A Model of a Source of Shock Wave Metal Ejection Based on Richtmyer–Meshkov Instability Theory
Author:
Publisher
Springer Science and Business Media LLC
Subject
Mechanics of Materials,Materials Science (miscellaneous)
Link
http://link.springer.com/article/10.1007/s40870-017-0118-2/fulltext.html
Reference27 articles.
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2. Asay JR (1978) Thick-plate technique for measuring ejecta from shock surfaces. J Appl Phys 49(12):6173–6175
3. Ogorodnikov VA, Ivanov AG, Mikhaylov AL et al (1998) Particle ejection from the shocked free surface of metals and diagnostic methods for these particles. Combust Explos Shock Waves 34:696. doi: 10.1007/BF02672705
4. Vogan WS, Anderson WW, Grover M, Hammerberg JE, King NSP, Lamoreaux SK, Macrum G, Morley KB, Rigg PA, Stevens GD, Turley WD, Veeser L, Buttler WT (2005) Piezoelectric characterization of ejecta from shocked tin surfaces. J Appl Phys 98:113508
5. Zellner MB, Grover M, Hammerberg JE, Hixson RS, Iverson AJ, Macrum GS, Morley KB, Obst AW, Olson RT, Payton JR, Rigg PA, Routley N, Stevens GD, Turley WD, Veeser L, Buttler WT (2007) Effects of shock-breakout pressure on ejection of micron-scale material from shocked tin surfaces. J Appl Phys 102:013522; idem (2008) Erratum: Effects of shock-breakout pressure on ejection of material from shocked tin surfaces [(2007) J Appl Phys 102, 013522-1-10]. 103:109901
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