Temperature monitoring and early warning method, device and equipment for constant-temperature room and medium

By deploying multiple temperature sensors and MCU modules inside the constant temperature chamber, real-time automated monitoring of the chamber's temperature was achieved. This solved the delays and oversights of traditional manual monitoring, improved the real-time performance and reliability of temperature monitoring, and prevented risks caused by abnormal temperatures.

CN121409427APending Publication Date: 2026-01-27RAMAXEL TECH SHENZHEN
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Patent Information

Application Number
CN202511772689.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-28
Publication Date
2026-01-27

AI Technical Summary

Technical Problem

Traditional temperature monitoring methods for constant temperature rooms cannot achieve real-time, automated monitoring and timely early warning of temperature anomalies, resulting in ineffective monitoring of products under overheating or low-temperature conditions, which affects product quality and safety.

Method used

By deploying multiple temperature sensors and MCU modules in the constant temperature room, temperature data is collected and wirelessly transmitted to the temperature receiving station, then uploaded to the monitoring platform for real-time comparison. If the temperature exceeds the range, an early warning email is immediately triggered.

Benefits of technology

It enables 24/7 automated monitoring of the temperature in the constant temperature room, improving real-time performance, accuracy, and reliability, and promptly preventing quality risks and equipment losses caused by abnormal temperatures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a temperature monitoring and early warning method, device and equipment for a constant-temperature room and a medium, and relates to the technical field of temperature monitoring, and the method comprises the steps: setting a temperature range of the constant-temperature room and an early warning mail receiver in a monitoring platform; acquiring temperature data in the constant temperature room through a temperature acquisition module deployed in the constant temperature room; sending the temperature data to a preset temperature receiving station through the temperature acquisition module; uploading the temperature data to a preset monitoring platform through the temperature receiving station; and comparing the received temperature data with the temperature range through the monitoring platform, and automatically triggering an early warning mail to an early warning mail receiver when the temperature data exceeds the temperature range. According to the invention, delay and omission of traditional manual monitoring are effectively overcome, all-weather unattended operation is realized, real-time performance, accuracy and reliability of temperature monitoring are obviously improved, and quality risk and equipment loss caused by abnormal temperature can be timely prevented.
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Description

Technical Field

[0001] This invention relates to the field of temperature monitoring technology, and in particular to a method, device, equipment and medium for temperature monitoring and early warning in a constant temperature room. Background Technology

[0002] In current industrial production and product testing, temperature-controlled chambers are widely used for product aging tests and environmental simulations. Traditional monitoring methods mainly rely on manual periodic inspections, measurements, and manual recording. This manual monitoring mode has significant limitations; operators cannot monitor the continuous changes in the temperature inside the temperature-controlled chamber in real time, making it difficult to capture the specific time points of abnormal temperature fluctuations.

[0003] When sustained low or high temperatures occur in the temperature control chamber, the lack of an effective real-time feedback mechanism often prevents relevant personnel from being notified and taking immediate intervention. If the high temperature persists for an extended period, it may cause the tested product to overheat and be damaged, even affecting its lifespan. Conversely, in low-temperature conditions, the purpose of effectively screening for substandard products cannot be achieved, thus affecting the final product quality and increasing the risk of customer complaints.

[0004] Therefore, the main problem with the existing technology is that the temperature monitoring method of the constant temperature room, which relies on manual monitoring, cannot achieve real-time and automated temperature status monitoring and abnormal warning, making it difficult to guarantee the reliability of the testing process and the stability of product quality. Summary of the Invention

[0005] This invention provides a method, device, equipment, and medium for monitoring and early warning of temperature in a constant temperature room. The technical problem it aims to solve is that traditional methods for monitoring temperature in constant temperature rooms cannot achieve real-time, automated monitoring of temperature anomalies and timely early warning.

[0006] In a first aspect, embodiments of the present invention provide a method for monitoring and issuing early warning of temperature in a constant-temperature room, comprising: Set the temperature range for the constant temperature room and the recipients of alert emails in the monitoring platform; Temperature data inside the constant temperature room is collected by a temperature acquisition module deployed inside the room. The temperature data is sent to a preset temperature receiving station via the temperature acquisition module. The temperature data is uploaded to a preset monitoring platform via the temperature receiving station; The monitoring platform compares the received temperature data with the temperature range, and automatically triggers an alert email to the recipient when the temperature data exceeds the temperature range.

[0007] A further technical solution is that the temperature acquisition module includes an MCU module and a temperature sensor connected to the MCU module; The temperature sensors are multiple, and the multiple temperature sensors are evenly distributed in the constant temperature room.

[0008] A further technical solution is that the step of sending the temperature data to a preset temperature receiving station through the temperature acquisition module includes: The temperature data is wirelessly transmitted to the temperature receiving station via the Wi-Fi function of the MCU module.

[0009] A further technical solution is that the temperature data inside the constant temperature room is collected by a temperature acquisition module deployed inside the constant temperature room, including: Temperature data inside the constant temperature room is periodically collected by multiple temperature sensors at preset time intervals. The temperature data includes temperature sampling values ​​from multiple temperature sensors.

[0010] A further technical solution is that the monitoring platform compares the received temperature data with the temperature range, and automatically triggers an alert email to the recipient when the temperature data exceeds the temperature range, including: The system acquires the average temperature value from multiple temperature sensors, compares the average temperature value with the temperature range, and automatically triggers an alert email to the recipient when the average temperature value exceeds the temperature range.

[0011] A further technical solution is that the method further includes: The received temperature data is displayed in real time through the monitoring platform.

[0012] A further technical solution is that the warning email includes abnormal temperature information, the number of the constant temperature room where the temperature abnormality occurred, the number of the temperature acquisition module, and the duration of the temperature abnormality.

[0013] Secondly, embodiments of the present invention also provide a constant temperature room temperature monitoring and early warning device, which includes a unit for performing the above-described method.

[0014] Thirdly, embodiments of the present invention also provide a computer device, which includes a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the above-described method.

[0015] Fourthly, embodiments of the present invention also provide a computer-readable storage medium storing a computer program that, when executed by a processor, can implement the above-described method.

[0016] This invention provides a method, apparatus, device, and medium for monitoring and issuing early warnings for constant temperature chambers. The method includes: setting a temperature range for the constant temperature chamber and a recipient for early warning emails in a monitoring platform; collecting temperature data within the constant temperature chamber using a temperature acquisition module deployed within the chamber; sending the temperature data to a preset temperature receiving station via the acquisition module; uploading the temperature data to a preset monitoring platform via the receiving station; and comparing the received temperature data with the temperature range on the monitoring platform, automatically triggering an early warning email to the recipient when the temperature data exceeds the range. By setting temperature thresholds and an early warning mechanism, automated monitoring of the constant temperature chamber is achieved. Temperature data is continuously acquired using the deployed temperature acquisition module and transmitted to the monitoring platform for real-time comparison and analysis. Once an exceedance is detected, an email early warning is automatically triggered. This method effectively overcomes the delays and oversights of traditional manual monitoring, achieving 24 / 7 unattended operation, significantly improving the real-time performance, accuracy, and reliability of temperature monitoring, and enabling timely prevention of quality risks and equipment losses caused by abnormal temperatures. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 A flowchart illustrating a method for monitoring and issuing an early warning for a constant temperature room, provided in an embodiment of the present invention; Figure 2 This is a schematic block diagram of a computer device provided in an embodiment of the present invention. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] It should be understood that, when used in this specification and the appended claims, the terms "comprising" and "including" indicate the presence of the described features, integrals, steps, operations, elements and / or components, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or collections thereof.

[0021] It should also be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the invention. As used in this specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise.

[0022] It should also be further understood that the term "and / or" as used in this specification and the appended claims refers to any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0023] As used in this specification and the appended claims, the term "if" may be interpreted, depending on the context, as "when," "once," "in response to determination," or "in response to detection." Similarly, the phrase "if determined" or "if [described condition or event] is detected" may be interpreted, depending on the context, as "once determined," "in response to determination," "once [described condition or event] is detected," or "in response to detection of [described condition or event]."

[0024] Please see Figure 1 This invention provides a method for monitoring and issuing early warnings of temperature in a constant-temperature room, the method comprising the following steps: S1, set the temperature range of the constant temperature room and the recipients of the warning emails in the monitoring platform.

[0025] In practice, temperature ranges and recipients of alert emails are set on the monitoring platform, establishing clear monitoring benchmarks and response targets for the entire system. This transforms vague human experience judgments into precise digital thresholds, providing a unified execution standard for all subsequent automated operations. This fundamentally eliminates monitoring deviations caused by different judgment standards among different personnel and empowers the system with the authority to make autonomous decisions.

[0026] S2 collects temperature data inside the constant temperature room through a temperature acquisition module deployed inside the constant temperature room.

[0027] In practice, temperature data is automatically collected by temperature acquisition modules deployed in a temperature-controlled room, replacing traditional manual handheld instrument measurements and recording with machine sensing. This ensures the continuity and objectivity of data acquisition. The temperature acquisition modules are unaffected by time or human fatigue, continuously acquiring ambient temperature information, thus capturing fleeting temperature anomalies that occur within the intervals of regular manual inspections. This significantly improves the coverage and data density of monitoring, providing data support for the timely detection of potential risks.

[0028] In some preferred embodiments, the temperature acquisition module includes an MCU module and a temperature sensor connected to the MCU module; the number of temperature sensors is multiple, and the multiple temperature sensors are evenly distributed in the constant temperature room.

[0029] In specific implementation, the hardware configuration of the temperature acquisition module is defined, and particular emphasis is placed on using multiple temperature sensors evenly distributed within the constant temperature room, resulting in a significant improvement in the comprehensiveness and accuracy of monitoring. The MCU module can specifically be a NodeMCU, and the temperature sensor model can be DS18B20; however, this invention does not specifically limit these aspects.

[0030] The interior of a temperature-controlled room may exhibit uneven temperature distribution due to airflow, equipment heating, or location differences. A single sensor can only reflect the local temperature at its installation point and cannot represent the average thermal state of the entire space. By deploying multiple evenly distributed sensors, the system can simultaneously acquire temperature samples from different locations within the room, thereby constructing a multi-dimensional, three-dimensional temperature field distribution map. For example, it can simultaneously monitor the temperature of corners, the center, air vents, and return air vents. This allows the system to detect "dead zones" of localized overheating or undercooling, areas that would be undetectable under single-point monitoring. Therefore, this embodiment overcomes the limitations of single-point monitoring, obtaining more representative and global environmental temperature information through multi-point spatial deployment. This significantly reduces the risk of misjudgment or missed detection due to improper selection of monitoring points, providing a more solid and reliable data foundation for subsequent accurate judgment and early warning.

[0031] In some preferred embodiments, the above step "collecting temperature data in the constant temperature room by deploying a temperature acquisition module in the constant temperature room" specifically includes the following steps: periodically collecting temperature data in the constant temperature room through multiple temperature sensors at preset time intervals, wherein the temperature data includes temperature sampling values ​​from multiple temperature sensors.

[0032] In practical implementation, the system periodically collects data from multiple sensors at preset time intervals (e.g., 10 seconds), and explicitly includes sampled values ​​from multiple sensors. This achieves the technical effect of continuous and synchronous monitoring of temperature in both temporal and spatial dimensions. The fixed time interval acquisition establishes the ability to track temperature changes, allowing the system not only to know the temperature value at a specific moment but also to depict the trend of temperature changes over time through a series of time-series data. For example, it can observe whether the temperature drifts slowly or changes abruptly. Simultaneously acquiring values ​​from multiple sensors provides a spatial snapshot of the temperature, capturing the temperature status at different locations within the room at the same time. By combining the spatiotemporal dimensions, the system can comprehensively analyze complex operating conditions such as "the temperature in the northeast corner of the room continuously and slowly increases, while other areas remain stable," which is impossible with single-point, single-measurement analysis. Therefore, this embodiment constructs a spatiotemporal variation model of the temperature field within a constant-temperature room through periodic multi-point synchronous acquisition, providing rich and structured data support for in-depth analysis of abnormal temperature patterns and locating the source of faults, enhancing the system's insight and predictive capabilities.

[0033] S3, the temperature data is sent to a preset temperature receiving station through the temperature acquisition module.

[0034] In practice, the temperature acquisition module sends data to a pre-set temperature receiving station, establishing a reliable transmission channel from the monitoring point to the data aggregation node. This enables remote monitoring and initial centralization of the data, allowing it to transcend the physical space limitations it originates from. This means monitoring personnel can acquire data remotely from a control room without being physically present in potentially hot or noisy constant-temperature rooms. This not only improves the working environment but, more importantly, enables centralized management of monitoring positions. A single center can simultaneously manage multiple constant-temperature rooms located in different areas, significantly improving management efficiency and reducing labor costs.

[0035] In some preferred embodiments, the above step "sending the temperature data to a preset temperature receiving station through the temperature acquisition module" specifically includes the following steps: wirelessly sending the temperature data to the temperature receiving station through the Wi-Fi function of the MCU module.

[0036] In practice, temperature data is wirelessly transmitted to the temperature receiving station via the Wi-Fi function of the MCU module, resulting in significant improvements in system deployment flexibility and scalability. Compared to traditional wired transmission solutions, Wi-Fi wireless transmission avoids complex wall drilling and wiring construction within the constant temperature room. This not only reduces installation costs and engineering complexity but, more importantly, allows the temperature acquisition module to be placed anywhere in the room, freed from the constraints of cables, according to the actual thermal field distribution. For example, the module can be temporarily placed next to a newly added device under test for targeted monitoring, or its position can be easily adjusted to optimize the monitoring network. Furthermore, this wireless characteristic facilitates system expansion; when additional monitoring points are needed, only a new wireless module needs to be configured for quick access, without modifying existing wiring. Therefore, this embodiment, by employing wireless transmission, achieves decoupling of the monitoring system's hardware layer, giving the system high flexibility and maintainability, enabling it to quickly adapt to the monitoring needs of constant temperature rooms of different sizes and layouts.

[0037] S4, the temperature data is uploaded to the preset monitoring platform through the temperature receiving station.

[0038] In practice, the temperature receiving station uploads data to the monitoring platform. This step completes the data aggregation from the edge to the cloud platform or central server, realizing the digitalization and centralized management of all monitoring information. As a powerful data processing hub, the monitoring platform can store, analyze, and visualize temperature data from multiple sources, providing managers with a global situational awareness. This enables trend analysis, performance evaluation, and optimization based on historical data, elevating monitoring from a passive response to a proactive management level.

[0039] It's important to note that the temperature receiving station is a crucial data relay and processing node, bridging the gap between upstream and downstream systems. Its core function is to receive temperature data wirelessly transmitted from one or more temperature acquisition modules deployed within a temperature-controlled chamber, and to perform initial aggregation and processing of this data. Subsequently, the temperature receiving station reliably and stably uploads the aggregated temperature data to a remote monitoring platform via its wired network interface. Physically, this device forms a bridge connecting the front-end sensing network and the back-end management system; logically, it achieves communication protocol adaptation and data stream integration. This specially designed intermediate node not only ensures the reliability of the data link in complex industrial environments but also decouples the front-end wireless sensor network from the back-end wired backbone network, thereby enhancing the flexibility, scalability, and anti-interference capabilities of the entire monitoring system architecture.

[0040] S5, the monitoring platform compares the received temperature data with the temperature range, and automatically triggers an alert email to the recipient when the temperature data exceeds the temperature range.

[0041] In practice, the monitoring platform compares the received data with preset ranges and automatically triggers alert emails when limits are exceeded, achieving full automation and intelligence from perception to decision-making to execution. The system can make judgments without interruption, and once an anomaly is detected, it immediately issues an alert via email, with a response speed far exceeding any manual process. This real-time early warning mechanism greatly reduces the time window from the occurrence of a fault to personnel intervention, enabling maintenance personnel to take remedial measures before product damage or test failure. This effectively avoids mass product scrapping, performance degradation, and even safety accidents caused by temperature runaway, directly ensuring the continuity of production activities and the stability of product quality.

[0042] In some preferred embodiments, the above step "compare the received temperature data with the temperature range through the monitoring platform, and automatically trigger an alert email to the alert email recipient when the temperature data exceeds the temperature range" specifically includes the following steps: obtaining the average temperature value of temperature sampling values ​​from multiple temperature sensors, comparing the average temperature value with the temperature range, and automatically triggering an alert email to the alert email recipient when the average temperature value exceeds the temperature range.

[0043] In practice, the monitoring platform is limited to acquiring the average value of multiple temperature sensors, and judgments and warnings are made based on this average value. This improves the intelligence and anti-interference capability of the system's decision-making and effectively prevents false alarms. In the context of multi-point monitoring, directly using data from any single point may result in abnormal readings that do not represent the overall environment due to instantaneous disturbances at that point (such as a sensor briefly coming into contact with a foreign object or a brief airflow effect), leading to system misjudgment. By calculating the average temperature value, the system performs a data fusion process, which can smooth out the accidental fluctuations or malfunctions of individual sensors. The resulting average value more scientifically reflects the overall macroscopic thermal state of the constant temperature chamber. For example, even if a sensor reports an abnormally high value for some reason, as long as the readings of other sensors are normal, the average value may still be within a reasonable range, and the system will not trigger unnecessary warnings, thus ensuring the seriousness and accuracy of the warning signals.

[0044] This embodiment introduces a data fusion algorithm, which upgrades the system's judgment basis from raw, potentially noisy single-point data to statistical quantities that better characterize the overall situation, significantly improving the reliability and robustness of early warning decisions.

[0045] In some preferred embodiments, the method further includes: displaying the received temperature data in real time through the monitoring platform.

[0046] In practical implementation, a step was added to display the received temperature data in real time through a monitoring platform, enhancing the system's human-computer interaction and status transparency. While the core value of the system lies in automatic early warning, real-time data visualization plays an irreplaceable role in enabling maintenance personnel to grasp the overall situation, conduct daily inspections, and perform post-event analysis. Operators can intuitively see the current temperature values ​​or curves at various points on a large screen in the remote monitoring room without entering the temperature control room, forming a "visual confirmation" of the system's operating status. Secondly, it supports historical tracking and data analysis; the continuously displayed data forms a historical record, which becomes an important basis when it is necessary to analyze the cause of a particular early warning or assess the long-term performance of the temperature control room. In addition, during system debugging or maintenance, real-time display can help engineers quickly verify whether the sensors and communication links are working properly.

[0047] Therefore, this embodiment adds a human-computer interaction window to the automated monitoring system, which not only enhances the user's sense of trust and control over the system, but also provides valuable data visualization tools for operation and maintenance management, and realizes an effective combination of automated monitoring and manual supervision and management.

[0048] In some preferred embodiments, the warning email includes abnormal temperature information, the number of the constant temperature room where the temperature abnormality occurred, the number of the temperature acquisition module, and the duration of the temperature abnormality.

[0049] In specific implementation, the content of the warning email was specifically defined, requiring it to include abnormal temperature information, the constant temperature room number, the temperature acquisition module number, and the duration of the abnormality. This significantly improves the practicality of the warning information and the efficiency of operation and maintenance response. A structured email with rich content serves far more than simply informing you of an "abnormality"; it directly provides preliminary diagnosis and action guidance. Including the constant temperature room number and the temperature acquisition module number allows recipients to immediately locate the fault location and equipment, eliminating tedious troubleshooting. This information is crucial, especially in scenarios managing multiple constant temperature rooms. Including the duration of the abnormality helps determine the severity and urgency of the fault, such as whether the temperature has just exceeded the limit or has been sustained for ten minutes, directly impacting the priority of handling. Clear abnormal temperature information is the basis for determining the nature of the fault. Therefore, this embodiment upgrades the warning email from a simple alarm to a highly efficient diagnostic report. Recipients can quickly and accurately understand the full picture of the fault based on the email content and directly take the appropriate tools to the correct location for handling, minimizing the decision-making and preparation time from receiving the warning to initiating effective maintenance. This allows for faster containment of the fault's impact and ensures production safety.

[0050] This invention proposes a method for monitoring and issuing early warnings for constant temperature chambers, comprising: setting a temperature range for the constant temperature chamber and a recipient for early warning emails in a monitoring platform; collecting temperature data within the constant temperature chamber using a temperature acquisition module deployed within the chamber; sending the temperature data to a preset temperature receiving station via the acquisition module; uploading the temperature data to a preset monitoring platform via the receiving station; comparing the received temperature data with the temperature range on the monitoring platform, and automatically triggering an early warning email to the recipient when the temperature data exceeds the range. By setting temperature thresholds and an early warning mechanism, automated monitoring of the constant temperature chamber temperature is achieved. Temperature data is continuously acquired using the deployed temperature acquisition module and transmitted to the monitoring platform for real-time comparison and analysis. Once an exceedance is detected, an email early warning is automatically triggered. This method effectively overcomes the delays and oversights of traditional manual monitoring, achieving 24 / 7 unattended operation, significantly improving the real-time performance, accuracy, and reliability of temperature monitoring, and enabling timely prevention of quality risks and equipment losses caused by abnormal temperatures.

[0051] Corresponding to the above-described method for monitoring and warning the temperature of a constant-temperature room, the present invention also provides a device for monitoring and warning the temperature of a constant-temperature room. This device includes a unit for performing the above-described method for monitoring and warning the temperature of a constant-temperature room, and can be configured in a terminal or server. Specifically, the device includes: The setting unit is used to set the temperature range of the constant temperature room and the recipients of the warning emails in the monitoring platform; The data acquisition unit is used to acquire temperature data inside the constant temperature room through a temperature acquisition module deployed inside the constant temperature room; The transmitting unit is used to transmit the temperature data to a preset temperature receiving station through the temperature acquisition module; The uploading unit is used to upload the temperature data to a preset monitoring platform through the temperature receiving station; The early warning unit is used to compare the received temperature data with the temperature range through the monitoring platform, and automatically trigger an early warning email to the recipient of the early warning email when the temperature data exceeds the temperature range.

[0052] In some preferred embodiments, the temperature acquisition module includes an MCU module and a temperature sensor connected to the MCU module; The temperature sensors are multiple, and the multiple temperature sensors are evenly distributed in the constant temperature room.

[0053] In some preferred embodiments, sending the temperature data to a preset temperature receiving station via the temperature acquisition module includes: The temperature data is wirelessly transmitted to the temperature receiving station via the Wi-Fi function of the MCU module.

[0054] In some preferred embodiments, the step of collecting temperature data within the constant temperature room via a temperature acquisition module deployed within the room includes: Temperature data inside the constant temperature room is periodically collected by multiple temperature sensors at preset time intervals. The temperature data includes temperature sampling values ​​from multiple temperature sensors.

[0055] In some preferred embodiments, the step of comparing the received temperature data with the temperature range through the monitoring platform, and automatically triggering an alert email to the recipient when the temperature data exceeds the temperature range, includes: The system acquires the average temperature value from multiple temperature sensors, compares the average temperature value with the temperature range, and automatically triggers an alert email to the recipient when the average temperature value exceeds the temperature range.

[0056] In some preferred embodiments, it further includes: The display unit is used to display the received temperature data in real time through the monitoring platform.

[0057] In some preferred embodiments, the warning email includes abnormal temperature information, the number of the constant temperature room where the temperature abnormality occurred, the number of the temperature acquisition module, and the duration of the temperature abnormality.

[0058] It should be noted that those skilled in the art can clearly understand that the specific implementation process of the above-mentioned constant temperature room temperature monitoring and early warning device and each unit can be referred to the corresponding description in the foregoing method embodiments. For the sake of convenience and brevity, it will not be repeated here.

[0059] The aforementioned constant temperature room temperature monitoring and early warning device can be implemented as a computer program, which can, for example... Figure 2 It runs on the computer device shown.

[0060] Please see Figure 2 , Figure 2 This is a schematic block diagram of a computer device 500 provided in an embodiment of this application. The computer device 500 can be a terminal or a server. The server can be a standalone server or a server cluster composed of multiple servers.

[0061] The computer device 500 includes a processor 502, a memory, and a network interface 505 connected via a system bus 501. The memory may include a non-volatile storage medium 503 and internal memory 504.

[0062] The non-volatile storage medium 503 can store an operating system 5031 and a computer program 5032. When the computer program 5032 is executed, it causes the processor 502 to execute a method for monitoring and issuing early warnings for a constant temperature room.

[0063] The processor 502 provides computing and control capabilities to support the operation of the entire computer device 500.

[0064] The internal memory 504 provides an environment for the operation of the computer program 5032 in the non-volatile storage medium 503. When the computer program 5032 is executed by the processor 502, the processor 502 can execute a method for monitoring and warning the temperature of a constant temperature room.

[0065] The network interface 505 is used for network communication with other devices. Those skilled in the art will understand that the above structure is merely a block diagram of a portion of the structure related to the present application and does not constitute a limitation on the computer device 500 to which the present application is applied. A specific computer device 500 may include more or fewer components than shown in the figures, or combine certain components, or have different component arrangements.

[0066] The processor 502 is used to run a computer program 5032 stored in the memory to perform the following steps: Set the temperature range for the constant temperature room and the recipients of alert emails in the monitoring platform; Temperature data inside the constant temperature room is collected by a temperature acquisition module deployed inside the room. The temperature data is sent to a preset temperature receiving station via the temperature acquisition module. The temperature data is uploaded to a preset monitoring platform via the temperature receiving station; The monitoring platform compares the received temperature data with the temperature range, and automatically triggers an alert email to the recipient when the temperature data exceeds the temperature range.

[0067] In some preferred embodiments, the temperature acquisition module includes an MCU module and a temperature sensor connected to the MCU module; The temperature sensors are multiple, and the multiple temperature sensors are evenly distributed in the constant temperature room.

[0068] In some preferred embodiments, sending the temperature data to a preset temperature receiving station via the temperature acquisition module includes: The temperature data is wirelessly transmitted to the temperature receiving station via the Wi-Fi function of the MCU module.

[0069] In some preferred embodiments, the step of collecting temperature data within the constant temperature room via a temperature acquisition module deployed within the room includes: Temperature data inside the constant temperature room is periodically collected by multiple temperature sensors at preset time intervals. The temperature data includes temperature sampling values ​​from multiple temperature sensors.

[0070] In some preferred embodiments, the step of comparing the received temperature data with the temperature range through the monitoring platform, and automatically triggering an alert email to the recipient when the temperature data exceeds the temperature range, includes: The system acquires the average temperature value from multiple temperature sensors, compares the average temperature value with the temperature range, and automatically triggers an alert email to the recipient when the average temperature value exceeds the temperature range.

[0071] In some preferred embodiments, the method further includes: The received temperature data is displayed in real time through the monitoring platform.

[0072] In some preferred embodiments, the warning email includes abnormal temperature information, the number of the constant temperature room where the temperature abnormality occurred, the number of the temperature acquisition module, and the duration of the temperature abnormality.

[0073] It should be understood that in the embodiments of this application, the processor 502 may be a central processing unit (CPU), or it may be other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor may be a microprocessor or any conventional processor.

[0074] It will be understood by those skilled in the art that all or part of the processes in the methods of the above embodiments can be implemented by a computer program instructing related hardware. The computer program may be stored in a storage medium, which is a computer-readable storage medium. The computer program is executed by at least one processor in the computer system to implement the process steps of the embodiments of the above methods.

[0075] Therefore, the present invention also provides a storage medium. This storage medium can be a computer-readable storage medium. The storage medium stores a computer program. When executed by a processor, the computer program causes the processor to perform the following steps: Set the temperature range for the constant temperature room and the recipients of alert emails in the monitoring platform; Temperature data inside the constant temperature room is collected by a temperature acquisition module deployed inside the room. The temperature data is sent to a preset temperature receiving station via the temperature acquisition module. The temperature data is uploaded to a preset monitoring platform via the temperature receiving station; The monitoring platform compares the received temperature data with the temperature range, and automatically triggers an alert email to the recipient when the temperature data exceeds the temperature range.

[0076] In some preferred embodiments, the temperature acquisition module includes an MCU module and a temperature sensor connected to the MCU module; The temperature sensors are multiple, and the multiple temperature sensors are evenly distributed in the constant temperature room.

[0077] In some preferred embodiments, sending the temperature data to a preset temperature receiving station via the temperature acquisition module includes: The temperature data is wirelessly transmitted to the temperature receiving station via the Wi-Fi function of the MCU module.

[0078] In some preferred embodiments, the step of collecting temperature data within the constant temperature room via a temperature acquisition module deployed within the room includes: Temperature data inside the constant temperature room is periodically collected by multiple temperature sensors at preset time intervals. The temperature data includes temperature sampling values ​​from multiple temperature sensors.

[0079] In some preferred embodiments, the step of comparing the received temperature data with the temperature range through the monitoring platform, and automatically triggering an alert email to the recipient when the temperature data exceeds the temperature range, includes: The system acquires the average temperature value from multiple temperature sensors, compares the average temperature value with the temperature range, and automatically triggers an alert email to the recipient when the average temperature value exceeds the temperature range.

[0080] In some preferred embodiments, the method further includes: The received temperature data is displayed in real time through the monitoring platform.

[0081] In some preferred embodiments, the warning email includes abnormal temperature information, the number of the constant temperature room where the temperature abnormality occurred, the number of the temperature acquisition module, and the duration of the temperature abnormality.

[0082] The storage medium is a physical, non-transient storage medium, such as a USB flash drive, external hard drive, read-only memory (ROM), magnetic disk, or optical disk, or any other physical storage medium capable of storing program code. The computer-readable storage medium can be non-volatile or volatile.

[0083] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, computer software, or a combination of both. To clearly illustrate the interchangeability of hardware and software, the components and steps of the various examples have been generally described in terms of functionality in the foregoing description. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementations should not be considered beyond the scope of this invention.

[0084] In the several embodiments provided by this invention, it should be understood that the disclosed apparatus and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative. For example, the division of each unit is merely a logical functional division, and there may be other division methods in actual implementation. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed.

[0085] The steps in the method of this invention can be adjusted, merged, or reduced in order according to actual needs. The units in the device of this invention can be merged, divided, or reduced according to actual needs. Furthermore, the functional units in the various embodiments of this invention can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.

[0086] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a storage medium. Based on this understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, a terminal, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present invention.

[0087] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0088] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Since these modifications and variations fall within the scope of the claims and their equivalents, this invention also intends to include these modifications and variations.

[0089] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in the present invention, and these modifications or substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. A method for monitoring and issuing early warning of temperature in a constant-temperature room, characterized in that, include: Set the temperature range for the constant temperature room and the recipients of alert emails in the monitoring platform; Temperature data inside the constant temperature room is collected by a temperature acquisition module deployed inside the room. The temperature data is sent to a preset temperature receiving station via the temperature acquisition module. The temperature data is uploaded to a preset monitoring platform via the temperature receiving station; The monitoring platform compares the received temperature data with the temperature range, and automatically triggers an alert email to the recipient when the temperature data exceeds the temperature range.

2. The method for monitoring and early warning of temperature in a constant temperature room according to claim 1, characterized in that, The temperature acquisition module includes an MCU module and a temperature sensor connected to the MCU module; The temperature sensors are multiple, and the multiple temperature sensors are evenly distributed in the constant temperature room.

3. The method for monitoring and early warning of temperature in a constant temperature room according to claim 2, characterized in that, The step of sending the temperature data to a preset temperature receiving station through the temperature acquisition module includes: The temperature data is wirelessly transmitted to the temperature receiving station via the Wi-Fi function of the MCU module.

4. The method for monitoring and early warning of temperature in a constant temperature room according to claim 2, characterized in that, The process of collecting temperature data within the constant temperature room via a temperature acquisition module deployed inside the room includes: Temperature data inside the constant temperature room is periodically collected by multiple temperature sensors at preset time intervals. The temperature data includes temperature sampling values ​​from multiple temperature sensors.

5. The method for monitoring and early warning of temperature in a constant temperature room according to claim 4, characterized in that, The step of comparing the received temperature data with the temperature range through the monitoring platform, and automatically triggering an alert email to the recipient when the temperature data exceeds the temperature range, includes: The system acquires the average temperature value from multiple temperature sensors, compares the average temperature value with the temperature range, and automatically triggers an alert email to the recipient when the average temperature value exceeds the temperature range.

6. The method for monitoring and early warning of temperature in a constant temperature room according to claim 1, characterized in that, The method further includes: The received temperature data is displayed in real time through the monitoring platform.

7. The method for monitoring and early warning of temperature in a constant temperature room according to claim 1, characterized in that, The warning email includes information about the abnormal temperature, the number of the constant temperature room where the temperature abnormality occurred, the number of the temperature acquisition module, and the duration of the temperature abnormality.

8. A temperature monitoring and early warning device for a constant temperature room, characterized in that, Includes a unit for performing the method as described in any one of claims 1-7.

9. A computer device, characterized in that, The computer device includes a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the method as described in any one of claims 1-7.

10. A computer-readable storage medium, characterized in that, The storage medium stores a computer program that, when executed by a processor, can implement the method as described in any one of claims 1-7.