Glass storage rack
By combining the self-rebound metal surface column with the compression spring assembly, along with the anti-slip outer layer and magnetic connection, the problem of insufficient anti-slip properties of traditional storage racks is solved, achieving high-precision, stable, and reliable limited storage of glass, reducing the risk of glass damage and operational difficulties.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-19
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional storage racks lack adequate anti-slip measures, making the glass prone to slipping in humid environments or during handling, leading to glass damage, operational difficulties, and safety hazards.
The system employs a combination of a self-rebound metal surface column, a compression spring assembly, an open inner groove, and a protruding locking element. This, along with an anti-slip outer layer, a magnetic working surface, and an elastic connecting line, achieves progressive limiting and enhances friction to prevent the glass from shaking or shifting.
It effectively prevents glass from shaking and shifting, improves limit accuracy, reduces the risk of glass damage, and enhances operational safety and stability.
Smart Images

Figure CN224045873U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a storage rack, in particular to a glass storage rack applied to the field of storage device. BACKGROUND
[0002] In the field of modern architecture, glass manufacturing and related industries, the safety and integrity of glass during storage and transportation are of great importance. With the diversification and large-scale development of glass products, traditional glass storage racks have been difficult to meet the actual needs.
[0003] Chinese patent CN212475256U specification discloses a telescopic glass L-shaped rack, including base, back frame, first stretching frame and second stretching frame. When stacking large size glass, the first stretching frame and the second stretching frame are stretched to the left and right sides of the base relative to the base, so that the first stretching frame, the second stretching frame and the base form a large size glass supporting surface together, and the large size glass can be supported by the large size glass supporting surface. In this way, the utility model can be flexibly applied to the stacking of small size glass and large size glass.
[0004] The anti-skid measures of most existing traditional storage racks are not perfect, the surface of the storage rack in contact with the glass is often smooth, and only the gravity of the glass itself is relied on to maintain stability. In a humid environment or during the handling process, if there is a slight tilt, the glass is easy to slide, which not only may cause damage to the glass, but also may bring operation difficulties and safety hazards to the operator. Utility model content
[0005] In view of the above existing technology, the technical problem to be solved by the utility model is that the anti-skid measures of most existing traditional storage racks are not perfect, the surface of the storage rack in contact with the glass is often smooth, and only the gravity of the glass itself is relied on to maintain stability. In a humid environment or during the handling process, if there is a slight tilt, the glass is easy to slide, which not only may cause damage to the glass, but also may bring operation difficulties and safety hazards to the operator.
[0006] In order to solve the above problems, the utility model provides a kind of glass storage rack, including L type main force frame, multiple article placing cross bars are fixedly connected between the vertical surface and horizontal plane of L type main force frame, multiple article placing cross bars are horizontally equidistantly arranged, article placing cross bar is fixedly connected with auxiliary outer plate on one end close to the storage glass body, multiple vertical column openings are formed in the upper end of the vertical end of auxiliary outer plate, and multiple vertical column openings are evenly distributed, the lower inner wall of vertical column opening is fixedly connected with compression spring assembly, the upper end of compression spring assembly is fixedly connected with self-rebound metal surface layer vertical column, self-rebound metal surface layer vertical column is slidably displaced in vertical column opening, opening inner groove is formed in the front inner wall of vertical column opening, the one end of self-rebound metal surface layer vertical column close to opening inner groove is fixedly connected with protruding clamping particle, and protruding clamping particle and corresponding opening inner groove are matched.
[0007] In the above-mentioned glass storage rack, the self-rebound metal surface layer vertical column, the compression spring assembly, the opening inner groove and the protruding clamping particle are matched to realize the progressive limiting from the preliminary limiting to the close fixing of the stored glass body, and effectively prevent the glass from shaking and shifting.
[0008] As a further improvement of the present application, the lower side of the vertical end of the L-shaped main force frame is fixedly connected with multiple stable square feet, and the multiple stable square feet are arranged in a rectangular shape.
[0009] As a further improvement of the present application, the lower end of the stable square foot is fixedly connected with a shock-absorbing buffer plate, and the middle part of the L-shaped main force frame is fixedly connected with multiple horizontally arranged reinforced load-bearing cross struts.
[0010] As a further improvement of the present application, the reinforced load-bearing cross struts are located outside the article placing cross bars, and multiple stored glass bodies are clamped outside the multiple article placing cross bars.
[0011] As another improvement of the present application, the outer wall surface of the auxiliary outer plate is provided with a non-slip outer layer, and the vertical end of the non-slip outer layer is provided with a magnetic cooperation working surface.
[0012] As a further improvement of the present application, the upper end of the magnetic cooperation working surface is fixedly connected with multiple magnetic alignment discs, and the multiple magnetic alignment discs are in contact with the corresponding self-rebound metal surface layer vertical columns directly below.
[0013] As a further improvement of the present application, multiple elastic connection lines are fixedly connected between the multiple adjacent magnetic alignment discs, and the bottom of the stored glass body is in contact with the multiple self-rebound metal surface layer vertical columns.
[0014] In summary, the self-rebound metal surface layer column and compression spring assembly, the open inner groove and the protruding clamping particles are matched to realize the progressive limiting of the stored glass body from the initial limiting to the tight fixing, effectively prevent the glass from shaking and moving, and the combination of the anti-skid outer layer on the auxiliary outer plate, the magnetic matching working surface, the magnetic alignment disc and the elastic connection line surface not only increases the friction between the glass and the auxiliary outer plate, but also makes the multiple self-rebound metal surface layer columns coordinate when stressed, reduces the wear of a single column, and finally realizes the high-precision, stable and reliable limiting storage of the glass, reduces the risk of damage of the glass due to improper storage. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 is the L-shaped main bearing frame shaft side view of the first and second embodiments of the application;
[0016] Figure 2 is the L-shaped main bearing frame in use state view of the first embodiment of the application;
[0017] Figure 3 is the auxiliary outer plate schematic view of the first embodiment of the application;
[0018] Figure 4 is the auxiliary outer plate schematic view of the first embodiment of the application; Figure 3 is the auxiliary outer plate local cut-off enlarged view of the first embodiment of the application;
[0019] Figure 5 is the column opening side view of the first embodiment of the application;
[0020] Figure 6 is the open inner groove and protruding clamping particle preparation fitting state view of the first embodiment of the application;
[0021] Figure 7 is the magnetic matching working surface top view local cut-off enlarged view of the first embodiment of the application.
[0022] Explanation of reference numerals in the drawing:
[0023] 1, L-shaped main bearing frame; 2, reinforced load-bearing cross brace; 4, stable square foot; 5, storage cross bar; 6, auxiliary outer plate; 7, anti-skid outer layer; 8, column opening; 9, self-rebound metal surface layer column; 10, compression spring assembly; 11, open inner groove; 12, protruding clamping particle; 13, magnetic matching working surface; 14, elastic connection line surface; 15, magnetic alignment disc; 16, stored glass body; 17, shock-absorbing buffer plate. DETAILED DESCRIPTION
[0024] The two embodiments of the application will be described in detail below with reference to the accompanying drawings.
[0025] First embodiment:
[0026] Figures 2-6 The utility model discloses a glass storage shelf, including the L type main bearing frame 1, and the vertical surface and the horizontal surface of L type main bearing frame 1 are fixedly connected with a plurality of storage horizontal poles 5, and a plurality of storage horizontal poles 5 are horizontally equidistantly arranged, and the one end of storage horizontal pole 5 is fixedly connected with the auxiliary outer plate 6 close to the storage glass body 16, and a plurality of stand column holes 8 are formed on the vertical end of auxiliary outer plate 6, and a plurality of stand column holes 8 are evenly distributed, and the lower inner wall of stand column hole 8 is fixedly connected with compression spring assembly 10, and the upper end of compression spring assembly 10 is fixedly connected with the self-rebound metal surface layer stand column 9, and the self-rebound metal surface layer stand column 9 is slidably displaced in stand column hole 8, and the front inner wall of stand column hole 8 is provided with the open inner groove 11, and the one end of self-rebound metal surface layer stand column 9 is fixedly connected with the convex card grain 12 close to open inner groove 11, and the convex card grain 12 is matched with corresponding open inner groove 11.
[0027] Figures 2-7 The vertical end of L type main bearing frame 1 is fixedly connected with a plurality of stable square feet 4, and a plurality of stable square feet 4 are arranged in a rectangular shape, and the lower end of stable square foot 4 is fixedly connected with shock-absorbing buffer bottom plate 17, and the middle part of L type main bearing frame 1 is fixedly connected with a plurality of horizontally arranged reinforced load-bearing cross struts 2, and the reinforced load-bearing cross struts 2 are located on the outer side of storage horizontal pole 5, and a plurality of storage glass bodies 16 are clamped on the outer side of a plurality of storage horizontal poles 5, and the outer wall of auxiliary outer plate 6 is provided with anti-skid outer layer 7, and the vertical end of anti-skid outer layer 7 is provided with magnetic cooperation working surface 13, and the upper end of magnetic cooperation working surface 13 is fixedly connected with a plurality of magnetic alignment round pieces 15, and a plurality of magnetic alignment round pieces 15 are in contact with corresponding self-rebound metal surface layer stand columns 9 below, and a plurality of elastic connection line surfaces 14 are fixedly connected between adjacent magnetic alignment round pieces 15, and the bottom of storage glass body 16 is in contact with a plurality of self-rebound metal surface layer stand columns 9.
[0028] Figures 1-7When the glass storage body 16 needs to be stored, it is placed on the L-shaped main bearing frame 1 and is in contact with the plurality of storage horizontal rods 5. During the placement process, the bottom of the glass storage body 16 will extrude the self-rebound metal surface layer column 9 on the surface of the corresponding auxiliary outer plate 6. The self-rebound metal surface layer column 9 is installed in the column opening 8 on the vertical end of the auxiliary outer plate 6, and the lower end is fixedly connected with the lower inner wall of the column opening 8 through the compression spring assembly 10. When the glass storage body 16 extrudes the self-rebound metal surface layer column 9, the compression spring assembly 10 is compressed, and the self-rebound metal surface layer column 9 moves downward by a certain distance. Because the plurality of self-rebound metal surface layer columns 9 protrude in the front and back directions, the bottom of the glass storage body 16 is limited in these protruding self-rebound metal surface layer columns 9, thereby preliminarily limiting the glass to a certain extent. Because the glass storage body 16 is in an inclined state, it will slightly extrude the self-rebound metal surface layer column 9 on the front side to limit it. The self-rebound metal surface layer column 9 is fixedly connected with the protruding clamping particles 12 at one end close to the opening inner groove 11, and the front inner wall of the column opening 8 is provided with the opening inner groove 11. When the self-rebound metal surface layer column 9 is extruded forward, the protruding clamping particles 12 will be in mutual position with the corresponding opening inner groove 11. This clamping state makes the position of the self-rebound metal surface layer column 9 more fixed, further enhances the limiting effect of the glass storage body 16, and makes the limiting state more compact. The outer wall surface of the auxiliary outer plate 6 is provided with the anti-skid outer layer 7, and the vertical end of the anti-skid outer layer 7 is provided with the magnetic cooperation working surface 13. The anti-skid outer layer 7 increases the friction between the glass storage body 16 and the auxiliary outer plate 6 to prevent the glass from sliding during placement. The upper end of the magnetic cooperation working surface 13 is fixedly connected with a plurality of magnetic positioning round plates 15. The magnetic positioning round plates 15 are in contact with the corresponding self-rebound metal surface layer columns 9 directly below, and the adjacent plurality of magnetic positioning round plates 15 are fixedly connected with the elastic connection line surface 14. The precise magnetic connection between the magnetic positioning round plates 15 and the self-rebound metal surface layer columns 9 enables the specific linkage through the elastic connection line surface 14 when some self-rebound metal surface layer columns 9 are pressed downward by the glass. This linkage design can make the action of each self-rebound metal surface layer column 9 more coordinated, reduce the wear caused by uneven force on a single self-rebound metal surface layer column 9, and improve the limiting precision of the glass storage body 16.
[0029] Second embodiment:
[0030] Figure 2The glass storage rack is arranged and fixed with a plurality of stable square feet 4 in a rectangular shape on the lower side of the vertical end of the L-shaped main bearing frame 1, the lower end of the stable square feet 4 is connected with a shock-absorbing buffer plate 17, the rectangularly arranged stable square feet 4 can provide stable support, disperse the weight of the whole storage rack, keep the storage rack balanced when placing the glass body 16, and the reinforced bearing cross brace 2 can enhance the overall structural strength of the L-shaped main bearing frame 1, share the weight of the glass body 16 on the storage cross bar 5, and further improve the stability of the storage rack when placing the glass body 16.
[0031] In combination with the current actual demand, the above-mentioned embodiments adopted by the present application are not limited to the scope, various changes made within the knowledge possessed by those skilled in the art without departing from the concept of the present application still fall within the protection scope of the present application.
Claims
1. A glass storage rack, characterized in that: The system includes an L-shaped main load-bearing frame (1), with multiple horizontal bars (5) fixedly connected between the vertical and horizontal planes of the L-shaped main load-bearing frame (1). The multiple horizontal bars (5) are arranged horizontally at equal intervals. An auxiliary outer plate (6) is fixedly connected to one end of each horizontal bar (5) near the glass body (16). The upper vertical end of the auxiliary outer plate (6) has multiple column openings (8), which are evenly distributed. The lower inner wall of each column opening (8) is fixed. A compression spring assembly (10) is connected, and a self-rebound metal surface column (9) is fixedly connected to the upper end of the compression spring assembly (10). The self-rebound metal surface column (9) slides in the column opening (8). An open inner groove (11) is provided on the front inner wall of the column opening (8). A protruding clip (12) is fixedly connected to one end of the self-rebound metal surface column (9) near the open inner groove (11). The protruding clip (12) and the corresponding open inner groove (11) cooperate with each other.
2. The glass storage rack according to claim 1, characterized in that: The vertical end of the L-shaped main load-bearing frame (1) is fixedly connected to a plurality of sturdy square feet (4), which are arranged in a rectangular pattern.
3. A glass storage rack according to claim 2, characterized in that: The lower end of the stable square foot (4) is fixedly connected to a shock-absorbing buffer base plate (17), and the middle part of the L-shaped main load-bearing frame (1) is fixedly connected to multiple horizontally arranged reinforced load-bearing cross braces (2).
4. A glass storage rack according to claim 3, characterized in that: The reinforced load-bearing cross brace (2) is located outside the storage cross bar (5), and multiple storage glass body (16) are clamped to the outside of the multiple storage cross bars (5).
5. A glass storage rack according to claim 1, characterized in that: The outer wall of the auxiliary outer plate (6) is provided with an anti-slip outer layer (7), and the vertical end of the anti-slip outer layer (7) is provided with a magnetic mating working surface (13).
6. A glass storage rack according to claim 5, characterized in that: Multiple magnetic alignment discs (15) are fixedly connected to the upper end of the magnetic mating working surface (13), and the multiple magnetic alignment discs (15) are in contact with each other and the self-rebound metal surface column (9) directly below them.
7. A glass storage rack according to claim 6, characterized in that: Multiple elastic connecting lines (14) are fixedly connected between adjacent magnetic alignment discs (15), and the bottom of the glass storage body (16) is pressed against multiple self-rebound metal surface pillars (9).
Citation Information
Patent Citations
Telescopic glass L-shaped frame
CN212475256U