Project quality detection system
By introducing a business management platform and data acquisition terminal in the engineering quality inspection system, the lack of inspection supervision in the existing technology is solved, and more reliable inspection results are achieved, ensuring the standardization and accuracy of the inspection process.
Patent Information
- Application Number
- CN202510093490.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-21
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2045-01-21
AI Technical Summary
The existing technology lacks effective supervision of the engineering quality inspection process, which has affected the reliability of the inspection results. In order to save labor costs, some projects hire people without inspection qualifications to conduct inspections and use testing equipment that does not meet the requirements, and there are problems with the inspection operation.
Provide an engineering quality inspection system, including testing equipment, business management platform and data acquisition terminal. The data acquisition terminal selects the detection project, matches the call signal and sends it to the business management platform to obtain the project verification information, and obtains the detection data of the detection equipment based on the detection project, makes quality judgments, and obtains the final quality detection result.
Through this system, the engineering quality inspection process can be effectively supervised, the reliability of inspection results can be improved, the inspection personnel are qualified, the equipment that meets the requirements can be used, and the inspection operations can be standardized.
Smart Images

Figure CN119963052A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of engineering supervision, and in particular to an engineering quality detection system. Background Art
[0002] Engineering quality inspection is required at all stages of the project. The core role of engineering quality inspection is to ensure the quality of the project. The quality of the project product can be obtained through the inspection equipment to determine whether the quality of the object being tested is qualified. Engineering quality inspection plays an important role in ensuring project quality, providing data support, ensuring material quality, handling engineering quality disputes and handling quality accidents. However, the current technology is affected by various factors such as personnel, cost, equipment and inspection environment.
[0003] Current technology lacks effective supervision methods for engineering inspections. Problems include hiring unqualified personnel to conduct inspections in order to save labor costs, and using limited personnel to undertake a large number of inspections; using unqualified inspection equipment for inspections; and problems with the inspection operation process of inspectors, which affects the inspection results. Current problems can easily lead to certain deviations in the execution process and inspection results of engineering inspections, and the reliability of engineering quality inspection results cannot be guaranteed. The above problems need to be solved. Summary of the invention
[0004] In order to supervise the engineering quality inspection process and improve the reliability of engineering quality inspection results, this application provides an engineering quality inspection system, which adopts the following technical solutions:
[0005] In a first aspect, the present application provides a construction quality inspection system, comprising:
[0006] Testing equipment, used to collect test data and transmit the test data to a data collection terminal;
[0007] The business management platform is used to store the verification information and transmit the corresponding engineering verification information to the data acquisition terminal when receiving the call signal;
[0008] The data acquisition terminal includes an engineering data detection module;
[0009] The engineering data detection module is used to select detection items; match the call signal sent to the business management platform according to the detection items; obtain the corresponding engineering verification information; obtain the detection data of the corresponding detection equipment according to the detection items; make quality judgments on the detection data according to the engineering verification information to obtain quality detection results.
[0010] Preferably, the data acquisition terminal further includes:
[0011] The personnel verification module is used to obtain account information, match the call signal according to the account information, obtain corresponding account verification information, verify the account information according to the account verification information, and obtain a first verification result.
[0012] Preferably, it also includes:
[0013] The personnel verification module is further used to obtain face information when the first verification result is successful, match the call signal according to the face information, obtain corresponding face verification information, verify the face information according to the face verification information, and obtain a second verification result;
[0014] The engineering data detection module is also used to select detection items when the second verification result is successful.
[0015] Preferably, the data acquisition terminal further includes:
[0016] The project location confirmation module is used to obtain the project location information when the inspection project is selected, match the call signal according to the project location information, obtain the corresponding location verification information, verify the project location information according to the location verification information, and obtain a third verification result.
[0017] Preferably, it also includes:
[0018] The engineering data detection module is also used to match corresponding detection equipment according to the detection items when the third verification result is successful.
[0019] Preferably, the data acquisition terminal further includes:
[0020] The equipment detection module is used to obtain the usage status information and calibration and verification information of the detection equipment when matching the corresponding detection equipment, match the call signal according to the usage status information and calibration and verification information, obtain the corresponding equipment verification information, verify the usage status information and calibration and verification information according to the equipment verification information, and obtain a fourth verification result.
[0021] Preferably, it also includes:
[0022] The engineering data detection module is also used to obtain engineering verification information as rebound verification information when the selected inspection project is a rebound project; obtain an image of the object to be inspected, perform inspection process analysis on the image of the object to be inspected according to the rebound verification information, and obtain first inspection planning information for auxiliary inspection; obtain rebound data, perform rebound quality analysis on the rebound data according to the first inspection planning information, and obtain a first inspection result.
[0023] Preferably, it also includes:
[0024] The engineering data detection module is also used to obtain engineering verification information as steel bar distance verification information when the selected detection project is a steel bar distance project; obtain an image of the object to be detected, perform a detection process analysis on the image of the object to be detected according to the steel bar distance verification information, and obtain second detection planning information for auxiliary detection; obtain steel bar distance data, perform a steel bar distance analysis on the steel bar distance data according to the second detection planning information, and obtain a second detection result.
[0025] Preferably, it also includes:
[0026] The engineering data detection module is also used to obtain the engineering verification information as floor thickness verification information when the selected detection project is the floor thickness project; obtain the image of the object to be detected, and perform a detection process analysis on the image of the object to be detected according to the floor thickness verification information to obtain the third detection planning information for auxiliary detection; obtain the floor thickness data, and perform a floor thickness analysis on the steel bar distance data according to the third detection planning information to obtain the third detection result.
[0027] In a second aspect, the present application provides a method for detecting engineering quality, comprising:
[0028] Select the test items;
[0029] Matching a call signal to the business management platform based on the detection items;
[0030] Obtain the corresponding engineering verification information;
[0031] Obtain the test data of the corresponding test equipment according to the test items; make quality judgments on the test data based on the engineering verification information to obtain quality test results.
[0032] Preferably, it also includes:
[0033] The account information is obtained, the call signal is matched according to the account information, the corresponding account verification information is obtained, and the account information is verified according to the account verification information to obtain a first verification result.
[0034] Preferably, it also includes:
[0035] When the first verification result is successful, facial information is obtained, the call signal is matched according to the facial information, corresponding facial verification information is obtained, and the facial information is verified according to the facial verification information to obtain a second verification result;
[0036] When the second verification result is successful, a detection item is selected.
[0037] Preferably, it also includes:
[0038] When the inspection project is selected, the project location information is obtained, the call signal is matched according to the project location information, the corresponding location verification information is obtained, the project location information is verified according to the location verification information, and a third verification result is obtained.
[0039] Preferably, it also includes:
[0040] When the third verification result is successful, the corresponding detection equipment is matched according to the detection item.
[0041] Preferably, it also includes:
[0042] When the corresponding detection device is matched, the usage status information and calibration and verification information of the detection device are obtained, the call signal is matched according to the usage status information and calibration and verification information, the corresponding device verification information is obtained, the usage status information and calibration and verification information are verified according to the device verification information, and a fourth verification result is obtained.
[0043] Preferably, it also includes:
[0044] When the selected inspection project is a rebound project, the engineering verification information is obtained as the rebound verification information; the image of the object to be inspected is obtained, and the inspection process analysis is performed on the image of the object to be inspected according to the rebound verification information to obtain the first inspection planning information for auxiliary inspection; the rebound data is obtained, and the rebound quality analysis is performed on the rebound data according to the first inspection planning information to obtain the first inspection result.
[0045] Preferably, it also includes:
[0046] When the selected inspection project is the steel bar distance project, the engineering verification information is obtained as the steel bar distance verification information; the image of the object to be inspected is obtained, and the inspection process analysis is performed on the image of the object to be inspected according to the steel bar distance verification information to obtain the second inspection planning information for auxiliary inspection; the steel bar distance data is obtained, and the steel bar distance analysis is performed on the steel bar distance data according to the second inspection planning information to obtain the second inspection result.
[0047] Preferably, it also includes:
[0048] When the selected inspection project is the floor thickness project, the engineering verification information is obtained as the floor thickness verification information; the image of the object to be inspected is obtained, and the inspection process analysis is performed on the image of the object to be inspected according to the floor thickness verification information to obtain the third inspection planning information for auxiliary inspection; the floor thickness data is obtained, and the floor thickness analysis is performed on the steel bar distance data according to the third inspection planning information to obtain the third inspection result.
[0049] In a third aspect, the present application provides a data acquisition terminal device, comprising a memory and a processor, wherein the memory stores a computer program, and the processor is configured to run the computer program to execute the engineering quality detection method as described above.
[0050] In a fourth aspect, the present application provides a computer-readable storage medium, in which a computer program is stored, wherein the computer program is configured to execute the engineering quality detection method as described above when run.
[0051] In summary, compared with the prior art, the technical solution provided by this application has at least the following beneficial effects:
[0052] This application connects to the business management platform through a data acquisition terminal. When the data acquisition terminal selects a test project, the data acquisition terminal connects to the corresponding test equipment. The business management platform transmits the corresponding verification information to the engineering data detection module of the data acquisition terminal according to the call situation. After confirming the engineering verification information, the engineering data detection module obtains the test data transmitted by the detection equipment, and performs quality judgment and analysis on the test data according to the engineering verification information to obtain the final quality inspection result. Through the engineering quality inspection system, the engineering quality inspection process can be supervised during the engineering quality inspection, and the engineering quality operation process and test data are analyzed and judged according to the verification information to obtain more accurate results, thereby improving the reliability of the engineering quality inspection results. BRIEF DESCRIPTION OF THE DRAWINGS
[0053] Figure 1 It is a module schematic diagram of a project quality inspection system described in an embodiment of the present application.
[0054] Figure 2 It is a module schematic diagram of the data acquisition terminal described in the embodiment of the present application.
[0055] Figure 3 It is a flow chart of a method for detecting engineering quality described in an embodiment of the present application.
[0056] Figure 4 It is a first flow chart of the pre-detection information verification described in the embodiment of the present application.
[0057] Figure 5 It is a second flow chart of the pre-detection information verification described in the embodiment of the present application.
[0058] Figure 6 It is a flowchart of quality judgment described in the embodiment of the present application.
[0059] Description of reference numerals:
[0060] 1. Testing equipment; 2. Business management platform; 3. Data collection terminal. DETAILED DESCRIPTION
[0061] The following combination Figure 1-Figure 6 The present application is described in further detail. The terms used in the embodiments of the present application are only for the purpose of describing specific embodiments and are not intended to be limiting.
[0062] Reference Figure 1 and 2 , a construction quality inspection system involved in this application specifically includes:
[0063] Testing equipment, used to collect test data and transmit the test data to a data collection terminal;
[0064] The business management platform is used to store the verification information and transmit the corresponding engineering verification information to the data acquisition terminal when receiving the call signal;
[0065] The data acquisition terminal includes an engineering data detection module;
[0066] The engineering data detection module is used to select detection items; match the call signal sent to the business management platform according to the detection items; obtain the corresponding engineering verification information; obtain the detection data of the corresponding detection equipment according to the detection items; make quality judgments on the detection data according to the engineering verification information to obtain quality detection results.
[0067] Specifically, the data acquisition terminal of the present application connects the business management platform and the detection equipment. When it is necessary to conduct engineering quality inspection, the inspection item is selected through the data acquisition terminal. When the inspection item is selected, the data acquisition terminal is connected to the corresponding detection equipment. After connecting the detection equipment, the engineering data detection module of the data acquisition terminal sends a call signal to the business management platform. After receiving the call signal, the business management platform calls the stored verification information and transmits it to the engineering data detection module according to the call situation. After confirming the engineering verification information, the engineering data detection module obtains the inspection data transmitted by the detection equipment, performs quality judgment and analysis on the inspection data according to the engineering verification information, and obtains the final quality inspection result.
[0068] The data acquisition terminal of the present application is used for data interconnection between the detection equipment and the business management platform to realize the automatic collection and transmission of the detection data. The data acquisition terminal usually uses a mobile phone or tablet computer as a carrier and utilizes the Bluetooth, WIFI, 4G or 5G communication function of the mobile terminal to realize data communication with the detection equipment and data interaction with the business management platform. The present application uses the engineering quality inspection system to enable the engineering quality inspection process to be supervised during the engineering quality inspection, making the engineering quality inspection process intelligent and portable, improving the integrity of the inspection data and the timeliness of the transmission, standardizing the engineering quality inspection behavior, and analyzing and judging the operation process and inspection data of the engineering quality based on the verification information to obtain more accurate results and improve the reliability of the engineering quality inspection results.
[0069] As one implementation mode, the data collection terminal further includes:
[0070] The personnel verification module is used to obtain account information, match the call signal according to the account information, obtain corresponding account verification information, verify the account information according to the account verification information, and obtain a first verification result.
[0071] Specifically, the data acquisition terminal of the embodiment of the present application also includes a personnel verification module, which is the first login operation for engineering quality inspection. For example, the operator needs to open the APP application software of the data acquisition terminal, enter the account password to be verified, that is, the account information, and the engineering data detection module of the terminal obtains the operator's operating authority and detection qualification compliance from the business management platform to ensure that the operator has the operating authority and his qualifications meet the requirements. After the operator's identity verification is successful, the list of detection qualifications he has is obtained from the business management platform, thereby obtaining the first verification result.
[0072] The first verification result of the embodiment of the present application includes the case where the account information is correct and the account information is incorrect. When the first verification result is correct, that is, when the input account password corresponds to the account password stored in the business management platform, the next step of verification is performed. When the first verification result is incorrect, the process needs to be re-verified.
[0073] In one implementation method, the account information is incorrect in two ways: the account number is incorrect and the password corresponding to the account is incorrect, which is determined by comparing the input information with the obtained verification information.
[0074] As one implementation mode, it also includes:
[0075] The personnel verification module is further used to obtain face information when the first verification result is successful, match the call signal according to the face information, obtain corresponding face verification information, verify the face information according to the face verification information, and obtain a second verification result;
[0076] The engineering data detection module is also used to select detection items when the second verification result is successful.
[0077] Specifically, the data acquisition terminal of the embodiment of the present application includes a personnel verification module. After the first step of logging in and entering the verification account information, the personnel verification module verifies the facial information of the operator. The facial information is collected through the camera of the data acquisition terminal to obtain the facial image. At this time, the engineering data detection module of the terminal obtains the operator's operating authority and detection qualification compliance from the business management platform, such as obtaining the corresponding facial image verification information, and performing feature comparison based on the acquired image and the facial verification image to obtain the comparison result, ensuring that the operator has the operating authority and his qualifications meet the requirements. After the operator's identity verification is successful, the list of detection qualifications he possesses is obtained from the business management platform, thereby obtaining the second verification result.
[0078] In the second verification result of the embodiment of the present application, there are cases where the facial features are the same or different. If the second verification result is the same, that is, the matching degree of the recognized face and the verified facial features reaches above a certain parameter, the next step of verification is performed. If the second verification result is incorrect, the process needs to be re-verified.
[0079] One implementation method is that when the number of facial recognition errors reaches a certain number, for example, 10 times, 15 times, etc., the operation steps return to the first step to re-verify the account information.
[0080] As one implementation mode, the data collection terminal further includes:
[0081] The project location confirmation module is used to obtain the project location information when the inspection project is selected, match the call signal according to the project location information, obtain the corresponding location verification information, verify the project location information according to the location verification information, and obtain a third verification result.
[0082] Specifically, the data acquisition terminal of the embodiment of the present application includes a project location confirmation module, which obtains the project coordinate position, that is, the project location information, in real time, and compares it with the project coordinate information preset by the business management platform, that is, compares and verifies it with the location verification information. For example, when the position deviation exceeds 200 meters, subsequent business operations of the project are prohibited, so that the detection test can be carried out at the project location. When there are more stringent requirements for coordinate positioning, high-precision location information can also be obtained with the help of RTK measurement equipment to improve the authenticity and representativeness of the inspected samples.
[0083] In the embodiment of the present application, when the third verification result is verified to be correct, the engineering quality inspection process enters the next step of the workflow.
[0084] As one implementation mode, it also includes:
[0085] The engineering data detection module is also used to match corresponding detection equipment according to the detection items when the third verification result is successful.
[0086] Specifically, the embodiment of the present application prohibits the selection of test items and parameters for which the operator is not qualified, preventing the operator from conducting test business beyond the qualification, and selecting the test items and matching the test equipment when the verification is successful. By setting up a personnel identity verification process, the standardization of the engineering quality inspection process is improved, thereby improving the accuracy of the test results.
[0087] As one implementation mode, the data collection terminal further includes:
[0088] The equipment detection module is used to obtain the usage status information and calibration and verification information of the detection equipment when matching the corresponding detection equipment, match the call signal according to the usage status information and calibration and verification information, obtain the corresponding equipment verification information, verify the usage status information and calibration and verification information according to the equipment verification information, and obtain a fourth verification result.
[0089] Specifically, the embodiment of the present application obtains the use status and calibration information of the device from the business management platform according to the unique identification of the device and performs analysis and judgment to obtain the fourth verification result. If the device is in a faulty, disabled or out-of-validity state, it is prohibited to use it. When the selected detection device is in a normal and usable state, the APP software of the data acquisition terminal can achieve an adaptive connection with the detection device through the Bluetooth communication module, and automatically match the data analysis mechanism supporting the device.
[0090] The communication adaptation between the APP software and the detection equipment in the embodiment of the present application is carried out in the form of a plug-in package. The adaptation equipment includes a pile foundation static load meter, a high and low strain detector, a floor thickness detector, a steel bar scanner, an appearance dimension measuring instrument and a rebound tester, etc.
[0091] In the present application, when the fourth verification result is normal, the engineering data detection module matches the corresponding call signal according to the selected detection item, and the call signal is sent to the business management platform to call the corresponding storage information.
[0092] As one implementation mode, it also includes:
[0093] The engineering data detection module is also used to obtain engineering verification information as rebound verification information when the selected inspection project is a rebound project; obtain an image of the object to be inspected, perform inspection process analysis on the image of the object to be inspected according to the rebound verification information, and obtain first inspection planning information for auxiliary inspection; obtain rebound data, perform rebound quality analysis on the rebound data according to the first inspection planning information, and obtain a first inspection result.
[0094] Specifically, in the embodiment of the present application, after the engineering data detection module confirms that the inspection project and the inspection equipment are related to the rebound project, the engineering data detection module matches the corresponding rebound verification information according to the project; obtains the standard image of the object to be inspected, that is, the image of the object to be inspected, evaluates the object to be inspected, analyzes which points need to be rebounded according to the image and the rebound verification information, and outputs the first inspection planning information to the data acquisition terminal for the operator's reference. The first inspection planning information is planning information, such as images marked with guide points and guidance instructions. Obtain the rebound data transmitted by the inspection equipment, process the rebound data according to the rebound verification information, and judge the rebound result, that is, obtain the first inspection result.
[0095] The rebound verification information of the embodiment of the present application specifically includes a rebound verification table and corresponding table description information, and the object image is annotated in the form of the table and the table description to obtain a guidance image, that is, the first detection planning information.
[0096] The image of the object to be detected is the initial image obtained by the operator based on the description information. The engineering data detection module will judge whether the image of the object to be detected meets the standards based on the description information. If it meets the standards, the image of the object to be detected will be annotated to obtain the guidance image information and image guidance description information.
[0097] The image guidance information of the first detection planning information includes:
[0098] The default value is a component to be tested, and the component age is the test date minus the casting date;
[0099] Each build has 10 measurement areas by default, which can be increased or decreased. Multiple choices will be provided for increase or decrease operations. If the rebound value of any measurement point in the measurement area has been entered, a prompt will be given before the increase or decrease operation can be performed;
[0100] Each measuring area provides 16 measuring points for data entry, and the rebound values are all 2-digit integers. For the convenience of operation, the rebound check form of the embodiment of the present application can automatically jump to the next measuring point for entry after entering the 2-digit value at each measuring point. At the same time, after entering the data of the 16th measuring point, it automatically jumps to the first measuring point of the next measuring area until the rebound data entry of all measuring areas is completed;
[0101] The carbonization depth of each measuring area is measured three times, and the single value of carbonization depth is accurate to 0.25mm. The average value of carbonization depth is the arithmetic mean of the three single values, accurate to 0.5mm.
[0102] Among them, the carbonization depth does not need to be measured in all measurement areas. Here, it should not be less than 30% of the number of component measurement areas. If the carbonization depth is not measured in all measurement areas, the average carbonization depth needs to be calculated. The average carbonization depth = the arithmetic mean of the calculated single values, accurate to 0.5mm. If the range of the average carbonization depth of each measurement area is greater than 2.0mm, it will be prompted that "the range of carbonization depth value is greater than 2.0mm, and the carbonization depth value needs to be measured in each measurement area separately". At this time, the average carbonization depth should not be calculated. If the carbonization depth is measured in all measurement areas, the average carbonization depth is not calculated.
[0103] The average rebound value is equal to the arithmetic mean of the remaining 10 measuring points after removing the 3 maximum values and the 3 minimum values, accurate to 0.1;
[0104] The test angles are optional, such as 90°, 60°, 45°, 30°, 0°, -30°, -45°, -60° and -90°, and compensation correction is performed according to different test angles;
[0105] The detection surface provides options such as side, surface and bottom;
[0106] The correction of the rebound value is as follows. You need to look up the correction table based on the average rebound value and the test angle to get the angle correction value. 0° represents horizontal direction testing, and no angle correction is required. The null value is calculated as '0'. The rebound value after angle correction is the sum of the average rebound value and the angle correction value.
[0107] The test surface correction value needs to be obtained based on the rebound value after angle correction and the test surface matching side correction table. The 'side' does not require surface correction, and the null value is calculated as '0'. The rebound value after side correction is the sum of the rebound value after angle correction and the side correction value.
[0108] The strength conversion value of the measured area before correction is obtained by converting the corrected side rebound value combined with the carbonization depth value according to the table. If the carbonization depth is not measured in all measured areas, the average carbonization depth is taken; if the carbonization depth is measured in all measured areas, the average carbonization depth of each measured area is taken. The strength corresponding to the rebound value not listed in the query table is obtained by interpolation, accurate to 0.1MPa.
[0109] The embodiment of the present application marks the image of the object to be inspected according to the image guidance information, and guides the operator to perform corresponding operations and enter data, so that accurate rebound data can be obtained, and it can be known at which required angle the operator is performing the inspection process. According to the angle information input by the operator and the rebound data input by the equipment, the rebound data is corrected to obtain the final accurate rebound data.
[0110] After obtaining the rebound data, the embodiment of the present application performs an evaluation according to the pre-formulated first detection planning information, analyzes the detection results of the current project, determines whether the rebounded components are compliant, and obtains corresponding parameters.
[0111] When the first detection result is obtained in the embodiment of the present application, the engineering data detection module uploads the data to the platform for storage.
[0112] As one implementation mode, it also includes:
[0113] The engineering data detection module is also used to obtain engineering verification information as steel bar distance verification information when the selected detection project is a steel bar distance project; obtain an image of the object to be detected, perform a detection process analysis on the image of the object to be detected according to the steel bar distance verification information, and obtain second detection planning information for auxiliary detection; obtain steel bar distance data, perform a steel bar distance analysis on the steel bar distance data according to the second detection planning information, and obtain a second detection result.
[0114] Specifically, in the embodiment of the present application, after the engineering data detection module confirms that the detection project and the detection equipment are related to the steel bar distance project, the engineering data detection module matches the corresponding steel bar distance verification information according to the project; obtains the standard image of the object to be detected, that is, the image of the object to be detected, evaluates the object to be detected, analyzes which points need to be measured based on the image and the steel bar distance information, and outputs the second detection planning information to the data acquisition terminal for reference by the operator. The second detection planning information is planning information, such as an image marked with a guide point and guidance instructions. Obtain the steel bar distance data transmitted by the detection equipment, process the steel bar distance data according to the steel bar distance verification information, and judge the steel bar distance result, that is, obtain the second detection result.
[0115] The steel bar distance verification information of the embodiment of the present application specifically includes a steel bar distance verification table and corresponding table description information, and image annotation is performed on the object image in the form of a table and a table description to obtain a guidance image, that is, the second detection planning information.
[0116] The image of the object to be detected is the initial image obtained by the operator based on the description information. The engineering data detection module will judge whether the image of the object to be detected meets the standards based on the description information. If it meets the standards, the image of the object to be detected will be annotated to obtain the guidance image information and image guidance description information.
[0117] The image guidance information of the second detection planning information includes:
[0118] The electromagnetic induction method is used to detect the steel bars in the area marked in the guidance image information. Each steel bar detection requires an instrument to detect the steel bar position. When the instrument detects the steel bar, rays in four directions will appear. Record them and connect the four points to determine the position of one of the steel bars.
[0119] Then, detect along the vertical or horizontal direction of the steel bar sub-position to obtain another steel bar sub-position, and connect the two steel bar sub-positions to obtain the steel bar position;
[0120] The number of builds is not fixed and can be added freely by the operator. Each build usually measures 6 intervals.
[0121] The input of designed steel bar spacing and measured steel bar spacing is accurate to 1mm;
[0122] The maximum and minimum values of the steel bar spacing are the maximum and minimum values of all single values, accurate to 1mm;
[0123] The average value of the steel bar spacing is the arithmetic mean of all single values, accurate to 1mm.
[0124] The embodiment of the present application marks the image of the object to be inspected according to the image guidance information, and guides the operator to perform corresponding operations and input data, so as to obtain accurate steel bar distance data. Since the information needs to be processed and input according to the guidance steps, it can be clearly analyzed whether the information error input by the operator before and after exceeds the preset range. If it exceeds the range, it is notified in time to re-test, and finally obtain accurate steel bar distance data.
[0125] When the second detection result is obtained in the embodiment of the present application, the engineering data detection module uploads the data to the platform for storage.
[0126] As one implementation mode, it also includes:
[0127] The engineering data detection module is also used to obtain the engineering verification information as floor thickness verification information when the selected detection project is the floor thickness project; obtain the image of the object to be detected, and perform a detection process analysis on the image of the object to be detected according to the floor thickness verification information to obtain the third detection planning information for auxiliary detection; obtain the floor thickness data, and perform a floor thickness analysis on the steel bar distance data according to the third detection planning information to obtain the third detection result.
[0128] Specifically, in the embodiment of the present application, after the engineering data detection module confirms that the detection project and the detection equipment are related to the floor thickness project, the engineering data detection module matches the corresponding floor thickness verification information according to the project; obtains the standard image of the object to be tested, that is, the image of the object to be tested, evaluates the object to be tested, analyzes which points need to be tested for floor thickness based on the image and the floor thickness verification information, and outputs the third detection planning information to the data acquisition terminal for reference by the operator. The third detection planning information is planning information, such as images marked with guide points and guidance instructions. Obtain the floor thickness data transmitted by the detection equipment, process the floor thickness data according to the floor thickness verification information, and judge the floor thickness result, that is, obtain the third detection result.
[0129] The floor thickness verification information of the embodiment of the present application specifically includes a floor thickness verification table and corresponding table description information. The object image is annotated in the form of a table and a table description to obtain a guidance image, that is, the third detection planning information.
[0130] The image of the object to be detected is the initial image obtained by the operator based on the description information. The engineering data detection module will judge whether the image of the object to be detected meets the standards based on the description information. If it meets the standards, the image of the object to be detected will be annotated to obtain the guidance image information and image guidance description information.
[0131] The image guidance information of the third detection planning information includes:
[0132] According to the total number input, confirm the number of random inspections, and inspect 2% of the total number of non-cantilever plate components and no less than 5 components, and obtain the corresponding number of guidance image information and description information;
[0133] 10% of the cantilever plate components, but no less than 20 components, are inspected to obtain the corresponding number of guiding image information and explanatory information;
[0134] According to the type of test plate, determine the test location, mark it on the guide image information, and determine the direction perpendicular to the axis of the test steel bar as the test direction;
[0135] For one-way slabs, the short side of the test is determined to be the most unfavorable position of the stress reinforcement according to the direction parallel to the long side;
[0136] For two-way slabs, the bottom reinforcement position is determined based on the bottom reinforcement position, so as to determine the bottom stress-bearing reinforcement of the test as the most unfavorable position;
[0137] According to the pre-matching data, guide the operator to input the diameter and spacing of the steel bars into the equipment;
[0138] During the warm-up and zeroing phases, the device probe needs to be kept away from the metal object area marked in the guidance image information;
[0139] Select 6 bottom bars at the most unfavorable reinforcement position and test 3 positions on each bottom bar, with each position tested twice;
[0140] The difference between the two thickness values must not exceed 1mm, and the average value of the two test data is taken as the protective layer thickness value at the corresponding position;
[0141] The average value of the protective layer thickness at the final three locations is the protective layer thickness of a single bottom reinforcement;
[0142] Generally, 3 to 5 points are measured for each component;
[0143] The design value of the floor thickness and several measured values must be accurate to 1mm;
[0144] The maximum floor thickness is the maximum value of all measured values, accurate to 1mm;
[0145] The minimum floor slab thickness is the minimum of all measured values, accurate to 1mm;
[0146] The average floor thickness is the arithmetic mean of all measured values, accurate to 1mm;
[0147] The qualified quantity is the number of components whose average value meets the requirements;
[0148] The qualified rate is the qualified number divided by the number of components multiplied by 100, accurate to 0.1%;
[0149] The qualified rate of the initial test is ≥80% and meets the standard requirements. The qualified rate is <80% and ≥70% and does not meet the standard requirements. Re-test is required. The qualified rate is <70% and does not meet the standard requirements.
[0150] During the re-inspection, if the total qualified rate of the initial and re-inspections is ≥ 80%, the re-inspection meets the standard requirements;
[0151] During the re-inspection, if the total pass rate of the initial and re-inspection is less than 80%, the re-inspection does not meet the standard requirements.
[0152] The embodiment of the present application assists the operator in analyzing and selecting unfavorable positions and detection points based on the output guidance image information and image guidance description information, which are usually obtained through historical data modeling and analysis.
[0153] The embodiment of the present application marks the image of the object to be inspected according to the image guidance information, and guides the operator to perform corresponding operations and input data, so as to obtain accurate floor thickness data. Since the information needs to be processed and input according to the guidance steps, it can be clearly analyzed whether the information error input by the operator before and after exceeds the preset range. If it exceeds the range, it is notified in time to re-test, so as to obtain the final accurate floor thickness data.
[0154] When the third detection result is obtained in the embodiment of the present application, the engineering data detection module uploads the data to the platform for storage.
[0155] Reference Figure 3 , a method for detecting engineering quality is provided for an embodiment of the present application, comprising:
[0156] Step S1: Select the test items;
[0157] Step S2: matching a call signal for sending to the service management platform according to the detection items;
[0158] Step S3: Obtain corresponding engineering verification information;
[0159] Step S4: Acquire the test data of the corresponding test equipment according to the test items; make a quality judgment on the test data according to the engineering verification information to obtain the quality test results.
[0160] Reference Figure 4 , as one implementation mode, further comprising:
[0161] Step S101: Acquire account information, match the call signal according to the account information, acquire corresponding account verification information, verify the account information according to the account verification information, and obtain a first verification result.
[0162] As one implementation mode, it also includes:
[0163] Step S102: when the first verification result is successful, obtain face information, match the call signal according to the face information, obtain corresponding face verification information, verify the face information according to the face verification information, and obtain a second verification result;
[0164] Step S103: When the second verification result is successful, select a detection item.
[0165] As one implementation mode, it also includes:
[0166] Step S104: when the inspection project is selected, the project location information is obtained, the call signal is matched according to the project location information, the corresponding location verification information is obtained, and the project location information is verified according to the location verification information to obtain a third verification result.
[0167] Reference Figure 5 , as one implementation mode, further comprising:
[0168] Step S105: When the third verification result is successful, matching corresponding detection equipment according to the detection items.
[0169] As one implementation mode, it also includes:
[0170] Step S106: When the corresponding detection device is matched, the usage status information and calibration and verification information of the detection device are obtained, the call signal is matched according to the usage status information and calibration and verification information, the corresponding device verification information is obtained, and the usage status information and calibration and verification information are verified according to the device verification information to obtain a fourth verification result.
[0171] Reference Figure 6 , as one implementation mode, further comprising:
[0172] Step S401: When the selected inspection project is a rebound project, the engineering verification information is obtained as the rebound verification information; the image of the object to be inspected is obtained, and the inspection process analysis is performed on the image of the object to be inspected according to the rebound verification information to obtain the first inspection planning information for auxiliary inspection; the rebound data is obtained, and the rebound quality analysis is performed on the rebound data according to the first inspection planning information to obtain the first inspection result.
[0173] As one implementation mode, it also includes:
[0174] Step S402: When the selected inspection project is the steel bar distance project, the engineering verification information is obtained as the steel bar distance verification information; the image of the object to be inspected is obtained, and the inspection process analysis is performed on the image of the object to be inspected according to the steel bar distance verification information to obtain the second inspection planning information for auxiliary inspection; the steel bar distance data is obtained, and the steel bar distance analysis is performed on the steel bar distance data according to the second inspection planning information to obtain the second inspection result.
[0175] As one implementation mode, it also includes:
[0176] Step S403: When the selected inspection project is the floor thickness project, the engineering verification information is obtained as the floor thickness verification information; the image of the object to be inspected is obtained, and the inspection process analysis is performed on the image of the object to be inspected according to the floor thickness verification information to obtain the third inspection planning information for auxiliary inspection; the floor thickness data is obtained, and the floor thickness analysis is performed on the steel bar distance data according to the third inspection planning information to obtain the third inspection result.
[0177] An embodiment of the present application provides a data acquisition terminal device, including a memory and a processor, wherein the memory stores a computer program, and the processor is configured to run the computer program to execute the engineering quality detection method as described above.
[0178] An embodiment of the present application provides a computer-readable storage medium, in which a computer program is stored, wherein the computer program is configured to execute the engineering quality detection method as described above when running.
[0179] Those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working process of the above-described device and product can refer to the corresponding process in the aforementioned method embodiment, and will not be repeated here.
[0180] In several embodiments provided in this application, it should be understood that the disclosed methods, systems, devices and program products may be implemented in other ways.
[0181] In addition, each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit. The above-mentioned integrated unit may be implemented in the form of hardware or in the form of software functional units.
[0182] As described above, the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A construction quality inspection system, characterized in that: include: Testing equipment, used to collect test data and transmit the test data to a data collection terminal; The business management platform is used to store the verification information and transmit the corresponding engineering verification information to the data acquisition terminal when receiving the call signal; The data acquisition terminal includes an engineering data detection module; The engineering data detection module is used to select detection items; match the call signal sent to the business management platform according to the detection items; obtain the corresponding engineering verification information; obtain the detection data of the corresponding detection equipment according to the detection items; make quality judgments on the detection data according to the engineering verification information to obtain quality detection results.
2. The engineering quality inspection system according to claim 1, characterized in that: The data acquisition terminal also includes: The personnel verification module is used to obtain account information, match the call signal according to the account information, obtain corresponding account verification information, verify the account information according to the account verification information, and obtain a first verification result.
3. The engineering quality detection system according to claim 2, characterized in that: Also includes: The personnel verification module is further used to obtain face information when the first verification result is successful, match the call signal according to the face information, obtain corresponding face verification information, verify the face information according to the face verification information, and obtain a second verification result; The engineering data detection module is also used to select detection items when the second verification result is successful.
4. The engineering quality inspection system according to claim 3, characterized in that: The data acquisition terminal also includes: The project location confirmation module is used to obtain the project location information when the inspection project is selected, match the call signal according to the project location information, obtain the corresponding location verification information, verify the project location information according to the location verification information, and obtain a third verification result.
5. The engineering quality detection system according to claim 4, characterized in that: Also includes: The engineering data detection module is also used to match corresponding detection equipment according to the detection items when the third verification result is successful.
6. The engineering quality inspection system according to claim 5, characterized in that: The data acquisition terminal also includes: The equipment detection module is used to obtain the usage status information and calibration and verification information of the detection equipment when matching the corresponding detection equipment, match the call signal according to the usage status information and calibration and verification information, obtain the corresponding equipment verification information, verify the usage status information and calibration and verification information according to the equipment verification information, and obtain a fourth verification result.
7. The engineering quality inspection system according to claim 1, characterized in that: Also includes: The engineering data detection module is further used to obtain engineering verification information as rebound verification information when the selected detection project is a rebound project; Acquire an image of the object to be detected, perform a detection process analysis on the image of the object to be detected according to the rebound verification information, and obtain first detection planning information for auxiliary detection; The springback data is acquired, and a springback quality analysis is performed on the springback data according to the first detection planning information to obtain a first detection result.
8. The engineering quality inspection system according to claim 1, characterized in that: Also includes: The engineering data detection module is also used to obtain engineering verification information as steel bar distance verification information when the selected detection item is a steel bar distance item; Acquire the image of the object to be detected, perform detection process analysis on the image of the object to be detected according to the steel bar distance verification information, and obtain the second detection planning information for auxiliary detection; acquire the steel bar distance data, perform steel bar distance analysis on the steel bar distance data according to the second detection planning information, and obtain the second detection result.
9. The engineering quality inspection system according to claim 1, characterized in that: Also includes: The engineering data detection module is also used to obtain engineering verification information as floor thickness verification information when the selected detection item is the floor thickness item; Acquire an image of the object to be detected, perform a detection process analysis on the image of the object to be detected according to the floor thickness verification information, and obtain third detection planning information for auxiliary detection; The floor thickness data is obtained, and the floor thickness analysis is performed on the steel bar distance data according to the third detection planning information to obtain the third detection result.
10. A method for detecting engineering quality, characterized in that: include: Select the test items; Matching a call signal to the business management platform based on the detection items; Obtain the corresponding engineering verification information; Obtain the test data of the corresponding test equipment according to the test items; make quality judgments on the test data based on the engineering verification information to obtain quality test results.
11. The engineering quality detection method according to claim 10, characterized in that: Also includes: The account information is obtained, the call signal is matched according to the account information, the corresponding account verification information is obtained, and the account information is verified according to the account verification information to obtain a first verification result.
12. The engineering quality detection method according to claim 11, characterized in that: Also includes: When the first verification result is successful, facial information is obtained, the call signal is matched according to the facial information, corresponding facial verification information is obtained, and the facial information is verified according to the facial verification information to obtain a second verification result; When the second verification result is successful, a detection item is selected.
13. The engineering quality detection method according to claim 12, characterized in that: Also includes: When the inspection project is selected, the project location information is obtained, the call signal is matched according to the project location information, the corresponding location verification information is obtained, the project location information is verified according to the location verification information, and a third verification result is obtained.
14. The engineering quality detection method according to claim 13, characterized in that: Also includes: When the third verification result is successful, the corresponding detection equipment is matched according to the detection item.
15. The engineering quality detection method according to claim 14, characterized in that: Also includes: When the corresponding detection device is matched, the usage status information and calibration and verification information of the detection device are obtained, the call signal is matched according to the usage status information and calibration and verification information, the corresponding device verification information is obtained, the usage status information and calibration and verification information are verified according to the device verification information, and a fourth verification result is obtained.
16. The engineering quality detection method according to claim 10, characterized in that: Also includes: When the selected inspection item is a rebound item, the engineering verification information obtained is the rebound verification information; Acquire an image of the object to be detected, perform a detection process analysis on the image of the object to be detected according to the rebound verification information, and obtain first detection planning information for auxiliary detection; The springback data is acquired, and a springback quality analysis is performed on the springback data according to the first detection planning information to obtain a first detection result.
17. The engineering quality detection method according to claim 10, characterized in that: Also includes: When the selected inspection item is the steel bar distance item, the engineering verification information obtained is the steel bar distance verification information; Acquire the image of the object to be detected, perform detection process analysis on the image of the object to be detected according to the steel bar distance verification information, and obtain the second detection planning information for auxiliary detection; acquire the steel bar distance data, perform steel bar distance analysis on the steel bar distance data according to the second detection planning information, and obtain the second detection result.
18. The engineering quality detection method according to claim 10, characterized in that: Also includes: When the selected inspection item is the floor thickness item, the engineering verification information obtained is the floor thickness verification information; Acquire an image of the object to be detected, perform a detection process analysis on the image of the object to be detected according to the floor thickness verification information, and obtain third detection planning information for auxiliary detection; The floor thickness data is obtained, and the floor thickness analysis is performed on the steel bar distance data according to the third detection planning information to obtain the third detection result.
19. A data collection terminal device, characterized in that: It comprises a memory and a processor, the memory stores a computer program, and the processor is configured to run the computer program to execute the engineering quality detection method according to any one of claims 10-18.
20. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, wherein the computer program is configured to execute the engineering quality detection method described in any one of claims 10-18 when running.
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