A fiberglass cloth roll storage device
By employing a multi-layered partition structure, a slide rail and slide block design, and a spring-loaded locking block linkage in the fiberglass cloth roll storage device, the problems of fiber deformation, wear, electrostatic adsorption, and difficulty in locating fiberglass cloth rolls during storage are solved, achieving efficient space utilization and convenient material management.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI JINBAO NEW MATERIALS CO LTD
- Filing Date
- 2025-07-10
- Publication Date
- 2026-06-02
AI Technical Summary
Traditional methods of storing fiberglass cloth rolls result in fiber structure deformation, surface wear, electrostatic dust adsorption, difficulty in locating and handling, and low space utilization.
The frame features a multi-layered partition structure within a U-shaped frame, combined with a slide rail and slide base design. The support base is equipped with a tension spring that is linked to the locking block. The support base achieves automatic sliding through the elastic potential energy of the tension spring. The bottom of the frame is equipped with pads and support plates to enable multi-layer stacking. Card slots are used for material information display.
It improves the ease of access and stability of fiberglass cloth rolls, enhances space utilization, reduces manual labor intensity, lowers the risk of material damage, and enables rapid retrieval and mechanized handling.
Smart Images

Figure CN224312198U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a storage device, and more particularly to a fiberglass cloth roll storage device. Background Technology
[0002] In traditional warehousing management of fiberglass cloth rolls, the common practice is to stack them on flat shelves. Workers typically place the rolls horizontally on ordinary shelves or pallets, utilizing space by stacking them layer by layer. While this extensive storage method can temporarily meet basic storage needs, it reveals significant drawbacks in actual production processes: multiple stacks cause the lower rolls to bear vertical pressure for extended periods, easily leading to fiber structure deformation and surface wear; densely stacked rolls rub against each other, generating static electricity that attracts dust, and visual obstruction makes it difficult to locate rolls of specific specifications; repeated unstacking and reassembly during handling increases manual labor intensity and increases the risk of rolls falling and getting damaged during operation. Utility Model Content
[0003] In order to overcome the shortcomings of the existing technology, the objective is to provide a fiberglass cloth roll storage device.
[0004] The technical solution is as follows: A fiberglass cloth roll storage device includes a frame, shelves, slide rails, slide blocks, and support bases. Slots are provided on both the lower left and right sides of the frame. Multiple shelves are spaced apart inside the frame, dividing the interior of the frame into multiple roll storage spaces. Each shelf is provided with a slide rail, and a slide block that moves back and forth on the slide rail is provided inside the slide rail. Each slide block is provided with a support base, and a "V"-shaped unwinding groove is provided inside the support base. The support base is used to place fiberglass cloth rolls.
[0005] Furthermore, it also includes a tension spring, a retaining seat, a spring, a retaining block, and a paddle. Each support seat is connected to a tension spring. When the support seat is located at a predetermined position on the slide, the tension spring is in a compressed state, and the other end of each tension spring is connected to the frame. Each frame has multiple retaining seats on its front side, and each retaining seat corresponds to a position of one of the support seats. Each retaining seat has a retaining block slidably installed inside it, and each retaining seat has a spring installed inside it. The two ends of the spring are respectively connected to the retaining seat and the retaining block. Each retaining block is in sliding contact with the front end of one of the support seats. Each retaining block is equipped with a paddle for driving the retaining block to slide within the retaining seat, so as to realize the engagement or disengagement of the retaining block with the front end of the support seat.
[0006] Furthermore, pads are provided on both the left and right sides of the bottom of the frame, and support plates are provided on both the left and right sides of the upper part of the frame. The support plates are used to place the pads, and the upper part of the support plates is provided with sliding grooves that match the shape of the pads. The sliding grooves are used to slide and fit with the pads of another frame to achieve multi-layer stacking of frames.
[0007] Furthermore, it also includes a card slot, on which the frame is provided for placing sheet-shaped cards containing material information to display the material information.
[0008] Furthermore, the shape and size of the slot are adapted to the forklift forks or the lifting components of the lifting equipment to ensure that the forklift or lifting equipment can stably insert into the slot and transport or lift the frame.
[0009] The beneficial effects of this utility model are as follows: 1. By setting multiple drawer-type layered components in the C-shaped frame, this utility model forms multiple independent fiberglass cloth roll placement spaces, which not only eliminates the risk of interlayer compression and deformation caused by traditional stacking, but also ensures a smooth and stable storage and retrieval process through the slide rail mechanism; while ensuring space utilization, its open layout facilitates the quick search and handling of cloth rolls.
[0010] 2. This utility model locks the support seat through the linkage structure of the tension spring and the locking block. Under normal conditions, the locking block is engaged with the support seat, and the preload of the tension spring ensures the stability of the overall structure and prevents the support seat from sliding back and forth. When it is necessary to store or retrieve the fabric roll on a certain support seat, simply move the lever to disengage the locking block, and the tension spring will immediately push the corresponding support seat forward with its elastic potential energy. The fabric roll can be automatically slid to an easy-to-operate position without manual dragging. This simplifies the storage and retrieval process and avoids material shaking caused by manual pushing and pulling. While improving the convenience of operation, it further enhances the structural stability. Attached Figure Description
[0011] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0012] Figure 2 This is a three-dimensional structural schematic diagram of the present invention from another perspective.
[0013] Figure 3 This is a three-dimensional structural diagram of the present invention placed on a shelf.
[0014] Figure 4 This is a three-dimensional structural diagram of the slide rail, slide base, and support base components of this utility model.
[0015] Figure 5 This is an exploded view of the card holder, spring, and card block of this utility model.
[0016] Reference numerals: 1_frame, 2_shelf, 3_slide rail, 4_slide block, 5_support base, 6_tension spring, 7_card slot, 8_spring, 9_card block, 10_paddle, 11_pad, 12_support plate, 13_card slot, 100_shelf. Detailed Implementation
[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0018] A fiberglass cloth roll storage device, such as Figure 1-5 As shown, the system includes a frame 1, shelves 2, slide rails 3, slide blocks 4, and support bases 5. Slots are provided on both the lower left and right sides of the frame 1. The shape and size of the slots are adapted to the forklift forks or the lifting components of the hoisting equipment, allowing the corresponding components of the forklift or hoisting equipment to be precisely inserted into the slots. This tight fit between the slots and components ensures that force is evenly transmitted during handling or hoisting of the frame 1, preventing the frame from shaking or falling off, and achieving stable handling or hoisting of the frame 1. Multiple shelves 2 are spaced apart inside the frame 1. These shelves 2 are connected to the inner wall of the frame 1 by welding or bolting, dividing the interior of the frame 1 into multiple sections for storing rolled fabric. In this compartmentalized design, the internal space of the frame can be fully utilized to store different fiberglass rolls in an orderly manner. Each shelf 2 is equipped with a slide rail 3 by means of bolts or other means. The slide rail 3 is equipped with a slide block 4 that can move back and forth on the slide rail 3. The slide block 4 and the slide rail 3 are slidably connected by the cooperation of the slider and the rail. This structure allows the slide block 4 to move smoothly back and forth on the slide rail 3. Each slide block 4 is equipped with a support seat 5 by means of bolts or other means. The support seat 5 is equipped with a "V" shaped unwinding groove. The design of the "V" shaped groove can fit tightly with the outer circumference of the fiberglass roll. The fiberglass roll is stably placed on the support seat 5 by the support force on both sides.
[0019] Within the frame 1, multiple shelves 2 are arranged horizontally and parallelly, with the spacing between adjacent shelves 2 on the left and right sides and vertically arranged according to the height of the fiberglass roll. Figure 2 As shown, multiple frames 1 can be arranged in an orderly manner on a standard shelf 100. Multiple fabric rolls can be placed inside the frames 1. When taking them out, the support seat 5 on the corresponding slide 4 is slid forward. Due to the sliding cooperation between the slide 4 and the slide rail 3, the support seat 5 can be easily pushed out, thus realizing the taking out and putting out. This design ensures the quantity that can be placed while facilitating the storage and retrieval of fiberglass fabric rolls.
[0020] like Figure 4 and Figure 5As shown, to prevent the support base 5 from sliding under force during the handling of the frame, the frame 1 is also equipped with a tension spring 6, a card holder 7, a spring 8, a card block 9, and a lever 10. The support base 5 is connected to the tension spring 6 by hooks or bolts. When the support base 5 is in the predetermined position on the slide 4, the tension spring 6 is in a compressed state. The other end of the tension spring 6 is connected to the frame 1 by hooks or bolts. When the support base 5 slides on the slide 4, the compression or tension state of the tension spring 6 will change. The front side of the frame 1 is equipped with multiple card holders 7, each card holder 7 corresponding to a support base 5. Each card holder 7 is slidably equipped with a card block 9. Each card holder 7 is equipped with a spring 8. The two ends of the spring 8 are connected to the card holder 7 and the card block 9, respectively. When the support base 5 is in the initial position inside the frame, each card block 9 slides in contact with the front end of a support base 5. Each card block 9 is equipped with a lever 10, which is used to drive the card block 9 to slide in the card holder 7, so as to realize the engagement or disengagement of the card block 9 with the front end of the support base 5.
[0021] The locking block 9, which is pressed against the front of the support seat 5, will limit the support seat 5 to prevent it from sliding forward when the frame 1 is being moved as a whole or when the frame 1 is subjected to external force. When it is necessary to move a certain support seat 5 to pick up or put down materials, the corresponding lever 10 of the support seat 5 is turned to drive the locking block 9 to compress the spring 8 and separate it from the front end of the support seat 5. At this time, the tension spring 6, which is in a compressed state, will release elastic potential energy. The fixed point at one end of the spring 6 connected to the frame 1 provides a tension fulcrum, and the other end pulls the support seat 5 to slide forward on the slide block 4 along the slide rail 3. Due to the sliding block track design between the slide block 4 and the slide rail 3, the movement of the support seat 5 is smooth and without jamming. The elastic force of the tension spring 6 is evenly applied to the support seat 5, causing it to move forward at a stable speed from the front side of the frame 1 until the slide block 4 slides to the front limit position of the slide rail 3. At this time, the front part of the support seat 5 is exposed outside the frame, making it easier for operators to pick up and put down the fiberglass roll. During the entire movement process, the elastic force of the tension spring 6 not only drives the support seat 5 to move, but also plays a buffering role through its own elastic deformation when it moves to the designated position, preventing the support seat 5 from shaking due to inertial impact on the frame, ensuring the safety and convenience of material picking and putting operations. After picking up the material, the support seat 5 is pushed back, the lever is released, and the locking block 9 is reset, so that it continues to maintain the locking state of the support seat 5.
[0022] like Figure 1-3As shown, the bottom left and right sides of the frame 1 are provided with pads 11 by means of bolts or other means. The upper left and right sides of the frame 1 are provided with support plates 12 by means of bolts or other means. The support plates 12 are used to place the pads 11. The upper part of the support plates 12 is opened with a sliding groove that matches the shape of the pad 11. The sliding groove is used to slide and engage with the pad 11 of another frame 1. When the frames 1 are stacked, the sliding groove on the support plate 12 of the lower frame 1 slides and engages with the pad 11 of the upper frame 1. Through this structure, multi-layer stacking of the frames 1 can be realized. When stacking, the pads 11 are inserted into the sliding grooves, which play a role in positioning and support, ensuring the stability of the stack. The stackable structure design of the frame 1 can firstly greatly improve the utilization rate of storage space; under the condition of fixed height of standard factory buildings. In scenarios where shelves 100 are not used for auxiliary classification and storage, multi-layer stacking of frames 1 can convert vertical space into effective storage area. Compared with single-layer placement, the storage capacity can be increased exponentially, which is especially suitable for scenarios where fiberglass rolls are stored in bulk. Secondly, the stacking structure makes warehouse management more standardized and orderly. After multiple frames 1 are stacked according to a unified standard, they can form a neat storage array, which is convenient for mechanized operations by equipment such as forklifts or cranes and reduces the workload of manual handling. Furthermore, the interlocking structure of the pads 11 and the slides during stacking can ensure that the force axes of the upper and lower frames 1 are aligned, avoiding structural deformation caused by eccentric loads. This stable stacking method can also reduce the risk of upper-level frames slipping and ensure the safety of the warehouse environment. In addition, the stackable design is more compatible with standard shelving 100. It can be stacked individually to form storage units or embedded between shelving shelves for fixation, flexibly adapting to different warehouse layouts. For material flow, the stacked frame 1 can still be moved as a whole by forklift. It can achieve "whole stack transfer" next to the production line or during logistics transfer, reducing the operation steps of destacking and restacking, and improving material turnover efficiency.
[0023] like Figure 1 and Figure 2 As shown, it also includes a card slot 13. The frame 1 is provided with a card slot 13 for placing sheet-like cards containing material information to display the material information. The setting of the card slot 13 constructs a visual material management system. Operators can quickly distinguish the specifications, batch numbers, manufacturers and other information of fiberglass rolls by inserting cards of different colors or symbols, avoiding material picking errors caused by human memory errors. When the frame 1 is stacked in multiple layers or densely arranged, the card slot 13 is uniformly set in a conspicuous position on the outside of the frame 1. Even in high-rise storage scenarios, materials can be directly identified by card information, reducing the tedious operation of climbing shelves or opening boxes one by one for inspection.
[0024] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.
Claims
1. A fiberglass cloth roll storage device, comprising a frame (1) and shelves (2), wherein slots are provided on the lower left and right sides of the frame (1); and multiple shelves (2) are spaced apart inside the frame (1); characterized in that It also includes multiple shelves (2) with slide rails (3), slide seats (4) and support seats (5) to divide the interior of the frame (1) into multiple roll cloth placement spaces; each shelf (2) is provided with a slide rail (3), and a slide seat (4) that can move back and forth on the slide rail (3) is provided in the slide rail (3), and a support seat (5) is provided on each slide seat (4), and a "V" shaped unwinding groove is provided in the support seat (5), which is used to place fiberglass roll cloth.
2. The glass fabric roll storage device of claim 1, wherein, It also includes a tension spring (6), a card holder (7), a spring (8), a card block (9), and a lever (10). Each support base (5) is connected to a tension spring (6). When the support base (5) is located at a predetermined position on the slide (4), the tension spring (6) is in a compressed state. The other end of each tension spring (6) is connected to the frame (1). Multiple card holders (7) are provided on the front side of each frame (1), and each card holder (7) corresponds to one of the support bases (5). Each card holder (7) is provided with a sliding card block (9), and each card holder (7) is provided with a spring (8). The two ends of the spring (8) are respectively connected to the card holder (7) and the card block (9). Each card block (9) is in sliding contact with the front end of a support base (5). Each card block (9) is provided with a paddle (10) for driving the card block (9) to slide in the card holder (7) so as to realize the engagement or disengagement of the card block (9) with the front end of the support base (5).
3. The glass fabric roll storage device of claim 2, wherein, The frame (1) has pads (11) on both the left and right sides of the bottom, and support plates (12) on both the left and right sides of the upper part of the frame (1). The support plates (12) are used to place the pads (11). The upper part of the support plates (12) has a sliding groove that matches the shape of the pads (11). The sliding groove is used to slide and fit with the pads (11) of another frame (1) so as to realize the multi-layer stacking of the frames (1).
4. The fiberglass cloth roll storage device according to claim 3, characterized in that, It also includes a card slot (13), which is provided on the frame (1) for placing sheet-shaped cards containing material information to display the material information.
5. A fiberglass cloth roll storage device according to claim 4, characterized in that, The shape and size of the slot are adapted to the forklift forks or the lifting components of the lifting equipment to ensure that the forklift or lifting equipment can stably insert into the slot and transport or lift the frame (1).