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Introducing of SiO2 to holmium oxide can enhance destruction efficiency of holmium oxide to methylene blue pollutant under ultraviolet light.
An equation for the destruction efficiency of CHCl3 was derived in terms of the residence time and the reaction temperature, expressed as an Arrhenius function.
When the UV irradiation and feeding gas is continuous, a destruction efficiency of about 25% was achieved over a period of 20 h.
This time-scale is very uncertain, but we will obtain τac,0 = 3 × 106 yr as the fiducial value in Section 4.2 in order to reproduce the dust-to-metal ratio in the solar neighborhood with an SN destruction efficiency of ϵmsn = 1000 M⊙.
Results of the destruction efficiency of MBs of different sizes suggest that MBs smaller than 2 μm were easier to destroy for a constant US power density (Table 2).
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IMF has high destruction efficiencies of TRU and plutonium (Pu).
Destruction efficiencies of 50% and 99% were observed for pyrolysis and oxidation, respectively, at 740 °C with a residence time of 0.06 s.
The technology, called AqauCat®, offers organic destruction efficiencies of close to 100%, but without any of the problems associated with incineration.
Open image in new window Fig. 7 Photocatalytic destruction efficiencies of Mg-doped TiO2 polyscales in the degradation of a Brilliant blue G 250; b Brilliant green; c Methyl violet 10B; d Methyl red; e Methyl orange; f comparison of individual dye degradation level by Mg-doped TiO2 polyscales.
Assuming the destruction efficiency predicted theoretically, the life-time of dust grains is found to be of the order of 100 Myr (McKee, 1989; Draine, 1990; Jones et al., 1994, 1996).
To investigate whether destruction efficiency is dependent on the size of MBs, a phantom loaded with different-sized MBs was sonicated by a 440 kHz US transducer at an acoustic pressure of 2.5 W/cm for 1 minute.
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