Multifunctional intelligent measuring tool for environment monitoring and measuring method
Through intelligent measurement tools integrating measurement and environmental sensing modules, traditional measurement tools are solved inconvenient to carry and data entry problems, real-time data processing and display are realized, and the efficiency and accuracy of project quality management are improved.
Patent Information
- Application Number
- CN202510435417.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2025-07-11
AI Technical Summary
In power engineering construction, supervisors need to carry a variety of paper forms when using traditional measurement tools, which are easy to miss. The handwriting of measurement data leads to data loss or mismatch, which takes time and low efficiency, affects project quality management.
Design a multi-functional intelligent measurement tool for environmental monitoring, integrating measurement modules, environmental sensing modules, data transfer modules, data storage modules and display modules to realize real-time data entry, classified storage and display, and has human-computer interaction functions to improve the timeliness and accuracy of data management.
Through modular design, the portability of the equipment is improved, the cost of use is reduced, the automatic processing and real-time display of data is realized, and the efficiency and accuracy of project quality management is improved.
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Figure CN120293218A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of electrical engineering project management, and more specifically, to a multifunctional intelligent measuring tool and a measuring method for environmental monitoring. Background Art
[0002] In the construction of power projects, quality control is an important part of supervision work. At present, supervisors use traditional measurement tools for on-site supervision, witnessing and inspection, and need to carry a variety of paper forms, which are prone to omissions. In addition, the measurement data is recorded by hand on site and then entered into the form later, which often leads to data loss or mismatching. It is time-consuming and inefficient, which restricts the quality management of the project.
[0003] Therefore, based on the above technical problems, the present invention designs an intelligent measurement tool based on human-computer interaction, which can solidify the core inspection data requirements according to the specifications and standards, and play a role in reminding and supervising the inspection personnel during the inspection process. At the same time, it has the function of real-time entry of measurement results and classified matching records to improve the timeliness, authenticity and accuracy of quality management. Summary of the invention
[0004] In view of the deficiencies in the prior art, the purpose of the present invention is to provide a multifunctional intelligent measurement tool and measurement method for environmental monitoring to solve the problems existing in the background technology.
[0005] The above technical purpose of the present invention is achieved through the following technical solutions: a multifunctional intelligent measuring tool for environmental monitoring, comprising a tool body; the tool body is provided with: a measuring module for measuring and transmitting target data, an environmental sensing module for real-time acquisition and transmission of environmental parameter data, a data transfer module for receiving and transmitting data transmitted by the measuring module and the environmental sensing module, a data storage module for receiving and classifying data transmitted by the data transfer module, and a display module for receiving data transmitted by the data transfer module and measuring data in real time.
[0006] Optionally, the measuring module includes: a main part fixedly arranged on one end of the tool body and a sub-part detachably arranged on the tool body; the main part is provided with a photoelectric emitting part for emitting photoelectric signals; the sub-part is provided with a photoelectric receiving area for receiving the photoelectric signal emitted by the photoelectric emitting part and performing data processing to obtain measurement data; the main part is communicatively connected with the sub-part to receive the measurement data of the sub-part; the main part is communicatively connected with the data transfer module to transmit the measurement data.
[0007] Optionally, the environmental sensing module includes: a temperature sensor for monitoring the environmental temperature of the measurement target, a humidity sensor for monitoring the environmental humidity of the measurement target, and an air quality sensor for detecting the concentrations of PM2.5, PM10, CO2, and VOC pollutants in the air of the environment where the measurement target is located; the temperature sensor, humidity sensor, and air quality sensor are respectively arranged on the tool body, and the sensing ends of the temperature sensor, humidity sensor, and air quality sensor are all located outside the tool body; the temperature sensor, humidity sensor, and air quality sensor are respectively electrically connected to the data transfer module.
[0008] Optionally, the data transfer module includes: a data receiving unit for receiving the data transmitted by the measurement module and the environmental sensing module, a time binding unit for binding the acquisition time point to the data received by the data receiving unit, and a data transmission unit for transmitting the measurement data after binding the acquisition time point to the data storage module and the display module; the data receiving unit includes a wireless receiver for receiving the data transmitted by the measurement module and the environmental sensing module and transmitting it, and a short-term memory for storing the data transmitted by the wireless receiver in a short term; the wireless receiver is respectively communicatively connected to the measurement module and the environmental sensing module; the receiving end of the short-term memory is communicatively connected to the wireless receiver, and the transmission end of the short-term memory is communicatively connected to the data transmission unit; the time binding unit includes a timing relay for reading the current time and a time recording component for writing the time recorded by the timing relay into the short-term memory to store the data; the timing relay is electrically connected to the time recording component; the time recording component is electrically connected to the short-term memory.
[0009] Optionally, the data storage module includes: a data processing unit for receiving the data transmitted by the data transfer module, processing the data, and then transmitting it, and a data storage unit for classifying, sorting, and storing the processed data transmitted by the data processing unit; the data processing unit includes: a data processor for processing and analyzing the data collected by the sensor module; the data processor is respectively electrically connected to the data transfer module and the data storage unit; the data storage unit includes: a memory for storing the data processed by the data processor by category.
[0010] Optionally, the classification of the memory includes the acquisition time point, environmental data type, and measurement data type.
[0011] Optionally, the display module includes: an LED display unit for real-time data display and an alarm unit for giving early warning alarms according to the measurement data; the LED display unit and the alarm unit are respectively communicatively connected to the data transfer module.
[0012] A target data measurement method for a multifunctional environmental monitoring intelligent measurement tool based on the above, including: Step A: Disassemble and separate the sub-component from the tool body, and place the sub-component at the end point of the measurement target.
[0013] Step B: Place the tool body at the starting point of the measurement target, and align the photoelectric emission component on the main component with the photoelectric receiving area on the sub-component.
[0014] Step C: Turn on the photoelectric emission component on the main component, send the photoelectric signal to the photoelectric receiving area on the sub-component, and start the measurement.
[0015] Step D: After the set measurement period ends, turn off the photoelectric emission component on the main component, and the sub-component transmits the measurement data to the data transfer module.
[0016] Step E: The measurement personnel can read the data of this measurement through the display module.
[0017] An environmental data measurement method for a multifunctional environmental monitoring intelligent measurement tool based on the above, including: Step A: Place the tool body in the environment where the measurement target is located, and turn on the environmental sensing module on the tool body.
[0018] Step B: Measure the environment where the measurement target is located through the temperature sensor, humidity sensor and air quality sensor of the environmental sensing module to obtain real-time environmental parameter data.
[0019] Step C: After the set measurement period ends, turn off the environmental sensing module on the tool body.
[0020] Step D: The environmental sensing module transmits the measurement data to the data transfer module.
[0021] Step E: The measurement personnel can read the data of this measurement through the display module.
[0022] In summary, the present invention has the following beneficial effects:
[0023] 1. Through modular design, the measurement module, environmental sensing module, data transfer module, data storage module and display module are integrated into a tool body, realizing the integration of multifunctional environmental monitoring; not only improving the portability of the device, but also reducing the user's usage cost, and avoiding the problems of single function, large volume and inconvenient carrying of traditional devices.
[0024] 2. Through the intelligent design of the data processing module and the data storage module, the automatic processing, analysis, and storage of the collected data are realized. Users can view the data in real time through the display module and generate a data analysis report through intelligent devices, improving the control over project management and acceptance. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 is a schematic diagram of the main structure of the present invention;
[0026] Figure 2 is a side view schematic diagram of the main structure of the present invention;
[0027] Figure 3 is a schematic diagram of the positional relationship between the sub-components and the tool body in the present invention.
[0028] In the figure: 1, tool body; 2, measurement module; 21, main component; 22, sub-component; 23, photoelectric emission component; 24, photoelectric reception area; 3, environmental sensing module; 4, display module; 41, LED display unit; 42, alarm unit. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] In order to make the objectives, features, and advantages of the present invention more obvious and understandable, the following provides a detailed description of the specific embodiments of the present invention with reference to the accompanying drawings. Several embodiments of the present invention are shown in the accompanying drawings. However, the present invention can be implemented in many different forms and is not limited to the embodiments described herein.
[0030] In the present invention, unless otherwise clearly defined and limited, the terms "installation", "connection", "connection", "fixation", etc. should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances. The terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features.
[0031] In the present invention, unless otherwise clearly specified and defined, the first feature being "above" or "below" the second feature may include direct contact between the first and second features, or may include the first and second features not being in direct contact but in contact through additional features therebetween. Moreover, the first feature being "above", "over" and "on top of" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the first feature has a higher horizontal height than the second feature. The first feature being "below", "under" and "beneath" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the first feature has a lower horizontal height than the second feature. The terms "vertical", "horizontal", "left", "right", "above", "below" and similar expressions are only for the purpose of illustration, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation on the present invention.
[0032] The present invention will be described in detail below with reference to the accompanying drawings and embodiments.
[0033] The present invention provides a multifunctional intelligent measurement tool and measurement method for environmental monitoring, as Figure 1 shown, comprising a tool body 1; provided on the tool body 1 are: a measurement module 2 for measuring target data and transmitting it, an environmental sensing module 3 for collecting environmental parameter data in real time and transmitting it, a data transfer module for receiving the data transmitted by the measurement module 2 and the environmental sensing module 3 and transmitting the data, a data storage module for receiving the data transmitted by the data transfer module and classifying and storing the data, and a display module 4 for receiving the data transmitted by the data transfer module and measuring the data in real time.
[0034] In the specific implementation process, the user places the tool body 1 in the environment where the measurement target is located, and turns on the measurement module 2 and the environmental sensing module 3; the measurement module 2 and the environmental sensing module 3 respectively collect the target data and the environmental parameter data, and transmit the data to the data transfer module; the data transfer module transmits the data to the data storage module and the display module 4; the user views the real-time data through the display module 4 and consults the historical data through the data storage module.
[0035] Furthermore, the measurement module 2 includes: a main component 21 fixedly provided at one end of the tool body 1 and a sub-component 22 detachably provided on the tool body 1; provided on the main component 21 is a photoelectric emitter 23 for emitting photoelectric signals; provided on the sub-component 22 is a photoelectric receiving area 24 for receiving the photoelectric signals emitted by the photoelectric emitter 23 and processing the data to obtain measurement data; the main component 21 is communicatively connected to the sub-component 22 to receive the measurement data of the sub-component 22; the main component 21 is communicatively connected to the data transfer module to transmit the measurement data.
[0036] In the first embodiment, the main component 21 is fixedly arranged on the tool body 1, and the sub-component 22 can be detached from the tool body 1. When measuring a measurement target, the main component 21 on the tool body 1 is placed at the starting point of the measurement range of the measurement target, and the emitting end of the photoelectric emitter 23 on the main component 21 is kept on the same vertical line as the starting point of the measurement range of the measurement target to ensure the accuracy of the measurement data. Then, the sub-component 22 is detached from the tool body 1 and placed at the end point of the measurement range of the measurement target, so that the photoelectric receiving area 24 of the sub-component 22 is on the same vertical line as the end point of the measurement range of the measurement target, and the measurement length data of the measurement target is obtained by emitting a photoelectric signal.
[0037] As Figure 3 shown, a disassembly groove is formed on the tool body 1, and a clamping block adapted to the disassembly groove is arranged at the bottom of the sub-component 22. When the measurement module 2 is not in use, the clamping block on the sub-component 22 is clamped on the disassembly groove, thereby achieving the effect of clamping the sub-component 22 to the tool body 1, which is convenient for carrying the sub-component 22.
[0038] In other embodiments, in some special measurement scenarios, the angle of the photoelectric signal emitted by the photoelectric emitter 23 to the photoelectric receiving area 24 may have some deviations, such that the angle of the photoelectric signal to the photoelectric receiving area 24 is not a vertical angle. At this time, the deviation angle (the deviation value between the receiving angle and 90 degrees) is synchronously measured, so that the user can perform a certain error estimation to make the measurement data more accurate and conform to the actual measurement value.
[0039] Furthermore, the environment sensing module 3 includes: a temperature sensor for monitoring the ambient temperature of the measurement target, a humidity sensor for monitoring the ambient humidity of the measurement target, and an air quality sensor for detecting the concentrations of PM2.5, PM10, CO2, and VOC pollutants in the air of the environment where the measurement target is located; the temperature sensor, the humidity sensor, and the air quality sensor are respectively arranged on the tool body 1, and the sensing ends of the temperature sensor, the humidity sensor, and the air quality sensor are all located outside the tool body 1; the temperature sensor, the humidity sensor, and the air quality sensor are respectively electrically connected to the data transfer module.
[0040] In the second embodiment, the user places the tool in the environment to be monitored and turns on the environment sensing module 3; the temperature sensor, the humidity sensor, and the air quality sensor start to work and respectively collect ambient temperature, humidity, and air quality data.
[0041] Further, the data transfer module includes: a data receiving unit for receiving the data transmitted by the measurement module 2 and the environmental sensing module 3, a time binding unit for binding the acquisition time point to the data received by the data receiving unit, and a data transmission unit for transmitting the measurement data after binding the acquisition time point to the data storage module and the display module 4; the data receiving unit includes a wireless receiver for receiving the data transmitted by the measurement module 2 and the environmental sensing module 3 and transmitting it, and a short-term memory for storing the data transmitted by the wireless receiver in a short time; the wireless receiver is respectively communicatively connected to the measurement module 2 and the environmental sensing module 3; the receiving end of the short-term memory is communicatively connected to the wireless receiver, and the transmission end of the short-term memory is communicatively connected to the data transmission unit; the time binding unit includes a timing relay for reading the current time and a time recording member for writing the time recorded by the timing relay into the stored data in the short-term memory; the timing relay is electrically connected to the time recording member; the time recording member is electrically connected to the short-term memory.
[0042] In Embodiment 3, the current acquisition time parameter is obtained through the timing relay in the time binding unit, and the time parameter is transmitted to the time recording member. The time recording member has the functions of reading and writing, and can write the measurement data in the short-term memory in the data receiving unit and bind it to the current acquisition time point, so that the acquisition data in the data receiving unit is bound to the time parameter of the acquisition time point, which is convenient for classification and matching; the data transmission unit transmits the measurement data after binding the time parameter to the data storage module and the display module 4 to realize the overall logical implementation.
[0043] Further, the data storage module includes: a data processing unit for receiving the data transmitted by the data transfer module, processing the data and then transmitting it, and a data storage unit for classifying, sorting and storing the processed data transmitted by the data processing unit; the data processing unit includes: a data processor for processing and analyzing the data collected by the sensor module; the data processor is respectively electrically connected to the data transfer module and the data storage unit; the data storage unit includes: a memory for storing the data processed by the data processor in a category.
[0044] In Embodiment 4, the microprocessor of the data processing unit receives the data transmitted by the data transfer module, processes and analyzes it, and the processed data is transmitted to the data storage unit for classification storage according to time, data type, etc. Users can view the historical data through a smart device or a cloud server and generate a data analysis report.
[0045] Further, the classifications of the memory include the acquisition time point, environmental data type, and measurement data type.
[0046] In other embodiments, the user can customize the classification types and import them into the data processing unit, which also includes item numbers, acceptance equipment numbers, etc., so as to facilitate the user to achieve specific data classification according to the actual usage situation.
[0047] Further, the display module 4 includes: an LED display unit 41 for displaying data in real time and an alarm unit 42 for giving early warning alarms according to the measurement data; the LED display unit 41 and the alarm unit 42 are respectively communicatively connected to the data transfer module.
[0048] In Embodiment 6, the LED display unit 41 is used to display the environmental parameter data and measurement data in real time, receive the data transmitted by the data transfer module, and display it on the screen in real time; the alarm unit 42 is used to give an alarm when the data is abnormal, including an alarm indicator light and a sound alarm. When a certain item of data exceeds the preset threshold, the alarm unit 42 gives an alarm through the alarm indicator light and the sound alarm; the specific alarm threshold can be automatically generated or set manually, including the threshold for unqualified environmental parameters or harmful to the human body, so as to better protect the user.
[0049] A target data measurement method for a multifunctional environment monitoring intelligent measurement tool based on the above, including: Step A, disassemble and separate the sub-component 22 from the tool body 1, and place the sub-component 22 at the end point of the measurement target;
[0050] Step B, place the tool body 1 at the starting point of the measurement target, and align the photoelectric emitter 23 on the main component 21 with the photoelectric receiving area 24 on the sub-component 22;
[0051] Step C, turn on the photoelectric emitter 23 on the main component 21, send the photoelectric signal to the photoelectric receiving area 24 on the sub-component 22, and start the measurement;
[0052] Step D, after the set measurement period ends, turn off the photoelectric emitter 23 on the main component 21, and the sub-component 22 transmits the measurement data to the data transfer module;
[0053] Step E, the measurement personnel can read the data of this measurement through the display module 4.
[0054] An environmental data measurement method for a multifunctional environment monitoring intelligent measurement tool based on the above, including: Step A, place the tool body 1 in the environment where the measurement target is located, and turn on the environmental sensing module 3 on the tool body 1;
[0055] Step B, measure the environment where the measurement target is located through the temperature sensor, humidity sensor and air quality sensor of the environmental sensing module 3 to obtain real-time environmental parameter data;
[0056] Step C: After the set measurement period ends, turn off the environmental sensing module 3 on the tool body 1;
[0057] Step D: The environmental sensing module 3 transmits the measurement data to the data transfer module;
[0058] Step E: The measurement personnel can read the data of this measurement through the display module 4.
[0059] A multifunctional intelligent measurement tool and measurement method for environmental monitoring according to the present invention integrates the measurement module 2, the environmental sensing module 3, the data transfer module, the data storage module, and the display module 4 into a tool body 1 through modular design, realizing the integration of multifunctional environmental monitoring; not only improving the portability of the device, but also reducing the user's usage cost, and avoiding the problems of single function, large volume, and inconvenient carrying of traditional devices; through the intelligent design of the data processing module and the data storage module, the automatic processing, analysis, and storage of the collected data are realized. The user can view the data in real time through the display module 4 and generate a data analysis report through an intelligent device, improving the control over project management and acceptance.
[0060] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the concept of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements should also be regarded as within the protection scope of the present invention.
Claims
1. An intelligent measuring tool for multi-functional environmental monitoring, characterized in that, It includes a tool body; on the tool body, there are provided: a measurement module for measuring target data and transmitting it, an environmental sensing module for collecting environmental parameter data in real time and transmitting it, a data transfer module for receiving the data transmitted by the measurement module and the environmental sensing module and transmitting it, a data storage module for receiving the data transmitted by the data transfer module and classifying and storing it, and a display module for receiving the data transmitted by the data transfer module and measuring the data in real time.
2. The intelligent measuring tool for multi-functional environmental monitoring according to claim 1, wherein, The measurement module includes: a main component fixedly arranged at one end of the tool body and a sub-component detachably arranged on the tool body; On the main component, there is provided an optoelectronic emitter for emitting optoelectronic signals; on the sub-component, there is provided an optoelectronic receiving area for receiving the optoelectronic signals emitted by the optoelectronic emitter and processing the data to obtain measurement data; the main component is communicatively connected to the sub-component to receive the measurement data of the sub-component; the main component is communicatively connected to the data transfer module to transmit the measurement data.
3. A multifunctional intelligent measuring tool for environmental monitoring according to claim 1, characterized in that, The environmental sensing module includes: a temperature sensor for monitoring the environmental temperature of the environment where the measurement target is located, a humidity sensor for monitoring the environmental humidity of the environment where the measurement target is located, and an air quality sensor for detecting the concentrations of PM2.5, PM10, CO2, and VOC pollutants in the air of the environment where the measurement target is located; The temperature sensor, the humidity sensor, and the air quality sensor are respectively arranged on the tool body, and the sensing ends of the temperature sensor, the humidity sensor, and the air quality sensor are all located outside the tool body; The temperature sensor, the humidity sensor, and the air quality sensor are respectively electrically connected to the data transfer module.
4. The intelligent measuring tool for multifunctional environmental monitoring according to claim 1, characterized in that, The data transfer module includes: a data receiving unit for receiving the data transmitted by the measurement module and the environmental sensing module, a time binding unit for binding the time point of collection to the data received by the data receiving unit, and a data transmission unit for transmitting the measurement data after binding the collection time point to the data storage module and the display module; The data receiving unit includes a wireless receiver for receiving the data transmitted by the measurement module and the environmental sensing module and transmitting it, and a short-term memory for storing the data transmitted by the wireless receiver for a short time; the wireless receiver is communicatively connected to the measurement module and the environmental sensing module respectively; the receiving end of the short-term memory is communicatively connected to the wireless receiver, and the transmission end of the short-term memory is communicatively connected to the data transmission unit; The time binding unit includes a timing relay for reading the current time and a time recorder for writing the time recorded by the timing relay into the stored data in the short-term memory; the timing relay is electrically connected to the time recorder; the time recorder is electrically connected to the short-term memory.
5. A multifunctional intelligent measuring tool for environmental monitoring according to claim 1, characterized in that, The data storage module includes: a data processing unit for receiving the data transmitted by the data transfer module, processing the data, and then transmitting it, and a data storage unit for classifying, sorting, and storing the processed data transmitted by the data processing unit; The data processing unit includes: a data processor for processing and analyzing the data collected by the sensor module; the data processor is electrically connected to the data transfer module and the data storage unit respectively; The data storage unit includes: a memory for classifying and storing the data processed by the data processor.
6. The multifunctional intelligent measuring tool for environmental monitoring according to claim 5, characterized in that, The classifications of the memory include the acquisition time point, the environmental data type, and the measurement data type.
7. A multifunctional intelligent measuring tool for environmental monitoring according to claim 1, characterized in that, The display module includes: an LED display unit for real-time data display and an alarm unit for warning alarms according to the measurement data; The LED display unit and the alarm unit are respectively communicatively connected to the data transfer module.
8. A target data measurement method for a multifunctional environmental monitoring intelligent measurement tool according to any one of claims 1-7, characterized in that, including, Step A: Disassemble and separate the sub-component from the tool body, and place the sub-component at the end point of the measurement target; Step B: Place the tool body at the starting point of the measurement target, and align the photoelectric emission component on the main component with the photoelectric reception area on the sub-component; Step C: Turn on the photoelectric emission component on the main component, send the photoelectric signal to the photoelectric reception area on the sub-component, and start the measurement; Step D: After the set measurement cycle ends, turn off the photoelectric emission component on the main component, and the sub-component transmits the measurement data to the data transfer module; Step E: The measurement personnel can read the data of this measurement through the display module.
9. An environmental data measurement method for a multifunctional environmental monitoring intelligent measurement tool according to any one of claims 1-7, characterized in that, Step A: Place the tool body in the environment where the measurement target is located, and turn on the environmental sensing module on the tool body; Step B: Measure the environment where the measurement target is located through the temperature sensor, humidity sensor, and air quality sensor of the environmental sensing module to obtain real-time environmental parameter data; Step C: After the set measurement cycle ends, turn off the environmental sensing module on the tool body; Step D: The environmental sensing module transmits the measurement data to the data transfer module; Step E: The measurement personnel can read the data of this measurement through the display module.