Workshop multi-point real-time temperature and humidity report generation system

By combining a multi-point temperature and humidity sensor system with a LabVIEW host computer, the limitations of traditional single-point temperature and humidity monitoring in workshops are solved, enabling comprehensive collection and efficient analysis of workshop temperature and humidity data, and improving the level of intelligent production management.

CN224217023UActive Publication Date: 2026-05-08ANQING NORMAL UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ANQING NORMAL UNIV
Filing Date
2025-09-11
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Traditional workshop temperature and humidity monitoring systems have limitations due to their single-point sensor monitoring, which cannot fully cover the production space, resulting in monitoring blind spots and making it difficult to meet the needs of efficient, accurate, and intelligent production management.

Method used

A multi-point temperature and humidity sensor system is adopted, combined with an infrared ranging sensor and a LabVIEW host computer. Through custom serial communication and report generation controls, real-time data acquisition, processing and generation of multifunctional reports are realized.

Benefits of technology

It enables comprehensive collection and analysis of workshop temperature and humidity data, breaking the limitations of single-point monitoring, improving the breadth and representativeness of data, reducing repetitive work for designers, and enhancing system design efficiency and user experience.

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Abstract

The utility model relates to the technical field of report generation systems, and discloses a workshop multi-point real-time temperature and humidity report generation system, which comprises a plurality of temperature sensors at different points, a plurality of humidity sensors at different points, a system starting switch, an infrared distance measuring sensor, a singlechip and a LabVIEW upper computer, the temperature sensors are used for collecting workshop temperature data and transmitting the workshop temperature data to the single chip microcomputer; the humidity sensors are used for collecting workshop humidity data and transmitting the workshop humidity data to the single chip microcomputer; and the system starting switch is used for switching the operation state of the system. According to the utility model, the system is equipped with a plurality of temperature sensors and humidity sensors at different points, so that the temperature and humidity data of multiple areas in a workshop can be comprehensively collected, the limitation of single-point monitoring is broken, the universality and representativeness of data acquisition are ensured, and meanwhile, the single-chip microcomputer is used as a core data processing and transmission hub, so that the cost is reduced. Signals transmitted by the sensors can be efficiently received and converted into effective data.
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Description

Technical Field

[0001] This utility model relates to the field of report generation system technology, and in particular to a real-time temperature and humidity report generation system for multiple locations in a workshop. Background Technology

[0002] In modern industrial production, the temperature and humidity parameters of the workshop environment have a crucial impact on the stability of the production process, product quality control, and normal equipment operation. Whether it is the manufacturing of precision electronic components, food and pharmaceutical processing, or heavy machinery production, continuous monitoring and control of workshop temperature and humidity are necessary to avoid problems such as product scrap, equipment failure, or production interruption caused by abnormal temperature and humidity. However, the current field of workshop temperature and humidity monitoring still has many technical shortcomings, making it difficult to meet the needs of efficient, accurate, and intelligent production management.

[0003] Traditional methods for monitoring temperature and humidity in workshops often rely on single-point sensors or manual inspections, which have significant limitations. Single-point sensors can only monitor the temperature and humidity in a localized area of ​​the workshop, failing to provide comprehensive coverage of the entire production space. This makes it difficult for staff to grasp the overall environmental conditions of the workshop and easily leads to monitoring blind spots. Utility Model Content

[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a real-time temperature and humidity report generation system for multiple locations in a workshop. This system collects and organizes temperature and humidity information from multiple different locations within an industrial production workshop. The host computer system utilizes highly adaptable XControl controls, enabling rapid retrieval during LabVIEW programming, reducing repetitive work for designers, and improving system design efficiency. The system also saves the temperature and humidity data for later retrieval.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A workshop multi-point real-time temperature and humidity report generation system includes multiple temperature sensors at different points, multiple humidity sensors at different points, a system start switch, an infrared ranging sensor, a microcontroller, and a LabVIEW host computer.

[0007] Multiple temperature sensors at different locations: used to collect and transmit workshop temperature data to the microcontroller;

[0008] Multiple humidity sensors at different locations: used to collect and transmit workshop humidity data to the microcontroller;

[0009] System start switch: Used to switch the system running state;

[0010] Infrared ranging sensor: Collects and sends the distance between two adjacent different point sensors to the microcontroller, so that the LabVIEW host computer can determine whether the data at that point is worth recording;

[0011] Microcontroller: Used to receive signals from sensors and convert these signals into data to send to the LabVIEW host computer;

[0012] LabVIEW host computer: Includes custom serial communication controls and report processing and generation controls, used to receive, process data and generate reports.

[0013] Furthermore, the custom serial communication control is used to receive data sent by the microcontroller in real time and transmit the data to the custom report processing and generation control.

[0014] Furthermore, the custom serial communication control is also used to send control signals to the microcontroller, enabling bidirectional signal transmission between the microcontroller and the LabVIEW host computer.

[0015] Furthermore, the custom report organization and generation control is used to display temperature and humidity data in the LabVIEW host computer, mark data that is close to or exceeds the threshold, filter low-value data, and perform data feature calculations on the selected sensor data through the built-in scientific calculator.

[0016] Furthermore, the custom report processing and generation control, through the built-in image display controls with multiple different functions, allows staff to observe, process, and compare real-time data, generate data change line charts, and manually or automatically generate different types of data reports.

[0017] Furthermore, the internal controls that enable the custom report organization and generation control include: a multi-column list box control, a boolean type function button, a switch interface tab control, a single data operation tab, a multi-data comparison tab, a data calculation tab, an enumeration control, a path selection control, and a time display control.

[0018] Furthermore, the multi-column list box control includes three attribute nodes: display row and column headers, row and column header strings, and data row and column, which are used to modify the display format of the multi-column list box.

[0019] Furthermore, the custom report organization and generation control also includes a waveform graph, which includes six attribute nodes: display grid, display X-axis scroll bar, modify border color, modify plotting area color, freely adjust ruler, and reverse coordinate axis, as well as an initialization method. These features are used to improve the user experience and enable selective comparative analysis of local and overall data.

[0020] This utility model has the following beneficial effects:

[0021] 1. In this utility model, the system is equipped with multiple temperature and humidity sensors at different locations, which can comprehensively collect temperature and humidity data from multiple areas in the workshop, breaking the limitations of single-point monitoring and ensuring the breadth and representativeness of data collection. At the same time, the STC89C52 microcontroller serves as the core data processing and transmission hub, which can efficiently receive signals from various sensors and convert them into valid data.

[0022] 2. In this utility model, staff can select any one or more sensor data points for comparison and analysis within the report processing and generation controls. This host computer system, composed of custom XControl controls, is suitable for most systems designed using LabVIEW software, facilitating quick access by staff, reducing system bloat, and allowing for the saving of historical data. Attached Figure Description

[0023] Figure 1 This is a structural diagram of a workshop multi-point real-time temperature and humidity report generation system proposed in this utility model;

[0024] Figure 2 This utility model presents a flowchart illustrating the program function implementation steps of a workshop multi-point real-time temperature and humidity report generation system. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0026] Reference Figures 1-2 The present invention provides an embodiment of a workshop multi-point real-time temperature and humidity report generation system, which includes multiple temperature sensors at different points, multiple humidity sensors at different points, a system start switch, an infrared ranging sensor, a microcontroller, and a LabVIEW host computer.

[0027] Multiple temperature sensors at different locations: used to collect and transmit workshop temperature data to the microcontroller;

[0028] Multiple humidity sensors at different locations: used to collect and transmit workshop humidity data to the microcontroller;

[0029] System start switch: Used to switch the system running state;

[0030] Infrared ranging sensor: Collects and sends the distance between two adjacent different point sensors to the microcontroller, so that the LabVIEW host computer can determine whether the data at that point is worth recording;

[0031] Microcontroller: Used to receive signals from sensors and convert these signals into data to send to the LabVIEW host computer;

[0032] LabVIEW host computer: Includes custom serial communication controls and report processing and generation controls, used to receive, process data and generate reports.

[0033] Preferably, the real-time temperature and humidity report generation system also includes input and output modules. The input module is an STC89C52 microcontroller, which can import data files collected by multiple different sensors during the production process into the LabVIEW host computer. The report processing and generation control is the output module, which is used to save report files and data images. Through the interaction of data files, the message transmission between the LabVIEW host computer and the production site is completed. The custom serial communication control is also used to send control signals to the microcontroller, realizing bidirectional signal transmission between the microcontroller and the LabVIEW host computer.

[0034] Reference Figures 1-2 The custom serial communication control is used to receive data sent by the microcontroller in real time and transmit the data to the custom report processing and generation control.

[0035] The custom serial communication control is also used to send control signals to the microcontroller, enabling bidirectional signal transmission between the microcontroller and the LabVIEW host computer.

[0036] The custom report organization and generation control is used to display temperature and humidity data on the LabVIEW host computer, mark data that is close to or exceeds the threshold, filter low-value data, and perform data feature calculations on the selected sensor data through the built-in scientific calculator.

[0037] The custom report organization and generation control, through the built-in image display controls with multiple different functions, allows staff to observe, organize, and compare real-time data, generate line charts of data changes, and manually or automatically generate different types of data reports.

[0038] The internal controls that enable the custom report organization and generation function include: multi-column list box control, boolean function button, interface tab switching control, single data operation tab, multi-data comparison tab, data calculation tab, enumeration control, path selection control, and time display control. The multi-column list box control includes three attribute nodes: display row and column headers, row and column header strings, and data row and column. These are optimized from the original attribute nodes and are used to modify the display format of the multi-column list box.

[0039] The custom report organization and generation control also includes waveform graphs. The waveform graphs include six attribute nodes: display grid, display X-axis scroll bar, modify border color, modify plotting area color, freely adjust ruler, and reverse coordinate axis, as well as an initialization method. These are used to improve the user experience and enable selective comparative analysis of local and overall data.

[0040] Preferably, such as Figure 2 As shown, the system's custom report processing and generation controls not only include real-time data report generation functionality, but also comprehensive data manipulation functions, encompassing three parts: data manipulation, modifying control properties, and calling control methods. Data manipulation includes: data sorting, data comparison, and data calculation.

[0041] The data sorting function supports sorting data in multi-column list boxes by row or column, or by overall numerical value. After sorting, the current data can be saved directly, or the sorted data can be generated into an image. The control supports comparison between multiple data images and has the function of saving images. The data calculation function mainly displays various characteristics of the data, such as mean, median, mode, variance, etc., and has a built-in scientific calculator to support various complex calculations. Calling control methods is mainly used to modify the control state, such as opening test mode, initializing the control, and disabling Boolean function buttons when needed by the host computer controller. Modifying control properties is mainly used to adjust the functions of various parts of the control, change the color of each part, the properties of the waveform graph axes, the properties of the waveform graph grid, and the display of the first row and first column of the multi-column list box. The data and images involved in the control can generate experimental reports in real time, displaying the data in the form of an Excel spreadsheet or Word document, and saving the images as pictures.

[0042] In summary, the workshop multi-point real-time temperature and humidity report generation system provided by this utility model can achieve the following functions: data collection and storage function in LabVIEW, data processing function, generation, comparison and storage of data images, calculation of data features, built-in scientific calculator, support for control method class calling, support for control property modification, and realize convenient calling of custom XControl controls in the system, which facilitates staff to write programs, reduces repetitive work, and can generate reports.

[0043] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A system for generating real-time temperature and humidity reports at multiple points in a workshop, characterized in that, It includes multiple temperature sensors at different locations, multiple humidity sensors at different locations, a system start switch, an infrared ranging sensor, a microcontroller, and a LabVIEW host computer; Multiple temperature sensors at different locations: used to collect and transmit workshop temperature data to the microcontroller; Multiple humidity sensors at different locations: used to collect and transmit workshop humidity data to the microcontroller; System start switch: Used to switch the system running state; Infrared ranging sensor: Collects and sends the distance between two adjacent different point sensors to the microcontroller, so that the LabVIEW host computer can determine whether the data at that point is worth recording; STC89C52 microcontroller: used to receive signals from sensors and convert these signals into data to send to the LabVIEW host computer; LabVIEW host computer: Includes custom serial communication controls and report processing and generation controls, used to receive, process data and generate reports.

2. The workshop multi-point real-time temperature and humidity report generation system according to claim 1, characterized in that: The custom serial communication control is used to receive data sent by the microcontroller in real time and transmit the data to the custom report processing and generation control.

3. The workshop multi-point real-time temperature and humidity report generation system according to claim 1, characterized in that: The custom serial communication control is also used to send control signals to the microcontroller, enabling bidirectional signal transmission between the microcontroller and the LabVIEW host computer.

4. The workshop multi-point real-time temperature and humidity report generation system according to claim 1, characterized in that: The custom report organization and generation control is used to display temperature and humidity data in the LabVIEW host computer, mark data that is close to or exceeds the threshold, filter low-value data, and perform data feature calculations on the selected sensor data through the built-in scientific calculator.

5. The workshop multi-point real-time temperature and humidity report generation system according to claim 1, characterized in that: The custom report organization and generation control, through the built-in image display controls with multiple different functions, allows staff to observe, organize, and compare real-time data, generate line charts of data changes, and manually or automatically generate different types of data reports.

6. The workshop multi-point real-time temperature and humidity report generation system according to claim 1, characterized in that: The internal controls that enable the custom report organization and generation control include: a multi-column list box control, a boolean function button, a switch interface tab control, a single data operation tab, a multiple data comparison tab, a data calculation tab, an enumeration control, a path selection control, and a time display control.

7. The workshop multi-point real-time temperature and humidity report generation system according to claim 6, characterized in that: The multi-column list box control includes three attribute nodes: display row and column header, row and column header string, and data row and column, which are used to modify the display format of the multi-column list box.

8. The workshop multi-point real-time temperature and humidity report generation system according to claim 1, characterized in that: The custom report organization and generation control also includes a waveform graph, which includes six attribute nodes: display grid, display X-axis scroll bar, modify border color, modify plotting area color, freely adjust ruler, and reverse coordinate axis, as well as an initialization method. These features are used to improve the user experience and enable selective comparative analysis of local and overall data.