A smart storage cabinet that supports drawer repositioning
By combining the main control system with liquid metal partitions, the drawer storage space can be dynamically adjusted, solving the problem that existing intelligent storage cabinets cannot be flexibly adjusted, and improving the utilization and adaptability of the storage cabinets.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- XIAMEN XIANYUE HOSPITAL (XIAMEN MENTAL HEALTH CENT XIANYUE HOSPITAL AFFILIATED TO XIAMEN MEDICAL COLLEGE)
- Filing Date
- 2026-02-11
- Publication Date
- 2026-05-26
AI Technical Summary
Existing smart storage cabinets have fixed drawer specifications and positions at the factory, which cannot be flexibly adjusted according to temporary or subsequent storage needs, resulting in low utilization when storing rare resource samples of different specifications.
It adopts a combination of main cabinet, expansion cabinet, quantum locking compartment module in drawers and main control system. It connects drawers of different specifications through standard drawer positions and standard interfaces. It uses liquid metal partitions to dynamically adjust the storage space in response to changes in electromagnetic field. The main control system calculates the target compartment strategy and the binding relationship of identification information to realize flexible allocation of drawers.
It enables dynamic adjustment of drawer layout, improves the utilization rate of intelligent storage cabinets, reduces manual configuration, adapts to storage needs at different stages, and avoids space waste.
Smart Images

Figure CN122074766A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of equipment configuration technology, and more specifically to an intelligent storage cabinet that supports drawer reconfiguration. Background Technology
[0002] Existing smart storage cabinets typically have their drawer specifications and installation positions fixed at the factory, meaning the relationship between the cabinet and drawers is fixed and users cannot flexibly adjust them according to temporary or subsequent storage needs during actual use. In smart storage cabinets for samples with special control requirements (such as narcotic drugs, fungal strains, etc.) and valuable and rare samples (hereinafter collectively referred to as "rare resource samples"), different sample sizes may require drawers of different sizes, but users cannot easily change them, failing to meet actual control and preservation needs. In logistics or office scenarios, variations in the size and quantity of stored rare resource samples lead to low utilization rates of drawers with fixed specifications. Summary of the Invention
[0003] The purpose of this invention is to provide an intelligent storage cabinet that supports drawer repositioning, and the specific technical solution adopted is as follows: In a first aspect, embodiments of the present invention provide an intelligent storage cabinet that supports drawer configuration, the intelligent storage cabinet comprising: a main cabinet, an expansion cabinet, a quantum locking compartment module inside the drawers, and a main control system, wherein: The main cabinet includes: standard drawer positions and standard interfaces; wherein, the standard drawer positions are connected to drawers of different specifications through standard rail guides and communication interfaces, and each drawer is equipped with identification information; The expansion cabinet is connected to the main cabinet via the standard interface; The quantum locking compartment module inside the drawer includes: a liquid metal partition for storing items, and responds to electromagnetic fields of different frequencies to switch between liquid and solid states to dynamically adjust the storage space of the main cabinet. The main control system is used to calculate a target compartment strategy when it detects that the stored item has been placed in the quantum locking compartment module inside the drawer; and to send electromagnetic fields of different frequencies to the quantum locking compartment module inside the drawer based on the target compartment strategy, so as to guide the liquid metal partition to flow and form a corresponding storage space.
[0004] In some possible implementations, the standard drawer position is set in the identification module, which is used to read the identification information of the drawer when the drawer is inserted, and send an active registration request to the main control system based on the identification information; the main control system, in response to the active registration request, establishes a binding relationship between the identification information of the drawer and the standard drawer position.
[0005] In some possible implementations, the identification module is further configured to send the drawer number, compartment specifications, installation location, and storage status of the stored items to the main control system; the main control system is further configured to bind the drawer number, compartment specifications, installation location, and storage status of the stored items to the standard drawer position to establish the binding relationship.
[0006] In some possible implementations, the main control system is further configured to update the binding relationship between the drawer's identification information and the standard drawer position when a change in the drawer's identification information is detected.
[0007] In some possible implementations, the main control system is also used to establish a new binding relationship between the new identification information and the standard drawer slot when a registration request carrying new identification information is detected, and to store it in a preset database.
[0008] In some possible implementations, the intelligent storage cabinet that supports drawer repositioning also includes: a display interface; The display interface is used to respond to input viewing requests and present the layout information and storage status of the drawer.
[0009] In some possible implementations, the main control system is further configured to use a preset neural network model to predict the target drawer layout in the cabinet, generate adjustment suggestions based on the target drawer layout, and project the adjustment suggestions in real time onto the display interface of the intelligent storage cabinet that supports drawer allocation; when the quantity of any stored item is detected to exceed a preset safety threshold, the quantum cache drawer is opened for temporary storage; if any drawer is detected to be in a failed state, the complete distribution state of the stored items is reconstructed on the spare drawer.
[0010] In some possible implementations, the main cabinet includes: a bionic neural interface and an identification submodule; wherein, the bionic neural interface is used to establish a cross-cabinet drawer hot-swap protocol; The identification submodule is used to establish a virtual mapping of the drawer position when a new expansion cabinet is identified based on the cross-cabinet drawer hot-swap protocol, so that the system can perform seamless access to the drawer when the drawer is moved to the expansion cabinet.
[0011] In some possible implementations, the identification submodule in the main cabinet is also used to acquire data of the stored items and synchronize it to the expansion cabinet when the identification drawer is moved.
[0012] In some possible implementations, the quantum locking compartment module inside the drawer includes compartments for placing each drawer, with partition assemblies of the compartments mounted on telescopic slide rails, and lead screws or racks connected to the bottom or sides of the partition assemblies; the drawer is provided with a drive assembly and a rotating partition with a rotating fulcrum mounted on the bottom of the drawer; the main control system is used to locate the positions of the partition assembly and the rotating partition through sensors, and based on the positions, control the drive assembly to drive the partition assembly to translate along the telescopic slide rails, or drive the rotating partition to change the volume of adjacent compartments; wherein, the partition assembly includes at least one of the following: a folding partition, a multi-segment sleeve partition; the folding partition includes: multiple folding segments connected by hinges; each folding segment has a miniature linear push rod embedded in it, the miniature linear push rod being used to extend or retract the folding segments; the multi-segment sleeve partition includes: nested multi-segment sleeves, each sleeve having a miniature lead screw or push rod embedded in it, being used to drive the sleeve to extend or retract segment by segment.
[0013] In a second aspect, a computer program product is provided, comprising: computer program code, which, when run on a computer, causes the computer to perform the first aspect described above.
[0014] Thirdly, a computer-readable storage medium is provided that stores computer program code, which, when executed on a computer, causes the computer to perform the first aspect described above.
[0015] This invention offers the following advantages: It comprises a main cabinet, an expansion cabinet, standard drawer positions, a quantum-locking compartment module within the drawers, and a main control system, forming an intelligent storage cabinet that supports drawer configuration. The main cabinet includes standard drawer positions and a standard interface. The standard drawer positions connect to drawers of different specifications via standard guide rails and a communication interface. Each drawer is equipped with identification information, allowing for drawer identification and monitoring of changes. The expansion cabinet connects to the main cabinet via the standard interface, enabling flexible expansion of the intelligent storage cabinet. The quantum-locking compartment module within the drawers includes a liquid metal partition for storing items. Responding to electromagnetic fields of different frequencies, the liquid metal partition switches between liquid and solid states to dynamically adjust the storage space. When the main control system detects an item being placed in the quantum-locking compartment module, it calculates a target compartmentation strategy and sends electromagnetic fields of different frequencies to the quantum-locking compartment module based on this strategy, guiding the liquid metal partition to flow and form corresponding storage spaces. In this way, users can change the drawer specifications according to their needs at different stages, improving the device's adaptability. The main control system automatically identifies the drawer's identification information and corresponding binding relationships, reducing manual configuration. By setting the drawer's identification information, the drawer layout can be dynamically adjusted, avoiding space waste and improving the utilization rate of the smart storage cabinet. Attached Figure Description
[0016] To more clearly illustrate the technical solutions and advantages in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of the composition structure of an intelligent storage cabinet that supports drawer reconfiguration, provided in an embodiment of the present invention. Figure 2 This is a schematic diagram of another component structure of an intelligent storage cabinet that supports drawer reconfiguration, provided in an embodiment of the present invention; Figure 3 This is another structural diagram of an intelligent storage cabinet that supports drawer reconfiguration provided in an embodiment of the present invention; Figure 4 This is a schematic diagram of another component structure of an intelligent storage cabinet that supports drawer reconfiguration, provided in an embodiment of the present invention. Figure 5 This is a schematic diagram of another component structure of an intelligent storage cabinet that supports drawer reconfiguration, provided in an embodiment of the present invention; Figure 6 This is a schematic diagram of another component structure of an intelligent storage cabinet that supports drawer reconfiguration, provided in an embodiment of the present invention. Figure 7 This is another structural diagram of an intelligent storage cabinet that supports drawer reconfiguration provided in an embodiment of the present invention; Figure 8 This is a schematic diagram of another component structure of an intelligent storage cabinet that supports drawer reconfiguration, provided in an embodiment of the present invention. Figure 9 This is a schematic diagram of the structure of a computer device provided in an embodiment of the present invention. Detailed Implementation
[0018] To further illustrate the technical means and effects adopted by the present invention to achieve its intended purpose, the following, in conjunction with the accompanying drawings and preferred embodiments, details the specific implementation, structure, features, and effects of an intelligent storage cabinet supporting drawer repositioning according to the present invention. In the following description, different "one embodiment" or "another embodiment" do not necessarily refer to the same embodiment. Furthermore, specific features, structures, or characteristics in one or more embodiments may be combined from any suitable form.
[0019] In the description of the embodiments of the present invention, unless otherwise stated, " / " means "or". For example, A / B can mean A or B. The "and / or" in the text is merely a description of the relationship between related objects, indicating that there can be three relationships. For example, A and / or B can mean: A exists alone, A and B exist simultaneously, and B exists alone. In addition, in the description of the embodiments of the present invention, "multiple" means two or more.
[0020] Hereinafter, the terms "first" and "second" are used for descriptive purposes only and should not be construed as implying or suggesting relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature.
[0021] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains.
[0022] This invention provides an intelligent storage cabinet that supports drawer repositioning. The specific solution of this intelligent storage cabinet with drawer repositioning is described below with reference to the accompanying drawings. Please refer to... Figure 1 This illustration shows a schematic diagram of the structural composition of an intelligent storage cabinet supporting drawer repositioning according to an embodiment of the present invention. The intelligent storage cabinet 100 includes: a main cabinet 101, an expansion cabinet 102, a quantum locking compartment module 103 inside the drawers, and a main control system 104; wherein: The main cabinet 101 includes: standard drawer positions and standard interfaces; wherein, the standard drawer positions are connected to drawers of different specifications through standard rail guides and communication interfaces, and each drawer is equipped with identification information.
[0023] In some possible implementations, the main cabinet includes: a bionic neural interface and an identification submodule; wherein, the bionic neural interface is used to establish a hot-swap protocol across cabinet drawers; The identification submodule is used to establish a virtual mapping of the drawer position when a new expansion cabinet is identified based on the cross-cabinet drawer hot-swap protocol, so that the system can perform seamless access to the drawer when the drawer is moved to the expansion cabinet.
[0024] The identification submodule can be implemented using an identification chip or a sensor.
[0025] The identification submodule in the main cabinet is also used to acquire data of the stored items and synchronize it to the expansion cabinet when the identification drawer is moved.
[0026] Here, each drawer integrates an identification unit, automatically registering its drawer number, compartment specifications, installation location, and the status of rare resource samples (e.g., medicines) within the main control system. A cross-cabinet drawer hot-swappable protocol is established via bionic neural interface synchronization technology. When an expansion cabinet is added, the main cabinet automatically identifies it and establishes a virtual mapping of the drawer's position, ensuring seamless access even if a physical drawer is moved to an expansion cabinet. During drawer migration, rare resource sample data is synchronized in real-time between cabinets via intelligent communication, preventing information loss. After adjusting the drawer position, the system updates information in real-time, ensuring the first-in, first-out (FIFO) and batch-based principles for rare resource sample management. The main control system maintains the mapping relationship between drawer IDs and slot positions in real-time for use by upper-level applications.
[0027] The expansion cabinet 102 is connected to the main cabinet through the standard interface.
[0028] Here, the identification information can be a unique identifier (ID) defined for each drawer. The main cabinet is an independent control unit with pre-reserved standardized drawer mounting positions and expansion interfaces. Each drawer position connects to the drawer via standard rail guides and a communication interface. The drawer position structure is uniformly standardized, compatible with drawers of different sizes. Drawers are fixed to the drawer positions via a plug-in design, allowing for easy disassembly, replacement, and rearrangement; interchangeability between the main cabinet and expansion cabinets does not affect system operation. Each drawer is defined with a unique identifier (ID), which can be implemented via an internal chip. Drawer sizes can be large, medium, small, etc., with standardized physical interfaces to accommodate different drawer slot structures. Figure 2 As shown, the identification chip 33 is installed on the side of the drawer 3, and the electrical connection port 23 is located on the side of the drawer 3.
[0029] In some possible implementations, a standard drawer position is provided in the identification module, which is used to read the identification information of the drawer when it is inserted, and send an active registration request to the main control system based on the identification information.
[0030] Standard drawer positions, such as Figure 3 As shown, in the identification module 22, slot 2 (i.e., standard drawer slot) is located in the identification module 22.
[0031] The main control system, in response to the active registration request, establishes a binding relationship between the identification information of the drawer and the standard drawer position.
[0032] In some possible implementations, the identification module is also used to send the drawer number, compartment specifications, installation location, and storage status of the stored items to the main control system; The main control system is also used to bind the drawer number, compartment specifications, installation position, and storage status of the stored items to the standard drawer position to establish the binding relationship.
[0033] Here, the binding relationship between drawer ID and slot position is as follows: Figure 4 As shown, after drawer ID 51 is bound to slot number 52, it is stored in database 53.
[0034] Each slot in the cabinet is equipped with an identification module to read its unique identifier when a drawer is inserted. Once a drawer is inserted, the cabinet initiates a registration request to the main control system, which then binds the drawer ID to the slot location; for example... Figure 5 As shown, the cabinet 1 is equipped with an identification module 22, a slot 2, and an electrical connection port 23. The direction in which the drawer is inserted into the slot 2 is as shown by the insertion direction arrow 41, and the registration request is as shown by the registration signal 42.
[0035] In some possible implementations, the main control system is also used to update the binding relationship between the drawer's identification information and the standard drawer position when a change in the drawer's identification information is detected.
[0036] Here, when the main control system detects a change in the original drawer ID of a slot (such as drawer replacement or relocation), it automatically updates the binding relationship. For example... Figure 6 As shown, when the old drawer ID61 is detected to have changed to the new drawer ID62, the binding relationship between slot number 52 and the old drawer ID61 is released, and the binding relationship between the new drawer ID62 and slot number 52 is established.
[0037] The main control system is also used to establish a new binding relationship between the new identification information and the standard drawer slot when a registration request carrying new identification information is detected, and to store it in a preset database.
[0038] Here, when a new drawer ID is detected for registration, the system automatically establishes a new binding relationship and stores it in the database.
[0039] In some possible implementations, the main control system is also used to predict the target drawer layout in the cabinet using a preset neural network model, generate adjustment suggestions based on the target drawer layout, and project the adjustment suggestions in real time on the display interface of the intelligent storage cabinet that supports drawer allocation; when the storage quantity of any stored item is detected to exceed a preset safety threshold, the quantum cache drawer is opened for temporary storage; if any drawer is detected to be in a failed state, the complete distribution state of the stored items is reconstructed on the spare drawer.
[0040] Here, the optimal drawer layout is predicted by a reinforcement learning model, and adjustment suggestions are projected in real time on the AR interface; when the inventory of a certain type of medicine is detected to exceed the safety threshold, the quantum cache drawer is automatically activated for temporary storage; if a drawer fails, the complete distribution state of the medicine is reconstructed on the spare drawer based on chaos theory.
[0041] The quantum locking compartment module 103 inside the drawer includes: a liquid metal partition for storing items, and in response to electromagnetic fields of different frequencies, the liquid metal partition switches between liquid and solid states to dynamically adjust the storage space.
[0042] Here, each drawer is an independent module. The internal compartments of the drawers utilize programmable liquid metal partitions. By applying electromagnetic fields of different frequencies, the partitions switch between liquid and solid states, dynamically adjusting the compartment size. When an item is detected being placed inside, the system automatically calculates the optimal compartmentation scheme and guides the liquid metal partitions to flow, creating customized storage space. Guide grooves and mounting holes are pre-drilled inside the drawers, allowing users to replace the compartments with different sizes to suit their medication storage needs.
[0043] The main control system 104 is used to calculate a target compartment strategy when it detects that the stored item has been placed in the quantum locking compartment module inside the drawer; and to send electromagnetic fields of different frequencies to the quantum locking compartment module inside the drawer based on the target compartment strategy, so as to guide the liquid metal partition to flow and form a corresponding storage space.
[0044] The intelligent storage cabinet supporting drawer rearrangement also includes: a display interface; the display interface is used to respond to input viewing requests and present the layout information and storage status of the drawers. The application-layer display interface is as follows: Figure 7As shown, the display interface (i.e., interface window 71) can display the drawer layout diagram 72, the storage status display 73, and the mapping update relationship 63.
[0045] In some possible implementations, the quantum locking compartment module inside the drawer includes compartments for placing individual drawers, with partition assemblies of the compartments mounted on telescopic slides, and lead screws or racks connected to the bottom or sides of the partition assemblies. Here, each compartment's divider is mounted on a telescopic slide rail, with a lead screw / rack connecting to the bottom or side of the divider. A set of stepper motors and lead screws (or micro servo motors and gear sets) is concealed inside the drawer, controlled by the main control system to drive the dividers to move along the slide rails. Multiple dividers can move independently, allowing for adjustable compartment length and width. Furthermore, the stepper motors are equipped with encoders, enabling precise control down to the millimeter level, resulting in high accuracy, good stability, and remote control adjustment.
[0046] The drawer is equipped with a drive assembly and a rotating partition at the bottom of the drawer with a rotating fulcrum. The main control system is used to locate the positions of the partition assembly and the rotating partition through sensors, and control the drive assembly based on the positions to drive the partition assembly to translate along the telescopic slide rail, or to drive the rotating partition to change the volume of adjacent compartments. Here, a rotating fulcrum partition is installed at the bottom of the drawer. Rotating the partition changes the volume of adjacent compartments. The rotation is driven by a miniature stepper motor and a worm gear, with the worm gear self-locking to prevent accidental movement. Sensors can be used to detect the partition's position, enabling automatic positioning, thus extending the mechanical lifespan and providing self-locking safety.
[0047] The partition assembly includes at least one of the following: a folding partition and a multi-segment sleeve partition; the folding partition includes: multiple folding segments connected by hinges; each folding segment has a miniature linear push rod embedded in it, which is used to extend or retract the folding segment to unfold or retract; here, the partition is composed of multiple folding segments connected by hinges, and the miniature linear push rod embedded in the folding segment can extend or retract to unfold / retract the folding segment. When unfolded, it forms a complete partition, and when retracted, it reduces the space occupied, thereby saving structural space, adjusting quickly, and having relatively low cost.
[0048] The multi-segment sleeve-type partition includes: nested multi-segment sleeves, each sleeve having an embedded miniature lead screw or push rod for driving the sleeve to extend or retract segment by segment. Here, the partition is composed of nested multi-segment sleeves (similar to antenna extension and retraction), driven by miniature lead screws / push rods, with each sleeve having a positioning locking structure to prevent sliding when not in operation; thus, the structure is compact, has a large adjustment range, and high reliability.
[0049] Based on the above mechanical structure, a pressure sensor / photoelectric sensor is added inside the compartment to detect the quantity and volume of rare resource samples (such as medicines); the system automatically determines whether the partition position needs to be adjusted and drives the corresponding mechanism to complete the adjustment. During the adjustment process, the system can be dynamically optimized: high-frequency access rare resource samples are allocated to the front of the drawer, and large rare resource samples are allocated to the large compartment.
[0050] In some possible implementations, the structure of an intelligent storage cabinet that supports drawer repositioning is as follows: Figure 8 As shown, the cabinet 1 is provided with slot 2, and drawers can be installed in slot 2. The main control system 4 can control slot 2, drawer ID 62, slot number 52, and database 53, etc.
[0051] In this embodiment of the invention, an intelligent storage cabinet supporting drawer configuration is composed of a main cabinet, an expansion cabinet, a quantum-locking compartment module inside the drawers, and a main control system. The main cabinet includes standard drawer positions and a standard interface. The standard drawer positions connect to drawers of different specifications via standard guide rails and a communication interface. Each drawer is equipped with identification information, allowing for drawer identification and monitoring of drawer changes. The expansion cabinet connects to the main cabinet via the standard interface, enabling flexible expansion of the intelligent storage cabinet. The quantum-locking compartment module inside the drawers includes a liquid metal partition for storing items. Responding to electromagnetic fields of different frequencies, the liquid metal partition switches between liquid and solid states to dynamically adjust the storage space. When the main control system detects an item being placed in the quantum-locking compartment module inside the drawers, it calculates a target compartmentation strategy and sends electromagnetic fields of different frequencies to the quantum-locking compartment module based on the target compartmentation strategy to guide the liquid metal partition to flow and form corresponding storage spaces. In this way, users can change the drawer specifications according to their needs at different stages, improving the device's adaptability. The main control system automatically identifies the drawer's identification information and corresponding binding relationships, reducing manual configuration. By setting the drawer's identification information, the drawer layout can be dynamically adjusted, avoiding space waste and improving the utilization rate of the smart storage cabinet.
[0052] Optionally, the transmission medium can be a wired link (e.g., but not limited to, coaxial cable, optical fiber, and Digital Subscriber Line (DSL)) or a wireless link (e.g., but not limited to, Wireless Fidelity (WIFI), Bluetooth, and mobile device networks). It should be noted that the control device provided in the above embodiments is only an example illustrating the division of the above functional modules. In practical applications, the above functions can be assigned to different functional modules as needed, that is, the internal structure of the computer device can be divided into different functional modules to complete all or part of the functions described above. Furthermore, the method embodiments provided in the above embodiments belong to the same concept, and their specific implementation processes are detailed in the method embodiments, and will not be repeated here.
[0053] Figure 9 This is a schematic diagram of the structure of a computer device provided in an embodiment of the present invention. For example, as shown... Figure 9 As shown, the computer device 900 includes: a memory 901, a processor 902, and a computer program 903 stored in the memory 901 and running on the processor 902, wherein when the processor 902 executes the computer program 903, the computer device can execute any of the aforementioned intelligent storage cabinets that support drawer repositioning.
[0054] Furthermore, this embodiment of the invention also protects a control device, which may include a memory and a processor. The memory stores executable program code, and the processor is used to call and execute the executable program code to execute the intelligent storage cabinet supporting drawer allocation provided by this embodiment of the invention. This embodiment can divide the control device into functional modules based on the above method example. For example, each function can correspond to a separate module, or two or more functions can be integrated into a single processing module. The integrated module can be implemented in hardware. It should be noted that the module division in this embodiment is illustrative and only represents a logical functional division; other division methods may exist in actual implementation. It should also be noted that all relevant content of each step involved in the above method embodiment can be referenced to the functional description of the corresponding functional module, and will not be repeated here.
[0055] It should be understood that the control device provided in this embodiment is used to execute the above-described intelligent storage cabinet that supports drawer allocation, and therefore can achieve the same effect as the above-described implementation method. When using integrated units, the control device may include a processing module and a storage module. When the control device is applied to a device, the processing module can be used to control and manage the device's actions. The storage module can be used to support the device in executing mutual program code, etc. The processing module may be a processor or a controller, which can implement or execute various exemplary logic blocks, modules, and circuits described in conjunction with the disclosure of this invention. The processor may also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of Digital Signal Processing (DSP) and a microprocessor, etc., and the storage module may be a memory.
[0056] Furthermore, the control device provided in the embodiments of the present invention may specifically be a chip, component, or module. The chip may include a connected processor and a memory; wherein, the memory is used to store instructions, and when the processor calls and executes the instructions, it can cause the chip to execute the intelligent storage cabinet supporting drawer repositioning provided in the above embodiments. This embodiment also provides a computer-readable storage medium storing computer program code. When the computer program code is run on a computer, it causes the computer to execute the above-mentioned related method steps to implement the intelligent storage cabinet supporting drawer repositioning provided in the above embodiments.
[0057] This embodiment also provides a computer program product. When the computer program product is run on a computer, it causes the computer to perform the aforementioned related steps to realize the intelligent storage cabinet supporting drawer allocation provided in the above embodiment. The control device, computer-readable storage medium, computer program product, or chip provided in this embodiment are all used to execute the corresponding methods provided above. Therefore, the beneficial effects they achieve can be referred to in the beneficial effects of the corresponding methods provided above, and will not be repeated here. Through the description of the above embodiments, those skilled in the art can understand that, for the sake of convenience and brevity, only the division of the above functional modules is used as an example. In practical applications, the above functions can be assigned to different functional modules as needed, that is, the internal structure of the control device can be divided into different functional modules to complete all or part of the functions described above. In the embodiments provided by this invention, it should be understood that the disclosed control device and method can be implemented in other ways. For example, the control device embodiments described above are merely illustrative. For example, the division of modules or units is merely a logical functional division. In actual implementation, there may be other division methods. For example, multiple units or components can be combined or integrated into another control device, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be an indirect coupling or communication connection through some interface, control device or unit, and can be electrical, mechanical or other forms.
[0058] It should be noted that the order of the above embodiments of the present invention is merely for descriptive purposes and does not represent the superiority or inferiority of the embodiments. The processes depicted in the accompanying drawings do not necessarily require a specific or sequential order to achieve the desired results. In some embodiments, multiple task processing and parallel processing are possible or may be advantageous. The various embodiments in this specification are described in a progressive manner, and the same or similar parts between the various embodiments can be referred to mutually. Each embodiment focuses on describing the differences from other embodiments. The above content is only a specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in the present invention should be covered within the protection scope of the present invention.
Claims
1. A smart storage cabinet that supports drawer repositioning, characterized in that, The intelligent storage cabinet supporting drawer repositioning includes: a main cabinet, an expansion cabinet, quantum locking compartment modules inside the drawers, and a main control system, wherein: The main cabinet includes: standard drawer positions and standard interfaces; wherein, the standard drawer positions are connected to drawers of different specifications through standard rail guides and communication interfaces, and each drawer is equipped with identification information; The expansion cabinet is connected to the main cabinet via the standard interface; The quantum locking compartment module inside the drawer includes: a liquid metal partition for storing items, and responds to electromagnetic fields of different frequencies to switch between liquid and solid states to dynamically adjust the storage space of the main cabinet. The main control system is used to calculate a target compartment strategy when it detects that the stored item has been placed in the quantum locking compartment module inside the drawer; and to send electromagnetic fields of different frequencies to the quantum locking compartment module inside the drawer based on the target compartment strategy, so as to guide the liquid metal partition to flow and form a corresponding storage space.
2. The intelligent storage cabinet supporting drawer repositioning according to claim 1, characterized in that, The standard drawer position is set in the identification module. The identification module is used to read the identification information of the drawer when the drawer is inserted, and send an active registration request to the main control system based on the identification information. In response to the active registration request, the main control system establishes a binding relationship between the identification information of the drawer and the standard drawer position.
3. The intelligent storage cabinet supporting drawer repositioning according to claim 2, characterized in that, The identification module is also used to send the drawer number, compartment specifications, installation location, and storage status of the stored items to the main control system; The main control system is also used to bind the drawer number, compartment specifications, installation position, and storage status of the stored items to the standard drawer position to establish the binding relationship.
4. The intelligent storage cabinet supporting drawer repositioning according to claim 2, characterized in that, The main control system is also used to update the binding relationship between the identification information of the drawer and the standard drawer position when it detects a change in the identification information of the drawer.
5. The intelligent storage cabinet supporting drawer repositioning according to claim 2, characterized in that, The main control system is also used to establish a new binding relationship between the new identification information and the standard drawer slot when a registration request carrying new identification information is detected, and to store it in a preset database.
6. The intelligent storage cabinet supporting drawer repositioning according to claim 1, characterized in that, The intelligent storage cabinet that supports drawer repositioning also includes: a display interface; The display interface is used to respond to input viewing requests and present the layout information and storage status of the drawer.
7. The intelligent storage cabinet supporting drawer repositioning according to claim 2, characterized in that, The main control system is also used to predict the target drawer arrangement in the cabinet using a preset neural network model, generate adjustment suggestions based on the target drawer arrangement, and project the adjustment suggestions in real time on the display interface of the intelligent storage cabinet that supports drawer adjustment. When the quantity of any stored item exceeds a preset safety threshold, the quantum cache drawer is opened for temporary storage; if any drawer is detected to be in a failed state, the distribution of the stored items is reconstructed on the spare drawer.
8. The intelligent storage cabinet supporting drawer repositioning according to claim 1, characterized in that, The main cabinet includes: a bionic neural interface and an identification submodule; wherein, the bionic neural interface is used to establish a cross-cabinet drawer hot-swap protocol; The identification submodule is used to establish a virtual mapping of the drawer position when a new expansion cabinet is identified based on the cross-cabinet drawer hot-swap protocol, so that the system can perform seamless access to the drawer when the drawer is moved to the expansion cabinet.
9. The intelligent storage cabinet supporting drawer repositioning according to claim 8, characterized in that, The identification submodule in the main cabinet is also used to acquire data of the stored items and synchronize it to the expansion cabinet when the identification drawer is moved.
10. The intelligent storage cabinet supporting drawer repositioning according to claim 1, characterized in that, The quantum locking compartment module inside the drawer includes compartments for placing each drawer, and the partition assembly of the compartment is mounted on a telescopic slide rail. The bottom or side of the partition assembly is connected to a lead screw or rack. The drawer is equipped with a drive assembly and a rotating partition at the bottom of the drawer with a rotating fulcrum. The main control system is used to locate the positions of the partition assembly and the rotating partition through sensors, and based on the positions, control the drive assembly to drive the partition assembly to translate along the telescopic slide rail, or drive the rotating partition to change the volume of adjacent compartments; wherein, the partition assembly includes at least one of the following: a folding partition, a multi-segment sleeve partition; the folding partition includes: multiple folding segments, each folding segment being connected by hinges; each folding segment is embedded with a micro linear push rod, the micro linear push rod being used to telescopically push the folding segment to unfold or retract; The multi-segment sleeve-type partition includes: nested multi-segment sleeves, wherein a miniature lead screw or push rod is embedded in the sleeve for driving the sleeve to extend or retract segment by segment.