Chemical scheduling method, system, computer device and storage medium
By using computer equipment and transportation algorithm models, the transport vehicles and lifting devices are controlled to transport chemicals in the logistics corridor, solving the problems of high manpower requirements and low efficiency in chemical transportation, and realizing efficient and safe automated transportation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHENSHI YUZHAN PRECISION TECH CO LTD
- Filing Date
- 2023-10-23
- Publication Date
- 2026-05-12
AI Technical Summary
The transportation of chemicals requires a large amount of logistics manpower, resulting in high labor costs, low operational efficiency, poor timeliness, and difficulty in achieving efficient control.
By receiving demand information from the production workshop through computer equipment, determining the number of deliveries and time intervals using a chemical transportation algorithm model, controlling the transport vehicles and lifting devices to transport chemicals in the logistics corridor, and combining ground and rooftop transportation methods, automated transportation is achieved.
It improved the efficiency of chemical dispatching, reduced labor costs, and ensured the safety and timeliness of the transportation process, avoiding collisions and accumulation of chemicals on the transportation line.
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Figure CN117645085B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of transportation, specifically to the field of material scheduling technology, and particularly to a chemical scheduling method, system, computer equipment, and storage medium. Background Technology
[0002] Because chemicals are classified as hazardous materials, logistics personnel must drive vehicles (e.g., manual forklifts) to ensure their safe transport during all stages of their transportation, from storage to dispatch to production workshops and the transport of hazardous chemical waste. However, this type of transportation requires a large number of logistics personnel, resulting in high labor costs, low operational efficiency, and poor timeliness, which is not conducive to achieving efficient control of chemicals. Summary of the Invention
[0003] This application discloses a chemical dispatching method, system, computer equipment, and storage medium, which solves the problem of low efficiency in chemical dispatching.
[0004] This application provides a chemical dispatching method applied to computer equipment. The method includes: receiving demand information for a target chemical from a production workshop; determining the number of deliveries and the delivery time interval within the demand period for the target chemical based on the demand information and a chemical delivery algorithm model; and controlling a transport vehicle and a lifting device to transport the target chemical from a storage warehouse to the production workshop via a logistics corridor based on the number of deliveries and the delivery time interval.
[0005] In some optional embodiments, multiple fire-resistant zones are provided on the logistics corridor between the storage warehouse and the production workshop. The step of determining the number of transports and the transport time interval for the target chemical within the demand period based on the demand information and the chemical transport algorithm model includes: determining the cyclical usage of the target chemical based on the demand information; determining the number of transports based on the cyclical usage and a preset maximum safe transport volume per trip; determining the passage time through the target fire-resistant zone based on the length of each fire-resistant zone and the corresponding transport speed; and determining the transport time interval based on the passage time and the maximum number of pallets that can be carried within the target fire-resistant zone.
[0006] In some optional embodiments, determining the passage time through the target fire compartment based on the length of each fire compartment and the corresponding transport speed includes: obtaining the longest fire compartment among multiple fire compartments corresponding to ground transport as the first fire compartment, and the longest fire compartment among multiple fire compartments corresponding to rooftop transport as the second fire compartment; determining a first passage time through the first fire compartment based on the length of the first fire compartment and the ground transport speed, wherein the ground transport speed is the transport speed of the ground transport vehicle; determining a second passage time through the second fire compartment based on the length of the second fire compartment and the rooftop transport speed, wherein the rooftop speed is the transport speed of the rooftop transport vehicle; if the first passage time is longer than the second passage time, determining the first passage time as the passage time and determining the first fire compartment as the target fire compartment; if the second passage time is longer than the first passage time, determining the second passage time as the passage time and determining the second fire compartment as the target fire compartment.
[0007] In some optional embodiments, the method further includes: determining the maximum number of cargo pallets that can be carried in the target fire compartment based on the maximum carrying capacity of the target fire compartment and the maximum safe transport volume per trip.
[0008] In some optional embodiments, the transport vehicle includes a ground transport vehicle and a rooftop transport vehicle. The step of controlling the transport vehicle and lifting device to transport the target chemical from the storage warehouse to the production workshop via a logistics corridor, based on the number of transports and the transport time interval, includes: controlling the ground transport vehicle to carry the target chemical removed from the storage warehouse and place the target chemical on a conveyor line, transporting it to the inspection center via the conveyor line; upon receiving an inspection result from the inspection center indicating that the target chemical meets a first inspection standard, transporting the target chemical to the lifting device, controlling the lifting device to carry the target chemical and transport it to the rooftop transport vehicle; and controlling the rooftop transport vehicle to transport the target chemical to the production workshop.
[0009] In some optional embodiments, before receiving demand information for the target chemical from the production workshop, the method further includes: responding to a warehousing instruction for chemicals, the chemicals including the target chemical; controlling the ground transport vehicle to transport the chemicals to the conveyor line corresponding to the storage warehouse; and when the arrival of the chemicals at the conveyor line interface of the storage warehouse is detected, controlling the ground transport vehicle to store the chemicals at the conveyor line interface into the storage warehouse.
[0010] In some optional embodiments, the method further includes: receiving a request from the production workshop to remove hazardous waste generated after processing the target chemical; controlling the lifting device to carry the hazardous waste to the rooftop transport vehicle; controlling the rooftop transport vehicle to transport the hazardous waste to the inspection center; and, upon receiving an inspection result from the inspection center indicating that the hazardous waste meets the second inspection standard, transporting the hazardous waste to the hazardous waste warehouse.
[0011] In some optional embodiments, transporting the hazardous waste to the hazardous waste warehouse includes: controlling the ground transport vehicle to carry the hazardous waste and place it on the conveyor line corresponding to the hazardous waste warehouse; when the hazardous waste is transported to the hazardous waste warehouse via the conveyor line, calculating the quantity of hazardous waste in the hazardous waste warehouse; when the quantity of hazardous waste reaches a preset storage level, issuing an outbound instruction message to instruct the hazardous waste to be outbound.
[0012] In some optional embodiments, the method further includes: obtaining the personnel information of the dispatcher and the workshop information of the production workshop from the demand information; when the personnel information is in the dispatch permission whitelist, determining that the dispatcher corresponding to the personnel information has passed verification; when the workshop information is in the chemical workshop whitelist, determining that the production workshop corresponding to the workshop information has passed verification.
[0013] In some optional embodiments, after the personnel information and the workshop information are verified, the method further includes sending the estimated time for the target chemical to arrive at the production workshop.
[0014] This application also provides a chemical dispatching system, including a computer device, a transport vehicle, and a lifting device. The computer device is communicatively connected to the transport vehicle and the lifting device. The computer device is used to receive demand information for target chemicals from the production workshop and control the transport vehicle and the lifting device to transport the target chemicals stored in the storage warehouse to the production workshop to meet the dispatching needs of the production workshop. The computer device includes a computing module for determining the number of transports and the transport time interval within the demand period of the target chemicals based on the demand information and a chemical transport algorithm model. The computer device is also used to control the transport vehicle and the lifting device to transport the target chemicals from the storage warehouse to the production workshop through a logistics corridor based on the number of transports and the transport time interval. The transport vehicle and the lifting device are used to transport the target chemicals stored in the storage warehouse to the production workshop.
[0015] This application also provides a computer device including a processor and a memory, the processor being used to execute a computer program stored in the memory to implement a chemical dispatching method.
[0016] This application also provides a computer-readable storage medium storing at least one instruction that, when executed by a processor, implements a chemical scheduling method.
[0017] In the chemical dispatching method provided in this application, based on the production workshop's demand information for the target chemicals and the chemical transportation algorithm model, the number of deliveries and the delivery interval within the demand period for the target chemicals are determined. By controlling the number of deliveries and the delivery interval, collisions or even accumulation of chemicals on the transportation line are avoided, and the dispatching efficiency of chemicals is improved. After determining the number of deliveries and the delivery interval, the transport vehicles and lifting devices are controlled to transport the target chemicals from the storage warehouse to the production workshop through the logistics corridor, realizing automated transportation and reducing labor costs. Attached Figure Description
[0018] Figure 1 This is an application environment architecture diagram of the chemical dispatching method provided in the embodiments of this application.
[0019] Figure 2 This is a flowchart of the chemical dispatching method provided in the embodiments of this application.
[0020] Figure 3 This is a flowchart of the chemical transportation algorithm model provided in the embodiments of this application.
[0021] Figure 4 This is a flowchart for determining the pass time provided in the embodiments of this application.
[0022] Figure 5 This is a schematic diagram illustrating the transportation from the inspection center to the production workshop, as provided in the embodiments of this application.
[0023] Figure 6 This is a flowchart of the hazardous waste scheduling process provided in the embodiments of this application.
[0024] Figure 7 This is a flowchart illustrating the warehousing process for chemicals provided in the embodiments of this application.
[0025] Figure 8 This is a schematic diagram of the structure of the computer device provided in the embodiments of this application. Detailed Implementation
[0026] For ease of understanding, some concepts related to the embodiments of this application are illustrated and explained by way of example for reference.
[0027] It should be noted that in this application, "at least one" means one or more, and "more than one" means two or more. "And / or" describes the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A alone, A and B simultaneously, or B alone, where A and B can be singular or plural. The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and drawings of this application are used to distinguish similar objects, not to describe a specific order or sequence.
[0028] To address the technical problem of low efficiency in chemical dispatching, embodiments of this application provide a chemical dispatching method, system, computer equipment, and storage medium, which can improve dispatching efficiency while ensuring the safe transportation of chemicals. The application scenarios of the chemical dispatching method provided in this application embodiment are described below.
[0029] Figure 1 This is an application environment architecture diagram of the chemical dispatching method provided in the embodiments of this application. The chemical dispatching method provided in the embodiments of this application is applied to computer device 10, which may be a large server, desktop computer, laptop computer, tablet computer, personal digital assistant (PDA), etc.
[0030] In some embodiments of this application, the computer device 10 is communicatively connected to the transport vehicle 11, the lifting device 12, multiple receivers 13, and the inspection center 14. The communication connection can be wireless network communication, which can be any of the following networks: Bluetooth, Wireless Fidelity (Wi-Fi), Near Field Communication (NFC), ZigBee Wireless Networks (ZigBee), Infrared Data Association (IrDA), Ultra-Wideband (UWB), Universal Serial Bus (USB), etc. The multiple receivers 13 are installed at predetermined intervals beside the conveyor line 15 or on the track where the conveyor line 15 is located.
[0031] Conveyor line 15 may include conveyor lines for transporting chemicals in ground-level logistics corridors, such as conveyor lines from the dock to storage warehouse 16, conveyor lines connecting storage warehouse 16 and inspection center 14, conveyor lines connecting inspection center 14 and lifting device 12, and conveyor lines connecting lifting device 12 and production workshop 17. Conveyor line 15 may also include conveyor lines for transporting chemicals in rooftop logistics corridors, such as conveyor lines connecting lifting device 12 corresponding to inspection center 14 and lifting device 12 corresponding to production workshop 17. The length of conveyor line 15 set in ground-level or rooftop logistics corridors, as well as the floors and buildings it crosses, can be set according to actual conditions, and this application does not limit this.
[0032] In one example, the inspection center 14 and the production workshop 17 are both on the first floor of different buildings. When the inspection center 14 transports chemicals to the lifting device 12, the lifting device 12 can transport the chemicals from the first floor to the conveyor line 15 corresponding to the rooftop logistics corridor on the third floor. Then, via the conveyor line 15 corresponding to the rooftop logistics corridor, the chemicals are transported to the lifting device 12 corresponding to the production workshop 17. Then, via the lifting device 12, the chemicals located on the third floor are transported back to the first floor. Finally, via the conveyor line 15 corresponding to the ground-level logistics corridor, the chemicals are transported to the entrance of the production workshop 17.
[0033] Conveyor line 15 may also include a conveyor line for transporting hazardous waste in the ground-level logistics corridor, such as a conveyor line connecting the inspection center 14 and the hazardous waste storage 18. Conveyor line 15 may also include a conveyor line for transporting hazardous waste in the rooftop logistics corridor, such as a conveyor line connecting the lifting device 12 corresponding to the inspection center 14 and the lifting device 12 corresponding to the production workshop 17. The conveyor line for transporting hazardous waste in the rooftop logistics corridor may be the same as the conveyor line for transporting chemicals, but the chemicals and hazardous waste need to be transported at different times to avoid contamination of the chemicals by the hazardous waste and to improve the safety of transporting chemicals.
[0034] The transport vehicle 11 includes a ground transport vehicle 110 and a rooftop transport vehicle 111. The ground transport vehicle 110 can be an automated guided vehicle (AGV), forklift, semi-automatic mobile vehicle equipment, fully automatic mobile vehicle equipment, or other transport vehicles that move on the ground. The rooftop transport vehicle 111 can be a transport vehicle that moves on the track of a rooftop conveyor line (e.g., a rooftop logistics corridor), such as a rail-guided vehicle (RGV).
[0035] Ground transport vehicle 110 can be used to move goods on the dock to the conveyor line leading to storage warehouse 16, move chemicals to the shelves in storage warehouse 16, and place chemicals that have been inspected by inspection center 14 on conveyor line 15 leading to hazardous waste warehouse 18.
[0036] The rooftop transport vehicle 111 can be used to transport chemicals or hazardous waste between the inspection center 14 and the production workshop 17. The rooftop transport vehicle 111 carries chemicals transported by the lifting device 12 corresponding to the inspection center 14 and transports them to the lifting device 12 corresponding to the production workshop 17. The rooftop transport vehicle 111 also carries hazardous waste transported by the lifting device 12 corresponding to the production workshop 17 and transports it to the lifting device 12 corresponding to the inspection center 14.
[0037] The lifting device 12 is used to lift items (such as chemicals) from the ground to a higher place (such as the location of the rooftop vehicle 111), or to transport items from a higher place to the ground.
[0038] Receiver 13 may be a radio frequency identification (RFID) reader for tracking, identifying and managing tagged pallets or outer packaging of items, such as pallets for holding items, for example, pallets with RFID tags, on which chemicals are placed, and identifying the RFID tags can determine the location of the chemicals.
[0039] Inspection center 14 can be used to check whether chemicals meet standards, check whether the outer packaging of packaged chemicals meets requirements, etc. Inspection center 14 can use relevant inspection equipment for inspection, or it can be inspected by relevant professionals. This application does not restrict this.
[0040] The conveyor line 15 can be a conveying device for transporting items (such as chemicals or hazardous waste), such as a conveyor belt or a transport track installed at a height.
[0041] Storage compartment 16 can be a warehouse for storing chemicals.
[0042] Production workshop 17 can be a workshop used for auxiliary processing and production of products using chemicals, such as an anodizing workshop, CNC machine tool workshop, polishing workshop, etc. The appropriate chemicals and hazardous waste generated are determined according to different workshop types. In one example, the CNC machine tool workshop is mainly used to produce various mechanical parts, so the chemicals used for auxiliary processing could be cutting fluid, grinding fluid, etc., and the hazardous waste generated after processing could be cutting fluid wastewater, etc.
[0043] Hazardous waste storage 18 can be a warehouse used to store hazardous waste awaiting disposal.
[0044] In some embodiments of this application, the computer device 10 can receive chemical demand information from a user's production workshop 17. This demand information may include the type of chemical, the production workshop 17 where the chemical is processed, and other relevant information. Based on the received demand information, the computer device 10 determines transportation information for the target chemical, which may include the number of deliveries and the delivery time interval. The computer device 10 can then control a ground transport vehicle 110 to extract the target chemical from a storage bin 16. The ground transport vehicle 110 then sequentially places the target chemical at the outlet of the storage bin 16 according to the transportation information, completing the process of extracting the target chemical from the storage bin 16.
[0045] In some embodiments of this application, the outlet of the storage compartment 16 is connected to the conveyor line 15 for transporting chemicals. When chemicals are placed on the conveyor line 15, the computer device 10 can determine the position of the chemicals on the conveyor line 15 based on the information fed back by the receiver 13. This allows the computer device 10 to determine whether there is a transmission abnormality based on the position of the chemicals and to handle the abnormality in a timely manner. For example, if the computer device 10 detects that the chemicals have stopped at a certain position, it can suspend the transport of other chemicals based on this information. This application does not limit this and can process and adjust according to the actual situation.
[0046] In some embodiments of this application, after the target chemical is transported to the inspection center 14 via the conveyor line 15, the computer equipment 10, based on the inspection results reported by the inspection center 14, transfers the target chemical to the production workshop 17 or the hazardous waste storage 18. If the inspection results from the inspection center 14 determine that the target chemical should be transferred to the production workshop 17, the computer equipment 10 controls the lifting device 12 and the overhead transport vehicle 111 to transport the chemical to the production workshop 17, completing the process of delivering the chemical to the production workshop 17. If the inspection results from the inspection center 14 determine that the target chemical should be transferred to the hazardous waste storage 18, the target chemical that does not meet the production requirements is transported to the hazardous waste storage 18 via the conveyor line 15 and the ground transport vehicle 110.
[0047] In some embodiments of this application, the production workshop 17 generates a large amount of hazardous waste during operation. When the production workshop 17 places the packaged hazardous waste on the conveyor line 15, the computer equipment 10 controls the lifting device 12 and the rooftop transport vehicle 111 to transport the hazardous waste to the inspection center 14. The hazardous waste inspected by the inspection center 14 then reaches the hazardous waste warehouse 18 via the conveyor line 15 and the ground transport vehicle 110, completing the hazardous waste processing flow of the production workshop 17.
[0048] Figure 1This is merely an example of the application environment architecture diagram provided in this application embodiment and does not constitute a limitation on the application environment. In one example, different application scenarios can be constructed according to the environmental requirements of the factory location. The inspection center for inspecting chemicals and the inspection center for inspecting hazardous waste can be different areas within the same inspection center, or they can be two inspection centers in different locations, depending on the actual architecture of the factory. This application does not impose any restrictions on this. In another example, more or fewer devices may be included than shown in the diagram. The computer equipment may also be equipped with a supplier management system, a park management system, and a scheduling control system for planning optimal transportation routes, etc., wherein the supplier management system is used to interact with suppliers to obtain raw materials (such as chemicals) provided by suppliers. The park management system is used to manage access control systems, electronic fence check-in, delivery mini-programs, etc. The scheduling control system is used to plan optimal routes for transport vehicles.
[0049] Please see Figure 2 As shown, Figure 2 This is a flowchart of a chemical dispatching method provided in an embodiment of this application, applied to a computer device (e.g., Figure 1 In the computer device 10). Depending on different needs, the order of the steps in this flowchart can be changed, and some steps can be omitted.
[0050] Step S201: Receive the production workshop's demand information for the target chemical.
[0051] In some embodiments of this application, the chemicals may be treatment agents, cleaning agents, polycarbonate, acrylonitrile-butadiene-styrene copolymers, etc., used to assist in the production or processing of electronic products. The production workshop may be a workshop that utilizes chemicals to assist in the production of products; for example, the chemicals may be coating materials used to coat electronic products. The production workshop may be equipped with workshop equipment that communicates with computer equipment. The computer equipment may be a terminal device for managing a chemical dispatch system, and the workshop equipment may be a terminal device for managing the production workshop. The workshop equipment may also be production equipment used for production; this application does not limit this.
[0052] In some embodiments of this application, the computer device can send messages to the workshop equipment or receive demand information sent by the workshop equipment. The demand information can be information set by the user according to production needs. For example, if the chemicals that the production workshop needs to extract from the storage warehouse are called target chemicals, the demand information can include the type of target chemicals to be extracted, the total quantity of target chemicals, the demand cycle usage of target chemicals, the demand time, and workshop information of the production workshop, etc. The user can set it according to actual needs, and this application does not limit it.
[0053] Step S202: Based on demand information and chemical transportation algorithm model, determine the number of times the target chemical will be transported and the transportation time interval within the demand period.
[0054] In some embodiments of this application, a logistics corridor is provided between the storage warehouse and the production workshop, and a conveyor line for transporting chemicals is installed within the logistics corridor. Because chemicals possess various chemical reactivity, such as oxidizing, reducing, acidic, alkaline, water-soluble, and corrosive properties, and may also exhibit flammable and explosive characteristics, different chemicals may react with each other to produce new substances, multiple fire compartments can be set up in the logistics corridor to avoid safety issues. The tunnel containing each fire compartment can be designed with fire-resistant materials, high-temperature resistance, and explosion-proof features. Each fire compartment can be separated by fire doors or firewalls, such as roller shutters. Ventilation devices, smoke extraction devices, temperature sensors for early warning of fire compartment temperature, and infrared sensors for detecting gas concentration in the fire compartment can be installed within the fire compartments. The lengths of the multiple fire compartments can be the same or different, and the logistics corridor includes ground-level and rooftop logistics corridors.
[0055] Furthermore, due to the hazardous nature of chemicals, to prevent unauthorized use and potential dangers, users must have appropriate access permissions when retrieving chemicals from the storage warehouse. When the computer receives a request, it can retrieve the dispatcher's personnel information, the production workshop information, and the target chemical. If the personnel information is on the dispatch permission list, the corresponding dispatcher is verified, indicating that the dispatcher has the authority to retrieve the target chemical. If the workshop information is on the chemical workshop whitelist, the corresponding production workshop is verified, indicating that the production workshop has the authority to use the target chemical. Additionally, since transmission may involve different floors, the computer can also determine whether the workshop has the necessary access permissions based on the whitelist of floors to which the target chemical is destined.
[0056] In some embodiments of this application, if the computer equipment determines that personnel information or workshop information has failed verification, it issues a warning, indicating that the dispatcher or the production workshop does not have permission to use the target chemical. If the computer equipment determines that both personnel information and workshop information have passed verification, and there are other materials or articles on the transportation route determined for the target chemical, the transportation process for the target chemical will not be initiated until there are no other materials or articles on the transportation route, at which point the transportation process for the target chemical will be initiated.
[0057] In some embodiments of this application, after the computer device initiates the transportation process for the target chemical, it can provide feedback to the production workshop regarding the estimated arrival time of the target chemical and relevant information about the target chemical that can be provided to the production workshop. This relevant information may include whether the storage warehouse has sufficient quantities of the chemical. Providing feedback to the production workshop regarding the estimated arrival time of the target chemical allows production workshop staff and dispatchers to prepare for receiving / inspecting the target chemical in advance based on the estimated time. When the computer device begins controlling the transportation of the chemical, to prevent reactions during transportation, the computer device can invoke a chemical transportation algorithm model to control the transportation of the chemical. The specific steps for invoking the chemical transportation algorithm model to control the chemical transportation can be found in... Figure 3 The illustrated embodiment.
[0058] Figure 3 This is a flowchart of the chemical transportation algorithm model provided in the embodiments of this application, including steps S2021 to S2024:
[0059] Step S2021: Based on the demand information, determine the required usage amount of the target chemical over the demand cycle.
[0060] In some embodiments of this application, the computer device obtains the demand time and demand cycle usage of the target chemical from the received demand information. For example, the demand time may be the time when the production workshop needs to use the target chemical, and a day and night (or 24 hours) is taken as a demand cycle. Then the demand cycle usage may be the day and night usage of the target chemical.
[0061] Step S2022: Determine the number of deliveries based on the demand cycle usage and the preset maximum safe transport volume per trip.
[0062] In some embodiments of this application, the number of shipments of the target chemical within the demand period is determined based on the usage amount during the demand cycle and a preset maximum safe transport volume per shipment. This number of shipments can be the minimum number of shipments within the demand period. In practical applications, the actual number of shipments can be greater than or equal to the minimum number of shipments. This can be expressed by the formula: Number of shipments = Usage amount during the demand cycle / Maximum safe transport volume per shipment. The maximum safe transport volume per shipment can be set according to the type of product to be transported, etc., and this application does not impose any restrictions on it.
[0063] Step S2023: Determine the passage time through the target fire compartment based on the length of each fire compartment and the corresponding transport speed.
[0064] In some embodiments of this application, the length of each fire compartment may vary, and the logistics corridor includes a rooftop logistics corridor and a ground-level logistics corridor. Since the transport speed of the rooftop transport vehicles used in the rooftop logistics corridor differs from the transport speed of the ground-level transport vehicles used in the ground-level logistics corridor, the calculated passage time must consider the maximum value. Therefore, the calculation of the passage time through the target fire compartment can refer to... Figure 4 The illustrated embodiment.
[0065] Figure 4 This is a flowchart of determining the passage time provided in the embodiments of this application, including steps S20231 to S20236:
[0066] Step S20231: Obtain the longest fire compartment among the multiple fire compartments corresponding to ground transportation as the first fire compartment, and the longest fire compartment among the multiple fire compartments corresponding to rooftop transportation as the second fire compartment.
[0067] In some embodiments of this application, by obtaining the length of each fire compartment in the rooftop logistics corridor and the ground logistics corridor, the longest fire compartment among the multiple fire compartments corresponding to ground (e.g., ground logistics corridor) transportation can be selected as the first fire compartment, and the longest fire compartment among the multiple fire compartments corresponding to rooftop (e.g., rooftop logistics corridor) transportation can be selected as the second fire compartment.
[0068] Step S20232: Determine the first passage time through the first fire compartment based on the length of the first fire compartment and the ground transport speed.
[0069] In some embodiments of this application, after determining the length of the first fire compartment, the ground transport speed of the ground transport vehicle is obtained, and the first passage time through the first fire compartment is determined based on the length of the first fire compartment and the ground transport speed.
[0070] Step S20233: Determine the second passage time through the second fire compartment based on the length of the second fire compartment and the rooftop transport speed.
[0071] In some embodiments of this application, after determining the length of the second fire compartment, the roof transport speed of the rooftop vehicle is obtained, and the second passage time through the second fire compartment is determined based on the length of the second fire compartment and the rooftop transport speed.
[0072] Step S20234: Determine whether the first passage time is greater than the second passage time.
[0073] In some embodiments of this application, if the first passage time is longer than the second passage time, step S20235 is executed; if the second passage time is longer than the first passage time, step S20236 is executed.
[0074] Step S20235: Determine the first passage time as the passage duration and determine the first fire compartment as the target fire compartment.
[0075] Step S20236: Determine the second passage time as the passage time and determine the second fire compartment as the target fire compartment.
[0076] In the embodiments of this application, in order to obtain the minimum transit time within a safe range, the maximum value of the length of the fire compartment and the maximum value of the transport speed are calculated, which can, to a certain extent, balance the safety of transporting chemicals with the efficiency of transmission.
[0077] Step S2024: Determine the transportation time interval based on the transit time and the maximum number of cargo pallets that can be carried within the target fire compartment.
[0078] In some embodiments of this application, the delivery time interval can be the minimum time interval for delivering chemicals, meaning that the difference between the current delivery time and the previous delivery time is not less than the delivery time interval, which can control the target chemicals to be transported within a safe time interval.
[0079] In some embodiments of this application, after determining the target fire compartment, the maximum carrying capacity of the target fire compartment is obtained. Based on the maximum number of cargo pallets that can be carried within the target fire compartment and the maximum safe transport volume per trip, the maximum number of cargo pallets that can be carried within the target fire compartment is determined, expressed by the formula: Maximum number of cargo pallets that can be carried within the target fire compartment = Maximum number of cargo pallets that can be carried within the target fire compartment / Maximum safe transport volume per trip. The maximum safe transport volume per trip can be set according to actual circumstances, and this application does not impose any restrictions on it.
[0080] In some embodiments of this application, after determining the passage time through the target fire compartment and the maximum number of pallets that can be carried within the target fire compartment, a transportation time interval is determined based on the passage time and the maximum number of pallets that can be carried within the target fire compartment. This transportation time interval can be the minimum transportation time interval. In practical applications, the actual transportation time interval can be greater than or equal to the minimum transportation time interval. Expressed by the formula: Transportation time interval = Passage time / Maximum number of pallets that can be carried within the target fire compartment.
[0081] In other embodiments of this application, the mother and daughter pallets used for transporting the target chemicals have an anti-tipping structure. The mother pallet is designed with a corresponding color mark according to the type of target chemicals to indicate that the mother pallet carries the target chemicals and other raw materials cannot be used at will. The daughter pallets have a structural design to prevent secondary leakage and corrosion.
[0082] In other embodiments of this application, the computer device may also be equipped with a system error prevention design, such as a system anti-collision algorithm to prevent chemical collisions, requiring all chemicals to be transported separately for acid and alkali during the control of the shipment process (chemicals with acid and alkali chemical activity cannot be transported together), ensuring that the single-board transport volume of Class A chemicals does not exceed 100KG and cannot be transported together, and that chemicals can only be transported to designated floors, etc.
[0083] In the embodiments of this application, when determining the number of times the target chemicals are transported and the time interval between transports, the maximum safe transport volume per trip, the demand cycle usage, the maximum number of load-bearing plates in the target fire compartment, and the passage time through the target fire compartment are comprehensively considered. This can prevent the target chemicals from colliding and accumulating during transportation, thereby improving the safety and efficiency of transporting chemicals.
[0084] Step S203: Based on the number of transports and the transport time interval, control the transport vehicle and lifting device to transport the target chemicals from the storage warehouse to the production workshop through the logistics corridor.
[0085] In some embodiments of this application, after the computer device calculates the number of transports and the transport time interval, it begins preparing the target chemical to be transported based on the number of transports and the transport time interval. The target chemical is stored in a storage warehouse, and the computer device can control a ground transport vehicle to remove the target chemical from the storage warehouse, and then control the ground transport vehicle to place the target chemical on the conveyor line of the docking inspection center.
[0086] In one example, when the computer device receives feedback from the receiver that the target chemical has arrived at the entrance of the inspection center, the computer device sends an instruction to the inspection center that the target chemical has arrived, causing the inspection center to inspect the target chemical.
[0087] In another example, the computer equipment determines the location of the target chemical in real time based on the location information fed back by the receiver. The conveyor line directly transports the target chemical to the inspection center, allowing the inspection center to start inspection immediately upon receiving the target chemical. Since the inspection center can determine that there is a chemical being transported when the conveyor line is started, the computer equipment does not need to send an instruction to the inspection center that the target chemical has arrived at the inspection center. This reduces the operating pressure on the computer equipment and reduces the number of control steps, which can improve transportation efficiency to some extent.
[0088] In some embodiments of this application, when a computer device receives an inspection result from an inspection center indicating that the target chemical meets a first inspection standard, and detects that the target chemical has been transported to a lifting device via a conveyor line, it controls the lifting device to carry the target chemical to a first designated location, which may be the location of a rooftop transport vehicle. Then, it controls the rooftop transport vehicle to carry the target chemical to a second designated location, which may be the location of a lifting device corresponding to the entrance of the production workshop. When the target chemical reaches the second designated location, it controls the lifting device to carry (descend) the target chemical to the production workshop, enabling the production workshop to process the target chemical, such as processing it into new products. Meeting the first inspection standard may include the target chemical's outer packaging being intact and the target chemical having no odor, etc., which this application does not limit.
[0089] Figure 5 This is a schematic diagram illustrating the transportation from the inspection center to the production workshop, as provided in an embodiment of this application. Figure 5 As shown, the inspection center 14 places the target chemical on the conveyor line 15. When the target chemical is transported to position A via the conveyor line 15, the computer equipment 10 controls the lifting device 12 to transport the target chemical to position B (first designated position), controls the rooftop transport vehicle 111 to retrieve the target chemical from position B, and then transports the target chemical to position C via the rooftop transport vehicle 111. The lifting device 12 controls the lifting device 12 to transport the target chemical from position C to position D (second designated position). Finally, the target chemical is transported by the conveyor line 15 to the designated production equipment inside the production workshop 17.
[0090] In other embodiments of this application, when the computer equipment receives an inspection result from the inspection center indicating that the target chemical does not meet the first inspection standard, and detects that the target chemical has been transported by the conveyor line to the waste storage docking interface, it controls the ground transport vehicle to move the non-compliant target chemical to the hazardous waste storage. The non-compliance with the first inspection standard may include damage such as corrosion on the outer packaging of the target chemical, or the presence of an unusual odor in the target chemical; this application does not limit these possibilities.
[0091] In the embodiments of this application, based on the production workshop's demand information for the target chemicals and the chemical transportation algorithm model, the number of transportations and the transportation time interval within the demand period for the target chemicals are determined. By controlling the number of transportations and the transportation time interval, collisions or even accumulation of chemicals on the transportation line can be avoided, while also improving the scheduling efficiency of chemicals. After determining the number of transportations and the transportation time interval, ground transport vehicles, rooftop transport vehicles, and lifting devices are controlled to transport the target chemicals from the storage warehouse to the production workshop through the logistics corridor. Based on the transportation method combining ground transport vehicles and rooftop transport vehicles, not only can the transportation efficiency of the target chemicals be guaranteed, but the safety of the transportation of the target chemicals can also be improved. In addition, the transportation algorithm model involved in the embodiments of this application can determine the number of transportations and the transportation time interval while ensuring that the chemical transportation complies with fire safety regulations, thereby achieving the goal of improving the efficiency of automated equipment (such as conveyor lines, lifting devices, and transport vehicles) in transporting chemicals and hazardous waste between the production workshop and warehouses (storage warehouses, hazardous waste warehouses).
[0092] In other embodiments of this application, when the computer device initially uses a transportation algorithm model to control the transportation of chemicals, it can transport chemicals with lower hazard levels and periodically collect relevant data generated during transportation. The computer device summarizes and analyzes the relevant data to optimize the transportation algorithm model. When the data collected after using the optimized transportation algorithm model gradually stabilizes, it can begin to transport chemicals with higher hazard levels, which can improve the safety of transportation to a certain extent.
[0093] Figure 6 This is a flowchart illustrating the scheduling process for hazardous waste provided in an embodiment of this application. For example... Figure 2 The illustrated embodiment describes the process of treating the target chemical in the production workshop, followed by the use of methods such as... Figure 6 The illustrated embodiment treats hazardous waste generated in the production workshop, including the following steps:
[0094] Step S601: Receive a request from the production workshop for hazardous waste generated after processing the target chemical.
[0095] In some embodiments of this application, a production workshop generates a significant amount of hazardous waste after processing the target chemicals. To prevent this hazardous waste from occupying space in the production workshop and to prevent it from reacting with the chemicals being produced, a computer device can receive a request from a user in the production workshop to remove the hazardous waste, instructing the computer device to initiate the process of removing the hazardous waste.
[0096] Step S602: Control the lifting device to carry the hazardous waste and transport it to the rooftop transport vehicle.
[0097] In some embodiments of this application, after receiving a request to leave the workshop, the computer device can control the lifting device to carry the hazardous waste to the rooftop transport vehicle. In order to avoid collision between the target chemical and the hazardous waste, the conveyor line, lifting device, and rooftop transport vehicle for transporting the hazardous waste can be different from the conveyor line, lifting device, and rooftop transport vehicle for transporting the target chemical.
[0098] Step S603: Control the rooftop transport vehicle to transport the hazardous waste to the inspection center.
[0099] In some embodiments of this application, a rooftop transport vehicle is controlled to transport hazardous waste to an inspection center. When the rooftop transport vehicle transports the hazardous waste to a lifting device that docks with the inspection center, the rooftop transport vehicle places the hazardous waste on the lifting device, and the lifting device transports the hazardous waste to the inspection center for inspection.
[0100] Step S604: When the inspection result issued by the inspection center confirms that the hazardous waste meets the second inspection standard, the hazardous waste is transported to the hazardous waste warehouse.
[0101] In some embodiments of this application, the inspection of hazardous waste by the inspection center may include checking whether the outer packaging of the hazardous waste is intact. When the computer equipment receives the inspection result from the inspection center indicating that the hazardous waste meets the second inspection standard, it controls the ground transport vehicle to carry the inspected hazardous waste and place it on the conveyor line corresponding to the hazardous waste warehouse. When the hazardous waste is transported to the hazardous waste warehouse opening by the conveyor line, the computer controls the ground transport vehicle to move the hazardous waste into the designated storage location in the hazardous waste warehouse and records the quantity of the hazardous waste. Meeting the second inspection standard may mean that the outer packaging of the hazardous waste meets the requirements.
[0102] In some embodiments of this application, when the quantity of hazardous waste recorded by the computer device reaches a preset storage level, an outbound instruction message is issued, instructing the user to outbound the hazardous waste. The user can notify the hazardous waste disposal company to transport the hazardous waste out of the hazardous waste warehouse, and this application does not limit this.
[0103] In the embodiments of this application, the computer equipment can monitor the hazardous waste processing flow and the quantity of hazardous waste in the hazardous waste warehouse in real time. It can not only remove hazardous waste from the production workshop in a timely manner, but also remove hazardous waste accumulated in the hazardous waste warehouse in a timely manner, thereby reducing the impact of hazardous waste on the target chemicals to a certain extent.
[0104] Figure 7 This is a flowchart illustrating the chemical warehousing process provided in the embodiments of this application. When executing... Figure 2 With Figure 6 Prior to the illustrated embodiment, a chemical receiving process, including the target chemical, is also included, comprising the following steps:
[0105] Step S701: Respond to the instruction to put the chemicals into storage.
[0106] In some embodiments of this application, the storage warehouse is a warehouse for storing chemicals. Because chemicals are chemically reactive, fire-resistant partitions can be set up within the storage warehouse. Smoke sprinkler concentration detection devices and explosion-proof designs can be installed within the fire-resistant partitions. Liquid collection tanks and buffer pools can be installed on the floor of the storage warehouse to prevent liquid leakage. The shelves within the storage warehouse can be designed for high temperature and corrosion resistance. Explosion-proof automated warehousing equipment can be installed within the storage warehouse. Fire-fighting equipment for alarm purposes can be installed within the storage warehouse. In addition, temperature sensors, humidity sensors, and other sensors can be installed within the storage warehouse to collect environmental data.
[0107] In some embodiments of this application, when chemicals are transported to a designated location, such as a dock, the user unloads and inspects the chemicals. After inspection, a label is affixed to the pallet holding the chemicals, and the labeled pallet is then bound to the chemicals for marking. The affixed label can be read by a receiver, and unloading can be performed using equipment equipped with a robotic arm; this application does not limit this. After unloading the chemicals, the user can issue an inbound command to a computer device, instructing the computer device to control a ground transport vehicle to move to a designated location to execute the inbound process. The ground transport vehicle may be equipped with obstacle avoidance design, a driving recorder, collision strip detection sensors, pallet positioning detection sensors, fork tip collision detection sensors, an emergency stop button, and an audible and visual alarm, etc.
[0108] Step S702: Control the ground transport vehicle to transport the chemicals to the corresponding conveyor line of the storage warehouse.
[0109] In some embodiments of this application, a ground transport vehicle is controlled to place a labeled pallet and chemicals on the pallet onto a conveyor line that can transport the chemicals to a conveyor line interface that docks with the entrance of a storage compartment.
[0110] Step S703: When the arrival of chemicals at the conveyor line interface of the storage warehouse is detected, the ground transport vehicle is controlled to store the chemicals on the conveyor line interface into the storage warehouse.
[0111] In some embodiments of this application, when the computer device receives location information from the receiver indicating that the chemicals have been transported to the conveyor line interface, it controls the ground transport vehicle to move the chemicals to the shelf in the storage warehouse. Furthermore, the computer device can receive not only location information but also the type of chemicals. When controlling the ground transport vehicle to move the chemicals to the storage warehouse, the computer device instructs the ground transport vehicle to place the chemicals in the designated storage location on the shelf to avoid random placement.
[0112] In the embodiments of this application, the chemical warehousing process can be automated by controlling ground transport vehicles to place chemicals in designated locations on designated shelves, thereby reducing labor costs. At the same time, due to the active characteristics of the chemicals, harm to workers is also reduced.
[0113] Please continue reading. Figure 1 In this embodiment, a chemical dispatching system is provided, including a computer device 10, a transport vehicle 11, and a lifting device 12. The computer device 10 is communicatively connected to both the transport vehicle 11 and the lifting device 12. The transport vehicle 11 includes a ground transport vehicle 110 and a rooftop transport vehicle 111. The computer device 10 is used to receive demand information for target chemicals from the production workshop 17 and control the transport vehicle 11 and the lifting device 12 to transport the target chemicals stored in the storage warehouse 16 to the production workshop 17 to meet the dispatching needs of the production workshop 17. The computer device 10 includes a computing module, used to determine the number of transports and the transport time interval within the demand period of the target chemicals based on the demand information and the chemical transport algorithm model. The computer device 10 is also used to control the transport vehicle 11 and the lifting device 12 to transport the target chemicals from the storage warehouse 16 to the production workshop 17 through a logistics corridor based on the number of transports and the transport time interval. The transport vehicle 11 and the lifting device 12 are used to transport the target chemicals stored in the storage warehouse 16 to the production workshop 17.
[0114] The working content of the computer equipment 10, the transport vehicle 11, and the lifting device 12 in the chemical dispatching system of this application is the same as that of the chemical dispatching method described above, and will not be repeated here.
[0115] Figure 6 This is a schematic diagram of the structure of a computer device provided in an embodiment of this application. The computer device 10 may include, but is not limited to, a memory 101 and a processor 102. Figure 6 The computer device 10 is merely an example and does not constitute a limitation on the computer device 10. It may include more or fewer components than shown, or combine certain components, or different components. For example, the computer device 10 may also include input / output devices, network access devices, etc.
[0116] The memory 101 may be the internal memory of the computer device 10, that is, the memory built into the computer device 10. In other embodiments, the memory 101 may also be the external memory of the computer device 10, that is, the memory externally connected to the computer device 10.
[0117] In some embodiments, the memory 101 is used to store program code and various data, and to enable high-speed and automatic access to programs or data during the operation of the computer device 10.
[0118] The memory 101 may include random access memory, and may also include non-volatile memory, such as hard disk, memory, plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, at least one disk storage device, flash memory device, or other volatile solid-state storage device.
[0119] In one embodiment, the processor 102 may be a Central Processing Unit (CPU), or other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor may be a microprocessor, or the processor itself may be any other conventional processor.
[0120] If the program code and various data in the memory 101 are implemented as software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, all or part of the processes in the methods of the above embodiments of this application, such as cross-regional network communication methods, can also be implemented by a computer program instructing related hardware. The computer program can be stored in a computer-readable storage medium, and when the computer program is executed by a processor, it can implement the steps of the various method embodiments described above. The computer program includes computer program code, which can be in the form of source code, object code, executable files, or certain intermediate forms. The computer-readable medium can include: any entity or device capable of carrying the computer program code, recording media, USB flash drives, portable hard drives, magnetic disks, optical disks, computer memory, read-only memory (ROM), etc.
[0121] It is understood that the module division described above is a logical functional division, and there may be other division methods in actual implementation. Furthermore, the functional modules in the various embodiments of this application can be integrated into the same processing unit, or each module can exist physically separately, or two or more modules can be integrated into the same unit. The integrated modules described above can be implemented in hardware or in a combination of hardware and software functional modules.
[0122] This application also provides a computer-readable storage medium storing a computer program, the computer program including program instructions, and the method implemented when the program instructions are executed can refer to the methods in the above embodiments of this application.
[0123] The computer-readable storage medium can be the internal memory of the computer device described in the above embodiments, such as the hard disk or memory of the computer device. The computer-readable storage medium can also be an external storage device of the computer device, such as a plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, etc., provided on the computer device.
[0124] In some embodiments, the computer-readable storage medium may include a stored program area and a stored data area, wherein the stored program area may store an operating system, an application program required for at least one function, etc.; and the stored data area may store data created based on the use of the computer device, etc.
[0125] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail or recorded in a certain embodiment, please refer to the relevant descriptions of other embodiments.
[0126] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0127] In the embodiments provided in this application, it should be understood that the disclosed devices / terminal equipment and methods can be implemented in other ways. For example, the device / terminal equipment embodiments described above are merely illustrative. For instance, the division of modules or units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the displayed or discussed mutual coupling or direct coupling or communication connection may be through some interfaces; the indirect coupling or communication connection between devices or units may be electrical, mechanical, or other forms.
[0128] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0129] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.
[0130] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application and are not intended to limit it. Although this application has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this application without departing from the spirit and scope of the technical solutions of this application.
Claims
1. A chemical dispatching method, applied to computer equipment, characterized in that, The method includes: Receive information on the production workshop's demand for target chemicals; Based on the demand information and the chemical transportation algorithm model, the number of transportations and the transportation time interval within the demand period of the target chemical are determined; Based on the number of transports and the transport time interval, the transport vehicle and lifting device are controlled to transport the target chemical from the storage warehouse to the production workshop via a logistics corridor; multiple fire-resistant zones are set up on the logistics corridor between the storage warehouse and the production workshop; the determination of the number of transports and the transport time interval of the target chemical within the demand time period based on the demand information and the chemical transport algorithm model includes: determining the demand cycle usage of the target chemical based on the demand information; determining the number of transports based on the demand cycle usage and a preset maximum safe transport volume per trip; determining the passage time through the target fire-resistant zone based on the length of each fire-resistant zone and the corresponding transport speed; and determining the transport time interval based on the passage time and the maximum number of cargo pallets that can be carried in the target fire-resistant zone; wherein, determining the passage time through the target fire-resistant zone based on the length of each fire-resistant zone and the corresponding transport speed... The length includes: obtaining the longest fire compartment among multiple fire compartments corresponding to ground transportation as the first fire compartment, and the longest fire compartment among multiple fire compartments corresponding to rooftop transportation as the second fire compartment; determining a first passage time through the first fire compartment based on the length of the first fire compartment and the ground transportation speed, wherein the ground transportation speed is the transportation speed of the ground transport vehicle; determining a second passage time through the second fire compartment based on the length of the second fire compartment and the rooftop transportation speed, wherein the rooftop transportation speed is the transportation speed of the rooftop transport vehicle; if the first passage time is longer than the second passage time, determining the first passage time as the passage time and determining the first fire compartment as the target fire compartment; if the second passage time is longer than the first passage time, determining the second passage time as the passage time and determining the second fire compartment as the target fire compartment.
2. The chemical dispatching method according to claim 1, characterized in that, The method further includes: The maximum number of cargo pallets that can be carried in the target fire compartment is determined based on the maximum carrying capacity of the target fire compartment and the maximum safe transport volume per trip.
3. The chemical dispatching method according to claim 1, characterized in that, The transport vehicles include ground transport vehicles and rooftop transport vehicles. The process of controlling the transport vehicles and lifting devices to transport the target chemicals from the storage warehouse to the production workshop via a logistics corridor, based on the number of transport trips and the transport time intervals, includes: The ground transport vehicle is controlled to carry the target chemical removed from the storage warehouse and place the target chemical on a conveyor line for transport to the inspection center. Upon receiving the inspection result from the inspection center confirming that the target chemical meets the first inspection standard, the target chemical is transported to the lifting device, and the lifting device is controlled to carry the target chemical and transport it to the rooftop transport vehicle. The rooftop transport vehicle is controlled to transport the target chemical to the production workshop.
4. The chemical dispatching method according to claim 3, characterized in that, Before receiving information on the production workshop's demand for the target chemical, the method further includes: In response to an instruction to receive chemicals, the chemicals including the target chemical; Control the ground transport vehicle to transport the chemicals to the conveyor line corresponding to the storage warehouse; When the chemical is detected to have arrived at the conveyor line interface of the storage bin, the ground transport vehicle is controlled to store the chemical on the conveyor line interface into the storage bin.
5. The chemical dispatching method according to claim 3, characterized in that, The method further includes: Receive a request from the production workshop to remove hazardous waste generated after the target chemical is processed in the production workshop; Control the lifting device to carry the hazardous waste and transport it to the rooftop transport vehicle; Control the rooftop transport vehicle to transport the hazardous waste to the inspection center; Upon receiving the inspection result from the inspection center confirming that the hazardous waste meets the second inspection standard, the hazardous waste is transported to the hazardous waste warehouse.
6. The chemical dispatching method according to claim 5, characterized in that, The transportation of the hazardous waste to the hazardous waste warehouse includes: Control the ground transport vehicle to carry the hazardous waste and place it on the conveyor line corresponding to the hazardous waste warehouse; When the hazardous waste is transported to the hazardous waste warehouse via the conveyor line, the quantity of hazardous waste in the hazardous waste warehouse is calculated. When the quantity of hazardous waste reaches the preset storage level, an outbound instruction is issued, instructing the hazardous waste to be outbound.
7. The chemical dispatching method according to claim 1, characterized in that, The method further includes: Obtain the personnel information of the dispatcher and the workshop information of the production workshop from the demand information; When the personnel information is in the dispatch permission whitelist, it is determined that the dispatcher corresponding to the personnel information has passed the verification. When the workshop information is in the chemical workshop whitelist, the production workshop corresponding to the workshop information is verified.
8. The chemical dispatching method according to claim 7, characterized in that, After the personnel information and the workshop information are verified, the method further includes: The estimated time for the target chemical to arrive at the production workshop.
9. A chemical dispatching system, characterized in that, The system includes computer equipment, a transport vehicle, and a lifting device, wherein the computer equipment is communicatively connected to both the transport vehicle and the lifting device. The computer equipment is used to receive the demand information of the production workshop for the target chemicals, and to control the transport vehicle and lifting device to transport the target chemicals stored in the storage warehouse to the production workshop to meet the scheduling needs of the production workshop. The logistics corridor connecting the storage warehouse and the production workshop is equipped with multiple fire-resistant zones; the computer equipment includes: A calculation module is used to determine the number of deliveries and delivery time intervals within the demand period of a target chemical based on the demand information and a chemical transportation algorithm model. This includes: determining the cyclical usage of the target chemical based on the demand information; determining the number of deliveries based on the cyclical usage and a preset maximum safe transport volume per trip; determining the transit time through the target fire compartment based on the length of each fire compartment and its corresponding transport speed; and determining the delivery time interval based on the transit time and the maximum number of pallets that can be carried within the target fire compartment. The step of determining the transit time through the target fire compartment based on the length of each fire compartment and its corresponding transport speed includes: obtaining the longest fire compartment among multiple fire compartments corresponding to ground transportation as the first fire compartment, and... The longest fire compartment among multiple fire compartments corresponding to surface transportation is designated as the second fire compartment. A first transit time is determined based on the length of the first fire compartment and the ground transportation speed, where the ground transportation speed is the speed of the ground transport vehicle. A second transit time is determined based on the length of the second fire compartment and the rooftop transportation speed, where the rooftop transportation speed is the speed of the rooftop transport vehicle. If the first transit time is longer than the second transit time, the first transit time is designated as the transit time, and the first fire compartment is designated as the target fire compartment. If the second transit time is longer than the first transit time, the second transit time is designated as the transit time, and the second fire compartment is designated as the target fire compartment. The computer equipment is also used to control the transport vehicle and lifting device to transport the target chemical from the storage warehouse to the production workshop through the logistics corridor based on the number of transports and the transport time interval; The transport vehicle and the lifting device are used to transport the target chemicals stored in the storage warehouse to the production workshop.
10. A computer device, characterized in that, The computer device includes a processor and a memory, the processor being configured to execute a computer program stored in the memory to implement the chemical dispatching method as described in any one of claims 1 to 8.
11. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores at least one instruction that, when executed by a processor, implements the chemical scheduling method as described in any one of claims 1 to 8.