C-slot inlay mounting piece, damping dial member with same and damping dial system
By designing a C-groove embedded mounting component with adjustable width, combined with elastic and rigid elements, the damping actuator can be simplified and quickly replaced, solving the time-consuming and labor-intensive installation and replacement problems in the existing technology.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUANGDONG OPK SMART HOME TECH CO LTD
- Filing Date
- 2022-07-01
- Publication Date
- 2026-04-24
AI Technical Summary
Existing damping actuators require the removal of the door frame for installation and replacement, making the installation and replacement process time-consuming and labor-intensive, and difficult to replace after damage.
The mechanism employs a C-groove with adjustable width for embedded mounting. Through a combination of elastic and rigid elements, the mechanism body can be easily assembled and positioned within the C-groove. Screw fixing and guide ramps simplify the installation process.
It improves the installation efficiency of damping actuators, reduces the time spent on repeated disassembly and assembly, simplifies the replacement process, and reduces the difficulty of operation.
Smart Images

Figure CN115126388B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of hardware accessories, and more particularly to a C-groove embedded mounting component, a damping actuating component having the same, and a damping actuating system. Background Technology
[0002] In the prior art, the installation of accessories such as damping actuators requires that an accessory be installed in a mounting groove located in a narrow space, and that the accessory be inserted into the mounting groove from both ends of the mounting groove.
[0003] However, this method requires the accessories to be installed in the mounting slot before the ports at both ends are sealed, and the ports at both ends must be removed before the accessories can be inspected or replaced.
[0004] For example, in a sliding door damping system, the aforementioned mounting slot is located inside the upper door frame, and the aforementioned accessory is a damping actuator. If, during installation, the installer forgets to install the damping actuator before installing the left and right door frames onto both sides of the upper door frame, then it will be impossible to lower the damping actuator later. Reinstalling the damping actuator would require removing the left and right door frames, which would be too costly, time-consuming, and labor-intensive. Furthermore, if the existing damping actuator is damaged, the door frame would also need to be disassembled to replace the new damping actuator. Summary of the Invention
[0005] In order to overcome at least one of the defects described in the prior art, the present invention provides a C-groove in-slot mounting component.
[0006] The technical solution adopted by this invention to solve its problem is:
[0007] The mechanism body, whose width can be changed;
[0008] The mechanism body can enter the C-shaped groove from the opening of the C-shaped groove and is confined within the C-shaped groove.
[0009] The present invention employs a mechanism body with an adjustable width to enable easy installation and positioning of the mechanism body within a C-groove.
[0010] Furthermore, the mechanism body includes a first component and a second component;
[0011] The first component is an elastic element, and the second component is embedded in the first component.
[0012] Thus, the first component acts as the deformation subject of the mechanism body, changing the width of the mechanism body, while the second component acts as the backbone of the mechanism body, maintaining the stability of the mechanism body and controlling the change in the shape of the first component.
[0013] Furthermore, the first component is provided with a placement portion, and a first contact surface is provided on both sides of the placement portion. The second component is provided with a second contact surface on both sides. The second component is placed in the placement portion by contacting the first contact surface with the second contact surface.
[0014] Therefore, the second component is placed in the placement part of the first component, so the overall structure after the second component and the first component are assembled is more compact, effectively reducing the space occupation rate of the two components, and simplifying assembly.
[0015] Furthermore, the first contact surface is a first inclined surface that slopes downwards toward the middle of the first component, and the second contact surface is a second inclined surface that is adapted to the first contact surface.
[0016] As a result, the second component moves downward under its own weight, and can not only touch the bottom surface of the placement part, but also touch the two sides of the placement part. Thus, the first component can not only touch the bottom surface of the C-shaped groove, but also touch the two sides of the C-shaped groove.
[0017] Furthermore, the height of the second component is less than the depth of the placement portion, so that when placed in the placement portion, the top surface of the second component is lower than the top surface of the first component.
[0018] Therefore, the function of the top surface of the second component being lower than the top surface of the first component is that the second component has space to move upward, and the second component is not easy to fall out of the placement part; specifically, when the two sides of the first component are squeezed, the second component will move upward, which can increase the compression amount of the overall width of the C-groove embedded mounting part, making it easier to pass the C-groove embedded mounting part through the groove and install it into the C-groove.
[0019] Furthermore, the placement part is provided with at least two guide slots, and the second component is provided with a locking block that matches the guide slot. When the second component is installed in the placement part, the locking block is inserted into the guide slot for guiding the installation of the second component.
[0020] Therefore, during the process of installing the C-groove insert into or removing it from the C-groove, the second component will move in the placement section, and the positioning of the guide groove and the locking block can effectively prevent the second component from shifting.
[0021] Furthermore, the placement part is provided with a blocking block, and when the second component is installed in the placement part, the blocking block is located above the second component to restrict the movement of the second component.
[0022] Specifically, the second component is provided with a slot that matches the blocking block, and the blocking block engages with the slot to position the second component in the placement part.
[0023] Therefore, the blocking block can lock and limit the second component after the second component is fully installed in the placement part, effectively preventing the second component from falling out of the placement part and ensuring the normal use of the C-groove embedded mounting part.
[0024] Furthermore, the second component is provided with a threaded hole, and a screw is screwed into the threaded hole. Rotating the screw creates a helical push on the second component. The screw and the second component move in opposite directions, so that the second component compresses the first component.
[0025] Thus, the first component is fixed in the C-groove by the tightening force of the screws, thereby pressing the first component against the inner wall of the C-groove. The screws do not need to pass through the C-groove, thus effectively avoiding damage to the C-groove.
[0026] Furthermore, it also includes two auxiliary parts, which are respectively disposed at both ends of the first component;
[0027] The upper part of both sides of the auxiliary part is a guide slope, and the lower part is a positioning surface.
[0028] Therefore, the upper sides of the auxiliary part are guide slopes for guiding the C-groove embedded mounting part when it enters the C-groove from the groove opening; after the C-groove embedded mounting part is installed, the positioning surface of the auxiliary part can touch the two sides of the groove opening to perform preliminary simple positioning of the C-groove embedded mounting part.
[0029] Furthermore, a hollow slot is provided in the middle of the auxiliary part.
[0030] Thus, the empty slot is used to provide space to facilitate the compression of the first component.
[0031] Furthermore, a protrusion is provided at the bottom of the auxiliary part.
[0032] Therefore, a protrusion is provided at the bottom of the auxiliary part, which serves as a hand grip to push the first component and the second component to move within the C-groove.
[0033] Furthermore, an operating component is provided at the bottom of the mechanism body, and the width of the mechanism body can be changed by operating the operating component.
[0034] Therefore, the operating component can change the width of the mechanism body, thus the operating component can adjust the mechanism body to any width position and fix the mechanism body to that width position.
[0035] Furthermore, the mechanism body is provided with a spring sheet, one side of which is an operating surface. The operating member is located below the operating surface, so that when the operating member moves upward, the operating member can abut against the operating surface, causing the spring sheet to move outward from the mechanism body.
[0036] Therefore, the spring is extended outward by the actuating element and finally locked into the C-shaped groove.
[0037] Furthermore, the mechanism body is provided with a pusher, which is a worm gear or a rack and pinion plate;
[0038] The worm gear engages with the operating member so that when the operating member rotates, it drives the worm gear to move, causing the worm gear to move outward from the mechanism body; or
[0039] The rack plate engages with the operating member so that when the operating member rotates, it drives the rack plate to move, causing the rack plate to move outward from the mechanism body.
[0040] Therefore, after the mechanism body is installed in the C-groove, the worm or rack is driven by the operating components through meshing transmission. The worm or rack acts on the mechanism body, and the mechanism body opens in the C-groove, thereby realizing the installation of the mechanism body in the C-groove.
[0041] A damping actuating element includes a C-groove embedded mounting component and an actuating block, wherein the actuating element is disposed at the bottom of the C-groove embedded mounting component.
[0042] Therefore, the C-groove embedded mounting part can serve as the mounting base for the toggle block in the damping actuation part, making the installation of the toggle block more convenient and quick.
[0043] A damping actuation system includes a damping actuator and a slide rail for mounting a damping pulley. The top of the slide rail is provided with a C-shaped groove. The damping actuator is installed in the C-shaped groove and pressed against the inner wall of the C-shaped groove. The actuating block of the damping actuator extends downward from the opening of the C-shaped groove.
[0044] In summary, the C-groove embedded mounting component provided by this invention has the following technical effects:
[0045] The mechanism body can change its width to allow it to be inserted into the C-groove from the slot. This method of changing the width of the mechanism body through telescopic adjustment is simple to operate, avoids repeated disassembly and assembly of the mechanism body, reduces installation time, and improves installation efficiency. The damping actuation component includes a C-groove embedded mounting component and an actuation block. The C-groove embedded mounting component can serve as the mounting base for the actuation block in the damping actuation component, making the installation of the actuation block more convenient and quick. The damping actuation system includes a damping actuation component and a slide rail for mounting the damping pulley. The top of the slide rail is provided with a C-groove, and the C-groove embedded mounting component can be quickly installed in the C-groove. The quick installation feature of the damping actuation component improves the overall installation efficiency of the system. Attached Figure Description
[0046] Figure 1This is a schematic diagram of Embodiment 1 of the present invention;
[0047] Figure 2 This is an assembly diagram of the first and second components of Embodiment 2 of the present invention;
[0048] Figure 3 This is an exploded view of the first and second components of Embodiment 1 of the present invention;
[0049] Figure 4 This is a schematic diagram of Embodiment 2 of the present invention;
[0050] Figure 5 This is a schematic diagram of the C-shaped groove in Embodiment 2 of the present invention;
[0051] Figure 6 This is a first schematic diagram of Embodiment 3 of the present invention;
[0052] Figure 7 A second schematic diagram of Embodiment 3 of the present invention;
[0053] Figure 8 The third schematic diagram of Embodiment 3 of the present invention;
[0054] Figure 9 First schematic diagram of Embodiment 4 of the present invention;
[0055] Figure 10 A second schematic diagram of Embodiment 4 of the present invention;
[0056] Figure 11 First schematic diagram of Embodiment 5 of the present invention;
[0057] Figure 12 The second schematic diagram of Embodiment 5 of the present invention.
[0058] The meanings of the reference numerals in the attached figures are as follows:
[0059] 1. Mechanism body; 11. First component; 12. Second component; 2. C-groove; 21. Groove opening; 3. Placement part; 31. First contact surface; 32. Guide groove; 33. Blocking block; 41. Second contact surface; 42. Locking block; 43. Locking groove; 5. Threaded hole; 6. Screw; 7. Auxiliary part; 71. Guide slope; 72. Positioning surface; 73. Empty groove; 74. Protrusion; 8. Slide rail; 9. Actuating component; 10. Clearance groove; 13. Positioning groove; 14. Operating component; 141. Push rod; 142. Abutment ring; 143. Drive gear; 15. Spring piece; 16. Pushing body. Detailed Implementation
[0060] To better understand and implement this invention, the technical solutions in the embodiments of this invention will be clearly and completely described below with reference to the accompanying drawings.
[0061] In the description of this invention, it should be noted that the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., 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 invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0062] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.
[0063] Example 1
[0064] See Figure 1 This invention discloses a C-groove embedded mounting component, which includes:
[0065] C-shaped groove 2, which is a hollow profile, has a groove 21 on one side along its length.
[0066] The mechanism body 1 extends and retracts in its own width direction; specifically, the mechanism body 1 includes: a first component 11.
[0067] The width of the first component 11 is greater than the width of the slot 21. In order to insert the first component 11 from the slot 21 into the C-shaped slot 2, in this embodiment, the first component 11 is an elastic element. The first component 11 is compressed and rebounds in its own width direction. Therefore, after the middle part of the first component 11 is squeezed, the width of the first component 11 is less than the width of the slot 21. Thus, the first component 11 can be inserted into the C-shaped slot 2 or removed from the C-shaped slot 2.
[0068] Example 2
[0069] See Figure 2 , Figure 3 and Figure 4 To fix the C-groove embedded mounting component within the C-groove 2, based on Embodiment 1 or Embodiment 2, the mechanism body 1 includes:
[0070] The second component 12 is a rigid element. Its purpose is to embed the second component 11 into the first component 11 to support and shape the first component 11. Therefore, it can be known that the second component 12 can directly enter the C-shaped groove through the slot 21. The width of the second component 12 is smaller than the width of the slot 21.
[0071] The first component 11 and the second component 12 are assembled as follows: the top of the first component 11 is provided with a placement part 3. Specifically, the placement part 3 is a strip groove, and the two sides of the bottom of the strip groove are provided with inwardly protruding steps. After the second component 12 is inserted into the placement part 3, the bottom of the second component 12 abuts against the top surface of the steps.
[0072] Specifically, the placement part 3 has a first contact surface 31 on both sides, and the second component 12 has a second contact surface 41 on both sides. The second component 12 is placed in the placement part 3 by contacting the first contact surface 31 with the second contact surface 41.
[0073] More preferably, for the installation and positioning of the second component 12 in the placement part 3, the placement part 3 is provided with at least two guide grooves 32. In this embodiment, the number of guide grooves 32 is two, and the two guide grooves 32 are provided at both ends of the placement part 3. Correspondingly, the second component 12 is provided with a locking block 42 that matches the guide groove 32. When the second component 12 is installed in the placement part 3, the locking block 42 is inserted into the guide groove 32.
[0074] Furthermore, at least one blocking block 33 is provided on each side of the placement part 3, and the top of the second component 12 is provided with a slot 43 that matches the blocking block 33. When the second component 12 is installed in the placement part 3, the blocking block 33 is engaged in the slot 43. It should be noted that since the second component 12 can move up and down in the placement part 3, there is a gap between the bottom surface of the blocking block 33 and the bottom surface of the slot 43 when the blocking block 33 is installed in the placement part 3.
[0075] Specifically, the height of the second component 12 is less than the depth of the placement part 3, so that when placed in the placement part 3, the top surface of the second component 12 is lower than the top surface of the first component 11.
[0076] Furthermore, after the first component 11 is installed in the C-groove 2, the second component 12 is then installed in the placement part 3. Therefore, it is known that the second component 12 needs to be pushed into the placement part by external force. In this embodiment, since the internal space of the C-groove 2 is small, the second component 12 is pushed into the placement part 3 by the helical force of the thread. Therefore, the second component 12 is provided with, but is not limited to, two threaded holes 5.
[0077] The installation process of the C-groove inset mounting part and the C-groove 2 is as follows: First, install the second component 12 in the placement part 3, then pass the screw 6 through the bottom of the placement part 3 so that the screw 6 is at least partially screwed into the threaded hole 5, press the two sides of the first component 11, at this time the second component 12 slides to the top of the placement part 3 until the width of the first component 11 is less than the groove 21, then the C-groove inset mounting part can pass through the groove 21 and be installed in the C-groove 2. In particular, due to the limitation of the blocking block 33, when the second component 12 moves to the highest position, the bottom surface of the slot 43 will abut against the bottom surface of the blocking block 33.
[0078] After the C-groove insert is fully inserted into the C-groove 2, it extends and recovers to both sides under the elasticity of the first component 11. Therefore, the placement part 3 reopens. At this time, the second component 12 falls back into the placement part 3 under gravity, causing its bottom surface to abut against the top surface of the step at the bottom of the placement part 3. The screw 6 is then screwed into the C-groove 2, with one end passing through the second component 12 and abutting against the inner wall of the C-groove 2. Finally, the second component 12 moves towards the inner wall of the C-groove 2 on the side with the slot 21 under the action of a reverse spiral force, thus pressing the first component 11 tightly. Preferably, one end of the screw 6 has a hexagonal countersunk hole; a hexagonal wrench is inserted into the hexagonal countersunk hole, and the screw 6 is turned. Specifically, refer to... Figure 5 To prevent the end of the screw 6 that touches the inner wall of the C-shaped groove 2 from shifting, a positioning groove 13 is provided on the inner wall opposite to the groove 21. Therefore, one end of the screw 6 touches the positioning groove 13.
[0079] Based on this, the first contact surface 31 is further defined as a first inclined surface that slopes downward toward the middle of the first component 11; specifically, the two first contact surfaces 31 form an upward-opening V-shaped structure; the second contact surface 41 is a second inclined surface that matches the first contact surface 31. The purpose of not setting the above-mentioned inclined surface is that, according to the above, when the screw 6 pushes the second component 12 into the placement part 3, the second inclined surface presses against the first inclined surface. Therefore, the two sides of the first component 11 abut against the two inner walls of the C-shaped groove 2, thereby fixing the C-shaped groove embedded mounting part to the C-shaped groove 2.
[0080] More preferably, it also includes two auxiliary parts 7, which are respectively disposed at both ends of the first component 11; the upper part of both sides of the auxiliary parts 7 is a guide slope 71, and the lower part is a positioning surface 72; a slot 73 is provided in the middle of the auxiliary parts 7, and a protrusion 74 is provided at the bottom of the auxiliary parts 7.
[0081] Specifically, the distance between the two positioning surfaces 72 is slightly greater than the width of the slot 21, the position of the positioning surfaces 72 is lower than the position of the main body of the first component 11, and the two guide slopes 71 respectively taper and slope towards the middle of the auxiliary part 7 from the top of the two positioning surfaces 72 from bottom to top; the protrusion 74 is provided at the bottom of the auxiliary part 7.
[0082] The function of the auxiliary part 7 is as follows: when the C-shaped groove insert is installed into the C-shaped groove 2, the auxiliary part 7 is compressed at the same time as the first component 11. At this time, the empty groove 73 of the auxiliary part 7 is squeezed and closed. When the distance between the two positioning surfaces 72 is less than the width of the groove 21, the C-shaped groove insert can be installed into the C-shaped groove 2. Then, the compression of the auxiliary part 7 is released, and the two sides of the auxiliary part 7 abut against the two sides of the groove 21 respectively to form the initial positioning of the C-shaped groove insert. Then, the C-shaped groove insert is completely fixed by rotating the screw 6. It should be noted that after the C-shaped groove insert is installed, the protrusion 74 is located outside the C-shaped groove 2. The protrusion 74 can be used as an operating part to remove the C-shaped groove insert from the C-shaped groove 2 or to push the easy-to-install assembly to move in the C-shaped groove 2.
[0083] Example 3
[0084] When the C-slot embedded mounting parts of Embodiments 1 and 2 are applied to a damping actuation system, the damping actuation system further includes: a slide rail 8 and a damping actuation component. Specifically, the damping actuation component includes a C-slot embedded mounting part and an actuation component 9. In this embodiment, see [reference needed]. Figure 6 , Figure 7 and Figure 8 Taking the slide rail 8 as an example of the upper rail, it can be seen that the bottom of the slide rail 8 is provided with a clearance groove 10 for the installation of damping components during movement, and the clearance groove 10 is provided along the length direction of the slide rail 8.
[0085] Specifically, the C-shaped groove embedded mounting piece is installed on the inner top wall. Specifically, the C-shaped groove 2 of the C-shaped groove embedded mounting piece can be designed as an integral part of the slide rail 8. The C-shaped groove 2 is located directly above the clearance groove 10 of the slide rail 8, and at this time the groove opening 21 is located at the bottom of the C-shaped groove 2.
[0086] The actuating element 9 is located at the bottom of the auxiliary part 7, so the actuating element 9 and the protrusion 74 are located outside the C-groove 2. The actuating element 9 and the protrusion 74 can form a double actuating structure. After the actuating element 9 is located at the bottom of the auxiliary part 7, the C-groove embedded mounting part is installed in the C-groove 2 in the manner described above.
[0087] It should be noted that before the screw 6 completely fixes the C-groove embedded mounting part located in the C-groove 2, if it is necessary to adjust the position of the toggle 9, the positioning surfaces 72 on both sides of the auxiliary part 7 can be pressed to temporarily release the positioning surfaces 72 from contact with the track in order to move the mounting assembly.
[0088] The damping component passes through the clearance groove 10 and is located below the toggle member 9. When the damping component moves along the clearance groove 10, it will contact the toggle member 9 to trigger the damping mechanism.
[0089] Example 4
[0090] In this embodiment, the difference from Embodiment 1 is that the structure of the first component 11 is as follows: Specifically, the first component 11 includes two end seats and two clamping blocks. Specifically, the width of the end seats is smaller than the width of the slot 21. The two end seats are respectively connected to the two ends of the two clamping blocks to form a closed loop in series with the four components. In particular, the ends of the clamping blocks are slidably connected to the end seats. At the same time, in order to ensure the reset of the clamping blocks, a reset spring is provided between the ends of the clamping blocks and the end seats. The inner side of the clamping blocks is provided with a first contact surface 31. The position between the two first contact surfaces 31 is the placement part 3. The protrusion 74 is provided on the first contact surface 31.
[0091] Similarly, in this embodiment, the width of the first component 11 is adjusted as follows: the two clamping blocks are compressed in opposite directions. At this time, the reset spring is compressed, and the overall width of the first component 11 is less than the width of the slot 21, so it can pass through the slot 21 and be installed in the C-shaped slot 2. Then, under the elastic force of the reset spring, the clamping bodies push the two clamping bodies away from each other, and finally the first component 11 is engaged in the C-shaped slot 2.
[0092] Example 5
[0093] In this embodiment, refer to Figure 9 The C-groove embedded mounting component includes the mechanism body 1 and the operating component 14.
[0094] The mechanism body 1 includes a base and two spring pieces 15. The two spring pieces 15 are inclined to each other on the two sides of the top of the base. The inner side of the spring piece 15 is the operating surface. The width of the base is slightly smaller than the width of the slot 21 and the base is a rigid part. In particular, the thickness of the top of the spring piece 15 is greater than the thickness of the bottom.
[0095] The operating component 14 includes a push rod 141 and an abutment ring 142. The top end of the push rod 141 passes through the base and is finally located between two spring pieces 15. Preferably, the push rod 141 is threaded to the base, and the abutment ring 142 is disposed on the push rod 141 and located between the two spring pieces 15.
[0096] See Figure 10 In this embodiment, before the C-shaped groove embedded mounting component is installed in the C-shaped groove 2, its overall width is smaller than the width of the groove opening 21. Therefore, the installation process of the C-shaped groove embedded mounting component and the C-shaped groove 2 is as follows: the top of the mechanism body 1 passes through the groove opening 21 and enters the C-shaped groove 2. Then, the push rod 141 is pushed into the C-shaped groove 2. The abutment ring 142 abuts against the operating surfaces of the two spring pieces 15 respectively. The upper parts of the two spring pieces 15 move in opposite directions and open. Finally, the upper parts of the two spring pieces 15 abut against and press against the inner wall of the C-shaped groove 2. The push rod 141 is rotated to form a spiral push on the base. The push rod 141 and the base move in opposite directions so that the base and the push rod are also pressed against the upper and lower walls of the C-shaped groove 2 respectively. Thus, the C-shaped groove embedded mounting component is installed in the C-shaped groove 2.
[0097] Example 6
[0098] In this embodiment, refer to Figure 11 The C-groove embedded mounting component includes the mechanism body 1, the operating component 14, and the pushing body.
[0099] The pusher is disposed within the mechanism body 1. Specifically, the mechanism body 1 includes a base and an elastic body disposed on the base. The elastic body has a mounting groove in the middle. The pusher is disposed on the base and located in the mounting groove. Specifically, the width of the base is smaller than the width of the slot 21 of the C-shaped groove 2.
[0100] The operating component 14 includes a rotating rod and a drive gear 143. The rotating rod is rotatably mounted on the base, and the drive gear is mounted on the rotating rod and located in the mounting groove. Preferably, the pushing body is a worm, and there are two worms. The two worms are movably mounted in the mounting groove and symmetrically mesh with both sides of the drive gear 143. Under the drive of the drive gear 143, the two worms can respectively abut against the two inner walls of the mounting groove vertically.
[0101] In this embodiment, see Figure 12 Before being installed in C-slot 2, the overall width of the C-slot embedded mounting component is smaller than the width of slot 21. Therefore, the installation process of the C-slot embedded mounting component and C-slot 2 is as follows: the top of the mechanism body 1 passes through slot 21 and enters C-slot 2. Then, the rotating rod is rotated to drive the two worm gears to move in opposite directions and finally push the two side walls of the mounting slot to open outward. Finally, the elastic body abuts against and presses against the inner wall of C-slot 2. The rotating rod is rotated to form a spiral push on the mechanism body 1. The rotating rod and the mechanism body 1 move in opposite directions so that the mechanism body 1 and the rotating rod are also pressed against the upper and lower walls of C-slot 2 respectively. Thus, the C-slot embedded mounting component is installed in C-slot 2.
[0102] In other preferred embodiments, the worm gear can be replaced with a rack plate. Similarly, the two rack plates are symmetrically meshed on both sides of the drive gear 143. Under the drive of the drive gear 143, the two rack plates can respectively abut against the two inner walls of the mounting groove vertically. In particular, in order to increase the contact area between the rack plate and the inner wall of the mounting groove, an abutment plate is provided at the end of the rack plate that abuts against the inner wall of the mounting groove.
[0103] The technical means disclosed in this invention are not limited to those disclosed in the above embodiments, but also include technical solutions composed of any combination of the above technical features. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this invention, and these improvements and modifications are also considered within the scope of protection of this invention.
Claims
1. A C-groove embedded mounting component, characterized in that, include: The mechanism body (1) is capable of changing its width; The mechanism body (1) can enter the C-shaped groove from the slot opening (21) of the C-shaped groove (2) and is confined within the C-shaped groove; The mechanism body (1) includes a first component (11) and a second component (12); the first component (11) is an elastic element, the second component (12) is a rigid element, and the second component (12) is embedded in the first component (11); The first component (11) is provided with a placement part (3), which is a strip groove. Both sides of the strip groove are provided with a first contact surface (31). Both sides of the second component (12) are provided with a second contact surface (41). The second component (12) is placed in the strip groove by contacting the first contact surface (31) with the second contact surface (41). The second component (12) can move up and down in the strip groove. When the first component (11) is squeezed on both sides, the second component (12) can move upward relative to the strip groove, and the first component (11) can be inserted into the C-shaped groove (2) or removed from the C-shaped groove (2); after the first component (11) is completely inserted into the C-shaped groove (2), the second component (12) can move towards the inner wall of the C-shaped groove (2) with the groove opening (21) to press the bottom wall of the first component (11) against the inner wall of the C-shaped groove (2) with the groove opening (21).
2. The C-groove embedded mounting component according to claim 1, characterized in that, The first contact surface (31) is a first inclined surface that slopes downward toward the middle of the first component (11), and the second contact surface (41) is a second inclined surface that is adapted to the first contact surface (31).
3. The C-groove embedded mounting component according to claim 2, characterized in that, The height of the second component (12) is less than the depth of the strip groove, so that when placed in the strip groove, the top surface of the second component (12) is lower than the top surface of the first component (11).
4. The C-groove embedded mounting component according to claim 2, characterized in that, The strip groove is provided with at least two guide grooves (32), and the second component (12) is provided with a locking block (42) that matches the guide groove (32). When the second component (12) is installed in the strip groove, the locking block (42) is inserted into the guide groove (32) for guiding the second component (12).
5. The C-groove embedded mounting component according to claim 2, characterized in that, The strip groove is provided with a blocking block (33). When the second component (12) is installed in the strip groove, the blocking block (33) is located above the second component (12) to restrict the movement of the second component (12).
6. The C-groove embedded mounting component according to any one of claims 1-5, characterized in that, The second component (12) is provided with a threaded hole (5), and a screw (6) is screwed into the threaded hole (5). Rotating the screw (6) creates a helical push on the second component (12). The screw (6) moves in opposite directions to the second component (12) so that the second component (12) squeezes the first component (11).
7. The C-groove embedded mounting component according to any one of claims 1-5, characterized in that, It also includes two auxiliary parts (7), which are respectively disposed at both ends of the first component (11); The upper part of the auxiliary part (7) is a guide slope (71), and the lower part is a positioning surface (72).
8. The C-groove embedded mounting component according to claim 7, characterized in that, A slot (73) is provided in the middle of the auxiliary part (7).
9. The C-groove embedded mounting component according to claim 7, characterized in that, The bottom of the auxiliary part (7) is provided with a protrusion (74).
10. A damping actuating element, characterized in that, Includes a C-groove inset mounting member and a toggle block (9) as described in any one of claims 1-9, wherein the toggle block (9) is disposed at the bottom of the C-groove inset mounting member.
11. A damping actuation system, comprising a damping actuator as described in claim 10 and a slide rail (8) for mounting a damping pulley, wherein a C-groove (2) is provided on the top of the slide rail (8), the damping actuator is installed in the C-groove (2) and pressed against the inner wall of the C-groove (2), and the actuating block (9) of the damping actuator extends downward from the slot opening (21) of the C-groove (2).
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