Ruggedized computer powered by wind energy, control method and device

By introducing wind power supply devices and intelligent control methods into reinforced computers, the problems of unsustainable power supply and high energy consumption of reinforced computers are solved, sustainable power supply and multi-scenario adaptation are achieved, and the reliability and stability of the system are improved.

CN120653087APending Publication Date: 2025-09-16SHANDONG CHAOYUE DATA CONTROL ELECTRONICS CO LTD
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Patent Information

Application Number
CN202510674952.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

The existing power supply method for reinforced computers is unsustainable, relying on mains electricity and consuming high amounts of energy, making it difficult to adapt to special environmental requirements such as those in the wild and on ships.

Method used

It uses wind power supply devices, controllers, battery packs and chargers, and dynamically switches power supply modes through intelligent control methods to achieve sustainable power supply and multi-scenario adaptation.

Benefits of technology

It realizes sustainable power supply of reinforced computers, multi-scenario adaptation and intelligent charge and discharge management, improves the reliability and stability of the system, and is suitable for special environments such as field and shipboard.

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Abstract

The invention provides a ruggedized computer powered by wind energy and a control method and device. The ruggedized computer comprises the wind energy power supply device, a controller, a storage battery pack, a charger and a computer body. Wherein the wind energy power supply device is used for converting wind energy into electric energy and outputting direct current; the storage battery pack comprises at least one group of storage batteries and is used for storing electric energy output by the wind energy power supply device; the charger is used for transmitting direct current of the storage battery pack to the computer body; the computer body is used for executing calculation and data processing tasks; the controller is used for acquiring the output voltage of the wind energy power supply device and the electric quantity state of the storage battery pack; and dynamically switching power supply modes according to the output voltage and the electric quantity state. The wind energy power supply device is additionally arranged in a traditional ruggedized computer, an intelligent control method is adopted, the ruggedized computer has the advantages of sustainable power supply, multi-scene adaptation, intelligent charging and discharging management and high reliability, and transformation from terminal equipment to clean energy can be achieved.
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Description

Technical Field

[0001] The present application relates to the field of reinforced computer technology, and in particular to a wind-powered reinforced computer, a control method, and a device. Background Art

[0002] A ruggedized computer is a computer device designed to adapt to various harsh environments. It is also called a harsh environment computer. It has strong environmental adaptability, high reliability and high maintainability.

[0003] Currently, ruggedized computer equipment is primarily powered by mains electricity or DC power supplies. This approach has several drawbacks and deficiencies, primarily in the following areas: First, it is unsustainable, relying heavily on mains electricity and requiring backup power during power outages, which cannot guarantee long-term operation. Second, it consumes a lot of energy, leading to energy waste from the long-term operation of large numbers of devices, which is inconsistent with green environmental trends. Third, it is limited in scope, making traditional power supply methods difficult to adapt to the needs of specialized environments such as the field and shipboard. Summary of the Invention

[0004] The present invention provides a wind-powered reinforced computer, control method and device, which have sustainable power supply, multi-scenario adaptation, intelligent charge and discharge management and high reliability, and can realize the transformation of terminal equipment to clean energy.

[0005] In a first aspect, the present invention provides a wind-powered reinforced computer, the reinforced computer comprising: a wind-powered power supply device, a controller, a battery pack, a charger, and a computer body;

[0006] The wind power supply device is used to convert wind energy into electrical energy and output direct current;

[0007] The battery pack includes at least one group of batteries for storing the electric energy output by the wind power supply device;

[0008] The charger is used to transmit the direct current of the battery pack to the computer body;

[0009] The computer body is used to perform calculation and data processing tasks;

[0010] The controller is used to obtain the output voltage of the wind power supply device and the power status of the battery pack; dynamically switch the power supply mode according to the output voltage and the power status: the power supply mode includes a charging mode, a discharging mode and a protection mode; when the output voltage is higher than a first preset threshold and the power status is lower than a second preset threshold, start the charging mode; when the output voltage is lower than the first preset threshold or the power status is higher than the second preset threshold, switch to the discharging mode; when the output voltage or the power status is abnormal, start the protection mode.

[0011] Preferably, the wind power supply device includes a wind generator and a rectifier;

[0012] The wind turbine is used to convert wind energy into mechanical energy, and then convert mechanical energy into electrical energy;

[0013] The rectifier is used to convert alternating current into direct current.

[0014] Preferably, the charger further includes a control logic module and a filter circuit for stabilizing the voltage and optimizing the waveform of the electric energy input into the computer body.

[0015] Preferably, the computer body includes a variety of different types of computer terminal devices, and the appearance, size and functions of the computer body are modularly configured according to application scenarios.

[0016] Preferably, the reinforced computer is suitable for field operations, mobile command vehicles, shipboard or polar scientific expedition scenarios, and can achieve off-grid continuous power supply through wind energy.

[0017] In a second aspect, the present invention provides a wind-powered reinforced computer control method, which is applied to the reinforced computer as described in the first aspect, and includes:

[0018] Obtain the output voltage of the wind power supply device and the power status of the battery pack;

[0019] Dynamically switch the power supply mode according to the output voltage and the power state: the power supply mode includes a charging mode, a discharging mode and a protection mode;

[0020] When the output voltage is higher than a first preset threshold and the state of charge is lower than a second preset threshold, starting the charging mode;

[0021] When the output voltage is lower than the first preset threshold or the state of charge is higher than the second preset threshold, switching to the discharge mode;

[0022] When the output voltage or the power state is abnormal, the protection mode is activated.

[0023] Preferably, it also includes:

[0024] Acquiring the operating state of the computer body; the operating state includes high-load operation, low-load operation and sleep state;

[0025] When the computer body is in high-load operation, the electric energy generated by the wind power supply device is preferentially supplied directly to the computer body, and the remaining electric energy is stored in the battery pack;

[0026] When the computer body is in a low-load operation or dormant state, the electric energy generated by the wind power supply device is preferentially stored in the battery pack.

[0027] In a third aspect, the present invention provides a wind-powered reinforced computer control device, comprising:

[0028] Output voltage and power status acquisition module, used to obtain the output voltage of the wind power supply device and the power status of the battery pack;

[0029] A power supply mode switching module, configured to dynamically switch the power supply mode according to the output voltage and the power state: the power supply mode includes a charging mode, a discharging mode, and a protection mode;

[0030] a charging mode starting module, configured to start the charging mode when the output voltage is higher than a first preset threshold and the state of charge is lower than a second preset threshold;

[0031] a discharge mode switching module, configured to switch to the discharge mode when the output voltage is lower than the first preset threshold or the state of charge is higher than the second preset threshold;

[0032] The protection mode starting module is used to start the protection mode when the output voltage or the power state is abnormal.

[0033] In a fourth aspect, the present invention provides a readable medium comprising an execution instruction. When a processor of an electronic device executes the execution instruction, the electronic device executes any method described in the second aspect.

[0034] In a fifth aspect, the present invention provides an electronic device comprising a processor and a memory storing execution instructions, wherein when the processor executes the execution instructions stored in the memory, the processor executes any method described in the second aspect.

[0035] The present invention provides a wind-powered reinforced computer, control method, and device. By adding a wind power supply device to a traditional reinforced computer and adopting an intelligent control method, the reinforced computer has sustainable power supply, multi-scenario adaptation, intelligent charging and discharging management, and high reliability, which can realize the transformation of terminal equipment to clean energy.

[0036] The further effects of the above-mentioned non-conventional preferred embodiment will be described below in conjunction with specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0037] In order to more clearly illustrate the embodiments of the present invention or the existing technical solutions, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments recorded in the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0038] Figure 1 A schematic diagram of the structure of a wind-powered reinforced computer provided in one embodiment of the present invention;

[0039] Figure 2 A schematic diagram of a wind-powered reinforcement computer control method provided by one embodiment of the present invention;

[0040] Figure 3 A schematic diagram of another wind-powered reinforcement computer control method provided by an embodiment of the present invention;

[0041] Figure 4 A schematic diagram of a wind-powered reinforced computer control device provided in one embodiment of the present invention;

[0042] Figure 5 A schematic structural diagram of an electronic device provided by an embodiment of the present invention. DETAILED DESCRIPTION

[0043] To make the objectives, technical solutions, and advantages of the present invention more clear, the technical solutions of the present invention will be clearly and completely described below in conjunction with specific embodiments and corresponding drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0044] A ruggedized computer is a type of computer designed specifically for use in a variety of harsh environments. Also known as a harsh environment computer, a ruggedized computer features strong environmental adaptability, high reliability, and high maintainability. Depending on the application environment, ruggedized computers can be categorized into the following types: General military type, suitable for both fixed ground-based air-conditioned and non-air-conditioned computer rooms; primary ruggedized type, suitable for use in vehicle-mounted air-conditioned environments and ship-mounted air-conditioned cabin environments; ruggedized type, suitable for use in non-air-conditioned vehicle-mounted environments, non-air-conditioned ship-mounted cabins, ship-mounted sheltered cabins, submarines, and controlled airborne environments; and fully ruggedized type, suitable for use in the harshest military field environments, including field, vehicle-mounted, ship-mounted, airborne, underwater, and airborne launch environments.

[0045] Currently, ruggedized computer equipment is primarily powered by mains electricity or DC power supplies. This approach has several drawbacks and deficiencies, primarily in the following areas: First, it is unsustainable, relying heavily on mains electricity and requiring backup power during power outages, which cannot guarantee long-term operation. Second, it consumes a lot of energy, leading to energy waste from the long-term operation of large numbers of devices, which is inconsistent with green environmental trends. Third, it is limited in scope, making traditional power supply methods difficult to adapt to the needs of specialized environments such as the field and shipboard.

[0046] In view of this, the present invention provides a wind-powered reinforced computer. Figure 1 FIG. 1 is a specific embodiment of a wind-powered reinforced computer provided by the present invention. In this embodiment, the reinforced computer includes:

[0047] Wind power supply device 10, controller 20, battery pack 30, charger 40 and computer body 50;

[0048] The wind power supply device 10 is used to convert wind energy into electrical energy and output direct current. The wind power supply device 10 may include a wind turbine 11 and a rectifier 12. The wind turbine 11 is used to convert wind energy into mechanical energy and mechanical energy into electrical energy. The rectifier 12 is used to convert alternating current into direct current. The wind turbine may be composed of a head, a rotor, a tail, and blades. The head is used to house the generator, and the blades may be made of carbon fiber. The rotation of the blades drives the rotor to rotate, transferring kinetic energy to the generator to enable the generator to generate electricity. The tail is used to automatically adjust the direction. The rectifier 12 is made of a vacuum tube, an ignition tube, a solid-state silicon semiconductor diode, a mercury arc, etc. It is a device that converts alternating current (AC) into direct current (DC).

[0049] Battery pack 30, comprising at least one set of batteries, stores the electrical energy output by the wind power supply. It converts chemical energy directly into electrical energy. Its operating principle is that during charging, it uses external electrical energy to regenerate internal active substances, storing the electrical energy as chemical energy. When discharged, the chemical energy is converted back into electrical energy for output.

[0050] The charger 40 is used to transmit the DC power from the battery pack 30 to the computer body 50. The charger 40 also includes a control logic module and a filter circuit for stabilizing the voltage and optimizing the waveform of the electrical energy input to the computer body. The control logic module uses the PLC's AND, OR, and NOT commands to replace the series and parallel logical connections of relay contacts to implement logic control, switch control, and sequential control. It can collect analog signals, digital signals, and pulse signals, and perform core functions such as analog input, analog output, distributed control (such as fieldbus), interface, digital input and output (I / O), CPU, and power supply. The filter circuit can minimize the AC component of the pulsating DC voltage while retaining its DC component, thereby reducing the output voltage ripple coefficient and making the waveform smoother.

[0051] The computer body 50 is used to perform computing and data processing tasks. The computer body 50 includes various types of computer terminal devices, and the appearance, size, and functions of the computer body 50 are modularly configured according to the application scenario. For example, the computer body 50 can be used in fixed-ground air-conditioned computer rooms and fixed-ground non-air-conditioned computer rooms; it can be used in air-conditioned vehicle environments and air-conditioned shipboard cabin environments; it can be used in non-air-conditioned vehicle environments, non-air-conditioned shipboard cabin environments, shipboard sheltered cabin environments, submarine and airborne controlled environments; it can be used in various harsh military field environments and can be used in the field, vehicle-mounted, ship-mounted, airborne, underwater, and airborne environments.

[0052] The controller 20 can have a built-in microprocessor, integrating functions such as overcharge protection and over-discharge protection, reverse discharge blocking, overload protection and short circuit protection, battery reverse connection protection, and dynamic voltage regulation of the wind power supply device. It supports RS-485 communication and can remotely monitor the power status and generate fault logs. In this embodiment, the controller 20 is used to obtain the output voltage of the wind power supply device 10 and the power status of the battery pack 30; dynamically switch the power supply mode according to the output voltage and power status: the power supply mode includes charging mode, discharging mode and protection mode; when the output voltage is higher than the first preset threshold and the power status is lower than the second preset threshold, the charging mode is started; when the output voltage is lower than the first preset threshold or the power status is higher than the second preset threshold, it is switched to the discharge mode; when the output voltage or power status is abnormal, the protection mode is started. According to this control method, intelligent management of charging and discharging and safety protection of reinforced computers can be achieved.

[0053] The ruggedized computer in this embodiment utilizes wind energy for zero-carbon power generation. A closed-loop "generation-storage-power supply" system ensures uninterrupted operation in off-grid environments. This system is suitable for a variety of ruggedized computer terminals, including those for military and industrial applications, and utilizes multi-level protection logic to enhance system security. This off-grid, continuous power supply from wind energy is suitable for use in scenarios such as field operations, mobile command vehicles, shipboard deployments, and polar expeditions.

[0054] It should be noted that the specific types, quantities and combinations of the wind power supply device 10, controller 20, battery pack 30, charger 40 and computer body 50 can be adjusted according to the actual needs of the application scenario, and the embodiments of the present application do not limit this.

[0055] It can be seen from the above technical solution that the beneficial effect of this embodiment is: by adding a wind power supply device to a traditional reinforced computer and adopting an intelligent control method, the reinforced computer can have sustainable power supply, multi-scenario adaptation, intelligent charging and discharging management and high reliability, and can realize the transformation of terminal equipment to clean energy.

[0056] The present invention also provides a wind power supply reinforcement computer control method. Figure 2 The figure shows a specific embodiment of a wind power supply reinforcement computer control method provided by the present invention. In this embodiment, the method is applied to Figure 1 The method for reinforcing a computer as shown includes:

[0057] Step 101: Obtain the output voltage of the wind power supply device and the power status of the battery pack;

[0058] To ensure intelligent and secure control of the continuous power supply of reinforced computers, proper charge and discharge management is required. Specifically, a controller monitors the output voltage of the wind power supply device, using a high-precision voltage sensor to collect real-time data from the wind turbine's AC output voltage and rectified DC voltage. The battery pack's state of charge is calculated using a fusion algorithm of the open-circuit voltage method and the Coulomb integral method. The output voltage and state of charge serve as reference indicators for determining the power supply mode.

[0059] Step 102: Dynamically switch the power supply mode according to the output voltage and the power state: the power supply mode includes a charging mode, a discharging mode, and a protection mode;

[0060] When the output voltage of the wind turbine is too high and the battery pack is low on power, it means that the electricity generated by the wind turbine is sufficient to drive the load (computer body), and the excess electricity can also replenish the battery pack. When the output voltage of the wind turbine is too low or the battery pack is high enough, it means that the electricity generated by the wind turbine is too low to drive the load (computer body). At this time, the electricity stored in the battery pack is needed to output the work to maintain the stable operation of the computer body. If an abnormal output voltage or power state is detected, it means that there may be overcharge, over-discharge, reverse current or short circuit faults in the system, and the protection mechanism needs to be triggered immediately and the corresponding circuit needs to be cut off. Therefore, according to the above three scenarios, the power supply mode of the reinforced computer needs to be dynamically switched, which can be specifically divided into charging mode, discharging mode and protection mode.

[0061] Step 103: When the output voltage is higher than the first preset threshold and the state of charge is lower than the second preset threshold, start the charging mode;

[0062] Specifically, a first preset threshold value for the output voltage and a second preset threshold value for the state of charge can be set based on experience. The first preset threshold value is a standard for judging the level of the output voltage. The second preset threshold value is a standard for judging the level of the power. When the output voltage of the wind turbine is higher than the first preset threshold value and the state of charge is lower than the second preset threshold value, it means that the electricity generated by the wind turbine is sufficient to drive the load (the computer body), and the excess electricity can also be used to replenish the battery pack. At this time, the charging mode is activated to replenish the battery pack to ensure that the battery pack stores sufficient backup power.

[0063] For example, the controller can be set to collect the real-time output voltage of the wind turbine as Vwind and the state of charge of the battery pack as SOC, the first preset threshold is 24V, and the second preset threshold is 80%. The mode decision in this step can be: if Vwind>24V and SOC<80%, start the charging mode.

[0064] Step 104: When the output voltage is lower than the first preset threshold or the state of charge is higher than the second preset threshold, switching to the discharge mode;

[0065] When the output voltage of the wind turbine generator is lower than the first preset threshold or the power state of the battery pack is higher than the second preset threshold, it means that the power generated by the wind turbine generator is too low or interrupted and cannot drive the load (computer body), or the power of the battery pack is sufficient. At this time, the power stored in the battery pack needs to be output to maintain the stable operation of the computer body. At this time, it switches to the discharge mode, that is, the battery pack discharges and outputs.

[0066] Combined with the example in the previous step, the mode decision in this step can be: when Vwind is less than 24V or SOC is greater than 80%, switch to the discharge mode.

[0067] Step 105: When the output voltage or power status is abnormal, start the protection mode.

[0068] During the charging and discharging process, if an abnormal output voltage or power status is detected, it means that there may be faults such as overcharging, over-discharging, reverse current or short circuit in the entire system. It is necessary to immediately trigger the protection mechanism and cut off the corresponding circuit, that is, start the protection mode. After the protection mechanism is triggered, a fault log is generated and an alarm information is sent to the user terminal through the communication module to prevent the loss of the reinforced computer from expanding.

[0069] It can be seen from the above technical solution that the beneficial effect of this embodiment is: by dynamically switching the power supply mode according to the output voltage and power status, the reinforced computer can have the function of sustainable power supply, thereby improving the reliability and stability of use. When facing a fault, it can cut off the power in time for protection, and can operate safely and effectively for a long time.

[0070] Figure 2 What is shown is only a basic embodiment of the method of the present invention. By performing certain optimization and expansion on this basis, other preferred embodiments of the method can be obtained.

[0071] like Figure 3 FIG. 1 is another specific embodiment of a wind-powered reinforcement computer control method of the present invention. This embodiment further describes the above embodiment. In this embodiment, the method includes the following steps:

[0072] Step 201: Acquire the operating state of the computer; the operating state includes high-load operation, low-load operation, and sleep state;

[0073] The operating status of the computer can determine the power demand of the load, thereby determining the priority of power supply. When the load is high, the direct supply terminal is prioritized, and when the load is low, the energy storage is prioritized. The operating status in this embodiment can be determined by the CPU utilization of the computer. For example:

[0074] High-load operation: CPU utilization ≥ 80% of the rated value;

[0075] Low-load operation: CPU utilization ≤ 50% of the rated value;

[0076] Sleep state: external trigger or continuous inactivity timeout (30 minutes by default).

[0077] Step 202: When the computer is running at high load, the power generated by the wind power supply device is preferentially supplied directly to the computer, and the remaining power is stored in the battery pack;

[0078] When the computer is operating at high load, the power generated by the wind power supply is directly transmitted to the computer, and only the remaining power is stored in the battery to ensure stable input voltage to the computer. In some cases, if the wind power is insufficient, the battery pack can be activated to provide supplemental power (hybrid power supply mode).

[0079] Step 203: When the computer body is in a low-load operation or sleep state, the electric energy generated by the wind power supply device is preferentially stored in the battery pack.

[0080] When the computer enters a low-load or sleep state, its power demand drops significantly, allowing the battery pack to be charged first. Over 90% of the power can be stored in the battery pack. In some cases, if the battery pack is full, a power diversion device can be activated to transfer excess energy to external loads (such as heaters and lighting). In sleep mode, the computer can be woken up at regular intervals for local status checks to prevent battery degradation caused by long-term inactivity.

[0081] Through the above technical solution, it can be seen that the beneficial effect of this embodiment is: according to the operating status of the computer body, the priority of the battery pack and the computer body input power is determined, and energy can be reasonably supplied according to demand, ensuring efficient use of energy.

[0082] like Figure 4 The figure shows a specific embodiment of a wind-powered reinforced computer control device of the present invention. Figures 2-3 The physical device of the method. Its technical solution is essentially consistent with the above embodiment, and the corresponding description in the above embodiment is also applicable to this embodiment. The device in this embodiment includes:

[0083] The output voltage and power state acquisition module 301 is configured to obtain the output voltage of the wind power supply device and the power state of the battery pack;

[0084] The power supply mode switching module 302 is configured to dynamically switch the power supply mode according to the output voltage and the power state: the power supply mode includes a charging mode, a discharging mode and a protection mode;

[0085] The charging mode starting module 303 is configured to start the charging mode when the output voltage is higher than a first preset threshold and the state of charge is lower than a second preset threshold;

[0086] The discharge mode switching module 304 is configured to switch to the discharge mode when the output voltage is lower than a first preset threshold or the state of charge is higher than a second preset threshold;

[0087] The protection mode starting module 305 is configured to start the protection mode when the output voltage or power status is abnormal.

[0088] Figure 5 : This is a schematic diagram of the structure of an electronic device provided by an embodiment of the present invention. At the hardware level, the electronic device includes a processor, and optionally also includes an internal bus, a network interface, and a memory. Among them, the memory may include internal memory, such as high-speed random access memory (RAM), and may also include non-volatile memory (non-volatile memory), such as at least one disk storage. Of course, the electronic device may also include hardware required for other services.

[0089] The processor, network interface, and memory can be interconnected through an internal bus, which can be an ISA (Industry Standard Architecture) bus, a PCI (Peripheral Component Interconnect) bus, or an EISA (Extended Industry Standard Architecture) bus. Buses can be divided into address buses, data buses, control buses, etc. For ease of representation, Figure 5 Only one bidirectional arrow is used in the diagram, but this does not mean that there is only one bus or one type of bus.

[0090] Memory is used to store execution instructions. Specifically, execution instructions are computer programs that can be executed. Memory can include internal memory and non-volatile memory, and provides execution instructions and data to the processor.

[0091] In one possible implementation, a processor reads corresponding execution instructions from a non-volatile memory into a memory and then executes them. Alternatively, the processor may obtain corresponding execution instructions from other devices to logically form a computer control device for strengthening wind power supply. The processor executes the execution instructions stored in the memory to implement a computer control method for strengthening wind power supply provided in any embodiment of the present invention.

[0092] The present invention Figure 4 The method performed by a wind-powered reinforced computer control device provided in the illustrated embodiment can be applied to a processor or implemented by a processor. The processor may be an integrated circuit chip with signal processing capabilities. During implementation, each step of the above method can be completed by an integrated logic circuit of hardware in the processor or instructions in the form of software. The above processor can be a general-purpose processor, including a central processing unit (CPU), a network processor (NP), etc.; it can also be a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components. The various methods, steps and logic block diagrams disclosed in the embodiments of the present invention can be implemented or executed. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc.

[0093] The steps of the method disclosed in conjunction with the embodiments of the present invention can be directly implemented and executed by a hardware decoding processor, or by a combination of hardware and software modules within the decoding processor. The software modules can be located in a storage medium well-known in the art, such as random access memory, flash memory, read-only memory, programmable read-only memory, electrically erasable programmable memory, registers, etc. The storage medium is located in the memory, and the processor reads the information in the memory and, in conjunction with its hardware, completes the steps of the method described above.

[0094] The embodiment of the present invention further provides a readable medium, which stores an execution instruction. When the stored execution instruction is executed by the processor of the electronic device, the electronic device can execute a wind power supply reinforcement computer control method provided in any embodiment of the present invention, and is specifically used to execute the following Figure 2 、 Figure 3 The method shown.

[0095] The electronic device in each of the aforementioned embodiments may be a computer.

[0096] Those skilled in the art will appreciate that the embodiments of the present invention may be provided as methods or computer program products. Therefore, the present invention may take the form of a complete hardware embodiment, a complete software embodiment, or a combination of software and hardware.

[0097] The various embodiments of the present invention are described in a progressive manner. Similar portions between the various embodiments can be referred to in conjunction with each other. Each embodiment focuses on the differences between the other embodiments. In particular, the device embodiments are described briefly because they are generally similar to the method embodiments. For relevant portions, refer to the description of the method embodiments.

[0098] It should also be noted that the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, commodity, or apparatus that includes a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, commodity, or apparatus. In the absence of further limitations, an element defined by the phrase "comprises a ..." does not preclude the presence of other identical elements in the process, method, commodity, or apparatus that includes the element.

[0099] The above are merely embodiments of the present invention and are not intended to limit the present invention. It will be apparent to those skilled in the art that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention are intended to be included within the scope of the claims of the present invention.

Claims

1. A wind-powered reinforced computer, characterized in that: The reinforced computer includes: a wind power supply device, a controller, a battery pack, a charger and a computer body; The wind power supply device is used to convert wind energy into electrical energy and output direct current; The battery pack includes at least one group of batteries for storing the electric energy output by the wind power supply device; The charger is used to transmit the direct current of the battery pack to the computer body; The computer body is used to perform calculation and data processing tasks; The controller is used to obtain the output voltage of the wind power supply device and the power status of the battery pack; dynamically switch the power supply mode according to the output voltage and the power status: the power supply mode includes a charging mode, a discharging mode and a protection mode; when the output voltage is higher than a first preset threshold and the power status is lower than a second preset threshold, start the charging mode; when the output voltage is lower than the first preset threshold or the power status is higher than the second preset threshold, switch to the discharging mode; when the output voltage or the power status is abnormal, start the protection mode.

2. The reinforced computer according to claim 1, wherein: The wind energy power supply device includes a wind generator and a rectifier; The wind turbine is used to convert wind energy into mechanical energy, and then convert mechanical energy into electrical energy; The rectifier is used to convert alternating current into direct current.

3. The reinforced computer according to claim 1, wherein: The charger further comprises a control logic module and a filter circuit for stabilizing the voltage and optimizing the waveform of the electric energy input into the computer body.

4. The reinforced computer according to claim 1, wherein: The computer body includes a variety of different types of computer terminal devices, and the appearance, size and function of the computer body are modularly configured according to the application scenario.

5. The reinforced computer according to any one of claims 1 to 4, characterized in that: The reinforced computer is suitable for field operations, mobile command vehicles, shipboard or polar scientific expedition scenarios, and can achieve off-grid continuous power supply through wind energy.

6. A wind power supply reinforcement computer control method, characterized in that: The method is applied to the reinforced computer according to claim 1, and the method comprises: Obtain the output voltage of the wind power supply device and the power status of the battery pack; Dynamically switch the power supply mode according to the output voltage and the power state: the power supply mode includes a charging mode, a discharging mode and a protection mode; When the output voltage is higher than a first preset threshold and the state of charge is lower than a second preset threshold, starting the charging mode; When the output voltage is lower than the first preset threshold or the state of charge is higher than the second preset threshold, switching to the discharge mode; When the output voltage or the power state is abnormal, the protection mode is activated.

7. The method according to claim 6, characterized in that Also includes: Acquiring the operating state of the computer body; the operating state includes high-load operation, low-load operation and sleep state; When the computer body is in high-load operation, the electric energy generated by the wind power supply device is preferentially supplied directly to the computer body, and the remaining electric energy is stored in the battery pack; When the computer body is in a low-load operation or dormant state, the electric energy generated by the wind power supply device is preferentially stored in the battery pack.

8. A wind-powered reinforced computer control device, characterized in that: include: Output voltage and power status acquisition module, used to obtain the output voltage of the wind power supply device and the power status of the battery pack; A power supply mode switching module, configured to dynamically switch the power supply mode according to the output voltage and the power state: the power supply mode includes a charging mode, a discharging mode, and a protection mode; a charging mode starting module, configured to start the charging mode when the output voltage is higher than a first preset threshold and the state of charge is lower than a second preset threshold; a discharge mode switching module, configured to switch to the discharge mode when the output voltage is lower than the first preset threshold or the state of charge is higher than the second preset threshold; The protection mode starting module is used to start the protection mode when the output voltage or the power state is abnormal.

9. A computer-readable storage medium, characterized in that: The computer-readable storage medium includes a stored program, wherein the program executes the method according to any one of claims 6 to 7 when executed.

10. An electronic device, characterized in that: The electronic device comprises: processor; a memory for storing instructions executable by the processor; The processor is configured to read the executable instructions from the memory and execute the instructions to implement the method according to any one of claims 6 to 7.