{"title":"Numerical evaluation of the impact of introducing heterogeneous structures into the REBCO layer on fracture behavior under tensile strain","authors":"Zhaofei Jiang , XinXin Zhou , Xiangyang Wu , Xinxing Qian","doi":"10.1016/j.physc.2023.1354426","DOIUrl":null,"url":null,"abstract":"<div><p>To enhance the mechanical strength of REBCO tapes, a technique involving the creation of \"heterogeneous structures\" within the REBCO layer has been developed. This method entails drilling small holes in buffer layers and filling them with metal material, resulting in the formation of heterogeneous structures that effectively suppress crack propagation. What we are concerned about is the mechanism by which these heterogeneous structures affect the crack propagation subsequently impacting the mechanical performance. Therefore, by introducing the phase-field method (PFM) of fracture, we presented the propagation path of the initial crack under tension in the REBCO layer with heterogeneous structures. Additionally, we established a quantitative correlation between the fracture ratio (crack depth/tape width) and tensile strain to characterize the influence of heterogeneous structures on mechanical performance. Our findings indicated that the presence of heterogeneous structures markedly restricts crack propagation, leading to a substantial increase in the tensile strength of the REBCO tape. Furthermore, we delved into the impact of heterogeneous structure density on fracture behavior. The results revealed that higher densities of heterogeneous structures were more effective in suppressing crack propagation. Considering that the heterogeneous structure reduces the effective current-carrying area, consequently causing critical current degradation, we also explored fracture behavior under various distributions of these structures. Our results demonstrate the possibility of mitigating critical current degradation while concurrently enhancing mechanical strength by strategically adjusting the distribution of heterogeneous structures.</p></div>","PeriodicalId":20159,"journal":{"name":"Physica C-superconductivity and Its Applications","volume":"617 ","pages":"Article 1354426"},"PeriodicalIF":1.3000,"publicationDate":"2023-12-27","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Physica C-superconductivity and Its Applications","FirstCategoryId":"101","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S0921453423002174","RegionNum":3,"RegionCategory":"物理与天体物理","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q4","JCRName":"PHYSICS, APPLIED","Score":null,"Total":0}
引用次数: 0
Abstract
To enhance the mechanical strength of REBCO tapes, a technique involving the creation of "heterogeneous structures" within the REBCO layer has been developed. This method entails drilling small holes in buffer layers and filling them with metal material, resulting in the formation of heterogeneous structures that effectively suppress crack propagation. What we are concerned about is the mechanism by which these heterogeneous structures affect the crack propagation subsequently impacting the mechanical performance. Therefore, by introducing the phase-field method (PFM) of fracture, we presented the propagation path of the initial crack under tension in the REBCO layer with heterogeneous structures. Additionally, we established a quantitative correlation between the fracture ratio (crack depth/tape width) and tensile strain to characterize the influence of heterogeneous structures on mechanical performance. Our findings indicated that the presence of heterogeneous structures markedly restricts crack propagation, leading to a substantial increase in the tensile strength of the REBCO tape. Furthermore, we delved into the impact of heterogeneous structure density on fracture behavior. The results revealed that higher densities of heterogeneous structures were more effective in suppressing crack propagation. Considering that the heterogeneous structure reduces the effective current-carrying area, consequently causing critical current degradation, we also explored fracture behavior under various distributions of these structures. Our results demonstrate the possibility of mitigating critical current degradation while concurrently enhancing mechanical strength by strategically adjusting the distribution of heterogeneous structures.
期刊介绍:
Physica C (Superconductivity and its Applications) publishes peer-reviewed papers on novel developments in the field of superconductivity. Topics include discovery of new superconducting materials and elucidation of their mechanisms, physics of vortex matter, enhancement of critical properties of superconductors, identification of novel properties and processing methods that improve their performance and promote new routes to applications of superconductivity.
The main goal of the journal is to publish:
1. Papers that substantially increase the understanding of the fundamental aspects and mechanisms of superconductivity and vortex matter through theoretical and experimental methods.
2. Papers that report on novel physical properties and processing of materials that substantially enhance their critical performance.
3. Papers that promote new or improved routes to applications of superconductivity and/or superconducting materials, and proof-of-concept novel proto-type superconducting devices.
The editors of the journal will select papers that are well written and based on thorough research that provide truly novel insights.