The present invention relates to the remediation of sulfur-containing pollutants, and more particularly relates to a method and apparatus for bioremediation of sulfur-containing pollutants with hydrocarbon-utilizing bacteria.
The presence of sulfur-containing pollutants in effluent or wastewater solutions and gaseous emissions creates disposal problems for many industries. For example, problems with sulfate, sulfite and thiosulfate range from sewers to the eutrophication of water bodies, silting and acidification. One type of effluent in which sulfur-containing pollutants such as sulfite are present is the washwater from flue gas treatment plants. The flue gases from power stations, waste incinerators and the like create severe pollution and environmental damage due to the presence of sulfur dioxide and the associated low pH. Many industries, such as printing, mining, paper, rubber, leather and petrochemical industries produce effluent waters with high sulfur-containing pollutant concentrations.
Conventional biological treatment of sulfate, sulfite and other sulfur compounds, including effluents from gas desulfurization plants, involves reduction in an anaerobic step to produce sulfide, which in turn can be biologically oxidized to elemental sulfur. When the effluent contains little organic matter, electron donors must be added in order to provide sufficient reduction equivalents for the sulfate-reducing bacteria. Electron donors include alcohols such as methanol and ethanol, carbohydrates such as glucose and other saccharides, organic acids such as acetic, propionic, butyric and lactic acid, hydrogen and carbon monoxide.
The bioremediation of various pollutants using butane-utilizing bacteria is disclosed in U.S. Pat. Nos. 5,888,396, 6,051,130, 6,110,372, 6,156,203, 6,210,579, 6,244,346 and 6,245,235, which are incorporated herein by reference.
In accordance with the present invention, hydrocarbons are used to remediate sulfur-containing pollutants, such as solutions containing sulfur compounds. The hydrocarbons are introduced into the solution to stimulate the growth of hydrocarbon-utilizing bacteria, which remediate the sulfur-containing pollutant, e.g., by reducing sulfite and sulfate to sulfide under anaerobic conditions, then oxidizing the sulfide to elemental sulfur under aerobic conditions.
Hydrocarbons are used in accordance with the present invention to stimulate the growth of hydrocarbon-utilizing bacteria. The hydrocarbon may comprise an alkane such as butane, or may comprise other types of hydrocarbons. In one embodiment, the hydrocarbon acts as a water-soluble electron acceptor. Improved reduction of sulfur-containing pollutants can be achieved by stimulating a variety of organisms capable of reducing the compounds of interest. Rather than relying on the reducing capabilities of a single bacterial isolate, competition may be shifted toward a wide variety of organisms including bacteria, protozoa, algae, fungi and other microorganisms if a highly available or soluble hydrocarbon food substrate is available during a growth phase of the organisms. The addition or presence of a soluble hydrocarbon source such as butane affects the bacterial diversity in an ecosystem, thereby increasing the ability of an ecosystem to reduce targeted sulfur-containing pollutants.
In one embodiment of the invention, a hydrocarbon such as butane is used to drive a treatment process anaerobic thereby encouraging the growth of anaerobic microorganisms capable of reducing sulfur-containing compounds. Under anaerobic conditions, sulfate and elemental sulfur may serve as electron acceptors while the hydrocarbon substrate is oxidized. The anaerobic processes may include desulfurization, sulfur respiration or dissimilatory sulfate reduction.
An aspect of the present invention is to provide a method of remediating a sulfur-containing pollutant. The method comprises introducing a hydrocarbon to the sulfur-containing pollutant to stimulate growth of hydrocarbon-utilizing bacteria.
Another aspect of the present invention is to provide a system for remediating a sulfur-containing pollutant. The system includes means for treating the sulfur-containing pollutant with hydrocarbon-utilizing bacteria in the presence of a hydrocarbon.
A further aspect of the present invention is to provide a system for remediating a sulfur-containing pollutant. The system includes a source of hydrocarbon and a hydrocarbon injection system in communication with the hydrocarbon source and the sulfur-containing pollutant. The system may further include means for collecting the treated sulfur-containing pollutants.
These and other aspects of the present invention will be more apparent from the following description.
In accordance with the present invention, aerobic and/or anaerobic hydrocarbon-utilizing bacteria are used to treat sulfur-containing pollutants such as solutions containing sulfur compounds. As used herein, the term “sulfur-containing pollutant” includes sulfate, sulfite, sulfide, disulfides, mercaptans, alkanesulfonates, dialkyl sulfides, thiosulfate, thiofurans, thiocyanates, isothiocyanates, thioureas, thiols, thiophenols, thioethers, thiophene, tetrathionate, dithionite, dialkyl disulfides, sulfones, sulfoxides, sulfolanes, sulfonic acid, dimethylsulfoniopropionate, sulfonic esters, hydrogen sulfide, carbon disulfide, sulfate esters, sulfur dioxide and other sour gases, elemental sulfur and any other sulfur-containing material considered to be a contaminant or pollutant. The sulfur-containing pollutant may be present in liquids, solids or gases. For example, the pollutant may be present in an aqueous solution such as groundwater, surface water, wastewater or the like. The sulfur-containing pollutant may also be present in soil and other industrial effluents and gaseous emissions.
In one embodiment, the sulfur-containing pollutant may comprise a sulfur compound that is converted to another sulfur compound during the treatment process. Alternatively, the sulfur-containing pollutant may be converted to elemental sulfur during the treatment process. In another embodiment, the sulfur-containing pollutant may comprise elemental sulfur that is separated during the treatment process by precipitation, sedimentation, oxidation or the like.
In accordance with the present invention, at least one hydrocarbon is introduced to the sulfur-containing pollutant to stimulate the growth of hydrocarbon-utilizing bacteria. The hydrocarbon may comprise one or more alkanes, alkenes, alkynes, poly(alkene)s, poly(alkyne)s, aromatic hydrocarbons, aromatic hydrocarbon polymers or aliphatic hydrocarbons. The hydrocarbon is preferably an alkane, such as methane, ethane, propane and/or butane.
Butane is a preferred hydrocarbon due to its high solubility and relatively low molecular weight. Furthermore, butane is non-toxic and may serve as an electron donor under anaerobic conditions. In one embodiment, butane is the most prevalent compound of the hydrocarbon substrate on a weight percent basis, and may comprise at least about 10 weight percent of the hydrocarbon substrate. The other constituents of the hydrocarbon substrate may include other hydrocarbons, e.g., other alkanes. The hydrocarbon substrate may also include inert gases such as nitrogen, helium or argon. In one embodiment, the hydrocarbon substrate comprises at least about 50 weight percent butane. For example, the hydrocarbon substrate may comprise at least about 90 weight percent butane. In a particular embodiment, the hydrocarbon substrate comprises at least about 99 weight percent n-butane. The butane may contain straight (n-butane) and/or branched chained compounds such as iso-butane.
Oxygen may be introduced during some or all of the treatment time, e.g., to provide aerobic conditions. When oxygen is introduced, it may be injected continuously or intermittently to the treatment zone. The oxygen may be supplied in the form of air, substantially pure oxygen or the like.
Treatment processes that may be used in accordance with the present invention include the use of hydrocarbon-utilizing microorganisms which may be found naturally, e.g., in water, groundwater, wastewater, effluent, soil and the like. However, in some applications it may be necessary to inoculate bacteria into the treatment zone. Suitable bacteria may include the following Groups (in addition to fungi, algae, protozoa, rotifers and other aerobic and anaerobic microbial populations found in decaying materials):
In addition, suitable bacteria may include facultative anaerobes and/or microaerophilic anaerobes, which are capable of surviving at low levels of oxygen. These bacteria do not require strict anaerobic conditions such as the obligate anaerobes. Acidophilic, alkaliphilic, anaerobe, anoxygenic, autotrophic, chemolithotrophic, chemoorganotroph, chemotroph, halophilic, methanogenic, neutrophilic, phototroph, saprophytic, thermoacidophilic, and thermophilic bacteria may be used. Hydrocarbon injection and combined hydrocarbon/oxygen injection may encourage the growth of other microorganisms such as fungi, protozoa and algae that may be beneficial to the sulfur-containing pollutant remediation process.
Hydrocarbon addition to an anaerobic system containing alternate electron acceptors such as sulfate may enhance the reduction of sulfur compounds. Anaerobically, hydrocarbons such as butane may serve as electron donors for direct metabolic, sequential metabolic, reductive metabolic or cometabolic processes.
Additionally, the activity of butane-utilizing bacteria (under aerobic conditions) through direct metabolic, sequential metabolic, reductive metabolic or cometabolic processes may enhance the oxidation of sulfide, sulfur and thiosulfate through the production of operative enzymes that function in a similar fashion to sulfide oxidase enzymes, sulfur-oxidizing enzymes, sulfite oxidase, thiosulfate-cleaving enzymes, sulfur transferase enzymes, thiosulfate-oxidizing enzymes or any other sulfur oxidizing enzymes.
After treatment in the anaerobic chamber 16, the material is pumped 22 to an aerobic chamber 24. A hydrocarbon and oxygen source 26 communicates with injectors or diffusers 28 in the aerobic chamber 24. A collection tray 30, or other suitable deposition material such as a membrane lining, is used to deposit treated material. For example, sulfide may be oxidized to elemental sulfur in the aerobic chamber 24 and deposited as elemental sulfur on the collection tray 30. Treated material 32, e.g., clean water, exits the aerobic chamber 24. The system 10 may be operated in a continuous mode, or in a batch process.
As shown in
In addition to the system shown in
Whereas particular embodiments of this invention have been described above for purposes of illustration, it will be evident to those skilled in the art that numerous variations of the details of the present invention may be made without departing from the invention.
This application claims the benefit of U.S. Provisional Application Ser. No. 60/308,481 filed Jul. 27, 2001, which is incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
3145166 | Howe et al. | Aug 1964 | A |
3242071 | Walker | Mar 1966 | A |
3969446 | Franklin, Jr. | Jul 1976 | A |
4111808 | Fair | Sep 1978 | A |
4328175 | Roeckel et al. | May 1982 | A |
4454077 | Litz | Jun 1984 | A |
4645603 | Frankl | Feb 1987 | A |
4695378 | Ackman et al. | Sep 1987 | A |
RE32562 | Litz | Dec 1987 | E |
4789478 | Revis et al. | Dec 1988 | A |
4956080 | Josefik | Sep 1990 | A |
5061406 | Cheng | Oct 1991 | A |
5073309 | Bousquet et al. | Dec 1991 | A |
5085809 | Stirling | Feb 1992 | A |
5169532 | Whitlock | Dec 1992 | A |
5314076 | La Place et al. | May 1994 | A |
5354688 | Francis et al. | Oct 1994 | A |
5494576 | Hoppe et al. | Feb 1996 | A |
5529693 | Yano et al. | Jun 1996 | A |
5632715 | Harrington et al. | May 1997 | A |
5651890 | Trost | Jul 1997 | A |
5660730 | Lucchese et al. | Aug 1997 | A |
5710361 | Harrington et al. | Jan 1998 | A |
5733067 | Hunt et al. | Mar 1998 | A |
5789236 | Jenneman | Aug 1998 | A |
5814514 | Steffan et al. | Sep 1998 | A |
5833855 | Saunders | Nov 1998 | A |
5888396 | Perriello | Mar 1999 | A |
5916491 | Hills | Jun 1999 | A |
5925290 | Hills | Jul 1999 | A |
6051130 | Perriello | Apr 2000 | A |
6110372 | Perriello | Aug 2000 | A |
6156203 | Perriello | Dec 2000 | A |
6210579 | Perriello | Apr 2001 | B1 |
6217766 | Stetter et al. | Apr 2001 | B1 |
6244346 | Perriello | Jun 2001 | B1 |
6245235 | Perriello | Jun 2001 | B1 |
6287873 | Srivastava et al. | Sep 2001 | B2 |
6306302 | Maree et al. | Oct 2001 | B1 |
6319328 | Greenberg et al. | Nov 2001 | B1 |
6322700 | Suthersan | Nov 2001 | B1 |
6361694 | Trost | Mar 2002 | B1 |
6488850 | Perriello | Dec 2002 | B2 |
6669846 | Perriello | Dec 2003 | B2 |
6835312 | Perriello et al. | Dec 2004 | B2 |
7192523 | Perriello | Mar 2007 | B2 |
20010023847 | Perriello | Sep 2001 | A1 |
20020066566 | Perriello | Jun 2002 | A1 |
20020195389 | Perriello | Dec 2002 | A1 |
20030034301 | Perriello | Feb 2003 | A1 |
20030044966 | Perriello | Mar 2003 | A1 |
20030062306 | Perriello | Apr 2003 | A1 |
20030066322 | Perriello | Apr 2003 | A1 |
20030084609 | Perriello et al. | May 2003 | A1 |
20030136735 | Perriello | Jul 2003 | A1 |
20030167686 | Perriello | Sep 2003 | A1 |
20030201227 | Perriello | Oct 2003 | A1 |
Number | Date | Country | |
---|---|---|---|
20030044966 A1 | Mar 2003 | US |
Number | Date | Country | |
---|---|---|---|
60308481 | Jul 2001 | US |