Storage cabinet with inner cavity space adjustable structure
By installing an electrically controlled horizontal sliding and vertical lifting mechanism inside the locker, combined with a guide separation frame and a magnetically controlled telescopic separation arm, the problem of low space utilization in the locker is solved, and flexible adjustment and precise monitoring of the chamber are achieved, thus improving its applicability.
Patent Information
- Application Number
- CN202511285114.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2025-11-18
AI Technical Summary
Existing lockers do not make good use of vertical space. Although partitions can adjust the size of the compartments, the structure cannot be adjusted, resulting in limited applicability.
An electrically controlled horizontal sliding mechanism and a vertical lifting mechanism are installed inside the locker. Combined with a guide separation frame and a magnetically controlled telescopic separation arm, the vertical and horizontal isolation components are adjustable. The size of the chamber can be flexibly adjusted through the cooperation of electrical and magnetic control.
It enables flexible adjustment of the internal chambers of the locker, improves space utilization, enhances applicability, and monitors the adjustment accuracy through pressure sensors.
Smart Images

Figure CN120959526A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of storage container technology, and in particular to a storage cabinet with an adjustable internal cavity structure. Background Technology
[0002] Storage cabinets, as the name suggests, are cabinets used for storing items. Due to their simple structure, ease of placement, and large storage space, they are widely used for storing and storing medical supplies. However, current storage cabinets have a fixed internal support area at the bottom, resulting in low utilization of the upper space. Therefore, some partitions that can change the size of the internal chambers have appeared on the market. However, these partitions generally have a non-adjustable structure after production and installation, leading to very limited applicability. Summary of the Invention
[0003] The technical problem that this invention aims to solve is that current storage cabinets do not have a high utilization rate of three-dimensional space, and although partitions can change the size of the internal chambers, their structure cannot be adjusted, resulting in very limited applicability.
[0004] The technical solution adopted by the present invention to solve its technical problem is: a storage cabinet with an adjustable internal cavity structure, including a main cabinet body, wherein an electrically controlled horizontal translation mechanism is installed on the top and bottom surfaces of the main cabinet body, an electrically controlled vertical lifting mechanism is installed on the inner walls of both sides of the main cabinet body, a vertically arranged vertical isolation component controlled by the upper and lower electrically controlled horizontal translation mechanism is arranged inside the main cabinet body, a horizontally arranged horizontal isolation component controlled by the electrically controlled vertical lifting mechanism on both sides is arranged inside the main cabinet body, and a guide separation frame is arranged inside the main cabinet body on the inner side of both the electrically controlled horizontal translation mechanism and the electrically controlled vertical lifting mechanism.
[0005] The electrically controlled horizontal translation mechanism includes an electrically controlled translation screw installed horizontally on the top and bottom surfaces of the main cabinet, an internally threaded translation seat threaded onto the electrically controlled translation screw, and a magnetically controlled telescopic separation arm installed on the internally threaded translation seat. The electrically controlled vertical lifting mechanism includes an electrically controlled lifting screw installed longitudinally on the inner walls of both sides of the main cabinet, an internally threaded lifting seat threaded onto the electrically controlled lifting screw, and a second magnetically controlled telescopic separation arm installed on the internally threaded lifting seat.
[0006] Both the longitudinal and transverse isolation components consist of an internal partition strip, lateral connecting frames installed at both ends of the internal partition strip, and end limiting frames elastically fitted to the ends of the lateral connecting frames.
[0007] The guide separation frame has a lateral limiting groove on its surface near the electrically controlled horizontal translation mechanism and the electrically controlled vertical lifting mechanism, which cooperates with the end limiting frame.
[0008] The vertical isolation components and the horizontal isolation components are arranged in a staggered manner.
[0009] Both the first and second magnetically controlled telescopic separation arms include a sliding adjustment arm, an embedded electromagnet, and an iron spring controlled by the embedded electromagnet.
[0010] The lateral connecting frame has telescopic holes at its ends, and the two ends of the end limiting frame are inserted into the telescopic holes and slidably assembled with the lateral connecting frame.
[0011] The guide separation frame has a strip-shaped guide opening inside that cooperates with the lateral connecting frame.
[0012] The end limiting frame has limiting heads at both ends, and a compression spring is installed inside the limiting head.
[0013] A pressure sensor module is installed on the contact surface between the limiting head and the compression spring.
[0014] The beneficial effects of this invention are: (1) The storage cabinet with adjustable internal cavity space of the present invention has an electrically controlled horizontal translation mechanism for controlling the longitudinal isolation component installed on the top and bottom surfaces of the main cabinet body, and an electrically controlled vertical lifting mechanism for controlling the horizontal isolation component installed on the inner walls of both sides of the main cabinet body. The specifications and size of the internal cavity of the main cabinet body can be adjusted as needed, and the scope of application is wider. (2) Inside the main cabinet, there are guide separation frames located on the inner side of the electrically controlled horizontal translation mechanism and the electrically controlled vertical lifting mechanism. The vertical isolation component and the horizontal isolation component can be fixed and limited by the lateral limiting groove on the inner side, so as to ensure the structural strength after adjustment and not affect the adjustment. (3) A pressure sensor module is installed on the contact surface between the limit head and the compression spring, which can be electrically monitored according to the placement position to improve the adjustment accuracy. Attached Figure Description
[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0016] Figure 1 This is a schematic diagram of the structure of the present invention.
[0017] Figure 2 This is a schematic diagram of the internal structure of the present invention.
[0018] Figure 3 This is a schematic diagram of the layout of the vertically placed isolation component and the horizontally placed isolation component in this invention.
[0019] Figure 4 This is a partial schematic diagram of the adjusting end of the vertical isolation component in this invention. Detailed Implementation
[0020] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the invention, and therefore only show the components relevant to the invention.
[0021] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0022] Figure 1 , Figure 2 , Figure 3 and Figure 4 The locker shown has an adjustable internal cavity structure, including a main cabinet 1. The top and bottom surfaces of the main cabinet 1 are equipped with electrically controlled horizontal sliding mechanisms 2. The inner walls on both sides of the main cabinet 1 are equipped with electrically controlled vertical lifting mechanisms 3. The main cabinet 1 is longitudinally arranged with vertical isolation components 4 controlled by the upper and lower electrically controlled horizontal sliding mechanisms 2. The main cabinet 1 is laterally arranged with horizontal isolation components 5 controlled by the two sides of the electrically controlled vertical lifting mechanisms 3. The main cabinet 1 is equipped with guide separation frames 6 inside the main cabinet 1, located inside the electrically controlled horizontal sliding mechanisms 2 and the electrically controlled vertical lifting mechanisms 3.
[0023] Adjustment principle: People open the front door of the main cabinet 1, and then adjust the position of the electric horizontal sliding mechanism 2 and the electric vertical lifting mechanism 3 through the control panel on the outside of the main cabinet 1, thereby changing the relative position of the vertical isolation component 4 and the horizontal isolation component 5. Thus, multiple storage positions of different sizes can be set inside the main cabinet 1, making it convenient to place different items.
[0024] To facilitate electrically controlled translation and lifting, the electrically controlled horizontal translation mechanism 2 includes an electrically controlled translation screw 21 horizontally installed on the inner top and inner bottom surfaces of the main cabinet 1, an internally threaded translation seat 22 threaded onto the electrically controlled translation screw 21, and a first magnetically controlled telescopic separation arm 23 installed on the internally threaded translation seat 22. The electrically controlled vertical lifting mechanism 3 includes an electrically controlled lifting screw 31 vertically installed on the inner walls of both sides of the main cabinet 1, an internally threaded lifting seat 32 threaded onto the electrically controlled lifting screw 31, and a second magnetically controlled telescopic separation arm 33 installed on the internally threaded lifting seat 32.
[0025] The electrically controlled translation screw 21 can drive the internal thread translation seat 22 to move synchronously on the top and bottom surfaces of the main cabinet 1 by rotation, while the electrically controlled lifting screw 31 can drive the internal thread lifting seat 32 to move synchronously up and down on both sides of the inner wall of the main cabinet 1 by rotation.
[0026] The function of the first magnetically controlled telescopic separation arm 23 and the second magnetically controlled telescopic separation arm 33 is to separate and connect with the longitudinally placed isolation component 4 and the transversely placed isolation component 5 by telescopic extension.
[0027] To accommodate internal support, end limiting, and elastic adjustment, both the longitudinal isolation component 4 and the transverse isolation component 5 consist of an internal partition strip 451, lateral connecting frames 452 installed at both ends of the internal partition strip 451, and end limiting frames 453 elastically fitted at the ends of the lateral connecting frames 452.
[0028] The vertically placed isolation component 4 has 6 internal partition bars 451, while the horizontally placed isolation component 5 has 5 internal partition bars 451, and each internal partition bar 451 can be controlled independently.
[0029] To accommodate the end limit, the guide separation frame 6 has a lateral limit groove 61 on its surface near the electrically controlled horizontal translation mechanism 2 and the electrically controlled vertical lifting mechanism 3, which cooperates with the end limit frame 453.
[0030] When the electrically controlled horizontal translation mechanism 2 separates from the vertical isolation component 4, and the electrically controlled vertical lifting mechanism 3 separates from the horizontal isolation component 5, the two ends of the vertical isolation component 4 and the two ends of the horizontal isolation component 5 will be locked into the lateral limiting groove 61, thus keeping the positions of the vertical isolation component 4 and the horizontal isolation component 5 fixed.
[0031] To avoid mutual interference, the vertical isolation component 4 and the horizontal isolation component 5 are staggered.
[0032] To facilitate magnetic telescopic adjustment, both the first magnetic telescopic separation arm 23 and the second magnetic telescopic separation arm 33 include a sliding adjustment arm 231, an embedded electromagnet 232, and an iron spring 233 controlled by the embedded electromagnet 232.
[0033] When it is necessary to control the separation of the longitudinal isolation component 4 from the guide separation frame 6 or the transverse isolation component 5 from the guide separation frame 6, the embedded electromagnet 232 is turned off, the iron spring 233 loses its magnetic attraction, and the iron spring 233 extends and compresses the sliding adjustment arm 231 to extend towards the guide separation frame 6. The folded end of the sliding adjustment arm 231 extends to one side of the end limit frame 453. Then, as the internal thread translation seat 22 translates or the internal thread lifting seat 32 rises and falls, it is inserted between the end limit frame 453 and the guide separation frame 6. Then, the embedded electromagnet 232 is activated, controlling the iron spring 233 to retract. The end limit frame 453 is separated from the lateral limit groove 61 by the sliding adjustment arm 231. In this way, the electrically controlled transverse translation mechanism 2 can control the translation of the longitudinal isolation component 4, and the electrically controlled longitudinal lifting mechanism 3 can control the rise and fall of the transverse isolation component 5.
[0034] To facilitate assembly, the end of the side connecting frame 452 is provided with a telescopic hole, and the two ends of the end limiting frame 453 are inserted into the telescopic hole and slidably assembled with the side connecting frame 452.
[0035] To facilitate installation and guidance, the guide separation frame 6 has a strip guide opening 62 inside that cooperates with the side connection frame 452.
[0036] The lateral connecting frame 452 and the end limiting frame 453 are respectively disposed on both sides of the guide separation frame 6. The two ends of the end limiting frame 453 pass through the strip guide opening 62 and are movably assembled with the lateral connecting frame 452 through the telescopic hole.
[0037] To accommodate the elastic compression adjustment, the end limit frame 453 has limit heads 454 at both ends, and a compression spring 455 is installed inside the limit head 454.
[0038] The function of the limiting head 454 is to prevent the two ends of the end limiting frame 453 from detaching from the telescopic hole, while the compression spring 455 is used to control the lateral connecting frame 452 to be close to the end limiting frame 453.
[0039] To facilitate pressure monitoring, a pressure sensor module 456 is installed on the contact surface between the limit head 454 and the compression spring 455.
[0040] When an item is placed inside the vertical isolation component 4 and the horizontal isolation component 5, the item will contact the internal partition strip 451, which will then pull on the lateral connecting frames 452 at both ends. This will increase the distance between the lateral connecting frames 452 and the end limiting frames 453, thereby controlling the compression spring 455. The pressure sensor module 456, which is in contact with one end of the compression spring 455, monitors the pressure value to determine the storage status. For example, if the pressure value is high, the electrically controlled horizontal translation mechanism 2 can be separated from the vertical isolation component 4, and the electrically controlled vertical lifting mechanism 3 can be separated from the horizontal isolation component 5.
[0041] Based on the above-described preferred embodiments of the present invention, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the inventive concept. The technical scope of this invention is not limited to the contents of the specification, but must be determined according to the scope of the claims.
Claims
1. A storage cabinet with an adjustable internal cavity structure, comprising a main cabinet body (1), characterized in that: The main cabinet (1) is equipped with an electrically controlled horizontal translation mechanism (2) on its inner top and bottom surfaces. The main cabinet (1) is equipped with an electrically controlled vertical lifting mechanism (3) on both sides of its inner walls. The main cabinet (1) is equipped with a vertically arranged vertical isolation component (4) controlled by the upper and lower electrically controlled horizontal translation mechanisms (2) inside its interior. The main cabinet (1) is equipped with a horizontally arranged horizontal isolation component (5) controlled by the electrically controlled vertical lifting mechanisms (3) on both sides inside its interior. The main cabinet (1) is equipped with a guide separation frame (6) located inside the electrically controlled horizontal translation mechanism (2) and the electrically controlled vertical lifting mechanism (3).
2. A storage cabinet with an adjustable internal cavity structure according to claim 1, characterized in that: The electrically controlled horizontal translation mechanism (2) includes an electrically controlled translation screw (21) installed horizontally on the inner top and inner bottom surfaces of the main cabinet (1), an internal thread translation seat (22) threaded onto the electrically controlled translation screw (21), and a magnetically controlled telescopic separation arm (23) installed on the internal thread translation seat (22). The electrically controlled vertical lifting mechanism (3) includes an electrically controlled lifting screw (31) installed vertically on the inner walls of both sides of the main cabinet (1), an internal thread lifting seat (32) threaded onto the electrically controlled lifting screw (31), and a second magnetically controlled telescopic separation arm (33) installed on the internal thread lifting seat (32).
3. A storage cabinet with an adjustable internal cavity structure according to claim 1, characterized in that: Both the longitudinal isolation component (4) and the transverse isolation component (5) are composed of an internal partition strip (451), a lateral connecting frame (452) installed on both sides of the internal partition strip (451), and an end limiting frame (453) elastically fitted to the end of the lateral connecting frame (452).
4. A storage cabinet with an adjustable internal cavity structure according to claim 3, characterized in that: The guide separation frame (6) has a lateral limiting groove (61) on its surface near the electrically controlled horizontal translation mechanism (2) and the electrically controlled vertical lifting mechanism (3) that cooperates with the end limiting frame (453).
5. A storage cabinet with an adjustable internal cavity structure according to claim 1, characterized in that: The vertical isolation component (4) and the horizontal isolation component (5) are arranged in a staggered manner.
6. A storage cabinet with an adjustable internal cavity structure according to claim 2, characterized in that: The first magnetically controlled telescopic separation arm (23) and the second magnetically controlled telescopic separation arm (33) both include a sliding adjustment arm (231), an embedded electromagnet (232), and an iron spring (233) controlled by the embedded electromagnet (232).
7. A storage cabinet with an adjustable internal cavity structure according to claim 3, characterized in that: The lateral connecting frame (452) has a telescopic hole at its end, and the two ends of the end limiting frame (453) are inserted into the telescopic hole and slidably assembled with the lateral connecting frame (452).
8. A storage cabinet with an adjustable internal cavity structure according to claim 3, characterized in that: The guide separation frame (6) has a strip guide opening (62) inside that cooperates with the side connection frame (452).
9. A storage cabinet with an adjustable internal cavity structure according to claim 3, characterized in that: The end limiting frame (453) has limiting heads (454) at both ends, and a compression spring (455) is installed inside the limiting head (454).
10. A storage cabinet with an adjustable internal cavity space according to claim 9, characterized in that: A pressure sensor module (456) is installed on the contact surface between the limiting head (454) and the compression spring (455).