deviation between the slide rail and the drawer, requiring the user to disassemble the fixed slide rail and readjust its position, which seriously affects the assembly efficiency.
[0016] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0017] Figure 1 This is one of the exploded and partially enlarged schematic diagrams showing the connection between the elastic connector and the connecting base of this utility model; Figure 2 This is a second exploded view and a partially enlarged view showing the connection between the elastic connector and the connecting base of this utility model. Figure 3 This is the third exploded view and a partially enlarged view of the connection between the elastic connector and the connecting base of this utility model; Figure 4 This is the fourth exploded view and a partially enlarged view of the connection between the elastic connector and the connecting base of this utility model; Figure 5 This is one of the exploded schematic diagrams of the connecting base of this utility model; Figure 6 This is the second exploded view of the connecting base of this utility model; Figure 7 This is the third exploded view of the connecting base of this utility model. Detailed Implementation
[0018] The embodiments of this utility model will now be described in detail with reference to the accompanying drawings.
[0019] like Figures 1 to 7 The drawer slide connector shown includes an elastic connector 1 mounted on the slide rail and a connecting base 2 mounted on the drawer. The connecting base 2 is provided with a lateral adjustment mechanism 3, which includes a driving member 31 and a locking member 32 connected to the driving member 31. The connecting base 2 is connected to the elastic connector 1 through the locking member 32. When the driving member 31 is driven, the locking member 32 causes the elastic connector 1 to move relative to the connecting base 2. This utility model incorporates an elastic connector installed on the slide rail and a connecting base installed on the drawer. The connecting base is equipped with a lateral adjustment mechanism, which includes a driving component and a locking component. The connecting base is connected to the elastic connector via the locking component. When it is necessary to adjust the lateral deviation between the slide rail and the drawer, the user can use the driving component to move the locking component relative to the connecting base, thereby adjusting the lateral deviation between the slide rail and the drawer without disassembling the slide rail. This greatly simplifies the installation process and effectively solves the problem that in the actual installation of existing slide rails, there is often a lateral deviation between the slide rail and the drawer, requiring the user to disassemble the fixed slide rail and readjust its position, which seriously affects the assembly efficiency.
[0020] Specifically, the connecting base 2 is installed at the bottom of the drawer, the elastic connector 1 is installed on the slide rail, and the locking member 32 cooperates with the elastic connector 1 to connect the slide rail and the drawer. When it is necessary to adjust the lateral deviation between the slide rail and the drawer, the driving member 31 is driven, and the locking member 32 is connected to the slide rail through the elastic connector 1 so that the locking member 32 can drive the slide rail to move laterally relative to the connecting base 2, thereby adjusting the lateral deviation between the drawer and the slide rail.
[0021] Optionally, in some embodiments, the connecting base 2 is provided with a mounting groove with a cross-section in the shape of an "I". The driving component 31 is a driving slider installed in the mounting groove. The driving slider may be provided with a driving handle. One end of the driving slider is connected to the locking component 32. When it is necessary to adjust the lateral deviation between the slide rail and the drawer, the user pushes the driving slider. The driving slider drives the locking component 32 to move laterally, so that the locking component 32 can drive the slide rail to move laterally relative to the connecting base 2, thereby adjusting the lateral deviation between the drawer and the slide rail.
[0022] Furthermore, as a preferred embodiment of this utility model and not a limitation thereof, the connecting base 2 is provided with a mounting groove 21 for mounting the driving component 31. The driving component 31 is an adjusting wheel 311 movably disposed in the mounting groove 21. One end of the locking component 32 is threadedly connected to the adjusting wheel 311. When the adjusting wheel 311 is rotated, the locking component 32 moves laterally relative to the connecting base 2, thereby adjusting the lateral deviation of the drawer and the slide rail.
[0023] Optionally, the locking component 32 is integrally molded. The integrally molded locking component 32 has no splicing or assembly gaps, making the overall structure more robust and able to withstand greater tension, pressure and torque, reducing the risk of failure due to loosening or breakage of the connection parts. Secondly, since there are no welding points or connection parts, the integrally molded locking component 32 can distribute stress more evenly when under force, avoiding local damage caused by stress concentration, thereby extending its service life.
[0024] Optionally, the resilient connector 1 may be made of a resilient metal material, such as spring steel or aluminum alloy.
[0025] Optionally, the resilient connector 1 may be made of a resilient plastic material, such as polyoxymethylene or nylon.
[0026] like Figures 1 to 7 The connecting base 2 shown is provided with a height adjustment component 4 connected to the drawer. The height adjustment component 4 is movably installed on the connecting base 2 to adjust the gap between the drawer and the slide rail in the vertical direction. Furthermore, during the furniture production or installation process, drawers may have certain manufacturing errors or uneven installation. By setting the height adjustment component 4, users can fine-tune the vertical gap between the drawer and the slide rail according to the actual situation. For example, when the bottom of the cabinet is slightly uneven, causing the drawer to be higher on one side than the other after installation, the height adjustment component 4 in the corresponding position can be adjusted to make the drawer level, ensuring that the drawer can be smoothly installed into the cabinet, thus improving the flexibility and adaptability of the installation.
[0027] Furthermore, when multiple drawers are used in combination, drawers of the same height will make the whole furniture look neater and more beautiful. The height adjustment piece 4 can help users or installers ensure that each drawer is adjusted to the same level, so that the drawers are arranged neatly, which helps to enhance the overall aesthetics of the furniture.
[0028] Furthermore, the height adjustment component 4 is integrally molded, which eliminates gaps in splicing or assembly, making the overall structure more robust and able to withstand greater loads and impacts, reducing the risk of failure due to loosening or breakage of connection parts. Secondly, the integrally molded height adjustment component 4 eliminates the need for complex assembly, avoiding component loosening or positional deviations caused by assembly errors, which helps improve the reliability and stability of the equipment.
[0029] Optionally, in some embodiments, the height adjustment component 4 is an adjustment bolt. The connecting base 2 is provided with a threaded hole. The threaded part of the adjustment bolt matches the threaded hole on the connecting base 2. The end of the adjustment bolt is connected to the bottom of the drawer through an adapter. The adapter can be a rotatable connector. When it is necessary to adjust the height of the drawer, the adjustment bolt is rotated, and the threaded part of the bolt moves up and down in the threaded hole, pushing or pulling back the bottom of the drawer, thereby realizing the fine adjustment of the gap between the drawer and the slide rail in the vertical direction.
[0030] Optionally, in some embodiments, the height adjustment component 4 consists of a wedge block and a pushing device. The wedge block is installed between the connecting base 2 and the drawer, and the inclined surface of the wedge block contacts the bottom of the drawer. The pushing device can be a screw, slider, etc., used to push the wedge block to move horizontally. When the wedge block is moved horizontally by the pushing device, the drawer will be displaced vertically due to the inclined surface of the wedge block. When the wedge block moves to the higher end of the inclined surface, the drawer rises, and when it moves to the lower end of the inclined surface, the drawer lowers. By controlling the horizontal movement distance of the wedge block, the gap between the drawer and the slide rail in the vertical direction can be finely adjusted.
[0031] Furthermore, as a preferred embodiment of the present invention and not a limitation thereof, the height adjustment member 4 includes a height adjustment surface 41 connected to the drawer and a height adjustment part 42 located on the side of the height adjustment surface 41 away from the drawer. The elastic connector 1 is provided with a contact end surface 14 connected to the height adjustment part 42. The height adjustment part 42 is arc-shaped, and the thickness of the height adjustment part 42 gradually increases from the side close to the contact end surface 14 to the side away from the contact end surface 14. The height adjustment part 42 also includes a toggle block 43. When the user moves the toggle block 43, the height adjustment part 42 rotates relative to the contact end surface 14. Due to the continuous change in the thickness of the height adjustment part 42, the gap between the drawer and the slide rail in the vertical direction can change.
[0032] like Figures 1 to 7 The connecting base 2 shown is provided with a mounting groove 21 for mounting a driving component 31. The driving component 31 is an adjusting wheel 311 movably disposed in the mounting groove 21. One end of the locking component 32 is threadedly connected to the adjusting wheel 311. When the adjusting wheel 311 is rotated, the locking component 32 moves relative to the connecting base 2. Furthermore, by rotating the adjusting wheel 311, the locking member 32 can move relative to the connecting base 2, so that the user can precisely adjust the relative position of the elastic connecting member 1 and the connecting base 2 according to actual needs, so as to solve the problem of lateral deviation that occurs during the installation of the drawer slide rail and ensure the precise alignment of the drawer and the slide rail.
[0033] Furthermore, the mounting groove 21 provides support and limits for the adjusting wheel 311, ensuring its stability during rotation and preventing it from shaking or shifting. This makes the movement of the locking element 32 smoother and more accurate, which helps improve the reliability of the entire adjusting mechanism.
[0034] Furthermore, the adjusting wheel 311 is set in the mounting groove 21, so that the structure of the entire adjusting mechanism is more compact, reducing the occupation of surrounding space, which is conducive to the installation and adjustment of drawer slides in a limited space and improves space utilization.
[0035] like Figures 1 to 7 The elastic connector 1 shown includes a positioning protrusion 11, and the locking member 32 is provided with a positioning groove 321. The positioning protrusion 11 and the positioning groove 321 are inserted into each other to restrict the installation position of the connecting base 2 and the elastic connector 1. Furthermore, the insertion and engagement of the positioning protrusion 11 and the positioning groove 321 can provide a clear installation reference point, which helps to ensure that the elastic connector 1 and the connecting base 2 can be quickly and accurately aligned during initial installation, thus helping to reduce errors during the installation process and effectively improving the reliability of the installation.
[0036] Furthermore, the plug-in structure increases the contact area and connection strength between the elastic connector 1 and the connecting base 2 to a certain extent, making the connection between the two more stable and better able to withstand various forces generated during the use of the drawer.
[0037] Furthermore, the positioning protrusion 11 and positioning groove 321 are designed to make the installation process more intuitive and faster. Installers only need to align the positioning protrusion 11 with the positioning groove 321 and insert it to complete the initial positioning. No additional alignment tools or complicated adjustment steps are required, which greatly saves installation time and effort.
[0038] like Figures 1 to 7 The elastic connector 1 shown includes a first locking tooth 12 located near the locking member 32 and a moving surface 13 connected to the first locking tooth 12. The locking member 32 is provided with a second locking tooth 322 that engages with the first locking tooth 12. When the moving surface 13 is moved by force, the elastic connector 1 undergoes elastic deformation, so that the first locking tooth 12 can move closer to or away from the second locking tooth 322. Specifically, the slide rails are installed on the inner side wall of the cabinet, and the connecting base 2 is installed at the bottom of the drawer. In actual use, there are two sets of slide rails, which are installed on both sides of the inner side wall of the cabinet, and there are also two connecting bases 2, which are installed at the bottom of the drawer.
[0039] Furthermore, when the first locking tooth 12 engages with the second locking tooth 322, the connection between the elastic connector 1 and the locking member 32 becomes very firm, which can effectively prevent the drawer from loosening or falling off due to external force during use, and ensure the stable operation of the drawer.
[0040] Furthermore, by moving the actuating surface 13, the elastic connector 1 undergoes elastic deformation, and the first locking tooth 12 and the second locking tooth 322 can be quickly separated to achieve rapid unlocking, so that users can easily operate when they need to disassemble or adjust the drawer without complicated tools or steps.
[0041] Furthermore, the first teeth 12 and the second teeth 322 are both arranged at intervals along the length direction of the slide rail. A plurality of first teeth 12 and second teeth 322 are engaged and connected. During the daily use of the drawer, when subjected to external forces, such as the pulling force during the opening and closing of the drawer, the pressure generated by placing items, etc., these forces can be evenly distributed to each tooth. Compared with the connection method of a single point or a few connection points, the multi-tooth engagement greatly improves the connection stability, reduces the stress borne by a single tooth, reduces the risk of tooth damage, and ensures the reliability of the connection between the slide rail and the connection base 2.
[0042] Furthermore, the first teeth 12 and the second teeth 322 both extend obliquely along the length direction of the slide rail. The tooth surface inclination directions of the first teeth 12 and the second teeth 322 are opposite. When the first teeth 12 and the second teeth 322 are engaged with each other, due to the opposite tooth surface inclination directions, when subjected to an external force along the length direction of the slide rail, such as the pulling force or pushing force generated during the normal opening and closing of the drawer, a mutually wedging force will be generated between the first teeth 12 and the second teeth 322, so that the first teeth 12 and the second teeth 322 are clamped tighter and tighter, forming a self-locking effect, preventing the teeth from accidentally disengaging during use, and greatly improving the connection stability and reliability.
[0043] Optionally, anti-slip stripes for increasing the friction are provided on the拨动面13.
[0044] Optionally, the anti-slip stripes are a number of horizontal stripes arranged in the horizontal direction. The stripes can be in the shape of shallow grooves, having a certain depth and width, to provide sufficient friction.
[0045] Optionally, the anti-slip stripes are a number of vertical stripes arranged in the vertical direction. The stripes can be in the shape of shallow grooves, having a certain depth and width, to provide sufficient friction.
[0046] Optionally, the anti-slip stripes are composed of a number of dot-like protrusions. These protrusions are evenly distributed on the拨动面13, forming a surface with a similar "sandblasted" effect. The dot-like protrusions can be circular or square, with a moderate height, to provide sufficient friction.
[0047] Optionally, the anti-slip stripes are cross-shaped horizontal and vertical stripes, forming a grid pattern similar to a "well" shape. The stripes can be in the shape of shallow grooves or protrusions, having a certain depth or height.
[0048] Such as Figures 1 to 7The height adjustment member 4 shown includes a height adjustment surface 41 connected to the bottom of the drawer and a height adjustment part 42 located on the side of the height adjustment surface 41 away from the bottom of the drawer. The elastic connector 1 includes a contact end surface 14 connected to the height adjustment part 42. The height adjustment part 42 is arc-shaped, and the thickness of the height adjustment part 42 gradually increases from the side close to the contact end surface 14 to the side away from the contact end surface 14. Furthermore, the arc-shaped and gradually thickened height adjustment part 42 can provide continuous height changes. When adjusting the gap between the drawer and the slide rail in the vertical direction, the user can adjust the relative position of the height adjustment part 42 and the contact end face 14 to achieve a slight change in the vertical position of the drawer, so that the drawer can accurately adapt to different installation environments and usage needs. For example, even if the cabinet floor is uneven, the drawer can be adjusted to a level and suitable position to ensure the normal opening and closing and use of the drawer.
[0049] Furthermore, when the arc-shaped height adjustment part 42 contacts the contact end face 14, it can distribute pressure over a larger contact area. When the drawer bears the weight of items, the pressure is transmitted to the height adjustment part 42 through the height adjustment surface 41, and then evenly distributed to the contact end face 14 by the height adjustment part 42. This helps to reduce local pressure concentration, reduce the risk of damage to the slide rail and height adjustment part 4, and extend their service life.
[0050] Furthermore, the arc-shaped height adjustment part 42 makes the height adjustment process simpler and more intuitive. Users can easily make fine adjustments to the gap between the drawer and the slide rail in the vertical direction by simply pushing or rotating the height adjustment part 4, without the need for complicated tools or operating procedures.
[0051] like Figures 1 to 7 The height adjustment component 4 shown includes a toggle block 43. The connecting base 2 is provided with a toggle groove 22 that is arc-shaped and into which the toggle block 43 extends. The bending angle of the toggle groove 22 is the same as the bending angle of the height adjustment part 42. When the toggle block 43 moves along the extension direction of the toggle groove 22, the height adjustment part 42 rotates relative to the contact end face 14 to adjust the gap between the drawer and the slide rail in the vertical direction. Specifically, both the height adjustment section 42 and the height adjustment surface 41 are arranged in the horizontal direction, and the toggle block 43 is arranged in the vertical direction. When the user moves the toggle block 43, the height adjustment section 42 can rotate in the horizontal direction relative to the contact end surface 14.
[0052] Furthermore, the bending angles of the actuating groove 22 and the height adjustment part 42 are the same, so that the movement of the actuating block 43 within the actuating groove 22 can precisely control the rotation angle of the height adjustment part 42, which is beneficial to achieve continuous height adjustment. Users can precisely adjust the gap between the drawer and the slide rail in the vertical direction by moving the actuating block 43 according to actual needs, to meet higher installation accuracy requirements.
[0053] Furthermore, users can easily adjust the vertical gap between the drawer and the slide rail simply by manually moving the toggle block 43, without the need for complicated tools or operating procedures, so that users can quickly master the adjustment method and improve the convenience of use.
[0054] Optionally, the actuating block 43 is also provided with anti-slip stripes to increase friction.
[0055] Furthermore, a guide post protrudes from one side of the actuating block 43, and the actuating groove 22 is provided with several guide grooves that cooperate with the guide post. The several guide grooves are spaced apart along the extension direction of the actuating groove 22 and are wavy. The cooperation between the guide post and the guide groove can effectively prevent the actuating block 43 from accidentally shifting or loosening when sliding in the actuating groove 22. When the guide post is inserted into the guide groove, the actuating block 43 is fixed in a specific position, thereby ensuring the stability of the height adjustment.
[0056] like Figures 1 to 7 The connecting base 2 shown is provided with a spacing adjustment component 5 for adjusting the distance between the slide rail and the drawer panel. The spacing adjustment component 5 has an inclined spacing adjustment surface 51 on the side near the slide rail. A sliding mechanism is provided between the spacing adjustment component 5 and the connecting base 2. The spacing adjustment component 5 can move relative to the connecting base 2 through the sliding mechanism to move closer to or further away from the slide rail. Furthermore, different furniture cabinets, drawer panels, and slides will have certain dimensional tolerances in actual production. At the same time, different users have different requirements for the aesthetics and ease of use between the drawer and the cabinet. The spacing adjustment component 5 can move relative to the connecting base 2 and be adjusted through the inclined spacing adjustment surface 51. It can accurately adjust the spacing between the slide and the drawer panel, so that the drawer can perfectly adapt to different installation environments and help ensure the installation effect.
[0057] Furthermore, by setting a sliding mechanism, the spacing adjustment piece 5 can easily move relative to the connecting base 2. Users can simply push or pull the spacing adjustment piece 5 to change the spacing between the slide rail and the drawer panel without the need for complicated tools and professional skills, which helps to reduce the difficulty of installation and adjustment and effectively improve work efficiency.
[0058] Furthermore, the spacing adjustment component 5 is integrally molded, which eliminates gaps in splicing or assembly, resulting in a more robust overall structure capable of withstanding greater loads and impacts, reducing the risk of failure due to loosening or breakage of connecting parts. Secondly, since there are no welding points or connecting parts, the integrally molded spacing adjustment component 5 can distribute stress more evenly when under load, avoiding localized damage caused by stress concentration, thereby extending its service life.
[0059] like Figures 1 to 7 The sliding mechanism shown includes a groove 61 located on the connecting base 2 and a sliding surface 62 located on the spacing adjustment member 5 and slidably connected to the groove 61; Furthermore, the cooperation between the slide groove 61 and the sliding surface 62 provides a smooth movement path for the spacing adjustment component 5, so that when adjusting the distance between the slide rail and the drawer panel, the user can easily push or pull the spacing adjustment component 5 to allow it to move smoothly on the connecting base 2 without having to overcome excessive friction or resistance, thus reducing the difficulty of operation and improving the adjustment efficiency.
[0060] Furthermore, the tight fit between the slide groove 61 and the sliding surface 62 creates a reliable connection between the spacing adjustment component 5 and the connecting base 2. During daily use of the drawer, even if subjected to certain external impacts or vibrations, the spacing adjustment component 5 can maintain a stable position and will not easily loosen or detach, thus ensuring the stability and reliability of the entire adjustment system.
[0061] Furthermore, the spacing adjustment component 5 is also provided with a spacing adjustment handle for moving the sliding surface 62, and the spacing adjustment handle is also provided with anti-slip stripes.
[0062] like Figures 1 to 7 The slide groove 61 shown is provided with a locking post 611 protruding towards the sliding surface 62, and the sliding surface 62 is provided with a locking groove 621 that cooperates with the locking post 611. The locking groove 621 is spaced apart along the length direction of the sliding surface 62. Furthermore, the slots 621 are spaced apart along the length of the sliding surface 62 and are wavy. Together with the locking pins 611, they can achieve multiple positioning positions of the spacing adjustment component 5. When adjusting the distance between the slide rail and the drawer panel, the user can insert the locking pins 611 into the slots 621 at different positions according to actual needs, thereby precisely controlling the tilt of the spacing adjustment surface 51, meeting different installation and usage requirements, and achieving precise spacing adjustment.
[0063] Furthermore, the cooperation between the locking post 611 and the locking groove 621 can effectively prevent the spacing adjustment component 5 from accidentally sliding due to factors such as vibration and external impact during use. Once the locking post 611 is engaged in the locking groove 621, it provides reliable fixation for the spacing adjustment component 5, ensuring that it maintains a stable position during daily use of the drawer, guaranteeing the stability of the distance between the drawer slide and the panel, and improving the reliability of the entire adjustment system.
[0064] Furthermore, the cooperation between the locking post 611 and the locking groove 621 increases the contact points between the sliding groove 61 and the sliding surface 62, which can more evenly distribute the external force borne by the spacing adjustment component 5 during use, reduce the situation of local stress concentration, help improve the structural stability of the entire sliding mechanism, reduce the risk of component damage caused by uneven force, and effectively extend the service life of the sliding mechanism.
[0065] The implementation method of Example 1 is as follows: A drawer slide connector includes an elastic connector 1 mounted on the slide rail and a connecting base 2 mounted on the drawer. The connecting base 2 is provided with a lateral adjustment mechanism 3, which includes a drive member 31 and a locking member 32 connected to the drive member 31. The connecting base 2 is connected to the elastic connector 1 through the locking member 32. When the drive member 31 is driven, the locking member 32 causes the elastic connector 1 to move relative to the connecting base 2.
[0066] This utility model incorporates an elastic connector installed on the slide rail and a connecting base installed on the drawer. The connecting base is equipped with a lateral adjustment mechanism, which includes a driving component and a locking component. The connecting base is connected to the elastic connector via the locking component. When it is necessary to adjust the lateral deviation between the slide rail and the drawer, the user can use the driving component to move the locking component relative to the connecting base, thereby adjusting the lateral deviation between the slide rail and the drawer without disassembling the slide rail. This greatly simplifies the installation process and effectively solves the problem that in the actual installation of existing slide rails, there is often a lateral deviation between the slide rail and the drawer, requiring the user to disassemble the fixed slide rail and readjust its position, which seriously affects the assembly efficiency.
[0067] The implementation method of Example 2 is as follows: Based on Example 1, Example 2 also has the following implementation method: The connecting base 2 is provided with a height adjustment component 4 connected to the drawer. The height adjustment component 4 can be movably installed on the connecting base 2 to adjust the gap between the drawer and the slide rail in the vertical direction.
[0068] The implementation method of Example 3 is as follows: Based on Example 1, Example 3 also has the following implementation method: The connecting base 2 is provided with a mounting groove 21 for mounting the driving component 31. The driving component 31 is an adjusting wheel 311 that is movably set in the mounting groove 21. One end of the locking component 32 is threadedly connected to the adjusting wheel 311. When the adjusting wheel 311 is rotated, the locking component 32 moves relative to the connecting base 2.
[0069] The implementation method of Example 4 is as follows: Based on Example 1, Example 4 also has the following implementation method: The elastic connector 1 includes a positioning protrusion 11, and the locking member 32 is provided with a positioning groove 321. The positioning protrusion 11 and the positioning groove 321 are inserted and engaged to limit the installation position of the connecting base 2 and the elastic connector 1.
[0070] The implementation method of Example 5 is as follows: Based on Embodiment 1, Embodiment 5 further includes the following implementation: The elastic connector 1 includes a first locking tooth 12 located near the locking member 32 and a moving surface 13 connected to the first locking tooth 12. The locking member 32 is provided with a second locking tooth 322 that engages with the first locking tooth 12. When the moving surface 13 is moved by force, the elastic connector 1 undergoes elastic deformation, so that the first locking tooth 12 can move closer to or further away from the second locking tooth 322.
[0071] The implementation method of Example 6 is as follows: Based on Example 2, Example 6 further includes the following implementation: The height adjustment member 4 includes a height adjustment surface 41 connected to the bottom of the drawer and a height adjustment part 42 located on the side of the height adjustment surface 41 away from the bottom of the drawer. The elastic connector 1 includes a contact end surface 14 connected to the height adjustment part 42. The height adjustment part 42 is arc-shaped, and the thickness of the height adjustment part 42 gradually increases from the side close to the contact end surface 14 to the side away from the contact end surface 14.
[0072] The implementation method of Example 7 is as follows: Based on Example 6, Example 7 further includes the following implementation: The height adjustment component 4 includes a toggle block 43, and the connecting base 2 is provided with a toggle groove 22 that is arc-shaped and into which the toggle block 43 extends. The bending angle of the toggle groove 22 is the same as the bending angle of the height adjustment part 42. When the toggle block 43 moves along the extension direction of the toggle groove 22, the height adjustment part 42 rotates relative to the contact end face 14 to adjust the gap between the drawer and the slide rail in the vertical direction.
[0073] The implementation method of Example 8 is as follows: Based on Example 1, Example 8 also has the following implementation method: The connecting base 2 is provided with a spacing adjustment component 5 for adjusting the distance between the slide rail and the drawer panel. The spacing adjustment component 5 is provided with an inclined spacing adjustment surface 51 on the side near the slide rail. A sliding mechanism is provided between the spacing adjustment component 5 and the connecting base 2. The spacing adjustment component 5 can move relative to the connecting base 2 through the sliding mechanism to move closer to or further away from the slide rail.
[0074] The implementation method of Example 9 is as follows: Based on Example 8, Example 9 also has the following implementation method: The sliding mechanism includes a sliding groove 61 located on the connecting base 2 and a sliding surface 62 located on the spacing adjustment member 5 and slidably connected to the sliding groove 61.
[0075] The implementation method of Example 10 is as follows: Based on Example 9, Example 10 also has the following implementation method: The slide groove 61 is provided with a locking post 611 protruding towards the sliding surface 62, and the sliding surface 62 is provided with a locking groove 621 that cooperates with the locking post 611. The locking grooves 621 are spaced apart along the length direction of the sliding surface 62.
[0076] The implementation method of Example 11 is as follows: The difference between Embodiment 11 and Embodiment 3 is that: the connecting base 2 is provided with a mounting groove with a cross-section in the shape of an "I" and the driving component 31 is a driving slider installed in the mounting groove. The driving slider may be provided with a driving handle. One end of the driving slider is connected to the locking component 32. When it is necessary to adjust the lateral deviation between the slide rail and the drawer, the user pushes the driving slider, and the driving slider drives the locking component 32 to move laterally, so that the locking component 32 can drive the slide rail to move laterally relative to the connecting base 2, thereby adjusting the lateral deviation between the drawer and the slide rail.
[0077] The implementation method of Example Twelve is as follows: The difference between Example 12 and Example 6 is that the height adjustment component 4 is an adjustment bolt, and the connecting base 2 is provided with a threaded hole. The threaded part of the adjustment bolt matches the threaded hole on the connecting base 2. The end of the adjustment bolt is connected to the bottom of the drawer through an adapter. The adapter can be a rotatable connector. When it is necessary to adjust the height of the drawer, rotate the adjustment bolt, and the threaded part of the bolt moves up and down in the threaded hole, pushing or pulling back the bottom of the drawer, thereby realizing the fine adjustment of the gap between the drawer and the slide rail in the vertical direction.
[0078] The implementation method of Example Thirteen is as follows: The difference between Example 13 and Example 6 is that the height adjustment component 4 consists of a wedge block and a pushing device. The wedge block is installed between the connecting base 2 and the drawer, and the inclined surface of the wedge block contacts the bottom of the drawer. The pushing device can be a screw, slider, etc., used to push the wedge block to move horizontally. When the wedge block is moved horizontally by the pushing device, the drawer will be displaced vertically due to the inclined surface of the wedge block. When the wedge block moves to the higher end of the inclined surface, the drawer rises, and when it moves to the lower end of the inclined surface, the drawer lowers. By controlling the horizontal movement distance of the wedge block, the gap between the drawer and the slide rail in the vertical direction can be finely adjusted.
[0079] The above examples are merely illustrative of the technical content of this utility model to facilitate reader understanding, but do not imply that the implementation of this utility model is limited to these embodiments. Any technical extensions or re-creations made based on this utility model are protected by this utility model. The scope of protection of this utility model is defined by the claims.
Claims
1. A drawer slide connector, comprising an elastic connector (1) mounted on the slide rail and a connecting base (2) mounted on the drawer, characterized in that: The connecting base (2) is provided with a lateral adjustment mechanism (3). The lateral adjustment mechanism (3) includes a driving member (31) and a locking member (32) connected to the driving member (31). The connecting base (2) is connected to the elastic connecting member (1) through the locking member (32). When the driving member (31) is driven, the locking member (32) drives the elastic connecting member (1) to move relative to the connecting base (2).
2. A drawer slide connector according to claim 1, characterized in that: The connecting base (2) is provided with a height adjustment component (4) that is connected to the drawer. The height adjustment component (4) can be movably installed on the connecting base (2) to adjust the gap between the drawer and the slide rail in the vertical direction.
3. A drawer slide connector according to claim 1, characterized in that: The connecting base (2) is provided with a mounting groove (21) for mounting a driving component (31). The driving component (31) is an adjusting wheel (311) movably disposed in the mounting groove (21). One end of the locking component (32) is threadedly connected to the adjusting wheel (311). When the adjusting wheel (311) is rotated, the locking component (32) moves relative to the connecting base (2).
4. A drawer slide connector according to claim 1, characterized in that: The elastic connector (1) includes a positioning protrusion (11), and the locking member (32) is provided with a positioning groove (321). The positioning protrusion (11) and the positioning groove (321) are inserted and engaged to limit the installation position of the connecting base (2) and the elastic connector (1).
5. A drawer slide connector according to claim 1, characterized in that: The elastic connector (1) includes a first locking tooth (12) located near the locking member (32) and a moving surface (13) connected to the first locking tooth (12). The locking member (32) is provided with a second locking tooth (322) that engages with the first locking tooth (12). When the moving surface (13) is moved by force, the elastic connector (1) undergoes elastic deformation so that the first locking tooth (12) can move closer to or further away from the second locking tooth (322).
6. A drawer slide connector according to claim 2, characterized in that: The height adjustment member (4) includes a height adjustment surface (41) connected to the bottom of the drawer and a height adjustment part (42) located on the side of the height adjustment surface (41) away from the bottom of the drawer. The elastic connector (1) includes a contact end surface (14) connected to the height adjustment part (42). The height adjustment part (42) is arc-shaped, and the thickness of the height adjustment part (42) gradually increases from the side close to the contact end surface (14) to the side away from the contact end surface (14).
7. A drawer slide connector according to claim 6, characterized in that: The height adjustment component (4) includes a toggle block (43). The connecting base (2) is provided with a toggle groove (22) that the toggle block (43) can extend into and is arranged in an arc shape. The bending angle of the toggle groove (22) is the same as the bending angle of the height adjustment part (42). When the toggle block (43) moves along the extension direction of the toggle groove (22), the height adjustment part (42) rotates relative to the contact end face (14) to adjust the gap between the drawer and the slide rail in the vertical direction.
8. A drawer slide connector according to claim 1, characterized in that: The connecting base (2) is provided with a spacing adjustment component (5) for adjusting the distance between the slide rail and the drawer panel. The spacing adjustment component (5) has an inclined spacing adjustment surface (51) on the side near the slide rail. A sliding mechanism is provided between the spacing adjustment component (5) and the connecting base (2). The spacing adjustment component (5) can move relative to the connecting base (2) through the sliding mechanism to move closer to or further away from the slide rail.
9. A drawer slide connector according to claim 8, characterized in that: The sliding mechanism includes a groove (61) located on the connecting base (2) and a sliding surface (62) located on the spacing adjustment member (5) and slidably connected to the groove (61).
10. A drawer slide connector according to claim 9, characterized in that: The slide groove (61) is provided with a locking post (611) protruding towards the sliding surface (62), and the sliding surface (62) is provided with a locking groove (621) that cooperates with the locking post (611). The locking groove (621) is spaced apart along the length direction of the sliding surface (62).