Power Equipment Temperature and Humidity Control Method, Device, System and Computer Storage Medium
By obtaining the electrical parameter information of the power equipment, generating the operating parameter adjustment amount, and adjusting the temperature control execution equipment in advance, the problem of lag in the temperature and humidity adjustment of the power equipment is solved, and predictive control and equipment life extension are achieved.
Patent Information
- Application Number
- CN202110690310.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-06-22
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2041-06-22
AI Technical Summary
The temperature and humidity adjustment method of existing power equipment is lagging, resulting in shortening and destruction of electronic components, and increasing device cost and installation space.
By obtaining the electrical parameter information of the power equipment, the operating parameter adjustment of the temperature control execution equipment is generated, and the temperature and humidity are adjusted in advance to avoid hysteresis adjustments, including parameter correction of heating or blowing equipment.
It realizes predictive control of the temperature and humidity of power equipment, avoids hysteresis adjustment, extends the service life of the equipment and saves energy.
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Figure CN115509279B_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of power equipment, and particularly relates to a method, device, system and computer storage medium for controlling the temperature and humidity of power equipment. Background Art
[0002] At present, with the continuous progress of science and technology, the power system is developing towards the direction of large capacity, high voltage and intelligence. In daily life, whether the power system can operate normally is related to the stability of people's lives and the development of social economy.
[0003] In the existing power system, various power equipment distributed within the power grid coverage area undertakes the tasks of power transmission and distribution. Therefore, it is necessary to ensure the safe operation of these power equipment. For example, the power equipment can be a power distribution cabinet or other equipment in the power distribution system. However, various electronic components are usually installed in the power equipment, such as wiring busbars and circuit components. When the power equipment is operating, these electronic components will be energized and generate a large amount of heat, thereby increasing the ambient temperature of the power equipment. When the ambient temperature of the power equipment is too high, it is easy to cause the aging of the life of various electronic components, shorten the service life, and also affect the normal operation of the electronic components, and even cause the damage of the components. Therefore, it is necessary to adjust the temperature and humidity of the power equipment in a timely manner.
[0004] The existing methods for adjusting the temperature and humidity of power equipment mainly involve adding a temperature and humidity control system for power equipment, detecting the temperature and humidity of the power equipment through sensors, and turning on the fan for air blowing to cool down when the temperature is too high, and turning on the heater to heat up when the temperature is too low. However, the above adjustment method controls and adjusts when it is detected that the temperature and humidity of the power equipment have already deviated abnormally, and the control and adjustment process is characterized by large delay and large lag, and it takes a lot of time to adjust the temperature and humidity to the normal range. During this period, the electronic components in the power equipment work in an abnormal temperature and humidity state, which is also prone to cause faults of the electronic components. Summary of the Invention
[0005] The embodiments of this application provide a method, device, system and computer storage medium for controlling the temperature and humidity of power equipment, which can solve the problem of lag in adjusting the temperature and humidity of existing power equipment.
[0006] In a first aspect, the embodiments of this application provide a method for controlling the temperature and humidity of power equipment, the method comprising:
[0007] Obtain the electrical parameter information of the power equipment;
[0008] When the electrical parameter information is outside the preset electrical parameter threshold range, generate an adjustment amount of the operating parameters of the temperature control execution device according to the electrical parameter information;
[0009] Adjust and correct the current operating parameters of the temperature control execution device according to the adjustment amount of the operating parameters to control the temperature and humidity of the power equipment.
[0010] In some embodiments, the electrical parameter information is the current parameter. Generating the adjustment amount of the operating parameters of the temperature control execution device includes:
[0011] Determine the corresponding correction interval according to the current parameter;
[0012] Determine the correction coefficient according to the correction interval corresponding to the current parameter and the preset correction rule; the preset correction rule is the corresponding relationship between the correction interval and the correction coefficient;
[0013] Generate the adjustment amount of the operating parameters of the temperature control execution device, and the adjustment amount of the operating parameters includes the correction coefficient.
[0014] In some embodiments, before obtaining the electrical parameter information of the power equipment, it further includes:
[0015] Obtain the current temperature parameter of the power equipment;
[0016] Judge whether the current temperature parameter is within the state maintenance range of the target temperature;
[0017] When the current temperature parameter is not within the state maintenance range of the target temperature, generate the first adjustment amount of the temperature control execution device according to the current temperature parameter and the preset control strategy;
[0018] Adjust and correct the current operating parameters of the temperature control execution device according to the adjustment amount of the operating parameters, including:
[0019] Obtain the correction coefficient according to the adjustment amount of the operating parameters;
[0020] Perform correction calculation on the first adjustment amount according to the correction coefficient to generate the second adjustment amount of the temperature control execution device;
[0021] Adjust and correct the current operating parameters of the temperature control execution device according to the second adjustment amount.
[0022] In some embodiments, generating the first adjustment amount of the temperature control execution device according to the current temperature parameter and the preset control strategy includes:
[0023] Judge whether the current temperature parameter is within the error adjustment range of the target temperature according to the current temperature parameter; the error adjustment range includes the state maintenance range;
[0024] When the current temperature parameter is within the error adjustment range of the target temperature, generate the first adjustment amount of the temperature control execution device according to the preset control strategy;
[0025] When the current temperature parameter is not within the error adjustment range of the target temperature, set the first adjustment amount to the maximum allowable value of the operating parameters of the temperature control execution device.
[0026] In some embodiments, before correcting and adjusting the current operating parameters of the temperature control execution device according to the second adjustment amount, it further includes:
[0027] Obtain the historical electrical parameter information of the power equipment from the database;
[0028] Determine the total historical power consumption time and the abnormal time of historical power consumption according to the historical electrical parameter information;
[0029] Calculate the historical power consumption abnormality ratio based on the total historical power consumption time and the abnormal time of historical power consumption;
[0030] Determine the corresponding influence factor according to the historical power consumption abnormality ratio;
[0031] Correcting and adjusting the current operating parameters of the temperature control execution device according to the second adjustment amount includes:
[0032] Generate a third adjustment amount for the temperature control execution device according to the influence factor and the second adjustment amount;
[0033] Correct and adjust the current operating parameters of the temperature control execution device according to the third adjustment amount.
[0034] In some embodiments, determining the total historical power consumption time and the abnormal time of historical power consumption according to the historical electrical parameter information includes:
[0035] Determine the current parameters of each statistical period in the total historical power consumption time according to the historical electrical parameter information;
[0036] Determine the statistical periods when the current parameters reach the abnormal current threshold;
[0037] Take the sum of the statistical periods when the current parameters reach the abnormal current threshold as the abnormal time of historical power consumption.
[0038] In some embodiments, after determining whether the current temperature parameter is within the state maintenance range of the target temperature, it further includes:
[0039] When the current temperature parameter is within the state maintenance range of the target temperature, turn off the temperature control execution device.
[0040] In some embodiments, the temperature control execution device includes a heating device and a blowing device. Correcting and adjusting the current operating parameters of the temperature control execution device according to the operating parameter adjustment amount to control the temperature and humidity of the power equipment includes:
[0041] When the current temperature parameter of the power equipment is within the state maintenance range lower than the target temperature, the heating power of the heating equipment is corrected and adjusted according to the operating parameter adjustment amount, so that the heating equipment heats the power equipment;
[0042] Alternatively, when the current temperature parameter of the power equipment is within the state maintenance range higher than the target temperature, the blowing power of the blowing equipment is corrected and adjusted according to the operating parameter adjustment amount, so that the blowing equipment blows the power equipment.
[0043] In a second aspect, an embodiment of the present application provides a temperature and humidity control device for a power equipment, the device includes:
[0044] An acquisition module, configured to acquire the electrical parameter information of the power equipment;
[0045] A calculation module, configured to generate an operating parameter adjustment amount according to the electrical parameter information when the electrical parameter information is outside the preset electrical parameter threshold range;
[0046] A control module, configured to correct and adjust the current operating parameters of the temperature control execution equipment according to the operating parameter adjustment amount to control the temperature and humidity of the power equipment.
[0047] In a third aspect, an embodiment of the present application provides a computer storage medium, on which computer program instructions are stored, and when the computer program instructions are executed by a processor, the above-mentioned temperature and humidity control method for power equipment is implemented.
[0048] Generally, when the power equipment continues to operate after a large change in electrical parameters, it is easy to cause abnormal temperature and humidity. Moreover, abnormal temperature and humidity usually occur after the electrical parameters are outside the preset electrical parameter threshold range. Based on this, the temperature and humidity method, device, equipment and computer storage medium provided by the embodiments of the present application can generate an operating parameter adjustment amount in advance according to the electrical parameter information when it is determined that the electrical parameter information of the power equipment is outside the preset electrical parameter threshold range, so as to realize the correction and adjustment of the operating parameters of the temperature control execution equipment, so as to realize the advance adjustment of the temperature and humidity of the power equipment through the electrical parameters of the power equipment. Therefore, when the electrical parameters change, the temperature control execution equipment is adjusted in advance, which can realize the advance adjustment of the temperature and humidity of the power equipment, avoid the lag adjustment when the temperature and humidity have already become abnormal, realize predictive control, ensure the normal operation of the equipment, and improve the service life of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0049] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings required to be used in the embodiments of the present application. Obviously, the following described drawings are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0050] Figure 1 It is a schematic flowchart of the method for controlling the temperature and humidity of power equipment provided by an embodiment of the present application.
[0051] Figure 2 It is a schematic flowchart of the method for controlling the temperature and humidity of power equipment provided by another embodiment of the present application;
[0052] Figure 3 It is a schematic flowchart of the method for controlling the temperature and humidity of power equipment provided by yet another embodiment of the present application;
[0053] Figure 4 It is a detailed flowchart of step S303 in yet another embodiment of the present application;
[0054] Figure 5 It is a schematic flowchart of the method for controlling the temperature and humidity of power equipment provided by still another embodiment of the present application;
[0055] Figure 6 It is a schematic block diagram of the device for controlling the temperature and humidity of power equipment according to an embodiment of the present application;
[0056] Figure 7 It is a schematic structural diagram of the device for controlling the temperature and humidity of power equipment provided by an embodiment of the present application;
[0057] Figure 8 It is a schematic structural diagram of the system for controlling the temperature and humidity of power equipment provided by an embodiment of the present application. Detailed Embodiments
[0058] The features and exemplary embodiments of various aspects of the present application will be described in detail below. In order to make the objectives, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the specific embodiments described herein are only intended to explain the present application, rather than to limit the present application. For those skilled in the art, the present application can be implemented without some of these specific details. The following description of the embodiments is only intended to provide a better understanding of the present application by showing examples of the present application.
[0059] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent in such process, method, article or device. Without further limitation, an element defined by the statement "comprising..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.
[0060] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments can be combined with each other. The embodiments will be described in detail below with reference to the accompanying drawings.
[0061] In the prior art, the main way to adjust the temperature and humidity of power equipment is to add a temperature and humidity control system for power equipment. The temperature and humidity of the power equipment are detected by sensors, and when the temperature is too high, the fan is turned on to blow air for cooling, and when the temperature is too low, the heater is turned on to heat up. However, this solution has two deficiencies: one is that adding an independent temperature and humidity control system increases the cost of the device and requires additional installation space; the other is that among the many factors that cause the temperature of power equipment to rise, the temperature rise of the busbar is an important factor. Usually, after the busbar current exceeds the standard threshold and continues to operate for a period of time, if the temperature and humidity control system detects that the actual temperature value is too high and then adjusts, it is easy to cause adjustment lag, which affects the service life of each component in the power equipment and even causes the component to be damaged due to abnormal temperature and humidity.
[0062] To solve the problems of the prior art, the embodiments of this application provide a method, device, system and computer storage medium for controlling the temperature and humidity of power equipment. First, the method for controlling the temperature and humidity of power equipment provided by the embodiments of this application will be introduced below.
[0063] Figure 1 The flowchart of the method for controlling the temperature and humidity of power equipment provided by an embodiment of this application is shown. The method includes the following steps:
[0064] S110, obtaining the electrical parameter information of the power equipment;
[0065] S120, when the electrical parameter information is outside the preset electrical parameter threshold range, generating an adjustment amount of the operating parameters of the temperature control execution device according to the electrical parameter information;
[0066] S130, adjust and correct the current operating parameters of the temperature control execution device according to the amount of operating parameter adjustment to control the temperature and humidity of the power device.
[0067] In this embodiment, the temperature and humidity device of the power device can detect and obtain the current electrical parameter information of the power device through various sensors arranged on the power device. The sensor can be arranged on the power device alone, or can be a sensor in the electrical parameter detection system preset on the power device. The electrical parameter information can be one or more of the current, voltage, power, electric energy, operating frequency and switch state of the power device.
[0068] In the above S110, as an example, the device can obtain the electrical parameter information of the power device at each preset period. The preset period can be adjusted or set by the user according to the operating conditions of the power device or work experience, or can be a fixed time length, such as 1 day, 1 hour, 1 minute, etc.
[0069] In the above S120, after obtaining the electrical parameter information of the power device, the device can compare the electrical parameter information with the preset electrical parameter threshold range, and determine whether to control the temperature and humidity of the power device according to the comparison result. The electrical parameter threshold range is the numerical interval corresponding to the electrical parameter information when the power device operates normally. When the data size of the electrical parameter information is within the electrical parameter threshold range, it indicates that each electrical parameter of the power device is within the normal range and the power device is in a normal operating state. At this time, the device can not control the temperature and humidity of the power device. When the data size of the electrical parameter information is outside the electrical parameter threshold range, it indicates that the components in the power device are in an abnormal working state at this time, which may cause the temperature and humidity of the power device to be abnormal, and it is necessary to control and adjust the temperature and humidity of the power device. It can be understood that when the device obtains the electrical parameter information each time, if the data size of the electrical parameter information is always within the electrical parameter threshold range within a certain period of time, the device can not start the temperature control execution device to control and adjust the temperature and humidity of the power device during this period until it detects that the electrical parameter information is outside the preset electrical parameter threshold range.
[0070] When the data size of the electrical parameter information is outside the electrical parameter threshold range, it indicates that the electrical parameters of the power equipment are abnormal at this time. If the power equipment continues to operate in this state, it may cause abnormalities in the temperature and humidity of the power equipment, such as too high or too low temperature, etc. The device can generate a corresponding adjustment amount of the operating parameters of the temperature control execution device according to the electrical parameter information that exceeds the electrical parameter threshold range. For example, when the current electrical parameter is higher than the preset electrical parameter threshold range, it means that the components of the power equipment will generate a large amount of heat due to the electrical parameter exceeding the normal range during operation. For example, the wiring busbar, etc. will cause the temperature of the power equipment to rise after running for a period of time. At this time, the adjustment amount of the operating parameters can be generated according to the size of the electrical parameter information to adjust the operating parameters of the temperature control execution device, so as to adjust the temperature and humidity in advance by operating the temperature control execution device before the temperature of the power equipment rises, and avoid the lag adjustment after the temperature of the power equipment has risen.
[0071] As an optional embodiment, please refer to Figure 2 , the electrical parameter information of the power equipment can be the current parameter. In order to predictively adjust the temperature and humidity of the power equipment when the current parameter of the power equipment is abnormal, step S120 may include the following steps:
[0072] S121, determine the corresponding correction interval according to the current parameter;
[0073] S122, determine the correction coefficient according to the correction interval corresponding to the current parameter and the preset correction rule; the preset correction rule is the corresponding relationship between the correction interval and the correction coefficient;
[0074] S123, generate the adjustment amount of the operating parameters of the temperature control execution device, and the adjustment amount of the operating parameters includes the correction coefficient.
[0075] In this embodiment, the power equipment can be each distribution cabinet in the power system, and the electrical parameter information of the power equipment collected by the device can be the current parameter, such as the loop current of the distribution cabinet. After the device obtains the current parameter of the power equipment, it can determine the corresponding correction interval according to the current parameter. For example, the corresponding preset correction rule is pre-stored in the device, and the preset correction rule can be the corresponding relationship between the correction interval and the correction coefficient. Different correction intervals can correspond to different interval ranges of the current parameter. After the device determines the interval range corresponding to the current parameter, it can determine the correction interval corresponding to this interval range through the preset correction rule. For example, when the power equipment is a distribution cabinet, multiple correction intervals can be divided according to the rated current value In of the primary side circuit breaker of the distribution cabinet:
[0076] (1) The current parameter I1 is less than or equal to 90% of In; the corresponding correction coefficient is 0;
[0077] (2) The current parameter I1 is greater than 90% of In and less than 120% of In; the corresponding correction factor is 0.4;
[0078] (3) The current parameter I1 is greater than or equal to 120% of In; the corresponding correction factor is 1.
[0079] After determining the correction interval corresponding to the actual current parameter I1 of the current power distribution cabinet, the correction factor for the current control device can be determined, thereby generating the adjustment amount of the operating parameters of the temperature control execution device. For example, when the obtained current parameter I1 is less than or equal to 90% of In, it means that there is no need to correct the adjustment amount of the operating parameters of the temperature control execution device at this time; when the obtained current parameter I1 is greater than 90% of In and less than 120% of In, it means that the adjustment amount of the operating parameters of the temperature control execution device needs to be increased by 40% at this time; when the obtained current parameter I1 is greater than or equal to 120% of In*120%, the corresponding correction factor is 1, which means that the initially obtained operating parameters need to be increased by 100% to obtain the adjusted adjustment amount of the operating parameters. According to the different correction intervals corresponding to the current parameters, different correction factors can be obtained, so as to accurately correct the adjustment amount of the operating parameters according to the actual size of the current parameters, and improve the accuracy of the adjustment amount correction.
[0080] In the above S130, the device can control the temperature and humidity of the power equipment by controlling the operation of the temperature control execution device. For example, the temperature control execution device may include a heating device and a blowing device. When the device detects that the electrical parameter information is outside the preset electrical parameter threshold range, it can be determined according to the current actual electrical parameter information that the temperature of the power equipment will rise or fall after the power equipment continues to operate. When it is determined that the power equipment will cause the temperature to rise after continuing to operate, the adjustment amount of the operating parameters of the blowing device can be generated so that the blowing device reduces the temperature of the power equipment by blowing. Similarly, when it is determined that the power equipment will cause the temperature to drop after continuing to operate, the adjustment amount of the operating parameters of the heating device can be generated so that the heating device raises the temperature of the power equipment by heating. The heating device or the blowing device can be controlled by corresponding relays respectively. After obtaining the adjustment amount of the operating parameters, the relay contacts corresponding to the heating device or the blowing device can be closed to start the heating device or the blowing device.
[0081] Generally, when power equipment continues to operate after significant changes in electrical parameters, it is likely to cause abnormal temperature and humidity. Therefore, according to the temperature and humidity control method for power equipment in the embodiments of the present application, by obtaining the electrical parameter information of the power equipment and determining whether it is outside the preset electrical parameter threshold range, when the electrical parameter information exceeds the threshold range, it can be determined that continuing to operate the power equipment in the abnormal electrical parameter information state will cause abnormal temperature and humidity of the power equipment. Generate an adjustment amount for the operating parameters of the temperature control execution device based on the electrical parameter information to achieve pre-adjustment control of the temperature and humidity of the power equipment before the temperature and humidity of the power equipment have become abnormal. When the electrical parameters change, adjusting the temperature control execution device in advance can achieve pre-adjustment of the temperature and humidity of the power equipment, avoid making lagging adjustments when the temperature and humidity have already become abnormal, achieve predictive control, ensure the normal operation of the equipment, and extend the service life of the equipment.
[0082] In an alternative embodiment, in order to save electrical energy when the temperature control execution device does not need to be turned on, please refer to Figure 3 , step S110 may include:
[0083] S301, obtain the current temperature parameter of the power equipment;
[0084] S302, determine whether the current temperature parameter is within the state maintenance range of the target temperature;
[0085] S303, when the current temperature parameter is not within the state maintenance range of the target temperature, generate a first adjustment amount for the temperature control execution device according to the current temperature parameter and the preset control strategy;
[0086] Correspondingly, step S130 may include:
[0087] S131, obtain a correction coefficient according to the operating parameter adjustment amount;
[0088] S132, perform a correction calculation on the first adjustment amount according to the correction coefficient to generate a second adjustment amount for the temperature control execution device;
[0089] S133, perform a correction adjustment on the current operating parameters of the temperature control execution device according to the second adjustment amount.
[0090] In S301 of this embodiment, the device may obtain the current temperature parameter of the power equipment before obtaining the electrical parameter information of the power equipment.
[0091] In the above S302, the state maintenance range of the target temperature is pre-stored in the device, and the device may compare the current temperature parameter with the state maintenance range of the target temperature to determine the corresponding execution steps according to the comparison result.
[0092] In the above S303, the device can determine whether to operate the temperature control execution device to adjust the temperature and humidity based on whether the current temperature parameter is within the state maintenance range of the target temperature. When the device obtains that the current temperature parameter of the power device is within the state maintenance range of the target temperature, it indicates that the temperature of the power device is within the normal operating temperature range at this time, and there is no need to adjust the temperature and humidity of the power device by operating the temperature control execution device. It can be understood that when the device obtains the current temperature parameter of the power device at regular intervals, if the current temperature parameter remains within the state maintenance range of the target temperature in multiple consecutive cycles, then within these multiple cycles, the device does not need to control the operation of the temperature control execution device, thereby saving the electric energy required during the operation of the temperature control execution device. It is not until the device obtains in the next cycle after these multiple cycles that the current temperature parameter of the power device is outside the state maintenance range of the target temperature that the operation parameter adjustment amount of the temperature control execution device is generated according to the electrical parameter information of the power device to control the temperature and humidity of the power device.
[0093] In an alternative embodiment, to achieve the stability and rapidity of temperature and humidity adjustment, please refer to Figure 4 , step S303 may include:
[0094] S3031, determine whether the current temperature parameter is within the error adjustment range of the target temperature according to the current temperature parameter; the error adjustment range includes the state maintenance range;
[0095] S3032, when the current temperature parameter is within the error adjustment range of the target temperature, generate a first adjustment amount for the temperature control execution device according to a preset control strategy;
[0096] S3033, when the current temperature parameter is not within the error adjustment range of the target temperature, set the first adjustment amount to the maximum allowable value of the operating parameters of the temperature control execution device.
[0097] In this embodiment, the error adjustment range of the target temperature may also be pre-stored in the device, and this error adjustment range is larger than the state maintenance range. For example, when the target temperature is 40°, the state maintenance range of the target temperature may be 39.5° - 40.5°, and the error adjustment range of the target temperature may be 39° - 41°. Among them, the upper limit value or the lower limit value of the state maintenance range or the error adjustment range can be adjusted separately.
[0098] In the above S3031, the device can compare the current temperature parameter with the pre-set error adjustment range of the target temperature to determine whether the current temperature parameter is within the error adjustment range of the target temperature or outside the error adjustment range of the target temperature.
[0099] The device can divide the control section into a PID control area and a direct setting control area according to the detected current temperature parameter. For different control areas, the device can adopt different strategies to generate corresponding adjustment amounts.
[0100] In S3032 above, when the device detects that the current temperature parameter is outside the state maintenance range of the target temperature and within the error adjustment range of the target temperature, it means that the temperature difference between the current temperature of the power equipment and the target temperature is small at this time. The device can determine that the control section is the PID control area, generate a corresponding first adjustment amount according to the pre-set PID control strategy, and use the first adjustment amount to obtain a second adjustment amount after correction to control the temperature control execution device. When the temperature difference between the actual current temperature and the target temperature of the power equipment is small, the flexible adjustment of temperature and humidity can be realized through the PID control strategy, so that the actual temperature of the power equipment is stabilized near the target temperature.
[0101] In S3032 above, when the device detects that the current temperature parameter of the power equipment is outside the error adjustment range of the target temperature, it means that the deviation between the current temperature of the power equipment and the target temperature is large at this time. The device can determine that the control section is the direct setting control area and set the first adjustment amount to the maximum allowable value of the operating parameters of the temperature control execution device. For example, the temperature control execution device can be a heating device or a blowing device. The maximum allowable value of the operating parameters of the heating device is the maximum heating power or the maximum heating gear, etc., and the maximum allowable value of the operating parameters of the blowing device is the maximum blowing power or the maximum blowing power, etc. When the temperature difference between the current temperature and the target temperature of the power equipment is large, the temperature control execution device can be directly set to operate at full power, so that the temperature and humidity of the power equipment can quickly approach the target temperature. This not only ensures the stability of the system but also improves the rapidity of the system.
[0102] It can be understood that when the device determines that the current temperature parameter is not within the state maintenance range of the target temperature, it means that the temperature of the power equipment is outside the pre-set range where the operation of the temperature control execution device does not need to be controlled at this time, and the temperature and humidity need to be adjusted through the temperature control execution device. At this time, the device can also perform a correction calculation based on the correction coefficient on the basis of the first adjustment amount to obtain a second adjustment amount, and use the second adjustment amount to control and adjust the temperature control execution device.
[0103] In S131 above, the device can determine the corresponding correction coefficient from the operation parameter adjustment amount.
[0104] In the above S132, the device can generate a first adjustment amount for the temperature control execution device according to the current temperature parameter and the preset control strategy, and perform a correction calculation on the first adjustment amount through a correction coefficient to obtain a corrected second adjustment amount. The preset control strategy can be a fuzzy PID control strategy pre-stored in the device. After initially obtaining the first adjustment amount, the device can perform a correction calculation on the first adjustment amount according to the correction coefficient to obtain a corrected second adjustment amount.
[0105] In the above S133, according to the second adjustment amount, the device can correct and adjust the current operating parameters of the temperature control execution device, so as to realize the temperature and humidity control of the power equipment by controlling the operation of the temperature control execution device when the temperature parameter and current parameter of the power equipment exceed the corresponding preset ranges.
[0106] The device can calculate the second adjustment amount according to the following correction formula:
[0107] y2(t) = (1 + α) × y1(t);
[0108] where y1(t) is the first adjustment amount of the temperature control execution device generated by the device according to the current temperature parameter and the preset control strategy, a is the correction coefficient corresponding to the device through the current parameter, and y2(t) is the corrected second adjustment amount.
[0109] In an alternative embodiment, in order to make predictive adjustments based on the periodicity and regularity of the historical power consumption information of the power equipment, please refer to Figure 5 , before step S133, it may further include:
[0110] S501, obtaining the historical electrical parameter information of the power equipment from the database;
[0111] S502, determining the total historical power consumption time and the abnormal time of the historical power consumption according to the historical electrical parameter information;
[0112] S503, calculating the historical power consumption abnormal ratio according to the total historical power consumption time and the abnormal time of the historical power consumption;
[0113] S504, determining the corresponding influence factor according to the historical power consumption abnormal ratio;
[0114] Correspondingly, step S133 may include:
[0115] S1331, generating a third adjustment amount for the temperature control execution device according to the influence factor and the second adjustment amount;
[0116] S1332, correcting and adjusting the current operating parameters of the temperature control execution device according to the third adjustment amount.
[0117] In this embodiment, the device can obtain the historical electrical parameter information of the power equipment from the database, and calculate the total historical power consumption time and the abnormal time of the historical power consumption of the power equipment.
[0118] The historical electrical parameter information of the power equipment can be the electrical parameter information at different time nodes in the past history of the power equipment. For example, if the electrical parameter information is the current parameter, the historical electrical parameter information is the past current parameter of the power equipment.
[0119] The total historical power consumption time is the total operating time of the power equipment corresponding to the historical electrical parameter information obtained by the device from the database. The abnormal time of the historical power consumption is the sum of the operating times when the electrical parameter information reaches abnormal values during the operation of the power equipment. For example, it can be the sum of the operating times when the current parameter of the power equipment is abnormal. It can be understood that the device can obtain the historical electrical parameter information within 1 year before, and take "hour" as the minimum unit and "day" as the statistical counting period, and count the total historical power consumption time and the abnormal time of the historical power consumption within a certain time period corresponding to the historical electrical parameter information.
[0120] In S503, the device can calculate the abnormal ratio of the historical power consumption according to the total historical power consumption time and the abnormal time of the historical power consumption, and this abnormal ratio is the ratio of the abnormal time to the total time.
[0121] In an alternative embodiment, in order to accurately calculate the proportion of the abnormal time in the historical power consumption information of the power equipment, step S503 may include:
[0122] Determine the current parameter of each statistical period in the total historical power consumption time according to the historical electrical parameter information;
[0123] Determine the statistical periods when the current parameter reaches the abnormal current threshold;
[0124] Take the sum of the statistical periods when the current parameter reaches the abnormal current threshold as the abnormal time of the historical power consumption.
[0125] In this embodiment, the device can determine the current parameter of each statistical period in the corresponding total duration according to the historical electrical parameter information, and this total duration is the total historical power consumption time. The device can judge whether the current parameter reaches the abnormal current in each statistical period, and take the statistical periods when the current parameter reaches the abnormal current as the abnormal time of the historical power consumption. After the device determines all the statistical periods that reach the abnormal current, calculate the sum of all the statistical periods that reach the abnormal current to obtain the abnormal time of the historical power consumption, so as to make a predictive adjustment to the current temperature and humidity according to the abnormal situation in the calculated historical power consumption.
[0126] In S504, the device also pre-stores the corresponding relationship between the historical abnormal power consumption ratio and the influencing factor. According to the abnormal power consumption ratio of the historical power consumption within the statistical period, the influencing factor corresponding to the abnormal ratio can be determined from the corresponding relationship. For example, when the historical abnormal power consumption ratios are 0-30%, 30%-60%, and 60%-90% respectively, the corresponding influencing factors can be φ = 1, φ = 1.2, and φ = 1.5 respectively.
[0127] In S1331, after determining the influencing factor, the device can calculate according to the influencing factor and the second adjustment amount to generate a third adjustment amount. For example, the calculation formula of the third adjustment amount can be the following formula:
[0128]
[0129] where y2(t) is the second adjustment amount, is the influencing factor, and y(t) is the third adjustment amount. That is, when the proportion of the time when the current parameter is abnormal in the historical power consumption is relatively high, the current temperature and humidity of the power equipment may rapidly increase due to the abnormality of the current parameter. By setting the influencing factor to perform gain adjustment on the second adjustment amount, the temperature and humidity adjustment efficiency of the temperature control execution device can be increased again to avoid abnormal temperature and humidity of the power equipment.
[0130] In S1332, the device can use the third adjustment amount to correct and adjust the current operating parameters of the temperature control execution device.
[0131] In the above embodiment, according to the historical electrical parameter information within a past statistical period, the proportion of the abnormal time of the current parameter within this period can be determined. When the proportion of the abnormal time is relatively large, the second adjustment amount can be adjusted by the corresponding influencing factor. That is, by performing mathematical statistics on the historical power consumption data to obtain its periodicity and regularity, a predictive trend judgment can be made when the current parameter of the power equipment may be about to increase, so as to suppress the possible future temperature change trend.
[0132] In an alternative embodiment, in order to save electrical energy when it is determined that the operation of the temperature control execution device does not need to be controlled, after step S302, it may further include:
[0133] When the current temperature parameter is within the state maintenance range of the target temperature, turn off the temperature control execution device.
[0134] In this embodiment, when the device determines that the current temperature parameter is within the state maintenance range of the target temperature and the temperature control execution device is in an operating state, it means that when the temperature parameter of the power device was obtained last time, it was not within the state maintenance range of the target temperature, and the temperature control execution device is controlled to operate to adjust the temperature and humidity of the power device. And the current temperature parameter of the power device in this time is within the state maintenance range of the target temperature, and there is no need for the temperature control execution device to continue operating, so the temperature control execution device can be controlled to shut down to save electric energy.
[0135] In an alternative embodiment, in order to achieve flexible control of the temperature and humidity of the power device, the temperature control execution device may include a heating device and a blowing device, and step S130 may include:
[0136] When the current temperature parameter of the power device is lower than the state maintenance range of the target temperature, the heating power of the heating device is corrected and adjusted according to the operating parameter adjustment amount, so that the heating device heats the power device;
[0137] Or, when the current temperature parameter of the power device is higher than the state maintenance range of the target temperature, the blowing power of the blowing device is corrected and adjusted according to the operating parameter adjustment amount, so that the blowing device blows air to the power device.
[0138] In this embodiment, the temperature control execution device may include a heating device and a blowing device. When the device determines that the current temperature parameter of the power device is lower than the state maintenance range of the target temperature, the heating power of the heating device can be corrected and adjusted according to the operating parameter adjustment amount, so that the heating device heats the power device and raises the temperature of the power device.
[0139] When the device determines that the current temperature parameter of the power device is higher than the state maintenance range of the target temperature, the blowing power of the blowing device can be corrected and adjusted according to the operating parameter adjustment amount, so that the blowing device blows air to the power device and reduces the temperature of the power device. By controlling the operation of different temperature control execution devices according to the actual temperature of the power device, flexible adjustment of the temperature and humidity of the power device can be achieved.
[0140] In the above, in combination with Figures 1 to 5 , the method for controlling the temperature and humidity of a power device according to an embodiment of the present application has been described in detail. Next, in combination with Figure 6 and Figure 7 , the device according to an embodiment of the present application will be described in detail.
[0141] Based on the method for controlling the temperature and humidity of a power device provided in the above embodiment, correspondingly, the present application also provides a specific implementation manner of a device for controlling the temperature and humidity of a power device. Please refer to the following embodiments.
[0142] First, refer to Figure 6, the temperature and humidity control device 600 provided by the embodiments of the present application includes the following units:
[0143] An acquisition module 601, configured to acquire electrical parameter information of the power equipment;
[0144] A calculation module 602, configured to generate an operating parameter adjustment amount according to the electrical parameter information when the electrical parameter information is outside a preset electrical parameter threshold range;
[0145] A control module 603, configured to correct and adjust the current operating parameters of the temperature control execution device according to the operating parameter adjustment amount to control the temperature and humidity of the power equipment.
[0146] By acquiring the electrical parameter information of the power equipment and determining whether it is outside the preset electrical parameter threshold range, it can be determined that when the electrical parameter information is outside the threshold range, continuing to operate the power equipment in the abnormal electrical parameter information state will cause the temperature and humidity of the power equipment to be abnormal, and an operating parameter adjustment amount of the temperature control execution device is generated according to the electrical parameter information, so as to perform temperature and humidity adjustment control in advance before the temperature and humidity of the power equipment become abnormal. Generally, when the electrical parameters of the power equipment change greatly and continue to operate, it is easy to cause abnormal temperature and humidity. When the electrical parameters change, adjusting the temperature control execution device in advance can realize the advance adjustment of the temperature and humidity of the power equipment, avoid making a lagging adjustment when the temperature and humidity have already become abnormal, realize predictive control, ensure the normal operation of the equipment, and extend the service life of the equipment.
[0147] As an implementation manner of the present application, in order to adjust the temperature and humidity when the current parameter of the power equipment is abnormal, the above calculation module 602 may specifically include:
[0148] An interval calculation unit, configured to determine a corresponding correction interval according to the current parameter;
[0149] A coefficient calculation unit, configured to determine a correction coefficient according to the correction interval corresponding to the current parameter and a preset correction rule; the preset correction rule is the corresponding relationship between the correction interval and the correction coefficient;
[0150] A generation unit, configured to generate an operating parameter adjustment amount of the temperature control execution device, and the operating parameter adjustment amount includes the correction coefficient.
[0151] As an implementation manner of the present application, in order to save electric energy and avoid the long-term operation of the temperature control execution device, the above device may further include:
[0152] A temperature unit, configured to acquire the current temperature parameter of the power equipment;
[0153] A first judgment unit, configured to judge whether the current temperature parameter is within the state maintenance range of the target temperature;
[0154] The first adjustment unit is configured to generate a first adjustment amount of the temperature control execution device according to the current temperature parameter and a preset control strategy when the current temperature parameter is not within the state maintenance range of the target temperature;
[0155] The above control module 603 may specifically include:
[0156] The correction acquisition unit is configured to obtain a correction coefficient according to the operation parameter adjustment amount;
[0157] The second adjustment unit is configured to perform a correction calculation on the first adjustment amount according to the correction coefficient to generate a second adjustment amount of the temperature control execution device;
[0158] The first control unit is configured to perform a correction adjustment on the current operation parameter of the temperature control execution device according to the second adjustment amount.
[0159] As another implementation manner of the present application, in order to achieve the stability and rapidity of temperature and humidity adjustment, the above first adjustment unit may specifically include:
[0160] The second determination unit is configured to determine whether the current temperature parameter is within the error adjustment range of the target temperature according to the current temperature parameter; the error adjustment range includes the state maintenance range;
[0161] The first adjustment subunit is configured to generate a first adjustment amount of the temperature control execution device according to a preset control strategy when the current temperature parameter is within the error adjustment range of the target temperature;
[0162] The first adjustment subunit is further configured to set the first adjustment amount to the maximum allowable value of the operation parameter of the temperature control execution device when the current temperature parameter is not within the error adjustment range of the target temperature.
[0163] As another implementation manner of the present application, in order to make predictive adjustments according to the periodicity and regularity of past power consumption information, the above device may further include:
[0164] The history unit is configured to obtain historical electrical parameter information of the power device from the database;
[0165] The statistics unit is configured to determine the total historical power consumption time and the abnormal power consumption time of the history according to the historical electrical parameter information;
[0166] The ratio unit is configured to calculate a historical power consumption anomaly ratio according to the total historical power consumption time and the abnormal power consumption time of the history;
[0167] The influence factor unit is configured to determine a corresponding influence factor according to the historical power consumption anomaly ratio;
[0168] The above first control unit may specifically include:
[0169] The first control subunit is configured to generate a third adjustment amount for the temperature control execution device according to the influence factor and the second adjustment amount;
[0170] The second control subunit is configured to correct and adjust the current operating parameters of the temperature control execution device according to the third adjustment amount.
[0171] As another implementation manner of the present application, in order to accurately calculate the proportion of abnormal time in historical power consumption, the above-mentioned statistical unit may specifically include:
[0172] The first statistical subunit is configured to determine the current parameter of each statistical period in the total time of historical power consumption according to the historical electrical parameter information;
[0173] The second statistical subunit is configured to determine the statistical period in which the current parameter reaches the abnormal current threshold;
[0174] The third statistical subunit is configured to use the sum of the statistical periods in which the current parameter reaches the abnormal current threshold as the abnormal time of historical power consumption.
[0175] As another implementation manner of the present application, in order to save energy and avoid the long-term operation of the temperature control execution device, the above-mentioned device further includes:
[0176] The shutdown unit is configured to shut down the temperature control execution device when the current temperature parameter is within the state maintenance range of the target temperature.
[0177] As another implementation manner of the present application, in order to achieve flexible control of the temperature and humidity of the power equipment, the temperature control execution device includes a heating device and a blowing device, and the above-mentioned control module 603 may specifically include:
[0178] The third control subunit is configured to, when the current temperature parameter of the power equipment is lower than the state maintenance range of the target temperature, correct and adjust the heating power of the heating device according to the operating parameter adjustment amount, so that the heating device heats the power equipment;
[0179] Alternatively, the third control subunit is configured to, when the current temperature parameter of the power equipment is higher than the state maintenance range of the target temperature, correct and adjust the blowing power of the blowing device according to the operating parameter adjustment amount, so that the blowing device blows the power equipment.
[0180] Such as Figure 7As shown in the figure, in the temperature and humidity control device for power equipment, it may include a temperature control execution device 702, a sensor 703, and a controller 701. The controller 701 may include an information acquisition and processing module, an inference mechanism, an expert database, and a control rule library. The controller 701 may also be integrated with basic circuits such as the main control circuit or logic circuit of the electrical parameter detection system in the power equipment, and utilize the existing electrical parameter detection system in the power equipment to acquire electrical parameter information, thereby being able to save circuit components and reduce the installation space of the equipment. The sensor 703 can detect the temperature and humidity of the power equipment. The inference mechanism can generate a first adjustment amount according to the pre-set fuzzy PID control strategy. The electrical parameter detection system can send the electrical parameter information to the information acquisition and processing module in the controller 701. The control rule library can correct the first adjustment amount according to the electrical parameter information to obtain a second adjustment amount. The expert database also stores historical electrical parameter information. The control rule library can also determine the corresponding influence factor according to the historical electrical parameter information, and process the second adjustment amount according to the influence factor to obtain a third adjustment amount. After obtaining the final adjustment amount, the control rule library can send it to the temperature control execution device 702 to adjust the controlled object, that is, the temperature and humidity of the power equipment.
[0181] The temperature and humidity control device for power equipment provided by the embodiment of the present invention can implement Figures 1 to 5 each process implemented by the temperature and humidity control device for power equipment in the method embodiment. To avoid repetition, it will not be elaborated here.
[0182] Figure 8 The figure shows a schematic hardware structure diagram of the temperature and humidity control system for power equipment provided by the embodiment of the present application.
[0183] The temperature and humidity control system for power equipment may include a processor 801 and a memory 802 storing computer program instructions.
[0184] Specifically, the above-mentioned processor 801 may include a central processing unit (CPU), or an application specific integrated circuit (ASIC), or one or more integrated circuits configured to implement the embodiment of the present application.
[0185] The memory 802 may include a mass storage for data or instructions. By way of example and not limitation, the memory 802 may include a hard disk drive (HDD), a floppy disk drive, flash memory, an optical disc, a magneto-optical disc, a magnetic tape, or a universal serial bus (USB) drive, or a combination of two or more of these. Where appropriate, the memory 802 may include removable or non-removable (or fixed) media. Where appropriate, the memory 802 may be internal or external to the integrated gateway disaster recovery device. In a particular embodiment, the memory 802 is a non-volatile solid-state memory.
[0186] The memory may include a read-only memory (ROM), a random access memory (RAM), a magnetic disk storage media device, an optical storage media device, a flash memory device, an electrical, optical, or other physical / tangible memory storage device. Thus, in general, the memory includes one or more tangible (non-transitory) computer-readable storage media (e.g., memory devices) encoded with software including computer-executable instructions, and when the software is executed (e.g., by one or more processors), it is operable to perform the operations described with reference to the method according to one aspect of the present disclosure.
[0187] The processor 801 reads and executes the computer program instructions stored in the memory 802 to implement any one of the power device temperature and humidity control methods in the above embodiments.
[0188] In one example, the power device temperature and humidity control system may further include a communication interface 803 and a bus 810. Among them, as Figure 8 shown, the processor 801, the memory 802, and the communication interface 803 are connected through the bus 810 to complete communication with each other.
[0189] The communication interface 803 is mainly used to implement communication between the various modules, devices, units, and / or devices in the embodiments of the present application.
[0190] The bus 810 includes hardware, software, or both, and couples the components of the power device temperature and humidity control system to each other. By way of example and not limitation, the bus can include an Accelerated Graphics Port (AGP) or other graphics bus, an Enhanced Industry Standard Architecture (EISA) bus, a Front Side Bus (FSB), a HyperTransport (HT) interconnect, an Industry Standard Architecture (ISA) bus, an InfiniBand interconnect, a Low Pin Count (LPC) bus, a memory bus, a MicroChannel Architecture (MCA) bus, a Peripheral Component Interconnect (PCI) bus, a PCI-Express (PCI-X) bus, a Serial Advanced Technology Attachment (SATA) bus, a Video Electronics Standards Association Local (VLB) bus, or other suitable buses, or a combination of two or more of these. Where appropriate, the bus 810 can include one or more buses. Although the embodiments of the present application describe and illustrate specific buses, the present application contemplates any suitable bus or interconnect.
[0191] The power device temperature and humidity control system can be based on the power device temperature and humidity control method, so as to implement the combination Figures 1 to 6 of the described power device temperature and humidity control method and device.
[0192] In addition, in combination with the power device temperature and humidity control method in the above embodiments, the embodiments of the present application can provide a computer storage medium to implement. Computer program instructions are stored on the computer storage medium; when the computer program instructions are executed by a processor, any one of the power device temperature and humidity control methods in the above embodiments is implemented.
[0193] It should be clear that the present application is not limited to the specific configurations and processes described above and illustrated in the figures. For the sake of brevity, the detailed description of known methods is omitted here. In the above embodiments, several specific steps are described and illustrated as examples. However, the method process of the present application is not limited to the specific steps described and illustrated, and those skilled in the art can make various changes, modifications, and additions, or change the order between steps after understanding the spirit of the present application.
[0194] The functional blocks shown in the above structural block diagram can be implemented as hardware, software, firmware, or a combination thereof. When implemented in hardware, it can be, for example, an electronic circuit, an application specific integrated circuit (ASIC), appropriate firmware, a plug-in, a function card, and so on. When implemented in software, the elements of the present application are programs or code segments for performing the required tasks. The program or code segment can be stored in a machine-readable medium, or transmitted via a data signal carried in a carrier wave on a transmission medium or a communication link. "Machine-readable medium" can include any medium that can store or transmit information. Examples of machine-readable media include electronic circuits, semiconductor memory devices, ROM, flash memory, erasable ROM (EROM), floppy disks, CD-ROMs, optical discs, hard disks, fiber optic media, radio frequency (RF) links, and so on. The code segment can be downloaded via a computer network such as the Internet, an intranet, and so on.
[0195] It should also be noted that the exemplary embodiments mentioned in the present application describe some methods or systems based on a series of steps or devices. However, the present application is not limited to the order of the above steps, that is, the steps can be executed in the order mentioned in the embodiments, or different from the order in the embodiments, or several steps can be executed simultaneously.
[0196] As described above with reference to the flowcharts and / or block diagrams of methods, apparatuses (systems), and computer program products according to embodiments of the present disclosure. It should be understood that each block in the flowchart and / or block diagram, and the combination of blocks in the flowchart and / or block diagram, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing device to produce a machine, such that the instructions executed by the processor of the computer or other programmable data processing device enable the implementation of the functions / actions specified in one or more blocks of the flowchart and / or block diagram. Such a processor can be, but is not limited to, a general-purpose processor, a special-purpose processor, a special application processor, or a field programmable logic circuit. It can also be understood that each block in the block diagram and / or flowchart, and the combination of blocks in the block diagram and / or flowchart, can also be implemented by dedicated hardware that performs the specified functions or actions, or can be implemented by a combination of dedicated hardware and computer instructions.
[0197] The above is only the specific implementation manner of the present application. Those skilled in the art can clearly understand that for the convenience and brevity of description, the specific working processes of the systems, modules, and units described above can refer to the corresponding processes in the foregoing method embodiments and will not be repeated here. It should be understood that the protection scope of the present application is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present application can easily think of various equivalent modifications or substitutions, and these modifications or substitutions should all be covered within the protection scope of the present application.
Claims
1. A method for controlling the temperature and humidity of a power device, characterized in that, The method includes: Obtaining the electrical parameter information of the power equipment; When the electrical parameter information is outside the preset electrical parameter threshold range, generating an adjustment amount for the operating parameters of the temperature control execution device according to the electrical parameter information; Correcting and adjusting the current operating parameters of the temperature control execution device according to the adjustment amount of the operating parameters to control the temperature and humidity of the power equipment; Before obtaining the electrical parameter information of the power equipment, it further includes: Obtaining the current temperature parameter of the power equipment; Judging whether the current temperature parameter is within the state maintenance range of the target temperature; When the current temperature parameter is not within the state maintenance range of the target temperature, generating a first adjustment amount for the temperature control execution device according to the current temperature parameter and a preset control strategy; The generating the first adjustment amount for the temperature control execution device according to the current temperature parameter and the preset control strategy includes: Judging whether the current temperature parameter is within the error adjustment range of the target temperature according to the current temperature parameter; the error adjustment range includes the state maintenance range; When the current temperature parameter is within the error adjustment range of the target temperature, generating the first adjustment amount for the temperature control execution device according to the preset control strategy; When the current temperature parameter is not within the error adjustment range of the target temperature, setting the first adjustment amount to the maximum allowable value of the operating parameters of the temperature control execution device.
2. The power equipment temperature and humidity control method according to claim 1, characterized in that The electrical parameter information is a current parameter, and the generating the adjustment amount for the operating parameters of the temperature control execution device according to the electrical parameter information includes: Determining the corresponding correction interval according to the current parameter; Determining a correction coefficient according to the correction interval corresponding to the current parameter and a preset correction rule; the preset correction rule is the corresponding relationship between the correction interval and the correction coefficient; Generating the adjustment amount for the operating parameters of the temperature control execution device, and the adjustment amount of the operating parameters includes the correction coefficient.
3. The method for controlling the temperature and humidity of a power equipment according to claim 2, wherein The correcting and adjusting the current operating parameters of the temperature control execution device according to the adjustment amount of the operating parameters includes: Obtaining the correction coefficient according to the adjustment amount of the operating parameters; Performing a correction calculation on the first adjustment amount according to the correction coefficient to generate a second adjustment amount for the temperature control execution device; Correcting and adjusting the current operating parameters of the temperature control execution device according to the second adjustment amount.
4. The method for controlling the temperature and humidity of a power device according to claim 3, characterized in that Before correcting and adjusting the current operating parameters of the temperature control execution device according to the second adjustment amount, it further includes: Obtaining the historical electrical parameter information of the power equipment from the database; Determining the total historical power consumption time and the abnormal power consumption time of the historical power consumption according to the historical electrical parameter information; Calculating the historical power consumption abnormal ratio according to the total historical power consumption time and the abnormal power consumption time of the historical power consumption; Determining the corresponding influence factor according to the historical power consumption abnormal ratio; The correcting and adjusting the current operating parameters of the temperature control execution device according to the second adjustment amount includes: Generating a third adjustment amount for the temperature control execution device according to the influence factor and the second adjustment amount; Modify and adjust the current operating parameters of the temperature control execution device according to the third adjustment amount.
5. The power equipment temperature and humidity control method according to claim 4, wherein The determining the total time of historical power consumption and the abnormal time of historical power consumption according to the historical electrical parameter information includes: Determine the current parameter of each statistical period in the total time of historical power consumption according to the historical electrical parameter information; Determine the statistical period when the current parameter reaches the abnormal current threshold; Take the sum of the statistical periods when the current parameter reaches the abnormal current threshold as the abnormal time of historical power consumption.
6. The method for controlling the temperature and humidity of electrical equipment according to claim 1, characterized in that, After determining whether the current temperature parameter is within the state maintenance range of the target temperature, it further includes: When the current temperature parameter is within the state maintenance range of the target temperature, turn off the temperature control execution device.
7. The method for controlling the temperature and humidity of the power equipment according to any one of claims 2 to 6, characterized in that, The temperature control execution device includes a heating device and a blowing device. Modifying and adjusting the current operating parameters of the temperature control execution device according to the operating parameter adjustment amount to control the temperature and humidity of the power device includes: When the current temperature parameter of the power device is lower than the state maintenance range of the target temperature, modify and adjust the heating power of the heating device according to the operating parameter adjustment amount, so that the heating device heats the power device; Or, when the current temperature parameter of the power device is higher than the state maintenance range of the target temperature, modify and adjust the blowing power of the blowing device according to the operating parameter adjustment amount, so that the blowing device blows the power device.
8. A temperature and humidity control device for electrical equipment, characterized in that, The power device temperature and humidity control device includes: An acquisition module for acquiring the electrical parameter information of the power device; A calculation module for generating an operating parameter adjustment amount according to the electrical parameter information when the electrical parameter information is outside the preset electrical parameter threshold range; A control module for modifying and adjusting the current operating parameters of the temperature control execution device according to the operating parameter adjustment amount to control the temperature and humidity of the power device; The power device temperature and humidity control device further includes: A temperature unit for acquiring the current temperature parameter of the power device; A first judgment unit for judging whether the current temperature parameter is within the state maintenance range of the target temperature; A first adjustment unit for generating a first adjustment amount of the temperature control execution device according to the current temperature parameter and a preset control strategy when the current temperature parameter is not within the state maintenance range of the target temperature; The first adjustment unit includes: A second judgment unit for judging whether the current temperature parameter is within the error adjustment range of the target temperature according to the current temperature parameter; the error adjustment range includes the state maintenance range; A first adjustment subunit for generating a first adjustment amount of the temperature control execution device according to a preset control strategy when the current temperature parameter is within the error adjustment range of the target temperature; The first adjustment subunit is further used to set the first adjustment amount to the maximum allowable value of the operating parameters of the temperature control execution device when the current temperature parameter is not within the error adjustment range of the target temperature.
9. A temperature and humidity control system for power equipment, characterized in that, The power device temperature and humidity control system includes: a processor and a memory storing computer program instructions; When the processor executes the computer program instructions, it implements the power device temperature and humidity control method according to any one of claims 1 to 7.
10. A computer storage medium, characterized in that, The computer storage medium stores computer program instructions, and when the computer program instructions are executed by a processor, the power equipment temperature and humidity control method according to any one of claims 1 to 7 is implemented.
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