Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals
The International Organization for Standardization Technical Committee for Metallic Materials—Tensile Testing stated in 2011 that temperature and strain rate variations would induce a change in the results of tensile tests, termed as the measurement uncertainty of tensile mechanical properties in me...
| Published in: | Metals |
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| Main Authors: | , , |
| Format: | Article |
| Language: | English |
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MDPI AG
2021-10-01
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| Online Access: | https://www.mdpi.com/2075-4701/11/11/1733 |
| _version_ | 1850340102912344064 |
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| author | Tingdong Xu Kai Wang Shenhua Song |
| author_facet | Tingdong Xu Kai Wang Shenhua Song |
| author_sort | Tingdong Xu |
| collection | DOAJ |
| container_title | Metals |
| description | The International Organization for Standardization Technical Committee for Metallic Materials—Tensile Testing stated in 2011 that temperature and strain rate variations would induce a change in the results of tensile tests, termed as the measurement uncertainty of tensile mechanical properties in metals. The uncertainty means that the tensile testing results of a specimen at a temperature and strain rate are not the original mechanical properties possessed prior to the testing. Hence, since the time of Galileo the results of tensile testing have been incorrectly interpreted as the original mechanical properties of specimens, thereby forming a paradox. At the turn of the 21st century, the micro-theory of metallic elastic deformation was proposed, identifying that a change in microstructure at atomic level could occur during elastic deformation, leading to a change in the concentration of solute (impurity) at grain boundaries/around dislocations. The micro-theory has been used to explain the mechanism of the measurement uncertainty. Different tensile temperatures and strain rates correspond to different durations of elastic deformation during tensile testing, different concentrations of solute at grain boundaries/dislocations, and thus different mechanical properties. On this basis, a new technology system of tensile testing is suggested, i.e., a “mechanical property–tensile strain rate” curve at a given test temperature can be used to evaluate the original mechanical property. The higher the strain rate is, the closer the property on the curve is to the original property. Therefore, to determine the original mechanical property of the tested metal, a sufficiently high strain rate is required. The curve can also characterize the property variation of the tested metal in service with the service time. In addition, the property characterized by a point on the curve can represent the property of the tested metal when processing-deformed with the corresponding strain rate. As an example of the application of the new technology system, the property of high-entropy alloys is represented with a curve. The results show that the new technology system could change the conceptual framework and testing technology system of metallic mechanics. |
| format | Article |
| id | doaj-art-eaf2aa62b7dc4784a877dcbcbfe71572 |
| institution | Directory of Open Access Journals |
| issn | 2075-4701 |
| language | English |
| publishDate | 2021-10-01 |
| publisher | MDPI AG |
| record_format | Article |
| spelling | doaj-art-eaf2aa62b7dc4784a877dcbcbfe715722025-08-19T23:14:40ZengMDPI AGMetals2075-47012021-10-011111173310.3390/met11111733Measurement Uncertainty and Representation of Tensile Mechanical Properties in MetalsTingdong Xu0Kai Wang1Shenhua Song2Central Iron & Steel Research Institute, Beijing 100081, ChinaCentral Iron & Steel Research Institute, Beijing 100081, ChinaHarbin Institute of Technology, School of Materials Science and Engineering, Shenzhen 518055, ChinaThe International Organization for Standardization Technical Committee for Metallic Materials—Tensile Testing stated in 2011 that temperature and strain rate variations would induce a change in the results of tensile tests, termed as the measurement uncertainty of tensile mechanical properties in metals. The uncertainty means that the tensile testing results of a specimen at a temperature and strain rate are not the original mechanical properties possessed prior to the testing. Hence, since the time of Galileo the results of tensile testing have been incorrectly interpreted as the original mechanical properties of specimens, thereby forming a paradox. At the turn of the 21st century, the micro-theory of metallic elastic deformation was proposed, identifying that a change in microstructure at atomic level could occur during elastic deformation, leading to a change in the concentration of solute (impurity) at grain boundaries/around dislocations. The micro-theory has been used to explain the mechanism of the measurement uncertainty. Different tensile temperatures and strain rates correspond to different durations of elastic deformation during tensile testing, different concentrations of solute at grain boundaries/dislocations, and thus different mechanical properties. On this basis, a new technology system of tensile testing is suggested, i.e., a “mechanical property–tensile strain rate” curve at a given test temperature can be used to evaluate the original mechanical property. The higher the strain rate is, the closer the property on the curve is to the original property. Therefore, to determine the original mechanical property of the tested metal, a sufficiently high strain rate is required. The curve can also characterize the property variation of the tested metal in service with the service time. In addition, the property characterized by a point on the curve can represent the property of the tested metal when processing-deformed with the corresponding strain rate. As an example of the application of the new technology system, the property of high-entropy alloys is represented with a curve. The results show that the new technology system could change the conceptual framework and testing technology system of metallic mechanics.https://www.mdpi.com/2075-4701/11/11/1733measurement uncertaintymechanical propertiesmetalsembrittlementgrain boundary segregationductility |
| spellingShingle | Tingdong Xu Kai Wang Shenhua Song Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals measurement uncertainty mechanical properties metals embrittlement grain boundary segregation ductility |
| title | Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals |
| title_full | Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals |
| title_fullStr | Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals |
| title_full_unstemmed | Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals |
| title_short | Measurement Uncertainty and Representation of Tensile Mechanical Properties in Metals |
| title_sort | measurement uncertainty and representation of tensile mechanical properties in metals |
| topic | measurement uncertainty mechanical properties metals embrittlement grain boundary segregation ductility |
| url | https://www.mdpi.com/2075-4701/11/11/1733 |
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