Measurement Data Processing Platform and Method Based on Semi-Submersible Barge Launching Control
Through real-time monitoring of semi-submersible dive data and data processing of power mechanism and assisting devices, the problem of inability to monitor the dive process in real time in the prior art is solved, the knowability and stability of semi-submersible dive is improved, and the accurate judgment and effective control of the causes of submersible abnormalities is achieved.
Patent Information
- Application Number
- CN202510621774.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2045-05-15
AI Technical Summary
The prior art cannot monitor the rationality of the semi-submersible dive process in real time, resulting in the inability to focus on it, and it is impossible to accurately judge whether the power mechanism and assistance device cause a submersible abnormality, affecting the knowability and stability of the submersible.
By collecting dive data to analyze the period abnormal hazards, combining the data of the power mechanism and assisting device, the data is processed using the estimation module, response module, confirmation module and analysis module to realize real-time monitoring and disturbance analysis of the latent conditions.
Real-time rationality monitoring of the semi-submersible dive process is achieved, the knowability and stability of the dive are improved, the causes of the dive abnormality can be accurately judged, and the control efficiency of the power mechanism and assisting device is improved.
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Figure CN120156664B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of electric digital data processing, and particularly relates to a measurement data processing platform and method based on semi-submersible barge launching control. Background Art
[0002] A semi-submersible barge (also known as a semi-submersible barge or semi-submersible mother ship) is a special ship that adjusts its own ballast water to submerge the loading deck to carry large floating cargoes (such as drilling platforms, ships, caissons, etc.). Its core feature is the combination of stability and shallow draft, suitable for offshore engineering transportation and installation operations.
[0003] In practical applications, currently, during the launching of a semi-submersible barge, as mentioned in the prior art solution with the patent publication number "CN105882905B", it controls the semi-submersible barge by sampling some data during the launching of the semi-submersible barge.
[0004] However, currently, it is not possible to perform an overall health condition detection on the submerging process of the semi-submersible barge, and it is not possible to know in real time whether the submerging process of the semi-submersible barge is reasonable. Thus, it is not suitable to perform focused management and control on the semi-submersible barge in real time, which weakens the knowability of the submerging of the semi-submersible barge. Moreover, it is not possible to perform focused disturbance estimation on the power mechanism and auxiliary devices of the semi-submersible barge, so it is not possible to accurately determine whether the abnormal submerging of the semi-submersible barge is caused by abnormalities in the power mechanism and auxiliary devices, and thus it is not possible to perform focused allocation on the power mechanism and auxiliary devices in real time. Summary of the Invention
[0005] To solve the deficiencies in the prior art, the present invention proposes a measurement data processing platform and method based on semi-submersible barge launching control, effectively avoiding the deficiencies in the prior art that it is not possible to know in real time whether the submerging process of the semi-submersible barge is reasonable, not suitable to perform focused management and control on the semi-submersible barge in real time, weakening the knowability of the submerging of the semi-submersible barge, and not being able to perform focused disturbance estimation on the power mechanism and auxiliary devices of the semi-submersible barge, not being able to accurately determine whether the abnormal submerging of the semi-submersible barge is caused by abnormalities in the power mechanism and auxiliary devices, and not being able to perform focused allocation on the power mechanism and auxiliary devices in real time.
[0006] The present invention uses the following technical solutions.
[0007] A measurement data processing method based on semi-submersible barge launching control includes:
[0008] S1, sampling the submerging data during the submerging of the semi-submersible barge, and performing an estimation and analysis of the period anomaly risk during the submerging on the submerging data, and performing a confirmation process on the obtained submerging period offset to obtain a reasonable message or an abnormal message;
[0009] S2. Under the condition of abnormal information, sample the diving condition data and diving disturbance data of the sampling power mechanism, send the diving disturbance data to S4 for performing working correction estimation segmentation response analysis, and perform diving abnormal estimation processing on the diving condition data by the period power mechanism;
[0010] S3. According to the diving abnormal disturbance factor obtained by the diving abnormal estimation processing by the period power mechanism, perform confirmation processing on the obtained diving abnormal disturbance factor, so as to obtain qualified information or diving disturbance information;
[0011] S4. According to the method of data recursion, perform working correction estimation segmentation response analysis on the diving disturbance data, and send the obtained reasonable working disturbance weight and abnormal working disturbance weight back to S3;
[0012] S5. Under the condition of abnormal information, perform external diving disturbance estimation function segmentation analysis on the assisted diving aspect by the semi-submersible barge, perform confirmation processing on the obtained assisted diving evaluation factor, and thus obtain stable information or function information.
[0013] Furthermore, in S1, the period abnormal hidden danger estimation analysis method during diving includes:
[0014] Define the total diving period of the semi-submersible barge as the working time interval, obtain the diving data of the semi-submersible barge in the working time interval, and obtain the basic diving data of the reasonably diving semi-submersible barge;
[0015] Obtain the state function data of the semi-submersible barge in the working time interval, and define the number of the state function data higher than the defined critical value as the working function factor, and then obtain the offset calibration factor corresponding to the working function factor within the defined working function factor range.
[0016] Furthermore, in S1, each defined working function factor range corresponds to an offset calibration factor.
[0017] Furthermore, in S1, obtain the quantity obtained by performing standardized processing on each type of data in the diving data in the working time interval by using the Z-score method, and define the quantity obtained by multiplying the quantity obtained after the standardized processing by the offset calibration factor value as the calibrated diving data, compare the calibrated diving data with the basic diving data, that is, define the quantity obtained by subtracting the basic diving data from the calibrated diving data as the diving period offset , and perform confirmation processing on the diving period offset :
[0018] If the diving period offset is lower than the defined diving period offset critical value, a qualified message is formed;
[0019] If the diving period offset is not lower than the defined diving period offset critical value, an abnormal message is formed.
[0020] Furthermore, in S2 to S3, the method for estimating and disposing of abnormal diving of the period power mechanism includes:
[0021] Define the number of power mechanisms in the semi-submersible barge as , where is a positive integer, obtain the diving status data of each power mechanism in the semi-submersible barge during the working time interval. The diving status data includes a state estimation factor and an attribute presentation factor. Define the quantity obtained by multiplying the state estimation factor by the attribute presentation factor as the power mechanism estimation factor, and obtain the corresponding reasonable working disturbance weight value and the abnormal working disturbance weight value ;
[0022] Obtain the quantity obtained by multiplying the power mechanism estimation factor of each power mechanism by the corresponding reasonable working disturbance weight value or the abnormal working disturbance weight value and define the obtained quantity as the diving obstacle estimation factor , and perform confirmation and disposal on the diving obstacle estimation factor :
[0023] If the diving obstacle estimation factor is not lower than the defined diving obstacle estimation factor critical value, determine that the corresponding power mechanism is a disturbed power mechanism, and divide the corresponding number of the disturbed power mechanism by and define the obtained quotient value as the diving abnormal disturbance factor, and perform confirmation and disposal on the diving abnormal disturbance factor:
[0024] If the diving abnormal disturbance factor is lower than the defined diving abnormal disturbance factor critical value, a compliance message is formed;
[0025] If the diving abnormal disturbance factor is not lower than the defined diving abnormal disturbance factor critical value, a diving disturbance message is formed.
[0026] Furthermore, in S4, the method for parsing the response of the work correction estimation segmentation includes:
[0027] Obtain the diving disturbance data of each power mechanism in the semi-submersible barge during the working time interval. The diving disturbance data includes an internal loss estimation factor and an obstacle evaluation value;
[0028] Compare the internal damage estimation factor and the obstacle evaluation value with the defined critical value of the internal damage estimation factor and the defined critical value of the obstacle evaluation value respectively. Define the quantity obtained by adding the numbers of the internal damage estimation factor and the obstacle evaluation value that are respectively higher than the defined critical value of the internal damage estimation factor and the defined critical value of the obstacle evaluation value as the estimation risk factor. If the estimation risk factor is 0, it is determined that the corresponding power mechanism is a reasonable power mechanism. If the estimation risk factor is non - zero, it is determined that the corresponding power mechanism is a disturbance power mechanism.
[0029] Further, in S4, define the quantity obtained by multiplying the internal damage estimation factor of the reasonable power mechanism by the obstacle evaluation value as the reasonable operation estimation factor. Obtain the number of the reasonable operation estimation factors of the reasonable power mechanism that are within the defined range of the reasonable operation estimation factor as the reasonable working disturbance weight. Define the quantity obtained by multiplying the internal damage estimation factor of the abnormal power mechanism by the obstacle evaluation value as the abnormal operation estimation factor. Obtain the abnormal working disturbance weight of the abnormal operation estimation factor of the disturbance power mechanism that is within the defined range of the abnormal operation estimation factor. , where and are both positive integers.
[0030] Further, in S5, the external diving disturbance estimation effect segmentation and analysis method includes:
[0031] Obtain the assisting device of the semi - submersible barge during the working time interval, obtain the external diving disturbance data of each assisting device, and perform confirmation processing on the external diving disturbance data. If the external diving disturbance data is not less than the defined critical value of the external diving disturbance data, it is determined that the corresponding assisting device is a diving disturbance device.
[0032] Further, in S5, define the quantity obtained by dividing the number of the diving disturbance devices by the total number of the assisting devices as the assisting diving estimation factor, and perform confirmation processing on the assisting diving estimation factor:
[0033] If the assisting diving estimation factor is lower than the defined critical value of the assisting diving estimation factor, a stable message is formed;
[0034] If the assisting diving estimation factor is not less than the defined critical value of the assisting diving estimation factor, an effect message is formed.
[0035] A measurement data processing platform based on semi - submersible barge launching control, including:
[0036] An estimation module, which is used to sample diving data during the diving of the semi - submersible barge, and perform analysis on the abnormal hidden danger of the time period during the diving on the diving data, and perform confirmation processing on the obtained diving period offset to obtain a reasonable message or an abnormal message;
[0037] A response module, which is used to sample the diving condition data and diving disturbance data of the power mechanism under the condition of abnormal messages, send the diving disturbance data into S4 to perform work correction estimation segmentation response analysis, and perform abnormal estimation processing of the power mechanism during the period for the diving condition data;
[0038] A confirmation module, which is used to perform confirmation processing on the obtained diving abnormal disturbance factor according to the diving abnormal disturbance factor obtained from the abnormal estimation processing of the power mechanism during the period, so as to obtain a qualified message or a diving disturbance message;
[0039] An analysis module, which is used to perform work correction estimation segmentation response analysis on the diving disturbance data according to the method of data recursion, and send the obtained reasonable work disturbance weight and the abnormal work disturbance weight back to S3;
[0040] A processing module, which is used to perform external diving disturbance estimation function segmentation analysis on the assisted diving aspect under the assistance of a semi-submersible barge under the condition of abnormal messages, perform confirmation processing on the obtained assisted diving evaluation factor, and thus obtain a stable message or a function message.
[0041] The beneficial effects of the present invention are that, compared with the prior art, the technical effects of the present invention include:
[0042] By performing analysis during the diving of the semi-submersible barge, it is possible to grasp whether the diving during the diving of the semi-submersible barge is reasonable, that is, to perform abnormal hidden danger estimation analysis of the diving period for the diving data, which is conducive to directly grasping whether the diving of the semi-submersible barge is reasonable, and is conducive to making focused control according to the obtained results, thereby improving the knowability and stability of the diving of the semi-submersible barge; and by performing analysis on the obtained results from two aspects of the power mechanism and the assistance device, it is conducive to confirming whether the diving abnormality of the semi-submersible barge is caused by the abnormality of the power mechanism and the assistance device, and is conducive to performing focused control on the power mechanism or the assistance device according to the obtained results to improve the stability and reliability of the diving process of the power mechanism. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] Figure 1 is a flowchart of the measurement data processing method based on semi-submersible barge launching control described in the present invention;
[0044] Figure 2 is a partial structure diagram of the measurement data processing platform based on semi-submersible barge launching control described in the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0045] To make the objectives, technical solutions, and advantages of the present invention clearer, the following will, in conjunction with the accompanying drawings in the embodiments of the present invention, clearly and completely describe the technical solutions of the present invention. The embodiments described in this application are only some of the embodiments of the present invention, rather than all embodiments. According to the spirit of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0046] As Figure 1 shown, a method for processing measurement data based on semi-submersible barge launching control according to the present invention includes:
[0047] S1, sampling the diving data during the diving of the semi-submersible barge, and performing an analysis of the potential risks of abnormal periods during the diving on the diving data, and performing a confirmation process on the obtained diving period offset to obtain reasonable information or abnormal information;
[0048] S2, under the condition of abnormal information, sampling the diving condition data and diving disturbance data of the power mechanism, sending the diving disturbance data to S4 for a working correction estimation segmentation response analysis, and performing an estimation process of abnormal diving of the power mechanism during the period on the diving condition data;
[0049] S3, performing a confirmation process on the obtained abnormal diving disturbance factor obtained through the estimation process of abnormal diving of the power mechanism during the period to obtain qualified information or diving disturbance information;
[0050] S4, performing a working correction estimation segmentation response analysis on the diving disturbance data according to the method of data recursion, and sending the obtained reasonable working disturbance weight and abnormal working disturbance weight back to S3;
[0051] S5, under the condition of abnormal information, performing an external diving disturbance estimation function segmentation analysis on the assisted diving aspect of the semi-submersible barge, and performing a confirmation process on the obtained assisted diving evaluation factor to obtain stable information or function information accordingly.
[0052] In this application, analysis is performed during the diving of the semi-submersible barge, thereby determining whether the diving during the diving of the semi-submersible barge is reasonable, that is, performing analysis on the abnormal hidden danger of the period during the diving of the diving data, which is conducive to directly determining whether the diving of the semi-submersible barge is reasonable, and is conducive to making focused control based on the obtained results, thereby improving the knowability and stability of the diving of the semi-submersible barge; and through the obtained results, analysis is performed on both the power mechanism and the assisting device, which is conducive to confirming whether the abnormal diving of the semi-submersible barge is caused by the abnormality of the power mechanism and the assisting device, and is conducive to performing focused control on the power mechanism or the assisting device based on the obtained results to improve the stability and reliability of the diving process of the power mechanism.
[0053] In a preferred but non-limiting embodiment of the present invention, in S1, the method for estimating the abnormal hidden danger of the period during diving includes:
[0054] Define the total diving period of the semi-submersible barge as the working time interval, obtain the diving data of the semi-submersible barge during the working time interval, the diving data includes diving displacement and diving inclination angle, and obtain the basic diving data of the semi-submersible barge with reasonable diving; the basic diving data of the semi-submersible barge with reasonable diving is the average value of the diving data of the semi-submersible barge obtained during the previous period when performing the same task as the current semi-submersible barge and successfully performing the diving task according to the diving requirements. The average value of the diving data includes the average value of the diving displacement and the average value of the diving inclination angle. The diving displacement and the diving inclination angle can be sampled by a linear sensor and an inclination sensor respectively.
[0055] Obtain the state action data of the semi-submersible barge during the working time interval, the state action data includes the water pressure received by the semi-submersible barge or the water level where the semi-submersible barge is located, the water pressure or the water level is sampled by a water pressure sensor or a water level sensor provided at a certain place on the semi-submersible barge respectively, and define the number of the state action data exceeding the defined critical value as the working action factor, and then obtain the offset calibration factor corresponding to the working action factor within the defined working action factor range. The critical value can be set according to specific requirements, and the working action factor range can be set as a continuous plurality of ranges according to specific requirements.
[0056] In a preferred but non-limiting embodiment of the present invention, in S1, each defined working action factor range corresponds to an offset calibration factor. The offset calibration factor can be determined according to specific requirements.
[0057] Define the data type in the diving data as , is a positive integer, and when , it represents the type of diving displacement, and when , it represents the type of diving inclination angle.
[0058] In a preferred but non-limiting embodiment of the present invention, in S1, a quantity obtained by standardizing each type of corresponding data in the diving data within the working time interval using the Z-score method is obtained, and a quantity obtained by multiplying the quantity obtained after the standardization by the offset calibration factor value is defined as the calibrated diving data. The calibrated diving data is compared with the basic diving data, that is, the quantity obtained by subtracting the basic diving data from the calibrated diving data is defined as the diving period offset. , and for the diving period offset perform a confirmation process:
[0059] If the diving period offset is lower than the defined diving period offset critical value, a reasonable message is formed; it represents that the diving of the semi-submersible barge is reasonable, that is, the semi-submersible barge successfully performs the diving task according to the set requirements.
[0060] If the diving period offset is not lower than the defined diving period offset critical value, an abnormal message is formed. It represents that the diving of the semi-submersible barge is abnormal, that is, the semi-submersible barge fails to successfully perform the diving task according to the set requirements. The diving period offset critical value can be set according to specific requirements.
[0061] When forming a reasonable message or an abnormal message, it is beneficial to directly determine whether the diving of the semi-submersible barge is reasonable, and it is beneficial to make focused control accordingly, thereby improving the knowability and stability of the diving of the semi-submersible barge.
[0062] Under the condition of obtaining an abnormal message, sample the diving condition data of the power mechanism, and perform an estimation process for the abnormal diving of the power mechanism during the period on the diving condition data, that is, analyze from the diving state of the power mechanism, and jointly analyze with the disturbance weight of each power mechanism, thereby improving the analysis accuracy of the power mechanism. In a preferred but non-limiting embodiment of the present invention, in S2 to S3, the method for estimating the abnormal diving of the power mechanism during the period includes:
[0063] Define the number of power mechanisms in the semi-submersible barge as , is a positive integer. Obtain the diving condition data of each power mechanism in the semi-submersible barge within the working time interval. The diving condition data includes a state estimation factor and an attribute presentation factor. The quantity obtained by multiplying the state estimation factor by the attribute presentation factor is defined as the power mechanism estimation factor. Obtain the corresponding reasonable working disturbance weight and the abnormal working disturbance weight ;
[0064] Obtain the product of the power mechanism estimation factor of each power mechanism and the corresponding reasonable working disturbance weight or the abnormal working disturbance weight The quantity obtained is defined as the diving obstacle estimation factor , and for the diving obstacle estimation factor perform a confirmation process:
[0065] If the diving obstacle estimation factor is not lower than the defined critical value of the diving obstacle estimation factor (the critical value of the diving obstacle estimation factor can be set according to specific requirements), it is determined that the corresponding power mechanism is a disturbance power mechanism, and the corresponding number of the disturbance power mechanism is divided by The quotient obtained is defined as the diving abnormal disturbance factor, and a confirmation process is performed on the diving abnormal disturbance factor:
[0066] If the diving abnormal disturbance factor is lower than the defined critical value of the diving abnormal disturbance factor (the critical value of the diving abnormal disturbance factor can be set according to specific requirements), a compliance message is formed; the compliance message represents that the diving abnormality of the semi-submersible barge is not caused by the disturbance of the power mechanism.
[0067] If the diving abnormal disturbance factor is not lower than the defined critical value of the diving abnormal disturbance factor, a diving disturbance message is formed. The diving disturbance message represents that the diving abnormality of the semi-submersible barge is caused by the disturbance of the power mechanism. When forming the compliance message or the diving disturbance message, it is advisable to directly determine whether the diving abnormality of the semi-submersible barge is caused by the disturbance of the power mechanism.
[0068] In this application, the state estimation factor represents the number of the parameter data of each power mechanism outside the set range (the set range is the reasonable working range of the power mechanism), and the parameter data includes the output power of the generator of the power mechanism (obtained by sampling through a power sensor) or the oil pressure of the fuel of the electromechanical equipment of the power mechanism (obtained by sampling through an oil pressure sensor), etc., and the state estimation factor is a function parameter reflecting the failure of the power mechanism.
[0069] In this application, the attribute presentation factor represents the quantity obtained by subtracting the temperature value at the start of the operation of each power mechanism from the highest temperature value during the operation of the power mechanism (the temperature value is obtained by sampling through a temperature sensor), and the higher the value of the attribute presentation factor, the higher the probability risk of abnormality of the power mechanism.
[0070] Perform a working correction estimation segmentation response analysis on the diving disturbance data according to the data recursion method, so as to determine the reasonable working disturbance weight or the abnormal working disturbance weight of each power mechanism. In the preferred but non-limiting embodiment of the present invention, in S4, the working correction estimation segmentation response analysis method includes:
[0071] Obtain the diving disturbance data of each power mechanism in the semi-submersible barge during the working time interval, and the diving disturbance data includes the internal loss estimation factor and the obstacle evaluation value;
[0072] In this application, the internal loss estimation factor represents the quantity obtained by first standardizing the input current value and input voltage value of each power mechanism through the Z-score method, and then multiplying all the quantities obtained after the standardization process. This resulting quantity is regarded as the internal loss estimation factor.
[0073] In this application, the obstacle evaluation value represents the number of input current values of each power mechanism within the set reasonable input current value range (this reasonable input current value range is the reasonable current value range that the power mechanism is subject to). The higher the value of the obstacle evaluation value, the higher the probability of abnormal diving of each power mechanism.
[0074] Compare the internal loss estimation factor and the obstacle evaluation value with the defined internal loss estimation factor critical value and the defined obstacle evaluation value critical value (the defined internal loss estimation factor critical value and the defined obstacle evaluation value critical value can be set according to specific requirements). Define the quantity obtained by adding the numbers in the internal loss estimation factor and the obstacle evaluation value that are respectively higher than the defined internal loss estimation factor critical value and the defined obstacle evaluation value critical value as the estimation risk factor. If the estimation risk factor is 0, it is determined that the corresponding power mechanism is a reasonable power mechanism. If the estimation risk factor is non-zero, it is determined that the corresponding power mechanism is a disturbed power mechanism.
[0075] In a preferred but non-limiting embodiment of the present invention, in S4, the quantity obtained by multiplying the internal loss estimation factor of the reasonable power mechanism by the obstacle evaluation value is defined as the reasonable operation estimation factor. The number of reasonable operation estimation factors of the reasonable power mechanism within the defined reasonable operation estimation factor range (the reasonable operation estimation factor range can be set according to specific requirements) is used as the reasonable working disturbance weight The quantity obtained by multiplying the internal loss estimation factor of the abnormal power mechanism by the obstacle evaluation value is defined as the abnormal operation estimation factor. The abnormal working disturbance weight of the abnormal operation estimation factor of the disturbed power mechanism within the defined abnormal operation estimation factor range (the abnormal operation estimation factor range can be set according to specific requirements) is obtained , where and are both positive integers.
[0076] In this application, a set of working disturbance boundary values is set for the defined reasonable operation estimation factor range of the reasonable power mechanism, and , a set of abnormal working disturbance boundary values is set for the defined abnormal operation estimation factor range of the abnormal power mechanism, and .
[0077] Under abnormal message conditions, perform segmentation and analysis of the external diving disturbance estimation function during the diving assisted by a semi-submersible barge. In a preferred but non-limiting embodiment of the present invention, in S5, the method for segmenting and analyzing the external diving disturbance estimation function includes:
[0078] Obtain the assisting devices of the semi-submersible barge during the working time interval. The assisting devices include the ventilation pipe and air pipe of the semi-submersible barge. Obtain the external diving disturbance data of each assisting device. The method for obtaining the external diving disturbance data is as follows: First, obtain all the wind speed values of the assisting device whose wind speed (the wind speed can be sampled by a wind speed sensor) is lower than the defined wind speed critical value (this critical value can be set according to specific requirements). Multiply the quantity obtained by normalizing all the wind speed values by the Z-score method by the working presentation level to obtain the quantity as the external diving disturbance data, and perform confirmation processing on the external diving disturbance data. If the external diving disturbance data is not lower than the defined external diving disturbance data critical value, it is determined that the corresponding assisting device is a diving disturbance device.
[0079] In a preferred but non-limiting embodiment of the present invention, in S5, divide the number of diving disturbance devices by the total number of assisting devices to obtain the quantity as the assisting diving estimation factor, and perform confirmation processing on the assisting diving estimation factor:
[0080] If the assisting diving estimation factor is lower than the defined assisting diving estimation factor critical value (this critical value can be set according to specific requirements), a stable message is formed; the stable message indicates that the assisting device is not an abnormal disturbance factor in the diving process of the semi-submersible barge.
[0081] If the assisting diving estimation factor is not lower than the defined assisting diving estimation factor critical value, an action message is formed. The action message indicates that the assisting device is an abnormal disturbance factor in the diving process of the semi-submersible barge. When forming a stable message or an action message, it is advisable to directly determine whether the assisting device is an abnormal disturbance factor in the diving process of the semi-submersible barge, and it is advisable to perform focused control on the diving disturbance devices, thereby improving the diving stability and reliability of the semi-submersible barge.
[0082] In this application, the working presentation level represents the set level value (this value can be set according to specific requirements) corresponding to the wind pressure of the assisting device being within the defined wind pressure range (this range can be several ranges set according to specific requirements). The higher the value of the working presentation level, the higher the probability of abnormality of the assisting device.
[0083] Each defined wind pressure category is set with a set level value, and the set level value increases with the increase of the defined wind pressure category, that is, the set level value corresponding to the first defined wind pressure category is lower than the set level value corresponding to the second defined wind pressure category, and the set level value corresponding to the second defined wind pressure category is lower than the set level value corresponding to the third defined wind pressure category. Similarly, the order of the set level values corresponding to other wind pressure categories can be obtained.
[0084] In short, the present application performs analysis during the diving of the semi-submersible barge, thereby determining whether the diving of the semi-submersible barge is reasonable, that is, performs analysis on the diving data to estimate the hidden dangers of abnormalities during the diving period, which is suitable for directly determining whether the diving of the semi-submersible barge is reasonable, and making focused control based on the obtained results, thereby improving the dive visibility and stability of the semi-submersible barge; and performs analysis on the power mechanism and the auxiliary device through the obtained results, which is suitable for confirming whether the diving abnormality of the semi-submersible barge is caused by the abnormalities of the power mechanism and the auxiliary device, and making focused control on the power mechanism or the auxiliary device based on the obtained results, so as to improve the stability and reliability of the diving process of the power mechanism.
[0085] like Figure 2 As shown, the measurement data processing platform based on semi-submersible barge launching control of the present invention comprises:
[0086] The estimation module is used to sample the diving data during the diving of the semi-submersible barge, and perform an estimation analysis of the abnormal hidden dangers during the diving period on the diving data, and obtain the diving period offset Perform confirmation processing to obtain reasonable information or abnormal information;
[0087] The response module is used to sample the diving status data and diving disturbance data of the power mechanism under the condition of abnormal information, send the diving disturbance data to S4 to perform work correction estimation and segmentation response analysis, and perform the diving abnormality estimation and treatment of the power mechanism during the diving status data;
[0088] A confirmation module is used to perform confirmation processing on the obtained diving abnormal disturbance factor according to the diving abnormality estimation processing of the power mechanism during the period, so as to obtain a standard-reaching message or a diving disturbance message;
[0089] The analysis module is used to perform work correction estimation, segmentation and response analysis on the submerged disturbance data based on the data recursion method, and obtain the reasonable work disturbance weight and abnormal working disturbance weight Send back to S3;
[0090] A disposal module, which is used to perform segmentation analysis of the external diving disturbance estimation function during the assisted diving of a semi-submersible barge under the condition of an abnormal message, and perform confirmation disposal on the obtained assisted diving evaluation factors, so as to obtain stable messages or function messages.
[0091] The beneficial effects of the present invention are that, compared with the prior art, the technical effects of the present invention include:
[0092] By performing analysis during the diving of the semi-submersible barge, it is possible to grasp whether the diving during the diving of the semi-submersible barge is reasonable, that is, to perform analysis of the abnormal hidden dangers during the diving period on the diving data, which is conducive to directly grasping whether the diving of the semi-submersible barge is reasonable, and is conducive to making focused control based on the obtained results, thereby improving the knowability and stability of the diving of the semi-submersible barge; and by performing analysis on the obtained results from two aspects of the power mechanism and the assisting device, it is conducive to confirming whether the abnormal diving of the semi-submersible barge is caused by the abnormality of the power mechanism and the assisting device, and is conducive to performing focused control on the power mechanism or the assisting device based on the obtained results to improve the stability and reliability of the diving process of the power mechanism.
[0093] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that: still can modify or equivalently replace the specific implementation manners of the present invention, and any modification or equivalent replacement without departing from the spirit and scope of the present invention shall be covered within the protection scope of the claims of the present invention.
Claims
1. A method for processing measurement data based on the control of semi-submersible barge launching, characterized in that Including: S1, sample the diving data during the diving of the semi-submersible barge, perform an analysis of the potential risks of abnormal periods during the diving on the diving data, and obtain the diving period offset perform a confirmation and handling to obtain reasonable information or abnormal information; S2. Under the condition of abnormal messages, sample the diving condition data and diving disturbance data of the power mechanism, send the diving disturbance data to S4 to perform work correction estimation segmentation response analysis, and perform period power mechanism diving anomaly estimation and disposal on the diving condition data; S3. According to the diving anomaly disturbance factor obtained by the period power mechanism diving anomaly estimation and disposal, perform verification processing on the obtained diving anomaly disturbance factor to obtain a compliance message or a diving disturbance message; S4, perform working correction estimation segmentation response analysis on the diving disturbance data according to the data recursion method, and send the obtained reasonable working disturbance weight and the abnormal working disturbance weight back to S3; S5. Under the condition of abnormal messages, perform external diving disturbance estimation function segmentation analysis on the assisted diving aspect by the semi-submersible barge, perform verification processing on the obtained assisted diving evaluation factor, and thus obtain a stable message or a function message.
2. The measurement data processing method based on semi-submersible barge launching control according to claim 1, wherein In S1, the period anomaly risk estimation and analysis method during diving includes: Define the total diving period of the semi-submersible barge as the working time interval, obtain the diving data of the semi-submersible barge during the working time interval, and obtain the basic diving data of the reasonably diving semi-submersible barge; Obtain the state function data of the semi-submersible barge during the working time interval, define the number of state function data exceeding the defined critical value as the working function factor, and then obtain the offset calibration factor corresponding to the working function factor within the defined working function factor range.
3. The measurement data processing method based on the semi-submersible barge launching control according to claim 2, wherein In S1, each defined working function factor range corresponds to an offset calibration factor.
4. The measurement data processing method based on semi-submersible barge launching control according to claim 3, wherein In S1, obtain the quantity obtained by standardizing the data of each type in the diving data during working hours using the Z-score method, and define the quantity obtained by multiplying the quantity obtained after the standardization by the offset calibration factor value as the calibrated diving data. Compare the calibrated diving data with the basic diving data, that is, define the quantity obtained by subtracting the basic diving data from the calibrated diving data as the diving period offset , and perform a confirmation process on the diving period offset : If the dive period offset is lower than the defined dive period offset threshold, a valid message is formed; If the dive period offset is not less than the defined dive period offset threshold value, an abnormal message is formed.
5. The measurement data processing method based on semi-submersible barge launching control according to claim 4, wherein, In S2 to S3, the period power mechanism diving anomaly estimation and disposal method includes: Define the number of power mechanisms inside the semi-submersible barge as , is a positive integer, obtain the diving condition data of each power mechanism inside the semi-submersible barge during working time. The diving condition data includes a state estimation factor and an attribute presentation factor. Define the quantity obtained by multiplying the state estimation factor by the attribute presentation factor as the power mechanism estimation factor, and obtain the corresponding reasonable working disturbance weight and the abnormal working disturbance weight ; Obtain the product of the power mechanism estimation factor of each power mechanism and the corresponding reasonable working disturbance weight or the abnormal working disturbance weight and define the resulting quantity as the diving obstacle estimation factor , and perform a confirmation process on the diving obstacle estimation factor : Execute the confirmation process If the diving obstacle estimation factor is not lower than the defined critical value of the diving obstacle estimation factor, it is determined that the corresponding power mechanism is a disturbance power mechanism, and the corresponding number of the disturbance power mechanism is divided by The quotient obtained is defined as the diving anomaly disturbance factor, and the confirmation and disposal are performed on the diving anomaly disturbance factor: If the diving anomaly disturbance factor is lower than the defined diving anomaly disturbance factor critical value, a compliance message is formed; If the diving anomaly disturbance factor is not lower than the defined diving anomaly disturbance factor critical value, a diving disturbance message is formed.
6. The measurement data processing method based on semi-submersible barge launching control according to claim 5, wherein, In S4, the work correction estimation segmentation response analysis method includes: Obtain the diving disturbance data of each power mechanism in the semi-submersible barge during the working time interval, and the diving disturbance data includes the internal loss estimation factor and the obstacle evaluation value; Compare the internal loss estimation factor and the obstacle evaluation value with the defined internal loss estimation factor critical value and the defined obstacle evaluation value critical value respectively, and define the quantity obtained by adding the numbers of the internal loss estimation factor and the obstacle evaluation value that are respectively higher than the defined internal loss estimation factor critical value and the defined obstacle evaluation value critical value as the estimation risk factor. If the estimation risk factor is 0, it is determined that the corresponding power mechanism is a reasonable power mechanism. If the estimation risk factor is non-0, it is determined that the corresponding power mechanism is a disturbed power mechanism.
7. The measurement data processing method based on semi-submersible barge launching control according to claim 6, wherein In S4, the quantity obtained by multiplying the internal loss estimation factor of the reasonable power mechanism by the obstacle evaluation value is defined as the reasonable operation estimation factor, and the number of reasonable operation estimation factors of the reasonable power mechanism falling within the defined reasonable operation estimation factor range is taken as the reasonable working disturbance weight , the quantity obtained by multiplying the internal loss estimation factor of the abnormal power mechanism by the obstacle evaluation value is defined as the abnormal operation estimation factor, and the abnormal working disturbance weight of the abnormal operation estimation factor of the disturbance power mechanism falling within the defined abnormal operation estimation factor range is obtained , where and are all positive integers.
8. The measurement data processing method based on semi-submersible barge launching control according to claim 7, wherein, In S5, the external diving disturbance estimation function segmentation analysis method includes: Obtain the assisting devices of the semi-submersible barge during the working time interval, obtain the external diving disturbance data of each assisting device, and perform verification processing on the external diving disturbance data. If the external diving disturbance data is not lower than the defined external diving disturbance data critical value, it is determined that the corresponding assisting device is a diving disturbance device.
9. The measurement data processing method based on semi-submersible barge launching control according to claim 8, characterized in that In S5, the quantity obtained by dividing the number of diving disturbance devices by the total number of assisting devices is used as the assisted diving estimation factor, and verification processing is performed on the assisted diving estimation factor: If the assisted diving estimation factor is lower than the defined assisted diving estimation factor critical value, a stable message is formed; If the assisted diving estimation factor is not lower than the defined assisted diving estimation factor critical value, a function message is formed.
10. A measurement data processing platform based on semi-submersible barge launching control, characterized in that, Including: An estimation module is configured to sample diving data during the diving of a semi-submersible barge, perform an estimation analysis of potential anomalies during the diving period on the diving data, and obtain the obtained diving period offset Execute a confirmation process to obtain a reasonable message or an abnormal message; A response module, which is used to sample the diving condition data and diving disturbance data of the power mechanism under the condition of abnormal messages, send the diving disturbance data into S4 to perform work correction estimation segmentation response analysis, and perform abnormal estimation processing of the diving of the power mechanism during the period on the diving condition data; A confirmation module, which is used to perform confirmation processing on the obtained diving abnormal disturbance factor according to the diving abnormal disturbance factor obtained under the abnormal estimation processing of the power mechanism during the period, so as to obtain a qualified message or a diving disturbance message; The parsing module is used to perform work correction estimation segmentation response parsing on the diving disturbance data according to the data recursion method, and send the obtained reasonable work disturbance weight and the abnormal work disturbance weight back to S3; A processing module, which is used to perform external diving disturbance estimation function segmentation analysis on the assisted diving aspect with the help of a semi-submersible barge under the condition of abnormal messages, perform confirmation processing on the obtained assisted diving evaluation factor, and thus obtain a stable message or a function message.
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