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Wyszukujesz frazę "maximum pressure of explosion" wg kryterium: Temat


Wyświetlanie 1-2 z 2
Tytuł:
Experimental study of the violence intensity parameters of the explosion of micron-sized zinc powder
Autorzy:
Shu, Yu
Li, Zijun
Powiązania:
https://bibliotekanauki.pl/articles/358665.pdf
Data publikacji:
2019
Wydawca:
Sieć Badawcza Łukasiewicz - Instytut Przemysłu Organicznego
Tematy:
dust explosion
micron-sized powder
zinc
maximum explosion pressure
maximum rate of pressure increase
Opis:
The focus of this study was the explosion hazard of micron-sized zinc powder in a small space and low energy environment in the actual using of ventilation pipes of zinc powder processing plants. In the experimental study, the dust explosion parameters in the device (20 L sphere) under special conditions was used, and zinc powder with a median diameter of 3.80 μm was the research material. The experimental conditions were at a temperature 296.15~299.15 K, and a humidity 45~55%. The dust explosion violence parameter of the micron-sized zinc powder was measured. The experimental results showed that when the energy of the igniter was 10 J and the explosion violence parameters of micron-sized zinc powder dust were largest, the ignition delay time was 162~165 ms, the pressure for powder injection was 1.19~1.21 MPa, and the dust concentration was 1750~1820 g/m3. The experimental data were processed by the fitting method, and the degree of influence of three factors on the explosion intensity parameter of micron-sized zinc powder was as follows: dust concentration, ignition delay time, pressure for powder injection. These results are valuable in the design of explosion hazard assessment and anti-explosion measures in zinc powder production.
Źródło:
Central European Journal of Energetic Materials; 2019, 16, 4; 607-629
1733-7178
Pojawia się w:
Central European Journal of Energetic Materials
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Simulation studies on the influence of other combustible gases on the characteristics of methane explosions at constant volume and high temperature
Autorzy:
Luo, Zhenmin
Liu, Litao
Gao, Shuaishuai
Wang, Tao
Su, Bin
Wang, Lei
Yang, Yong
Li, Xiufang
Powiązania:
https://bibliotekanauki.pl/articles/1853863.pdf
Data publikacji:
2021
Wydawca:
Polska Akademia Nauk. Czytelnia Czasopism PAN
Tematy:
gaz palny
ciśnienie wybuchu
temperatura płomienia
constant volume
volume fraction of combustible gas
initial temperature
adiabatic flame temperature
maximum explosion pressure
Opis:
Gas explosions are major disasters in coal mining, and they typically cause a large number of deaths, injuries and property losses. An appropriate understanding of the effects of combustible gases on the characteristics of methane explosions is essential to prevent and control methane explosions. FLACS software was used to simulate an explosion of a mixture of CH4 and combustible gases (C2H4, C2H6, H2, and CO) at various mixing concentrations and different temperatures (25, 60, 100, 140 and 180℃). After adding combustible gases to methane at a constant volume and atmospheric pressure, the adiabatic flame temperature linearly increases as the initial temperature increases. Under stoichiometric conditions (9.5% CH4-air mixture), the addition of C2H4 and C2H6 has a greater effect on the adiabatic flame temperature of methane than H2 and CO at different initial temperatures. Under the fuel-lean CH4-air mixture (7% CH4-air mixture) and fuel-rich mixture (11% CH4-air mixture), the addition of H2 and CO has a greater effect on the adiabatic flame temperature of methane. In contrast, the addition of combustible gases negatively affected the maximum explosion pressure of the CH4-air mixture, exhibiting a linearly decreasing trend with increasing initial temperature. As the volume fraction of the mixed gas increases, the adiabatic flame temperature and maximum explosion pressure of the stoichiometric conditions increase. In contrast, under the fuel-rich mixture, the combustible gas slightly lowered the adiabatic flame temperature and the maximum explosion pressure. When the initial temperature was 140℃, the fuel consumption time was approximately 8-10 ms earlier than that at the initial temperature of 25℃. When the volume fraction of the combustible gas was 2.0%, the consumption time of fuel reduced by approximately 10 ms compared with that observed when the volume fraction of flammable gas was 0.4%.
Źródło:
Archives of Mining Sciences; 2021, 66, 2; 279-295
0860-7001
Pojawia się w:
Archives of Mining Sciences
Dostawca treści:
Biblioteka Nauki
Artykuł
    Wyświetlanie 1-2 z 2

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