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In-plane plane strain testing of she...
~
Queen's University at Kingston (Canada).
In-plane plane strain testing of sheet materials for multi-stage processes.
紀錄類型:
書目-電子資源 : 單行本
正題名/作者:
In-plane plane strain testing of sheet materials for multi-stage processes./
作者:
Valletta, David Alexander.
面頁冊數:
173 p.
附註:
Source: Masters Abstracts International, Volume: 44-01, page: 0539.
Contained By:
Masters Abstracts International44-01.
標題:
Engineering, Mechanical. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=MR05084
ISBN:
9780494050842
In-plane plane strain testing of sheet materials for multi-stage processes.
Valletta, David Alexander.
In-plane plane strain testing of sheet materials for multi-stage processes.
- 173 p.
Source: Masters Abstracts International, Volume: 44-01, page: 0539.
Thesis (M.Sc.(Eng))--Queen's University at Kingston (Canada), 2005.
This thesis examines the development of a small-scale in-plane tensile test capable of replicating strain paths on the left hand side of a forming limit diagram (FLD), from uniaxial tension to plane strain. The process, termed in-plane plane strain (IPPS) tensile testing, can also be employed to evaluate the formability of a sheet material for a multi-stage process. In the current study, tube bending and hydroforming strain paths are examined and replicated using this IPPS setup. Two steel sheet materials are considered herein, a highly formable aluminum killed drawing quality (DQ) steel and a high strength dual phase (DP600) steel.
ISBN: 9780494050842Subjects--Topical Terms:
170925
Engineering, Mechanical.
In-plane plane strain testing of sheet materials for multi-stage processes.
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Source: Masters Abstracts International, Volume: 44-01, page: 0539.
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Thesis (M.Sc.(Eng))--Queen's University at Kingston (Canada), 2005.
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This thesis examines the development of a small-scale in-plane tensile test capable of replicating strain paths on the left hand side of a forming limit diagram (FLD), from uniaxial tension to plane strain. The process, termed in-plane plane strain (IPPS) tensile testing, can also be employed to evaluate the formability of a sheet material for a multi-stage process. In the current study, tube bending and hydroforming strain paths are examined and replicated using this IPPS setup. Two steel sheet materials are considered herein, a highly formable aluminum killed drawing quality (DQ) steel and a high strength dual phase (DP600) steel.
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The research methodology included a parametric finite element method (FEM) study to design the specimen geometry needed to acquire the "pre-strain" bending and "final strain" hydroforming strain paths being replicated at the center of flat sheet specimens. For each of the steel sheets, a series of blanks were pre-strained to varying degrees in the rolling direction (RD) and subsequently strained to failure in the transverse sheet direction (TD). (Abstract shortened by UMI.)
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