A failure criterion for genuinely orthotropic materials and integration of a series of criteria for materials of different degrees of anisotropy
Existing failure criteria for orthotropic materials are subject to an underlying assumption which cause contradictions when applied to genuinely orthotropic materials that are significantly anisotropic in elasticity as well as in strengths. For such materials, there is lack of consistent failure cri...
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Published in | Royal Society open science Vol. 11; no. 5; pp. 240205 - 19 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
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The Royal Society Publishing
22.05.2024
The Royal Society |
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Abstract | Existing failure criteria for orthotropic materials are subject to an underlying assumption which cause contradictions when applied to genuinely orthotropic materials that are significantly anisotropic in elasticity as well as in strengths. For such materials, there is lack of consistent failure criteria to support their applications in engineering structures. A general quadratic failure criterion tends to leave undetermined coefficients for interactive terms. A rational approach is adopted in this paper based on mathematical and logical considerations to determine these coefficients as the objective of this paper. Considerations are based on the intrinsic characteristics of the quadric surfaces introduced by the quadratic failure criterion. These coefficients must take the values as obtained, leaving no alternatives if logic prevails. The obtained criterion integrates for the first time a range of criteria separately formulated for materials of different degrees of anisotropy, from genuinely orthotropic, through transversely isotropic, cubically symmetric, to completely isotropic ones with different or identical tensile and compression strengths. |
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AbstractList | Existing failure criteria for orthotropic materials are subject to an underlying assumption which cause contradictions when applied to genuinely orthotropic materials that are significantly anisotropic in elasticity as well as in strengths. For such materials, there is lack of consistent failure criteria to support their applications in engineering structures. A general quadratic failure criterion tends to leave undetermined coefficients for interactive terms. A rational approach is adopted in this paper based on mathematical and logical considerations to determine these coefficients as the objective of this paper. Considerations are based on the intrinsic characteristics of the quadric surfaces introduced by the quadratic failure criterion. These coefficients must take the values as obtained, leaving no alternatives if logic prevails. The obtained criterion integrates for the first time a range of criteria separately formulated for materials of different degrees of anisotropy, from genuinely orthotropic, through transversely isotropic, cubically symmetric, to completely isotropic ones with different or identical tensile and compression strengths. Existing failure criteria for orthotropic materials are subject to an underlying assumption which cause contradictions when applied to genuinely orthotropic materials that are significantly anisotropic in elasticity as well as in strengths. For such materials, there is lack of consistent failure criteria to support their applications in engineering structures. A general quadratic failure criterion tends to leave undetermined coefficients for interactive terms. A rational approach is adopted in this paper based on mathematical and logical considerations to determine these coefficients as the objective of this paper. Considerations are based on the intrinsic characteristics of the quadric surfaces introduced by the quadratic failure criterion. These coefficients must take the values as obtained, leaving no alternatives if logic prevails. The obtained criterion integrates for the first time a range of criteria separately formulated for materials of different degrees of anisotropy, from genuinely orthotropic, through transversely isotropic, cubically symmetric, to completely isotropic ones with different or identical tensile and compression strengths.Existing failure criteria for orthotropic materials are subject to an underlying assumption which cause contradictions when applied to genuinely orthotropic materials that are significantly anisotropic in elasticity as well as in strengths. For such materials, there is lack of consistent failure criteria to support their applications in engineering structures. A general quadratic failure criterion tends to leave undetermined coefficients for interactive terms. A rational approach is adopted in this paper based on mathematical and logical considerations to determine these coefficients as the objective of this paper. Considerations are based on the intrinsic characteristics of the quadric surfaces introduced by the quadratic failure criterion. These coefficients must take the values as obtained, leaving no alternatives if logic prevails. The obtained criterion integrates for the first time a range of criteria separately formulated for materials of different degrees of anisotropy, from genuinely orthotropic, through transversely isotropic, cubically symmetric, to completely isotropic ones with different or identical tensile and compression strengths. |
Author | Li, Shuguang Xu, Mingming Sitnikova, Elena |
Author_xml | – sequence: 1 givenname: Mingming surname: Xu fullname: Xu, Mingming organization: Faculty of Engineering, University of Nottingham, Nottingham NG8 1BB, UK – sequence: 2 givenname: Elena surname: Sitnikova fullname: Sitnikova, Elena organization: Faculty of Engineering, University of Nottingham, Nottingham NG8 1BB, UK – sequence: 3 givenname: Shuguang orcidid: 0000-0002-6746-8885 surname: Li fullname: Li, Shuguang organization: Faculty of Engineering, University of Nottingham, Nottingham NG8 1BB, UK |
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Cites_doi | 10.1098/rspa.1948.0045 10.1016/0020-7403(87)90059-2 10.1115/1.3153664 10.1007/BF01181480 10.1016/B978-0-08-102638-0.00004-9 10.1016/S0022-5096(01)00010-2 10.1177/002199837100500106 10.1177/0021998312454478 10.1007/BF00754900 10.1007/BF00860685 10.3390/jcs6030082 10.1007/BF00550671 10.1093/oso/9780198503675.001.0001 10.1016/j.compositesa.2017.08.007 10.1017/S0305004100055596 10.3934/matersci.2017.5.1165 |
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References_xml | – volume: 4 start-page: 582 year: 1913 ident: e_1_3_9_18_2 article-title: Mechanics of solid bodies in the plastically-deformable state. Nachrichten von der Gesellschaft der Wissenschaften zu Göttingen publication-title: Mathematisch-Physikalische Klasse – ident: e_1_3_9_11_2 doi: 10.1098/rspa.1948.0045 – ident: e_1_3_9_13_2 doi: 10.1016/0020-7403(87)90059-2 – ident: e_1_3_9_2_2 doi: 10.1115/1.3153664 – start-page: 173 volume-title: Double-double: a new perspective in the manufacture and design of composites year: 2022 ident: e_1_3_9_8_2 – ident: e_1_3_9_16_2 doi: 10.1007/BF01181480 – ident: e_1_3_9_9_2 doi: 10.1016/B978-0-08-102638-0.00004-9 – ident: e_1_3_9_15_2 doi: 10.1016/S0022-5096(01)00010-2 – volume-title: Fracture and flow in metals, metals technology year: 1944 ident: e_1_3_9_20_2 – ident: e_1_3_9_5_2 doi: 10.1177/002199837100500106 – volume: 59 start-page: 754 year: 1864 ident: e_1_3_9_19_2 article-title: Mémoire sur l’écoulement des corps solides soumis à de fortes pressions publication-title: C. R. Acad. Sci. Paris – ident: e_1_3_9_4_2 doi: 10.1177/0021998312454478 – ident: e_1_3_9_14_2 doi: 10.1007/BF00754900 – ident: e_1_3_9_10_2 doi: 10.1007/BF00860685 – volume-title: Mathematical handbook for scientists and engineers year: 1968 ident: e_1_3_9_22_2 – volume-title: Analysis of failure in fiber polymer laminates: the theory of Alfred Puck year: 2008 ident: e_1_3_9_3_2 – ident: e_1_3_9_7_2 doi: 10.3390/jcs6030082 – ident: e_1_3_9_23_2 doi: 10.1007/BF00550671 – ident: e_1_3_9_21_2 doi: 10.1093/oso/9780198503675.001.0001 – ident: e_1_3_9_6_2 doi: 10.1016/j.compositesa.2017.08.007 – ident: e_1_3_9_12_2 doi: 10.1017/S0305004100055596 – ident: e_1_3_9_17_2 doi: 10.3934/matersci.2017.5.1165 |
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SubjectTerms | Anisotropy Coefficients Composite materials Criteria Empiricism Engineering Failure failure criterion orthotropic materials quadratic failure function quadric surface Shear strength strength Tsai–Wu criterion |
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Title | A failure criterion for genuinely orthotropic materials and integration of a series of criteria for materials of different degrees of anisotropy |
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