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Effect of internal phase particle size on properties of site mixed emulsion explosive at plateau environment.
Xie, S D; Cai, X Y; Wu, H B; Wang, Q; Guo, Z R; Chen, Z Y; Ma, C S.
Affiliation
  • Xie SD; School of Architecture and Construction, Anhui University of Science & Technology, Huainan, 232001, China.
  • Cai XY; School of Chemical and Blasting Engineering, Anhui University of Science & Technology, Huainan, 232001, China.
  • Wu HB; School of Chemical and Blasting Engineering, Anhui University of Science & Technology, Huainan, 232001, China. hbwu@aust.edu.cn.
  • Wang Q; School of Chemical and Blasting Engineering, Anhui University of Science & Technology, Huainan, 232001, China.
  • Guo ZR; School of Chemical and Blasting Engineering, Anhui University of Science & Technology, Huainan, 232001, China.
  • Chen ZY; School of Chemical and Blasting Engineering, Anhui University of Science & Technology, Huainan, 232001, China.
  • Ma CS; School of Chemical and Blasting Engineering, Anhui University of Science & Technology, Huainan, 232001, China.
Sci Rep ; 14(1): 8549, 2024 Apr 12.
Article in En | MEDLINE | ID: mdl-38609459
ABSTRACT
To study the effect of internal particle size on the microstructure properties and thermal decomposition characteristics of site mixed emulsion explosive at different altitudes. Site mixed emulsion explosive was prepared with different shear rate. The particle size, viscosity, sensitized bubbles, detonation velocity and peak pressure of the emulsion explosive were tested after stored at different simulated altitudes. The thermal decomposition characteristics of emulsion matrix prepared at three different rotational speeds were measured by thermogravimetric analyzer and kinetic analysis was performed by non-isothermal model Kissinger-Akah-Sunose (KAS) method. The results show that with the increase in altitude, the internal phase size showed a trend of first increasing and then decreasing, and the number of sensitized bubbles within the emulsion explosive decreases. At an altitude of 0 m, the detonation velocity and peak overpressure of the emulsion explosive prepared by 1600 r min-1 increased 4.78% and 29.09%, respectively compared with 1200 r min-1, and at an altitude of 4500 m, the detonation velocity increased 11.87%, the peak overpressure increased 43.98%. The thermal decomposition activation energy of the emulsion matrix at 1600 r min-1 increased 13.14% compared to 1200 r min-1. It shows that in the production of site mixed emulsion explosive at high altitude, reducing the particle size of the internal phase of emulsion explosives in a certain range can effectively improve the performance of emulsion explosives.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Sci Rep Year: 2024 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Sci Rep Year: 2024 Document type: Article Affiliation country:
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