Evaluation method of plastic material and evaluation method of deformation processing of plastic material

US10352836B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10352836-B2
Application numberUS-201515308680-A
CountryUS
Kind codeB2
Filing dateMay 8, 2015
Priority dateMay 8, 2014
Publication dateJul 16, 2019
Grant dateJul 16, 2019

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Abstract

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An evaluation method of a plastic material includes: a first shearing process of performing simple shearing deformation with respect to a first plastic sheet; a second shearing process of performing simple shearing deformation with respect to a second plastic sheet; a first partial stress-strain curve data obtaining process of obtaining first partial stress-strain curve data; a second partial stress-strain curve data obtaining process of obtaining second partial stress-strain curve data; and a synthesized stress-strain curve data obtaining process of obtaining synthesized stress-strain curve data based on the first partial stress-strain curve data and the second partial stress-strain curve data.

First claim

Opening claim text (preview).

The invention claimed is: 1. An evaluation method of a plastically deformable material comprising: a first shearing process of performing simple shearing deformation with respect to a first plastically deformable sheet by dividing the first plastically deformable sheet having a first strain amount, in a range which includes 0, into two regions by a virtual section perpendicular to a surface thereof, and by applying a shear stress to the first plastically deformable sheet so as to make relative positions of the two regions shifted along the virtual section be on the same surface; a second shearing process of performing simple shearing deformation with respect to a second plastically deformable sheet by dividing the second plastically deformable sheet having a second strain amount which is different from the first strain amount, the second strain amount in a range including 0, into two regions by a virtual section perpendicular to a surface thereof, and by applying a shear stress to the second plastically deformable sheet so as to make relative positions of the two regions shifted along the virtual section be on the same surface; a first partial stress-strain curve data obtaining process of obtaining first partial stress-strain curve data from a relationship between the shear stress applied to the first plastically deformable sheet in the first shearing process, and a total strain amount which is a sum of a shear strain amount which is applied to the first plastically deformable sheet in the first shearing process and the first strain amount, by measuring the shear stress and the shear strain which are applied to the first plastically deformable sheet in the first shearing process; a second partial stress-strain curve data obtaining process of obtaining second partial stress-strain curve data from a relationship between the shear stress applied to the second plastically deformable sheet in the second shearing process, and a total strain amount which is a sum of a shear strain amount which is applied to the second plastically deformable sheet in the second shearing process and the second strain amount, by measuring the shear stress and the shear strain which are applied to the second plastically deformable sheet in the second shearing process; a synthesized stress-strain curve data obtaining process of obtaining synthesized stress-strain curve data based on the first partial stress-strain curve data and the second partial stress-strain curve data; and a process of outputting the synthesized stress-strain curve data to a display device. 2. The evaluation method of a plastically deformable material according to claim 1 , further comprising: an outer form removing process of obtaining the second plastically deformable sheet by removing an outer form part of the first plastically deformable sheet after unloading the shear stress applied in the first shearing process. 3. The evaluation method of a plastically deformable material according to claim 2 , wherein, in the outer form removing process, the outer form part is removed across the two regions of the first plastically deformable sheet along the surface direction perpendicularly intersecting the virtual section and a flat surface of the first plastically deformable sheet. 4. The evaluation method of a plastically deformable material according to claim 1 , wherein the first plastically deformable sheet and the second plastically deformable sheet are individual plastically deformable sheets different from each other. 5. The evaluation method of a plastically deformable material according to claim 4 , wherein the second strain amount is greater than the first strain amount, and is equal to or less than the strain amount applied to the first plastically deformable material in the first shearing process. 6. The evaluation method of a plastically deformable material according to claim 4 , wherein, in the synthesized stress-strain curve data obtaining process, the synthesized stress-strain curve data is obtained by combining the curve data of a strain region other than a part which receives the influence of a cross-over effect from the first partial stress-strain curve data and the second partial stress-strain curve data. 7. The evaluation method of a plastically deformable material according to claim 4 , further comprising: an outer form removing process of obtaining a third plastically deformable sheet having a third strain amount different from the first strain amount and the second strain amount by removing an outer form part formed by the simple shearing deformation in the first plastically deformable sheet; a third shearing process of performing simple shearing deformation with respect to the third plastically deformable sheet by dividing the third plastically deformable sheet into two regions by a virtual section perpendicular to the surface thereof, and by applying a shear stress to the third plastically deformable sheet so as to make relative positions of the two regions shifted along the virtual section be on the same surface; and a third partial stress-strain curve data obtaining process of obtaining third partial stress-strain curve data from a relationship between the shear stress applied to the third plastically deformable sheet in the third shearing process, and a total strain amount which is a sum of a shear strain amount which is applied to the third plastically deformable sheet in the third shearing process and the third strain amount, by measuring the shear stress and the shear strain which are applied to the third plastically deformable sheet in the third shearing process, wherein, in the synthesized stress-strain curve data obtaining process, the synthesized stress-strain curve data is obtained based on the first partial stress-strain curve data, the second partial stress-strain curve data, and the third partial stress-strain curve data. 8. The evaluation method of a plastically deformable material according to claim 1 , wherein, in the synthesized stress-strain curve data obtaining process, the synthesized stress-strain curve data is obtained by approximating the first partial stress-strain curve data and the second partial stress-strain curve data based on a work hardening law. 9. The evaluation method of a plastically deformable material according to claim 1 , wherein, in the synthesized stress-strain curve data obtaining process, the synthesized stress-strain curve data is obtained by approximating the first partial stress-strain curve data and the second partial stress-strain curve data by a relational equation expressed by the following equation (1), σ= K (ε p +a ) m   (1) m=n*+ 1/{ b (ε p +c )}  (2) here, in equation (1), σ is an equivalent stress, K (MPa) and a are material factors of the plastically deformable material, ε p is an equivalent plastic strain, and m is as illustrated in the above-described equation (2), and in equation (2), n* is a convergence value of a work hardening coefficient, b is a parameter indicating the rate of convergence of the work hardening coefficient, and c is a parameter indicating the rate of development of the work hardening coefficient. 10. The evaluation method of a plastically deformable material according to claim 1 , wherein the application direction of the shear stress in the first shearing process and the application direction of the shear stress in the second shearing process are opposite to each other. 11. The evaluation method of a plastically deformable material according to claim 1 , wherein, in the first shearing process, the application direction of the shear stress is reversed in the middle. 12. The evaluation method of a plas

Assignees

Inventors

Classifications

  • G01N3/02Primary

    Details · CPC title

  • Two dimensional, e.g. tapes, webs, sheets, strips, disks or membranes · CPC title

  • Numerical modelling · CPC title

  • by single or successive action of pressing tools, e.g. vice jaws · CPC title

  • Shearing · CPC title

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What does patent US10352836B2 cover?
An evaluation method of a plastic material includes: a first shearing process of performing simple shearing deformation with respect to a first plastic sheet; a second shearing process of performing simple shearing deformation with respect to a second plastic sheet; a first partial stress-strain curve data obtaining process of obtaining first partial stress-strain curve data; a second partial s…
Who is the assignee on this patent?
Nippon Steel & Sumitomo Metal Corp
What technology area does this patent fall under?
Primary CPC classification G01N3/02. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Jul 16 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).