Study of ultradispersed diamond powders obtained using explosion energy

Carbon ◽  
1991 ◽  
Vol 29 (4-5) ◽  
pp. 665-668 ◽  
Author(s):  
V.L Kuznetsov ◽  
M.N Aleksandrov ◽  
I.V Zagoruiko ◽  
A.L Chuvilin ◽  
E.M Moroz ◽  
...  
2009 ◽  
Vol 255 (7) ◽  
pp. 4322-4328 ◽  
Author(s):  
Momtchil Dimitrov ◽  
Ljubomira Ivanova ◽  
Daniela Paneva ◽  
Tanya Tsoncheva ◽  
Stavry Stavrev ◽  
...  

Author(s):  
N.I. Chkhalov ◽  
M.V. Fedorchenko ◽  
E.P. Kruglyakov ◽  
A.I. Volokhov ◽  
K.S. Baraboshkin ◽  
...  

1985 ◽  
Vol 20 (5) ◽  
pp. 567-570 ◽  
Author(s):  
A. M. Staver ◽  
N. V. Gubareva ◽  
A. I. Lyamkin ◽  
E. A. Petrov

Author(s):  
Myoungwon Jeon ◽  
Volker Bromm ◽  
Gurtina Besla ◽  
Jinmi Yoon ◽  
Yumi Choi

Abstract CEMP-no stars, a subset of carbon enhanced metal poor (CEMP) stars ($\rm [C/Fe]\ge 0.7$ and $\rm [Fe/H]\lesssim -1$) have been discovered in ultra-faint dwarf (UFD) galaxies, with Mvir ≈ 108 M⊙ and M* ≈ 103 − 104 M⊙ at z = 0, as well as in the halo of the Milky Way (MW). These CEMP-no stars are local fossils that may reflect the properties of the first (Pop III) and second (Pop II) generation of stars. However, cosmological simulations have struggled to reproduce the observed level of carbon enhancement of the known CEMP-no stars. Here we present new cosmological hydrodynamic zoom-in simulations of isolated UFDs that achieve a gas mass resolution of mgas ≈ 60 M⊙. We include enrichment from Pop III faint supernovae (SNe), with ESN = 0.6 × 1051 erg, to understand the origin of CEMP-no stars. We confirm that Pop III and Pop II stars are mainly responsible for the formation of CEMP and C-normal stars respectively. New to this study, we find that a majority of CEMP-no stars in the observed UFDs and the MW halo can be explained by Pop III SNe with normal explosion energy (ESN = 1.2 × 1051 erg) and Pop II enrichment, but faint SNe might also be needed to produce CEMP-no stars with $\rm [C/Fe]\gtrsim 2$, corresponding to the absolute carbon abundance of $\rm A(C)\gtrsim 6.0$. Furthermore, we find that while we create CEMP-no stars with high carbon ratio $\rm [C/Fe]\approx 3-4$, by adopting faint SNe, it is still challenging to reproduce CEMP-no stars with extreme level of carbon abundance of $\rm A(C)\approx 7.0-7.5$, observed both in the MW halo and UFDs.


2009 ◽  
Vol 35 (6) ◽  
pp. 388-395
Author(s):  
D. K. Nadyozhin ◽  
A. V. Karamyan ◽  
E. K. Grasberg

2011 ◽  
Vol 101-102 ◽  
pp. 400-404
Author(s):  
Liang Wu ◽  
Dong Xiao Yu ◽  
Wei Dong Duan

In modern mining and project construction, how to make use of the explosion energy effectively is the key technology demanding prompt solution at present. The application of air-decked blasting technology has enabled the efficient use of explosion energy, which proves that the air-decked blasting technology can overcome many disadvantages caused by column charge effectively, getting ideal explosion effect. Based on the dynamic finite element analysis software with the material model of Mat-Plastic-Kinemetic, the dynamic stress characteristics and failure mechanism of blast-hole near-field with level soft interlayer are researched with different air-decked charge structures. There is significant effect on the rock at the middle of blast-hole if top-air-decked charge structure with indirect initiation and middle-air-decked charge structure with two ends initiation at the same time. If bottom-air-decked charge structure with indirect initiation, soft inter-layer don’t change the peek of compression and tensile stress curves of typical elements with distance from the bottom of hole, so there is not effect significantly of level soft interlayer on bottom-air-decked charge structure with indirect initiation.


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