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Development of a high-efficiency phosphorus recovery method using a fluidized-bed crystallized phosphorus removal system

机译:利用流化床结晶除磷系统开发高效除磷方法

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The authors have been engaged in the research and development concerning the recovery of MAP (Magnesium Ammonium Phosphate) using a fluidized-bed crystallized phosphorus removal system. In the reactor of the fluidized-bed crystallized phosphorus removal system, seed crystals (of MAP) are fluidized previously and new MAP crystals are produced on the seed crystal surfaces. Conventionally, the reactor consisted of one reaction tank only, but this practice had the problem that as the crystallization progresses, the seed crystal is grown excessively and as a result, the effective reaction surface areas are decreased and the fluidization effect is degraded, causing the recovery ratio to be decreased. Recently, the authors have devised a two-tank type reactor by adding a sub reaction tank to the reactor (now the main reaction tank) so that the MAP particle size in the main reaction tank may be kept constant making the recovery ratio stable. They conducted a demonstration test with a pilot experimental system of the 2-tank type reactor. For raw water T-P 111 to 507 mg/L, the main reaction tank treated water T-P 14.0 to 79.5 mg/L and phosphorus recovery ratios 84 to 92% were obtained. Because the mean MAP particle size in the main reaction tank could be kept constant, the phosphorus recovery ratio could always be above 80%, realizing stable treatment. [References: 7]
机译:作者一直致力于使用流化床结晶除磷系统回收MAP(磷酸镁铵)的研究和开发。在流化床结晶除磷系统的反应器中,先将(MAP的)籽晶进行流化,然后在籽晶表面上产生新的MAP晶体。常规上,反应器仅由一个反应槽组成,但是这种做法存在以下问题:随着结晶的进行,籽晶过度生长,结果有效的反应表面积减小并且流化效果降低,从而导致回收率有待降低。最近,作者已经设计了一种两罐式反应器,通过在反应器(现在是主反应槽)中增加一个副反应槽,从而使主反应槽中的MAP粒径保持恒定,从而使回收率稳定。他们使用2-tank型反应堆的中试系统进行了演示测试。对于原水T-P 111至507 mg / L,主反应池处理后的水T-P为14.0至79.5 mg / L,磷回收率为84至92%。由于主反应池中的平均MAP粒径可以保持恒定,磷的回收率始终可以达到80%以上,实现了稳定的处理。 [参考:7]

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