Air film environment control method and system, electronic device and storage medium

By obtaining air film environment detection data, determining equipment adjustment parameters, selecting target industrial frequency fans and variable frequency fans, and accurately controlling the internal and external pressure difference of the air film, the problem of inaccurate air film environment control is solved, achieving precise control and energy saving.

CN115900013BActive Publication Date: 2025-10-21NAT ENERGY GRP SHANXI ELECTRIC POWER CO LTD +2
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Patent Information

Application Number
CN202211157251.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-21
Publication Date
2025-10-21
Estimated Expiration
2042-09-21

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Abstract

The present disclosure relates to a gas film environment control method, system, electronic device and storage medium, the gas film environment control method comprising: obtaining environment detection data of a gas film, the environment detection data at least comprising an internal and external pressure difference of the gas film, and determining device adjustment parameters according to the environment detection data and target control parameters, determining target devices according to the device adjustment parameters, the target devices at least comprising target power frequency fans and target variable frequency fans, and finally controlling the target devices according to the target control parameters, the target devices being used to adjust the internal and external pressure difference of the gas film to a target pressure difference. According to the environment detection data and the target control parameters, the device adjustment parameters for quantitatively adjusting the environment of the gas film can be determined, and the target devices can be accurately determined through the device adjustment parameters, so that the internal and external pressure difference of the gas film can be accurately controlled to the target pressure difference through the combination of the target power frequency fans and the target variable frequency fans, precise adjustment is realized, and energy consumption is reduced.
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Description

Technical Field

[0001] The present disclosure relates to the field of computer control technology, and in particular, to an air film environment control method, system, electronic device, and storage medium. Background Art

[0002] Air dome structures are a new type of building structure supported by a pressure differential between inside and outside the building. They offer large spans and flexibility, making them suitable for large-scale buildings such as airports, terminal halls, industrial plants, and warehouses. The fully enclosed design of air domes prevents the release of pollutants such as dust from within the dome into the atmosphere, making them suitable for use in powdery environments such as coal yards and landfills.

[0003] In the related art, during the control process of the air film environment, the parameter control is not precise enough and a good control effect cannot be achieved. Summary of the Invention

[0004] The purpose of the present disclosure is to provide an air film environment control method, system, electronic device and storage medium, which determines the equipment adjustment parameters based on environmental detection data and target control parameters, and then determines the target equipment based on the equipment adjustment parameters, wherein the target equipment at least includes a target industrial frequency fan and a target variable frequency fan, so that the purpose of precise control can be achieved through the combination of the target industrial frequency fan and the target variable frequency fan.

[0005] In order to achieve the above objectives, the present disclosure provides, in a first aspect, a method for controlling an air film environment, comprising:

[0006] Acquiring environmental detection data of the air film, wherein the environmental detection data at least includes the internal and external pressure difference of the air film;

[0007] Determining equipment adjustment parameters based on the environmental detection data and target control parameters, wherein the target control parameters include at least a target pressure difference;

[0008] Determining target equipment according to the equipment adjustment parameters, wherein the target equipment at least includes a target industrial frequency fan and a target variable frequency fan;

[0009] The target device is controlled according to the target control parameter, and the target device is at least used to adjust the internal and external pressure difference of the air film to the target pressure difference.

[0010] Optionally, the environmental detection data further includes calibration data, and the equipment adjustment parameters at least include pressure adjustment parameters;

[0011] Determining the equipment adjustment parameters according to the environmental detection data and the target control parameters at least includes:

[0012] Correcting the target pressure difference in the target control parameter according to the correction data to obtain a corrected target pressure difference;

[0013] Obtaining a pressure adjustment parameter in the device adjustment parameter according to the internal and external pressure difference of the air film in the environmental detection data and the corrected target pressure difference;

[0014] The step of controlling the target device according to the target pressure difference, wherein the target device is at least used to adjust the internal and external pressure difference of the air film to the target pressure difference, includes:

[0015] The target device is controlled according to the corrected target pressure difference, and the target device is at least used to adjust the internal and external pressure difference of the air film to the corrected target pressure difference.

[0016] Optionally, the correction data includes at least wind speed and snow thickness;

[0017] Correcting the target pressure difference in the target control parameter according to the correction data to obtain the corrected target pressure difference at least includes:

[0018] determining a first adjustment coefficient according to the wind speed;

[0019] adjusting the target pressure difference according to the first adjustment coefficient to obtain a first adjusted pressure difference;

[0020] determining a second adjustment coefficient according to the snow thickness;

[0021] adjusting the target pressure difference according to the second adjustment coefficient to obtain a second adjusted pressure difference;

[0022] A larger value of the first adjusted pressure difference and the second adjusted pressure difference is determined as the corrected target pressure difference.

[0023] Optionally, adjusting parameters of the device to determine a target device at least includes:

[0024] determining the total number of fans according to the pressure adjustment parameter;

[0025] Determining a first number of power-frequency fans and a second number of variable-frequency fans according to the total number of fans and a preset ratio;

[0026] Determining a first number of target power-frequency fans from a plurality of power-frequency fans;

[0027] A second number of target variable-frequency fans is determined from the plurality of variable-frequency fans.

[0028] Optionally, the method further includes:

[0029] Determining the continuous operating time of each of the target industrial frequency fans and the target variable frequency fans;

[0030] When there is a fan among the target power-frequency fan and the target variable-frequency fan whose continuous working time is greater than a preset working time threshold, determining a corresponding replacement fan from the standby power-frequency fan and the standby variable-frequency fan;

[0031] The replacement fan is controlled to replace the fan whose continuous working time is greater than a preset working time threshold among the target industrial frequency fan and the target variable frequency fan.

[0032] Optionally, the environmental detection data further includes air film internal detection data, the target control parameters further include internal environmental control parameters, the equipment adjustment parameters include internal environmental adjustment parameters, and the target equipment further includes target dust reduction equipment and / or target ventilation equipment;

[0033] The determining of equipment adjustment parameters according to the environmental detection data and the target control parameters includes:

[0034] Determining the internal environment adjustment parameter according to the air film internal detection data and the internal environment control parameter;

[0035] The step of adjusting parameters of the device and determining the target device includes:

[0036] The target dust reduction equipment and / or target ventilation equipment is determined according to the internal environment adjustment parameters.

[0037] Optionally, the method further includes:

[0038] Obtain fire detection data;

[0039] When the fire detection data is greater than a preset fire data threshold, determining a target fire-fighting equipment;

[0040] Control the target fire-fighting equipment to operate.

[0041] A second aspect of the present disclosure provides an air film environment control system, comprising a controller, an environment detection device, and an environment control device;

[0042] The environmental detection device is configured to detect environmental detection data of the air film;

[0043] The environmental control device is configured to provide a target device;

[0044] The controller is connected to the environment detection device and the environment control device respectively, and the controller is configured to implement the steps of the air film environment control method according to any one of the first aspects of the present disclosure.

[0045] A third aspect of the present disclosure provides a non-transitory computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps of the air film environment control method described in any one of the first aspects of the present disclosure.

[0046] A fourth aspect of the present disclosure provides an electronic device, including:

[0047] a memory having a computer program stored thereon;

[0048] A processor is used to execute the computer program in the memory to implement the steps of the air film environment control method according to any one of the first aspects of the present disclosure.

[0049] Through the above technical solution, environmental detection data of the air film is obtained, and the environmental detection data includes at least the internal and external pressure difference of the air film. Based on the environmental detection data and the target control parameters, the equipment adjustment parameters are determined, and the target control parameters include at least the target pressure difference. Then, based on the equipment adjustment parameters, the target equipment is determined, and the target equipment includes at least a target power frequency fan and a target variable frequency fan. Finally, based on the target control parameters, the target equipment is controlled, and the target equipment is used to adjust the internal and external pressure difference of the air film to the target pressure difference. Based on the environmental detection data and the target control parameters, the equipment adjustment parameters for quantitatively adjusting the environment of the air film can be determined, and the target equipment can be accurately determined through the equipment adjustment parameters. Therefore, through the combination of the target power frequency fan and the target variable frequency fan, the internal and external pressure difference of the air film can be precisely controlled to the target pressure difference, thereby achieving precise regulation to reduce energy consumption.

[0050] Other features and advantages of the present disclosure will be described in detail in the following detailed description. BRIEF DESCRIPTION OF THE DRAWINGS

[0051] The accompanying drawings are used to provide a further understanding of the present disclosure and constitute a part of the specification. Together with the following detailed description, they are used to explain the present disclosure but do not constitute a limitation of the present disclosure. In the accompanying drawings:

[0052] Figure 1 The figure is a schematic diagram showing an air film environment control system according to an exemplary embodiment.

[0053] Figure 2 The figure is a flow chart showing a method for controlling an air film environment according to an exemplary embodiment.

[0054] Figure 3 The figure is a flow chart showing a method for determining a target pressure difference according to an exemplary embodiment.

[0055] Figure 4 The figure is a flowchart showing a method for determining a target device according to an exemplary embodiment.

[0056] Figure 5 It is a block diagram of an electronic device according to an exemplary embodiment. DETAILED DESCRIPTION

[0057] The following describes the specific embodiments of the present disclosure in detail with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only used to illustrate and explain the present disclosure and are not intended to limit the present disclosure.

[0058] In related technologies, the air membrane environment inside the air membrane building is controlled by obtaining various detection parameters inside and outside the air membrane. However, in the process of controlling the air membrane environment, the parameter control is not precise enough. For example, when controlling the pressure inside the air membrane, it is impossible to accurately control the pressure inside the air membrane at the target pressure, thereby failing to achieve a better control effect.

[0059] In response to the above problems, the embodiments of the present disclosure provide an air film environment control method, system, electronic device and storage medium, which determine the equipment adjustment parameters based on the environmental detection data and the target control parameters, and then determine the target equipment based on the equipment adjustment parameters, wherein the target equipment includes at least a target industrial frequency fan and a target variable frequency fan, so that the purpose of precise control can be achieved through the combination of the target industrial frequency fan and the target variable frequency fan.

[0060] Before introducing the air film environment control method of the present invention, the air film environment control system of the present invention is first introduced. Figure 1 is a schematic diagram of an air film environment control system according to an exemplary embodiment. Figure 1 As shown, it includes a controller 200, an environmental detection device 100 and an environmental control device 300, wherein the environmental detection device 100 is configured to detect the environmental detection data of the air membrane, the environmental control device 300 is configured to provide a target device, and the controller 200 is used to determine the target device from the environmental control device according to the environmental detection data, so as to realize the air membrane environment control inside the air membrane building by controlling the target device.

[0061] In a feasible embodiment, the environmental detection data of the air membrane may include the internal and external pressure difference of the air membrane, calibration data, and internal detection data of the air membrane, wherein the calibration data may include wind speed and snow thickness, and the internal detection data of the air membrane may include gas concentration, temperature and humidity, carbon monoxide concentration, and dust concentration. The environmental detection device 100 may include multiple anemometers 101, multiple snow thickness meters 102, multiple internal and external differential pressure sensors 103, a gas sensor 104, a temperature and humidity sensor 105, a carbon monoxide sensor 106, a dust detector 107, and a fire detection sensor 108. The anemometer 101 is used to detect wind speed, the snow thickness meter 102 is used to detect snow thickness, the gas sensor 104 is used to detect gas concentration, the internal and external differential pressure sensor 103 is used to detect the internal and external pressure difference of the air membrane, the temperature and humidity sensor 105 is used to detect the temperature and humidity inside the air membrane, the carbon monoxide sensor 106 is used to detect the carbon monoxide concentration inside the air membrane, the dust detector 107 is used to detect the dust concentration inside the air membrane, and the fire detection sensor 108 is used to detect fire detection data.

[0062] Environmental control equipment 300 may include fans, including a mains frequency fan 301 and a variable frequency fan 302, to adjust the internal and external pressure differential of the air film. Environmental control equipment 300 may also include a dust suppression unit 303 and a ventilation unit 304, which are used to provide targeted dust suppression and ventilation equipment to adjust the gas concentration, temperature and humidity, carbon monoxide concentration, and dust concentration within the air film. Dust suppression unit 303 may include a fog cannon and a high-pressure fine mist device, and ventilation unit 304 may include a ventilation tower, an external exhaust valve, and an external dust collector. The induced draft fan motor in the external exhaust tower is a variable frequency motor, and the exhaust valve opening is adjustable to achieve precise regulation.

[0063] The environment control device 300 may further include a fire fighting unit 305, which is used to cool down and / or extinguish a fire when the fire detection data is greater than a preset fire data threshold. The fire fighting unit 305 may include a fire monitor and a sprinkler.

[0064] Figure 2 FIG. 1 is a flow chart showing a method for controlling an air film environment according to an exemplary embodiment. Figure 2 As shown, the method can be applied to a controller, and the method includes:

[0065] In step S201 , environmental detection data of the air film is acquired, where the environmental detection data at least includes the internal and external pressure difference of the air film.

[0066] In this embodiment, the environmental detection equipment can detect the environmental detection data of the air film, and the environmental detection data may include the environmental detection data inside the air film and the environmental detection data outside the air film. The controller can obtain the environmental detection data from the environmental detection equipment, wherein the environmental detection data at least includes the internal and external pressure difference of the air film, and the internal and external pressure difference of the air film may be the difference between the internal pressure of the air film and the external pressure of the air film.

[0067] In step S202, the equipment adjustment parameters are determined according to the environmental detection data and the target control parameters, where the target control parameters at least include the target pressure difference.

[0068] In this embodiment, the equipment adjustment parameters can be determined based on the environmental detection data and the target control parameters corresponding to the environmental detection data. The target control parameters may at least include the target pressure difference. The equipment adjustment parameters may include pressure adjustment parameters, thereby determining the pressure adjustment parameters based on the internal and external pressure difference of the air film and the target pressure difference.

[0069] In step S203, target equipment is determined according to the equipment adjustment parameters, and the target equipment at least includes a target industrial frequency fan and a target variable frequency fan.

[0070] In this embodiment, the target device can be determined based on the device adjustment parameters. For example, the target industrial frequency fan and the target variable frequency fan can be determined based on the pressure adjustment parameters in the device adjustment parameters. The wind force of the target industrial frequency fan is not adjustable, while the wind force of the target variable frequency fan is adjustable.

[0071] In step S204, the target device is controlled according to the target control parameter, where the target device is at least used to adjust the internal and external pressure difference of the air film to the target pressure difference.

[0072] In this embodiment, the target device can be determined based on the target control parameters, wherein the target device is provided by the environmental control device. For example, the target industrial frequency fan and the target variable frequency fan can be controlled based on the target pressure difference. Since the wind force of the target variable frequency fan is adjustable, the internal and external pressure difference of the air film can be accurately adjusted to the target pressure difference, thereby obtaining a better control effect.

[0073] In one possible implementation, the environmental detection data further includes calibration data, and the equipment adjustment parameters include at least a pressure adjustment parameter;

[0074] Determine equipment adjustment parameters based on environmental detection data and target control parameters, including at least:

[0075] Correcting the target pressure difference in the target control parameter according to the correction data to obtain a corrected target pressure difference;

[0076] The pressure adjustment parameter in the equipment adjustment parameter is obtained according to the internal and external pressure difference of the air film in the environmental detection data and the corrected target pressure difference.

[0077] In this embodiment, the target pressure differential is a pre-set minimum pressure differential to ensure the safety of the air-supported structure. This minimizes the pressure inside the air-supported structure, reduces fan usage, and conserves energy. The calibration data is used to calibrate the target pressure differential to obtain a more accurate calibrated target pressure differential. This calibrated target pressure differential, combined with the internal and external pressure differential of the air-supported structure as measured by the environmental monitoring data, yields a more accurate pressure adjustment parameter, minimizing the impact of environmental changes on the safety of the air-supported structure.

[0078] In one possible embodiment, according to the target pressure difference, controlling the target device, where the target device is at least used to adjust the internal and external pressure difference of the air film to the target pressure difference, includes:

[0079] The target device is controlled according to the corrected target pressure difference, and the target device is at least used to adjust the internal and external pressure difference of the air film to the corrected target pressure difference.

[0080] In this embodiment, the target device is controlled based on the corrected target pressure difference, where the target pressure difference can be a value greater than zero or less than or equal to zero. When the target pressure difference is greater than zero, the target device is controlled to increase the internal and external pressure difference of the air membrane to the corrected target pressure difference. When the target pressure difference is less than zero, the target device is controlled to decrease the internal and external pressure difference of the air membrane to the corrected target pressure difference. When the target pressure difference is equal to zero, the target device is empty and the internal and external pressure difference of the air membrane is not adjusted.

[0081] Through the above method, the pressure inside the air membrane can be kept at a smaller value as much as possible to save energy, and the target pressure difference can be adjusted according to the environmental parameters outside the air membrane, so as to obtain a more accurate corrected target pressure difference to avoid danger caused by too low pressure inside the air membrane building.

[0082] Figure 3 FIG. 1 is a flow chart showing a method for determining a target pressure difference according to an exemplary embodiment. Figure 3 As shown, in a possible implementation, the correction parameters may include wind speed and snow thickness. According to the correction data, the target pressure difference in the target control parameter is corrected to obtain the corrected target pressure difference, which includes at least the following steps:

[0083] In step S301, a first adjustment coefficient is determined according to the wind speed.

[0084] In step S302 , the target pressure difference is adjusted according to the first adjustment coefficient to obtain a first adjusted pressure difference.

[0085] In step S303, a second adjustment coefficient is determined according to the snow thickness.

[0086] In step S304, the target pressure difference is adjusted according to the second adjustment coefficient to obtain a second adjusted pressure difference.

[0087] In step S305 , the larger value of the first adjusted pressure difference and the second adjusted pressure difference is determined as the corrected target pressure difference.

[0088] In this embodiment, a first coefficient lookup table and a second coefficient lookup table are pre-set. Different wind speeds can correspond to different adjustment coefficients. The first adjustment coefficient can be obtained by querying the first coefficient lookup table based on the current wind speed. Different snow thicknesses can also correspond to different adjustment coefficients. The second adjustment coefficient can be obtained by querying the second coefficient lookup table based on the current snow thickness. Wind speed and snow thickness can also be segmented, with each wind speed segment corresponding to an adjustment coefficient and each snow thickness segment corresponding to an adjustment coefficient, thereby reducing the amount of data required to set the adjustment coefficients. For example, the first adjustment coefficient can be 1.1. The target pressure differential can be adjusted based on the first and second adjustment parameters, respectively, to obtain the first and second adjusted pressure differentials. For example, the product of the target pressure differential and the first adjustment parameter can be determined as the first adjusted pressure differential, while the product of the target pressure differential and the second adjustment parameter can be determined as the second adjusted pressure differential. The larger of the first and second adjusted pressure differentials is then determined as the corrected target pressure differential to ensure the safety of the air dome structure. The internal pressure of the structure can be automatically adjusted based on changes in the external wind and snow conditions.

[0089] Figure 4 FIG. 1 is a flow chart showing a method for determining a target device according to an exemplary embodiment. Figure 4 As shown, in a possible implementation manner, adjusting parameters of a device and determining a target device at least includes the following steps:

[0090] In step S401, the total number of fans is determined according to the pressure adjustment parameter.

[0091] In step S402, a first number of industrial frequency fans and a second number of variable frequency fans are determined according to the total number of fans and a preset ratio.

[0092] In step S403 , a first number of target power-frequency fans are determined from a plurality of power-frequency fans.

[0093] In step S404, a second number of target variable-frequency fans are determined from the plurality of variable-frequency fans.

[0094] The maximum adjustable pressure of the fans can be obtained in advance so that the total number of fans can be determined in combination with the pressure adjustment parameter. Specifically, the total number of fans can be determined based on the absolute value of the pressure adjustment parameter and the maximum adjustable pressure of the fans. A preset ratio can then be obtained, representing the ratio of power-frequency fans to variable-frequency fans in the fan fleet. Based on the preset ratio and the total number of fans, a first number of power-frequency fans and a second number of variable-frequency fans can be determined. A first target number of power-frequency fans can then be determined from the plurality of power-frequency fans, and a second target number of variable-frequency fans can be determined from the plurality of variable-frequency fans.

[0095] In one feasible embodiment, when the pressure adjustment parameter is greater than zero, a first number of target power-frequency fans with the longest standby times are determined from the plurality of standby power-frequency fans, and a second number of target variable-frequency fans with the longest standby times are determined from the plurality of standby variable-frequency fans. When the pressure adjustment parameter is less than zero, a first number of target power-frequency fans with the longest operating times are determined from the plurality of operating power-frequency fans, and a second number of target variable-frequency fans with the longest operating times are determined from the plurality of operating variable-frequency fans.

[0096] In one possible implementation, the method further includes:

[0097] Determine the continuous working time of each target industrial frequency fan and target variable frequency fan.

[0098] When there is a fan among the target power-frequency fan and the target variable-frequency fan whose continuous working time is greater than the preset working time threshold, a corresponding replacement fan is determined from the standby power-frequency fan and the standby variable-frequency fan.

[0099] The replacement fan is controlled to replace the target power frequency fan and the target variable frequency fan whose continuous working time is greater than the preset working time threshold.

[0100] In this embodiment, the continuous working time of each target industrial frequency fan and target variable frequency fan can be detected in real time. When there is a fan among the target industrial frequency fans and target variable frequency fans whose continuous working time is greater than the preset working time threshold, the corresponding replacement fan is determined from the standby industrial frequency fans and the standby variable frequency fans to replace the fan whose continuous working time is greater than the preset working time threshold, thereby avoiding damage to the fan due to long-term continuous operation. The replaced fan can also be inspected and maintained, thereby extending the service life of the fan.

[0101] In one possible embodiment, the operating parameters of each fan can be monitored in real time. These operating parameters may include the current, temperature, and vibration value of the fan's drive motor. When the operating parameters of the fan exceed preset operating thresholds, the fan is determined to be faulty. For example, if the current of the fan's drive motor exceeds a preset current threshold, or the temperature of the fan's drive motor exceeds a preset temperature threshold, or the vibration value of the fan's drive motor exceeds a preset vibration threshold, an alarm message corresponding to the fan can be generated and issued through an alarm device. A corresponding replacement fan can then be determined to replace the faulty fan, thereby avoiding affecting the air pressure within the membrane.

[0102] In a possible implementation, the environmental detection data also includes air film internal detection data, the target control parameters also include internal environmental control parameters, the equipment adjustment parameters include internal environmental adjustment parameters, and the target equipment also includes target dust reduction equipment and / or target ventilation equipment.

[0103] Determine equipment adjustment parameters based on environmental detection data and target control parameters, including:

[0104] Determine the internal environment adjustment parameters based on the internal detection data of the air film and the internal environment control parameters.

[0105] Adjust parameters based on the device and determine the target device, including:

[0106] Adjust parameters according to the internal environment and determine the target dust reduction equipment and / or target ventilation equipment.

[0107] In this embodiment, the environmental detection data also includes detection data inside the air membrane, wherein the detection data inside the air membrane may include gas concentration, temperature and humidity, carbon monoxide concentration, and dust concentration. The target control parameters also include internal environmental control parameters, wherein the internal environmental control parameters may include target gas concentration, target temperature and humidity, target carbon monoxide concentration, and target dust concentration, wherein the target temperature and humidity are divided into target temperature and target humidity. The target ventilation equipment can be determined based on at least one of the target gas concentration, target temperature and humidity, and target carbon monoxide concentration, and the target dust reduction equipment can be determined based on the target dust concentration. In order to adjust the gas concentration, temperature and humidity, carbon monoxide concentration, and dust concentration inside the air membrane to the target gas concentration, target temperature and humidity, target carbon monoxide concentration, and target dust concentration through the target ventilation equipment and target dust reduction equipment, thereby avoiding harmful gases and the like from posing a threat to the safety of people inside the air membrane.

[0108] In a feasible embodiment, the method further includes:

[0109] Obtain fire detection data.

[0110] When the fire detection data is greater than a preset fire data threshold, the target fire-fighting equipment is determined.

[0111] Control the target fire-fighting equipment to operate.

[0112] In this embodiment, fire detection data can be obtained through a fire detection sensor, wherein the fire detection data may include the temperature and smoke concentration of the target object. When the fire detection data is greater than a preset fire data threshold, the target fire-fighting equipment corresponding to the target object is determined from the fire-fighting unit, thereby controlling the operation of the target fire-fighting equipment.

[0113] Air dome buildings are a new type of building structure supported by a pressure differential between inside and outside the dome. Within a safe range, the higher the pressure inside the dome, the greater its ability to withstand wind and snow loads. This reduces the likelihood of deformation and increases safety. When an emergency door is opened, an inverter or sensor fails, or the pressure differential between inside and outside the dome is too low or too high, an alarm is automatically generated, alerting staff to address the abnormality promptly.

[0114] Figure 5 5 is a block diagram of an electronic device according to an exemplary embodiment. For example, the electronic device 500 can be provided as a server. Figure 5 The electronic device 500 includes a processor 522, which may be one or more, and a memory 532 for storing a computer program executable by the processor 522. The computer program stored in the memory 532 may include one or more modules, each corresponding to a set of instructions. In addition, the processor 522 may be configured to execute the computer program to perform the above-mentioned air film environment control method.

[0115] In addition, the electronic device 500 may further include a power supply component 526 and a communication component 550. The power supply component 526 may be configured to perform power management of the electronic device 500, and the communication component 550 may be configured to implement communication, for example, wired or wireless communication, of the electronic device 500. In addition, the electronic device 500 may further include an input / output (I / O) interface 558. The electronic device 500 may operate based on an operating system stored in the memory 532.

[0116] In another exemplary embodiment, a computer-readable storage medium including program instructions is also provided. When executed by a processor, the program instructions implement the steps of the aforementioned air film environment control method. For example, the non-transitory computer-readable storage medium may be the aforementioned memory 532 including the program instructions. The program instructions may be executed by the processor 522 of the electronic device 500 to implement the aforementioned air film environment control method.

[0117] In another exemplary embodiment, a computer program product is further provided. The computer program product includes a computer program executable by a programmable device, and the computer program has a code portion for executing the above-mentioned air film environment control method when executed by the programmable device.

[0118] The preferred embodiments of the present disclosure are described in detail above in conjunction with the accompanying drawings. However, the present disclosure is not limited to the specific details of the above embodiments. Within the technical concept of the present disclosure, various simple modifications can be made to the technical solutions of the present disclosure, and these simple modifications all fall within the scope of protection of the present disclosure.

[0119] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any suitable manner without contradiction. To avoid unnecessary repetition, the present disclosure will not further describe various possible combinations.

[0120] In addition, the various embodiments of the present disclosure may be arbitrarily combined, and as long as they do not violate the concept of the present disclosure, they should also be regarded as the contents disclosed by the present disclosure.

Claims

1. A method for controlling an air film environment, characterized in that: include: Acquiring environmental detection data of the air film, wherein the environmental detection data at least includes the internal and external pressure difference of the air film; Determining equipment adjustment parameters based on the environmental detection data and target control parameters, wherein the target control parameters include at least a target pressure difference; Determining target equipment according to the equipment adjustment parameters, wherein the target equipment at least includes a target industrial frequency fan and a target variable frequency fan; controlling the target device according to the target control parameter, wherein the target device is at least used to adjust the internal and external pressure difference of the air film to the target pressure difference; The environmental detection data also includes correction data, and the equipment adjustment parameters include at least a pressure adjustment parameter; and determining the equipment adjustment parameters based on the environmental detection data and the target control parameters includes at least: Correcting the target pressure difference in the target control parameter according to the correction data to obtain a corrected target pressure difference; Obtaining a pressure adjustment parameter in the device adjustment parameter according to the internal and external pressure difference of the air film in the environmental detection data and the corrected target pressure difference; The step of adjusting parameters of the device and determining the target device at least includes: determining the total number of fans according to the pressure adjustment parameter; Determining a first number of power-frequency fans and a second number of variable-frequency fans according to the total number of fans and a preset ratio; When the pressure adjustment parameter is a value greater than zero, determining a first number of target power-frequency fans with the longest standby time from the plurality of standby power-frequency fans, and determining a second number of target variable-frequency fans with the longest standby time from the plurality of standby variable-frequency fans; When the pressure adjustment parameter is a value less than zero, a first number of target industrial frequency fans with the longest working time are determined from multiple working industrial frequency fans, and a second number of target variable frequency fans with the longest working time are determined from multiple working variable frequency fans.

2. The air film environment control method according to claim 1, characterized in that: The step of controlling the target device according to the target pressure difference, wherein the target device is at least used to adjust the internal and external pressure difference of the air film to the target pressure difference, includes: The target device is controlled according to the corrected target pressure difference, and the target device is at least used to adjust the internal and external pressure difference of the air film to the corrected target pressure difference.

3. The air film environment control method according to claim 2, characterized in that: The correction data includes at least wind speed and snow thickness; Correcting the target pressure difference in the target control parameter according to the correction data to obtain the corrected target pressure difference at least includes: determining a first adjustment coefficient according to the wind speed; adjusting the target pressure difference according to the first adjustment coefficient to obtain a first adjusted pressure difference; determining a second adjustment coefficient according to the snow thickness; adjusting the target pressure difference according to the second adjustment coefficient to obtain a second adjusted pressure difference; A larger value of the first adjusted pressure difference and the second adjusted pressure difference is determined as the corrected target pressure difference.

4. The air film environment control method according to claim 1, characterized in that: The method further comprises: Determining the continuous operating time of each of the target industrial frequency fans and the target variable frequency fans; When there is a fan among the target power-frequency fan and the target variable-frequency fan whose continuous working time is greater than a preset working time threshold, determining a corresponding replacement fan from the standby power-frequency fan and the standby variable-frequency fan; The replacement fan is controlled to replace the fan whose continuous working time is greater than a preset working time threshold among the target industrial frequency fan and the target variable frequency fan.

5. The air film environment control method according to claim 1, characterized in that: The environmental detection data also includes air film internal detection data, the target control parameters also include internal environment control parameters, the equipment adjustment parameters include internal environment adjustment parameters, and the target equipment also includes target dust reduction equipment and / or target ventilation equipment; The determining of equipment adjustment parameters according to the environmental detection data and the target control parameters includes: Determining the internal environment adjustment parameter according to the air film internal detection data and the internal environment control parameter; The step of adjusting parameters of the device and determining the target device includes: The target dust reduction equipment and / or target ventilation equipment is determined according to the internal environment adjustment parameters.

6. The air film environment control method according to claim 1, characterized in that: The method further comprises: Obtain fire detection data; When the fire detection data is greater than a preset fire data threshold, determining a target fire-fighting equipment; Control the target fire-fighting equipment to operate.

7. An air film environment control system, characterized in that: Including controllers, environmental detection equipment and environmental control equipment; The environmental detection device is configured to detect environmental detection data of the air film; The environmental control device is configured to provide a target device; The controller is connected to the environment detection device and the environment control device respectively, and the controller is configured to implement the steps of the air film environment control method according to any one of claims 1 to 6.

8. A non-transitory computer-readable storage medium having a computer program stored thereon, characterized in that: When the program is executed by a processor, the steps of the air film environment control method according to any one of claims 1 to 6 are implemented.

9. An electronic device, characterized in that: include: a memory having a computer program stored thereon; A processor is used to execute the computer program in the memory to implement the steps of the air film environment control method according to any one of claims 1 to 6.

Citation Information

Patent Citations

  • Differential pressure automatic control interlocking logic for gas film coal yard

    CN112539498A