Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 81 checked references that resolve
resolves10.1016/j.jmapro.2017.02.015Finite element simulation and analysis of serrated chip formation during high–speed machining of AA7075–T651 alloy
resolves10.1007/BF00725830The effect of strain rate on flow stress, strength and ductility of an Al-Li-Mg alloy
resolves10.3390/met8080576Strain Rate Dependence of Material Strength in AA5xxx Series Aluminum Alloys and Evaluation of Their Constitutive Equation
resolves10.1063/1.4755792Effect of temperature, strain, and strain rate on the flow stress of aluminum under shock-wave compression
resolves10.1007/BF02649867Effect of strain rate and temperature on the flow stress of β-phase titanium- hydrogen alloys
resolves10.1115/IMECE2014-36985Extension of Non-Associated Hill48 Model for Characterizing Dynamic Mechanical Behavior of a Typical High-Strength Steel Sheet
resolves10.1007/BF02326065A direct-tension split Hopkinson bar for high strain-rate testing
resolves10.1007/BF02410405Stress-strain data obtained at high rates using an expanding ring
resolves10.1115/1.3625202Strain-Rate Effects in the Propagation of Torsional Plastic Waves
resolves10.1115/1.3408771On the Use of a Torsional Split Hopkinson Bar to Study Rate Effects in 1100-0 Aluminum
resolves10.1007/s11340-011-9481-4A Kolsky Torsion Bar Technique for Characterization of Dynamic Shear Response of Soft Materials
resolves10.1098/rsta.2013.0210Hopkinson bar techniques for the intermediate strain rate testing of bovine cortical bone
resolves10.1007/s11340-007-9095-zA Long Split Hopkinson Pressure Bar (LSHPB) for Intermediate-rate Characterization of Soft Materials
resolves10.1007/s11340-007-9082-4Design of an Impact Loading Machine Based on a Flywheel Device: Application to the Fatigue Resistance of the High Rate Pre-straining Sensitivity of Aluminium Alloys
resolves10.1016/j.matdes.2013.12.047Tensile flow behavior of ultra low carbon, low carbon and micro alloyed steel sheets for auto application under low to intermediate strain rate
resolves10.1109/TCPMT.2011.2146259Brittle Versus Ductile Failure of a Lead-Free Single Solder Joint Specimen Under Intermediate Strain Rate
resolves10.1007/s11661-014-2480-1Effect of Strain Rate on the Dynamic Recrystallization Behavior in a Nitrogen-Enhanced 316L(N)
resolves10.1016/S1003-6326(16)64126-2Dislocation mechanism for dynamic recrystallization in twin-roll casting Mg-5.51Zn-0.49Zr magnesium alloy during hot compression at different strain rates
resolves10.1007/s11340-010-9443-2Modal Analysis of a Servo-Hydraulic High Speed Machine and its Application to Dynamic Tensile Testing at an Intermediate Strain Rate
resolves10.1243/03093247JSA320Dynamic behaviour of high‐strength sheet steel in dynamic tension: Experimental and numerical analyses
resolves10.1007/BF02325092Applications of digital-image-correlation techniques to experimental mechanics
resolves10.1299/jmmp.3.64Impact Deformation of Thin-Walled Circular Tube Filled with Aluminum Foam in Lateral Compression
resolves10.1016/j.ijimpeng.2015.10.004Design and verification of a strain gauge based load sensor for medium-speed dynamic tests with a hydraulic test machine
resolves10.1016/S0734-743X(98)00048-7Separation of waves propagating in an elastic or viscoelastic Hopkinson pressure bar with three-dimensional effects
resolves10.1016/S0022-5096(96)00117-2A new method for the separation of waves. Application to the SHPB technique for an unlimited duration of measurement
resolves10.1016/S0022-5096(01)00057-6An optimisation method for separating and rebuilding one-dimensional dispersive waves from multi-point measurements. Application to elastic or viscoelastic bars
resolves10.1006/jsvi.2002.5034A NEW METHOD FOR SEPARATING LONGITUDINAL WAVES IN A LARGE DIAMETER HOPKINSON BAR
resolves10.1016/j.msea.2017.12.028Constitutive modeling of flow behavior and microstructure evolution of AA7075 in hot tensile deformation
resolves10.1007/BF02325713Elevated temperature testing with the torsional split hopkinson bar
resolves10.1115/1.2789137Recovery Experiments for Adiabatic Shear Localization: A Novel Experimental Technique
resolves10.1007/s11340-007-9066-4A Study of Large Plastic Deformations in Dual Phase Steel Using Digital Image Correlation and FE Analysis
resolves10.1016/S0749-6419(00)00020-6Shear testing of a sheet steel at wide range of strain rates and a constitutive relation with strain-rate and temperature dependence of the flow stress
The 24 references without a DOI — listed, not checked
no DOI — not checkedKalpakjian, S. (1997). Manufacturing Processes for Engineering Materials, Addison-Wesley/Longman. [3rd ed.].
no DOI — not checkedFrost, H.J., and Ashby, M.F. (1982). Deformation-mechanism Maps: The Plasticity and Creep of Metals and Ceramic, Elsevier Science Limited.
no DOI — not checkedDodd, B., and Bai, Y. (2012). Adiabatic Shear Localization Frontiers and Advances, Elsevier. [2nd ed.].
no DOI — not checkedA method of measuring the pressure produced in the detonation of high, explosives or by the impact of bullets
no DOI — not checkedSplit Hopkinson pressure bar techniques for characterizing soft materials
no DOI — not checkedProgress and application of combined compression and shear wave loading technique
no DOI — not checkedInstron (2019, June 13). High Strain Rate VHS System. Data Sheet. Available online: https://www.instron.us/-/media/literature-library/products/2019/05/vhs-high-strain-rate-system-pod.pdf?la=en.
no DOI — not checkedShimadzu (2017, November 01). Impact Testing. Available online: https://www.shimadzu.com/an/pdf/388_c225e037a.pdf.
no DOI — not checkedISO 26203-1:2018 (2010, February 01). Metallic Materials—Tensile Testing at High Strain Rates—Part 1: Elastic-Bar-Type Systems. Available online: https://www.iso.org/standard/72573.html.
no DOI — not checkedISO 26203-2:2011 (2011, October 01). Metallic Materials—Tensile Testing at High Strain Rates—Part 2: Servo-Hydraulic and Other Test Systems. Available online: https://www.iso.org/standard/46275.html.
no DOI — not checked(2008, November 01). Zwick/Roell Materials Testing. Available online: https://www.zwickroell.com/en/servohydraulic-testing-machines/high-speed-testing-machine.
no DOI — not checkedDynamic impact testing with servohydraulic testing machines
no DOI — not checkedSutton, M.A., Orteu, J.J., and Schreier, H. (2009). Image Correlation for Shape, Motion and Deformation Measurements: Basic Concepts, Theory and Applications, Springer Science & Business Media.
no DOI — not checkedLawrence, J. (1972). Impact Strength and Toughness of Fiber Composite Materials, NTIS.
no DOI — not checkedHigh-speed tension tests at elevated temperatures
no DOI — not checkedHopkinson techniques for dynamic recovery experiments
no DOI — not checkedKussmal, K., Demler, T., and Klenk, A. (1989). Advanced Testing Methods for Rotating Disk Impact Machines, Mechanical Properties of Materials at High Rates of Strain. Conference Series-Institute of Physics, Institute of Physics.
no DOI — not checkedFollansbee, P. (1985). Compression Testing by Conventional Load Frames. Metals Handbook, American Society for Metals, ASM International. [9th ed.].
no DOI — not checkedLataillade, J., Bacon, C., Collombet, F., and Delaet, M. (1994). The benefit of Hopkinson bar techniques for the investigation of composite and ceramic materials. Wave Propagation and Emerging Technologies, ASME.
no DOI — not checkedWood, P.K.C., and Schley, C.A. (2009). Strain Rate Testing of Metallic Materials and Their Modelling for Use in CAE Based Automotive Crash Simulation Tools:(Recommendations and Procedures), Shrewsbury.
no DOI — not checkedDieter, G.E., Kuhn, H.A., and Semiatin, S.L. (2003). Torsion Testing to Assess Bulk Workability. Handbook of Workability and Process Design, ASM International.
no DOI — not checkedChwalik, P., Klepaczko, J., and Rusinek, A. (2003, January 8–12). Impact shear-numerical analyses of ASB evolution and failure for. Proceedings of the 7th International Conference on Mechanical and Physical Behaviour of Materials, Porto, Portugal.
no DOI — not checkedMurr, L., Staudhammer, K., and Meyers, M. (1985, January 28). Metallurgical applications of shock wave and high strain rate phenomena. Proceedings of the EXPLOMET’85—International Conference on Metallurgical Applications of Shock Wave and High Strain-Rate Phenomena, Portland, OR, USA.
no DOI — not checkedMurr, K., and Lawrence, M. (1986). Shock consolidation of aluminium lithium powder. Metallurgical Applications of Shock Wave and High Strain Rate Phenomena, Marcel Dekker, INC.
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