Department of Environmental Engineering, Faculty of Civil Engineering, Universiti Teknologi Malaysia, 81310 Skudai, Johor, Malaysia.
J Hazard Mater. 2010 Apr 15;176(1-3):849-55. doi: 10.1016/j.jhazmat.2009.11.114. Epub 2009 Nov 27.
The yeast strain Candida tropicalis was used for the biodegradation of gaseous toluene. Toluene was effectively treated by a liquid culture of C. tropicalis in a bubble-column bioreactor, and the toluene removal efficiency increased with decreasing gas flow rate. However, toluene mass transfer from the gas-to-liquid phase was a major limitation for the uptake of toluene by C. tropicalis. The toluene removal efficiency was enhanced when granular activated carbon (GAC) was added as a fluidized material. The GAC fluidized bioreactor demonstrated toluene removal efficiencies ranging from 50 to 82% when the inlet toluene loading was varied between 13.1 and 26.9 g/m(3)/h. The yield value of C. tropicalis ranged from 0.11 to 0.21 g-biomass/g-toluene, which was substantially lower than yield values for bacteria reported in the literature. The maximum elimination capacity determined in the GAC fluidized bioreactor was 172 g/m(3)/h at a toluene loading of 291 g/m(3)/h. Transient loading experiments revealed that approximately 50% of the toluene introduced was initially adsorbed onto the GAC during an increased loading period, and then slowly desorbed and became available to the yeast culture. Hence, the fluidized GAC mediated in improving the gas-to-liquid mass transfer of toluene, resulting in a high toluene removal capacity. Consequently, the GAC bubble-column bioreactor using the culture of C. tropicalis can be successfully applied for the removal of gaseous toluene.
热带假丝酵母(Candida tropicalis)被用于降解气态甲苯。甲苯可以被 C. tropicalis 的液体培养物有效地处理,且甲苯去除效率随气体流速的降低而增加。然而,甲苯从气相到液相的传质是 C. tropicalis 吸收甲苯的主要限制因素。当添加颗粒状活性炭(GAC)作为流化材料时,甲苯去除效率得到增强。当入口甲苯负荷在 13.1 到 26.9 g/m3/h 之间变化时,GAC 流化床生物反应器可实现 50%到 82%的甲苯去除效率。C. tropicalis 的产率值范围为 0.11 到 0.21 g-生物质/g-甲苯,这明显低于文献中报道的细菌的产率值。在 GAC 流化床生物反应器中确定的最大消除容量为 172 g/m3/h,甲苯负荷为 291 g/m3/h。瞬态负荷实验表明,在负荷增加期间,约有 50%的甲苯最初被吸附到 GAC 上,然后缓慢解吸并可被酵母培养物利用。因此,流化 GAC 有助于改善甲苯的气-液传质,从而具有高的甲苯去除能力。因此,使用 C. tropicalis 培养物的 GAC 鼓泡柱生物反应器可成功用于去除气态甲苯。