Conveying method, device and equipment for quality energy network, medium and product
By combining composite pipelines and conversion stations, multi-form transmission of gas, liquid, solid, optical signals and electrical signals is achieved, solving the problem of single transmission mode in existing technologies, reducing energy consumption and pipeline wear, and improving the flexibility and efficiency of the transmission system.
Patent Information
- Application Number
- CN202511561719.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-29
- Publication Date
- 2025-12-23
AI Technical Summary
Existing pipeline transportation methods are limited and cannot meet the needs of multi-mode transportation. Closed pressurized transportation has high energy consumption, rapid pipeline wear, and stringent requirements for sealing.
By employing composite pipelines and conversion stations, the system processes and stores the target transport object by acquiring transport instructions, enabling the transport of multiple forms of gas, liquid, solid, optical signals, and electrical signals, and utilizing composite pipelines for transport.
It adapts to the needs of various modes of transportation, reduces transportation costs and difficulties, improves infrastructure utilization, reduces energy consumption, and extends pipeline life.
Smart Images

Figure CN121180673A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] Embodiments of the present application relate to the technical field of computer technology, and particularly relate to a conveying method and device for a quality-energy network, equipment, medium and product. BACKGROUND
[0002] As a core component of the five major transportation modes (railway, highway, waterway, aviation, and pipeline), pipelines play a "lifeline" role in the field of energy security.
[0003] In the prior art, after the pipeline is laid, only gas or liquid can be conveyed through the pipeline, the conveying object is single, and it is impossible to adapt to the multi-form conveying demand, resulting in low utilization rate of infrastructure. Moreover, if liquid is conveyed through the pipeline, a closed and pressurized conveying mode needs to be used, and the closed and pressurized conveying mode needs to continuously maintain a high-pressure environment, which not only has high energy consumption (accounting for 30%-40% of the total conveying cost), but also causes fast pipeline wear and high requirements for pipeline sealing. SUMMARY
[0004] Embodiments of the present application provide a conveying method and device for a quality-energy network, equipment, medium and product to solve at least one of the above problems.
[0005] According to an aspect of the present application, a conveying method for a quality-energy network is provided, which is executed by a control device in a conveying system, the conveying system comprising a composite pipeline, a conversion station and the control device, and the conveying method for the quality-energy network comprising:
[0006] obtaining conveying instructions corresponding to each conversion station on a target conveying path for a target conveying object, wherein the target conveying object comprises at least one of gas, liquid, solid, optical signal and electrical signal;
[0007] for a non-last conversion station, when the target conveying object is conveyed to the conversion station, conveying instructions corresponding to the current conversion station are sent to the conversion station, the conversion station is used to process the target conveying object, and the processed target conveying object is conveyed to the next conversion station through the composite pipeline;
[0008] for a last conversion station, when the target conveying object is conveyed to the conversion station, conveying instructions corresponding to the current conversion station are sent to the conversion station, the conversion station is used to store the target conveying object.
[0009] According to another aspect of the present application, a conveying device for a quality-energy network is provided, which is configured in a control device in a conveying system, the conveying system comprising a composite pipeline, a conversion station and the control device, and the conveying device for the quality-energy network comprising:
[0010] The acquisition module is configured to acquire a conveying instruction corresponding to each conversion station on a target conveying path of a target conveying object, wherein the target conveying object comprises at least one of a gas, a liquid, a solid, an optical signal and an electrical signal.
[0011] The first sending module is configured to, for a non-terminal conversion station, send the conveying instruction corresponding to the current conversion station to the conversion station when the target conveying object is conveyed to the conversion station, wherein the conversion station is configured to process the target conveying object and convey the processed target conveying object to a next conversion station through a composite pipeline.
[0012] The second sending module is configured to, for a terminal conversion station, send the conveying instruction corresponding to the current conversion station to the conversion station when the target conveying object is conveyed to the conversion station, wherein the conversion station is configured to store the target conveying object.
[0013] According to another aspect of the present application, an electronic device is provided, which comprises:
[0014] at least one processor; and
[0015] a memory connected to the at least one processor in communication; wherein
[0016] the memory stores a computer program executable by the at least one processor, and the computer program is executed by the at least one processor to enable the at least one processor to perform the conveying method for a quantum energy network according to any one of the embodiments of the present application.
[0017] According to another aspect of the present application, a computer readable storage medium is provided, which stores computer instructions for enabling a processor to perform the conveying method for a quantum energy network according to any one of the embodiments of the present application when executed by the processor.
[0018] According to another aspect of the present application, a computer program product is provided, which, when executed by a processor, implements the conveying method for a quantum energy network according to any one of the embodiments of the present application.
[0019] The embodiments of the present application can acquire a conveying instruction corresponding to each conversion station on a target conveying path of a target conveying object, for a non-terminal conversion station, send the conveying instruction corresponding to the current conversion station to the conversion station when the target conveying object is conveyed to the conversion station, wherein the conversion station is configured to process the target conveying object and convey the processed target conveying object to a next conversion station, and for a terminal conversion station, send the conveying instruction corresponding to the current conversion station to the conversion station when the target conveying object is conveyed to the conversion station, wherein the conversion station is configured to store the target conveying object, thereby being able to adapt to multi-form conveying requirements and reduce conveying cost and conveying difficulty.
[0020] It should be understood that the matters described in this section are not intended to identify key or essential features of the embodiments of the application, nor are they intended to limit the scope of the application. Other features of the present application will become apparent from the following description. BRIEF DESCRIPTION OF DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some of the embodiments of the present application, and therefore should not be considered as limiting the scope. For those skilled in the art, other related drawings can also be obtained without creative labor.
[0022] Figure 1 is a flow chart of a conveying method for a mass-energy network in an embodiment of the present application;
[0023] Figure 2 is a structural schematic diagram of a conveying system in an embodiment of the present application;
[0024] Figure 3 is a flow chart of another conveying method for a mass-energy network in an embodiment of the present application;
[0025] Figure 4 is a structural schematic diagram of a composite pipeline in an embodiment of the present application;
[0026] Figure 5 is a structural schematic diagram of a conveying device for a mass-energy network in an embodiment of the present application;
[0027] Figure 6 is a structural schematic diagram of an electronic device in an embodiment of the present application. DETAILED DESCRIPTION
[0028] In order to make the person skilled in the art better understand the present application, the technical solutions in the embodiments of the present application will be described clearly and completely in conjunction with the drawings of the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor should be within the scope of protection of the present application.
[0029] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of the invention described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0030] It is understood that before using the technical solutions disclosed in the various embodiments of this disclosure, users should be informed of the types, scope of use, and usage scenarios of the personal information involved in this disclosure in an appropriate manner in accordance with relevant laws and regulations, and user authorization should be obtained.
[0031] Example 1
[0032] Figure 1 This is a flowchart illustrating a mass-energy equivalence (MGE) network-oriented transport method according to an embodiment of the present invention. This embodiment is applicable to situations involving the transport of target objects. The method can be executed by the MGE network-oriented transport device described in this embodiment, which can be implemented using software and / or hardware, such as... Figure 1 As shown, the method specifically includes the following steps:
[0033] S110, Obtain the transport instructions corresponding to each transfer station on the target transport path for the target transport object.
[0034] The target transport object includes at least one of the following: gas, liquid, solid, optical signal, and electrical signal. The gas includes natural gas, hydrogen, carbon dioxide, coal gas, etc.; the liquid includes water, crude oil, refined oil, liquefied natural gas, liquid ammonia, methanol, etc.; and the solid includes concrete, minerals, and logistics capsules.
[0035] In this embodiment, a conveying system is provided, comprising: a composite pipeline, a conversion station, and control equipment. It should be noted that the mass-energy network can be a conveying system.
[0036] In a specific example, such as Figure 2As shown, the conveying system can flexibly convey oil, natural gas, hydrogen, ammonia, alcohol, carbon dioxide and the like. Natural gas, hydrogen, ammonia, alcohol and the like can be converted by the conversion station, and oil, carbon dioxide and the like can be converted by the comprehensive utilization station. The conveying system also includes an optical cable, which can be used for data transmission and communication. The conveying system can also be flexibly connected with waterways, railways, highways and other transportation modes to form a comprehensive three-dimensional energy conveying network. The conveying system can also determine the optimal conveying path for conveying the target conveying object according to the conveying information and the target topology of the target conveying object.
[0037] In another specific example, as shown in Figure 3 The conveying system includes a power source, a conversion station, a composite pipeline, a meter and a storage. After the metering of the conveying object, the conveying object enters the pipeline via the conversion station. Under the action of the power source, the conveying object is controlled to be conveyed along the pipeline until the next conversion station. At the next conversion station, the conveying object can exit via the conversion station and reach the storage or the user after passing through the metering station, or can continue to be conveyed to the next conversion station. Other conveying objects can enter the conversion station and can be conveyed in the same direction as the conveying object being conveyed or in the opposite direction. The system has the capability of conveying multiple conveying objects in the same direction and in opposite directions. According to the conveying distance, the power source can be supplemented at different positions in the system until the conveying object is conveyed to the destination. The power source is used to provide power for the system and does not directly contact the conveying object. The power source can be installed at multiple points according to the needs of the system and is composed of a primary power machine, a secondary power machine and supporting devices. The power machine is automatically distributed according to the type and direction of the conveying object.
[0038] Optionally, the conversion station includes at least one of a conversion bin, an encapsulation bin, a shaping bin, an inputter and a propeller. The conversion bin includes at least one of a solid-liquid conversion bin, a gas-liquid conversion bin, a liquid-gas conversion bin and a solid-gas conversion bin. The encapsulation bin includes a logistics capsule encapsulation bin. The shaping bin includes a solid shaping bin. The inputter includes at least one of a solid inputter, a liquid inputter and a gas inputter. The propeller includes a logistics capsule propeller. The composite pipeline includes at least two types of conveying pipes, such as a vacuum pipe, a hose, a steel pipe, an optical cable and an electric cable.
[0039] In this embodiment, the composite pipeline is the conveying body of the conveying system, as shown in Figure 4As shown, the composite pipeline includes: vacuum pipe, hose, steel pipe, optical cable and cable. It is noted that solid capsules enter the vacuum pipe for delivery; minerals, concrete and the like enter the hose for delivery; gas, liquid enters the steel pipe for delivery, optical fiber signals are transported through optical cable, and power is transported through cable; when the delivered power requires low temperature and the like, the low temperature of the liquefied natural gas delivered in the steel pipe can be utilized to achieve the effect of full and efficient use of energy.
[0040] Optionally, the solid-liquid conversion bin is configured to convert the target delivery object in solid form into liquid form, the liquid-gas conversion bin is configured to convert the target delivery object in liquid form into gas form, the gas-liquid conversion bin is configured to convert the target delivery object in gas form into liquid form, the solid-gas conversion bin is configured to convert the target delivery object in solid form into gas form, the solid shaping bin is configured to shape the target delivery object in solid form, the solid inputter is configured to deliver the target delivery object in solid form to the composite pipeline, the liquid inputter is configured to deliver the target delivery object in liquid form to the composite pipeline, the gas inputter is configured to deliver the target delivery object in gas form to the composite pipeline, and the logistics capsule packaging bin is configured to package the target delivery object into logistics capsules and store the logistics capsules, and the logistics capsule propeller is configured to push the logistics capsules into the composite pipeline.
[0041] In the embodiment, the conversion station is a medium conversion center of the delivery system, and the conversion station includes: a solid-liquid conversion bin, a gas-liquid conversion bin, a liquid-gas conversion bin, a solid-gas conversion bin, a logistics capsule packaging bin, a solid shaping bin, a solid inputter, a liquid inputter, a gas inputter, and a logistics capsule propeller. The delivered solid medium can be directly delivered after being shaped by the solid shaping bin, or be converted into liquid by the solid-liquid conversion bin, or be converted into gas by the solid-gas conversion bin, and then be delivered after being inputted into the pipeline by the solid inputter, the liquid inputter or the gas inputter; the delivered liquid medium can be directly delivered after being inputted into the pipeline by the liquid inputter, or be converted into gas by the gas-liquid conversion bin, and then be delivered after being inputted into the pipeline by the gas inputter; the delivered gas can be directly delivered after being inputted into the pipeline by the gas inputter, or be converted into liquid by the gas-liquid conversion bin, and then be delivered after being inputted into the pipeline by the liquid inputter; the delivered logistics is packaged into logistics capsules, placed in the logistics capsule packaging bin, and delivered after being pushed into the pipeline by the logistics capsule propeller; the delivered optical fiber signals are transported through the optical switch and the optical cable, and the delivered power is transported through the transformer and the cable.
[0042] Optionally, the delivery instructions corresponding to each conversion station on the target delivery path of the target delivery object are obtained, including:
[0043] The delivery information and the target topology graph of the target delivery object are obtained.
[0044] The target topology map comprises a pipeline topology map.
[0045] The pipeline topology map comprises a laying position of the composite pipeline, a type of the conveying pipe in the composite pipeline, position information of the conversion station, and a connection relationship between the conversion station and the composite pipeline.
[0046] In the embodiment, the pipeline topology map can further comprise a unit conveying cost and a conveying speed of the composite pipeline. The composite pipeline combines the advantages of the existing conveying pipeline and makes full use of the characteristics of different pipelines, and realizes the same-direction and opposite-direction simultaneous conveying of multiple media through fusion and complementation.
[0047] In the embodiment, the conveying information of the target conveying object comprises a starting position, a destination position, a physical attribute of the target conveying object, a target conveying time, a target conveying cost, an initial form of the target conveying object, and a target form of the target conveying object. The physical attribute of the target conveying object comprises a volume or a weight of the target conveying object.
[0048] According to the conveying information of the target conveying object and the target topology map, a target conveying path and a conveying instruction corresponding to each conversion station on the target conveying path are determined.
[0049] In the embodiment, if the target topology map further comprises at least one of a highway conveying device topology map, a railway conveying device topology map, an aviation conveying device topology map, and a waterway conveying device topology map, the manner of determining the target conveying path according to the conveying information of the target conveying object and the target topology map can be: determining the target conveying path according to the pipeline topology map, the highway conveying device topology map, the railway conveying device topology map, the waterway conveying device topology map, the aviation conveying device topology map, and the conveying information of the target conveying object.
[0050] In a specific example, the manner of determining the target conveying path and the conveying instruction corresponding to each conversion station on the target conveying path according to the conveying information of the target conveying object and the target topology map can be: inputting the conveying information of the target conveying object and the target topology map into a large model to obtain the target conveying path and the conveying instruction corresponding to each conversion station on the target conveying path.
[0051] Optionally, the target topology map further comprises at least one of a highway conveying device topology map, a railway conveying device topology map, and a waterway conveying device topology map.
[0052] According to the conveying information of the target conveying object and the target topology map, a target conveying path is determined, comprising:
[0053] According to the conveying information of the target conveying object and the target topology map, a plurality of initial conveying paths are determined.
[0054] The plurality of initial conveying paths are screened to obtain the target conveying path.
[0055] In this embodiment, the highway conveying device topology includes the number of vehicles, the position of vehicles, the type of conveying objects that can be conveyed by vehicles, the conveying cost per unit time, and the driving speed of vehicles. The railway conveying device topology includes the number of trains available for conveying, the type of conveying objects conveyed by each train, the time table of each train, the starting station, and the stopover stations. The waterway conveying device topology includes the number of ships available for conveying, the type of conveying objects conveyed by each ship, the time table of each ship, the starting port, and the stopover ports.
[0056] In this embodiment, the way of screening the plurality of initial conveying paths to obtain the target conveying path can be: screening the plurality of initial conveying paths based on the time cost and / or transportation cost of each initial conveying path to obtain the target conveying path.
[0057] S120, for the non-last conversion station, when the target conveying object is conveyed to the conversion station, the conveying instruction corresponding to the current conversion station is sent to the conversion station, the conversion station is used for processing the target conveying object, and the processed target conveying object is conveyed to the next conversion station through the composite pipeline.
[0058] In the embodiment, for the non-last conversion station, when the target conveying object is conveyed to the conversion station, the conveying instruction corresponding to the current conversion station is sent to the conversion station, the conversion station is used for processing the target conveying object, and the processed target conveying object is conveyed to the next conversion station through the composite pipeline. If the conveying instruction includes at least one of the target conversion bin, the target shaping bin, the target inputter and the target pusher; for the non-last conversion station, when the target conveying object is conveyed to the conversion station, the conveying instruction corresponding to the current conversion station is sent to the conversion station, the conversion station is used for processing the target conveying object through at least one of the target conversion bin, the target shaping bin, the target inputter and the target pusher; the processed target conveying object and the conversion station type sent by the conversion station are received, and the first conveying pipe type is determined based on the processed target conveying object and the conversion station type sent by the conversion station. The first conveying pipe type is sent to the conversion station, so that the conversion station conveys the processed target conveying object to the next conversion station through the conveying pipe corresponding to the first conveying pipe type, wherein the first conveying pipe type is the conveying pipe type of any one of the conveying pipes in the composite pipeline. If the conveying instruction includes at least one of the target conveying pipe type, the target conversion bin, the target shaping bin, the target inputter and the target pusher, for the non-last conversion station, when the target conveying object is conveyed to the conversion station, the target conveying pipe type corresponding to the current conversion station is sent to the conversion station together with at least one of the target conversion bin, the target shaping bin, the target inputter and the target pusher, the conversion station is used for processing the target conveying object, and the processed target conveying object is conveyed to the next conversion station through the conveying pipe corresponding to the target conveying pipe type in the composite pipeline.
[0059] Optionally, the conveying instruction includes at least one of the target conversion bin, the target shaping bin, the target inputter and the target pusher;
[0060] For the non-last conversion station, when the target conveying object is conveyed to the conversion station, the conveying instruction corresponding to the current conversion station is sent to the conversion station, the conversion station is used for processing the target conveying object, and the processed target conveying object is conveyed to the next conversion station through the composite pipeline, including:
[0061] For the non-last conversion station, when the target conveying object is conveyed to the conversion station, the conveying instruction corresponding to the current conversion station is sent to the conversion station, the conversion station is used for processing the target conveying object through at least one of the target conversion bin, the target shaping bin, the target inputter and the target pusher;
[0062] receive the processed target delivery object and the type of the conversion station sent by the conversion station, and determine a first delivery pipe type based on the processed target delivery object and the type of the conversion station sent by the conversion station, and send the first delivery pipe type to the conversion station, so that the conversion station delivers the processed target delivery object to the next conversion station through a delivery pipe corresponding to the first delivery pipe type.
[0063] The first delivery pipe type is any one of the delivery pipe types of the composite pipe.
[0064] In the embodiment, the delivery instruction includes at least one of a target conversion bin, a target sizing bin, a target inputter and a target pusher, that is, it is indicated in the delivery instruction in advance that the form conversion of the delivery object is performed through which conversion bin in the conversion station, and then the target delivery object is delivered to the composite pipe through which inputter, or it is indicated in the delivery instruction in advance that the target delivery object is directly delivered to the composite pipe through which inputter, or the target delivery object is packaged into a logistics capsule through the logistics capsule packaging bin in advance, and then the logistics capsule is pushed into the composite pipe through the logistics capsule pusher.
[0065] S130, for the last conversion station, when the target delivery object is delivered to the conversion station, the delivery instruction corresponding to the current conversion station is sent to the conversion station, and the conversion station is used to store the target delivery object.
[0066] In a specific example, the delivery system includes a power source, a conversion station, a composite pipe, a meter and a storage, and the number of each unit is determined according to the length of the actual system. After the target delivery object is metered by the meter, it enters the pipe through the conversion station, and under the action of the power source, the target delivery object is delivered along the pipe until the next conversion station. At the next interactive station, the delivery object can exit through the conversion station, and after passing through the metering station, it reaches the storage or the user, or it can continue to be delivered to the next conversion station. At the same time, other delivery objects can enter the conversion station, and can be delivered in the same direction as the delivery object being delivered, or can be delivered in the opposite direction of the delivery object being delivered. The system has the ability of multi-medium same direction delivery and multi-medium opposite direction delivery. According to the delivery distance, the power source can be supplemented at different positions of the system until the target delivery object is delivered to the destination.
[0067] In another specific example, taking the example of liquefied natural gas, optical fiber signal, power fusion delivery, natural gas (at this time the natural gas is in a liquid state) is transported by waterway, after being metered by a meter, enters a conversion station, in the conversion station, part of the liquid natural gas enters a gas-liquid conversion bin and is converted into a gas, and is input into a steel pipe by a gas input device for delivery by a compressor as a power source, after being delivered to the destination, the natural gas is metered by a meter and is delivered to a storage or a user. Another part of the liquid natural gas is directly input into another steel pipe in a liquid state by a liquid input device for delivery by a power pump as a power source. At the same time, the electric energy generated by the offshore wind power is delivered to the conversion station, after being converted by a transformer, enters a cable for delivery. The cable used here is a superconducting cable, which has the characteristics of large current carrying capacity and low loss, but needs a low-temperature environment as a guarantee. At this time, the low-temperature environment of the liquid natural gas plays a role as a low-temperature environment provider for the superconducting cable to ensure the normal operation of the superconducting cable. Further, the optical fiber data transmitted by the submarine optical cable is input into an optical cable in a conforming pipe for optical fiber signal transmission, and then through the modern pipe system, the simultaneous delivery of natural gas, liquefied natural gas, superconducting electric energy and optical fiber signals is realized, and the efficient use of energy and the optimal delivery of resources are realized.
[0068] The delivery system in the embodiment of the present application has a new mode of multi-network fusion, multi-medium combination and comprehensive three-dimensional energy delivery, realizes flexible conversion of various substances, flexible connection of various transportation modes, and optimal transportation of resources.
[0069] The technical scheme of the embodiment acquires the delivery instructions corresponding to each conversion station on the target delivery path of the target delivery object; for a non-last conversion station, when the target delivery object is delivered to the conversion station, the delivery instruction corresponding to the current conversion station is sent to the conversion station, and the conversion station is used for processing the target delivery object and delivering the processed target delivery object to the next conversion station through a composite pipe; for a last conversion station, when the target delivery object is delivered to the conversion station, the delivery instruction corresponding to the current conversion station is sent to the conversion station, and the conversion station is used for storing the target delivery object, which can adapt to the multi-form delivery demand and reduce the delivery cost and difficulty.
[0070] Embodiment two
[0071] Figure 5 A structure diagram of a delivery device for a mass-energy network is provided in the embodiment of the present application. The embodiment can be applicable to the delivery condition, and the device can be realized in a software and / or hardware manner. The device can be integrated in any device providing a delivery function, for example, the delivery device for the mass-energy network is configured in a control device in a delivery system, and the delivery system includes a composite pipe, a conversion station and a control device, as shown in Figure 5As shown, the energy-oriented conveying device specifically comprises an acquisition module 510, a first sending module 520 and a second sending module 530.
[0072] The acquisition module is configured to acquire conveying instructions corresponding to each conversion station on a target conveying path of a target conveying object, wherein the target conveying object comprises at least one of a gas, a liquid, a solid, an optical signal and an electrical signal.
[0073] The first sending module is configured to, for a non-terminal conversion station, send the conveying instruction corresponding to the current conversion station to the conversion station when the target conveying object is conveyed to the conversion station, and the conversion station is configured to process the target conveying object and convey the processed target conveying object to a next conversion station through a composite pipeline.
[0074] The second sending module is configured to, for a terminal conversion station, send the conveying instruction corresponding to the current conversion station to the conversion station when the target conveying object is conveyed to the conversion station, and the conversion station is configured to store the target conveying object.
[0075] The product can execute the method provided by any embodiment of the application, has the function module and beneficial effect corresponding to the execution method.
[0076] Embodiment three
[0077] Figure 6 A structural schematic diagram of an electronic device 10 that can be used to implement embodiments of the application is shown. The electronic device is intended to represent various forms of digital computers, such as laptops, desktops, tablets, personal digital assistants, servers, blade servers, mainframes, and other appropriate computers. The electronic device can also represent various forms of mobile devices, such as personal digital assistants, cellular telephones, smartphones, wearable devices (e.g., headsets, glasses, watches, etc.), and other similar computing devices. The components shown here, their connections and relationships, and their functions, are meant to be examples only, and are not intended to limit the inventiveness in the way in which the application is described and / or is claimed.
[0078] As Figure 6As shown, the electronic device 10 includes at least one processor 11, and a memory, such as a read-only memory (ROM) 12, a random access memory (RAM) 13, etc., communicatively connected to the at least one processor 11, where the memory stores computer programs executable by the at least one processor. The processor 11 can perform various appropriate actions and processes according to the computer programs stored in the read-only memory (ROM) 12 or loaded from the storage unit 18 into the random access memory (RAM) 13. Various programs and data required for the operation of the electronic device 10 can also be stored in the RAM 13. The processor 11, the ROM 12, and the RAM 13 are connected to each other through a bus 14. An input / output (I / O) interface 15 is also connected to the bus 14.
[0079] Various components in the electronic device 10 are connected to the I / O interface 15, including an input unit 16, such as a keyboard, a mouse, etc., an output unit 17, such as various types of displays, a speaker, etc., a storage unit 18, such as a magnetic disk, an optical disk, etc., and a communication unit 19, such as a network card, a modem, a wireless communication transceiver, etc. The communication unit 19 allows the electronic device 10 to exchange information / data with other devices through a computer network, such as the Internet, and / or various telecommunication networks.
[0080] The processor 11 can be various general and / or special-purpose processing components with processing and computing capabilities. Some examples of the processor 11 include, but are not limited to, a central processing unit (CPU), a graphics processing unit (GPU), various special-purpose artificial intelligence (AI) computing chips, various processors running machine learning model algorithms, a digital signal processor (DSP), and any appropriate processor, controller, microcontroller, etc. The processor 11 performs various methods and processes described above, such as the energy grid-oriented delivery method.
[0081] In some embodiments, the energy grid-oriented delivery method can be implemented as a computer program tangibly embodied in a computer readable storage medium, such as the storage unit 18. In some embodiments, part or all of the computer program can be loaded and / or installed onto the electronic device 10 via the ROM 12 and / or the communication unit 19. When the computer program is loaded into the RAM 13 and executed by the processor 11, one or more steps of the energy grid-oriented delivery method described above can be performed. Alternatively, in other embodiments, the processor 11 can be configured to perform the energy grid-oriented delivery method by any other appropriate means, such as by means of firmware.
[0082] The various embodiments of the systems and techniques described above can be implemented in digital electronic circuitry, integrated circuitry, field programmable gate arrays (FPGAs), application specific integrated circuits (ASICs), application specific standard products (ASSPs), system on a chip systems (SOCs), computer hardware, firmware, software, and / or combinations thereof. These various embodiments can include implementation in one or more computer programs that are executable and / or interpretable on a programmable system including at least one programmable processor, which can be special or general purpose, coupled to receive data and instructions from, and to transmit data and instructions to, a storage system, at least one input device, and at least one output device.
[0083] Computer programs used to implement the processes of the application can be written in any combination of one or more programming languages. These computer programs can be provided to a processor of a general purpose computer, special purpose computer, or other programmable data processing apparatus, such that the computer program
[0084] In the context of the present application, a computer-readable storage medium can be a tangible medium that can contain or store computer programs for use by or in connection with an instruction execution system, apparatus, or device. Computer-readable storage media can include, but are not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing. Alternatively, a computer-readable storage medium can be a machine-readable signal medium. More specific examples of the machine-readable storage medium will include one or more lines of electrical connections, portable computer disks, hard disk drives, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or Flash memory), optical fibers, portable compact disc read-only memories (CD-ROMs), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.
[0085] To provide for interaction with a user, the systems and techniques described here can be implemented on an electronic device having a display device (e.g., a CRT (cathode ray tube) or LCD (liquid crystal display) monitor) for displaying information to the user and a keyboard and a pointing device (e.g., a mouse or a trackball) by which the user can provide input to the electronic device. Other kinds of devices can be used to provide for interaction with a user as well; for example, feedback provided to the user can be any form of sensory feedback (e.g., visual feedback, auditory feedback, or tactile feedback); and input from the user can be received in any form, including acoustic, speech, or tactile input.
[0086] The systems and techniques described here can be implemented in a computing system that includes a back end component (e.g., as a data server), or that includes a middleware component (e.g., an application server), or that includes a front end component (e.g., a user computer having a graphical user interface or a Web browser through which a user can interact with an implementation of the systems and techniques described here), or any combination of such back end, middleware, or front end components. The components of the system can be interconnected by any form or medium of digital data communication (e.g., a communication network). Examples of communication networks include a local area network (LAN), a wide area network (WAN), a blockchain network, and the Internet.
[0087] The computing system can include clients and servers. A client and server are generally remote from each other and typically interact through a communication network. The relationship of client and server arises by virtue of computer programs running on the respective computers and having a client-server relationship to each other. A server can be a cloud server, also known as a cloud computing server or cloud host, which is a host product in the cloud computing service system, to solve the defects of large management difficulty and weak business scalability in traditional physical host and VPS service.
[0088] It should be understood that the various forms of flow shown above can be re-ordered, added to, or deleted from without departing from the scope of the present application. For example, the steps recited in the present application can be executed in parallel, in series, or in a different order, without departing from the desired results of the technical solutions of the present application, and the present application is not limited herein.
[0089] The embodiments of the present application further provide a computer program product, comprising a computer program, which, when executed by a processor, implements the energy quality network-oriented transmission method according to any of the embodiments of the present application.
[0090] Computer program products can be written in any one of a number of programming languages or combinations thereof including an object oriented programming language such as Java, Smalltalk, C++ or the like and conventional procedural programming languages such as the "C" programming language or similar programming languages. The program code can execute entirely on the user's computer, partly on the user's computer, as a stand-alone software package, partly on the user's computer and partly on a remote computer or entirely on the remote computer or server. In the latter scenario, the remote computer can be connected to the user's computer through any type of network, including a local area network (LAN) or a wide area network (WAN), or the connection can be made to an external computer (for example, through the Internet using an Internet Service Provider).
[0091] The specific embodiments described above are not intended to limit the scope of the application, which is defined by the appended claims. Those of skill in the art will understand that modifications, combinations, sub-combinations, and alternatives can be made to the specific embodiments without departing from the application. Accordingly, the appended claims and their equivalents are intended to cover all such alternatives, modifications, and equivalents.
Claims
1. A transmission method for mass-energy equivalence networks, characterized in that, The transmission method is executed by control equipment in a transmission system, which includes a composite pipeline, a transfer station, and control equipment. The transmission method for the mass-energy equivalence network includes: Obtain the transport instructions corresponding to each conversion station on the target transport path for the target transport object, wherein the target transport object includes at least one of: gas, liquid, solid, optical signal and electrical signal; For non-last transfer stations, when the target transport object is transported to the transfer station, the transport instruction corresponding to the current transfer station is sent to the transfer station. The transfer station is used to process the target transport object and transport the processed target transport object to the next transfer station through a composite pipeline. For the last-position transfer station, when the target transport object is transported to the transfer station, the transport instruction corresponding to the current transfer station is sent to the transfer station, and the transfer station is used to store the target transport object.
2. The method according to claim 1, characterized in that, The conversion station includes at least one of the following: a conversion chamber, a packaging chamber, a shaping chamber, an input device, and a propulsion device. The conversion chamber includes at least one of the following: a solid-liquid conversion chamber, a gas-liquid conversion chamber, a liquid-gas conversion chamber, and a solid-gas conversion chamber. The packaging chamber includes a logistics capsule packaging chamber. The shaping chamber includes a solid shaping chamber. The input device includes at least one of the following: a solid input device, a liquid input device, and a gas input device. The propulsion device includes a logistics capsule propulsion device. The composite pipeline includes at least two types of delivery pipes selected from vacuum tubes, flexible hoses, steel pipes, optical cables, and electrical cables.
3. The method according to claim 2, characterized in that, The solid-liquid conversion chamber is used to convert a solid target object into a liquid form; the liquid-gas conversion chamber is used to convert a liquid target object into a gas form; the gas-liquid conversion chamber is used to convert a gaseous target object into a liquid form; the solid-gas conversion chamber is used to convert a solid target object into a gas form; the solid shaping chamber is used to solidify the solid target object; the solid input device is used to transport the solid target object to the composite pipeline; the liquid input device is used to transport the liquid target object to the composite pipeline; the gas input device is used to transport the gaseous target object to the composite pipeline; the logistics capsule packaging chamber is used to package the target object into a logistics capsule and store the logistics capsule; and the logistics capsule pusher is used to push the logistics capsule into the composite pipeline.
4. The method according to claim 2, characterized in that, The transport command includes at least one of the following: target conversion chamber, target shaping chamber, target input device, and target thruster; For non-last transfer stations, when the target transport object arrives at the transfer station, the transport command corresponding to the current transfer station is sent to the transfer station. The transfer station is used to process the target transport object and transport the processed target transport object to the next transfer station through a composite pipeline, including: For non-last-position transfer stations, when the target transport object is transported to the transfer station, the transport command corresponding to the current transfer station is sent to the transfer station. The transfer station is used to process the target transport object through at least one of the target transfer chamber, target shaping chamber, target input device and target thruster. The system receives the processed target transport object and the type of the transfer station sent by the transfer station, and determines the first transport pipe type based on the processed target transport object and the type of the transfer station sent by the transfer station. The first transport pipe type is then sent to the transfer station so that the transfer station can transport the processed target transport object to the next transfer station through the transport pipe corresponding to the first transport pipe type. The first transport pipe type is any type of transport pipe in the composite pipeline.
5. The method according to claim 1, characterized in that, Obtain the transport instructions corresponding to each transfer station on the target transport path for the target transport object, including: Obtain the transport information and target topology map of the target transport object, wherein the target topology map includes: pipeline topology map, wherein the pipeline topology map includes: the laying location of the composite pipeline, the transport pipe type of the transport pipe in the composite pipeline, the location information of the transfer station, and the connection relationship between the transfer station and the composite pipeline; Based on the transport information of the target transport object and the target topology map, determine the target transport path and the transport instructions corresponding to each transfer station on the target transport path.
6. The method according to claim 5, characterized in that, The target topology map also includes at least one of the following: a highway transportation equipment topology map, a railway transportation equipment topology map, and a waterway transportation equipment topology map; Based on the transport information of the target transport object and the target topology map, the target transport path is determined, including: Based on the transport information of the target transport object and the target topology map, multiple initial transport paths are determined; Multiple initial transport paths are filtered to obtain the target transport path.
7. A conveying device for a mass-energy equivalence network, characterized in that, The conveying device for the mass-energy equipment network is configured within the control equipment of the conveying system. The conveying system includes: a composite pipeline, a conversion station, and control equipment. The conveying device for the mass-energy equipment network includes: The acquisition module is used to acquire the transport instructions corresponding to each conversion station on the target transport path for the target transport object, wherein the target transport object includes at least one of the following: gas, liquid, solid, optical signal and electrical signal; The first sending module is used for non-last transfer stations. When the target transport object is transported to the transfer station, the corresponding transport instruction of the current transfer station is sent to the transfer station. The transfer station is used to process the target transport object and transport the processed target transport object to the next transfer station through a composite pipeline. The second sending module is used to send the corresponding conveying instruction to the last-position switching station when the target conveying object is conveyed to the switching station. The switching station is used to store the target conveying object.
8. An electronic device, characterized in that, The electronic device includes: At least one processor; and A memory communicatively connected to the at least one processor; wherein, The memory stores a computer program that can be executed by the at least one processor to enable the at least one processor to perform the mass-energy equivalence grid transmission method according to any one of claims 1-6.
9. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer instructions that, when executed by a processor, implement the mass-energy equivalence transmission method according to any one of claims 1-6.
10. A computer program product, characterized in that, The computer program product includes a computer program that, when executed by a processor, implements the mass-energy equivalence network-oriented transmission method according to any one of claims 1-6.