A warehouse management system based on big data communication

By using a big data communication system to monitor and control the moisture content of building materials in real time, the problem of materials getting damp in high humidity environments has been solved, enabling precise management and rational use of materials in the warehouse, and ensuring the stability of construction and the effective utilization of materials.

CN119648107BActive Publication Date: 2025-11-28贾凤霞
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Patent Information

Application Number
CN202411424388.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-12
Publication Date
2025-11-28
Estimated Expiration
2044-10-12

AI Technical Summary

Technical Problem

In high humidity environments, building materials are prone to moisture absorption. Existing technologies cannot accurately monitor and control the moisture level of building materials in warehouses, leading to a decline in material quality and instability in their use.

Method used

The warehouse management system, based on big data communication, includes a data acquisition module, a stacking control module, and an output module. By monitoring the moisture content of building materials in real time and adjusting transportation and usage plans, it ensures the proper stacking and use of materials in the warehouse.

Benefits of technology

It enables precise monitoring and control of the moisture content of building materials in the warehouse, reduces the impact of moisture on the quality of materials, ensures the stability of construction and the rational use of materials, and achieves the goal of sustainable development.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of warehouse management systems based on big data communication, including data acquisition module, stacking control module and output module, stacking control module is used to control the quantity and transport rate of building material stacking by the monitoring result of building material stacking humid condition;Output module is used to output monitoring result and control the detailed content of conveying and using building material, the present application is accurately monitored to the damp time of building material under the influence of real-time changing air temperature by stacking control module, the humidity difference of building material stored in different positions in warehouse, different height in loading container is visualized, effectively reduce the safety risk that humidity in building material stacking process influences building material quality, simultaneously, through communication module real-time report ensures that construction site is safe and stable, guarantee the use amount and storage capacity of building material can be kept in good balance, the present application has the characteristics of high detection accuracy and strong transport control adjustment ability.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of warehouse management, in particular to a warehouse management system based on big data communication. BACKGROUND

[0002] The warehouse management system is based on the standardization of warehouse construction and the standardization of operation management, and is improved or newly built based on the actual situation of the existing warehouse, introduces high-tech intelligent equipment, and realizes the fine management of the whole process of warehouse management.

[0003] In some areas or seasons, the rainfall is frequent in the rainy season, and the air humidity is high. The building materials are easily dampened to different degrees, which reduces the strength and affects the use effect of the building materials. Especially some construction materials that are easy to be dampened are easily damaged or need to be dried. In the prior art, the real-time monitoring and deployment system of building materials can effectively control the transportation and use of building materials. However, in a high-humidity environment, the building materials are easily dampened at a high speed, and the transportation point of the building materials cannot obtain the dampening condition of the building materials stored in the storage warehouse in real time and accurately. At the same time, the container loaded with building materials is provided with an opening at the top for taking materials, but this leads to a difference in the time and humidity of building materials in different positions of the loading container. Therefore, it is necessary to design a warehouse management system based on big data communication with high detection accuracy and strong transportation control and adjustment capability. SUMMARY

[0004] The present application relates to the technical field of warehouse management, in particular to a warehouse management system based on big data communication.

[0005] In order to solve the above technical problems, the present application provides the following technical scheme: a warehouse management system based on big data communication, comprising a data acquisition module, a stacking control module and an output module, the data acquisition module is used for acquiring the construction site and the stacking of building materials; the stacking control module is used for controlling the number and transportation rate of building material stacking through the monitoring result of building material stacking humidity; the output module is used for outputting the monitoring result of the stacking control module and controlling the detailed content of conveying and using building materials.

[0006] According to the above technical scheme, the data acquisition module comprises a use record acquisition module and a loading information acquisition module, the use record acquisition module is used for acquiring the information of used building materials; the loading information acquisition module is used for acquiring the detailed information of the storage building material warehouse and the building material container.

[0007] According to the technical scheme, the stacking control module comprises a sampling module, a humidity analysis module and a stacking analysis module, the sampling module is used to obtain humidity of the building materials under the influence of different parameters through pre-detection of the building materials in the warehouse; the humidity analysis module is used to predict time and rate of the building materials reaching different humidity according to the pre-detection result of the sampling module; and the stacking analysis module is used to formulate a scheme for stacking and subsequent processing of the building materials according to the monitoring result of the humidity analysis module.

[0008] According to the technical scheme, the humidity analysis module further comprises a humidity classification submodule and a humidity prediction analysis submodule, the humidity analysis submodule is used to analyze different states of humidity of the building materials; and the humidity prediction submodule is used to obtain relevant parameters of humidity of the building materials in different states.

[0009] According to the technical scheme, the output module comprises a conveying control module and a communication module, the conveying control module is used to adjust and control a scheme of conveying the building materials in real time; and the communication module is used to prompt the staff to reasonably use the building materials in the warehouse.

[0010] According to the technical scheme, the operation method of the warehouse management system mainly comprises the following steps.

[0011] Step S1: the transport vehicle transports the building materials to the construction site, the staff pours the building materials into the loading container, and the data acquisition module obtains the distribution of the building material containers in the warehouse through the loading information acquisition module;

[0012] Step S2: the staff extracts the building materials as samples, the sampling module performs sampling experiments on the building materials, and obtains monitoring results of the building materials being damp;

[0013] Step S3: the humidity analysis module monitors humidity of the building materials in the container, and predicts detailed information of time of the building materials being damp;

[0014] Step S4: the stacking analysis module controls detailed contents of conveying and using the building materials through the monitoring results of the humidity of the building materials;

[0015] Step S5: a use record and a return system of the building materials are established, and reasonable use and safe return of the building materials are ensured according to the planning result of the output module.

[0016] According to the technical scheme, in step S1, the data acquisition module analyzes the contact area of the warehouse with the outside world, groups the building material containers stacked in the warehouse, and arranges the building material containers in the warehouse from the warehouse door to the inside of the warehouse according to the arrangement mode of the building material containers in the warehouse, and the distances from the warehouse door are R1, R2, …, RV wherein V is the number of columns of the building material container in the warehouse from the opening side to the other side in the plan view of the warehouse.

[0017] According to the above technical solution, in step S2, a sampling instrument is arranged in the warehouse at a distance L meters from the warehouse door, M kilograms of building materials are laid in the sampling instrument, the sampling module divides the sampling instrument into two layers according to the mass of the building materials, the upper layer of the sampling instrument is in contact with the air, the height of the upper and lower layers is h, the building materials in the sampling instrument gradually absorb water vapor, when the mass of the upper layer exceeds Q1 kilograms, the moisture ratio of the upper layer at this time It is judged that the amount of water vapor absorbed by the upper layer of building materials will affect the building effect, at this time the mass of the lower layer is Q2, and the moisture ratio of the lower layer at this time The time displayed by the timing unit is S1; when the mass of the upper layer exceeds P1 kilograms, the moisture ratio of the upper layer at this time It is judged that the amount of water vapor absorbed by the upper layer of building materials will seriously affect the building effect, and the time displayed by the timing unit is S2.

[0018] According to the above technical solution, step S3 further comprises:

[0019] Step S31: The building material batch is transported by a container, the height of the divided container is H, and the container is divided into layers, the height of each layer is h, and the moisture ratio of the building materials in the Cth row and the Kth layer in the warehouse when the building materials in the first layer reach the safe moisture level line wherein 0 C and K are positive integers;

[0020] Step S32: The time for the building materials in the second layer to reach the safe moisture level line is The time for the building materials in the Kth layer to reach the safe moisture level line is

[0021]

[0022] The time for the building materials in the second layer to reach the dangerous moisture level line is The time for the building materials in the Kth layer to reach the dangerous moisture level line is

[0023] Step S33: When the degree F1 of the decrease in the external temperature within 1 hour is higher than 50% of the temperature difference F of the highest temperature of the day, the system judges that the speed of water vapor invading the building materials changes obviously, and the speed of water vapor invading the building materials within B hours before the external temperature returns to 50% of the current temperature change is times of the current speed of water vapor invading the building materials, at this time the time for the building materials in the Kth layer to reach the safe moisture level line is Meanwhile, the time for the building material of the Kth layer to reach the dangerous moisture level line is

[0024] According to the technical solution, the step S4 further comprises:

[0025] Step S41: The requirement for the building material to be stacked in the warehouse is to allow up to A% of the building material to be damaged, and the goods container is used to store the building material batch transportation, The building material will reach the safe moisture level line after days; The building material will reach the dangerous moisture level line after days;

[0026] Step S42: When the building material in the container is at a ratio higher than 70% between the dry and the safe moisture level line, it is determined that the dryness of the current container is good, and other building materials are used preferentially;

[0027] Step S43: When the building material in the container is at a ratio lower than 70% between the dry and the safe moisture level line, it is determined that the current container is subject to moisture, and the building material is used preferentially;

[0028] When the building material in the container is at a ratio higher than 50% between the safe moisture level line and the dangerous moisture level line and the ratio of the building material at the dangerous moisture level line exceeds 0.8A%, the staff at the delivery location is prompted through the communication module to reduce the transportation amount of the building material and increase the transportation frequency of the building material under the condition that the total amount of the building material transportation is unchanged.

[0029] Compared with the prior art, the present application has the beneficial effects that: the present application, through the stacking control module, accurately monitors the moisture time of the building material under the influence of the real-time changing air temperature, visualizes the moisture difference of the building material stored in different positions in the warehouse and at different heights in the loading container, effectively reduces the moisture of the building material during the stacking process, and reduces the safety risk of the moisture affecting the quality of the building material, and at the same time, the communication module is used to report in real time to ensure that the construction site is safe and stable, and the use amount and the storage amount of the building material can be kept in good balance, and the goal of sustainable development is achieved. BRIEF DESCRIPTION OF DRAWINGS

[0030] The accompanying drawings are included to provide a further understanding of the present application, and constitute a part of the specification, and are used together with the embodiments of the present application to explain the present application, and do not constitute a limitation on the present application. In the drawings:

[0031] Figure 1 is a schematic diagram of the system module of the present application. DETAILED DESCRIPTION

[0032] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be described clearly and completely. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of the present application.

[0033] Please refer to Figure 1 The present application provides a technical solution: a warehouse management system based on big data communication, comprising:

[0034] The data acquisition module is used to obtain the construction land and the stacking of building materials; the stacking control module is used to control the quantity and transportation rate of building material stacking through the monitoring results of the stacking humidity of building materials; and the output module is used to output the monitoring results of the stacking control module and control the details of conveying and using building materials.

[0035] The present application can accurately monitor the moisture time of building materials under the influence of real-time changes in temperature through the stacking control module, visualize the humidity difference of building materials stored in different positions in the warehouse and at different heights in the loading container, effectively reduce the safety risk of humidity affecting the quality of building materials during the stacking process of building materials, and ensure the safety and stability of the construction site through real-time reporting by the communication module, so as to keep the usage and storage of building materials in good balance and achieve the goal of sustainable development.

[0036] The data acquisition module includes a usage record acquisition module and a loading information acquisition module, the usage record acquisition module is used to obtain the information of the used building materials, and the loading information acquisition module is used to obtain the detailed information of the storage building material warehouse and the loading building material container.

[0037] The stacking control module includes a sampling module, a humidity analysis module and a stacking analysis module, the sampling module is used to obtain the humidity of building materials under the influence of different parameters through the pre-detection of building materials in the warehouse, the humidity analysis module is used to predict the time and rate of building materials reaching different humidity according to the pre-detection results of the sampling module, and the stacking analysis module is used to develop a scheme for building material stacking and subsequent processing according to the monitoring results of the humidity analysis module.

[0038] The humidity analysis module further includes a humidity classification submodule and a humidity prediction analysis submodule, the humidity analysis submodule is used to analyze the different states of the humidity of building materials, and the humidity prediction submodule is used to obtain the related parameters of the humidity of building materials under different states.

[0039] The output module comprises a conveying control module and a communication module, the conveying control module is used for adjusting and controlling the conveying scheme of the building materials in real time, and the communication module is used for prompting the staff to reasonably use the building materials in the warehouse.

[0040] In the preferred embodiment, the operation method of the warehouse management system mainly comprises the following steps:

[0041] Step S1: The transport vehicle transports the building materials to the construction site, the staff pours the building materials into the loading container, and the data acquisition module obtains the distribution of the building material containers in the warehouse through the loading information acquisition module;

[0042] Step S2: The staff extracts the building materials as samples, the sampling module performs sampling experiments on the building materials, and obtains the monitoring results of the building materials being damp;

[0043] Step S3: The moisture analysis module monitors the moisture of the building materials in the container and predicts the detailed information of the building material damp time;

[0044] Step S4: The stacking analysis module controls the detailed content of conveying and using the building materials through the monitoring results of the moisture of the building materials;

[0045] Step S5: Establish the use record and return system of the building materials, and ensure the reasonable use and safe return of the building materials according to the planning results of the output module.

[0046] In step S1 of the embodiment, the data acquisition module analyzes the contact area between the warehouse and the outside world, groups the building material containers stacked in the warehouse, and arranges the building material containers in the warehouse from the warehouse door to the inside of the warehouse according to the arrangement mode of the building material containers in the warehouse. V , wherein V is the number of columns of the building material containers from the opening side to the other side in the plan view of the warehouse.

[0047] The warehouse is constructed to be opened on one side for transporting building materials and closed on the other three sides for blocking moisture.

[0048] When water vapor invades the warehouse, the building materials stacked in the warehouse are successively invaded by water vapor, and because the building materials stacked in the warehouse are spaced at the same distance and have different distances from the warehouse, the air contact time, moisture and contact area will be different. The sampling instrument arranged at the warehouse door can detect the influence of the distance from the warehouse door on the water vapor invasion rate of the water vapor in the container to the maximum extent, consider the problem that the wind power and water vapor propagation degree at different positions in the warehouse cause differences in the damp degree, and improve the detection accuracy.

[0049] In step S2 of the embodiment, a sampling instrument is arranged at a distance L meters from the warehouse door in the warehouse, and M kilograms of building materials are laid in the sampling instrument, the sampling amount of the building materials being sufficient to stack a certain height in the sampling instrument, so that the system can detect the moisture change of the building materials in the sampling instrument. The sampling module divides the sampling instrument into two layers according to the mass of the building materials, the upper layer of the sampling instrument being in contact with the air, and the height of the upper and lower layers being h. The building materials in the sampling instrument gradually absorb water vapor, when the mass of the upper layer exceeds Q1 kilograms, the moisture ratio of the upper layer at this time is The amount of water vapor absorbed by the upper layer of building materials affects the building effect, and corresponding air drying operation needs to be performed before use. At this time, the mass of the lower layer is Q2, and the moisture ratio of the lower layer at this time is The time displayed by the timing unit is S1; when the mass of the upper layer exceeds P1 kilograms, the moisture ratio of the upper layer at this time is The amount of water vapor absorbed by the upper layer of building materials seriously affects the building effect, and this part cannot be used. The time displayed by the timing unit is S2.

[0050] When water vapor enters the building material container, the net weight of the container increases, and the mass of the upper layer of the sampling instrument exceeds Q1 kilograms. At this time, the mass of the water vapor in the upper layer of the sampling instrument is (Q1-1) kilograms, and the moisture ratio of the upper layer of the sampling instrument is The calculation method of other moisture ratios in the sampling module is the same.

[0051] In the embodiment, step S3 further comprises:

[0052] Step S31: The building material batch is transported in a container, the height of the divided container is H, and the container is divided into layers, and the height of each layer is h. The moisture ratio of the building materials in the Cth row and the Kth layer in the warehouse when the building materials in the first layer reach the safe moisture level line is wherein 0 C and K are positive integers.

[0053] The water vapor invades the building materials in a wave-like manner, and when the mass of the container is mQ1, the average mass of water vapor absorbed by all the building materials in the surface container reaches the level affecting the building effect. However, due to the distance from the air in the container, the building materials in different positions in the container absorb water vapor in different ways. The building materials layer close to the air absorbs more water vapor than the rated value affecting the building effect, and the building materials layer far from the air absorbs less water vapor than the rated value of the building materials.

[0054] Step S32: The time when the building materials in the second layer reach the safe moisture level line is The time when the building materials in the Kth layer reach the safe moisture level line is

[0055]

[0056] In the sampling module, when the first layer of building material reaches the safe moisture level line, the proportional difference of the second layer of building material from the safe moisture level line is (η1-η2), and since the time for the first layer of building material to reach the safe moisture level line from dry is S1, the rate of the first layer of building material and the second layer of building material reaching the safe moisture level line from dry is approximately uniform, so after the first layer of building material reaches the safe moisture level line, the second layer of building material still needs to spend time to reach the safe moisture level line;

[0057] Similarly, when the K-1 layer of building material reaches the safe moisture level line, the proportional difference of the K layer of building material from the safe moisture level line is (η1-λ), and since the time for the K-1 layer of building material to reach the safe moisture level line from dry is S1, the rate of the K-1 layer of building material and the K layer of building material reaching the safe moisture level line from dry is approximately uniform, so after the K-1 layer of building material reaches the safe moisture level line, the K layer of building material still needs to spend time to reach the safe moisture level line;

[0058] The time for the second layer of building material to reach the dangerous moisture level line is The time for the K layer of building material to reach the dangerous moisture level line is

[0059] Step S33: When the degree F1 of the decrease in the external temperature within 1 hour is higher than 50% of the temperature difference F of the highest temperature of the day, where the temperature difference is the highest temperature of the day minus the current lowest temperature, the system determines that the speed of the water vapor invading the building material changes significantly, and within B hours before the external temperature returns to 50% of the current temperature change, the speed of the water vapor invading the building material is calculated as times the current speed of the water vapor invading the building material, at which time the time for the K layer of building material to reach the safe moisture level line is Meanwhile, the time for the K layer of building material to reach the dangerous moisture level line is

[0060] Under normal circumstances, the rate of the building material being invaded by water vapor between dry and the safe moisture level line is So the ratio of the additional invasion within B hours at the increased rate of the water vapor invading the building material is Similarly, the rate of the building material being invaded by water vapor between the safe moisture level line and the dangerous moisture level line is So the ratio of the additional invasion within B hours at the increased rate of the water vapor invading the building material is

[0061]

[0062] Since the exposure of the loading container to the water vapor is much faster than the penetration of the water vapor into the container, the moisture of the building materials at different heights in the loading container will be different over time. By considering the dynamic influence of the external temperature on the rate of water vapor invasion of the building materials, the accuracy of the monitoring of the moisture level of the building materials in the loading container is further ensured, and the problem of inaccurate monitoring caused by monitoring the overall moisture level of the loading container is solved. At the same time, the use of the building materials is timely regulated, the quality requirements of the construction are improved, and the damage and waste of the building materials caused by the lack of timely and accurate monitoring are minimized.

[0063] In the present embodiment, step S4 further comprises:

[0064] Step S41: The requirement for the stacking of the building materials in the warehouse is to allow up to A% of the building materials to be damaged, and after the goods of the building material batch are stored in the container, The building materials will reach the safe moisture level line after days; The building materials will reach the dangerous moisture level line after days;

[0065] Step S42: When the ratio of the building materials in the container between the dry and the safe moisture level line is higher than 70%, it is judged that the dryness of the current container is good, and other building materials are preferentially used;

[0066] Step S43: When the ratio of the building materials in the container between the dry and the safe moisture level line is lower than 70%, it is judged that the current container is wet, and the building materials are preferentially used;

[0067] When the ratio of the building materials in the container between the safe moisture level line and the dangerous moisture level line is higher than 50% and the ratio of the building materials in the dangerous moisture level line exceeds 0.8A%, the staff at the delivery location is prompted by the communication module to reduce the transportation amount of the building materials and increase the transportation frequency of the building materials under the condition that the total amount of the building materials transported is unchanged.

[0068] The stacking analysis module classifies and processes the building materials in the warehouse according to the prediction results of the moisture analysis module, effectively reduces the adverse effects of the differences in moisture caused by different transportation times and different storage positions in the warehouse, and the prompt of the communication module to the staff at the delivery location can timely control the amount of the building materials in the warehouse, so as to ensure that the use amount and the storage amount of the building materials can be kept in good balance.

[0069] It is to be noted that, in the present text, relational terms such as first and second and the like can be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variations thereof, are intended to cover a non-exclusive inclusion such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.

[0070] Finally, it should be noted that the above-mentioned only constitutes the preferred embodiments of the present application and is not intended to limit the present application. Although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art will still be able to modify the technical solutions described in the foregoing embodiments or make equivalent replacements to some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A method for operating a warehouse management system based on big data communication, characterized in that: The warehouse management system based on big data communication includes a data acquisition module, a stacking control module, and an output module. The data acquisition module is used to acquire information about the construction land and the stacked building materials. The stacking control module is used to control the quantity and transportation rate of stacked building materials based on the monitoring results of the moisture content of the stacked building materials. The output module is used to output the monitoring results of the stacking control module and control the detailed information of the delivery and use of building materials. The operation method of the warehouse management system mainly includes the following steps: Step S1: The transport vehicle transports the building materials to the construction site, and the workers pour the building materials into the loading containers. The data acquisition module obtains the distribution of building material containers in the warehouse through the loading information acquisition module. Step S2: Staff extract building materials as samples, and the sampling module conducts sampling experiments on the building materials to obtain the monitoring results of moisture absorption of the building materials; Step S3: The moisture analysis module monitors the moisture content of the building materials inside the container and provides detailed information on the time it takes for the building materials to become damp. Step S4: The stacking analysis module controls the detailed information on the transportation and use of building materials based on the monitoring results of the moisture content of the building materials; Step S5: Establish a system for recording and returning building materials, and ensure the rational use and safe return of building materials based on the planning results of the output module; In step S1, the data acquisition module analyzes the contact area between the warehouse and the outside world, groups the building material containers stacked in the warehouse, and arranges them from the closest to the warehouse door to the inside of the warehouse according to the arrangement of the building material containers in the warehouse. The distances from the warehouse door are R1, R2...RV, where V is the number of columns of building material containers from the door opening side to the other side in the top view of the warehouse. In step S2, a sampling instrument is set up L meters away from the warehouse entrance inside the warehouse. M kilograms of building materials are laid flat in the sampling instrument. The sampling module divides the sampling instrument into upper and lower layers according to the mass of the building materials. The upper layer of the sampling instrument is in contact with the air. The height of both the upper and lower layers is h. The building materials in the sampling instrument gradually absorb moisture. When the mass of the upper layer exceeds Q1 kilograms, the moisture content of the upper layer is... The amount of moisture absorbed by the upper building materials affects the building's appearance. The mass of the lower layer is Q2. The moisture content of the lower layer is then determined. The timing unit displays the time as S1; when the mass of the upper layer exceeds P1 kg, the moisture content of the upper layer is... The amount of water vapor absorbed by the upper building materials is determined to significantly affect the building's appearance, and the time displayed by the timing unit is S2. Step S3 further includes: Step S31: The building materials are transported in batches and then repackaged into containers with a height of H. The containers are then divided into... The warehouse has layers, each with a height of h. The moisture content of the building materials in the C-th row and K-th layer is calculated when the first layer reaches the safe moisture level. ,in C and K are positive integers; Step S32: The time required for the building materials of the second layer to reach the safe moisture level is... The time it takes for the building materials of the Kth floor to reach the safe moisture level. ; The time it takes for the building materials on the second floor to reach the dangerous dampness level is... The time it takes for the building materials on the Kth floor to reach the dangerous dampness level is... ; Step S33: When the outside temperature drops by more than 50% of the daily maximum temperature difference F within one hour (F1), the system determines that the rate of water vapor intrusion into building materials has changed significantly. Within the next B hours before the outside temperature returns to 50% of the current temperature change, the rate of water vapor intrusion into building materials is calculated as the current rate of water vapor intrusion into building materials. This is the time it takes for the building materials of the Kth floor to reach the safe moisture level. Meanwhile, the time it takes for the building materials on the Kth floor to reach the dangerous dampness level is... ; Step S4 further includes: Step S41: The requirement for storing building materials in the warehouse is that a maximum of A% of the building materials may be damaged. Building materials shipped in batches should be stored in containers afterward. Building materials will The humidity level has reached the safe level for humidity. Building materials will The humidity level has reached the dangerous level. Step S42: When the ratio of the dryness to the safe moisture level of the building materials in the container is higher than 70%, it is determined that the dryness of the current container is good, and other building materials should be used first. Step S43: When the ratio of the dryness to the safe moisture level of the building materials in the container is less than 70%, it is determined that the container is damp, and the building materials should be used first. When the proportion of building materials in the container that are between the safe moisture level and the hazardous moisture level is higher than 50%, and the proportion of building materials that are at the hazardous moisture level exceeds 0.8A, the communication module will prompt the staff at the shipping location to reduce the amount of building materials transported and increase the frequency of building materials transported, while ensuring that the total amount of building materials transported remains unchanged.

2. The operation method of a warehouse management system based on big data communication according to claim 1, characterized in that: The data acquisition module includes a usage record acquisition module and a loading information acquisition module. The usage record acquisition module is used to acquire information on the building materials used; the loading information acquisition module is used to acquire detailed information on the warehouse storing the building materials and the containers loading the building materials.

3. The operation method of a warehouse management system based on big data communication according to claim 2: the stacking control module includes a sampling module, a moisture analysis module, and a stacking analysis module; the sampling module is used to obtain the moisture content of building materials under the influence of different parameters through pre-detection of building materials in the warehouse; the moisture analysis module is used to predict the time and rate at which building materials reach different moisture levels based on the pre-detection results of the sampling module; the stacking analysis module is used to formulate a plan for the stacking and subsequent processing of building materials based on the monitoring results of the moisture analysis module.

4. The operation method of a warehouse management system based on big data communication according to claim 3, characterized in that: The moisture analysis module further includes a moisture classification submodule and a moisture prediction analysis submodule. The moisture analysis submodule is used to analyze different states of moisture content of building materials; the moisture prediction submodule is used to obtain relevant parameters of moisture content of building materials under different states.

5. The operation method of a warehouse management system based on big data communication according to claim 4, characterized in that: The output module includes a conveying control module and a communication module. The conveying control module is used to adjust and control the conveying scheme of building materials in real time; the communication module is used to prompt staff to make reasonable use of the building materials in the warehouse.

Citation Information

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