Adjustable shoe and clothes rack

By adopting adjustable connecting poles, laminates, sliding frames and clamping structures in the shoe and clothing rack, the problems of low space utilization and inconvenience caused by the fixed height of the traditional shoe and clothing rack are solved, and flexible space configuration and efficient usage experience are achieved.

CN222997568UActive Publication Date: 2025-06-20SHANGHAI JINYU PROPS DESIGN & PROD CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422222761.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-10
Publication Date
2025-06-20
Estimated Expiration
2034-09-10

AI Technical Summary

Technical Problem

Traditional shoe racks have fixed heights, and the height and position between different areas or layers cannot be adjusted according to the user's needs, resulting in low space utilization and inconvenient use.

Method used

An adjustable shoe and clothing rack is designed, which adopts a combination of connecting poles, laminates, sliding frames and clamping structures, allowing users to freely adjust the number and height of the laminates in the functional area as needed, and fix the laminates through the clamping structure.

Benefits of technology

It realizes flexible space configuration according to user needs, improves space utilization, and enhances the flexibility and convenience of shoe and clothing racks.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222997568U_ABST
    Figure CN222997568U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of furniture, in particular to an adjustable shoe and clothes rack which comprises an upper connecting plate and a lower connecting plate, connecting vertical rods are arranged between the upper connecting plate and the lower connecting plate, a plurality of connecting vertical rods are evenly arranged in the length direction of the upper connecting plate at intervals, and a functional area is formed between every two adjacent connecting vertical rods. A plurality of layer plates are arranged in the functional area and distributed at intervals in the height direction of the connecting vertical rods, sliding frames are detachably arranged at the two ends of each layer plate and connected to the connecting vertical rods in a sliding mode, and clamping structures used for clamping and fixing the sliding frames to the steel wire ropes are arranged on the connecting vertical rods. Through cooperative use of the sliding frames, the clamping structures and the connecting vertical rods, adjustability of the positions and the distances of the laminates is achieved, so that the space utilization rate is optimized, meanwhile, free disassembly of the laminates is supported, and flexible adjustment by a user according to requirements is facilitated.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of furniture, and in particular to an adjustable shoe and clothing rack. Background Art

[0002] Traditional shoe and clothing racks usually divide two areas on a frame formed by welding multiple steel pipes. The upper area is used for hanging clothes, and the lower area is used for placing shoes. At the same time, in order to facilitate the placement of shoes, a layer board is fixed on the frame of the lower area, so as to divide the lower area into multiple layers, so as to realize the classified storage of clothes and shoes.

[0003] However, in actual use, the existing shoe and clothing racks usually have a fixed height and cannot adjust the height and position between different areas or different layer boards according to the needs of users. At the same time, they cannot be disassembled or stored when not in use. For different users, since the space occupied by the shoe and clothing rack is fixed, when the number of clothes or shoes to be stored is small, the corresponding storage area space is likely to be wasted, and it is inconvenient to use. Summary of the Utility Model

[0004] In order to achieve the purpose of freely adjusting the space size between different areas or different layer boards according to the needs of users on the premise of ensuring the normal use of different functional areas of the shoe and clothing rack, the present application provides an adjustable shoe and clothing rack.

[0005] An adjustable shoe and clothing rack provided by the present application adopts the following technical solutions:

[0006] An adjustable shoe and clothing rack includes an upper connecting plate and a lower connecting plate for connecting to a wall. A connecting vertical rod is arranged between the upper connecting plate and the lower connecting plate. A plurality of the connecting vertical rods are arranged at equal intervals along the length direction of the upper connecting plate. A functional area is formed between two adjacent connecting vertical rods. A plurality of layer boards for storing clothes or shoes are arranged in the functional area. The plurality of layer boards are distributed at intervals along the height direction of the connecting vertical rod. Slip frames are detachably arranged at both ends of the layer board. The slip frames are slidably connected to the connecting vertical rod. A clamping structure is arranged on the connecting vertical rod for clamping and fixing the slip frame on the connecting vertical rod.

[0007] By adopting the above technical solutions, in use, a plurality of connecting vertical rods divide the overall space into a plurality of functional areas. Then, the user can choose to set different numbers of layer boards in the functional area according to needs. At the same time, the position and height of the layer board are adjusted through the slip frame, and the adjusted layer board is fixed through the clamping structure, so as to realize the free combination or disassembly of the layer board according to the needs of the user, thereby optimizing the space utilization rate and improving the flexibility and convenience of using the shoe and clothing rack.

[0008] Preferably, the connecting vertical rod includes an upper base fixed on the upper connecting plate, a lower base fixed on the lower connecting plate, and a steel wire rope disposed between the upper base and the lower base. One end of the steel wire rope is fixed on the upper base, and the other end of the steel wire rope is fixed on the lower base. A sliding hole is formed through the sliding frame, and the steel wire rope is passed through the sliding hole. An avoidance groove is formed on the sliding frame, and the avoidance groove communicates with the sliding hole. The clamping structure is disposed on the steel wire rope.

[0009] By adopting the above technical solution, during use, through the combined use of the upper base, the lower base and the steel wire rope, the overall structure is more beneficial to use compared with the setting of the traditional shoe and clothing rack. The setting of the sliding hole and the avoidance hole on the sliding frame facilitates the disassembly of the sliding frame and the steel wire rope.

[0010] Preferably, the clamping structure includes a first connecting sleeve passed through the steel wire rope, a first return spring disposed in the first connecting sleeve, a first sliding sleeve slidably disposed in the first connecting sleeve, and a pressing column disposed on the first connecting sleeve. One end of the first return spring abuts against the inner wall of the first connecting sleeve, and the other end of the first return spring abuts against one end of the first sliding sleeve. The other end of the first sliding sleeve passes through the first connecting sleeve and is located outside the first connecting sleeve. One end of the pressing column is located outside the first connecting sleeve, and the other end of the pressing column is threadedly connected to the first sliding sleeve. The first return spring, the first sliding sleeve and the pressing column are all passed through the steel wire rope. A guiding hole is formed on the outer wall of the first sliding sleeve. There are a plurality of guiding holes, and the plurality of guiding holes are evenly distributed at intervals along the circumferential side of the first sliding sleeve. The guiding holes communicate the inside and outside of the first sliding sleeve. A clamping ball is rotatably disposed in the guiding hole. A first clamping space for clamping the steel wire rope is formed between the plurality of clamping balls. A first guiding inclined surface is disposed on the inner wall of the first connecting sleeve, and the first guiding inclined surface is used to guide the clamping ball to move towards the direction close to the axis of the steel wire rope.

[0011] By adopting the above technical solution, during use, the clamping structure is pre-threaded on the steel wire rope. When it is necessary to install the clamping structure and the sliding frame, the user only needs to press the pressing column to completely retract the end of the first sliding sleeve into the first connecting sleeve. Then, along the avoidance groove on the sliding frame, the pressing column can be slid into the sliding hole. At this time, release the pressing column. Under the action of the first return spring, the first sliding sleeve slides to be inserted into the sliding hole, and the first connecting sleeve abuts against the inner wall of the sliding frame, thus completing the combination of the sliding frame and the clamping structure. When it is necessary to adjust the position height of the sliding frame on the steel wire rope, the user also presses the pressing column to make the first sliding sleeve slide in the direction away from the sliding hole. Under the guiding action of the first guiding inclined surface, the clamping ball rolls in the guiding hole and thus disengages from the steel wire rope. Then, the sliding frame can be slid and adjusted. After the adjustment is completed, only need to release the pressing column. Under the action of the first return spring, the first sliding sleeve slides back to its original position, and the clamping ball re-abuts against the outer wall of the steel wire rope under the guiding action of the first guiding inclined surface. Thus, through the combined action of multiple clamping balls, the clamping of the steel wire rope is realized, and further the fixation of the sliding frame is realized.

[0012] Preferably, a sliding ring is slidably arranged in the first connecting sleeve. The first sliding sleeve, the first return spring, the pressing column, the clamping ball and the guiding inclined surface are all provided in two groups. The two groups of the first sliding sleeve, the first return spring, the pressing column, the clamping ball and the guiding inclined surface are oppositely arranged on both sides of the sliding ring, and one end of the first return spring abuts against the sliding ring.

[0013] By adopting the above technical solution, during use, through the cooperative arrangement of the two groups of the first sliding sleeve, the first return spring, the pressing column, the clamping ball and the guiding inclined surface, the clamping stability between the clamping structure and the steel wire rope is increased, thereby ensuring the stability of the sliding frame after adjustment and fixation.

[0014] Preferably, the clamping structure includes a second connecting sleeve sleeved on the steel wire rope, a rotating cylinder threadedly connected to the second connecting sleeve, a second sliding sleeve disposed between the rotating cylinder and the second connecting sleeve, a second return spring disposed between the second sliding sleeve and the second connecting sleeve, and a clamping block disposed between the rotating cylinder and the second sliding sleeve. Both the rotating cylinder and the second sliding sleeve are sleeved on the steel wire rope. One end of the second return spring abuts against the inner wall of the second connecting sleeve, and the other end of the second return spring abuts against the outer wall of the second sliding sleeve. One end of the second sliding sleeve is slidably inserted into the second connecting sleeve, and the other end of the second sliding sleeve abuts against the clamping block. A plurality of clamping blocks are provided, and the plurality of clamping blocks are evenly spaced along the circumferential side of the second sliding sleeve. A second clamping space for clamping the steel wire rope is formed between the plurality of clamping blocks. A third return spring is further disposed between two adjacent clamping blocks, and both ends of the third return spring are respectively in abutting cooperation with the clamping blocks on the corresponding sides. The clamping blocks slide in the rotating cylinder. A second guiding inclined surface for guiding the plurality of clamping blocks to approach each other is disposed in the rotating cylinder. A third guiding inclined surface for cooperating with the second guiding inclined surface is disposed on the outer wall of the clamping block. A plurality of clamping protrusions are disposed on the inner wall of the clamping block. A connecting member for connecting the sliding frame and the second connecting sleeve together is further slidably disposed on the steel wire rope.

[0015] By adopting the above technical solution, during use, the clamping structure and the connecting member are pre-sleeved on the steel wire rope. When it is necessary to combine the sliding frame with the clamping structure, only need to embed the steel wire rope into the sliding hole on the sliding frame and make the clamping structure located inside the sliding frame, and then fix the combination of the second connecting sleeve and the sliding frame through the connecting member, then the combination of the sliding frame and the clamping structure on the steel wire rope can be realized; when it is necessary to adjust the height of the sliding frame, the user can screw the rotating cylinder. Under the cooperative action of the second connecting sleeve, the rotating cylinder slides axially along the second connecting sleeve. Under the action of the second return spring, the second sliding sleeve slides away from the second connecting sleeve. At this time, under the cooperative action of the second guiding inclined surface and the third guiding inclined surface, the outer wall of the clamping block disengages from the second guiding inclined surface. Under the action of the third return spring, the adjacent clamping blocks also separate from each other, thereby driving the clamping protrusions to disengage from the steel wire rope. After that, the sliding frame can be slid to adjust the position. After the adjustment is completed, rotate the rotating cylinder in the reverse direction to make the rotating cylinder gradually approach the second connecting sleeve. Under the action of the second guiding inclined surface and the third guiding inclined surface, the plurality of clamping blocks approach each other, thereby realizing the re-clamping of the steel wire rope, and further realizing the clamping and fixing of the sliding frame on the steel wire rope.

[0016] Preferably, the connecting member includes a third connecting sleeve. One end of the third connecting sleeve abuts against the outer wall of the sliding frame, and the other end of the third connecting sleeve is threadedly connected to the second connecting sleeve after passing through the sliding hole.

[0017] By adopting the above technical solution, during use, after the sliding frame is installed on the steel wire rope, the third connecting sleeve can be slid to be inserted into the sliding hole, and then the third connecting sleeve is screwed to be threadedly connected to the second connecting sleeve, so that through the clamping of the side wall of the sliding frame by the third connecting sleeve and the second connecting sleeve, the combination of the sliding frame and the clamping structure is realized.

[0018] Preferably, a connecting block is fixed on the sliding frame, a first mounting hole is formed in the connecting block, a second mounting hole is formed at the end of the layer board, and a locking bolt and a locking nut are arranged between the connecting block and the layer board. One end of the locking bolt abuts against the side wall of the connecting block, and the other end of the locking bolt sequentially passes through the first mounting hole and the second mounting hole and is threadedly connected to the locking nut.

[0019] By adopting the above technical solution, after the sliding frame is installed on the steel wire rope during use, the layer board can be fixed on the sliding frame through the cooperation of the locking bolt and the locking nut, and the overall use is simple and convenient.

[0020] Preferably, a first positioning hole is formed in the connecting block, a second positioning hole is formed at the end of the layer board, there are a plurality of the second positioning holes, and the plurality of second positioning holes are evenly distributed at intervals along the circumferential side of the second mounting hole. A positioning pin is further arranged between the connecting block and the layer board, and one end of the positioning pin passes through the first positioning hole and is inserted and matched with one of the second positioning holes.

[0021] By adopting the above technical solution, during use, by inserting the positioning pin into different second positioning holes, the layer board can be rotated to different angles for fixation, so as to facilitate the user to freely adjust the inclination of the layer board.

[0022] Preferably, a cross beam is arranged between two adjacent groups of the layer boards, the cross beam is detachably connected to the connecting vertical rod, and a cantilever rod for hanging a clothes hanger is slidably arranged on the cross beam.

[0023] By adopting the above technical solution, during use, through the combined use of the cross beam and the cantilever rod, the overall functionality of the shoe and clothing rack is increased, thereby improving its applicable range.

[0024] In summary, the present application includes at least one of the following beneficial technical effects:

[0025] 1. Through the combined use of the connecting vertical rod, the layer board, the sliding frame and the clamping structure, the classification placement of clothes and shoes is realized, and at the same time, the user is also supported to freely select and adjust the number of layer boards, the setting height, etc. in the functional area according to needs, thereby improving the space utilization rate and the use flexibility and convenience of the shoe and clothing rack;

[0026] 2. Through the combined use of the first connecting sleeve, the first sliding sleeve, the first return spring, the pressing column and the clamping ball, after the user moves the sliding frame to the specified height, the sliding frame can be quickly clamped and positioned on the steel wire rope, thus ensuring the convenience during the adjustment process of the laminate.

[0027] 3. Through the combined use of the positioning pin, the locking bolt and the locking nut, on the premise of realizing the detachable connection between the laminate and the sliding frame, the multi-angle adjustment of the laminate is also realized, making the use of the shoe and clothing rack more flexible and convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 is an axonometric schematic diagram mainly showing the overall structure in Embodiment 1 of the present application;

[0029] Figure 2 is an axonometric schematic diagram mainly showing the structure of the connecting vertical rod in Embodiment 1 of the present application;

[0030] Figure 3 is Figure 2 an enlarged view mainly showing the structure of part A in

[0031] Figure 4 is an exploded view mainly showing the clamping structure in Embodiment 1 of the present application;

[0032] Figure 5 is a sectional view mainly showing the clamping structure in Embodiment 1 of the present application;

[0033] Figure 6 is an exploded view mainly showing the connection structure between the sliding frame and the laminate in Embodiment 1 of the present application;

[0034] Figure 7 is Figure 6 an enlarged view mainly showing the structure of part B in

[0035] Figure 8 is an exploded view mainly showing the crossbeam structure in Embodiment 1 of the present application;

[0036] Figure 9 is an exploded view mainly showing the clamping structure in Embodiment 2 of the present application;

[0037] Figure 10 is a sectional view mainly showing the clamping structure in Embodiment 2 of the present application.

[0038] Reference numerals: 1, upper connecting plate; 2, lower connecting plate; 3, connecting vertical rod; 31, upper base; 32, lower base; 33, steel wire rope; 4, layer board; 41, second mounting hole; 42, second positioning hole; 5, sliding frame; 51, sliding hole; 52, avoidance groove; 6, clamping structure; 61, first connecting sleeve; 611, first guiding inclined surface; 612, upper cylinder body; 613, lower cylinder body; 62, first return spring; 63, first sliding sleeve; 631, guiding hole; 632, clamping ball; 64, pressing column; 65, second connecting sleeve; 66, rotating cylinder; 661, second guiding inclined surface; 67, second sliding sleeve; 68, second return spring; 69, clamping block; 691, clamping projection; 692, third return spring; 693, third guiding inclined surface; 7, sliding ring; 8, clamping member; 9, connecting block; 91, first mounting hole; 92, first positioning hole; 10, locking bolt; 20, locking nut; 30, positioning pin; 40, cross beam; 401, cantilever rod; 50, connecting member. Detailed implementation manners

[0039] The following further describes the present application in detail in conjunction with the Figure 1 - attached Figure 10 drawings.

[0040] An embodiment of the present application discloses an adjustable shoe and clothing rack.

[0041] Embodiment 1:

[0042] Referring to Figure 1 , an adjustable shoe and clothing rack includes an upper connecting plate 1 and a lower connecting plate 2. The upper connecting plate 1 and the lower connecting plate 2 are arranged at intervals in the vertical direction. The upper connecting plate 1 and the lower connecting plate 2 are both fixed to the wall by bolts. A connecting vertical rod 3 is arranged between the upper connecting plate 1 and the lower connecting plate 2. There are multiple connecting vertical rods 3, and the multiple connecting vertical rods 3 are evenly arranged at intervals along the length direction of the upper connecting plate 1. In this embodiment, the connecting vertical rod 3 is preferably set to four. A functional area is formed between adjacent two groups of connecting vertical rods 3. A plurality of layer boards 4 are arranged in each functional area, and the plurality of layer boards 4 are distributed at intervals in the vertical direction.

[0043] Referring to Figure 1 and Figure 2, the connecting vertical rod 3 is composed of an upper base 31, a lower base 32 and a steel wire rope 33. Among them, the upper base 31 and the lower base 32 are arranged relatively. The upper base 31 is fixed on the upper connecting plate 1 by bolts, and the lower base 32 is fixed on the lower connecting plate 2 by bolts. The steel wire rope 33 is located between the upper base 31 and the lower base 32. One end of the steel wire rope 33 passes through the upper base 31 and is fixed by a steel wire rope 33 rivet. The other end of the steel wire rope 33 passes through the lower base 32 and is fixed by a steel wire rope 33 rivet. In this embodiment, two steel wire ropes 33 are arranged between a set of upper base 31 and lower base 32, and the two steel wire ropes 33 are respectively connected to the two ends of the upper base 31 and the lower base 32.

[0044] Refer to Figure 2 and Figure 3 , sliding frames 5 are arranged at both ends of the length direction of the laminate 4. A sliding hole 51 for passing the steel wire rope 33 is formed through the sliding frame 5 along its height direction. An avoidance groove 52 is also formed on the side wall of the sliding frame 5. The avoidance groove 52 is communicated with the sliding hole 51. In this embodiment, the width of the notch of the avoidance groove 52 is larger than the outer diameter of the steel wire rope 33, and the inner diameter of the sliding hole 51 is larger than the width of the notch of the avoidance groove 52. Therefore, when the sliding frame 5 needs to be installed on the steel wire rope 33, only the steel wire rope 33 needs to be slid into the sliding hole 51 along the avoidance groove 52. At the same time, in order to fix the sliding frame 5 at a specified position on the steel wire rope 33, a clamping structure 6 for clamping and fixing the sliding hole 51 on the steel wire rope 33 is also arranged on the steel wire rope 33.

[0045] Refer to Figure 4 and Figure 5 , the clamping structure 6 is composed of a first connecting sleeve 61, a first return spring 62, a first sliding sleeve 63 and a pressing column 64. Among them, the first connecting sleeve 61, the first return spring 62, the first sliding sleeve 63 and the pressing column 64 are all sleeved on the steel wire rope 33. The first connecting sleeve 61 is divided into an upper cylinder 612 and a lower cylinder 613, and the upper cylinder 612 is threadedly connected to the lower cylinder 613. The first return spring 62 is located between the upper cylinder 612 and the lower cylinder 613. One end of the first sliding sleeve 63 slides in the first connecting sleeve 61, and the other end of the first sliding sleeve 63 passes through the first connecting sleeve 61 and is located outside the first connecting sleeve 61. The first return spring 62 is used to drive one end of the first sliding sleeve 63 to always be located outside the first connecting sleeve 61. One end of the pressing column 64 is threadedly connected to the end of the first sliding sleeve 63 away from the first return spring 62.

[0046] Refer to Figure 4 and Figure 5, in order to prevent the first sliding sleeve 63 from detaching from the first connecting sleeve 61, a limiting portion is integrally formed at one end of the first sliding sleeve 63 located inside the first connecting sleeve 61. The outer diameter of the limiting portion is greater than the outer diameter of the end of the first sliding sleeve 63 located outside the first connecting sleeve 61. A guiding hole 631 is formed on the outer wall of the first sliding sleeve 63. The guiding hole 631 communicates the inside and outside of the first sliding sleeve 63. There are multiple guiding holes 631, and the multiple guiding holes 631 are evenly spaced along the circumferential side of the first sliding sleeve 63. In this embodiment, the guiding holes 631 are preferably set to three. A clamping ball 632 is rotatably arranged in each guiding hole 631.

[0047] Refer to Figure 4 and Figure 5 , a first guiding inclined surface 611 is also integrally formed on the inner wall of the first connecting sleeve 61. When the first sliding sleeve 63 is in the initial state, the three clamping balls 632 approach each other under the abutting action of the first guiding inclined surface 611. At this time, a first clamping space is formed between the three clamping balls 632. When the steel wire rope 33 is threaded through the first clamping space, the clamping balls 632 can be abutted and limited by the first guiding inclined surface 611, so that the clamping balls 632 are clamped on the steel wire rope 33, and in this way, the sliding frame 5 can be clamped and fixed on the steel wire rope 33.

[0048] Refer to Figure 4 and Figure 5 , in addition, the clamping structure 6 is pre-threaded on the steel wire rope 33. In order to combine the sliding frame 5 with the clamping structure 6, it is necessary to ensure that the outer diameter of the end of the first sliding sleeve 63 located outside the first connecting sleeve 61 is greater than the notch width of the avoidance groove 52 and at the same time less than the aperture of the sliding hole 51. The outer diameter of the pressing column 64 is less than the notch width of the avoidance groove 52.

[0049] Refer to Figure 4 and Figure 5 , when the sliding frame 5 is installed on the steel wire rope 33, the user presses the pressing column 64 to drive one end of the first sliding sleeve 63 to completely retract into the first connecting sleeve 61. Then, along the direction of the avoidance groove 52, the pressing column 64 is inserted into the sliding hole 51. At this time, the upper and lower ends of the first connecting sleeve 61 are both abutted against the inner wall of the sliding frame 5. Finally, the pressing column 64 is released. Under the action of the first return spring 62, the first sliding sleeve 63 slides back to its original position and thus inserts into the sliding hole 51. Subsequently, through the limitation of the inner wall of the sliding hole 51 on the first sliding sleeve 63, the combination of the sliding hole 51 and the clamping structure 6 can be realized.

[0050] Refer to Figure 4 and Figure 5, when it is necessary to adjust the height position of the sliding frame 5, the user only needs to press the pressing column 64, so that the first sliding sleeve 63 moves in the direction of retracting into the first connecting sleeve 61, so that the outer wall of the clamping ball 632 disengages from the first guiding inclined surface 611, so as to release the clamping of the steel wire rope 33 by the clamping ball 632. After that, the sliding frame 5 can be slid to adjust the position. After the adjustment is completed, the pressing column 64 can be released. Under the elastic force of the first return spring 62, the first sliding sleeve 63 slides back to its original position, and at the same time drives the clamping ball 632 to slide. Under the guiding action of the first guiding inclined surface 611, the clamping ball 632 rolls towards the direction close to the steel wire rope 33 until all three clamping balls 632 abut against the side wall of the steel wire rope 33. At this time, the first guiding inclined surface 611 provides a supporting force for the clamping ball 632, so as to ensure the stability of the clamping of the steel wire rope 33 by the clamping ball 632.

[0051] Refer to Figure 4 and Figure 5 , in order to further improve the clamping stability of the clamping structure 6 for the steel wire rope 33, in this embodiment, a sliding ring 7 is also slidably arranged in the first connecting sleeve 61, and two groups of the first sliding sleeve 63, the first return spring 62, the pressing column 64, the clamping ball 632 and the inclined surface are provided. The two groups of the first sliding sleeve 63, the first return spring 62, the pressing column 64, the clamping ball 632 and the inclined surface are arranged oppositely on both sides of the sliding ring 7. Among them, one end of the first return spring 62 abuts against the sliding ring 7, and the other end of the first return spring 62 abuts against the corresponding first sliding sleeve 63.

[0052] Refer to Figure 4 and Figure 5 , in practical applications, first install the clamping ball 632 on the first sliding sleeve 63, then put the first sliding sleeve 63 into the upper cylinder body 612 or the lower cylinder body 613, and make one end of the first sliding sleeve 63 pass through the outside of the upper cylinder body 612 or the lower cylinder body 613. After that, put the first return spring 62 and the sliding ring 7 into the upper cylinder body 612 or the lower cylinder body 613 in sequence, and then install the other group of the first sliding sleeve 63, the first return spring 62 and the clamping ball 632 according to the above steps. Finally, screw the upper cylinder body 612 onto the lower cylinder body 613, and thread the pressing column 64 onto the first sliding sleeve 63 to complete the assembly of the clamping structure 6.

[0053] Refer to Figure 6 and Figure 7, a connecting block 9 is also fixedly connected to the sliding frame 5 by bolts. A first mounting hole 91 is formed in the connecting block 9, and second mounting holes 41 are formed at both ends of the laminate 4 along the length direction. A locking bolt 10 and a locking nut 20 are arranged between the laminate 4 and the connecting block 9. After the sliding frame 5 is installed on the steel wire rope 33, the laminate 4 is taken to the vicinity of the sliding frame 5, and the second mounting hole 41 is aligned with the first mounting hole 91. Then, one end of the locking bolt 10 passes through the first mounting hole 91 and the second mounting hole 41 in sequence, and then the locking nut 20 is threadedly connected to the locking bolt 10, so that the laminate 4 is fixedly installed on the connecting block 9 through the locking bolt 10. After the other end of the laminate 4 is fixed to the corresponding sliding frame 5 in the above manner, the laminate 4 can be fixed on the steel wire rope 33.

[0054] Referring to Figure 6 and Figure 7 , at the same time, a first positioning hole 92 is also formed in the connecting block 9, and a second positioning hole 42 is formed in the side wall of the laminate 4. There are multiple second positioning holes 42, and the multiple second positioning holes 42 are circumferentially arrayed with the axis of the first positioning hole 92 as the center. In this embodiment, the second positioning holes 42 are preferably set to three. A positioning pin 30 is arranged between the connecting block 9 and the laminate 4. One end of the positioning pin 30 passes through the first positioning hole 92 and is inserted into one of the second positioning holes 42, so that the angle of the laminate 4 can be fixed by the combined use of the positioning pin 30 and the locking bolt 10. When the angle of the laminate 4 needs to be adjusted, only the positioning pin 30 needs to be inserted into different second positioning holes 42, which is simple and convenient to use.

[0055] Referring to Figure 1 and Figure 8 , a cross beam 40 can also be arranged between two adjacent groups of laminates 4. Both ends of the cross beam 40 are also clamped and fixed on the steel wire rope 33 through the cooperation of the sliding frame 5 and the clamping structure 6. The cross beam 40 is fixedly connected to the sliding frame 5 by two groups of bolts. A cantilever rod 401 is slidably arranged on the cross beam 40. The cantilever rod 401 is perpendicular to the cross beam 40 and can slide along the length direction of the cross beam 40; in actual use, the cantilever rod 401 can be used to hang clothes hangers, and at the same time, the cantilever rod 401 can also be directly welded and fixed on the cross beam 40 according to actual needs.

[0056] Referring to Figure 1 , in this embodiment, the user can adjust the setting quantity of the laminates 4 and the sliding frames 5 according to needs, so as to improve the overall space utilization rate of the shoe and clothing rack; at the same time, the laminate 4 can also be rotated to a vertical state to complete the storage of the laminate 4, or the laminate 4 can be directly removed; in addition, in order to improve the comfort and convenience of the overall use of the shoe and clothing rack, a light bar can also be arranged on the back of the laminate 4, or the laminate can be directly replaced with a light box, and the light box is installed on the sliding frame 5.

[0057] The implementation principle of the embodiment of this application is as follows: Before use, first thread a plurality of clamping structures 6 onto the steel wire rope 33, and then connect the steel wire rope 33 to the upper base 31 and the lower base 32. During actual use, then install the sliding frame 5 onto the clamping structure 6 on the steel wire rope 33, and then connect the corresponding laminates 4 to the sliding frame 5 according to the quantity or size of the clothes, shoes, etc. to be placed. Subsequently, adjust the height position of the corresponding sliding frame 5 through the clamping structure 6 to control the height between two adjacent laminates 4, thereby facilitating the user to place clothes or shoes. When storage is required, through the combined use of the positioning pin 30 and the locking bolt 10, rotate the laminate 4 to the vertical as a whole or directly remove and store the laminate 4, thereby saving the overall space occupied by the shoe and clothing rack. Compared with traditional shoe and clothing racks, the overall use flexibility is higher and it is more convenient to use.

[0058] The difference between Embodiment 2 and Embodiment 1 lies in:

[0059] Referring to Figure 9 and Figure 10 , the clamping structure 6 can also be composed of a second connecting sleeve 65, a rotating cylinder 66, a second sliding sleeve 67, a second return spring 68, and a clamping block 69. Among them, the second connecting sleeve 65, the rotating cylinder 66, the second sliding sleeve 67, and the second return spring 68 are all threaded onto the steel wire rope 33. The rotating cylinder 66 is threadedly connected to the second connecting sleeve 65. One end of the second sliding sleeve 67 is slidably inserted into the second connecting sleeve 65, and one end of the second sliding sleeve 67 extends into the rotating cylinder 66. The second return spring 68 is sleeved on the second sliding sleeve 67, and one end of the second return spring 68 abuts against the inner wall of the second connecting sleeve 65, and the other end of the second return spring 68 abuts against the second sliding sleeve 67.

[0060] Referring to Figure 9 and Figure 10 , a plurality of clamping blocks 69 are provided, and the plurality of clamping blocks 69 are evenly spaced on the circumference of the steel wire rope 33. In this embodiment, the clamping blocks 69 are preferably provided in three, and a third return spring 692 is provided between two adjacent clamping blocks 69. One end of the third return spring 692 abuts against the side wall of one clamping block 69, and the other end of the third return spring 692 abuts against the side wall of another clamping block 69. The three clamping blocks 69 are all located between the second sliding sleeve 67 and the rotating cylinder 66. A second guiding slope 661 is integrally formed on the inner wall of the second sliding sleeve 67, and a third guiding slope 693 is formed on the outer wall of the clamping block 69. The second guiding slope 661 and the third guiding slope 693 are arranged in cooperation. A plurality of clamping protrusions 691 are fixed on the inner wall of the clamping block 69. In this embodiment, the clamping protrusions 691 are preferably provided in a hemispherical shape.

[0061] Referring to Figure 9 and Figure 10, a second clamping space is formed between the three clamping blocks 69. During use, the steel wire rope 33 is threaded through the second clamping space. In the initial state, the clamping blocks 69 are arranged away from the steel wire rope 33. Then, the user rotates the rotating cylinder 66, thereby driving the rotating cylinder 66 to gradually approach the second connecting sleeve 65. When the second connecting sleeve 65 moves downward, under the combined action of the second guide slope 661 and the third guide slope 693, the three clamping blocks 69 gradually approach each other, and at the same time, the clamping protrusions 691 on the clamping blocks 69 approach each other until they are tightly pressed against the outer wall of the steel wire rope 33, and then the sliding frame 5 can be clamped and fixed on the steel wire rope 33.

[0062] Refer to Figure 9 and Figure 10 , when it is necessary to adjust the position of the sliding frame 5, by rotating the rotating cylinder 66 in the reverse direction, the rotating cylinder 66 moves away from the second connecting sleeve 65. Under the elastic force of the second return spring 68, the second sliding sleeve 67 moves upward to reset. At the same time, under the elastic force of the third return spring 692, the three clamping blocks 69 move away from each other, thereby driving the clamping protrusions 691 to gradually disengage from the steel wire rope 33. Subsequently, the sliding frame 5 can be adjusted. After the adjustment is completed, rotating the rotating cylinder 66 in the forward direction can fix the sliding frame 5 on the steel wire rope 33 again.

[0063] Refer to Figure 9 and Figure 10 , a connecting member 50 is also slidably arranged on the steel wire rope 33. The connecting member 50 includes a third connecting sleeve. One end of the third connecting sleeve can abut against the outer wall of the sliding frame 5, and the other end of the third connecting sleeve can be threadedly connected to the bottom end of the second connecting sleeve 65. During use, when the clamping structure 6 and the sliding frame 5 are combined, then move the third connecting sleeve towards the sliding frame 5 until one end of the third connecting sleeve passes through the sliding frame 5 and is threadedly connected to the second connecting sleeve 65, and then the clamping structure 6 can be fixed on the sliding frame 5.

[0064] The above are all the preferred embodiments of this application. The protection scope of this application is not limited by this. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.

Claims

1. An adjustable shoe and clothing rack, characterized in that: The invention comprises an upper connecting plate (1) and a lower connecting plate (2) for connecting a wall, wherein a connecting rod (3) is arranged between the upper connecting plate (1) and the lower connecting plate (2), wherein a plurality of connecting rods (3) are evenly arranged along the length direction of the upper connecting plate (1), and a functional area is formed between two adjacent connecting rods (3), wherein a plurality of layer boards (4) for storing clothes or shoes are arranged in the functional area, wherein a plurality of layer boards (4) are spaced apart along the height direction of the connecting rods (3), and sliding frames (5) are detachably arranged at both ends of the layer boards (4), wherein the sliding frames (5) are slidably connected to the connecting rods (3), and a clamping structure (6) for clamping and fixing the sliding frames (5) on the connecting rods (3) is arranged on the connecting rods (3).

2. The adjustable shoe and clothing rack according to claim 1, characterized in that: The connecting upright (3) comprises an upper base (31) fixed on the upper connecting plate (1), a lower base (32) fixed on the lower connecting plate (2), and a steel wire rope (33) arranged between the upper base (31) and the lower base (32), one end of the steel wire rope (33) is fixed on the upper base (31), and the other end of the steel wire rope (33) is fixed on the lower base (32), a sliding hole (51) is provided through the sliding frame (5), the steel wire rope (33) is inserted into the sliding hole (51), an avoidance groove (52) is provided on the sliding frame (5), and the avoidance groove (52) is connected to the sliding hole (51), and the clamping structure (6) is arranged on the steel wire rope (33).

3. The adjustable shoe and clothing rack according to claim 2, characterized in that: The clamping structure (6) comprises a first connecting sleeve (61) inserted into the steel wire rope (33), a first return spring (62) arranged in the first connecting sleeve (61), a first sliding sleeve (63) sliding in the first connecting sleeve (61), and a pressing column (64) arranged on the first connecting sleeve (61), one end of the first return spring (62) abuts against the inner wall of the first connecting sleeve (61), the other end of the first return spring (62) abuts against one end of the first sliding sleeve (63), the other end of the first sliding sleeve (63) passes through the first connecting sleeve (61) and is located outside the first connecting sleeve (61), one end of the pressing column (64) is located outside the first connecting sleeve (61), and the other end of the pressing column (64) is threadedly connected to the first sliding sleeve (63). The first return spring (62), the first sliding sleeve (63) and the pressing column (64) are all inserted into the steel wire rope (33). A guide hole (631) is provided on the outer wall of the first sliding sleeve (63). There are a plurality of guide holes (631), and the plurality of guide holes (631) are evenly distributed along the circumference of the first sliding sleeve (63). The guide hole (631) connects the inside and outside of the first sliding sleeve (63). A clamping ball (632) is rolled in the guide hole (631), and a first clamping space for clamping the steel wire rope (33) is formed between the plurality of clamping balls (632). The inner wall of the first connecting sleeve (61) is provided with a first guide bevel (611), and the first guide bevel (611) is used to guide the clamping ball (632) to move toward the axis direction of the steel wire rope (33).

4. The adjustable shoe and clothing rack according to claim 3, characterized in that: A sliding ring (7) is slidably arranged inside the first connecting sleeve (61); the first sliding sleeve (63), the first return spring (62), the pressing column (64), the clamping ball (632) and the guide inclined surface are each arranged in two groups; the two groups of the first sliding sleeve (63), the first return spring (62), the pressing column (64), the clamping ball (632) and the guide inclined surface are arranged on both sides of the sliding ring (7) in a relative manner; one end of the first return spring (62) abuts against the sliding ring (7).

5. The adjustable shoe and clothing rack according to claim 2, characterized in that: The clamping structure (6) comprises a second connecting sleeve (65) inserted into the steel wire rope (33), a rotating cylinder (66) threadedly connected to the second connecting sleeve (65), a second sliding sleeve (67) arranged between the rotating cylinder (66) and the second connecting sleeve (65), a second return spring (68) arranged between the second sliding sleeve (67) and the second connecting sleeve (65), and a second return spring (68) arranged between the rotating cylinder (66) and the second sliding sleeve (67). The rotating cylinder (66) and the second sliding sleeve (67) are both inserted into the steel wire rope (33); one end of the second return spring (68) abuts against the inner wall of the second connecting sleeve (65); the other end of the second return spring (68) abuts against the outer wall of the second sliding sleeve (67); one end of the second sliding sleeve (67) is slidably inserted into the second connecting sleeve (65); the other end of the second sliding sleeve (67) abuts against the clamping block (69); The clamping blocks (69) are provided in plurality, and the clamping blocks (69) are evenly spaced and arranged along the circumference of the second sliding sleeve (67), and a second clamping space for clamping the steel wire rope (33) is formed between the clamping blocks (69). A third return spring (692) is also provided between two adjacent clamping blocks (69), and the two ends of the third return spring (692) are respectively abutted against the clamping blocks (69) on the corresponding side, and the clamping blocks (69) slide in the rotating The rotating cylinder (66) is provided with a second guide bevel (661) for guiding a plurality of the clamping blocks (69) to approach each other, the outer wall of the clamping block (69) is provided with a third guide bevel (693) cooperating with the second guide bevel (661), the inner wall of the clamping block (69) is provided with a plurality of clamping protrusions (691), and the steel wire rope (33) is also slidably provided with a connecting piece (50) for connecting the sliding frame (5) and the second connecting sleeve (65) together.

6. The adjustable shoe and clothing rack according to claim 5, characterized in that: The connecting member (50) comprises a third connecting sleeve, one end of which abuts against the outer wall of the sliding frame (5), and the other end of which passes through the sliding hole (51) and is threadedly connected to the second connecting sleeve (65).

7. The adjustable shoe and clothing rack according to claim 1, characterized in that: A connecting block (9) is fixed on the sliding frame (5), a first mounting hole (91) is provided on the connecting block (9), a second mounting hole (41) is provided at the end of the layer plate (4), a locking bolt (10) and a locking nut (20) are provided between the connecting block (9) and the layer plate (4), one end of the locking bolt (10) abuts against the side wall of the connecting block (9), and the other end of the locking bolt (10) passes through the first mounting hole (91) and the second mounting hole (41) in sequence and is threadedly connected to the locking nut (20).

8. The adjustable shoe and clothing rack according to claim 7, characterized in that: The connecting block (9) is provided with a first positioning hole (92), and the end of the layer plate (4) is provided with a second positioning hole (42). A plurality of the second positioning holes (42) are provided, and the plurality of the second positioning holes (42) are evenly distributed along the circumference of the second mounting hole (41). A positioning pin (30) is also provided between the connecting block (9) and the layer plate (4), and one end of the positioning pin (30) passes through the first positioning hole (92) and is plugged into one of the second positioning holes (42).

9. The adjustable shoe and clothing rack according to claim 1, characterized in that: A crossbeam (40) is provided between two adjacent groups of layer boards (4), the crossbeam (40) is detachably connected to the connecting upright pole (3), and a cantilever rod (401) for hanging a clothing rack is also slidably provided on the crossbeam (40).