Field of the Invention
The invention relates to the field of wastewater treatment, and more particularly to a method and a system for wastewater treatment using a membrane bioreactor.
Description of the Related Art
As shown in
C10H19O3N+CO2+SO4→R—COOH+CH4+NH3+H2S+H2O
C10H19O3N+NO3−→CO2+N2+H2O
C10H19O3N+O2→CO2+NO3−+H2O
NH3+O2→NO3−+H2O
For conventional wastewater treatment methods with or without membrane bioreactor (MBR), areas of different dissolved oxygen environments are disposed in one reaction system, as shown in
In view of the above-described problems, it is one objective of the invention to provide a method and a system for wastewater treatment using a membrane bioreactor.
To achieve the above objective, in accordance with one embodiment of the invention, there is provided a method of wastewater treatment using a membrane bioreactor, the membrane bioreactor comprising a reaction vessel and an aeration system, the method comprising: controlling an aeration rate of the aeration system to enable a dissolved oxygen concentration in the reaction vessel to be larger than 0 and smaller than 1.5 mg/L, so that the reaction vessel is maintained at a facultative-organism-adapted environment. The membrane bioreactor further comprises a membrane separation system, a dissolved oxygen concentration in the membrane separation system is larger than 0 and smaller than 1.5 mg/L, and the reaction vessel excluding the membrane separation system is larger than 0 and smaller than 0.5 mg/L, and the dissolved oxygen concentration in the membrane separation system is higher than the dissolved oxygen concentration in the reaction vessel excluding the membrane separation system.
The degradation process of phosphorus in the pollutants is as follows:
Organisms+Phosphate+Facultative organisms→Microbial cells(organophosphorus)
Microbial cells(organophosphorus)+Facultative organisms→P2H4/PH3
The degradation process of nitrogen in the pollutants is as follows:
½NH4+(ammonia nitrogen)+½H2O+¼O2+facultative organisms→½N2+H2O
As nitrogen concentration in inlet water changes, a nitrogen degradation process in the reaction system is accompanied by short-cut nitrification and denitrification and the like reactions.
In accordance with another embodiment of the invention, there is provided a system for wastewater treatment using a membrane bioreactor, comprising: a reaction vessel, the membrane separation system, a water production system, and an aeration system. The membrane separation system is disposed in the reaction vessel. The water production system communicates with the membrane separation system for pumping a filtrate out of the membrane separation system. The aeration system is employed to aerate the reaction vessel and the membrane separation system. The aeration system is adapted to enable a dissolved oxygen concentration in the reaction vessel to be larger than 0 and smaller than 1.5 mg/L, so that the reaction vessel is maintained at a facultative-organism-adapted environment. A dissolved oxygen concentration in the membrane separation system is larger than 0 and smaller than 1.5 mg/L, and the reaction vessel excluding the membrane separation system is larger than 0 and smaller than 0.5 mg/L, and the dissolved oxygen concentration in the membrane separation system is higher than the dissolved oxygen concentration in the reaction vessel excluding the membrane separation system.
In a class of this embodiment, the membrane separation system employs a microfiltration membrane or an ultrafiltration membrane.
In a class of this embodiment, the aeration system employs microporous aeration, perforated aeration, or a combination thereof.
In a class of this embodiment, the membrane separation system is flushed by concentrating an aeration rate at the membrane separation system by the aeration system.
In a class of this embodiment, the membrane separation system is concentratedly aerated by increasing a number of holes or bore size of a perforated aeration pipe corresponding to the membrane separation system.
In a class of this embodiment, the membrane separation system is concentratedly aerated by increasing a number of microporous aeration disks corresponding to the membrane separation system.
Compared with existing technologies, advantages of the method and system of wastewater treatment using the membrane bioreactor without physical area division are as follows: the reaction vessel is maintained at a facultative-organism-adapted environment, which is easy to control and consume less dissolved oxygen. The dissolved oxygen concentration in the membrane separation system is higher for the convenience of scouring.
For further illustrating the invention, experiments detailing a method and a system for wastewater treatment using a membrane bioreactor are described below. It should be noted that the following examples are intended to describe and not to limit the invention.
The method of wastewater treatment using a membrane bioreactor comprising a reaction vessel and an aeration system is provided. The method comprises controlling the aeration rate of the aeration system to enable a dissolved oxygen concentration in a reaction vessel to be larger than 0 and smaller than 1.5 mg/L, so that the reaction vessel is maintained at a facultative-organism-adapted environment. Preferably, the dissolved oxygen concentration is below 1.5 mg/L in the membrane separation system, and concentrations are below 0.5 mg/L in other areas. The dissolved oxygen concentration in the membrane separation system is higher than those of other areas so as to guarantee scour intensity, and the concentration difference has no influence on the facultative environment of the reaction system. The wastewater treatment system by the membrane reactor without the area division employs a facultative membrane reactor (FMBR). A flow chart of the method of wastewater treatment by the membrane reactor without physical area division is shown as
A dissolved oxygen concentration of a method of wastewater treatment by the membrane bioreactor without physical area division is shown as
The pollutant degradation process of the method of wastewater treatment by the membrane bioreactor without physical area division is shown as follows:
Organisms+Phosphate+Facultative organisms→Microbial cells(organophosphorus)
Microbial cells(organophosphorus)+Facultative organisms→P2H4/PH3
½NH4+(Ammonia nitrogen)+½H2O+¼O2+Facultative organisms→½NO2−+2e+3H+
½NH4+(Ammonia nitrogen)+½NO2−+Facultative organisms→½N2+H2O
As shown in
As shown in
As shown in
Number | Date | Country | Kind |
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201510556544.0 | Sep 2015 | CN | national |
This application is a continuation-in-part of International Patent Application No. PCT/CN2015/091153 with an international filing date of Sep. 30, 2015, designating the United States, now pending, and further claims foreign priority benefits to Chinese Patent Application No. 201510556544.0 filed Sep. 1, 2015. The contents of all of the aforementioned applications, including any intervening amendments thereto, are incorporated herein by reference. Inquiries from the public to applicants or assignees concerning this document or the related applications should be directed to: Matthias Scholl P. C., Attn.: Dr. Matthias Scholl Esq., 245 First Street, 18th Floor, Cambridge, Mass. 02142.
Number | Date | Country | |
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Parent | PCT/CN2015/091153 | Sep 2015 | US |
Child | 15603410 | US |