Spliced sliding net

By designing the splicing structure in the sliding net, the horizontal splicing and vertical fixing of the grid frame is solved, and the existing sliding net assembly is complicated and unsolid, ensuring that the goods can slide smoothly under the action of self-weight.

CN222860459UActive Publication Date: 2025-05-13GUANGZHOU JINGLIANGYI HARDWARE PRODUCT CO LTD
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Patent Information

Application Number
CN202421880813.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2023-08-21
Publication Date
2025-05-13
Estimated Expiration
2033-08-21

AI Technical Summary

Technical Problem

The assembly method of the existing plastic sliding net is complicated and not strong, which can easily lead to loosening and partial deformation of the entire splicing sliding net, resulting in the uneven sliding weight of the goods or stop moving in the original position.

Method used

A spliced ​​sliding net is designed. Through the splicing structure arranged on the mesh frame, including clamp slots, U-shaped buckles, misalignment slots, push and pull buckles, sliding blocks and slide rails, the horizontal splicing and longitudinal fixation of the mesh frame is realized to ensure that the top surface of the mesh frame remains on the same horizontal line.

Benefits of technology

This design makes the sliding net assembly more convenient and the fixation is more firm, reducing the degree of looseness and local deformation, thereby ensuring that the goods can slide smoothly under the action of their own weight, and avoiding the goods sliding down or stopping in place.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a splicing type sliding net which comprises a plurality of net racks and two cross beams, a splicing structure for assembling the net racks into a whole is arranged between every two adjacent net racks, each splicing structure comprises a first matching part and a second matching part, the first matching parts are dislocation grooves in one sides of the net racks, and the second matching parts are push-pull buckles on the other sides of the net racks. The push-and-pull buckles slide in the dislocation grooves, limiting blocks for preventing the push-and-pull buckles from disengaging are arranged at one ends of notches of the dislocation grooves, and one push-and-pull buckle is connected with one dislocation groove in a clamped mode. After the multiple net racks are transversely spliced through the splicing structures, the same ends of the multiple net racks are kept on the same horizontal line through the two cross beams, assembling is convenient, after the whole sliding net is fixed to a storage rack, the top faces of the net racks are kept on the same face, the degree of looseness and local deformation can be reduced, and the service life of the sliding net is prolonged. Therefore, the goods can slide under the action of self weight, and the goods are prevented from sliding unsmoothly or stopping at the original position.
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Description

[0001] This application is a divisional application of a utility model patent entitled: A spliced ​​sliding net, application number: 202322253032.X, and the application date of the parent case is: 2023.08.21. Technical Field

[0002] The utility model relates to the technical field of shelves, in particular to a spliced ​​sliding net. Background Art

[0003] Sliding nets are mainly used to assist goods on shelves to slide down. Existing plastic sliding nets are generally fixed to the shelves with glue or cable ties. This assembly method is cumbersome and unstable in operation, which can easily cause the entire spliced ​​sliding net to become loose and partially deformed, thereby causing the goods placed on the sliding net to slide unsmoothly or stay in place due to their own weight. Utility Model Content

[0004] In view of the deficiencies of the prior art, the utility model proposes a spliced ​​sliding net, which is easy to assemble and can reduce the degree of looseness and local deformation, so that the goods can slide under the action of their own weight.

[0005] The technical solution of the utility model is achieved in this way:

[0006] A spliced ​​sliding net comprises a plurality of net frames and two cross beams. A splicing structure for assembling the net frames into one is arranged between two adjacent net frames, and the two cross beams are respectively slidably connected to the two ends of the plurality of net frames.

[0007] Preferably, the splicing structure includes a first matching piece arranged on one side of the grid and a second matching piece arranged on the other side of the grid, and two adjacent grids are snap-connected or slidably connected by the first matching piece of one grid and the second matching piece of the other grid.

[0008] Preferably, the first matching pieces are a plurality of slots arranged on one side of the grid, and the second matching pieces are a plurality of U-shaped buckles arranged on the other side of the grid, and one slot is connected by a snap fit with one U-shaped buckle, or;

[0009] The first matching piece is a plurality of dislocation grooves arranged on one side of the grid, and the second matching piece is a plurality of push-pull buckles arranged on the other side of the grid and matched with the dislocation grooves one by one. The push-pull buckles slide inside the dislocation grooves, and a limiting block is provided at one end of the notch of the dislocation groove to prevent the push-pull buckles from falling out, and one push-pull buckle is engaged and connected with one dislocation groove, or;

[0010] The first matching piece is a plurality of sliding blocks arranged on one side of the grid, and the second matching piece is a sliding rail arranged on the other side of the grid, and the sliding blocks are slidably connected to the sliding rail.

[0011] Preferably, the grid frame includes a grid plate and a plurality of reinforcing ribs, the grid plate is extended downwardly around to form a frame, and the plurality of reinforcing ribs are arranged at the bottom of the grid plate and located within the frame.

[0012] Preferably, the splicing structure includes a groove beam slidably arranged on one side of the grid and a convex beam slidably arranged on the other side of the grid, and the groove beam and the convex beam are abutted.

[0013] Preferably, plugs are provided at both ends of the grid, and sliding parts cooperating with the sliding grooves of the cross beams are provided on the outer sides of the plugs, and the two ends of the grid are slidably connected to the cross beams through the plugs.

[0014] Preferably, a load-bearing structure for supporting the grid is provided at the bottom of the grid.

[0015] Preferably, the load-bearing structure comprises a load-bearing plate and a plurality of plate buckles, the load-bearing plate is provided with a plurality of through holes, the plate buckles comprise a pressing portion and a buckle portion arranged on the top surface of the pressing portion, the buckle portion of a plate buckle passes through a through hole and is buckled on the grid, and the top surface edge of the pressing portion abuts against the bottom surface of the load-bearing plate, or;

[0016] The load-bearing structure comprises a plurality of bearing beams, the tops of the bearing beams are slidably provided with a plurality of retaining buckles, and the plurality of retaining buckles are all clamped on the grid.

[0017] Preferably, a trackless propeller is provided on the top of the grid, and the trackless propeller includes a fixed clamp, a push plate and a spring. The fixed clamp is clamped at one end of the grid, the spring is installed at the end of the push plate away from the fixed clamp, and one end of the spring passes through the push plate and is fixedly connected to the fixed clamp.

[0018] Compared with the prior art, the beneficial effects of the utility model are:

[0019] The spliced ​​sliding net includes several grid frames and two cross beams. After several grid frames are horizontally spliced ​​using the splicing structure, the two cross beams keep the same ends of the grid frames on the same horizontal line. It is easy to assemble and can keep the top surfaces of the grid frames on the same plane after the entire sliding net is fixed on the shelf, which can reduce the degree of looseness and local deformation, so that the goods can slide under the action of their own weight, avoiding the goods from sliding smoothly due to their own weight or stopping in place. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the three-dimensional structure of the first embodiment of the utility model;

[0021] Figure 2 The three-dimensional structure of the grid in the first embodiment of the utility model is shown in FIG. Figure 1 ;

[0022] Figure 3 The three-dimensional structure of the grid in the first embodiment of the utility model is shown in FIG. Figure 2 ;

[0023] Figure 4 This is a schematic diagram of the three-dimensional structure of the splicing structure in the first embodiment of the utility model;

[0024] Figure 5 It is a three-dimensional diagram of the separation state of the grid and the load-bearing plate in the first embodiment of the utility model;

[0025] Figure 6 It is a longitudinal cross-sectional view of the load-bearing structure in the first embodiment of the utility model;

[0026] Figure 7 It is a three-dimensional structural schematic diagram of the grid, trackless propeller and partition in the first embodiment of the utility model;

[0027] Figure 8 This is a schematic diagram of the three-dimensional structure of the trackless propeller in the first embodiment of the utility model;

[0028] Fig. 9 This is a schematic diagram of the three-dimensional structure of the grid in the second embodiment of the utility model;

[0029] Fig.10 for Fig. 9 The enlarged schematic diagram of point A in the middle;

[0030] Fig.11 This is a schematic diagram of the three-dimensional structure of the splicing structure in the second embodiment of the present utility model;

[0031] Fig.12 This is a schematic diagram of the three-dimensional structure of the grid in the third embodiment of the present utility model;

[0032] Fig.13 This is a schematic diagram of the assembly of the grid in the third embodiment of the present utility model;

[0033] Fig.14 It is a three-dimensional structural schematic diagram of the grid, groove beams and convex beams in the fourth embodiment of the utility model;

[0034] Fig.15 This is a front view of the assembly state of the grid, groove beams and convex beams in the fourth embodiment of the utility model;

[0035] Fig.16 It is a three-dimensional structural schematic diagram of the assembled state of the grid, groove beams, convex beams and plugs in the fourth embodiment of the utility model;

[0036] Fig.17 This is a schematic diagram of the exploded structure of the grid, groove beams, convex beams and plugs in the fourth embodiment of the utility model;

[0037] Fig.18 This is a schematic diagram of the three-dimensional structure of the plug in the fourth embodiment of the utility model;

[0038] Fig.19 This is a schematic diagram of the three-dimensional structure of the fifth embodiment of the present utility model;

[0039] Fig. 20 It is a schematic diagram of the three-dimensional structure of the load-bearing beam and the retaining buckle in the fifth embodiment of the utility model.

[0040] Figure ID:

[0041] 1-grid; 11-first matching piece; 111-slot; 112-offset slot; 1121-limiting block; 113-sliding block; 12-second matching piece; 121-U-shaped buckle; 122-push-pull buckle; 123-slide rail; 13-groove beam; 14-convex beam; 15-grid plate; 16-reinforcement rib; 17-frame; 2-cross beam; 21-slide groove; 3-plug; 31-sliding part; 4-load-bearing plate; 41-through hole; 5-plate buckle; 51-pressing part; 52-buckle part; 6-load-bearing beam; 7-retaining buckle; 8-trackless thruster; 81-fixed clamp; 82-push plate; 83-spring; 9-partition. DETAILED DESCRIPTION

[0042] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0043] Embodiment 1

[0044] See also Figures 1 to 4 A spliced ​​sliding net includes a plurality of net frames 1 and two cross beams 2. A splicing structure is provided between two adjacent net frames 1 so that the plurality of net frames 1 are assembled into one body. The two cross beams 2 are respectively slidably connected to the two ends of the plurality of net frames 1. The net frame 1 is used to place goods. After the plurality of net frames 1 are spliced ​​horizontally by the splicing structure, the two cross beams 2 keep the same end of the plurality of net frames 1 on the same horizontal line. The assembly is convenient, and the top surface of the net frame 1 can be kept on the same plane after the entire sliding net is fixed on the shelf, which can reduce the degree of looseness and local deformation, so that the goods can slide under the action of their own weight, and avoid the goods sliding unsmoothly or stopping in place due to their own weight. In this embodiment, the entire sliding net can be fixed to the shelf by adhesive or cable ties, or screw holes can be preset at both ends of the net frame 1, and screws or screws pass through the screw holes to fix the sliding net on the shelf. In this structure of fixing the sliding net with a screw rod or a bolt, the screw rod or the bolt generates a longitudinal pulling force on the sliding net, which can better keep the top surface of the grid frame 1 on the same plane.

[0045] Specifically, the splicing structure includes a first matching piece 11 disposed on one side of the grid 1 and a second matching piece 12 disposed on the other side of the grid 1. Two adjacent grids 1 are connected by the first matching piece 11 of one grid 1 and the second matching piece 12 of the other grid 1. Figure 3 and Figure 4 As shown, the first matching piece 11 of this embodiment is a plurality of slots 111 arranged on one side of the grid 1, and the second matching piece 12 is a plurality of U-shaped buckles 121 arranged on the other side of the grid 1, and one slot 111 is connected by a U-shaped buckle 121. When splicing, the U-shaped buckle 121 of one grid 1 is snapped into the slot 111 of another grid 1 to realize the horizontal splicing of the two grids 1, and then the U-shaped buckles 121 of the remaining grids 1 are snapped into the slot 111 of the previous grid 1 one by one, and then the crossbeams 2 are installed at the front and rear ends of the grid 1 to form a whole sliding net, which is easy to assemble. It should be noted that the number of grids 1 can be selected according to the size of the sliding surface required for placing goods. The more grids 1 are, the larger the sliding surface of the assembled sliding net is, which can meet the needs of more horizontal dimensions.

[0046] Preferably, see Figure 4 The grid frame 1 includes a grid plate 15 and a plurality of reinforcing ribs 16. The grid plate 15 extends downward around to form a frame 17. The plurality of reinforcing ribs 16 are arranged at the bottom of the grid plate 15 and are located inside the frame 17. The grid frame 1 of this structure is more conducive to the balance of the force and traction of the cross beam 2 and the entire sliding net, and the plastic deformation is smaller.

[0047] See also Figure 5 A partition 9 or a metal partition bar (not shown) can be set on the entire slide net. The partition 9 forms a plurality of slideways on the entire slide net, and different slideways can be used to place different goods.

[0048] For further information, see Figures 5 and 6 The bottom of the grid 1 is provided with a load-bearing structure for supporting the grid 1, further ensuring that the sliding net is evenly distributed on the same plane in both the horizontal and vertical directions. Specifically, the load-bearing structure includes a load-bearing plate 4 and a plurality of plate buckles 5. The load-bearing plate 4 is provided with a plurality of through holes 41. The plate buckles 5 include a pressing portion 51 and a snap-on portion 52 arranged on the top surface of the pressing portion 51. The snap-on portion 52 of a plate buckle 5 passes through a through hole 41 and is snap-connected to the grid 1, and the top edge of the pressing portion 51 abuts against the bottom surface of the load-bearing plate 4. During assembly, the load-bearing plate 4 is first placed at the bottom of the grid 1, and then the plate buckles 5 are passed through the through holes 41 of the load-bearing plate 4 and the snap-on portion 52 of the plate buckle 5 is snap-connected to the grid 1.

[0049] Preferably, see Figures 7 and 8The top of the grid 1 is provided with a trackless pusher 8, which includes a fixed clamp 81, a push plate 82 and a spring 83. The fixed clamp 81 is clamped at one end of the grid 1, and the spring 83 is installed at the end of the push plate 82 away from the fixed clamp 81. One end of the spring 83 passes through the push plate 82 and is fixedly connected to the fixed clamp 81. The spring 83 retracts through the gap between the push plate 82 and the goods, and pulls the push plate 82 to push the conveyor 82 forward, further improving the situation that the goods placed on the sliding net slide unsmoothly or stop in place due to the looseness and local deformation of the sliding net; when it is necessary to add goods, you only need to use the goods to push the push plate 82 forward to add them, which is convenient for replenishment.

[0050] Embodiment 2

[0051] See also Fig. 9 and Fig.11 In this embodiment, the first matching member 11 is a plurality of dislocation grooves 112 arranged on one side of the grid 1, and the second matching member 12 is a plurality of push-pull buckles 122 arranged on the other side of the grid 1 and matched with the dislocation grooves 112 one by one. The push-pull buckles 122 slide inside the dislocation grooves 112, and a limit block 1121 is provided at one end of the notch of the dislocation groove 112 to prevent the push-pull buckles 122 from falling out, and one push-pull buckle 122 is engaged and connected with one dislocation groove 112. During assembly, the push-pull buckle 122 of one grid 1 is first placed into the dislocation groove 112 of another grid 1, and then the two grids 1 are pushed toward each other, so that the push-pull buckle 122 of one grid 1 enters the position corresponding to the limit block 1121 in the dislocation groove 112 of the other grid 1, and under the action of the limit block 1121, the push-pull buckle 122 is prevented from falling out, thereby realizing the splicing of the two grids 1.

[0052] Embodiment 3

[0053] See also Fig.12 and Fig.13 , which is different from the first embodiment, in this embodiment, two adjacent grids 1 are slidably connected through a first matching piece 11 of one grid 1 and a second matching piece 12 of the other grid 1. Specifically, the first matching piece 11 is a plurality of sliding blocks 113 arranged on one side of the grid 1, and the second matching piece 12 is a slide rail 123 provided on the other side of the grid 1, and the sliding block 113 is slidably connected to the slide rail 123. During assembly, the slide rail 123 of one grid 1 is slidably pushed onto the sliding block 113 of the other grid 1 along the length direction of one grid 1 to achieve the splicing of the two grids 1.

[0054] Specifically, the slide rail 123 in this embodiment is a T-shaped rail, the sliding block 113 is L-shaped, and the sliding blocks 113 are arranged in two rows. The L-shaped openings of the two rows of sliding blocks 113 are arranged opposite to each other. The two rows of sliding blocks 113 of this structure are limited to the upper and lower sides of the slide rail 123, so that the spliced ​​grid 1 is more stable.

[0055] Embodiment 4

[0056] See also Fig.14 and Fig.15 , different from the first embodiment, the splicing structure of this embodiment includes a groove beam 13 slidably arranged on one side of the grid 1 and a convex beam 14 slidably arranged on the other side of the grid 1, and the groove beam 13 and the convex beam 14 are in contact. The groove beam 13 and the convex beam 14 can enhance the load-bearing capacity of the grid 1. When splicing, the groove beam 13 and the convex beam 14 are first slid into the grid 1, and then several grids 1 are sequentially drawn into the crossbeam 2, so that the groove beams 13 and the convex beams 14 of adjacent grids 1 are in contact. Since the groove beams 13 and the convex beams 14 of adjacent grids 1 are in contact, the top surfaces of several grids 1 are kept on the same plane, which can reduce the degree of looseness and local deformation, so that the goods can slide under the action of their own weight, avoiding the goods sliding unsmoothly or stopping in place due to their own weight. In addition, each grid 1 can be separated from the contact with the adjacent grid 1 by sliding on the crossbeam 2, and then the inclination angle of the grid 1 can be swung separately, which is suitable for single or spliced ​​sliding nets.

[0057] For further information, see Figures 16 to 18 , plugs 3 are provided at both ends of the grid 1, and a sliding portion 31 is provided on the outside of the plugs 3 to cooperate with the slide groove 21 of the beam 2, and both ends of the grid 1 are slidably connected to the beam 2 through the plugs 3. Through the independent plugs 3 of each grid 1, the inclination angle of the grid 1 can be swung individually.

[0058] Embodiment 5

[0059] See also Fig.19 and Fig. 20 Different from the first embodiment, the load-bearing structure of this embodiment includes a plurality of bearing beams 6, and a plurality of retaining buckles 7 are slidably provided on the top of the bearing beams 6, and the plurality of retaining buckles 7 are all clamped on the grid 1. By arranging the bearing beams 6 at the bottom of the grid 1, the load-bearing capacity of the entire sliding net is enhanced, and each sliding net can be provided with 2 to 3 bearing beams 6.

[0060] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A spliced ​​sliding net, characterized in that: It comprises a plurality of grid frames (1) and two cross beams (2), wherein a splicing structure for assembling the grid frames (1) into one is provided between two adjacent grid frames (1), and the two cross beams (2) are respectively slidably connected to the two ends of the plurality of grid frames (1); The splicing structure comprises a first matching piece (11) arranged on one side of the grid (1) and a second matching piece (12) arranged on the other side of the grid (1), and two adjacent grids (1) are connected by snapping the first matching piece (11) of one of the grids (1) with the second matching piece (12) of the other grid (1); The first matching member (11) is a plurality of dislocation grooves (112) arranged on one side of the grid (1), and the second matching member (12) is a plurality of push-pull buckles (122) arranged on the other side of the grid (1) and matched one by one with the dislocation grooves (112), the push-pull buckles (122) slide inside the dislocation grooves (112), a limiting block (1121) is provided at one end of the notch of the dislocation groove (112) to prevent the push-pull buckles (122) from falling out, and one push-pull buckle (122) is snap-connected with one dislocation groove (112).

2. The spliced ​​sliding net according to claim 1, characterized in that: The grid frame (1) comprises a grid plate (15) and a plurality of reinforcing ribs (16); the grid plate (15) extends downwardly around four sides to form a frame (17); and the plurality of reinforcing ribs (16) are arranged at the bottom of the grid plate (15) and are located within the frame (17).

3. The spliced ​​sliding net according to claim 1, characterized in that: The splicing structure comprises a groove beam (13) slidably arranged on one side of the grid (1) and a convex beam (14) slidably arranged on the other side of the grid (1), and the groove beam (13) and the convex beam (14) are in abutment with each other.

4. The spliced ​​sliding net according to claim 3, characterized in that: Both ends of the grid (1) are provided with plugs (3), and the outer side of the plugs (3) is provided with a sliding portion (31) that cooperates with the sliding groove (21) of the cross beam (2), and the two ends of the grid (1) are slidably connected to the cross beam (2) through the plugs (3).

5. The spliced ​​sliding net according to claim 1, characterized in that: The bottom of the grid (1) is provided with a load-bearing structure for supporting the grid (1).

6. The spliced ​​sliding net according to claim 5, characterized in that: The load-bearing structure comprises a load-bearing plate (4) and a plurality of plate buckles (5), the load-bearing plate (4) is provided with a plurality of through holes (41), the plate buckles (5) comprise a pressing portion (51) and a snap-on portion (52) arranged on the top surface of the pressing portion (51), the snap-on portion (52) of one plate buckle (5) passes through one of the through holes (41) and is snap-connected to the grid (1), and the top surface edge of the pressing portion (51) abuts against the bottom surface of the load-bearing plate (4), or; The load-bearing structure comprises a plurality of load-bearing beams (6), the top of each load-bearing beam (6) is slidably provided with a plurality of retaining buckles (7), and the plurality of retaining buckles (7) are all snap-connected to the grid frame (1).

7. The spliced ​​sliding net according to any one of claims 1 to 6, characterized in that: A trackless propeller (8) is provided on the top of the grid (1), and the trackless propeller (8) comprises a fixed clamp (81), a push plate (82) and a spring (83), wherein the fixed clamp (81) is clamped on one end of the grid (1), the spring (83) is installed on one end of the push plate (82) away from the fixed clamp (81), and one end of the spring (83) passes through the push plate (82) and is fixedly connected to the fixed clamp (81).