Physical experiment equipment storage equipment
By designing functionally distinguished physical experimental equipment storage equipment, the problem of mixed equipment in existing equipment and easy collision of large equipment is solved, and the safe, convenient storage and efficient utilization of equipment are achieved.
Patent Information
- Application Number
- CN202422057980.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-23
AI Technical Summary
The lack of functional distinction between existing physical experimental equipment storage equipment, which leads to the possibility of mixing and putting different types of equipment together, increasing the time to find specific equipment, and large equipment is prone to collisions when taken out.
A physical experimental equipment storage device is designed, including large storage boxes, partitions, partitions, first and second floors, etc. Through these structures, functional distinction and safe storage of different types of equipment are achieved, and convenient extraction methods are provided to reduce collision risks.
By optimizing storage methods, this storage device significantly reduces the collision risk of equipment during the acquisition and handling process, improves the safety of equipment, and improves the efficiency of space utilization and the order of storage.
Smart Images

Figure CN222988856U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of physical experiment instruments, and particularly relates to a storage device for physical experiment equipment. Background Art
[0002] A physical experiment refers to a process in the research and study of physics, where a series of purposeful and controlled practical activities are designed, operated, and observed to verify physical theories, explore physical phenomena, discover physical laws, or measure physical quantities.
[0003] Physical experiments involve numerous instruments of different types, specifications, and uses. Since some physical experiment instruments have specific requirements for environmental conditions, such as moisture-proof, dust-proof, and corrosion-proof, a suitable storage device is needed to ensure the safe storage of these items and reduce the risk of damage.
[0004] The inventor found the following problems in the prior art during the implementation of the present utility model: 1. Currently, most physical experiment instruments are stored in simple storage cabinets, which lack functional differentiation. Different types of instruments may be mixed together, such as large instruments and small instruments, etc. This will result in spending more time in searching for specific instruments, and the cables of some devices are not fixed in a proper cable groove, resulting in being mixed together, and it takes time to organize them during use. 2. Some large devices are directly placed in the storage cabinet, and when taken out, due to their certain weight, there will inevitably be a problem of collision. Summary of the Utility Model
[0005] The purpose of the present utility model is to provide a storage device for physical experiment equipment, so as to solve the shortcomings of the simple storage cabinet in the above-mentioned background technology, which lacks functional differentiation. Different types of equipment may be mixed together, and it takes time to organize the cables, and some large equipment is prone to collision problems when taken out. To achieve the above purpose, the present utility model provides the following technical solutions: A storage device for physical experiment equipment, including a box body, a large storage box is provided in the box body, the large storage boxes are separated by partitions, the partitions are welded to the inner bottom wall of the box body, a cross-shaped partition is welded to the inner wall of the box body, the bottom of the cross-shaped partition is welded to the top of the partition as a whole, several first-layer plates are slidably connected to one side of the cross-shaped partition, a second-layer plate is welded to the other side of the cross-shaped partition, a storage box is provided on one side of the second-layer plate, one side of the storage box is attached to the inner wall of the box body, the bottom of the storage box is bolted to the surface of the lowest point of the cross-shaped partition, several rack plates welded to the inner top wall of the box body are provided on the top of the storage box, a drying box is provided on one side of the box body, the drying box is located between the storage box and the rack plates and on the opposite side of the second-layer plate, a pull-out box is slidably connected to the inside of the drying box, a dust-proof plate is inserted and connected to one side of the outer wall of the box body, the dust-proof plate is on the same side as the drying box, a blocking block is attached to the surface of the dust-proof plate, the blocking block is rotatably connected to the outer wall of the box body, and a plug fixer and a wire bundler are respectively provided on the surface of the box door from top to bottom.
[0006] The top and one side of the large storage box are respectively rotatably connected with a top plate and a side plate, and the two ends of the outer wall of the large storage box are respectively rotatably connected with limiting rings distributed at right angles, and limiting blocks that are snap-fitted with the limiting rings are respectively bolted to the corresponding positions of the outer walls of the top plate and the side plate.
[0007] Further preferably, the bottom outer wall of the side of the box body adjacent to the large storage box is in an inclined slope shape, and the large storage boxes are respectively slidably connected to two independent cavities formed in the box body through partitions perpendicular to the bottom of the cross-shaped partition, and the top plate and the side plate respectively form a flipping structure on the top and one side of the large storage box, and a strip structure is provided at the end where the top plate and the side plate are in contact with each other at the top and is inserted into the notch at the top of the side plate.
[0008] Further preferably, the top plate and the side plate are respectively snap-fitted with the large storage box through the limiting rings and the limiting blocks, a handle is rotatably connected to the outer wall of the side plate, several circular compaction blocks are glued to the inner wall of the side plate through springs, and a buffer elastic layer opposite to the compaction blocks is glued to one side of the inner wall of the large storage box through a spring.
[0009] Further preferably, the first layer board and the second layer board are located in two independent spaces inside the box body through a cross-shaped partition board. On one side of the cross-shaped partition board, a number of sliding grooves for slidably connecting the first layer board are equidistantly provided on one side of the inner wall of the box body. The second layer boards are parallelly distributed, with the same width as the first layer board, and the length is half of the length of the first layer board.
[0010] Further preferably, the mounting board has an arc-shaped structure with an arc-shaped notch inside, and the mounting board is parallelly distributed in the cavity between the cross-shaped partition board and the box body.
[0011] Further preferably, ventilation holes are provided through the outer wall of the box body at positions corresponding to the drying box and the dust-proof board. Exhaust through holes are respectively provided through the surfaces of the drying box and the drawer box. The dust-proof board is snap-fitted to the outer wall of the box body through a stopper. At the same time, a number of hooks fixed to the inner wall of the box body are provided above the drying box.
[0012] Further preferably, the plug holder is composed of two opposite C-shaped metal parts. Below each group of holders, two groups of parallelly distributed wire bundlers are correspondingly provided. Each wire bundler is composed of two semi-circular rubber parts, and they are respectively glued to the door panel of the box body through springs. At the same time, an acrylic material identification board is provided below the wire bundler.
[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0014] In the present utility model, the storage device provides an optimized storage method for different types of experimental instruments. The double-opening structure of the large storage box, the internal protection measures, and the convenient extraction method significantly reduce the collision risk during the taking and handling of the device, improving the safety of the device. At the same time, devices with different requirements for ventilation and reduced ventilation can be stored in different zones, and the first layer board is adjustable. The mounting board can specifically place rods, fully considering the diversified characteristics of the device, improving the space utilization efficiency and the orderliness of storage.
[0015] In the present utility model, the ventilation cavity of the storage device has double protection of the drying box and the dust-proof board, ensuring a good storage environment for the device. Combining the plug holder, wire bundler, and identification board on the door panel effectively organizes the cables, avoiding chaos and damage, and improving the convenience and efficiency of experimental operations. Compared with storage devices lacking these functions, it has obvious advantages. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is the front view structural schematic diagram of the present utility model;
[0017] Figure 2 It is the front view internal structural schematic diagram of the present utility model;
[0018] Figure 3Schematic diagram of the structure of the large storage box of the present utility model;
[0019] Figure 4 Schematic diagram of the distribution structure of the plug fixer and the wire bundler of the present utility model;
[0020] Figure 5 Schematic diagram of the structure of the drying box of the present utility model;
[0021] Figure 6 Schematic diagram of the structure of the dust-proof plate of the present utility model.
[0022] In the figure: 1, the box body; 2, the large storage box; 201, the top plate; 202, the side plate; 203, the limiting ring; 204, the limiting block; 205, the handle; 206, the compaction block; 207, the buffer elastic layer; 3, the partition board; 4, the cross-shaped partition board; 5, the first layer board; 6, the second layer board; 7, the storage box; 8, the placement board; 9, the drying box; 10, the pull-out box; 11, the dust-proof plate; 12, the stop block; 13, the plug fixer; 14, the wire bundler. Specific implementation manner
[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the protection scope of the present utility model.
[0024] Please refer to Figures 1 to 6 , the present utility model provides a technical solution: a storage device for physical experiment equipment, including a box body 1, a large storage box 2 is provided in the box body 1, the large storage boxes 2 are spaced apart by a partition board 3, the partition board 3 is welded to the inner bottom wall of the box body 1, a cross-shaped partition board 4 is welded to the inner wall of the box body 1, the bottom of the cross-shaped partition board 4 is welded to the top of the partition board 3 as a whole, several first layer boards 5 are slidably connected to one side of the cross-shaped partition board 4, a second layer board 6 is welded to the other side of the cross-shaped partition board 4, a storage box 7 is provided on one side of the second layer board 6, the storage box 7 is attached to the inner wall of the box body 1, the bottom of the storage box 7 is bolted to the surface of the lowest end point of the cross-shaped partition board 4, several placement boards 8 welded to the inner top wall of the box body 1 are provided on the top of the storage box 7, a drying box 9 is provided on one side of the box body 1, the drying box 9 is located between the storage box 7 and the placement board 8 and on the opposite side of the second layer board 6, a pull-out box 10 is slidably connected to the inside of the drying box 9, a dust-proof plate 11 is inserted and connected to one side of the outer wall of the box body 1, the dust-proof plate 11 is on the same side as the drying box 9, a stop block 12 is attached to the surface of the dust-proof plate 11, the stop block 12 is rotatably connected to the outer wall of the box body 1, a plug fixer 13 and a wire bundler 14 are respectively provided from top to bottom on the surface of the door panel of the box body 1;
[0025] The top and one side of the large storage box 2 are respectively rotatably connected with a top plate 201 and a side plate 202. The two ends of the outer wall of the large storage box 2 are respectively rotatably connected with limiting rings 203 distributed at right angles. Corresponding positions on the outer walls of the top plate 201 and the side plate 202 are respectively bolted with limiting blocks 204 that are snap-fitted with the limiting rings 203.
[0026] In this embodiment, as Figure 1 , Figure 2 and Figure 3 shown, the bottom outer wall of the side adjacent to the large storage box 2 of the box body 1 is in an inclined slope shape, and the large storage boxes 2 are respectively slidably connected to two independent cavities formed in the box body 1 through partitions 3 perpendicular to the bottom of the cross-shaped partition 4. Moreover, the top plate 201 and the side plate 202 respectively form a flipping structure on the top and one side of the large storage box 2. At the same time, a strip-shaped structure is opened at one end of the top plate 201 that fits against the top of the side plate 202 and is inserted into the notch at the top of the side plate 202; compared with many current large-scale related experimental equipment directly placed in storage cabinets, collisions may occur when taking and placing them. By adding the large storage box 2, it provides protection for the equipment. During daily storage, the equipment can be placed in the large storage box 2, which acts as a separate storage box. The double-opening structure of its top plate 201 and side plate 202 provides a sufficient opening area, making it extremely convenient to place or take out the internal equipment without having to fumble laboriously in a narrow space, greatly improving the operation convenience. And by directly sliding the large storage box 2, it can be taken out through the slope at the bottom of the box body 1. Compared with the method of directly placing many large-scale physical experiment-related equipment in cabinets, the probability of collision when directly taking the equipment is significantly reduced, and the risk of equipment damage is lowered.
[0027] In this embodiment, as Figure 3As shown, the top plate 201 and the side plate 202 are respectively engaged with the large storage box 2 through the limiting ring 203 and the limiting block 204. A handle 205 is rotatably connected to the outer wall of the side plate 202, and a number of circular compaction blocks 206 are adhesively connected to the inner wall of the side plate 202 through springs. At the same time, a buffer elastic layer 207 opposite to the compaction block 206 is adhesively connected to one side of the inner wall of the large storage box 2 through a spring; First, the top plate 201 and the side plate 202 are fixed to the large storage box 2 through the limiting ring 203 and the limiting block 204. The elastic structure of the limiting block 204 provides the tension during connection, improving the stability of the fixation of the top plate 201 and the side plate 202 to the large storage box 2. Moreover, the engaging structure is simple and convenient for loading and unloading, reducing complex operation steps. The insertion structure of the top plate 201 and the side plate 202 reduces looseness, further enhancing the overall stability. At the same time, the handle 205 provides a convenient grasping point for extraction and handling, reducing the operation difficulty. During the extraction and handling of the large storage box 2, the internal equipment may rotate. Through the combination of the compaction blocks 206 with elastic structures on both sides and the buffer elastic layer 207, it not only fixes the stored equipment to prevent it from shaking in the storage box but also provides good protection for the equipment during handling, effectively reducing the impact of collision and shaking on the equipment.
[0028] In this embodiment, as Figure 2 shown, the first layer plate 5 and the second layer plate 6 are located in two independent spaces inside the box body 1 through the cross-shaped partition 4. One side of the cross-shaped partition 4 is equidistantly provided with a number of chutes for slidably connecting the first layer plate 5 with one side of the inner wall of the box body 1. The second layer plates 6 are parallelly distributed, with the same width as the first layer plate 5 and a length that is half of the length of the first layer plate 5. Due to fully considering the diversified characteristics of physical experiment equipment, the two independent spaces formed by the cross-shaped partition 4 and the partition 3 inside the box body 1 can be designed to place equipment that requires ventilation and equipment that requires reduced ventilation, accurately meeting the special ventilation requirements of different equipment, enabling various equipment to be stored in a suitable environment, thus ensuring the stable performance and service life of the equipment, enhancing the utilization efficiency of the space of the box body 1, achieving the optimal allocation of space, and by adjusting the position of the first layer plate 5, different height areas can be divided inside the box body 1, facilitating the classified storage of equipment and making the storage more orderly and regular.
[0029] In this embodiment, as Figure 2 and Figure 5As shown, the mounting plate 8 has an arc-shaped structure with an arc-shaped notch inside, and the mounting plate 8 is distributed in parallel in the cavity between the cross-shaped partition 4 and the box body 1; when conducting complex physical experiments, various rods of different lengths and specifications may be needed, and the arc-shaped notch formed by the mounting plate 8 can hold such instruments. The rods are stored separately and will not be mixed with other instruments, avoiding chaos when looking for specific rods and saving time.
[0030] In this embodiment, as Figure 2 , Figure 5 and Figure 6 shown, on one side of the outer wall of the box body 1, ventilation holes are provided through corresponding to the positions of the drying box 9 and the dust-proof plate 11. Exhaust through holes are respectively provided through the surfaces of the drying box 9 and the drawer box 10. The dust-proof plate 11 is snap-connected to the outer wall of the box body 1 through a stopper 12. At the same time, several hooks fixed on the inner wall of the box body 1 are provided above the drying box 9; to avoid the risk of the instruments stored in the ventilation cavity inside the box body 1 becoming too wet or being eroded by dust, through the double protection inside and outside of the drying box 9 and the dust-proof plate 11, the drying box 9 can continuously and effectively absorb the moisture inside and outside, maintaining a dry internal environment, which can significantly reduce the risk of equipment damage or performance degradation caused by moisture. The dust-proof plate 11 can effectively block the outside dust particles from entering the inside of the box body 1, avoiding the equipment from being polluted and eroded by dust, thereby ensuring the accuracy and normal operation of the equipment. From the good comprehensive conditions of ventilation, drying and dust-proof, a stable and suitable storage space is created for the equipment. At the same time, the hooks above the drying box 9 greatly improve the utilization rate of the internal space of the box body 1. These hooks can be used to hang some small but commonly used tools or accessories, which are easy to access and further improve the convenience of experimental operations.
[0031] In this embodiment, as Figure 2 and Figure 4As shown in the figure, the plug holder 13 is composed of two opposite C-shaped metal parts. And below each group of plug holders 13, two groups of parallel wire bundlers 14 are correspondingly arranged. The wire bundler 14 is composed of two semi-circular rubber parts, and they are respectively glued to the door panel of the box body 1 through springs. At the same time, an acrylic identification plate is provided below the wire bundler 14. The double C-shaped plug holder 13 can firmly clamp the plug to prevent the plug from loosening, and the cable at the bottom of the plug is fixed through the wire bundler 14 to bind the cable, making it neat and reducing the chaos of the cable. Combining its elastic structure, it can adapt to cables of different thicknesses. And by adding an acrylic identification plate, the experimenter can clearly mark the device information corresponding to each cable, facilitating quickly and accurately finding the required cable, and reasonably utilizing the space of the door panel of the box body 1 without additionally occupying the internal storage space, optimizing the overall space utilization. Compared with the current storage devices lacking this function, there are often situations where it is difficult to distinguish due to cable chaos, and even the plug is damaged, affecting the progress of the experiment.
[0032] The usage method and advantages of the present utility model: When using this physical experiment equipment storage device, the working process is as follows:
[0033] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 and Figure 6As shown in the figure, first, larger physical experimental equipment can be stored in the large storage box 2. The limit rings 203 buckled on the surfaces of the top plate 201 and the side plates 202 are taken off from the corresponding limit blocks 204 on their surfaces. The top plate 201 is flipped over in advance, and then the side plates 202 are flipped. After the equipment is placed inside the open large storage box 2, when the side plates 202 are closed, the compaction blocks 206 on their surfaces will squeeze and fit against the outer wall of the equipment. If the equipment is too large, the buffer elastic layer 207 on the other side will be squeezed and compress the spring connected to the inner wall of the large storage box 2, and at the same time, the limit ring 203 is pulled to buckle it on the limit blocks 204 at both ends of the outer wall of the side plate 202. The top plate 201 is flipped again. After the top plate 201 is flipped to 90°, it can be inserted into the slot on the top of the side plate 202, and it is fixed on the top of the large storage box 2 through the clamping structure of the limit ring 203 and the limit block 204 in the same installation method. Then, it is slid into the cavity separated by the internal partition 3 of the box body 1 through the handle 205 outside the large storage box 2 respectively. Some smaller physical instruments can be placed in categories according to their storage conditions. For example, some precision measuring equipment sensitive to air flow can adjust the position of the first layer plate 5 installed in the chute between the cross-shaped partition 4 and the box body 1 according to its height, and the equipment that needs ventilation is placed on the surface of the second layer plate 6. If there are some items in the rods, they can be placed in the arc-shaped slots of the placement plate 8. And some experimental-related consumables or small tool accessories are separately placed in the multiple sliding drawers independently set in the storage box 7. And the plugs of the cables are placed on the plug fixer 13, and the cables at the bottom pass through and are fixed by the cable bundler 14 below. If the cables are too thick, the two semi-circular rubber parts in the cable bundler 14 will expand outward under the elastic structure by pressing the clamped cables, and the corresponding identification cards can be inserted into the acrylic identification plate below the cable bundler 14 according to the connected equipment corresponding to the cables for reminder. During storage, the external dust-proof plate 11 can intercept dust without affecting the ventilation of the box body 1. It can be removed for cleaning by rotating the stop block 12. It is made of polyester fiber, with a relatively high filtration accuracy and good air permeability, and can be reused after cleaning. When reinstalling, it can be inserted into the corresponding slot of the box body 1 and fixed by rotating the stop block 12. When the desiccant in the drying box 9 needs to be replaced, the drawer box 10 can be slid out to replace the desiccant packet inside.
[0034] The above has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present utility model and are not used to limit the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. A storage device for physical experiment equipment, comprising a box (1), characterized in that: A large storage box (2) is provided in the box body (1), and the large storage boxes (2) are separated by partitions (3). The partitions (3) are welded to the inner bottom wall of the box body (1). A L-shaped partition (4) is welded to the inner wall of the box body (1). The bottom of the L-shaped partition (4) is welded to the top of the partition (3) as a whole. One side of the L-shaped partition (4) is slidably connected to a plurality of first layer plates (5). The other side of the L-shaped partition (4) is welded to a second layer plate (6). A storage box (7) is provided on one side of the second layer plate (6). One side of the storage box (7) is attached to the inner wall of the box body (1). The bottom of the storage box (7) is connected to the surface of the lowest end point of the L-shaped partition (4) by bolts. The top of the box (7) is provided with a plurality of mounting plates (8) welded to the inner top wall of the box body (1); a drying box (9) is provided on one side of the box body (1); the drying box (9) is located between the storage box (7) and the mounting plate (8) and on the opposite side of the second layer plate (6); a pull-out box (10) is slidably connected inside the drying box (9); a dustproof plate (11) is plug-connected to one side of the outer wall of the box body (1); the dustproof plate (11) is on the same side as the drying box (9); a stopper (12) is fitted and connected to the surface of the dustproof plate (11); the stopper (12) is rotatably connected to the outer wall of the box body (1); a plug holder (13) and a cable tie (14) are provided on the surface of the door panel of the box body (1) from top to bottom; The top and one side of the large storage box (2) are rotatably connected to a top plate (201) and a side plate (202), respectively; both ends of the outer wall of the large storage box (2) are rotatably connected to right-angled limit rings (203); corresponding positions of the outer walls of the top plate (201) and the side plates (202) are respectively connected by bolts to limit blocks (204) that are snap-fitted with the limit rings (203).
2. A physical experiment equipment storage device according to claim 1, characterized in that: The outer wall of the bottom of the box body (1) adjacent to the large storage box (2) is in an inclined slope shape, and the large storage boxes (2) are respectively slidably connected to two independent cavities formed in the box body (1) through partitions (3) perpendicular to the bottom of the L-shaped partition (4), and the top plate (201) and the side plate (202) respectively form a flip structure at the top and one side of the large storage box (2), and at the same time, a strip structure is provided at one end of the top plate (201) that is in contact with the top of the side plate (202) and is inserted into a notch at the top of the side plate (202).
3. A physical experiment equipment storage device according to claim 1, characterized in that: The top plate (201) and the side plate (202) are respectively connected to the large storage box (2) by a stop ring (203) and a stop block (204), and the outer wall of the side plate (202) is rotatably connected to a handle (205), and the inner wall of the side plate (202) is connected to a plurality of circular compacting blocks (206) by spring gluing, and at the same time, one side of the inner wall of the large storage box (2) is connected to a buffer elastic layer (207) arranged opposite to the compacting block (206) by spring gluing.
4. A physical experiment equipment storage device according to claim 1, characterized in that: The first layer board (5) and the second layer board (6) are located in two independent spaces in the box body (1) through the L-shaped partition board (4), and a plurality of sliding grooves for slidingly connecting the first layer board (5) are provided at equal distances on one side of the L-shaped partition board (4) and the inner wall side of the box body (1), and the second layer boards (6) are parallelly distributed and have the same width as the first layer boards (5), and their length is half of the length of the first layer boards (5).
5. A physical experiment equipment storage device according to claim 1, characterized in that: The mounting plate (8) is an arc-shaped structure with an arc-shaped notch provided inside, and the mounting plate (8) is distributed in parallel along the cavity between the L-shaped partition plate (4) and the box body (1).
6. A physical experiment equipment storage device according to claim 1, characterized in that: A ventilation hole is provided through one side of the outer wall of the box body (1) at a position corresponding to the drying box (9) and the dustproof plate (11), and exhaust holes are provided through the surfaces of the drying box (9) and the pull-out box (10), respectively, and the dustproof plate (11) is connected to the outer wall of the box body (1) by snapping through a stopper (12), and a plurality of hooks fixed to the inner wall of the box body (1) are provided above the drying box (9).
7. A physical experiment equipment storage device according to claim 1, characterized in that: The plug holder (13) is composed of two C-shaped metal parts arranged opposite to each other, and two groups of parallel-distributed cable ties (14) are arranged correspondingly below each group of plug holders (13). The cable ties (14) are composed of two semicircular rubber parts and are respectively glued to the door panels of the box body (1) through springs. At the same time, an acrylic identification plate is arranged below the cable ties (14).