A closed pressure-bearing optimization treatment method and device for granary-specific air conditioning

By combining weather data at the granary location and internal nitrogen concentration, the operating strategy of the granary's dedicated air conditioner was optimized, which solved the problem of unstable closed state caused by nitrogen leakage, achieved balanced control of nitrogen concentration and temperature inside the granary, and improved storage reliability.

CN119268104BActive Publication Date: 2025-09-12GUANGXI SINOGRAIN STORAGE APP SCI & TECH

Patent Information

Application Number
CN202411385628.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-09-12
Estimated Expiration
2044-09-30

AI Technical Summary

Technical Problem

During operation, the existing dedicated air conditioners for granaries exchange air with the external space, causing nitrogen leakage, affecting the airtight state of the granary and making it impossible to effectively ensure the reliability of internal nitrogen concentration and temperature control.

Method used

By utilizing weather data at the granary location and internal nitrogen concentration, the available operating power and duration are determined. Combined with the temperature adjustment strategy, air conditioning operation is optimized to maintain balanced control of nitrogen concentration and temperature.

Benefits of technology

By taking into account the differences in nitrogen dissipation data and temperature regulation rates under different operating powers, the balanced control of nitrogen concentration and temperature inside the granary is ensured, thereby improving the reliability and safety of granary storage.

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Abstract

The present invention provides a closed pressure-bearing optimization disposal method and device for a granary-specific air conditioner, which belongs to the technical field of granary air conditioners, and specifically includes: determining the available operating power based on nitrogen dissipation data of the granary-specific air conditioner at different operating powers within a nitrogen concentration reference range, determining the nitrogen dissipation data inside the granary for different operating times under the available operating power based on the nitrogen concentration reference range, and determining the operating time control range under the available operating power through the nitrogen dissipation data inside the granary, taking the available operating power and the operating time control range as constraints, determining the temperature abnormality period based on the granary temperature data, and determining the adjustment strategy of the granary-specific air conditioner during the temperature abnormality period according to the nitrogen dissipation data under different available operating powers and the temperature adjustment rate, thereby improving the reliability of grain storage and processing in the granary.
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Description

Technical Field

[0001] The present invention belongs to the technical field of granary air conditioners, and in particular relates to a closed pressure-bearing optimization disposal method and device for a special air conditioner for a granary. Background Art

[0002] At present, with the promotion and use of nitrogen-rich gas storage technology and low-temperature grain storage technology, as well as the increasing number of shallow silo construction projects, the problem of rapid nitrogen leakage concentration drop caused by the use of existing granary-specific air conditioners has become increasingly prominent. This makes how to achieve the closed and pressurized optimization treatment of granary-specific air conditioners a technical problem that needs to be solved urgently.

[0003] The existing technical solution in the invention patent application CN201920224735.0 "A sealing device for a granary air conditioner indoor unit" is provided with a sealing baffle, so that a rubber cotton lining is used between the sealing baffle and the air conditioner sealing cover, and the sealing baffle is connected to the air conditioner sealing cover by bolts, thereby improving the sealing effect of the granary. However, the existing technical solution has the following technical problems:

[0004] During the operation of the granary air conditioner, there is a certain amount of air exchange with the external space, which will inevitably have a certain degree of impact on the airtightness of the granary. Therefore, when controlling the temperature of the granary, if the nitrogen situation inside the granary and its impact on the airtightness inside the granary are not considered, the reliability of the airtight state inside the granary cannot be guaranteed.

[0005] In response to the above technical problems, the present invention provides a closed pressure-bearing optimization disposal method and device for a special air conditioner for a granary. Summary of the Invention

[0006] To achieve the purpose of the present invention, the present invention adopts the following technical solutions:

[0007] In order to solve the above technical problems, the present invention provides the following technical solutions to achieve the purpose of the present invention:

[0008] According to one aspect of the present invention, a closed pressure-bearing optimization disposal method for a granary-specific air conditioner is provided.

[0009] A closed pressure-bearing optimization treatment method for a granary-specific air conditioner, specifically comprising:

[0010] S1 uses weather data at the location of the granary to determine the granary temperature data for a preset time period in the future, and when it is determined that a granary-specific air conditioner is needed for temperature control based on the nitrogen concentration inside the granary, proceeds to the next step;

[0011] S2 determines a nitrogen concentration reference range based on the nitrogen concentration inside the granary, and determines the available operating power based on nitrogen dissipation data of the granary-specific air conditioner at different operating powers within the nitrogen concentration reference range;

[0012] S3 determines, based on the nitrogen concentration reference interval, nitrogen dissipation data inside the granary at different operating times of the granary-specific air conditioner at available operating power, and determines an operating time control range under the available operating power based on the nitrogen dissipation data inside the granary;

[0013] S4 takes the available operating power and operating time control range as constraints, determines the temperature abnormality period based on the granary temperature data, and determines the adjustment strategy of the granary-specific air conditioner during the temperature abnormality period according to the nitrogen dissipation data and temperature adjustment rate under different available operating powers.

[0014] The beneficial effects of the present invention are:

[0015] 1. The available operating power is determined based on the nitrogen dissipation data of the granary air conditioner at different operating powers within the nitrogen concentration reference range, thereby avoiding the technical problem of large nitrogen dissipation caused by temperature adjustment of the granary air conditioner at certain operating powers, ensuring that the nitrogen concentration inside the granary can be maintained within a reasonable range, and improving the storage reliability of the granary.

[0016] 2. The adjustment strategy of the granary's special air conditioner during the temperature abnormality period is determined based on the nitrogen dissipation data and temperature adjustment rate under different available operating powers. Not only the impact of the difference in temperature adjustment rate on the storage temperature of the grain in the granary is taken into account, but also the impact of the difference in nitrogen dissipation data under different available operating powers on the nitrogen concentration in the granary is taken into account. This achieves balanced control of temperature and nitrogen concentration and ensures the storage reliability of the grain in the granary.

[0017] A further technical solution is that the weather data is determined based on the analysis results of weather forecast data at the location of the granary.

[0018] A further technical solution is that the duration of the preset period is determined according to the storage capacity inside the granary, wherein the greater the storage capacity inside the granary, the longer the duration of the preset period.

[0019] A further technical solution is that the preset time period is 24 hours.

[0020] A further technical solution is that the granary temperature data of the granary in a preset time period in the future includes the granary temperature in different unit time periods in the preset time period.

[0021] A further technical solution is that the granary temperature data of the granary within a preset period in the future is determined based on the weather data, specifically based on the granary temperature data of the granary within the preset period on a similar date similar to the weather data.

[0022] A further technical solution is that the abnormal temperature period is a period when the granary temperature is not within a preset temperature range.

[0023] A further technical solution is that the method for determining the adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is:

[0024] The available operating power and operating time control range are used as constraints, and the temperature abnormal period is determined based on the granary temperature data. The regulation strategy of the granary-specific air conditioner during the temperature abnormal period is determined according to the nitrogen dissipation data and temperature regulation rate under different available operating powers.

[0025] determining a nitrogen dissipation amount at the available operating power based on the nitrogen dissipation data at the available operating power, and determining a nitrogen dissipation anomaly coefficient at the available operating power through the nitrogen dissipation amount at the available operating power;

[0026] determining an adaptation coefficient under the available operating power based on a temperature adjustment rate and a nitrogen dissipation anomaly coefficient under the available operating power;

[0027] The adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is determined based on the adaptation coefficient.

[0028] A further technical solution is that the adjustment strategy of the granary-specific air conditioner during the temperature abnormality period is to use the available operating power with the largest adaptation coefficient.

[0029] In a second aspect, the present invention provides a computer device comprising: a memory and a processor in communication connection, and a computer program stored in the memory and capable of running on the processor, wherein the processor executes the above-mentioned closed pressure-bearing optimization disposal method for granary-specific air conditioners when running the computer program.

[0030] Other features and advantages will be described in the following description, and in part will become apparent from the description, or understood by practicing the invention. The purpose and other advantages of the invention are realized and obtained by the structures particularly pointed out in the description and the drawings.

[0031] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] The above and other features and advantages of the present invention will become more apparent by describing in detail exemplary embodiments thereof with reference to the accompanying drawings.

[0033] Figure 1 It is a flow chart of the closed pressure optimization disposal method for granary special air conditioner;

[0034] Figure 2 It is a flow chart of the method for determining the need to use a dedicated air conditioner for grain silo for temperature control;

[0035] Figure 3 is a flow chart of a method for determining available operating power;

[0036] Figure 4 Flowchart of a method for determining an operating duration control range under available operating power. DETAILED DESCRIPTION

[0037] Example embodiments will now be described more fully with reference to the accompanying drawings. However, example embodiments can be embodied in many forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete and will fully convey the concepts of the example embodiments to those skilled in the art. Like reference numerals in the figures represent like or similar structures, and thus their detailed description will be omitted.

[0038] The terms "a", "an", "the", and "said" are used to indicate the presence of one or more elements / components / etc.; the terms "including" and "having" are used to express an open-ended inclusive meaning and mean that additional elements / components / etc. may be present in addition to the listed elements / components / etc.

[0039] Example 1

[0040] To solve the above problems, according to one aspect of the present invention, Figure 1 According to one aspect of the present invention, a closed pressure-bearing optimization treatment method for a granary-specific air conditioner is provided, specifically comprising:

[0041] S1 uses weather data at the location of the granary to determine the granary temperature data for a preset time period in the future, and when it is determined that a granary-specific air conditioner is needed for temperature control based on the nitrogen concentration inside the granary, proceeds to the next step;

[0042] Furthermore, the weather data is determined based on an analysis result of weather forecast data at the location of the granary.

[0043] Specifically, the duration of the preset period is determined according to the storage capacity inside the granary, wherein the greater the storage capacity inside the granary, the longer the duration of the preset period.

[0044] It is understandable that the preset period is 24 hours.

[0045] It should be noted that the granary temperature data of the granary in the future preset period includes the granary temperature in different unit time periods within the preset period.

[0046] Furthermore, the granary temperature data of the granary within a preset period in the future is determined based on the weather data, specifically based on the granary temperature data of the granary within the preset period on a similar date that is similar to the weather data.

[0047] It should also be noted that the nitrogen concentration is determined based on the analysis results of the monitoring data of the nitrogen concentration monitoring device inside the granary.

[0048] Specifically, such as Figure 2 As shown, it is determined that a granary-specific air conditioner is needed for temperature control, including:

[0049] Based on the granary temperature data of the granary in a preset future time period, determining the total duration of temperature anomaly of the granary in the preset future time period, and determining the temperature anomaly coefficient of the granary based on the duration ratio of the total temperature anomaly duration;

[0050] Obtaining the nitrogen concentration inside the granary, and determining a preset concentration coefficient of the granary based on the concentration range of the nitrogen concentration inside the granary;

[0051] The temperature regulation demand coefficient of the granary is determined based on the preset concentration coefficient and temperature anomaly coefficient of the granary, and whether a granary-specific air conditioner is needed to perform temperature control is determined according to the temperature regulation demand coefficient.

[0052] Furthermore, determining whether to use a dedicated granary air conditioner for temperature control is required based on the temperature adjustment demand coefficient, specifically including:

[0053] When the temperature adjustment demand coefficient is greater than the preset demand coefficient threshold, it is determined that the granary-specific air conditioner needs to be used for temperature control.

[0054] It should also be noted that the temperature regulation demand coefficient of the granary is determined according to the product of the preset concentration coefficient and the temperature anomaly coefficient of the granary.

[0055] Optionally, determining that a dedicated granary air conditioner is required for temperature control includes steps S11-S13, specifically:

[0056] S11 determines, based on the granary temperature data of the granary in a preset future period, a temperature abnormality period of the granary in the preset future period, and determines a temperature abnormality coefficient of the granary based on the distribution data of the temperature abnormality period and the operating temperature in different temperature abnormality periods;

[0057] S12: obtaining the nitrogen concentration inside the granary, and determining a preset concentration coefficient of the granary based on the concentration range of the nitrogen concentration inside the granary;

[0058] S13 determines a preset coefficient interval under the preset concentration coefficient based on the preset concentration coefficient of the granary, and determines whether it is necessary to use a granary-specific air conditioner for temperature control according to the preset coefficient interval and the temperature anomaly coefficient.

[0059] It should be noted that when the temperature anomaly coefficient is within the preset coefficient range, it is determined that there is no need to use the granary-specific air conditioner for temperature control.

[0060] Optionally, before entering step S11, based on the granary temperature data of the granary in the future preset time period, if it is determined that the granary does not have a temperature abnormality period in the future preset time period, it is directly determined that there is no need to use the granary-specific air conditioner for temperature control. If and only if it is determined that the granary has a temperature abnormality period in the future preset time period, enter step S12.

[0061] Optionally, the above step S11 includes steps S111-S113, specifically:

[0062] S111 determines the total duration of abnormal temperature of the granary in the preset period in the future based on the granary temperature data of the granary in the preset period in the future. When the total duration of abnormal temperature of the granary in the preset period in the future does not meet the requirement, it is determined that the granary-specific air conditioner needs to be used for temperature control. When the total duration of abnormal temperature of the granary in the preset period in the future meets the requirement, the process proceeds to step S112.

[0063] S112 determines the temperature abnormality period of the granary within a preset period in the future. If there is a temperature abnormality period whose duration does not meet the requirement, it is determined that the granary-specific air conditioner needs to be used for temperature control. If there is no temperature abnormality period whose duration does not meet the requirement, the process proceeds to step S113.

[0064] S113 determines the temperature anomaly coefficient of the granary based on the distribution data of the temperature anomaly period and the operating temperature of different temperature anomaly periods. When the temperature anomaly coefficient of the granary does not meet the requirements, it is determined that a granary-specific air conditioner is needed for temperature control. When the temperature anomaly coefficient of the granary meets the requirements, step S12 is entered.

[0065] Optionally, before entering step S12, it is also necessary to determine whether the preset concentration coefficient of the granary is greater than the preset concentration coefficient threshold. When the preset concentration coefficient of the granary is greater than the preset concentration coefficient threshold, go to step S12. When the preset concentration coefficient of the granary is not greater than the preset concentration coefficient threshold, it is determined that there is no need to use the granary-specific air conditioner for temperature control.

[0066] S2 determines a nitrogen concentration reference range based on the nitrogen concentration inside the granary, and determines the available operating power based on nitrogen dissipation data of the granary-specific air conditioner at different operating powers within the nitrogen concentration reference range;

[0067] Furthermore, the nitrogen concentration reference interval is constructed based on endpoints whose deviation from the nitrogen concentration is within a preset range.

[0068] Specifically, the method for determining the available operating power is as follows: Figure 3 As shown, specifically:

[0069] Determining historical operating data of the granary-specific air conditioner at a specific operating power within the nitrogen concentration reference range, and determining a historical operating number based on the historical operating data;

[0070] Determine the number of historical operations in which the nitrogen dissipation amount is greater than a preset dissipation amount threshold based on the nitrogen dissipation amounts corresponding to different historical operation times, and use it as the dissipation operation number;

[0071] Whether the specific operating power is available operating power is determined according to the proportion of the dissipated operating times.

[0072] It should be noted that, when the proportion of the dissipation operation times does not meet the requirement, it is determined that the specific operating power does not belong to the available operating power.

[0073] Optionally, the method for determining the available operating power includes steps S21-S23, specifically:

[0074] S21 determines historical operating data of the granary-specific air conditioner at a specific operating power within the nitrogen concentration reference range, and determines operating nitrogen concentrations corresponding to different historical operating times according to the historical operating data;

[0075] S22: determining reference value coefficients for different historical operating times based on the operating nitrogen concentrations corresponding to different historical operating times and the concentration deviations of the nitrogen concentrations; determining historical operating times within different dissipation ranges based on the nitrogen dissipation amounts corresponding to the different historical operating times; and determining comprehensive reference value coefficients within different dissipation ranges in combination with the reference value coefficients for the different historical operating times;

[0076] S23 determines a reference dissipation interval within the dissipation interval by using the comprehensive reference value coefficient, and determines whether the specific operating power is available operating power by using the reference dissipation interval.

[0077] Further, when the reference dissipation interval is not within a preset range, it is determined that the specific operating power does not belong to the available operating power.

[0078] Optionally, before entering step S21, it is also necessary to determine whether the number of historical operations in which the nitrogen dissipation amount is greater than the preset dissipation amount threshold meets the requirements. When the number of historical operations in which the nitrogen dissipation amount is greater than the preset dissipation amount threshold meets the requirements, go to step S21. When the number of historical operations in which the nitrogen dissipation amount is greater than the preset dissipation amount threshold does not meet the requirements, it is determined that the specific operating power does not belong to the available operating power.

[0079] Optionally, the above step S22 includes steps S221-S223, specifically:

[0080] S221 determines the historical operation times within different dissipation amount intervals based on the nitrogen dissipation amounts corresponding to different historical operation times. When the historical operation times within the preset dissipation amount interval do not meet the requirements, it is determined that the specific operating power does not belong to the available operating power. When the historical operation times within the preset dissipation amount interval meet the requirements, the process proceeds to step S222.

[0081] S222: determining reference value coefficients for different historical operating times based on the operating nitrogen concentrations corresponding to different historical operating times and the concentration deviations of the nitrogen concentrations; determining historical operating times within different dissipation ranges based on the nitrogen dissipation amounts corresponding to the different historical operating times; and determining, when the sum of the reference value coefficients for the historical operating times within the preset dissipation range does not meet the requirements, determining that the specific operating power does not belong to the available operating power; and when the sum of the reference value coefficients for the historical operating times within the preset dissipation range meets the requirements, proceeding to step S223;

[0082] S223 determines the comprehensive reference value coefficient within different dissipation ranges based on the historical number of operations within different dissipation ranges and the reference value coefficients of different historical operation numbers. When the comprehensive reference value coefficient within the preset dissipation range is greater than the preset reference value coefficient, it is determined that the specific operating power does not belong to the available operating power. When the comprehensive reference value coefficient within the preset dissipation range is not greater than the preset reference value coefficient, proceed to step S23.

[0083] It should be noted that the preset dissipation amount interval is a dissipation amount interval in which the dissipation amount is greater than the dissipation amount set value.

[0084] S3 determines, based on the nitrogen concentration reference interval, nitrogen dissipation data inside the granary at different operating times of the granary-specific air conditioner at available operating power, and determines an operating time control range under the available operating power based on the nitrogen dissipation data inside the granary;

[0085] Specifically, such as Figure 4 As shown, the method for determining the operating time control range under the available operating power is:

[0086] Dividing the operating time into a plurality of operating time ranges according to preset time intervals, and using the nitrogen dissipation data inside the granary at different operating times within the different operating time ranges to determine the historical nitrogen dissipation amount inside the granary at different operating times;

[0087] Determining a fluctuation range of the historical nitrogen dissipation amount at different operating times based on the historical nitrogen dissipation amount inside the granary at different operating times, determining a proportion of operating times in which the historical nitrogen dissipation amount is not within a limiting dissipation amount threshold value based on the fluctuation range, and determining an abnormal dissipation coefficient at different operating times based on the proportion of operating times;

[0088] Based on the abnormal dissipation coefficients at different operating hours in different operating hour ranges, the operating hours at which the abnormal dissipation coefficients are abnormal are determined, and based on the proportion of the operating hours at which the abnormal dissipation coefficients are abnormal, the range abnormality coefficients of the different operating hour ranges are determined;

[0089] The operating time control range under the available operating power is determined according to the range abnormality coefficient.

[0090] Furthermore, the operating time control range under the available operating power is the operating time range with the smallest range abnormality coefficient.

[0091] It can be understood that the range of the range anomaly coefficient is between 0 and 1, wherein the larger the range anomaly coefficient is, the more abnormal the nitrogen dissipation data corresponding to the operating time range is.

[0092] Optionally, the determination of the operating time control range under the available operating power in the above steps includes steps S31-S33, specifically:

[0093] S31 divides the operating time into a plurality of operating time ranges according to preset time intervals, and uses the nitrogen dissipation data inside the granary at different operating times within the different operating time ranges to determine the historical nitrogen dissipation amount inside the granary at different operating times;

[0094] S32: determining a fluctuation range of the historical nitrogen dissipation amount at different operating times based on the historical nitrogen dissipation amount inside the granary at different operating times, determining the number of operations corresponding to the historical nitrogen dissipation amount based on the fluctuation range, and determining an abnormal dissipation coefficient at different operating times based on the fluctuation range and the number of operations corresponding to the historical nitrogen dissipation amount;

[0095] S33 determines the operating time in which the abnormal dissipation coefficient is abnormal based on the abnormal dissipation coefficients at different operating time in different operating time ranges, and determines the range abnormality coefficients of different operating time ranges based on the proportion of the number of operating time in which the abnormal dissipation coefficients are abnormal and the abnormal dissipation coefficients of different operating time, and determines the operating time control range under the available operating power according to the range abnormality coefficients.

[0096] Optionally, before entering step S32, it is also necessary to determine whether the historical dissipation of nitrogen inside the granary at different operating times within the operating time range does not meet the requirements. When the historical dissipation of nitrogen inside the granary at different operating times within the operating time range does not meet the requirements, it is determined that the operating time range does not belong to the operating time control range. When the historical dissipation of nitrogen inside the granary at different operating times within the operating time range does not all meet the requirements, then proceed to step S32.

[0097] Optionally, the above step S32 includes steps S321-S323, specifically:

[0098] S321 determines the fluctuation range of the historical nitrogen dissipation amount under different operating hours based on the historical nitrogen dissipation amount inside the granary under different operating hours, and determines the proportion of the number of operations in which the historical nitrogen dissipation amount is not within the dissipation amount limit threshold value based on the fluctuation range. If there is an operating hour in which the operating number proportion does not meet the requirement within the operating hour range, the process proceeds to step S322. If there is no operating hour in which the operating number proportion does not meet the requirement within the operating hour range, the process proceeds to step S323.

[0099] S322: When the number of running time periods whose running times do not meet the requirement accounts for a greater proportion than the preset time period ratio within the running time range, it is determined that the running time range does not belong to the running time control range; when the number of running time periods whose running times do not meet the requirement accounts for a less than preset time period ratio within the running time range, the process proceeds to step S323;

[0100] S323 determines the number of operations corresponding to the historical nitrogen dissipation amount through the fluctuation range, determines the abnormal dissipation coefficient under different operating durations based on the fluctuation range and the number of operations corresponding to the historical nitrogen dissipation amount, and proceeds to step S33.

[0101] Optionally, the above step S33 includes steps S331-S332, specifically:

[0102] S331 determines, based on the abnormal dissipation coefficients at different operating hours in different operating hour ranges, that there is an operating hour in the operating hour range with an abnormal dissipation coefficient greater than a preset dissipation coefficient threshold, then determines that the operating hour range does not belong to the operating hour control range; when there is an operating hour in the middle of the operating hour range with an abnormal dissipation coefficient greater than the preset dissipation coefficient threshold, proceeds to step S332;

[0103] S332 determines, based on the abnormal dissipation coefficients at different operating hours in different operating hour ranges, operating hours in which the abnormal dissipation coefficients are abnormal. If the number of operating hours in which the abnormal dissipation coefficients are abnormal within the operating hour range does not meet the requirement, it is determined that the operating hour range does not belong to the operating hour control range. If the number of operating hours in which the abnormal dissipation coefficients are abnormal within the operating hour range meets the requirement, the process proceeds to step S333.

[0104] S333 determines range abnormality coefficients of different operating time ranges based on the proportion of operating time with abnormal dissipation coefficients of the abnormal items and the abnormal dissipation coefficients of different operating time ranges, and determines the operating time control range under the available operating power according to the range abnormality coefficients.

[0105] S4 takes the available operating power and operating time control range as constraints, determines the temperature abnormality period based on the granary temperature data, and determines the adjustment strategy of the granary-specific air conditioner during the temperature abnormality period according to the nitrogen dissipation data and temperature adjustment rate under different available operating powers.

[0106] Furthermore, the abnormal temperature period is a period when the granary temperature is not within a preset temperature range.

[0107] Specifically, the method for determining the adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is as follows:

[0108] The available operating power and operating time control range are used as constraints, and the temperature abnormal period is determined based on the granary temperature data. The regulation strategy of the granary-specific air conditioner during the temperature abnormal period is determined according to the nitrogen dissipation data and temperature regulation rate under different available operating powers.

[0109] determining a nitrogen dissipation amount at the available operating power based on the nitrogen dissipation data at the available operating power, and determining a nitrogen dissipation anomaly coefficient at the available operating power through the nitrogen dissipation amount at the available operating power;

[0110] determining an adaptation coefficient under the available operating power based on a temperature adjustment rate and a nitrogen dissipation anomaly coefficient under the available operating power;

[0111] The adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is determined based on the adaptation coefficient.

[0112] Furthermore, the adjustment strategy of the granary-specific air conditioner during the temperature abnormality period is to use the available operating power with the largest adaptation coefficient.

[0113] Example 2

[0114] In a second aspect, the present invention provides a computer device comprising: a memory and a processor in communication connection, and a computer program stored in the memory and capable of running on the processor, wherein the processor executes the above-mentioned closed pressure-bearing optimization disposal method for granary-specific air conditioners when running the computer program.

[0115] The various embodiments in this specification are described in a progressive manner. Similar portions between the various embodiments can be referenced to each other, and each embodiment focuses on the differences from the other embodiments. In particular, the device, apparatus, and non-volatile computer storage medium embodiments are generally similar to the method embodiments, so their descriptions are relatively simplified. For relevant details, refer to the descriptions of the method embodiments.

[0116] The foregoing description of this specification describes specific embodiments. Other embodiments are within the scope of the appended claims. In some cases, the actions or steps recited in the claims can be performed in an order different from that described in the embodiments and still achieve the desired results. Furthermore, the processes depicted in the accompanying drawings do not necessarily require the specific order shown or the sequential order to achieve the desired results. In certain embodiments, multitasking and parallel processing are also possible or may be advantageous.

[0117] The foregoing description is merely one or more embodiments of this specification and is not intended to limit this specification. It will be apparent to those skilled in the art that various modifications and variations may be made to one or more embodiments of this specification. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of one or more embodiments of this specification are intended to be within the scope of the claims of this specification.

Claims

1. A closed pressure-bearing optimization treatment method for a granary-specific air conditioner, characterized in that: Specifically include: The granary's temperature data for a preset time period in the future is determined using the weather data at the granary's location. Combined with the nitrogen concentration inside the granary, if it is determined that a dedicated granary air conditioner is required for temperature control, the next step is entered. Determine a nitrogen concentration reference range based on the nitrogen concentration inside the granary, and determine the available operating power based on nitrogen dissipation data of the granary-specific air conditioner at different operating powers within the nitrogen concentration reference range; Based on the nitrogen concentration reference range, determining nitrogen dissipation data inside the granary at different operating times of the granary-specific air conditioner at available operating power, and determining an operating time control range under the available operating power based on the nitrogen dissipation data inside the granary; Using the available operating power and operating time control range as constraints, determining the temperature abnormality period based on the granary temperature data, and determining the regulation strategy of the granary-specific air conditioner during the temperature abnormality period based on the nitrogen dissipation data and temperature regulation rate under different available operating powers; The abnormal temperature period is the period when the granary temperature is not within the preset temperature range; The method for determining the adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is as follows: The available operating power and operating time control range are used as constraints, and the temperature abnormal period is determined based on the granary temperature data. The regulation strategy of the granary-specific air conditioner during the temperature abnormal period is determined according to the nitrogen dissipation data and temperature regulation rate under different available operating powers. determining a nitrogen dissipation amount at the available operating power based on the nitrogen dissipation data at the available operating power, and determining a nitrogen dissipation anomaly coefficient at the available operating power through the nitrogen dissipation amount at the available operating power; determining an adaptation coefficient under the available operating power based on a temperature adjustment rate and a nitrogen dissipation anomaly coefficient under the available operating power; The adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is determined based on the adaptation coefficient.

2. The closed pressure-bearing optimization treatment method for a granary-specific air conditioner according to claim 1, characterized in that: The weather data is determined based on the analysis results of the weather forecast data at the location of the granary.

3. The closed pressure-bearing optimization treatment method for a granary-specific air conditioner according to claim 1 is characterized in that: The duration of the preset period is determined according to the storage volume inside the granary, wherein the greater the storage volume inside the granary, the longer the duration of the preset period.

4. The closed pressure-bearing optimization treatment method for a granary-specific air conditioner according to claim 1, characterized in that: The preset time period is 24 hours.

5. The closed pressure-bearing optimization treatment method for a granary-specific air conditioner according to claim 1, characterized in that: The granary temperature data of the granary within a preset period in the future is determined based on the weather data, specifically based on the granary temperature data of the granary within the preset period on a similar date that is similar to the weather data.

6. The closed pressure-bearing optimization treatment method for a granary-specific air conditioner according to claim 1, characterized in that: The nitrogen concentration is determined based on the analysis results of monitoring data from a nitrogen concentration monitoring device inside the granary.

7. The closed pressure-bearing optimization treatment method for a granary-specific air conditioner according to claim 1, characterized in that: The adjustment strategy of the granary-specific air conditioner during the abnormal temperature period is to use the available operating power with the largest adaptation coefficient.

8. A computer device comprising: A memory and a processor in communication connection, and a computer program stored in the memory and capable of running on the processor, characterized in that when the processor runs the computer program, it executes the closed pressure-bearing optimization disposal method for a special air conditioner for a granary as described in any one of claims 1-7.

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