Topics

No keywords indexed for this article. Browse by subject →

References
41
[1]
J. H. Smith, “Three low-pressure spall thresholds in copper,” in: Dynamic Behavior of Materials, ASTM, Philadelphia (1963).
[2]
D. W. Blinkow and D. V. Keller, “Experiments on the mechanism of spall,” in: Dynamic Behavior of Materials, ASTM, Philadelphia (1963).
[3]
G. T. Khan, B. L. Averbach, W. S. Owen, and M. Cohen, “Origin of chip microcracks in polycrystalline iron and steel,” in: Atomic Mechanism of Fracture [in Russian], Metallurgizdat, Moscow (1963).
[4]
Ya. B. Fridman, Mechanical Properties of Metals [in Russian], Pt. 1, 3rd edn., Mashinostroenie (Moscow).
[5]
T. W. Barbee, L. Seamon, R. Grewdson, and D. Curran, “Dynamic fracture criteria for ductile and brittle metals,” J. Mater.,7, No. 3 (1972).
[6]
D. R. Curran and D. A. Shockey, “Dynamic fracture criteria for a polycarbonate,” J. Appl. Phys.,44, No. 9 (1973). 10.1063/1.1662891
[7]
N. A. Zlatin, G. S. Pugachev, S. M. Mochalov, and A. M. Bratov, “Time dependence of the strength of metals for microsecond band longevities,” Fiz. Tverd. Tela,17, No. 9 (1975).
[8]
A. G. Ivanov and V. N. Mineev, “On the scaling criterion for brittle fracture of a structure,” Dokl. Akad. Nauk SSSR,220, No. 3 (1975).
[9]
V. S. Nikiforovskii, “On the kinetic nature of brittle fracture of solids,” Zh. Prikl. Mekh. Tekh. Fiz., No. 5 (1976). 10.1007/bf00864168
[10]
Yu. I. Fadeenko, “Time criterion of fracture by explosion,” Zh. Prikl. Mekh. Tekh. Fiz., No. 6 (1977).
[11]
B. M. Butcher, L. M. Barker, D. E. Munson, and C. D. Lundergan, “Influence of stress history on time-dependence in metals,” AIAA J.,2, No. 6 (1964). 10.2514/3.2484
[12]
F. R. Tuler and B. M. Butcher, “A criterion for the time dependence of dynamic fracture,” Int. J. Fract. Mech.,4, No. 4 (1968). 10.1007/bf00186808
[13]
L. J. Cohen and H. M. Berkowitz, “Time-dependence fracture criteria for 6061-T6 aluminum under stress-wave loading in uniaxial strain,” Int. J. Fract. Mech.,7, No. 2 (1971). 10.1007/bf00183805
[14]
N. A. Zlatin, S. M. Mochalov, G. S. Pugachev, and A. M. Bragov, “Time regularities of metal fracture under intensive loads,” Fiz. Tverd. Tela,16, No. 6 (1974).
[15]
B. A. Tarasov, “On the time-dependence of the strength of organic glass under shock loading,” Probl. Prochn., No. 2 (1972).
[16]
L. D. Volovets, N. A. Zlatin, and G. S. Pugachev, “On the fracture mechanism of solids in microsecond band lifetimes,” Pis'ma Zh. Tekh. Fiz.,4, No. 18 (1978).
[17]
A. G. Ivanov and S. A. Novikov, “Capacitive transducer method for recording the instantaneous velocity of a moving surface,” Prib. Tekh. Eksp., No. 1 (1963).
[18]
G. I. Kanel', “Application of manganin transducers to measure the shock compression pressure of condensed media,” [in Russian], VINITI, No. 477-74 dep. (1974).
[19]
E. P. Mogilevskii, Materials in Machine Construction [in Russian], Vol. 2, Mashinostroenie, Moscow (1967).
[20]
S. A. Novikov, I. I. Divnov, and A. G. Ivanov, “Investigations of the fracture of steel, aluminum, and copper under explosive loading,” Fiz. Metl. Metalloved.,21, No. 4 (1966).
[21]
G. V. Stepanov, “Spall fracture of metals by plane elastic-plastic waves,” Probl. Prochn., No. 8 (1976).
[22]
A. M. Molodets, “Measurement of the spall strength in three steels,” in: Detonation, Critical Phenomena. Physicochemical Transformations in Shocks [in Russian], Chernogolovka (1978).
[23]
A. G. Ivanov and S. A. Novikov, “On rarefaction shocks in iron and steel,” Zh. Eksp. Teor. Fiz.,40, No. 6 (1961).
[24]
L. Davison and A. S. Stevens, “Continuum measure of spall damage,” J. Appl. Phys.,43, No. 3 (1972). 10.1063/1.1661319
[25]
A. N. Dremin and G. I. Kanel', “Compression and rarefaction waves in shock-compressed metals,” Zh. Prikl. Mekh. Tekh. Fiz., No. 2 (1976). 10.1007/bf00858421
[26]
L. D. Volovets, N. A. Zlatin, and G. S. Pugachev, “Origin and development of submicrocracks in polymethylmethacrylate under dynamic tension (spall),” Pis'ma Zh. Tekh. Fiz., 4, No. 18 (1978).
[27]
A. V. Stepanov, Principles of the Practical Strength of Crystals [in Russian], Nauka, Moscow (1974).
[28]
L. M. Kachanov, Principles of Fracture Mechanics [in Russian], Nauka, Moscow (1974).
[29]
S. N. Zhurkov and T. P. Sanfirova, “Relation between strength and creep of metals and alloys,” Zh. Tekh. Fiz.,28, No. 8 (1958).
[30]
V. R. Regel', A. I. Slutsker, and É. E. Tomashevskii, Kinetic Nature of the Strength of Solids [in Russian], Nauka, Moscow (1974).
[31]
V. R. Regel', A. I. Slutsker, and É. E. Tomashevskii, “Kinetic nature of the strength of solids,” Usp. Fiz. Nauk.106, No. 2 (1972). 10.3367/ufnr.0106.197202a.0193
[32]
B. Ya. Pines and A. F. Sirenko, “On the question of the correlation between the creep rate and longevity under load in metals,” Fiz. Met. Metalloved,10, No. 3 (1960).
[33]
R. G. McQueen and S. P. Marsh, “Equations of state for nineteen metallic elements from shock wave measurements,” J. Appl. Phys.,31, No. 7 (1960). 10.1063/1.1735815
[34]
L. S. Moroz, Yu. D. Khesin, and T. K. Marinets, “Investigation of creep and creep strength of iron at low temperatures,” Fiz. Met. Metalloved.,13, No. 6 (1962).
[35]
B. M. Rovinskii and L. M. Rybakova, “Time dependence of strength under active loading.” Fiz. Met. Metalloved.,9, No. 4 (1960).
[36]
A. H. Cottrell, “Theoretical aspects of the fracture process,” in: Atomic Mechanism of Fracture [in Russian], Metallurgizdat, Moscow (1963).
[37]
J. J. Gilman, “Dislocation dynamics and the response of materials to impact,” Appl. Mech. Rev.,21, No. 8 (1968). 10.2355/isijinternational1966.8.117
[38]
A. N. Zelikman, Metallurgy of Rare-Earth Metals Thorium and Uranium [in Russian], Metallurgizdat, Moscow (1970).
[39]
M. L. Bernshtein and V. A. Zaimovskii, Structure and Mechanical Properties of Metals [in Russian], Metallurgizdat, Moscow (1970).
[40]
C. S. Specht, P. F. Taylor, and A. A. Wallag, “Observation of spallation and attenuation effects in aluminum and beryllium from free surface velocity measurements,” in: Metallurgical Effects of High Strain Rates, New York-London (1973). 10.1007/978-1-4615-8696-8_24
[41]
S. Cochrane and D. Banner, “Spall studies in uranium,” J. Appl. Phys.,48, No. 7 (1977). 10.1063/1.324125
Metrics
2
Citations
41
References
Details
Published
Nov 01, 1980
Vol/Issue
21(6)
Pages
806-813
License
View
Cite This Article
A. N. Dremin, A. ML. Molodets (1980). Kinetic characteristics of spall fracture. Journal of Applied Mechanics and Technical Physics, 21(6), 806-813. https://doi.org/10.1007/bf00912142
Related

You May Also Like

Shock adiabatic curves of metals

L. V. Al'tshuler, A. A. Bakanova · 1981

153 citations

Spatial growth of disturbances in a compressible boundary layer

A. M. Tumin, A. V. Fedorov · 1983

44 citations

Wave impact on the center of an Euler beam

A. A. Korobkin · 1998

26 citations

Similarity Laws in Laser Cladding of Cermet Coatings

A. A. Golyshev, A. M. Orishich · 2019

20 citations