Explosive agent warehousing method
By introducing an intelligent inbound/outbound system and transfer components, the problems of high safety risks and inconvenient transfer in the storage of explosives have been solved, achieving efficient and safe explosives management and adaptive transfer.
Patent Information
- Application Number
- PCT/CN2024/097493
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-06-05
- Publication Date
- 2025-12-11
AI Technical Summary
Existing methods for storing explosives lack classified management and environmental monitoring, resulting in high safety risks. Furthermore, traditional transfer methods require changing pallets to accommodate different explosive specifications, which poses a risk of spillage.
The system introduces an intelligent inbound/outbound system and transfer components, including a user interaction layer, warehouse management layer, inbound/outbound management layer, data management layer, system maintenance layer, and security management layer. Combined with RFID technology and environmental monitoring, it enables automated management and adaptive transfer.
It significantly reduces safety risks during warehousing, improves the scientific and refined level of management, reduces human error, and enhances the safety and efficiency of environmental monitoring and transportation.
Smart Images

Figure CN2024097493_11122025_PF_FP_ABST
Abstract
Description
Explosive agent storage method TECHNICAL FIELD
[0001] The present application belongs to the technical field of explosive agent storage, and particularly relates to an explosive agent storage method. BACKGROUND
[0002] Explosive agent is an explosive mixture mainly composed of oxidizing agent and combustible agent according to the oxygen balance principle. It has the characteristics of low cost, simple manufacturing and reliable application, and is widely used in coal mining, metallurgy, petroleum geology, transportation, water and electricity, forestry, construction, metal processing and controlled blasting. Due to its special structure and high safety risk, the storage method of explosive agent is very important.
[0003] The conventional storage method for explosive agent mainly records the information of the in-out warehouse of explosive agent, that is, the number and type of explosive agent in the warehouse, and the type of explosive agent in the warehouse and out of the warehouse every day. Although this storage method can intuitively reflect the storage state of explosive agent, it lacks classification management of explosive agent and automatic monitoring of the environment during the whole storage process, resulting in many inconveniences in the use process, and improvement is needed.
[0004] In the storage management process of explosive agent, a transfer assembly is often used to transfer the explosive agent. The conventional transfer method mainly uses a forklift type transfer assembly to realize transfer. This transfer method uses a pallet to fork the explosive agent to realize transfer. Although this transfer method can realize the rapid transfer of explosive agent, different pallets need to be replaced for different sizes of explosive agent, and the side of the explosive agent lacks support, which has the risk of falling during transfer. SUMMARY
[0005] The present application aims to provide an explosive agent storage method to solve the problems in the background art.
[0006] In order to achieve the above-mentioned purpose, the present application provides the following technical solution: an explosive agent storage method, comprising an explosive agent intelligent in-out warehouse system, an explosive agent warehousing method, an explosive agent out-of-warehouse method and a transfer assembly. The explosive agent intelligent in-out warehouse system comprises a user interaction layer, a warehouse management layer, an in-out warehouse management layer, a data management layer, a system maintenance layer and a safety management layer.
[0007] The explosive agent warehousing method comprises preparation of goods, identification of goods, positioning of warehousing, environmental monitoring, data recording.
[0008] The explosive agent out-of-warehouse method comprises application for out-of-warehouse, positioning of out-of-warehouse, verification of out-of-warehouse, and recording of out-of-warehouse.
[0009] The transport assembly comprises a trolley and a mounting rack, the mounting rack is installed on the front of the trolley and close to the bottom end, a longitudinal guide column is fixedly installed on the front of the mounting rack, a transverse guide column is arranged on the front of the longitudinal guide column, and a supporting plate is arranged on the left and right sides of the front of the transverse guide column.
[0010] As a further technical solution of the present application, the user interaction layer includes user login, warehouse access application and report query, the warehouse management layer includes warehouse layer management, storage location management, environment monitoring and safety monitoring, the warehouse access management layer includes warehouse access management and warehouse exit management, and the data management layer includes data storage, data analysis and data interface.
[0011] As a further technical solution of the present application, the system maintenance layer includes user management, system monitoring and system upgrade, and the security management layer includes access control, data encryption, security audit and emergency response.
[0012] As a further technical solution of the present application, the warehouse layer management includes inventory query, early warning and adjustment, the storage location management includes storage location allocation and query, the environment monitoring includes temperature, humidity and pressure monitoring, the safety monitoring includes video monitoring and intrusion alarm, the warehouse access management includes arrival verification, positioning and recording, and the warehouse exit management includes warehouse exit application verification, positioning, recording and carrying control.
[0013] As a further technical solution of the present application, the data storage includes database management and backup recovery, the data analysis includes warehouse access data analysis and prediction, the data interface includes API interface and data exchange, the user management includes permission management and operation log, the system monitoring includes performance monitoring and error log, and the system upgrade includes software update and hardware update.
[0014] As a further technical scheme of the present application, the arrival preparation includes that after receiving the explosive arrival notice, the system automatically updates the warehouse-in plan and reserves sufficient storage space, and the staff receives and confirms the warehouse-in task using a handheld device, the cargo identification includes that when the explosive arrives at the warehouse, the RFID reader is used to quickly identify the label of the explosive, the system automatically verifies the batch, quantity and validity period of the explosive, and compares with the order information, the warehouse-in positioning includes that according to the real-time inventory situation of the warehouse and the cargo characteristics, the system automatically calculates and allocates the best storage location and uses the carrying assembly to carry the explosive to the designated location, the environment monitoring includes that during the storage of the explosive, the environment monitoring system continuously monitors the temperature, humidity and pressure in the warehouse to ensure that the storage environment meets the safety standards, and if there is an anomaly, the system automatically issues an alarm and starts the corresponding emergency handling process, and the data recording includes that the system automatically records the warehouse-in time, storage location, batch and quantity of the explosive and generates a warehouse-in record, and all warehouse-in data are saved in the database for subsequent query and analysis.
[0015] As a further technical scheme of the present application, the warehouse-out application includes that the user submits a warehouse-out application through the system, including the batch, quantity and destination information of the explosive, and the system automatically verifies the legality and rationality of the warehouse-out application, including but not limited to whether the inventory is sufficient and whether the transportation is safe, the warehouse-out positioning includes that according to the information in the warehouse-out application, the system automatically locates the storage location of the explosive, and uses the carrying assembly to carry the explosive from the storage location to the warehouse-out port, the warehouse-out verification includes that before the warehouse-out, the system verifies the batch and quantity information of the explosive again to ensure the accuracy of the warehouse-out, if there is an anomaly, the system automatically prompts and prevents the warehouse-out operation, and notifies the relevant personnel to handle, the warehouse-out record includes that the system automatically records the warehouse-out time, quantity and destination information of the explosive and generates a warehouse-out record, and all warehouse-out data are saved in the database for subsequent query and analysis.
[0016] As a further technical scheme of the present application, the middle part of the back surface of the transverse guide column is fixedly installed with a longitudinal guide block, the transverse guide column is movably connected between the longitudinal guide block and the longitudinal guide column, the transverse guide column moves up and down relative to the longitudinal guide column, a cylinder is arranged in the longitudinal guide column, and the output end of the cylinder is connected with the longitudinal guide block, the back surface of each of the two supporting plates is fixedly installed with a transverse guide block, the supporting plate is movably connected between the transverse guide block and the transverse guide column, the supporting plate moves left and right relative to the transverse guide column, a lead screw is movably connected in the transverse guide column, the lead screw is threadedly sleeved with the middle part of the transverse guide block, and the end away from each other of the two supporting plates is installed with an extension guide rail.
[0017] As a further technical scheme of the present application, the inside of the extension guide rail is movably clamped with an extension guide block, the extension guide block is displaced left and right relative to the extension guide rail, a base located below the extension guide rail is fixedly installed on one side of the extension guide block, a first electric push rod is fixedly installed on one side of the inside surface of the base, a first mounting seat is fixedly installed on the top end of the extension guide block, a clamping plate is movably connected to the top end of the first mounting seat through a rotating shaft, the clamping plate rotates relative to the first mounting seat, a second electric push rod is fixedly installed on one side of the inner cavity of the extension guide rail, and the output end of the second electric push rod is connected to one side of the extension guide block.
[0018] As a further technical scheme of the present application, the output end of the first electric push rod is fixedly installed with a mounting piece, the top end of the mounting piece is fixedly installed with a third mounting seat, the middle part of the side close to the first electric push rod of the clamping plate is fixedly installed with a second mounting seat, and a supporting rod is movably connected to the side away from the clamping plate of the second mounting seat through a rotating shaft.
[0019] The beneficial effects of the present application are as follows:
[0020] 1、The present application introduces intelligent warehouse management processes and systems, realizes comprehensive, efficient and safe management of explosive agents, and significantly reduces the safety risks of explosives in the warehouse process. Specifically, the system can automatically verify the batch, quantity, expiration date and other information of the explosives, and compare it with the order to effectively prevent errors and confusion. At the same time, the environmental monitoring system can continuously monitor the temperature, humidity, pressure and other key parameters in the warehouse to ensure the stability of the explosive storage environment, and automatically issue an alarm when an anomaly occurs to start the emergency handling process, further improving the safety of warehouse storage. Secondly, through the collaborative work of the user interaction layer, warehouse management layer, warehouse management layer, data management layer, system maintenance layer and safety management layer, this system not only provides an intuitive and convenient user interface, but also realizes the classification management, automatic monitoring, data recording and analysis of explosives, improving the scientificity and refinement level of warehouse management. In addition, the design of the data interface enables the system to exchange and share data with other systems, improving the flow and utilization of information. Finally, the explosive agent warehouse method and its intelligent warehouse-in and warehouse-out system of the present application maintain the advancement and scalability of the system through software updates and hardware upgrades, and can adapt to new demands and new challenges of future explosive warehouse management. At the same time, the introduction of user management, system monitoring and other functions ensures the stable operation and safety of the system, providing a solid guarantee for the warehouse management of explosive agents.
[0021] 2、The present application realizes the up-down displacement of explosives by using the up-down displaceable supporting plate and the relative displaceable supporting plate, and can adapt to the spacing of the bottom end of different explosives by adjusting the spacing between the two supporting plates, complete the adaptive adjustment process, so that the device can adapt to the transfer process of explosives of different specifications, without the need to replace different accessories of the traditional device, significantly improve the versatility of the device, and further improve the overall transfer efficiency of the explosives,
[0022] 3、The present application is provided with movable extension guide blocks, which can be adaptively adjusted according to the size of the explosives, and the movable clamping plate can realize the rotation adjustment of the clamping plate, that is, after the explosives are lifted, the side of the explosives can be clamped and fixed, the auxiliary support process of the side of the explosives box is completed, and the traditional device lacks certain support on the side when facing high explosives boxes, which leads to the risk of falling of the explosives box, further reduces the safety risk, and improves the safety factor. BRIEF DESCRIPTION OF DRAWINGS
[0023] Fig. 1 is a block diagram of the intelligent blasting agent warehouse in and out system of the present application;
[0024] Fig. 2 is a block diagram of the blasting agent warehouse in method of the present application;
[0025] Fig. 3 is a block diagram of the blasting agent warehouse out method of the present application;
[0026] Fig. 4 is a schematic diagram of the overall structure of the carrying assembly of the present application;
[0027] Fig. 5 is a schematic diagram of the hidden cart structure state of the carrying assembly of the present application;
[0028] Fig. 6 is an exploded schematic diagram of the horizontal guide column and the supporting plate structure in the carrying assembly of the present application;
[0029] Fig. 7 is a schematic diagram of the cooperation of the supporting plate and the extension guide rail structure in the carrying assembly of the present application;
[0030] Fig. 8 is an exploded schematic diagram of the extension guide rail and the base structure in the carrying assembly of the present application;
[0031] Fig. 9 is a sectional view of the internal structure of the extension guide rail in the carrying assembly of the present application.
[0032] Fig. 1, cart; 2, mounting frame; 3, longitudinal guide column; 4, horizontal guide column; 5, screw rod; 6, horizontal guide block; 7, longitudinal guide block; 8, supporting plate; 9, extension guide rail; 10, base; 11, extension guide block; 12, first mounting seat; 13, clamping plate; 14, second mounting seat; 15, third mounting seat; 16, support rod; 17, first electric push rod; 18, second electric push rod; 19, mounting piece. DETAILED DESCRIPTION
[0033] With reference to the accompanying drawings: the technical solutions in the embodiments of the present application will be described clearly and completely. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the scope of the present application.
[0034] As shown in FIGS. 1-8, in the present application, the explosive agent storage method includes an intelligent warehouse entry and exit system, an explosive agent warehouse entry method, an explosive agent warehouse exit method, and a transfer assembly. The intelligent warehouse entry and exit system includes a user interaction layer, a warehouse management layer, a warehouse entry and exit management layer, a data management layer, a system maintenance layer, and a security management layer.
[0035] The explosive agent warehouse entry method includes arrival preparation, cargo identification, warehouse positioning, environmental monitoring, and data recording.
[0036] The explosive agent warehouse exit method includes warehouse exit application, warehouse exit positioning, warehouse exit verification, and warehouse exit recording.
[0037] The transfer assembly includes a cart 1 and a mounting bracket 2. The mounting bracket 2 is installed on the front side of the cart 1 near the bottom end. A longitudinal guide column 3 is fixedly installed on the front side of the mounting bracket 2. A transverse guide column 4 is provided on the front side of the longitudinal guide column 3. A supporting plate 8 is provided on the left and right sides of the front side of the transverse guide column 4.
[0038] The explosive agent storage method significantly improves the efficiency and safety of warehouse management by integrating an intelligent warehouse entry and exit system. The system uses a multi-level management architecture, including user interaction, warehouse management, warehouse entry and exit management, data management, system maintenance, and security management, to achieve comprehensive monitoring and management of explosive agents. The warehouse entry method ensures accurate cargo identification and positioning, and environmental monitoring ensures the safety and stability of storage conditions. The warehouse exit method ensures the accuracy and traceability of the warehouse exit process through application, positioning, verification, and recording. Overall, this method improves the intelligence level of warehouse storage, reduces human errors, and improves safety management.
[0039] As shown in FIG. 1, the user interaction layer includes user login, warehouse access application and report query, the warehouse management layer includes warehouse layer management, storage location management, environmental monitoring, security monitoring, the warehouse access management layer includes warehouse access management, warehouse exit management, the data management layer includes data storage, data analysis, data interface, the system maintenance layer includes user management, system monitoring, system upgrade, the security management layer includes access control, data encryption, security audit, emergency response, warehouse layer management includes inventory query, early warning and adjustment, storage location management includes storage location allocation, query, environmental monitoring includes temperature, humidity, pressure monitoring, security monitoring includes video monitoring, intrusion alarm, warehouse access management includes arrival verification, positioning, recording, warehouse exit management includes warehouse exit application verification, positioning, recording, and handling control, data storage includes database management, backup and recovery, data analysis includes warehouse access data analysis, prediction, data interface includes API interface, data exchange, user management includes permission management, operation log, system monitoring includes performance monitoring, error log, system upgrade includes software update and hardware update.
[0040] The intelligent warehouse system of explosive agents realizes efficient, safe and intelligent management through the cooperation of each level. The user interaction layer facilitates user login, application and query operations, improving work efficiency. The warehouse management layer ensures that the storage conditions of explosives meet safety standards through warehouse layer, storage location, environmental and security monitoring. The warehouse access management layer accurately manages the warehouse access and exit of explosives, reducing human errors. The data management layer provides data support for management decisions through data storage, analysis and interface. The system maintenance layer ensures the stable operation of the system and improves the performance of the system through upgrade. The security management layer ensures the security of the system through access control, encryption and audit. The whole system provides a comprehensive solution for the warehouse management of explosive agents, improving management efficiency and safety.
[0041] As shown in FIG. 2, arrival preparation includes updating the warehouse access plan automatically after receiving the arrival notice of explosives, and reserving sufficient storage space, workers use handheld devices to receive and confirm warehouse access tasks, cargo identification includes using RFID readers to quickly identify the tags of explosives when they arrive at the warehouse, the system automatically verifies the batch, quantity and expiration date of the explosives and compares them with the order information, warehouse positioning includes automatically calculating and allocating the best storage location according to the real-time inventory of the warehouse and the characteristics of the goods, and using handling components to transport the explosives to the designated location, environmental monitoring includes continuously monitoring the temperature, humidity and pressure in the warehouse during the storage of explosives to ensure that the storage environment meets safety standards, if there are abnormalities, the system automatically issues an alarm and starts the corresponding emergency handling process, data recording includes automatically recording the warehouse access time, storage location, batch and quantity of explosives and generating a warehouse access record, all warehouse access data are saved in the database for subsequent query and analysis.
[0042] The intelligent warehouse-in process of blasting agents ensures the efficiency, accuracy and safety of warehouse-in operation by integrating multiple technologies. In the arrival preparation stage, the system automatically updates the warehouse-in plan and reserves space to ensure that explosives can be quickly warehoused. Cargo identification uses RFID technology to quickly verify explosive information and compare it with orders, effectively preventing errors. Warehouse-in positioning automatically allocates the best position according to real-time inventory and cargo characteristics, improving warehouse efficiency. The environmental monitoring system monitors environmental parameters in real time to ensure storage safety, and immediately alerts and initiates emergency procedures in case of abnormalities. The data recording function automatically records all warehouse-in information and saves it in the database, providing a reliable basis for subsequent queries and analysis. The entire process not only improves warehouse-in efficiency and reduces human error, but also strengthens safety guarantees, making the warehouse management of blasting agents more scientific and intelligent.
[0043] As shown in FIG. 3, the warehouse-out application includes the user submitting a warehouse-out application through the system, including the batch, quantity, and destination information of the explosives. The system automatically verifies the legality and rationality of the warehouse-out application, including but not limited to whether the inventory is sufficient and whether the transportation is safe. Warehouse-out positioning includes automatically positioning the storage location of the explosives according to the information in the warehouse-out application. The use of the handling component moves the explosives from the storage location to the warehouse-out port. Warehouse-out verification includes verifying the batch and quantity information of the explosives again before warehouse-out to ensure the accuracy of warehouse-out. If there are abnormalities, the system automatically prompts and prevents the warehouse-out operation, and notifies relevant personnel for processing. Warehouse-out records include the system automatically recording the warehouse-out time, quantity, and destination information of the explosives and generating warehouse-out records. All warehouse-out data is saved in the database for subsequent queries and analysis.
[0044] The intelligent warehouse-out process of blasting agents ensures the safety, accuracy and efficiency of warehouse-out operation through the automatic processing of the system. After the user submits a warehouse-out application, the system first verifies the legality and rationality of the application to avoid delays or risks caused by insufficient inventory or transportation safety issues. The warehouse-out positioning function quickly locates the storage location of the explosives through automatic calculation by the system, improving warehouse-out efficiency. The verification step before warehouse-out ensures the accuracy of the warehouse-out information again, preventing risks caused by batch or quantity errors. If there are abnormalities, the system can automatically prompt and prevent warehouse-out, and notify relevant personnel for processing in a timely manner, further ensuring the safety of warehouse-out. Finally, the system automatically records the warehouse-out information and saves it in the database, providing reliable data support for subsequent queries and analysis. The entire process not only improves warehouse-out efficiency, but also strengthens the safety and accuracy of warehouse-out operations.
[0045] As shown in FIG. 4 to FIG. 9, the middle part of the back of the transverse guide column 4 is fixedly installed with a longitudinal guide block 7, the transverse guide column 4 is movably clamped between the longitudinal guide block 7 and the longitudinal guide column 3, the transverse guide column 4 is displaced up and down relative to the longitudinal guide column 3, the inside of the longitudinal guide column 3 is built-in with a cylinder and the output end of the cylinder is connected with the longitudinal guide block 7, the back of the two supporting plates 8 is fixedly installed with a transverse guide block 6, the supporting plate 8 is movably clamped between the transverse guide block 6 and the transverse guide column 4, the supporting plate 8 is displaced left and right relative to the transverse guide column 4, the inside of the transverse guide column 4 is movably connected with a lead screw 5, the lead screw 5 is threadedly sleeved between the middle part of the transverse guide block 6, the end away from each other of the two supporting plates 8 is installed with an extension guide rail 9, the inside of the extension guide rail 9 is movably clamped with an extension guide block 11, the extension guide block 11 is displaced left and right relative to the extension guide rail 9, one side of the extension guide block 11 is fixedly installed with a base 10 below the extension guide rail 9, one side of the inner side of the base 10 is fixedly installed with a first electric push rod 17, the top end of the extension guide block 11 is fixedly installed with a first mounting seat 12, the first mounting seat 12 is movably connected with a clamping plate 13 through a rotating shaft at the top end, the clamping plate 13 is rotated relative to the first mounting seat 12, one side of the inner cavity of the extension guide rail 9 is fixedly installed with a second electric push rod 18, the output end of the second electric push rod 18 is connected with one side of the extension guide block 11, the output end of the first electric push rod 17 is fixedly installed with a mounting piece 19, the top end of the mounting piece 19 is fixedly installed with a third mounting seat 15, the middle part of the side close to the first electric push rod 17 of the clamping plate 13 is fixedly installed with a second mounting seat 14, the side away from the clamping plate 13 of the second mounting seat 14 is movably connected with a supporting rod 16 through a rotating shaft, the other end of the supporting rod 16 is movably connected with the third mounting seat 15.
[0046] When the explosives need to be transported, the supporting plate 8 can be displaced to below the explosives to be transported by controlling the displacement of the trolley 1, at this time the cylinder inside the longitudinal guide column 3 can be started to control the transverse guide column 4 to be displaced up and down, when the transverse guide column 4 is displaced to the lowermost position, at this time the supporting plate 8 is just located at the lowermost position of the explosives, at this time the lead screw 5 can be rotated according to the size of the bottom end of the explosives, so that the relative approaching or moving away of the two supporting plates 8 is realized, and the distance adjustment between the two supporting plates 8 is completed, after the distance adjustment is completed, the cylinder inside the longitudinal guide column 3 can be controlled again to drive the transverse guide column 4 to rise, at this time the supporting plate 8 rises with it, so that the rising of the explosives is realized, and the process of lifting the explosives is completed.
[0047] By using the supporting plate 8 which can be displaced up and down and the supporting plate 8 which can be displaced relative to each other to realize the up and down displacement of the explosives, the distance between the two supporting plates 8 can be adjusted to adapt to the distance of the bottom end of different explosives, so that the adaptive adjustment process is completed, the device can adapt to the transportation process of explosives of different specifications, without the need to replace different accessories as in the traditional device, the universality of the device is significantly improved, and the overall transportation efficiency of the explosives is further improved.
[0048] When the forked lifting of the explosive is completed, the second electric push rod 18 can be opened to drive the extension guide block 11 to displace relative to the extension guide rail 9 until the clamping plate 13 is displaced to one side of the explosive, at which time the base 10 can be synchronously driven to displace, when the clamping plate 13 and one side of the explosive box correspond to each other, the first electric push rod 17 can be opened to drive the first electric push rod 17 to extend and drive the mounting piece 19 to displace towards the direction of the extension guide rail 9, at which time the supporting rod 16 deflects and exerts a pushing force on the clamping plate 13, at which time the clamping plate 13 displaces relative to the first mounting base 12 until the clamping plate 13 and the first mounting base 12 are parallel to each other, at which time the inner side of the clamping plate 13 can be in contact with one side of the explosive box and clamp the two sides of the explosive box, completing the auxiliary clamping process of the explosive box.
[0049] The movable extension guide block 11 can be adjusted according to the size of the explosive, and the movable clamping plate 13 can be adjusted in rotation, that is, after the forked lifting of the explosive is completed, the side of the explosive can be clamped and fixed, the auxiliary support process of the side of the explosive box is completed, the problem that the side of the traditional device lacks certain support when facing a high explosive box, resulting in the risk of falling of the explosive box is avoided, the safety risk is further reduced, and the safety factor is improved.
[0050] Although the embodiments of the present application have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and spirits of the present application, the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A blasting agent storage method, comprising a blasting agent intelligent warehouse entry and exit system and a blasting agent warehouse entry method and a blasting agent warehouse exit method and a transfer assembly, characterized in that: The explosive agent intelligent warehouse-in and warehouse-out system comprises a user interaction layer, a warehouse management layer, a warehouse-in and warehouse-out management layer, a data management layer, a system maintenance layer and a security management layer; The explosive agent warehouse-in method comprises arrival preparation, cargo identification, warehouse-in positioning, environment monitoring and data recording; The explosive agent warehouse-out method comprises warehouse-out application, warehouse-out positioning, warehouse-out verification and warehouse-out recording; The transfer assembly comprises a cart (1) and a mounting rack (2), the mounting rack (2) is mounted on the front of the cart (1) and close to the bottom end, the front of the mounting rack (2) is fixedly provided with a longitudinal guide column (3), the front of the longitudinal guide column (3) is provided with a transverse guide column (4), and the front of the transverse guide column (4) is provided with a supporting plate (8) on the left and right sides.
2. The explosive agent storage method according to claim 1, characterized by: The user interaction layer comprises user login, warehouse-in and warehouse-out application and report query, the warehouse management layer comprises warehouse layer management, cargo location management, environment monitoring and security monitoring, the warehouse-in and warehouse-out management layer comprises warehouse-in management and warehouse-out management, and the data management layer comprises data storage, data analysis and data interface.
3. The explosive agent storage method according to claim 2, characterized by: The system maintenance layer comprises user management, system monitoring and system upgrading, and the security management layer comprises access control, data encryption, security audit and emergency response.
4. The explosive agent storage method according to claim 3, characterized by: The warehouse layer management comprises inventory query, early warning and adjustment, the cargo location management comprises cargo location allocation and query, the environment monitoring comprises temperature, humidity and pressure monitoring, the security monitoring comprises video monitoring and intrusion alarm, the warehouse-in management comprises arrival verification, positioning and recording, and the warehouse-out management comprises warehouse-out application verification, positioning, recording and carrying control.
5. The explosive agent storage method according to claim 4, characterized by: The data storage comprises database management and backup recovery, the data analysis comprises warehouse-in and warehouse-out data analysis and prediction, the data interface comprises API interface and data exchange, the user management comprises permission management and operation log, the system monitoring comprises performance monitoring and error log, and the system upgrading comprises software update and hardware update.
6. The explosive material storage method of claim 1, wherein: The arrival preparation comprises that after receiving the explosive arrival notice, the system automatically updates the warehouse-in plan and reserves sufficient storage space, and the staff receives and confirms the warehouse-in task by using a handheld device, the cargo identification comprises that when the explosive arrives at the warehouse, the RFID reader is used to quickly identify the label of the explosive, the system automatically verifies the batch, quantity and validity period of the explosive, and compares with the order information, the warehouse-in positioning comprises that according to the real-time inventory of the warehouse and the characteristics of the cargo, the system automatically calculates and allocates the best storage location and uses the carrying assembly to carry the explosive to the specified location, the environment monitoring comprises that during the storage of the explosive, the environment monitoring system continuously monitors the temperature, humidity and pressure in the warehouse, so as to ensure that the storage environment meets the safety standards, if there is an exception, the system automatically issues an alarm and starts the corresponding emergency handling process, and the data recording comprises that the system automatically records the warehouse-in time, storage location, batch and quantity of the explosive and generates a warehouse-in record, and all warehouse-in data are saved in the database for subsequent query and analysis.
7. The explosive material storage method of claim 1, wherein: The out-of-warehouse application includes that the user submits the out-of-warehouse application through the system, including the batch, quantity and destination information of the explosive, the system automatically verifies the legality and rationality of the out-of-warehouse application, including but not limited to whether the inventory is sufficient and whether the transportation is safe, the out-of-warehouse positioning includes that according to the information in the out-of-warehouse application, the system automatically locates the storage position of the explosive, uses the carrying assembly to carry the explosive from the storage position to the out-of-warehouse port, the out-of-warehouse verification includes that before the out-of-warehouse, the system verifies the batch and quantity information of the explosive again to ensure the accuracy of the out-of-warehouse, if there is an exception, the system automatically prompts and prevents the out-of-warehouse operation, and notifies the relevant personnel to handle, the out-of-warehouse record includes that the system automatically records the out-of-warehouse time, quantity and destination information of the explosive, and generates the out-of-warehouse record, all out-of-warehouse data are saved in the database for subsequent query and analysis.
8. The explosive material storage method of claim 1, wherein: The middle part of the back of the transverse guide column (4) is fixedly installed with a longitudinal guide block (7), the transverse guide column (4) is movably connected between the longitudinal guide block (7) and the longitudinal guide column (3), the transverse guide column (4) is displaced up and down relative to the longitudinal guide column (3), the inside of the longitudinal guide column (3) is built-in with a cylinder, and the output end of the cylinder is connected with the longitudinal guide block (7), the back of each of the two supporting plates (8) is fixedly installed with a transverse guide block (6), the supporting plate (8) is movably connected between the transverse guide block (6) and the transverse guide column (4), the supporting plate (8) is displaced left and right relative to the transverse guide column (4), the inside of the transverse guide column (4) is movably connected with a lead screw (5), the middle part of the lead screw (5) is threadedly sleeved with the transverse guide block (6), and the ends of the two supporting plates (8) away from each other are both installed with an extension guide rail (9).
9. The explosive agent storage method according to claim 8, characterized by: The inside of the extension guide rail (9) is movably connected with an extension guide block (11), the extension guide block (11) is displaced left and right relative to the extension guide rail (9), one side of the extension guide block (11) is fixedly installed with a base (10) below the extension guide rail (9), one side of the inner side of the base (10) is fixedly installed with a first electric push rod (17), the top of the extension guide block (11) is fixedly installed with a first mounting seat (12), the top of the first mounting seat (12) is movably connected with a clamping plate (13) through a rotating shaft, the clamping plate (13) is rotated relative to the first mounting seat (12), one side of the inner cavity of the extension guide rail (9) is fixedly installed with a second electric push rod (18), and the output end of the second electric push rod (18) is connected with one side of the extension guide block (11).
10. The explosive agent storage method according to claim 9, characterized by: The output end of the first electric push rod (17) is fixedly installed with a mounting piece (19), the top of the mounting piece (19) is fixedly installed with a third mounting seat (15), the middle part of one side of the clamping plate (13) close to the first electric push rod (17) is fixedly installed with a second mounting seat (14), one side of the second mounting seat (14) away from the clamping plate (13) is movably connected with a supporting rod (16) through a rotating shaft, and the other end of the supporting rod (16) is movably connected with the third mounting seat (15).
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