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首页> 外文期刊>Journal of Chemical Engineering of Japan >REMOVAL OF EMULSIFIED OIL PARTICLES BY DISSOLVED AIR FLOTATION
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REMOVAL OF EMULSIFIED OIL PARTICLES BY DISSOLVED AIR FLOTATION

机译:通过溶解气浮去除乳化油粒

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References(11) Cited-By(10) Dilute emulsified particles (≅300 mg•dm-3, da≅8 μm) of heavy oil A were removed in a 50×50mm-square and 0.32m-deep column by flotation using small bubble swarms (da≅80 μm) generated by a rapid depressurization of supersaturated liquid. Pressure at which air was dissolved was varied within 2-4.5×105 Pa. The flotation efficiency is best at 3×105 Pa and decreases at higher pressure in spite of higher bubble holdup, probably because of excessive liquid disturbance. The flotation is also influenced significantly by the chemical species added and their concentrations. A solution of pH 4 shows the best flotation in the pH range investigated (pH 2-10). A microelectrophoresis measurement shows that the zeta potential ξ of both oil particle and bubble shifts from positive to negative with increasing pH through a PZC (point of zero charge, ξ=0) around pH 4 and the best flotation at pH 4 can be explained by the great reduction in repulsive interaction of the electric double layer. Flotation efficiencies are improved in CaCl2 and A1C13 solutions with increasing concentration (10-5-10-2 mol-dm-3) while they decrease [slightly in NaCl solution. This trend is discussed semiquantatively in the light of the variation of zeta potential with concentration.
机译:参考文献(11)被引用的(10)重油A的稀释乳化颗粒(≅300mg•dm-3,da≅8μm)在50×50mm方形和0.32m深的柱中通过浮选法去除。快速过饱和液体降压产生的气泡群(da≅80μm)。溶解空气的压力在2-4.5×105 Pa范围内变化。浮选效率在3×105 Pa时最佳,尽管较高的气泡滞留率,浮选效率在较高的压力下会降低,这很可能是由于过度的液体干扰造成的。浮选还受到添加的化学物种及其浓度的显着影响。 pH为4的溶液在所研究的pH范围(pH 2-10)中显示出最佳浮选。微电泳测量表明,随着pH升高,通过pH 4附近的PZC(零电荷点,ξ= 0),油粒和气泡的ζ电位ξ从正向负移动,可以解释为在pH 4时最佳浮选电双层的排斥相互作用大大降低。随着浓度(10-5-10-2 mol-dm-3)的增加,在CaCl2和AlCl3溶液中的浮选效率得到改善,而在NaCl溶液中则略有降低。根据zeta电位随浓度的变化,对该趋势进行了半定量讨论。

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