Support structure and mirror cabinet
By designing a slider structure with a pivot and an elastic part, combined with a spring locking function, the problem that the bracket cannot be adjusted in height and rotated at the same time in the existing technology is solved, realizing the simple and efficient use of the bracket and improving the user experience.
Patent Information
- Application Number
- CN202423160156.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2034-12-20
AI Technical Summary
Existing hair dryer stands cannot adjust height and rotate simultaneously, resulting in complex structures, large space requirements, and limited practicality.
A slider structure was designed, which has a pivot part and an elastic part. The height and rotation can be adjusted by combining the sliders. Combined with the locking function of the spring, the structure is simplified and space is saved.
The height and rotation of the stand are adjustable, simplifying the structure, saving space, and improving the user experience, especially when used inside a mirror cabinet, where the hair dryer can be used without holding it.
Smart Images

Figure CN223759366U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of daily necessities technology, and in particular to a support structure and a mirror cabinet. Background Technology
[0002] Existing hair dryer holders use guide rails and sliders to adjust height. The sliders use elastic plastic to press against the guide rails, and the sliders are rigidly connected to the holder. This only allows for height adjustment, not lateral adjustment. Alternatively, a common rotating shaft can be used to mount the holder, allowing only rotation and not height adjustment. To achieve both height and rotation adjustment, the sliding and rotating mechanisms are usually separate, resulting in more parts, a less streamlined appearance, and space-consuming space inside bathroom cabinets, making them impractical. Utility Model Content
[0003] The present invention aims to at least partially solve one of the aforementioned technical problems in the related art. To this end, the present invention proposes a support structure.
[0004] To achieve the above objectives, the technical solution of this utility model is as follows:
[0005] This utility model also proposes a mirror cabinet with the above-mentioned support structure.
[0006] According to a first aspect embodiment of the present invention, a bracket structure includes a slide rail, a bracket connector, a slider, a first spring, and a fixed seat. One end of the bracket connector is formed with a first bushing, and the other end is connected to the fixed seat. The fixed seat is used to place an item. There are two sliders, each slider including a first main body, a rotating shaft, and an elastic part. The rotating shaft is located on the left side of the first main body, and the elastic part is located at the end of the first main body in the vertical direction. The elastic part can swing elastically in the left-right direction. The elastic part has a protrusion and a concave part in the vertical direction, and the concave part is located between the first main body and the elastic part. The two sliders are inserted into the first bushing one above the other through their respective rotating shafts. The first main bodies of the two sliders are slidably fitted into the slide groove of the slide rail. The first spring is located in the first bushing and abuts against the rotating shafts of the two sliders. The two sliders can slide towards each other until their respective protrusions slide into the concave parts of the other. The two sliders can move away from each other until their protrusions abut against each other so that their elastic parts abut against the groove wall.
[0007] The support structure according to the embodiment of this utility model has at least the following beneficial effects:
[0008] 1. This utility model uses two sliders arranged in reverse order, each with a pivot and an elastic part, combining sliding, locking, and rotation functions. When the two sliders are pressed together, their protrusions are offset, and the entire slider assembly is in a relaxed state, allowing for smooth sliding within the groove. This allows for height adjustment of the support structure. When the sliders are released, the spring pushes them outwards, causing their protrusions to abut against each other, pressing the elastic parts against the groove wall and locking the sliders. This ultimately restricts the support structure to the user's desired height. Furthermore, when the support structure is used inside a mirror cabinet to store a hair dryer, the sliders are rotatably connected to the support connector via the pivot. When the hair dryer is needed, the connector can be flipped out of the cabinet, allowing for direct hair drying without holding the dryer, thus improving the user experience.
[0009] 2. The bracket structure of this utility model can be used for storage inside a cabinet or for use outside a cabinet. The bracket structure can slide up and down to meet the user's needs for different heights. The spring used to control the tension of the slider is located inside the first bushing. The whole structure is simple and exquisite and does not take up extra space.
[0010] According to some embodiments of the present invention, the first main body is provided with a first smooth protrusion, and the outer wall of the first bushing is provided with a first smooth groove that is adapted to the first smooth protrusion. When the bracket connector rotates around the rotating shaft to the first position, the first smooth protrusion can be embedded in the first smooth groove.
[0011] According to some embodiments of the present invention, during the rotation of the bracket connector around the rotating shaft, the first smooth protrusion always abuts against the outer wall of the first bushing.
[0012] According to some embodiments of the present invention, it further includes a support base, one end of which is hinged to the other end of the support connector, the support base can rotate laterally relative to the support connector, and the other end of the support base is rotatably engaged with the fixing seat, the fixing seat being able to rotate vertically relative to the support base.
[0013] According to some embodiments of the present invention, a second bushing is formed at the other end of the bracket connector, and pins are respectively provided at the upper and lower ends of the second bushing. A second spring is provided inside the second bushing, and the second spring abuts against the upper and lower pins. The bracket base is rotatably connected to the bracket connector through the pins.
[0014] According to some embodiments of the present invention, the bracket base is provided with a second smooth protrusion, and the outer wall of the second bushing is provided with a second smooth groove that matches the second smooth protrusion. When the bracket base rotates around the pin to the second position, the second smooth protrusion can be embedded in the second smooth groove.
[0015] According to some embodiments of this utility model, the other end of the bracket base is formed with a concave groove, and the groove opening has baffles on both sides. The outer wall of the fixing seat is provided with a buckle, which includes a second main body and spring pieces on both sides of the second main body. The upper and lower ends of the front end face of the second main body are cut off towards the fixing seat to form a stepped structure. The rear end face of the second main body is fixed to the outer wall of the fixing seat so that a gap is left between the spring pieces and the outer wall of the fixing seat. At a first tilt angle, the buckle can insert the front end of the spring pieces and the front end of the second main body into the groove. Rotating the buckle can cause the spring pieces to be squeezed against the baffles and deformed and compressed. When rotated to a second tilt angle, the buckle is aligned with the groove so that the buckle can be fully inserted into the groove, and the spring pieces can spring back and lock onto the baffles. The groove has space for the buckle to rotate.
[0016] According to some embodiments of the present invention, the spring piece is arched, the two stepped edges formed by the cut are inclined and parallel, the virtual extension lines of the two stepped edges are tangent to the spring piece one-to-one, and the fixing seat is in the first inclined angle, with the stepped edge and the stop edge in clearance fit.
[0017] According to some embodiments of the present invention, after the buckle is inserted into the slot, it can rotate between a third tilt angle and a fourth tilt angle. When the buckle is at the third tilt angle and the fourth tilt angle, the second main body part abuts against the side wall of the slot, and at the same time, the spring piece part abuts against the side wall of the slot.
[0018] According to some embodiments of this utility model, the fixing base is a cylindrical structure, the fixing base is vertically arranged, and its upper end surface is a wavy surface.
[0019] According to a second aspect of the present invention, a mirror cabinet includes the aforementioned support structure, a cabinet body, and a mirror door. A vertical mounting groove is provided on the side panel of the cabinet body, and the slide rail is embedded in the mounting groove. The fixing seat can be flipped from inside the cabinet body to outside the cabinet body as the support connector rotates. The support connector is a plate structure, and a bending position is formed on the support connector to avoid the bending position of the mirror door, so that the mirror door can be closed after the support connector is flipped.
[0020] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0021] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0022] Figure 1 This is an overall schematic diagram of the support structure of this utility model;
[0023] Figure 2 This is an exploded view of the support structure of this utility model;
[0024] Figure 3 This is a schematic diagram of the slider installation of this utility model;
[0025] Figure 4 This is a schematic diagram of the rotation limit of the bracket connector and the slider of this utility model;
[0026] Figure 5 This is a schematic diagram of the rotation limit of the bracket connector and the bracket base of this utility model;
[0027] Figure 6 This is a structural diagram of the fixing base of this utility model;
[0028] Figure 7 This is a structural diagram of the support base of this utility model;
[0029] Figure 8 This is a schematic diagram of the installation of the buckle of this utility model at the first tilt angle;
[0030] Figure 9 This is a schematic diagram of the installation of the buckle of this utility model at the second tilt angle;
[0031] Figure 10 This is a schematic diagram of the installation of the buckle of this utility model at the third tilt angle;
[0032] Figure 11 This is a schematic diagram of the installation of the buckle of this utility model at the fourth tilt angle;
[0033] Figure 12 This is a schematic diagram of the bracket structure of this utility model when it is folded inside the mirror cabinet;
[0034] Figure 13 This is a schematic diagram of the bracket structure of this utility model when it is flipped to the outside of the mirror cabinet for use.
[0035] Reference numerals: slide rail 100, bracket connector 200, first bushing 210, first smooth groove 211, second bushing 220, second smooth groove 221, bending position 230, slider 300, first main body 310, first smooth protrusion 311, rotating shaft 320, elastic part 330, protrusion 331, concave part 332, first spring 400, fixing seat 500, buckle 510, second main body 511, spring piece 512, step edge 520, wavy surface 530, bracket base 600, second smooth protrusion 610, slot 620, edge guard 621, groove 622, pin 700, second spring 800, cabinet 910, mirror door 920, side panel 930, cable pass 940, hair dryer 1000. Detailed Implementation
[0036] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0037] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "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 utility model 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 utility model.
[0038] Reference Figure 1-3A support structure includes a slide rail 100, a support connector 200, a slider 300, a first spring 400, and a fixed seat 500. One end of the support connector 200 forms a first bushing 210, and the other end is connected to the fixed seat 500, which is used to place items. There are two sliders 300, each including a first main body 310, a pivot 320, and an elastic part 330. The pivot 320 is located on the left side of the first main body 310. The elastic part 330 is a cantilevered spring, located at the vertical end of the first main body 310. The elastic part 330 can elastically swing in the left-right direction and has a protrusion in the vertical direction. The slide rail 100 has a slide 331 and a recess 332, with the recess 332 located between the first main body 310 and the elastic part 330. The two sliders 300 are inserted into the first bushing 210 one above the other through their respective rotating shafts 320. The first main body 310 of the two sliders 300 is slidably fitted into the slide groove of the slide rail 100. The first spring 400 is provided in the first bushing 210 and abuts between the rotating shafts 320 of the two sliders 300. The two sliders 300 can slide towards each other until their respective protrusions 331 slide into the recess 332 of the other. The two sliders 300 can move away from each other until their protrusions 331 abut against each other so that their elastic parts 330 abut against the groove wall.
[0039] Working principle: When the two sliders 300 are pressed together, the protrusions 331 of the two sliders 300 are offset from each other, and the entire slider 300 assembly is in a relaxed state, allowing it to slide smoothly in the groove. This can be used to adjust the height of the support structure. When the sliders 300 are released, the spring pushes the two sliders 300 outwards. At this time, the protrusions 331 of the two sliders 300 abut against each other, pressing the elastic part 330 of the sliders 300 against the groove wall. The elastic part 330 presses firmly against the groove wall, achieving the function of locking the sliders 300, ultimately limiting the support structure to the height required by the user. In addition, the support connector 200 can rotate around the rotating shaft 320 to achieve horizontal position adjustment.
[0040] In some embodiments of this utility model, both protrusions 331 of the two sliders 300 have inclined surfaces, and the two inclined surfaces can cooperate and abut against each other. The inclined surfaces not only ensure that the two protrusions 331 can slide relative to each other, but also increase the contact area of the two protrusions 331, ensuring that they are in close contact when they abut against each other and will not slip off.
[0041] In some embodiments of this utility model, reference is made to Figure 4The first main body 310 is provided with a first smooth protrusion 311, and the outer wall of the first bushing 210 is provided with a first smooth groove 211 that matches the first smooth protrusion 311. When the bracket connector 200 rotates around the pivot 320 to the first position, the first smooth protrusion 311 can be inserted into the first smooth groove 211. Specifically, the first bushing 210 is provided with two first smooth grooves 211, which are located on opposite sides of the first bushing 210. When the bracket connector 200 rotates to both sides (corresponding to the storage state and the use state of the bracket; in the storage state, the bracket is located inside the mirror cabinet, and in the use state, the bracket is rotated 180° and extends out of the mirror cabinet), the first smooth protrusion 311 is engaged in the first smooth groove 211, which serves as a rotation limit.
[0042] In some embodiments of this utility model, during the rotation of the bracket connector 200 around the rotating shaft 320, the first smooth protrusion 311 always abuts against the outer wall of the first bushing 210. After the bracket connector 200 and the slider 300 are assembled, the outer wall of the bracket connector 200 will press against the first smooth protrusion 311, which will play a role in frictional damping when the bracket connector 200 rotates.
[0043] In some embodiments of this utility model, a bracket base 600 is also included. One end of the bracket base 600 is hinged to the other end of the bracket connector 200. The bracket base 600 can rotate laterally relative to the bracket connector 200. The other end of the bracket base 600 is rotatably engaged with a fixing seat 500, which can rotate vertically relative to the bracket base 600. Lateral rotation refers to the rotation axis of the bracket base 600 being vertical, and vertical rotation refers to the rotation axis of the fixing seat 500 being horizontal. The bracket base 600 is foldable and can be folded inside the mirror cabinet. When storage is needed, the bracket base 600 is folded up, further reducing the space occupied by the folded bracket. When needed, the bracket connector 200 is flipped out of the mirror cabinet, and then the bracket base 600 is flipped and adjusted to a suitable position. In addition, the mounting base 500 can rotate vertically to easily adjust the airflow angle of the hair dryer 1000, so that the hair dryer 1000 is directly facing the user's head. At this time, you can simply turn on the hair dryer 1000 to blow-dry your hair without holding the hair dryer 1000. You can look in the mirror and use your hands to handle other related matters at the same time.
[0044] In some embodiments of this utility model, a second bushing 220 is formed at the other end of the bracket connector 200. Pins 700 are respectively inserted at the upper and lower ends of the second bushing 220. A second spring 800 is provided inside the second bushing 220, and the second spring 800 abuts against the pins 700. The bracket base 600 is rotatably connected to the bracket connector 200 via the pins 700. During installation, the second spring 800 is placed into the second bushing 220, with its upper and lower ends inserted into the pins 700. After pressing the pins 700 to the bottom, the pins 700 are aligned with the shaft hole of the bracket base 600. The second spring 800 pushes the pins 700 out, and the pins 700 are embedded into the shaft hole of the bracket base 600, completing the assembly of the bracket base 600.
[0045] In some embodiments of this utility model, reference is made to Figure 5 The bracket base 600 has a second smooth protrusion 610, and the outer wall of the second bushing 220 has a second smooth groove 221 that matches the second smooth protrusion 610. When the bracket base 600 rotates around the pin 700 to the second position, the second smooth protrusion 610 can be inserted into the second smooth groove 221. Specifically, the second bushing 220 has two second smooth grooves 221. When the bracket base 600 is folded up or unfolded, the second smooth protrusion 610 can be engaged into the second smooth groove 221, thus achieving a rotation limit function.
[0046] In some embodiments of this utility model, reference is made to Figure 6-9 The other end of the bracket base 600 has a recessed groove 620. The groove 620 has retaining edges 621 on both sides of the groove opening 622. The outer wall of the fixing seat 500 is provided with a buckle 510. The buckle 510 includes a second main body 511 and spring pieces 512 provided on both sides of the second main body 511. The upper and lower ends of the front end face of the second main body 511 are cut off towards the fixing seat 500 to form a stepped structure. The rear end face of the second main body 511 is fixed to the outer wall of the fixing seat 500 so that the spring pieces 512 are fixed to the fixing seat 500. A gap is left between the outer walls of 00. At the first tilt angle, the buckle 510 can insert the front end of the spring piece 512 and the front end of the second main body 511 into the slot 622. Rotating the buckle 510 causes the spring piece 512 to be pressed against the retaining edge 621, resulting in deformation and compression. When rotated to the second tilt angle, the buckle 510 and the slot 622 are aligned, allowing the buckle 510 to be fully inserted into the slot 620, and the spring piece 512 to spring back and lock onto the retaining edge 621. The slot 620 has space for the buckle 510 to rotate. Figure 8 As shown, at the first tilt angle, the second main body 511 of the fixing base 500 is partially misaligned with the slot 620. At this time, rotating the fixing base 500 to the position shown... Figure 9As shown, during rotation, the spring piece 512 is compressed until the rest of the buckle 510 is aligned with the slot 622. The fixing seat 500 is pushed forcefully towards the slot 620, and the spring piece 512 passes over the baffle 621 and enters the slot 620. The spring piece 512 loses the compression of the baffle 621 and springs back to lock onto the baffle 621, thus completing the installation of the fixing seat 500.
[0047] In some embodiments of this utility model, reference is made to Figure 10-11 After the buckle 510 is inserted into the slot 620, it can rotate between the third and fourth tilt angles. When the buckle 510 is at the third and fourth tilt angles, the second main body 511 abuts against the side wall of the slot 620, while the spring piece 512 abuts against the side wall of the slot 620. Figure 10-11 In the two positions shown, the second main body abuts against the side wall of the slot 620, restricting the fixed seat 500 from continuing to rotate. At the same time, the spring piece 512 abuts against the side wall of the slot 620, providing a damping effect and restricting the rotation of the fixed seat 500, thus limiting the fixed seat 500 and achieving the effect of adjusting the flip angle of the fixed seat 500. In a specific embodiment, the angle between the third and fourth tilt angles is 40°. At the third tilt angle, the fixed seat 500 is in a vertical state, which is usually the storage state. At the fourth tilt angle, the fixed seat 500 is tilted at 40°, which is usually the use state. It should be noted that the maximum rotation angle of the latch 510 is determined by the shape of the latch 510. For example, if the upper and lower ends of the second main body 511 are wider, the distance from the second main body 511 to the side wall of the slot 620 is shorter, and the angle that the latch 510 can rotate is smaller. Conversely, if the upper and lower ends of the second main body 511 are narrower, the distance from the second main body 511 to the side wall of the slot 620 is farther, and the angle that the latch 510 can rotate is larger.
[0048] According to some embodiments of this utility model, the spring piece 512 is arched, and the two stepped edges 520 formed by the cut are inclined and parallel. The virtual extension lines of the two stepped edges 520 are tangent to the spring piece 512 one-to-one. At the first inclined angle, the stepped edge 520 and the stop edge 621 are in clearance fit with the fixing seat 500. Figure 8 As shown. The inclined stepped edge 520 facilitates positioning during installation. During installation, the two stepped edges 520 are aligned with the two retaining edges 621 to insert the spring piece 512 into the slot 622. In addition, the spring piece 512 is arched. Compared with the cantilevered spring piece, the arched spring piece has better force distribution, greater elasticity, and a basically constant stroke, making it less prone to breakage.
[0049] According to some embodiments of this utility model, the fixing base 500 has a cylindrical structure and is vertically arranged, with its upper end surface being a wavy surface 530. The upper end surface of the fixing base 500 contacts the hair dryer 1000. The wavy texture allows the hair dryer 1000 to remain stationary at various angles when tilted downwards by the fixing base 500, preventing it from rotating arbitrarily and meeting the user's needs for different angles. The more waves on the wavy surface 530, the more adjustable angles are possible, achieving arbitrary angle positioning.
[0050] Reference Figure 12-13 A mirror cabinet includes the aforementioned support structure, cabinet body 910, and mirror door 920. A vertical mounting groove is formed on the side panel 930 of the cabinet body 910, and a slide rail 100 is embedded in the mounting groove. A fixing seat 500 can be flipped from inside the cabinet body 910 to outside the cabinet body 910 as the support connector 200 rotates. The support connector 200 is a plate structure, and a bending position 230 is formed on the support connector 200 to avoid the mirror door 920, so that the mirror door 920 can be closed after the support connector 200 is flipped. Specifically, the bending position 230 is located near the first bushing 210. When the support connector 200 is flipped out of the mirror cabinet, the bending position 230 can avoid the mirror door 920, and the mirror door 920 can be closed normally. When using a hair dryer 1000, the mirror door 920 can be closed to look in the mirror while drying hair. The slide rail 100 is embedded in the side panel 930, further saving interior space. Furthermore, the bottom of the cabinet 910 is provided with a cable outlet 940, through which the power cord of the hair dryer 1000 passes and is plugged into a socket inside the cabinet 910.
[0051] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A stent structure, characterized by, The utility model provides a bracket, including slide rail (100), support connecting piece (200), slider (300), first spring (400) and fixed seat (500), one end of support connecting piece (200) forms first shaft sleeve (210), and the other end is connected with fixed seat (500), and fixed seat (500) is used to place articles, and slider (300) has two, and slider (300) includes first main part (310), pivot part (320) and elastic part (330), pivot part (320) is located in the left side of first main part (310), and elastic part (330) is located in the end of first main part (310) in up and down direction, and elastic part (330) can elastically swing along left and right directions, and the elastic part (330) is equipped with convex position (331) and recess (332) along up and down direction, and recess (332) is located between first main part (310) and elastic part (330), and two sliders (300) are inserted into first shaft sleeve (210) through the pivot part (320) of each one, and the first main part (310) of two sliders (300) is slidably embedded in the slide groove of slide rail (100), and first spring (400) is arranged in first shaft sleeve (210) and is abutted between the pivot part (320) of two sliders (300), and two sliders (300) can slide towards each other until the convex position (331) of each one is slid into the recess (332) of the other, and two sliders (300) can move away from each other until the convex position (331) of two sliders is abutted to make the elastic part (330) of two sliders abut to the groove wall of slide groove.
2. The stent structure of claim 1, wherein First main part (310) is equipped with first round smooth convex (311), and the outer wall of first shaft sleeve (210) is equipped with first round smooth groove (211) matched with first round smooth convex (311), when support connecting piece (200) rotates around pivot part (320) to first position, first round smooth convex (311) can be embedded in first round smooth groove (211).
3. The stent structure of claim 2, wherein, In the process that support connecting piece (200) rotates around pivot part (320), first round smooth convex (311) always abuts to the outer wall of first shaft sleeve (210).
4. The stent structure of claim 1, wherein Still include support base (600), one end of support base (600) is hinged to the other end of support connecting piece (200), support base (600) can rotate laterally relative to support connecting piece (200), and the other end of support base (600) is rotatably clamped with fixed seat (500), and fixed seat (500) can rotate vertically relative to support base (600).
5. The stent structure of claim 4, wherein, The other end of the support connecting piece (200) is formed with a second shaft sleeve (220), the upper end and the lower end of the second shaft sleeve (220) are respectively provided with a latch (700), the second shaft sleeve (220) is internally provided with a second spring (800), the second spring (800) is abutted between the upper and lower latches (700), and the support base (600) is rotationally connected with the support connecting piece (200) through the latches (700).
6. The stent structure of claim 4, wherein, The other end of the support base (600) is formed with a concave clamping groove (620), the groove mouth (622) of the clamping groove (620) is provided with a stop edge (621) on both sides, the outer wall of the fixing seat (500) is provided with a buckle (510), the buckle (510) comprises a second main body part (511) and elastic sheet parts (512) provided on both sides of the second main body part (511), the upper end and the lower end of the front end face of the second main body part (511) are both cut to form a stepped structure in the direction of the fixing seat (500), the rear end face of the second main body part (511) is fixedly connected with the outer wall of the fixing seat (500), so that a gap is left between the elastic sheet parts (512) and the outer wall of the fixing seat (500), the front end of the elastic sheet parts (512) and the front end of the second main body part (511) can be inserted into the groove mouth (622) at a first inclination angle, rotating the buckle (510) can make the elastic sheet parts (512) be pressed on the stop edge (621) and be deformed and compressed, when rotated to a second inclination angle, the buckle (510) is aligned with the groove mouth (622), so that the buckle (510) can be completely inserted into the clamping groove (620), and the elastic sheet parts (512) can be elastically deformed and clamped on the stop edge (621), and the clamping groove (620) has a space for the rotation of the buckle (510).
7. The stent structure of claim 6, wherein, The elastic sheet parts (512) are arched, the two stepped edges (520) formed by the cutting are inclined and parallel, the virtual extension lines of the two stepped edges (520) are tangent to the elastic sheet parts (512) one by one, and the stepped edges (520) are gap-fitted with the stop edges (621) at the first inclination angle.
8. The stent structure of claim 6, wherein, The buckle (510) can be rotated between a third inclination angle and a fourth inclination angle after being clamped into the clamping groove (620), when the buckle (510) is at the third inclination angle and the fourth inclination angle, the second main body part (511) abuts against the side wall of the clamping groove (620), and the elastic sheet parts (512) abut against the side wall of the clamping groove (620).
9. The stent structure of claim 4, wherein, The fixing seat (500) is a cylindrical structure, and the fixing seat (500) is vertically arranged, and the upper end face thereof is a wavy face (530).
10. A cabinet, characterized in that The cabinet (910) and the mirror door (920) comprising the bracket structure of any one of claims 1-9, a vertical mounting slot is formed on the side plate (930) of the cabinet (910), the slide rail (100) is embedded in the mounting slot, the fixing seat (500) can be flipped from inside the cabinet (910) to outside the cabinet (910) with the rotation of the bracket connector (200), the bracket connector (200) is a sheet structure, a bending position (230) for avoiding the mirror door (920) is formed on the bracket connector (200), so that the bracket connector (200) can close the mirror door (920) after being flipped.