Self-repairing material supplement strategy generation method and device, computer equipment, readable storage medium and program product
By conducting performance evaluation and repair correspondence query of the self-repair materials deployed on the target material, a supplementary strategy is generated, and the problem of unknown supplementary location of the self-repair material is solved, achieving the extension of the material's service life and continuous optimization of performance.
Patent Information
- Application Number
- CN202510247983.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-04
- Publication Date
- 2025-06-20
AI Technical Summary
When using self-repair materials, it is difficult to determine the specific location of self-repair materials that need to be supplemented, resulting in the aging location of the material not being replenished in time and the service life of the material is shortened.
By evaluating the performance of the target self-repair material deployed on the target material, obtaining its corresponding repair correspondence, querying the current repair material performance information to obtain the repair effect information of the target material, and generating a supplementary strategy based on this.
Accurate supplementation of self-repair materials is achieved, extending the service life of the material, and ensuring continuous optimization of material performance.
Smart Images

Figure CN120180709A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of big data technology, and in particular, to a method, device, computer device, computer-readable storage medium, and computer program product for generating a self-healing material replenishment strategy. Background Art
[0002] During the service life of artificial materials, it is inevitable that they will age due to factors such as long-term operation, environmental erosion, and external force damage, resulting in the generation of microcracks or even cracks inside the artificial materials, causing the loss of functions or the decline of mechanical properties of the artificial materials, and ultimately leading to the failure of the artificial materials. Inspired by the self-healing ability of organisms in nature after being damaged, researchers proposed the concept of self-healing materials from the perspective of bionics, that is, materials that can autonomously heal damage, restore material properties, and extend the material life after being damaged.
[0003] However, when using self-healing materials for aging artificial materials, the continuous use status of the self-healing materials is not clear, making it unclear which self-healing materials placed at which positions need to be replenished. It is easy to occur that the positions of the artificial materials corresponding to aging and not improved are not replenished with self-healing materials in time, resulting in a short service life of the materials. Summary of the Invention
[0004] Based on this, in view of the above technical problems, it is necessary to provide a method, device, computer device, computer-readable storage medium, and computer program product for generating a self-healing material replenishment strategy that can extend the service life of materials.
[0005] In a first aspect, the present application provides a method for generating a self-healing material replenishment strategy, including:
[0006] Evaluating the current performance status of the target self-healing material deployed on the target material to obtain current repair material performance information;
[0007] Obtaining the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of the preset self-healing material at each usage level;
[0008] Querying the repair correspondence according to the current repair material performance information to obtain the target material repair effect information of the target material;
[0009] Generating a repair material replenishment strategy corresponding to the target self-healing material according to the target material repair effect information.
[0010] In a second aspect, the present application further provides a device for generating a self-healing material replenishment strategy, including:
[0011] An evaluation module, configured to evaluate the current performance status of a target self-healing material deployed on a target material, so as to obtain current repair material performance information;
[0012] An acquisition module, configured to acquire the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of a preset self-healing material under various usage degrees;
[0013] A query module, configured to query the repair correspondence according to the current repair material performance information, so as to obtain the target material repair effect information of the target material;
[0014] A generation module, configured to generate a repair material supplement strategy corresponding to the target self-healing material according to the target material repair effect information.
[0015] In a third aspect, the present application further provides a computer device, including a memory and a processor, where the memory stores a computer program, and when the processor executes the computer program, the following steps are implemented:
[0016] Evaluate the current performance status of a target self-healing material deployed on a target material, so as to obtain current repair material performance information;
[0017] Acquire the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of a preset self-healing material under various usage degrees;
[0018] Query the repair correspondence according to the current repair material performance information, so as to obtain the target material repair effect information of the target material;
[0019] Generate a repair material supplement strategy corresponding to the target self-healing material according to the target material repair effect information.
[0020] In a fourth aspect, the present application further provides a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, the following steps are implemented:
[0021] Evaluate the current performance status of a target self-healing material deployed on a target material, so as to obtain current repair material performance information;
[0022] Acquire the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of a preset self-healing material under various usage degrees;
[0023] Query the repair correspondence according to the current performance information of the repair material to obtain the target material repair effect information of the target material;
[0024] Generate a repair material replenishment strategy corresponding to the target self-healing material according to the target material repair effect information.
[0025] In a fifth aspect, the present application also provides a computer program product, including a computer program, which when executed by a processor implements the following steps:
[0026] Evaluate the current performance status of the target self-healing material deployed on the target material to obtain the current repair material performance information;
[0027] Obtain the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of the preset self-healing material under various usage degrees;
[0028] Query the repair correspondence according to the current repair material performance information to obtain the target material repair effect information of the target material;
[0029] Generate a repair material replenishment strategy corresponding to the target self-healing material according to the target material repair effect information.
[0030] The above self-healing material replenishment strategy generation method, device, computer device, computer-readable storage medium and computer program product evaluate the current performance status of the target self-healing material deployed on the target material to obtain the current repair material performance information; obtain the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of the preset self-healing material under various usage degrees; query the repair correspondence according to the current repair material performance information to obtain the target material repair effect information of the target material; generate a repair material replenishment strategy corresponding to the target self-healing material according to the target material repair effect information. First, the performance status of the target self-healing material deployed on the target material is quantified, so that the target material repair effect information corresponding to the target self-healing material can be obtained, and the material repair effect of the target self-healing material on the target material is quantified. Furthermore, the formulation of the repair material replenishment strategy can be realized, so that the accurate replenishment of the target self-healing material can be achieved according to the repair material replenishment strategy, and the service life of the material is extended. Description of the Drawings
[0031] To more clearly illustrate the technical solutions in the embodiments of the present application or related technologies, the following will briefly introduce the accompanying drawings required for the description in the embodiments of the present application or related technologies. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.
[0032] Figure 1 It is an application environment diagram of the self-healing material replenishment strategy generation method in an embodiment;
[0033] Figure 2 It is a schematic flowchart of the self-healing material replenishment strategy generation method in an embodiment;
[0034] Figure 3 It is a schematic flowchart of the steps after iteratively optimizing the model weight information through the particle swarm algorithm according to the weight fusion information to obtain the target model weight information in an embodiment;
[0035] Figure 4 It is a schematic diagram of the action of the preset self-healing material on the preset material when the preset self-healing material is a microcapsule-type self-healing material in an embodiment;
[0036] Figure 5 It is a schematic flowchart of the steps of generating a repair material replenishment strategy corresponding to the target self-healing material according to the repair effect information of the target material in an embodiment;
[0037] Figure 6 It is a structural block diagram of the self-healing material replenishment strategy generation device in an embodiment;
[0038] Figure 7 It is an internal structure diagram of a computer device in an embodiment. Detailed implementation manners
[0039] In order to make the purpose, technical solutions and advantages of the present application clearer, the following further details the present application in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0040] It should be noted that the information and data involved in this application (including but not limited to the data for analysis, the stored data, the displayed data, etc.) are all information and data authorized by the user or fully authorized by all parties, and the acquisition, transmission, storage, use, and processing of the relevant data comply with the relevant provisions of national laws and regulations. For the content pushed to the user (such as the repair material supplement strategy, etc.), the user can refuse or can conveniently refuse the content push, etc. In the embodiments of this application, some existing industry solutions such as certain software, components, models, etc. may be mentioned. They should be regarded as exemplary, and their purpose is only to illustrate the feasibility in the implementation of the technical solution of this application, but it does not mean that the applicant has already or necessarily used this solution.
[0041] The method for generating a self-healing material supplement strategy provided by the embodiments of this application can be applied to an application environment as Figure 1 shown. Among them, the terminal 102 communicates with the server 104 through the network. The data storage system can store the data that the server 104 needs to process. The data storage system can be integrated on the server 104, or can be placed in the cloud or other network servers. The server 104 evaluates the current performance status of the target self-healing material deployed on the target material to obtain the current repair material performance information; obtains the repair correspondence relationship corresponding to the target self-healing material, where the repair correspondence relationship includes the correspondence relationship between the repair material performance information and the material repair effect information of the preset self-healing material under various usage degrees; queries the repair correspondence relationship according to the current repair material performance information to obtain the target material repair effect information of the target material; generates a repair material supplement strategy corresponding to the target self-healing material according to the target material repair effect information. Among them, the terminal 102 can be but is not limited to various personal computers, laptop computers, smart phones, tablet computers, Internet of Things devices, and portable wearable devices. The Internet of Things devices can be smart speakers, smart TVs, smart air conditioners, smart in-vehicle devices, projection devices, etc. The portable wearable devices can be smart watches, smart bracelets, head-mounted devices, etc. The head-mounted device can be a virtual reality (VR) device, an augmented reality (AR) device, a smart glasses, etc. The server 104 can be an independent physical server, or a server cluster or distributed system composed of multiple physical servers, or a cloud server providing cloud computing services.
[0042] In an exemplary embodiment, as Figure 2 shown, a method for generating a self-healing material supplement strategy is provided. Taking the method applied to the Figure 1 server 104 in it as an example, it includes the following steps 202 to step 208. Among them:
[0043] Step 202: Evaluate the current performance status of the target self-healing material deployed on the target material to obtain the current performance information of the repair material.
[0044] Among them, the target material in step 202 is the material that needs to be self-healed. The target material can be polymer materials used in high-precision fields such as aircraft engine blades and spacecraft hulls. The target self-healing material can be a microcapsule-type self-healing material. The target self-healing material can be single or multiple, and there is no limit here. The current performance information of the repair material includes but is not limited to the current repair agent information and the current morphology information contained in the target self-healing material. The current repair agent information includes at least one of the current repair agent content and the current repair agent utilization rate. The current morphology information includes at least one of the current microcapsule wall thickness, the current microcapsule particle size, and the current microcapsule shape.
[0045] As an embodiment, step 202 includes: obtaining the current mass of the microcapsule wall material of the target self-healing material, and obtaining the current mass of the repair material of the target self-healing material. According to the current mass of the microcapsule wall material and the current mass of the repair material, determine the current repair agent content of the target self-healing material. Specifically, the ratio of the difference between the current mass of the repair material and the current mass of the microcapsule wall material to the current mass of the repair material is determined as the current repair agent content of the target self-healing material.
[0046] Optionally, the ratio of the difference between the current mass of the repair material and the current mass of the microcapsule wall material to the current mass of the repair material is determined as the current repair agent content of the target self-healing material. It can be expressed by the formula:
[0047]
[0048] Among them, is the current repair agent content, is the current mass of the repair material, is the current mass of the microcapsule wall material.
[0049] It can be understood that since the target self-healing material is composed of a closed microcapsule wall and a repair agent contained in the microcapsule wall, the current repair agent content can be accurately calculated by the above method.
[0050] Specifically, obtaining the current mass of the microcapsule wall material of the target self-healing material includes: grinding the target self-healing material in a mortar to obtain the ground target self-healing material, soaking the ground target self-healing material in n-hexane for a preset soaking time to obtain the soaked target self-healing material, where the preset soaking time can be 24h, 32h or other times, which is not limited here; subjecting the soaked target self-healing material to vacuum filtration to obtain the current microcapsule wall material, washing the current microcapsule wall material, and weighing it after drying to obtain the current mass of the microcapsule wall material.
[0051] As another embodiment, step 202 includes: obtaining the amount of the repair agent added during the production of the target self-healing material, and obtaining the mass of the self-healing material before the target self-healing material is used; determining the current utilization rate of the repair agent of the target self-healing material according to the amount of the repair agent added, the mass of the self-healing material, and the current content of the repair agent. Specifically, the ratio of the product of the mass of the self-healing material and the current content of the repair agent to the amount of the repair agent added is determined as the current utilization rate of the repair agent of the target self-healing material.
[0052] Optionally, the ratio of the product of the mass of the self-healing material and the current content of the repair agent to the amount of the repair agent added is determined as the current utilization rate of the repair agent of the target self-healing material, and can be expressed by the formula:
[0053]
[0054] Wherein, is the current utilization rate of the repair agent, is the mass of the self-healing material, is the amount of the repair agent added.
[0055] As yet another embodiment, step 202 includes: obtaining a self-healing material image carrying the characteristics of the target self-healing material, and performing image recognition through the self-healing material image to obtain the current morphological information of the target self-healing material; or observing the target self-healing material through a microscope to obtain the current morphological information of the target self-healing material, where the microscope can be a cold field scanning electron microscope.
[0056] Specifically, observing the target self-healing material through a microscope to obtain the current morphological information of the target self-healing material includes: fixing the target material to be repaired on the sample stage with conductive tape, performing vacuum sputtering on the target material to be repaired to obtain the target material to be repaired after vacuum sputtering; observing the target material to be repaired after vacuum sputtering through a microscope to obtain the current morphological information of the target self-healing material.
[0057] It can be understood that since the target self-healing material is usually non-conductive, vacuum metallization is performed on the target self-healing material to reduce the surface discharge of the target self-healing material, avoid phenomena such as drift and thermal damage in imaging the target self-healing material, and improve the recognition accuracy of the current morphological information of the target self-healing material.
[0058] Step 204: Obtain the repair correspondence relationship corresponding to the target self-healing material, where the repair correspondence relationship includes the correspondence relationship between the repair material performance information and the material repair effect information of the preset self-healing material at various usage levels.
[0059] Among them, the preset self-healing material in step 204 can be of the same type of self-healing material as the target self-healing material, or of the same model of self-healing material.
[0060] As an embodiment, step 204 includes: obtaining a repair correspondence library, where the repair relationship correspondence library includes the repair correspondence relationships corresponding to various types of self-healing materials; querying the repair correspondence library according to the material type of the target self-healing material to obtain the repair correspondence relationship corresponding to the target self-healing material.
[0061] As another embodiment, step 204 includes: obtaining a repair correspondence library, where the repair relationship correspondence library includes the repair correspondence relationships corresponding to various models of self-healing materials; querying the repair correspondence library according to the material model of the target self-healing material to obtain the repair correspondence relationship corresponding to the target self-healing material.
[0062] Step 206: Query the repair correspondence according to the current repair material performance information to obtain the target material repair effect information of the target material.
[0063] Exemplarily, step 206 includes: obtaining the matching degrees between the current repair material performance information and the repair material performance information of the preset self-healing material at various usage levels in the repair correspondence relationship, selecting the target repair material performance information whose corresponding matching degree meets the preset matching degree condition among the repair material performance information of the preset self-healing material at various usage levels in the repair correspondence relationship, and determining the material repair effect information corresponding to the target repair material performance information in the repair correspondence relationship as the target material repair effect information of the target material.
[0064] Among them, the preset matching degree condition can be greater than the preset matching degree threshold, or can be the maximum value among all matching degrees, which is not limited here.
[0065] Step 208: Generate a repair material supplement strategy corresponding to the target self-healing material according to the target material repair effect information.
[0066] Among them, the self-healing material replenishment strategy includes at least one of the self-healing material replenishment identification result and the self-healing material replenishment quantity. The self-healing material replenishment identification result includes a result of needing to replenish the self-healing material or a result of not needing to replenish the self-healing material.
[0067] Exemplarily, step 208 includes: if the target material repair effect information meets the preset repair effect condition, then determining the result of needing to replenish the self-healing material as the self-healing material replenishment identification result, and determining the self-healing material replenishment quantity, and jointly determining the result of needing to replenish the self-healing material and the self-healing material replenishment quantity as the repair material replenishment strategy corresponding to the target self-healing material; if the target material repair effect information does not meet the preset repair condition, then determining the result of not needing to replenish the self-healing material as the self-healing material replenishment identification result, and / or determining the preset quantity as the self-healing material replenishment quantity, and jointly determining the result of needing to replenish the self-healing material and the self-healing material replenishment quantity as the repair material replenishment strategy corresponding to the target self-healing material, where the preset quantity is 0.
[0068] Optionally, if the target material repair effect information does not meet the preset repair condition, the method further includes: generating the service life of the target self-healing material deployed on the target material according to the target material repair effect information, where the worse the material repair effect characterized by the target material repair effect information, the shorter the service life of the target self-healing material deployed on the target material.
[0069] In the above method for generating the self-healing material replenishment strategy, by evaluating the current performance status of the target self-healing material deployed on the target material, the current repair material performance information is obtained; obtaining the repair correspondence relationship corresponding to the target self-healing material, where the repair correspondence relationship includes the correspondence relationship between the repair material performance information of the preset self-healing material at each usage level and the material repair effect information; according to the current repair material performance information, querying the repair correspondence relationship to obtain the target material repair effect information of the target material; and generating the repair material replenishment strategy corresponding to the target self-healing material according to the target material repair effect information. First, the performance status of the target self-healing material deployed on the target material is quantified, so that the target material repair effect information corresponding to the target self-healing material can be obtained, and the material repair effect of the target self-healing material for the target material is quantified, and then the formulation of the repair material replenishment strategy can be realized, so that the accurate replenishment of the target self-healing material can be achieved according to the repair material replenishment strategy, and the service life of the material is extended.
[0070] In an exemplary embodiment, as Figure 3 shown, a method for accurately generating the repair correspondence relationship is provided. Obtaining the repair correspondence relationship corresponding to the target self-healing material includes steps 302 to 306. Among them:
[0071] Step 302: Aging the preset self-healing material to different degrees, and respectively deploying the preset self-healing material under different degrees of aging treatment to the preset material.
[0072] Among them, the aging treatment includes at least one of hot air treatment and boiling water treatment.
[0073] Exemplarily, aging the preset self-healing material to different degrees includes: aging the preset self-healing material for different treatment durations, where the longer the treatment duration, the higher the degree of aging treatment.
[0074] Step 304: Obtain the repair material performance information of the preset self-healing material under each aging degree, and obtain the material repair effect information after the preset self-healing material deployed on the preset material at each aging degree performs self-healing.
[0075] Optionally, the specific implementation content of obtaining the repair material performance information of the preset self-healing material under each aging degree can refer to the specific implementation steps of evaluating the current performance status of the target self-healing material deployed on the target material to obtain the current repair material performance information, which will not be elaborated here.
[0076] As an embodiment, obtaining the material repair effect information after the preset self-healing material deployed on the preset material at each aging degree performs self-healing includes: for each aging degree among the aging degrees, according to the repair material performance information of the preset self-healing material of the aging degree and the crack information of the preset material before deploying the preset self-healing material, evaluate the repair dose released after the preset self-healing material is deployed on the preset material to obtain the repair agent volume information, and according to the crack information of the preset material before deploying the preset self-healing material, evaluate the crack condition of the preset material before deploying the preset self-healing material to obtain the crack volume information, where the repair agent volume information is the volume of the repair agent released per unit crack area after the preset self-healing material is deployed on the preset material, and the crack volume information is the crack volume per unit crack area of the preset material; according to the crack volume information and the repair agent volume information, evaluate the material repair effect of the preset material to obtain the material repair effect information after the preset self-healing material deployed on the preset material at the aging degree performs self-healing.
[0077] Further, based on the repair material performance information of the preset self-healing material according to the aging degree and the crack information before deploying the preset self-healing material on the preset material, evaluate the repair dose released after deploying the preset self-healing material on the preset material to obtain the repair agent volume information, including: the crack information includes the crack area and the repair material performance information of the preset self-healing material according to the aging degree, determine the rupture rate of the preset self-healing material intersecting the crack plane of the preset material, the radius of the preset self-healing material (when the preset self-healing material is a microcapsule-type self-healing material, the radius of the preset self-healing material is the microcapsule radius), the microcapsule volume content in the preset self-healing material, and the microcapsule volume; according to the rupture rate, the microcapsule radius, the microcapsule area, the microcapsule volume content, and the microcapsule volume, evaluate the number of ruptured microcapsules after deploying the preset self-healing material on the preset material to obtain the number of ruptured microcapsules, where the microcapsule volume content is the microcapsule volume contained in the preset self-healing material per unit volume; the repair material performance information of the preset self-healing material includes the repair agent content of the preset self-healing material, and according to the number of ruptured microcapsules, the repair agent content of the preset self-healing material, and the microcapsule volume, determine the volume of the repair agent released by the ruptured microcapsules; the ratio between the volume of the repair agent released by the ruptured microcapsules and the microcapsule area is determined as the repair agent volume information.
[0078] As an embodiment, according to the rupture rate, the microcapsule radius, the microcapsule area, the microcapsule volume content, and the microcapsule volume, evaluate the number of ruptured microcapsules after deploying the preset self-healing material on the preset material to obtain the number of ruptured microcapsules, including: the ratio of the product of the rupture rate, twice the microcapsule radius, the microcapsule area, and the microcapsule volume content to the microcapsule volume is determined as the number of ruptured microcapsules.
[0079] Optionally, the ratio of the product of the rupture rate, twice the microcapsule radius, the microcapsule area, and the microcapsule volume content to the microcapsule volume is determined as the number of ruptured microcapsules, which can be expressed by the formula:
[0080]
[0081] Wherein, is the number of ruptured microcapsules, is the rupture rate, is the microcapsule area, is the microcapsule radius, is the microcapsule volume content, is the microcapsule volume.
[0082] As an embodiment, according to the number of ruptured microcapsules, the repair agent content of the preset self-healing material, and the volume of the microcapsules, determining the volume of the repair agent released by the ruptured microcapsules includes: determining the product of the number of ruptured microcapsules, the repair agent content of the preset self-healing material, and the volume of the microcapsules as the volume of the repair agent released by the ruptured microcapsules.
[0083] Optionally, determining the product of the number of ruptured microcapsules, the repair agent content of the preset self-healing material, and the volume of the microcapsules as the volume of the repair agent released by the ruptured microcapsules, which can be expressed by the formula:
[0084]
[0085] Wherein, is the volume of the repair agent released by the ruptured microcapsules, is the repair agent content of the preset self-healing material.
[0086] Optionally, after substituting the formula for the number of ruptured microcapsules into the formula for the volume of the repair agent, determining the ratio of the volume of the repair agent released by the ruptured microcapsules to the area of the microcapsules as the volume information of the repair agent, which can be expressed by the formula:
[0087]
[0088]
[0089]
[0090] Wherein, is the volume information of the repair agent.
[0091] As an embodiment, according to the crack volume information and the volume information of the repair agent, evaluating the material repair effect of the preset material to obtain the material repair effect information after self-repair of the preset self-healing material deployed on the preset material at the deployment aging degree includes: obtaining the initial material tensile strength before the preset material deploys the preset self-healing material, and obtaining the filled material tensile strength after the preset material self-repairs when the repair agent in the preset self-healing material at the aging degree fills the preset material; evaluating the material repair effect of the preset material according to the size relationship characterized by the crack volume information and the volume information of the repair agent, the initial material tensile strength, and the filled material tensile strength, to obtain the material repair effect information after self-repair of the preset self-healing material deployed on the preset material at the deployment aging degree.
[0092] As an embodiment, the material repair effect information includes the material repair rate; based on the magnitude relationship characterized by the crack volume information and the repair agent volume information, the initial material tensile strength, and the filled material tensile strength, the material repair effect of the preset self-healing material is evaluated to obtain the material repair effect information after self-healing of the preset self-healing material deployed at the aging degree on the preset material, including: if the magnitude relationship indicates that the crack volume information is greater than or equal to the repair agent volume information, then the ratio between the filled material tensile strength and the initial material tensile strength is determined as the material repair rate after self-healing of the preset self-healing material deployed at the aging degree on the preset material; if the magnitude relationship indicates that the crack volume information is less than the repair agent volume information, then the stress of the preset self-healing material deployed at the aging degree and the preset material after self-healing is evaluated to obtain the repair tensile strength information of the preset material after self-healing, and based on the repair tensile strength information and the ratio between the filled material tensile strength and the initial material tensile strength, the material repair rate after self-healing of the preset self-healing material deployed at the aging degree on the preset material is generated.
[0093] Optionally, the ratio between the filled material tensile strength and the initial material tensile strength is determined as the material repair rate after self-healing of the preset self-healing material deployed at the aging degree on the preset material, and it can be expressed by the formula:
[0094]
[0095] Wherein, is the material repair rate, is the initial material tensile strength, is the filled material tensile strength.
[0096] As an embodiment, according to the repair tensile strength information and the ratio between the tensile strength of the filling material and the initial material tensile strength, generating the material repair rate after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material, includes: classifying the repair strength of the preset self-healing material for the preset material at the aging degree according to the repair tensile strength information, to obtain the repair strength type of the preset self-healing material for the preset material; generating a repair agent correspondence according to the repair strength type of the preset self-healing material for the preset material, where the repair agent correspondence includes the correspondence between the volume of the repair agent released by the preset self-healing material and the material tensile strength of the preset material using the preset self-healing material; determining the relationship between the tensile strength after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material and the tensile strength of the filling material according to the repair agent correspondence; taking the ratio between the tensile strength after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material, calculated from the relationship between the tensile strength after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material and the tensile strength of the filling material, and the initial material tensile strength, and determining it as the material repair rate after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material.
[0097] Among them, the repair tensile strength information includes the tensile strength of the repair agent after the preset self-healing material is cured, the interfacial strength between the repair agent after the preset self-healing material is cured and the preset material, and the complete tensile strength after the preset self-healing material deployed at the preset aging degree on the preset material is completely repaired.
[0098] Optionally, the relationship between the tensile strength after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material and the tensile strength of the filling material can be expressed by the formula:
[0099]
[0100] Among them, is the tensile strength after self-repair of the preset self-healing material deployed at the preset aging degree on the preset material, is the crack volume per unit crack area.
[0101] Optionally, when the repair agent after the preset self-healing material ruptures cannot fill the cracks on the preset material, the crack volume per unit crack area is the average crack width, which can be expressed by the formula:
[0102]
[0103] Among them, is the average crack width.
[0104] Optionally, the ratio between the tensile strength after self - repair of the preset self - healing material deployed on the preset material at the preset aging degree and the tensile strength of the filling material is calculated, and the ratio between the tensile strength after self - repair of the preset self - healing material deployed on the preset material at the preset aging degree and the tensile strength of the initial material is determined as the material repair rate of the preset self - healing material deployed on the preset material at the preset aging degree. It can be expressed by the formula as follows:
[0105]
[0106] Optionally, referring to Figure 4 , when the preset self - healing material is a micro - capsule - type self - healing material, there are ruptured micro - capsules and intact micro - capsules on the micro - cracks of the preset material, and micro - capsules also exist in other positions.
[0107] Step 306: Generate a repair correspondence relationship corresponding to the target self - healing material according to the repair material performance information of the preset self - healing material at each aging degree and the material repair effect information of the preset self - healing material deployed on the preset material at each aging degree after self - repair.
[0108] Exemplarily, step 306 includes: making one - to - one correspondence between the repair material performance information of the preset self - healing material at each aging degree and the material repair effect information of the preset self - healing material deployed on the preset material at each aging degree after self - repair to obtain the repair correspondence relationship corresponding to the target self - healing material.
[0109] In this embodiment, by subjecting the preset self - healing material to different degrees of aging treatment and respectively deploying the preset self - healing materials under different degrees of aging treatment to the preset material; obtaining the repair material performance information of the preset self - healing material at each aging degree and the material repair effect information of the preset self - healing material deployed on the preset material at each aging degree after self - repair; generating a repair correspondence relationship corresponding to the target self - healing material according to the repair material performance information of the preset self - healing material at each aging degree and the material repair effect information of the preset self - healing material deployed on the preset material at each aging degree after self - repair. By subjecting the preset self - healing material to different degrees of aging treatment, the use of the preset self - healing material on the preset material at different usage durations can be simulated. Through the repair correspondence relationship, the corresponding relationship between the repair material performance information and the material repair effect information of the preset self - healing material on the preset material at different usage durations can be quantified, improving the accuracy of generating the repair correspondence relationship.
[0110] In an exemplary embodiment, such as Figure 5As shown, to provide a method for accurately generating a repair material replenishment strategy, according to the repair effect information of the target material, generating the repair material replenishment strategy corresponding to the target self-healing material includes steps 502 to 506. Among them:
[0111] Step 502, if the repair effect information of the target material meets the preset repair effect condition, obtain the component type of the repair system of the target self-healing material.
[0112] Among them, the component type of the repair system in step 502 includes a single-component repair system component type or a two-component repair system component type.
[0113] As an embodiment, the method further includes: the repair effect of the target material includes the repair rate of the target material. If the repair rate of the target material is not greater than the preset repair rate threshold, it is determined that the repair effect information of the target material meets the preset repair effect condition; if the repair rate of the target material is greater than the preset repair rate threshold, it is determined that the repair effect information of the target material does not meet the preset repair effect condition.
[0114] Step 504, according to the target self-healing material information of the target self-healing material, the target crack information of the target material, and the component type of the repair system, evaluate the crack area of the target material to obtain the minimum crack area of the target material.
[0115] Exemplarily, step 504 includes: according to the target self-healing material information of the target self-healing material and the target crack information of the target material, determine the number of ruptured microcapsules of the target self-healing material; determine the ratio between the number of ruptured microcapsules of the target self-healing material and the microcapsule area as the number of ruptured microcapsules of the target self-healing material per unit crack area of the target material; according to the number of ruptured microcapsules of the target self-healing material per unit crack area of the target material and the component type of the repair system, evaluate the crack area of the target material to obtain the minimum crack area of the target material.
[0116] Optionally, for the specific implementation of determining the number of ruptured microcapsules of the target self-healing material according to the target self-healing material information of the target self-healing material and the target crack information of the target material, reference can be made to the above specific implementation content of evaluating the number of ruptured microcapsules after the preset self-healing material is deployed on the preset material to obtain the number of ruptured microcapsules, which will not be elaborated here.
[0117] Optionally, the ratio between the number of ruptured microcapsules of the target self-healing material and the microcapsule area is determined as the number of ruptured microcapsules of the target self-healing material per unit crack area of the target material, which can be expressed by the formula:
[0118]
[0119] Among them, is the number of microcapsules ruptured per unit crack area of the target material for the target self-healing material.
[0120] As an example, according to the number of microcapsules ruptured per unit crack area of the target self-healing material on the target material and the type of components of the repair system, evaluate the crack area of the target material to obtain the minimum crack area of the target material, including: if the type of components of the repair system includes a single-component repair system type, then the ratio between 1 and the number of microcapsules ruptured per unit crack area of the target self-healing material on the target material is determined as the minimum crack area of the target material; if the type of components of the repair system includes a two-component repair system type, then the ratio between 2 and the number of microcapsules ruptured per unit crack area of the target self-healing material on the target material is determined as the minimum crack area of the target material.
[0121] Optionally, the ratio between 1 and the number of microcapsules ruptured per unit crack area of the target self-healing material on the target material is determined as the minimum crack area of the target material, and it can be expressed by the formula:
[0122]
[0123] where is the minimum crack area of the target material.
[0124] Optionally, the ratio between 2 and the number of microcapsules ruptured per unit crack area of the target self-healing material on the target material is determined as the minimum crack area of the target material, and it can be expressed by the formula:
[0125]
[0126] Step 506, generate a repair material replenishment strategy corresponding to the target self-healing material according to the minimum crack area of the target material and the target self-healing material information.
[0127] Exemplarily, step 506 includes: generating the replenishment quantity of the self-healing material corresponding to the target self-healing material according to the minimum crack area of the target material and the target self-healing material information; jointly determining the result of the self-healing material to be replenished and the replenishment quantity of the self-healing material as the repair material replenishment strategy corresponding to the target self-healing material.
[0128] Among them, the smaller the minimum crack area of the target material, the smaller the replenishment quantity of the self-healing material, and the worse the material repair effect characterized by the target self-healing material information, the larger the replenishment quantity of the self-healing material.
[0129] In this embodiment, if the repair effect information of the target material meets the preset repair effect condition, the component type of the repair system of the target self-healing material is obtained; according to the target self-healing material information of the target self-healing material, the target crack information of the target material, and the component type of the repair system, the crack area of the target material is evaluated to obtain the minimum crack area of the target material; according to the minimum crack area of the target material and the target self-healing material information, a repair material supplement strategy corresponding to the target self-healing material is generated, and the target self-healing material information, the target crack information, and the component type of the repair system are used as the generation basis of the minimum crack area of the target material, ensuring the accuracy of the evaluation of the minimum crack area. The minimum crack area of the target material and the target self-healing material information are used as the basis for formulating the repair material supplement strategy corresponding to the target self-healing material, making the repair material supplement strategy adapt to the crack condition of the target material and the material properties of the target self-healing material, and ensuring the accuracy of the generation of the repair material supplement strategy.
[0130] As a detailed embodiment, the current performance status of the target self-healing material deployed on the target material is evaluated to obtain the current performance information of the repair material; the preset self-healing material is subjected to aging treatment to different degrees, and the preset self-healing material under different degrees of aging treatment is respectively deployed on the preset material; the repair material performance information of the preset self-healing material at each aging degree is obtained. For each aging degree among the aging degrees, according to the repair material performance information of the preset self-healing material at the aging degree and the crack information of the preset material before deploying the preset self-healing material, the repair dose released after the preset self-healing material is deployed on the preset material is evaluated to obtain the repair agent volume information. And, according to the crack information of the preset material before deploying the preset self-healing material, the crack condition of the preset material before deploying the preset self-healing material is evaluated to obtain the crack volume information, where the repair agent volume information is the volume of the repair agent released per unit crack area after the preset self-healing material is deployed on the preset material, and the crack volume information is the crack volume of the preset material per unit crack area; the initial material tensile strength of the preset material before deploying the preset self-healing material is obtained, and, when the repair agent in the preset self-healing material at the aging degree fills the preset material, the tensile strength of the filled material after the preset self-healing of the preset material is obtained; if the size relationship indicates that the crack volume information is greater than or equal to the repair agent volume information, the ratio between the tensile strength of the filled material and the initial material tensile strength is determined as the material repair rate after self-healing of the preset self-healing material deployed on the preset material at the aging degree; if the size relationship indicates that the crack volume information is less than the repair agent volume information, the stress of the preset material after deploying the preset self-healing material at the aging degree and after self-healing is evaluated to obtain the repair tensile strength information of the preset material after self-healing, and according to the repair tensile strength information and the ratio between the tensile strength of the filled material and the initial material tensile strength, the material repair rate after self-healing of the preset self-healing material deployed on the preset material at the aging degree is generated.
[0131] Further, according to the repair material performance information of the preset self-healing material at each aging degree and the material repair effect information after self-healing of the preset self-healing material deployed on the preset material at each aging degree, a repair correspondence relationship corresponding to the target self-healing material is generated; according to the current repair material performance information, the repair correspondence relationship is queried to obtain the target material repair effect information of the target material; if the target material repair effect information meets the preset repair effect condition, the repair system component type of the target self-healing material is obtained; according to the target self-healing material information of the target self-healing material, the target crack information of the target material and the repair system component type, the crack area of the target material is evaluated to obtain the minimum crack area of the target material; according to the minimum crack area of the target material and the target self-healing material information, a repair material supplement strategy corresponding to the target self-healing material is generated.
[0132] In this way, by evaluating the current performance status of the target self-healing material deployed on the target material, the current performance information of the repair material is obtained; the repair correspondence corresponding to the target self-healing material is acquired, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of the preset self-healing material under various usage degrees; according to the current repair material performance information, the repair correspondence is queried to obtain the target material repair effect information of the target material; according to the target material repair effect information, a repair material replenishment strategy corresponding to the target self-healing material is generated. First, the performance status of the target self-healing material deployed on the target material is quantified, so that the target material repair effect information corresponding to the target self-healing material can be obtained, and the material repair effect of the target self-healing material on the target material is quantified. Furthermore, the formulation of the repair material replenishment strategy can be realized, enabling the accurate replenishment of the target self-healing material according to the repair material replenishment strategy, and extending the service life of the material.
[0133] Furthermore, by subjecting the preset self-healing material to aging treatments of different degrees, the usage of the preset self-healing material on the preset material under different usage durations can be simulated. Through the repair correspondence, the correspondence between the repair material performance information and the material repair effect information of the preset self-healing material on the preset material under different usage durations can be quantified, improving the generation accuracy of the repair correspondence. Also, the target self-healing material information, the target crack information, and the type of the repair system components are used as the basis for generating the minimum crack area of the target material, ensuring the evaluation accuracy of the minimum crack area. The minimum crack area of the target material and the target self-healing material information are used as the basis for formulating the repair material replenishment strategy corresponding to the target self-healing material, making the repair material replenishment strategy compatible with the crack condition of the target material and the material performance of the target self-healing material, and ensuring the generation accuracy of the repair material replenishment strategy.
[0134] It should be understood that although the steps in the flowcharts involved in the above embodiments are sequentially shown according to the arrows, these steps do not necessarily have to be executed in the order indicated by the arrows. Unless there is a clear indication in this article, the execution of these steps does not have a strict order limit, and these steps can be executed in other orders. Moreover, at least a part of the steps in the flowcharts involved in the above embodiments may include multiple steps or multiple stages. These steps or stages do not necessarily have to be executed at the same time, but can be executed at different times. The execution order of these steps or stages does not necessarily have to be sequential, but can be executed alternately or in turn with at least a part of other steps or steps or stages in other steps.
[0135] Based on the same inventive concept, an embodiment of the present application further provides a self-healing material replenishment strategy generation device for implementing the self-healing material replenishment strategy generation method involved above. The solution provided by this device for solving problems is similar to the solution described in the above method. Therefore, the specific limitations in one or more embodiments of the self-healing material replenishment strategy generation device provided below can refer to the limitations on the self-healing material replenishment strategy generation method in the above text, and will not be elaborated here.
[0136] In an exemplary embodiment, as Figure 6 shown, a self-healing material replenishment strategy generation device 600 is provided, including: an evaluation module 602, an acquisition module 604, a query module 606, and a generation module 608, where:
[0137] The evaluation module 602 is configured to evaluate the current performance status of the target self-healing material deployed on the target material to obtain the current repair material performance information;
[0138] The acquisition module 604 is configured to acquire the repair correspondence corresponding to the target self-healing material, where the repair correspondence includes the correspondence between the repair material performance information and the material repair effect information of the preset self-healing material under various usage degrees;
[0139] The query module 606 is configured to query the repair correspondence according to the current repair material performance information to obtain the target material repair effect information of the target material;
[0140] The generation module 608 is configured to generate a repair material replenishment strategy corresponding to the target self-healing material according to the target material repair effect information.
[0141] In one of the embodiments, the acquisition module 604 is further configured to perform aging treatments on the preset self-healing material to different degrees, and respectively deploy the preset self-healing material under different degrees of aging treatment to the preset material; acquire the repair material performance information of the preset self-healing material under each aging degree, and acquire the material repair effect information after self-healing of the preset material deployed with the preset self-healing material under each aging degree; generate the repair correspondence corresponding to the target self-healing material according to the repair material performance information of the preset self-healing material under each aging degree and the material repair effect information after self-healing of the preset material deployed with the preset self-healing material under each aging degree.
[0142] In one embodiment, the obtaining module 604 is further configured to, for each aging degree among the aging degrees, according to the repair material performance information of the preset self-healing material corresponding to the aging degree and the crack information before deploying the preset self-healing material on the preset material, evaluate the repair dose released after the preset self-healing material is deployed on the preset material, to obtain the repair agent volume information, and, according to the crack information before deploying the preset self-healing material on the preset material, evaluate the crack condition before deploying the preset self-healing material on the preset material, to obtain the crack volume information, where the repair agent volume information is the volume of the repair agent released per unit crack area after the preset self-healing material is deployed on the preset material, and the crack volume information is the crack volume per unit crack area of the preset material; according to the crack volume information and the repair agent volume information, evaluate the material repair effect of the preset material, to obtain the material repair effect information after self-repairing of the preset self-healing material deployed on the preset material at the aging degree.
[0143] In one embodiment, the obtaining module 604 is further configured to obtain the initial material tensile strength before deploying the preset self-healing material on the preset material, and, obtain the filled material tensile strength after self-repairing of the preset material when the repair agent in the preset self-healing material at the aging degree fills the preset material; according to the magnitude relationship represented by the crack volume information and the repair agent volume information, the initial material tensile strength, and the filled material tensile strength, evaluate the material repair effect of the preset material, to obtain the material repair effect information after self-repairing of the preset self-healing material deployed on the preset material at the aging degree.
[0144] In one embodiment, the material repair effect information includes the material repair rate; the obtaining module 604 is further configured to, if the magnitude relationship represents that the crack volume information is greater than or equal to the repair agent volume information, determine the ratio between the filled material tensile strength and the initial material tensile strength as the material repair rate after self-repairing of the preset self-healing material deployed on the preset material at the aging degree; if the magnitude relationship represents that the crack volume information is less than the repair agent volume information, evaluate the stress of the preset material after deploying the preset self-healing material at the aging degree and performing self-repairing, to obtain the repair tensile strength information of the preset material after self-repairing, and generate the material repair rate after self-repairing of the preset self-healing material deployed on the preset material at the aging degree according to the repair tensile strength information and the ratio between the filled material tensile strength and the initial material tensile strength.
[0145] In one embodiment, the generating module 608 is further configured to, if the target material repair effect information meets a preset repair effect condition, obtain the component types of the repair system of the target self-healing material; evaluate the crack area of the target material according to the target self-healing material information of the target self-healing material, the target crack information of the target material, and the component types of the repair system, so as to obtain the minimum crack area of the target material; and generate a repair material replenishment strategy corresponding to the target self-healing material according to the minimum crack area of the target material and the target self-healing material information.
[0146] Each module in the above self-healing material replenishment strategy generating device can be implemented in whole or in part by software, hardware, and their combination. The above modules can be embedded in or independent of the processor in the computer device in the form of hardware, or stored in the memory in the computer device in the form of software, so as to facilitate the processor to call and execute the operations corresponding to the above modules.
[0147] In an exemplary embodiment, a computer device is provided. The computer device can be a terminal, and its internal structure diagram can be as Figure 7 shown. The computer device includes a processor, a memory, an input / output interface, a communication interface, a display unit, and an input device. Among them, the processor, the memory, and the input / output interface are connected through a system bus, and the communication interface, the display unit, and the input device are connected to the system bus through the input / output interface. Among them, the processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system and a computer program. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The input / output interface of the computer device is used to exchange information between the processor and external devices. The communication interface of the computer device is used to communicate with external terminals in a wired or wireless manner. The wireless manner can be achieved through WIFI, a mobile cellular network, near field communication (NFC), or other technologies. When the computer program is executed by the processor, it implements a self-healing material replenishment strategy generation method. The display unit of the computer device is used to form a visually visible picture, which can be a display screen, a projection device, or a virtual reality imaging device. The display screen can be a liquid crystal display screen or an electronic ink display screen. The input device of the computer device can be a touch layer covered on the display screen, or a button, a trackball, or a touchpad provided on the housing of the computer device, or an external keyboard, touchpad, or mouse, etc.
[0148] Those skilled in the art can understand, Figure 7The structure shown is only a block diagram of some structures related to the solution of this application, and does not constitute a limitation on the computer device to which the solution of this application is applied. The specific computer device may include more or fewer components than those shown in the figure, or combine some components, or have different component arrangements.
[0149] In an exemplary embodiment, a computer device is provided, including a memory and a processor. A computer program is stored in the memory, and when the processor executes the computer program, the steps in the above method embodiments are implemented.
[0150] In an embodiment, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the steps in the above method embodiments are implemented.
[0151] In an embodiment, a computer program product is provided, including a computer program. When the computer program is executed by a processor, the steps in the above method embodiments are implemented.
[0152] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above methods. Among them, any reference to a memory, database, or other medium used in the embodiments provided in the present application can include at least one of non-volatile memory and volatile memory. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical memory, high-density embedded non-volatile memory, resistive random access memory (ReRAM), magnetoresistive random access memory (MRAM), ferroelectric random access memory (FRAM), phase change memory (PCM), graphene memory, etc. Volatile memory can include random access memory (RAM) or external cache memory, etc. By way of illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM), etc. The databases involved in the embodiments provided in the present application can include at least one of relational databases and non-relational databases. Non-relational databases can include distributed databases based on blockchain, etc., without limitation. The processors involved in the embodiments provided in the present application can be general-purpose processors, central processing units, graphics processing units, digital signal processors, programmable logic devices, data processing logics based on quantum computing, artificial intelligence (AI) processors, etc., without limitation.
[0153] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope recorded in the present application.
[0154] The above embodiments merely represent several implementation manners of the present application. The description thereof is relatively specific and detailed, but it should not be construed as a limitation to the patent scope of the present application. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present application, several modifications and improvements can still be made, and these all fall within the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the appended claims.
Claims
1. A method for generating a self-repairing material replenishment strategy, characterized in that: The method comprises: Evaluate the current performance status of the target self-healing material deployed on the target material to obtain current performance information of the repairing material; Acquire a repair correspondence relationship corresponding to the target self-repairing material, wherein the repair correspondence relationship includes a correspondence relationship between repair material performance information and material repair effect information of a preset self-repairing material at various usage levels; According to the current repair material performance information, query the repair correspondence to obtain target material repair effect information of the target material; A repair material replenishment strategy corresponding to the target self-repairing material is generated according to the target material repair effect information.
2. The method according to claim 1, characterized in that The obtaining of the repair correspondence relationship corresponding to the target self-repairing material includes: Performing different degrees of aging treatment on the preset self-repairing material, and respectively deploying the preset self-repairing material under different degrees of aging treatment to the preset material; Acquire the repair material performance information of the preset self-repairing material at each aging degree, and acquire the material repair effect information after the preset self-repairing material at each aging degree is deployed on the preset material for self-repair; A repair correspondence relationship corresponding to the target self-repairing material is generated based on the repair material performance information of the preset self-repairing material at various aging degrees, and the material repair effect information after self-repair of the preset self-repairing material at various aging degrees deployed on the preset material.
3. The method according to claim 2, characterized in that The obtaining of material repair effect information after the preset self-repairing material at each aging degree is deployed on the preset material and performs self-repair comprises: For each aging degree under each aging degree, based on the repair material performance information of the preset self-repairing material of the aging degree and the crack information of the preset material before the preset self-repairing material is deployed, the amount of repair agent released after the preset self-repairing material is deployed on the preset material is evaluated to obtain the repair agent volume information, and based on the crack information before the preset self-repairing material is deployed on the preset material, the crack situation of the preset material before the preset self-repairing material is deployed is evaluated to obtain the crack volume information, wherein the repair agent volume information is the volume of the repair agent released per unit crack area after the preset self-repairing material is deployed on the preset material, and the crack volume information is the crack volume of the preset material per unit crack area; The material repair effect of the preset material is evaluated according to the crack volume information and the repair agent volume information, and the material repair effect information after the preset self-repairing material with the aging degree is deployed on the preset material for self-repair is obtained.
4. The method according to claim 3, characterized in that The method of evaluating the material repair effect of the preset material according to the crack volume information and the repair agent volume information, and obtaining the material repair effect information after the preset self-repairing material at the aging degree is deployed on the preset material for self-repair, includes: Obtaining the initial material tensile strength of the preset material before deploying the preset self-repairing material, and obtaining the filled material tensile strength of the preset material after the preset material is self-repaired when the repairing agent in the preset self-repairing material at the aging degree fills the preset material; According to the size relationship represented by the crack volume information and the repair agent volume information, the tensile strength of the initial material and the tensile strength of the filling material, the material repair effect of the preset material is evaluated, and the material repair effect information after self-repair by deploying the preset self-repair material at the aging degree on the preset material is obtained.
5. The method according to claim 4, characterized in that The material repair effect information includes a material repair rate; the material repair effect of the preset self-repairing material is evaluated according to the size relationship represented by the crack volume information and the repair agent volume information, the initial material tensile strength, and the filled material tensile strength, and the material repair effect information after the preset self-repairing material at the aging degree is deployed on the preset material for self-repair is obtained, including: If the size relationship indicates that the crack volume information is greater than or equal to the repair agent volume information, the ratio between the tensile strength of the filling material and the tensile strength of the initial material is determined as the material repair rate after the preset self-repairing material at the aging degree is deployed on the preset material for self-repair; If the size relationship indicates that the crack volume information is smaller than the repair agent volume information, a stress assessment is performed on the preset self-repairing material at the aging degree after self-repair is performed to obtain the repair tensile strength information of the preset material after self-repair. Based on the repair tensile strength information and the ratio between the tensile strength of the filling material and the tensile strength of the initial material, a material repair rate is generated after self-repair of the preset self-repairing material at the aging degree deployed on the preset material.
6. The method according to claim 1, characterized in that The step of generating a repair material supplement strategy corresponding to the target self-repairing material according to the target material repair effect information includes: If the target material repair effect information meets the preset repair effect condition, then obtaining the repair system component type of the target self-repairing material; According to the target self-repairing material information of the target self-repairing material, the target crack information of the target material and the type of the repair system component, the crack area of the target material is evaluated to obtain the minimum crack area of the target material; A repair material supplement strategy corresponding to the target self-repair material is generated according to the minimum crack area of the target material and the target self-repair material information.
7. A self-repairing material replenishment strategy generating device, characterized in that: The device comprises: An evaluation module is used to evaluate the current performance status of the target self-healing material deployed on the target material to obtain current performance information of the repairing material; An acquisition module, used to acquire a repair correspondence relationship corresponding to the target self-repairing material, wherein the repair correspondence relationship includes a correspondence relationship between repair material performance information and material repair effect information of a preset self-repairing material at various usage levels; A query module, used to query the repair correspondence according to the current repair material performance information, and obtain target material repair effect information of the target material; A generation module is used to generate a repair material supplement strategy corresponding to the target self-repairing material according to the target material repair effect information.
8. A computer device comprising a memory and a processor, wherein the memory stores a computer program, wherein: When the processor executes the computer program, the steps of the method according to any one of claims 1 to 6 are implemented.
9. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the steps of the method according to any one of claims 1 to 6 are implemented.
10. A computer program product, comprising a computer program, characterized in that When the computer program is executed by a processor, the steps of the method according to any one of claims 1 to 6 are implemented.