Review of Intermediate Strain Rate Testing Devices

被引:31
作者
Bhujangrao, Trunal [1 ,2 ]
Froustey, Catherine [3 ]
Iriondo, Edurne [2 ]
Veiga, Fernando [1 ]
Darnis, Philippe [3 ]
Mata, Franck Girot [2 ,4 ]
机构
[1] TECNALIA, Parque Cient & Tecnol Gipuzkoa, Donostia San Sebastian 20009, Spain
[2] Univ Basque Country, UPV EHU, Dept Mech Engn, Bilbao 48013, Spain
[3] Univ Bordeaux, CNRS, UMR 5295, Inst Mecan & Dngenierie I2M,DuMAS, F-33400 Talence, France
[4] Ikerbasque, Basque Fdn Sci, Bilbao 48013, Spain
基金
欧盟地平线“2020”;
关键词
dynamic loading; material characterization; intermediate strain rate; hopkinson bar; load measuring techniques; shear tests; high-temperature tests; ADIABATIC SHEAR LOCALIZATION; DIGITAL-IMAGE-CORRELATION; HOPKINSON PRESSURE BAR; FLOW-STRESS; DYNAMIC RECRYSTALLIZATION; MICROSTRUCTURE EVOLUTION; SHEET STEEL; WIDE-RANGE; IMPACT; BEHAVIOR;
D O I
10.3390/met10070894
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Materials undergo various loading conditions during different manufacturing processes, including varying strain rates and temperatures. Research has shown that the deformation of metals and alloys during manufacturing processes such as metal forming, machining, and friction stir welding (FSW), can reach a strain rate ranging from 10(-1)to 10(6)s(-1). Hence, studying the flow behavior of materials at different strain rates is important to understanding the material response during manufacturing processes. Experimental data for a low strain rate of 10(3)s(-1)are readily available by using traditional testing devices such as a servo-hydraulic testing machine and the split Hopkinson pressure bar method, respectively. However, for the intermediate strain rate (10(1)to 10(3)s(-1)), very few testing devices are available. Testing the intermediate strain rate requires a demanding test regime, in which researchers have expanded the use of special instruments. This review paper describes the development and evolution of the existing intermediate strain rate testing devices. They are divided based on the loading mechanism; it includes the high-speed servo-hydraulic testing machines, hybrid testing apparatus, the drop tower, and the flywheel machine. A general description of the testing device is systematically reviewed; which includes the working principles, some critical theories, technological innovation in load measurement techniques, components of the device, basic technical assumption, and measuring techniques. In addition, some research direction on future implementation and development of an intermediate strain rate apparatus is also discussed in detail.
引用
收藏
页码:1 / 24
页数:24
相关论文
共 104 条
[1]  
Abd Rahman F, 2018, PROCEEDINGS OF THE 2018 7TH INTERNATIONAL CONFERENCE ON COMPUTER AND COMMUNICATION ENGINEERING (ICCCE), P183, DOI 10.1109/ICCCE.2018.8539290
[2]  
[Anonymous], 262031 ISO
[3]  
[Anonymous], 262032 ISO
[4]   Separation of waves propagating in an elastic or viscoelastic Hopkinson pressure bar with three-dimensional effects [J].
Bacon, C .
INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 1999, 22 (01) :55-69
[5]   STRAIN-RATE EFFECTS IN PROPAGATION OF TORSIONAL PLASTIC WAVES [J].
BAKER, WE ;
YEW, CH .
JOURNAL OF APPLIED MECHANICS, 1966, 33 (04) :917-+
[6]   Dynamic impact testing with servohydraulic testing machines [J].
Bardenheier, R. ;
Rogers, G. .
JOURNAL DE PHYSIQUE IV, 2006, 134 :693-699
[7]   Polypropylene foam behaviour under dynamic loadings: Strain rate, density and microstructure effects [J].
Bouix, Remy ;
Viot, Philippe ;
Lataillade, Jean-Luc .
INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 2009, 36 (02) :329-342
[8]   An optimisation method for separating and rebuilding one-dimensional dispersive waves from multi-point measurements. Application to elastic or viscoelastic bars [J].
Bussac, MN ;
Collet, P ;
Gary, G ;
Othman, R .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2002, 50 (02) :321-349
[9]   TEMPERATURE AND STRAIN-RATE DEPENDENCE OF SHEAR STRENGTH OF MILD STEEL [J].
CAMPBELL, JD ;
FERGUSON, WG .
PHILOSOPHICAL MAGAZINE, 1970, 21 (169) :63-+
[10]   Wave separation in viscoelastic pressure bars using singlepoint measurements of strain and velocity [J].
Casem, DT ;
Fourney, W ;
Chang, P .
POLYMER TESTING, 2003, 22 (02) :155-164