A biological resource transportation process monitoring method and system
By analyzing the hierarchical structure and real-time vibration data of transport boxes, a multi-dimensional vibration risk assessment mechanism for the transportation process of biological resources was established, which solved the problem of lack of multi-dimensional assessment and forward-looking warning in the existing system, achieved accurate risk assessment and route optimization of the transportation process, and reduced the damage rate of biological resources.
Patent Information
- Application Number
- CN202510856332.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2045-06-25
AI Technical Summary
The existing biological resource transportation monitoring system lacks multi-dimensional vibration assessment and forward-looking risk warning, resulting in a high loss rate in the transportation of high-value biological resources.
By acquiring the hierarchical structure data and real-time vibration monitoring data of the transport boxes, the inherent vibration resistance defect degree and dynamic vibration impact degree of the transport boxes are analyzed, a risk assessment model for biological resource damage caused by vibration is established, and a path correction warning is issued when the risk assessment exceeds the threshold.
Accurately quantify the vibration conductivity and energy retention intensity of transport boxes, improve the timeliness of dynamic vibration impact warnings, reduce the transportation damage rate of highly active biological resources, and reduce the excessive use of protective materials.
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Figure CN120373996B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of online monitoring, and relates to a method and system for monitoring a biological resource transportation process. Background Art
[0002] Biological resources (such as cell samples, microbial strains, living tissues and blood samples) face a complex mechanical vibration environment during cold chain transportation. The attenuation of biological activity or physical damage caused by vibration impact has become a core pain point in the industry. Existing transport monitoring systems commonly suffer from the following technical deficiencies: First, the monitoring dimension is too simplistic. Most solutions only use accelerometers to measure the overall vibration magnitude, but ignore the layered attenuation characteristics of the transport box's internal shock-absorbing structure (such as the material density distribution and interface coupling effects of the foam layer, gel layer, and vacuum barrier). This makes it impossible to quantify the inherent vibration resistance of the box itself, resulting in inaccurate assessments of the vibration energy transmission path. Second, dynamic risk modeling is insufficient. Traditional methods separate and analyze transport data (such as the road bump index and vehicle speed mutation frequency) from the box's structural parameters. They neither establish a dynamic displacement energy accumulation model for biological resources (affected by the damping properties of internal fillings) nor provide early warning for the threat of load center of gravity shift caused by sustained vibration (especially the inertial impact on liquid samples). This results in a significant lag in the assessment of dynamic vibration impact levels. Third, the risk response mechanism is rigid. Existing systems often trigger alarms only after damage occurs. There is a lack of a forward-looking risk assessment model based on the coupled analysis of vibration conductivity, energy retention intensity, and displacement energy to proactively suppress vibration energy transmission. These defects have led to a long-term high loss rate in the transportation of high-value biological resources, and there is an urgent need to build an intelligent early warning mechanism that integrates box structure defect diagnosis and dynamic impact evolution. Summary of the Invention
[0003] The technical problem to be solved by the present invention is that in the existing technology, the transportation monitoring dimension of biological resources is single and there is a lack of a forward-looking monitoring mechanism. A method and system for monitoring the transportation process of biological resources are proposed.
[0004] In order to achieve the above-mentioned object, the technical solution of a biological resource transportation process monitoring method of the present invention comprises the following steps:
[0005] Step 1: Acquire hierarchical structure data and real-time transportation data of the biological resource transport box, and simultaneously acquire vibration monitoring data of the biological resource transport box;
[0006] Step 2: Analyze the inherent vibration resistance of the biological resource transport box based on the hierarchical structure data and vibration monitoring data;
[0007] Step 3: Analyze the dynamic vibration impact during transportation based on hierarchical structure data and real-time transportation data;
[0008] Step 4: Based on the analysis results of the inherent vibration resistance defects and dynamic vibration impact degree of the biological resource transport box, assess the risk of biological resource damage due to vibration;
[0009] Step 5: Based on the results of the risk assessment of biological resources being damaged by vibration, an early warning of transportation route correction is issued.
[0010] Preferably, the step 2 of analyzing the inherent vibration resistance defect degree of the biological resource transport box based on the hierarchical structure data and the vibration monitoring data includes the following specific steps:
[0011] A21: Extract hierarchical structure data and vibration monitoring data of biological resource transport boxes;
[0012] A22: Based on the hierarchical structure data and vibration monitoring data, the inherent vibration resistance defect degree of the biological resource transport box is analyzed to obtain the analysis results of the inherent vibration resistance defect degree of the biological resource transport box.
[0013] Preferably, the step A22 includes the following specific steps:
[0014] A221: Based on the layered structure data and vibration monitoring data, the vibration conductivity of each shock-absorbing layer of the biological resource transport box is analyzed to obtain the layered vibration conductivity analysis results of the biological resource transport box;
[0015] A222: Based on the layered structure data and vibration monitoring data, the retention strength of vibration energy in the gaps of the shock-absorbing layer of the biological resource transport box is analyzed to obtain the energy retention strength analysis results of the shock-absorbing layer;
[0016] A223: Based on the analysis results of the layered vibration conductivity of the biological resource transport box and the analysis results of the energy retention strength of the shock-absorbing layer, the inherent vibration resistance defect degree of the biological resource transport box is analyzed, and the analysis results of the inherent vibration resistance defect degree of the biological resource transport box are obtained.
[0017] Preferably, in step 3, analyzing the degree of dynamic vibration impact during the transportation process based on the hierarchical structure data and the real-time transportation data includes the following specific steps:
[0018] B31: Extract hierarchical structure data and real-time transportation data of biological resource transportation boxes;
[0019] B32: Based on the hierarchical structure data and real-time transportation data, the dynamic vibration impact degree of the transportation process is analyzed to obtain the dynamic vibration impact degree analysis results.
[0020] Preferably, step B32 includes the following specific steps:
[0021] B321: Based on hierarchical structure data and real-time transportation data, the dynamic displacement energy accumulation degree of biological resources during transportation is analyzed to obtain the dynamic displacement energy analysis results of biological resources;
[0022] B322: Based on hierarchical structure data and real-time transportation data, analyze the threat level of load center of gravity shift caused by vibration to biological resources and obtain the load center of gravity shift threat analysis results;
[0023] B323: Based on the results of the dynamic displacement energy analysis of biological resources and the threat analysis results of load center of gravity shift, the dynamic vibration impact degree of the transportation process is analyzed to obtain the dynamic vibration impact degree analysis results.
[0024] Preferably, in step 4, the risk of damage to biological resources due to vibration is assessed based on the analysis results of the inherent vibration resistance defect degree and the dynamic vibration impact degree of the biological resource transport box, including the following specific steps:
[0025] C41: The inherent vibration resistance defect analysis results and dynamic vibration impact analysis results of the biological resource transport box obtained by extraction and analysis;
[0026] C42: Based on the analysis results of the inherent vibration resistance defect level and the dynamic vibration impact level of the biological resource transport box, the risk of biological resource damage due to vibration is assessed, and the assessment results of the risk of biological resource damage due to vibration are obtained.
[0027] Preferably, in step 5, according to the risk assessment result of biological resource damage due to vibration, an early warning of transportation route correction is performed, which includes the following specific steps:
[0028] D51: Extract the assessment results of the risk of damage to biological resources caused by vibration;
[0029] D52: A vibration risk threshold is preset. When the risk assessment result of biological resource damage due to vibration is greater than the vibration risk threshold, a warning of transportation route correction is issued.
[0030] In addition, the biological resource transportation process monitoring system of the present invention includes the following modules:
[0031] Data acquisition module, inherent vibration resistance defect analysis module, dynamic vibration impact analysis module, biological resource vibration risk assessment module, path correction warning module and control module;
[0032] The data acquisition module is used to acquire hierarchical structure data and real-time transportation data of the biological resource transport box, and simultaneously acquire vibration monitoring data of the biological resource transport box;
[0033] The inherent vibration resistance defect analysis module is used to analyze the inherent vibration resistance defect level of the biological resource transport box based on the hierarchical structure data and the vibration monitoring data;
[0034] The dynamic vibration impact analysis module is used to analyze the degree of dynamic vibration impact during the transportation process based on the hierarchical structure data and real-time transportation data;
[0035] The biological resource vibration risk assessment module is used to assess the risk of biological resource damage due to vibration based on the analysis results of the inherent vibration resistance defect degree and the dynamic vibration impact degree of the biological resource transport box;
[0036] The route correction warning module is used to perform transportation route correction warning based on the risk assessment results of biological resources being damaged by vibration;
[0037] The control module is used to control the operation of the data acquisition module, the inherent vibration resistance defect analysis module, the dynamic vibration impact analysis module, the biological resource vibration risk assessment module and the path correction warning module.
[0038] A storage medium stores instructions, and when a computer reads the instructions, the computer executes the method for monitoring the transportation process of biological resources.
[0039] An electronic device includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the above-mentioned method for monitoring the transportation process of biological resources is implemented.
[0040] Compared with the prior art, the technical effects of the present invention are as follows:
[0041] The present invention constructs a multi-dimensional vibration risk joint control mechanism by integrating the dynamic characteristics of the layered structure of the transport box with the real-time transport environment parameters, and specifically achieves the following technical effects: the present invention accurately quantifies the inherent defects of the box, and based on the analysis of layered vibration conductivity (such as the energy dissipation efficiency of the material interface of each shock-absorbing layer) and the calculation of the energy retention strength of the shock-absorbing layer (reflecting the aggregation effect of the void structure on the vibration energy), realizes the positioning diagnosis of the anti-vibration weak layer, and improves the detection rate of the box structure defects; in addition, the present invention models the dynamic impact in real time, and through the dynamic position motion energy accumulation model of biological resources (quantifying the inertial kinetic energy generated by the sample due to non-uniform acceleration) and the load center of gravity offset threat assessment (predicting the sloshing or The present invention can also be used to predict the risk of stacked samples overturning), and expand the assessment dimension of vibration impact from a single amplitude to the energy-displacement-center of gravity multi-physics field coupling level, thereby improving the timeliness of dynamic vibration impact warning. The present invention also has the ability to actively suppress risks. Relying on the collaborative analysis of the inherent vibration resistance defect level and the dynamic vibration impact level, a vibration damage risk prediction model is established (such as the probability of resonant fracture caused by the superposition of energy retention intensity and displacement energy). When the risk assessment value exceeds the preset threshold, the path correction warning is automatically triggered to reduce the vibration energy peak throughout the transportation process. The present invention significantly reduces the transportation damage rate of highly active biological resources (such as stem cells and pathogenic microorganisms), while reducing the cost of excessive use of protective materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0042] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort. Among them:
[0043] Figure 1 Schematic diagram of a process for monitoring a biological resource transportation process according to the present invention;
[0044] Figure 2 This is a structural diagram of a biological resource transportation process monitoring system of the present invention. DETAILED DESCRIPTION
[0045] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.
[0046] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0047] Secondly, the term "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in various places throughout this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive of other embodiments.
[0048] Example 1:
[0049] like Figure 1 As shown, a biological resource transportation process monitoring method according to an embodiment of the present invention;
[0050] It should be noted that the setting parameters (such as weights and thresholds) in this embodiment are obtained by experiments by those skilled in the art. The specific experimental method is: obtaining hierarchical structure data and real-time transportation data of historical multiple transportation tasks, and simultaneously obtaining vibration detection data and biological resource damage record data of corresponding transportation boxes, and substituting them into each step in this embodiment to perform biological resource vibration damage risk assessment of historical multiple transportation tasks, and simultaneously obtaining actual biological resource damage results of historical multiple transportation tasks, and importing the actual biological resource damage results of historical multiple transportation tasks and the historical biological resource vibration damage risk assessment results obtained in each step into the fitting software for continuous fitting to obtain the setting parameters (such as weights and thresholds) that meet the maximum risk assessment accuracy.
[0051] For example, in another embodiment of the present technical solution, Figure 1 As shown, a method for monitoring the biological resource transportation process includes the following specific steps:
[0052] Step 1: Acquire hierarchical structure data and real-time transportation data of the biological resource transport box, and simultaneously acquire vibration monitoring data of the biological resource transport box;
[0053] For example, in another embodiment of the present technical solution, step 2: analyzing the inherent vibration resistance defect degree of the biological resource transport box based on the hierarchical structure data and the vibration monitoring data, includes the following specific steps:
[0054] A21: Extract hierarchical structure data and vibration monitoring data of biological resource transport boxes;
[0055] A22: Based on the hierarchical structure data and vibration monitoring data, the inherent vibration resistance defect degree of the biological resource transport box is analyzed to obtain the analysis results of the inherent vibration resistance defect degree of the biological resource transport box.
[0056] For example, in another embodiment of the present technical solution, step A22 includes the following specific steps:
[0057] A221: Based on the layered structure data and vibration detection data, the vibration conductivity of each shock-absorbing layer of the transport box is analyzed to obtain the layered vibration conductivity analysis results of the transport box. The aging coefficient of the shock-absorbing layer of the transport box will increase the transmission efficiency of vibration energy in the box structure. At the same time, the elastic modulus of the shock-absorbing layer material will affect the vibration energy absorption capacity, which in turn affects whether the vibration will be timely attenuated during transportation. Therefore, this step analyzes the deformation angle of the shock-absorbing layer to quantify its elastic properties, and analyzes the aging coefficient of the shock-absorbing layer to quantify its energy transfer efficiency and the degree of vibration energy retention. By quantifying the intensity of vibration energy, the differences in vibration transmission at different transportation stages are analyzed, realizing the analysis of the impact of the structural characteristics of the transport box material on vibration transmission. The layered vibration conductivity calculation strategy is as follows:
[0058] ;
[0059] in, is the layered vibration transmissibility of the transport box, is the initial vibration energy of the transport box in the vibration detection data, E is the current vibration energy of the transport box in the vibration detection data, A is the aging coefficient of the shock-absorbing layer in the layered structure data, is the deformation angle of the shock-absorbing layer material in the layered structure data. It should be noted that according to Hooke's law, the material deformation angle reflects the energy absorption capacity;
[0060] It should be noted that aging causes the elastic modulus of the material to increase, and the vibration transmission efficiency to improve (i.e., vibration conductivity ↑);
[0061] A222: Based on the layered structure data and vibration detection data, the retention intensity of vibration energy in the gaps of the transport box's shock-absorbing layer is analyzed to obtain the analysis results of the shock-absorbing layer's energy retention intensity. The thickness and gaps of the transport box's shock-absorbing layer affect the residence time of the vibration energy generated during transportation in the structural gaps. The damping coefficient of the vibration energy (it should be noted that in this embodiment, the energy attenuation rate is measured by a vibration sensor as the damping coefficient) and the vibration frequency of the transport vehicle during driving will affect the retention state of energy in the gaps of the shock-absorbing layer. Therefore, in this embodiment, the retention intensity of vibration energy in the gaps of the transport box's shock-absorbing layer is quantified. The calculation strategy for the shock-absorbing layer's energy retention intensity is as follows:
[0062] ;
[0063] in, is the energy retention strength of the shock-absorbing layer, h is the thickness of the shock-absorbing layer in the hierarchical structure data, s is the gap between the shock-absorbing layers in the hierarchical structure data, is the vibration energy damping coefficient in the vibration detection data, is the vibration energy density in the vibration detection data, and f is the vibration frequency of the transport vehicle in the real-time transport data;
[0064] It should be noted that the ratio of the thickness of the shock-absorbing layer in the layered structure data to the gap between the shock-absorbing layers in the layered structure data determines the conditions for the formation of standing waves, and the two together constitute the structural factor of the biological resource transport box;
[0065] It should also be noted that for the damping term , which reflects the balance relationship between damping and excitation, is the kinematic viscosity, which determines the energy decay rate, and , that is, the product of the vibration frequency and the gap represents the eddy current scale;
[0066] A223: Based on the analysis results of the transport box's layered vibration transmissibility and the shock-absorbing layer's energy retention strength, the inherent vibration resistance defect of the transport box is analyzed to obtain the inherent vibration resistance defect analysis results of the transport box. This step quantifies the vibration resistance defect by integrating the layered vibration transmissibility and the shock-absorbing layer's energy retention strength, thereby achieving an analysis of the inherent vibration resistance defect of the transport box. The calculation strategy for the inherent vibration resistance defect of the transport box is as follows:
[0067] ;
[0068] in, is the inherent vibration resistance defect of the transport box, They are the influence weight of layered vibration conductivity and the influence weight of energy retention intensity respectively.
[0069] For example, in another embodiment of the present technical solution, step three: analyzing the degree of dynamic vibration impact during the transportation process based on the hierarchical structure data and the real-time transportation data, includes the following specific steps:
[0070] B31: Extract hierarchical structure data and real-time transportation data of biological resource transportation boxes;
[0071] B32: Based on the hierarchical structure data and real-time transportation data, the dynamic vibration impact degree of the transportation process is analyzed to obtain the dynamic vibration impact degree analysis results.
[0072] For example, in another embodiment of the present technical solution, step B32 includes the following specific steps:
[0073] B321: Based on hierarchical structure data and real-time transportation data, the dynamic displacement energy accumulation degree of biological resources during transportation is analyzed to obtain the dynamic displacement energy analysis results of biological resources. This step analyzes the biological resource displacement driving force generated by the vibration energy of the transportation box, thereby quantifying the dynamic displacement energy accumulation degree of biological resources during transportation. This is used to analyze the driving effect of vibration energy on biological resource displacement. The calculation strategy for the dynamic displacement energy accumulation degree of biological resources is as follows:
[0074] ;
[0075] in, is the accumulation degree of dynamic displacement energy of biological resources, m is the mass of biological resources; a is the vibration acceleration of the transport box at time t in the real-time transportation data, and w is the vibration angular velocity of the transport box at time t in the real-time transportation data; The maximum vibration angular velocity allowed for the transport box in the real-time transport data; f is the vibration frequency of the transport box at time t in the real-time transport data; t is the total transport time in the real-time transport data, is the internal dimensions of the transport box in the hierarchical structure data, is the size of biological resources in hierarchical structure data; it should be noted that and The ratio of the two reflects the relative space of biological resources in the box;
[0076] B322: Based on hierarchical structure data and real-time transportation data, the threat level of load center of gravity shift caused by vibration in biological resources is analyzed, and the load center of gravity shift threat analysis results are obtained. The stacking stability coefficient of biological resources can reflect their anti-tipping ability. When the transport box is subjected to vibration impact, the lower the stability coefficient, the more likely the biological resources will be damaged due to center of gravity shift, further increasing the vibration risk. Therefore, this step analyzes the threat level of load center of gravity shift during transportation by interactively analyzing the stacking stability coefficient of biological resources and the vibration energy of the transport box during transportation. The calculation strategy for the threat level of load center of gravity shift is as follows:
[0077] ;
[0078] in, The threat level of load center of gravity shift, The inclination angle of biological resource stacking obtained by image sensor analysis in real-time transportation data, The critical inclination angle for complete stability of biological resources; is the displacement distance of the center of gravity of the biological resource, that is, the displacement of the center of gravity caused by vibration; The maximum stacking height of biological resources in biological resource transport boxes; The maximum vibration acceleration allowed for the transport box in real-time transport data;
[0079] B323: Based on the results of the dynamic displacement energy analysis of biological resources and the threat analysis of load center of gravity shift, the dynamic vibration impact degree of the transportation process is analyzed to obtain the dynamic vibration impact degree analysis results. This step integrates the accumulation of biological resource displacement energy caused by transportation vibration parameters and the threat of center of gravity shift caused by biological resource stacking characteristics as dual risk sources, realizing the quantification of the progressive accumulation characteristics of vibration impact during transportation. The calculation strategy for the dynamic vibration impact degree of the transportation process is as follows:
[0080] ;
[0081] in, is the degree of dynamic vibration impact during transportation, The maximum displacement energy that biological resources can withstand during transportation; They are the impact weight of the position movement energy accumulation and the impact weight of the center of gravity shift threat.
[0082] For example, in another embodiment of the present technical solution, step 4: assessing the risk of biological resource damage due to vibration based on the analysis results of the inherent vibration resistance defect degree and the dynamic vibration impact degree of the biological resource transport box, includes the following specific steps:
[0083] C41: The inherent vibration resistance defect analysis results and dynamic vibration impact analysis results of the biological resource transport box obtained by extraction and analysis;
[0084] C42. Based on the analysis results of the inherent vibration resistance defects and dynamic vibration impact of the transport crates, assess the risk of biological resource damage due to vibration and obtain the risk assessment results of biological resource damage due to vibration. This step analyzes the inherent vibration resistance defects and dynamic vibration impact of the transport crates as the main risk sources of biological resource damage and conducts a comprehensive assessment of the vibration risk. The assessment formula for the risk of biological resource damage due to vibration is:
[0085] ;
[0086] in, To reduce the risk of damage to biological resources due to vibration, is the effective vibration volume of biological resources in the transport box, It is the standard volume in the transport box;
[0087] It should be noted that The negative sign in the term is mainly to make the exponential function show a "decay trend", that is, when the effective vibration volume of the biological resources in the transport box is larger, the vibration risk of the biological resources is higher, that is, when =0, exp(0)=1, then 1-1=0, which means the risk weight is 0 when there is no vibrating volume;
[0088] And when hour, , then 1-0=1, which means that the risk weight approaches 1 when the vibrated volume is extremely large.
[0089] They are the influence weights of the inherent vibration resistance defect degree and the influence weights of the dynamic vibration impact degree respectively; it should be noted that, through the denominator Convert the weighted sum into a normalized weighted average, i.e. is the normalized weight, and its sum is 1, ensuring that the contribution ratio of the two indicators is only The relative size of the weights is determined to avoid imbalance in the scale of the results due to changes in the absolute value of the weights.
[0090] For example, in another embodiment of the present technical solution, step five: based on the risk assessment results of biological resources being damaged by vibration, a warning of transportation route correction is issued.
[0091] D51: Extract the assessment results of the risk of damage to biological resources caused by vibration;
[0092] D52: A vibration risk threshold is preset. When the risk assessment result of biological resource damage due to vibration is greater than the vibration risk threshold, a warning of transportation route correction is issued.
[0093] Example 2:
[0094] like Figure 2 As shown, a biological resource transportation process monitoring system according to an embodiment of the present invention is as follows: Figure 2 As shown, it includes the following modules:
[0095] Data acquisition module, inherent vibration resistance defect analysis module, dynamic vibration impact analysis module, biological resource vibration risk assessment module, path correction warning module and control module;
[0096] The data acquisition module is used to acquire hierarchical structure data and real-time transportation data of the biological resource transport box, and simultaneously acquire vibration monitoring data of the biological resource transport box;
[0097] The inherent vibration resistance defect analysis module is used to analyze the inherent vibration resistance defect level of the biological resource transport box based on the hierarchical structure data and the vibration monitoring data;
[0098] The dynamic vibration impact analysis module is used to analyze the degree of dynamic vibration impact during the transportation process based on the hierarchical structure data and real-time transportation data;
[0099] The biological resource vibration risk assessment module is used to assess the risk of biological resource damage due to vibration based on the analysis results of the inherent vibration resistance defect degree and the dynamic vibration impact degree of the biological resource transport box;
[0100] The route correction warning module is used to perform transportation route correction warning based on the risk assessment results of biological resources being damaged by vibration;
[0101] The control module is used to control the operation of the data acquisition module, the inherent vibration resistance defect analysis module, the dynamic vibration impact analysis module, the biological resource vibration risk assessment module and the path correction warning module.
[0102] Example 3:
[0103] This embodiment provides an electronic device, comprising: a processor and a memory, wherein the memory stores a computer program that can be called by the processor;
[0104] The processor executes the above-mentioned method for monitoring the transportation process of biological resources by calling the computer program stored in the memory.
[0105] This electronic device can vary significantly depending on its configuration or performance. It can include one or more processors (Central Processing Units, CPUs) and one or more memories, wherein the memories store at least one computer program, which is loaded and executed by the processor to implement the method for monitoring the biological resource transportation process provided in the above-mentioned method embodiment. The electronic device can also include other components for implementing the device's functions. For example, the electronic device can also include components such as wired or wireless network interfaces and input / output interfaces for data input and output. This embodiment is not described in detail here.
[0106] Example 4:
[0107] This embodiment provides a computer-readable storage medium having a rewritable computer program stored thereon;
[0108] When the computer program is executed on a computer device, the computer device is caused to execute the above-mentioned method for monitoring a biological resource transportation process.
[0109] For example, computer-readable storage media can be read-only memory (ROM), random access memory (RAM), compact disc read-only memory (CD-ROM), magnetic tape, floppy disk, and optical data storage device.
[0110] It should be understood that in the various embodiments of the present application, the size of the serial numbers of the above-mentioned processes does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.
[0111] It should be understood that determining B based on A does not mean determining B based solely on A. B can also be determined based on A and / or other information.
[0112] The above embodiments can be implemented in whole or in part via software, hardware, firmware, or any other combination. When implemented using software, the above embodiments can be implemented in whole or in part in the form of a computer program product. A computer program product comprises one or more computer instructions or computer programs. When the computer instructions or computer program are loaded or executed on a computer, the processes or functions according to the embodiments of the present invention are fully or partially generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. Computer instructions can be stored in a computer-readable storage medium or transferred from one computer-readable storage medium to another. For example, computer instructions can be transferred from one website, computer, server, or data center to another website, computer, server, or data center via a wired network or / and a wireless network. The computer-readable storage medium can be any available medium accessible by a computer or a data storage device such as a server or data center that contains a collection of one or more available media. Available media can be magnetic media (e.g., floppy disks, hard disks, magnetic tapes), optical media (e.g., DVDs), or semiconductor media. The semiconductor media can be a solid-state drive.
[0113] Those skilled in the art will appreciate that the units and algorithm steps of each example described in conjunction with the embodiments disclosed in the present invention can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professionals and technicians can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of the present invention.
[0114] Those skilled in the art will clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices and units described above can refer to the corresponding processes in the aforementioned method embodiments and will not be repeated here.
[0115] In the several embodiments provided by the present invention, it should be understood that the disclosed systems, devices, and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of units is only one type. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0116] Units described as separate components may or may not be physically separate, and components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.
[0117] In addition, each functional unit in each embodiment of the present invention 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.
[0118] Throughout this specification, references to terms such as "one embodiment," "example," or "specific example" indicate that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0119] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A method for monitoring the transportation process of biological resources, characterized in that: The method comprises: Step 1: Acquire hierarchical structure data and real-time transportation data of the biological resource transport box, and simultaneously acquire vibration monitoring data of the biological resource transport box; Step 2: Analyze the inherent vibration resistance of the biological resource transport box based on the hierarchical structure data and vibration monitoring data; The second step, based on the hierarchical structure data and the vibration monitoring data, analyzes the inherent vibration resistance defect of the biological resource transport box, including the following specific steps: A21. Extract hierarchical structure data and vibration monitoring data of biological resource transport boxes; A22. Analyze the inherent vibration resistance defect level of the biological resource transport box based on the hierarchical structure data and the vibration monitoring data to obtain an analysis result of the inherent vibration resistance defect level of the biological resource transport box; The step A22 includes the following specific steps: A221: Based on the layered structure data and vibration monitoring data, the vibration conductivity of each shock-absorbing layer of the biological resource transport box is analyzed to obtain the layered vibration conductivity analysis results of the biological resource transport box; A222: Based on the layered structure data and vibration monitoring data, the retention strength of vibration energy in the gaps of the shock-absorbing layer of the biological resource transport box is analyzed to obtain the energy retention strength analysis results of the shock-absorbing layer; A223: Based on the analysis results of the layered vibration conductivity of the biological resource transport box and the analysis results of the energy retention strength of the shock absorption layer, the inherent vibration resistance defect degree of the biological resource transport box is analyzed, and the analysis results of the inherent vibration resistance defect degree of the biological resource transport box are obtained; Step 3: Analyze the dynamic vibration impact during transportation based on hierarchical structure data and real-time transportation data; Step 4: Based on the analysis results of the inherent vibration resistance defects and dynamic vibration impact degree of the biological resource transport box, assess the risk of biological resource damage due to vibration; Step 5: Based on the results of the risk assessment of biological resources being damaged by vibration, an early warning of transportation route correction is issued.
2. A biological resource transportation process monitoring method according to claim 1, characterized in that: In step 3, the dynamic vibration impact degree of the transportation process is analyzed based on the hierarchical structure data and the real-time transportation data, including the following specific steps: B31: Extract hierarchical structure data and real-time transportation data of biological resource transportation boxes; B32: Based on the hierarchical structure data and real-time transportation data, the dynamic vibration impact degree of the transportation process is analyzed to obtain the dynamic vibration impact degree analysis results.
3. A biological resource transportation process monitoring method according to claim 2, characterized in that: Step B32 includes the following specific steps: B321: Based on hierarchical structure data and real-time transportation data, the dynamic displacement energy accumulation degree of biological resources during transportation is analyzed to obtain the dynamic displacement energy analysis results of biological resources; B322: Based on hierarchical structure data and real-time transportation data, analyze the threat level of load center of gravity shift caused by vibration to biological resources and obtain the load center of gravity shift threat analysis results; B323: Based on the results of the dynamic displacement energy analysis of biological resources and the threat analysis results of load center of gravity shift, the dynamic vibration impact degree of the transportation process is analyzed to obtain the dynamic vibration impact degree analysis results.
4. A biological resource transportation process monitoring method according to claim 3, characterized in that: In step 4, based on the analysis results of the inherent vibration resistance defect degree and the dynamic vibration impact degree of the biological resource transport box, the risk of biological resource damage due to vibration is assessed, including the following specific steps: C41: The inherent vibration resistance defect analysis results and dynamic vibration impact analysis results of the biological resource transport box obtained by extraction and analysis; C42: Based on the analysis results of the inherent vibration resistance defect level and the dynamic vibration impact level of the biological resource transport box, the risk of biological resource damage due to vibration is assessed, and the assessment results of the risk of biological resource damage due to vibration are obtained.
5. A biological resource transportation process monitoring method according to claim 4, characterized in that: In step 5, based on the risk assessment results of biological resource damage due to vibration, an early warning of transportation route correction is performed, which includes the following specific steps: D51: Extract the assessment results of the risk of damage to biological resources caused by vibration; D52: A vibration risk threshold is preset. When the risk assessment result of biological resource damage due to vibration is greater than the vibration risk threshold, a warning of transportation route correction is issued.
6. A biological resource transportation process monitoring system, used to implement a biological resource transportation process monitoring method according to any one of claims 1 to 5, characterized in that: The system comprises: Data acquisition module, inherent vibration resistance defect analysis module, dynamic vibration impact analysis module, biological resource vibration risk assessment module, path correction warning module and control module; The data acquisition module is used to acquire hierarchical structure data and real-time transportation data of the biological resource transport box, and simultaneously acquire vibration monitoring data of the biological resource transport box; The inherent vibration resistance defect analysis module is used to analyze the inherent vibration resistance defect level of the biological resource transport box based on the hierarchical structure data and the vibration monitoring data; The dynamic vibration impact analysis module is used to analyze the degree of dynamic vibration impact during the transportation process based on the hierarchical structure data and real-time transportation data; The biological resource vibration risk assessment module is used to assess the risk of biological resource damage due to vibration based on the analysis results of the inherent vibration resistance defect degree and the dynamic vibration impact degree of the biological resource transport box; The route correction warning module is used to perform transportation route correction warning based on the risk assessment results of biological resources being damaged by vibration; The control module is used to control the operation of the data acquisition module, the inherent vibration resistance defect analysis module, the dynamic vibration impact analysis module, the biological resource vibration risk assessment module and the path correction warning module.
7. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, a biological resource transportation process monitoring method according to any one of claims 1 to 5 is implemented.
8. An electronic device, characterized in that: include: a memory for storing instructions; The processor is configured to execute the instructions so that the device performs operations to implement the method for monitoring a biological resource transportation process as described in any one of claims 1 to 5.
Citation Information
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