Processes for reducing the environmental availability of environmental pollutants
The application of inorganic halides and activated carbon stabilizes and immobilizes environmental contaminants, addressing the inefficiencies of current methods by reducing their environmental availability and bioaccumulation, offering a cost-effective solution for mercury and other pollutants in diverse materials.
Patent Information
- Application Number
- JP2022517159
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-09-16
- Filing Date
- 2020-09-16
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2040-09-16
AI Technical Summary
Current remediation processes for environmental contaminants like mercury are costly, time-consuming, and ineffective in reducing their environmental and biological availability, especially due to variability at each site, and they do not account for the propensity of contaminants to migrate after sequestration, necessitating new methods that are more commercially attractive.
A process involving the application of inorganic halide or sulfide compounds, such as inorganic bromide and activated carbon, to stabilize and immobilize environmental contaminants by adsorption and surface reactions, reducing their environmental availability and bioaccumulation, even in the presence of acidic conditions.
This process effectively reduces the environmental availability and bioaccumulation of contaminants like mercury, methylmercury, and heavy metals by stabilizing them in various forms, including solids, liquids, and combinations, without being adversely affected by acidic conditions, and can be used alone or in conjunction with existing technologies.
Smart Images

Figure 0007722983000008 
Figure 0007722983000001 
Figure 0007722983000002
Abstract
Description
[Technical Field]
[0001] The present invention relates to the remediation of environmental pollutants to reduce their environmental availability. [Background technology]
[0002] Many contaminants are known to be toxic to humans and the environment. One of these known environmental contaminants, mercury, is classified as a priority hazardous substance by the U.S. Department of Health and Human Services' Agency for Toxic Substances and Disease Registry (ATSDR). The U.S. National Cleanup Priorities List (NPL), maintained by the U.S. Environmental Protection Agency (EPA), lists numerous sites contaminated with mercury. These sites contain a variety of contaminants, including solids (e.g., soil, litter, waste), liquids (e.g., groundwater, lakes, ponds), and combinations of solids and liquids (e.g., sediments, slurries, sediments). The majority of these sites have not been recontaminated to remove mercury. Unacceptable levels of mercury or mercury compounds may be present in sites not listed on the U.S. NPL. Environmental contaminants other than mercury pose similar concerns.
[0003] Mercury contamination can arise from a variety of different sources (e.g., mining and ore processes, chlor-alkali plants, battery manufacturing processes). Many landfills are contaminated with mercury-containing waste. Furthermore, mercury contaminants often exist in the same location in multiple forms, including metallic mercury, organic mercury compounds, and inorganic mercury compounds. Different mercury forms and / or different substances often require different treatment methods.
[0004] Materials contaminated with mercury tend to also contain multiple other environmental contaminants. For example, some materials are also contaminated with organic matter and / or other heavy metals, and these other environmental contaminants present similar challenges. Therefore, depending on the contaminated material, the state of the material, the type of waste, the form of mercury, and other contaminants and environmental pollutants present, reducing the environmental availability of environmental contaminants at a particular location can be technically challenging and costly. Reducing the environmental availability of environmental contaminants is of particular interest, as it also reduces the contaminant's bioavailability and thereby its bioaccumulation, particularly in materials such as soil, groundwater, sediments, and slurries.
[0005] Current commercial remediation processes applied to soils and other solids include stabilization / solidification, washing, thermal desorption, and vitrification. Processes applied to water and other liquids include precipitation / coprecipitation, adsorption, filtration, and bioremediation. Processes applied to sediments and other solid-liquid combinations include in situ capping, dredging / excavation, combinations of these methods, as well as monitored natural remediation (MNR) and enhanced monitored natural remediation (EMNR). Monitored natural remediation relies on natural processes to protect the environment and receptors from unacceptable exposure to contaminants, while enhanced MNR applies materials or amendments to enhance the natural remediation process (e.g., adding a thin cap or reactive amendments such as carbon). All of these remediation techniques offer benefits in controlling the environmental impacts of environmental contaminants, including human health and ecological risks. However, they also have limitations.
[0006] Another factor to consider in some remediation technologies is the propensity of environmental contaminants to migrate (or leach from) the site after being sequestered or stabilized. The U.S. EPA also regulates this, and has the Toxicity Characterization Leaching Procedure (TCLP), a test designed to determine the mobility of both organic and inorganic analytes present in liquid, solid, and multiphase wastes. do.
[0007] Before selecting a site for remediation, complex bench- and pilot-scale investigations and screening tests must be conducted to evaluate technologies and determine their suitability. Furthermore, variability at each site treated makes remediation of mercury and other environmental contaminants costly and time-consuming. Therefore, new, more commercially attractive processes are needed to reduce the environmental and biological availability of environmental contaminants in solids, liquids, and combinations thereof. Summary of the Invention
[0008] The present invention provides a process for reducing the environmental availability of at least a portion of one or more environmental contaminants in a material that contains one or more environmental contaminants. An advantage provided by the process of the present invention is a reduction in the environmental availability of toxic environmental contaminants in the material. Such toxic contaminants include mercury, methylmercury, heavy metals, and ecologically toxic organics.
[0009] An advantage provided by the process of the present invention is that by reducing the environmental availability of environmental contaminants in a material, the bioavailability and bioaccumulation of such contaminants is also reduced. When the environmental contaminant is mercury, another advantage is that the treatment of the present invention does not require the presence of sulfide, so the reduction in environmental availability, and therefore bioavailability, is not adversely affected by acidic conditions that allow sulfide to form sulfate or sulfate compounds. This absence of sulfate also minimizes mercury methylation.
[0010] The process of the present invention can be used as the sole process for reducing the environmental availability and / or presence of environmental contaminants (e.g., mercury) in a material, or can be used to complement and / or facilitate reducing the environmental availability and / or amount of such environmental contaminants in a material beyond that achieved by existing technology.
[0011] One embodiment of the present invention provides a process for reducing the environmental availability of at least a portion of one or more environmental contaminants in a material containing the contaminants. The process includes: a) adding and / or applying an inorganic halide compound or an inorganic sulfide compound to the material; and b) adding and / or applying a sorbent to the material. The inorganic halide compound includes one or more of inorganic fluoride, inorganic chloride, inorganic bromide, and / or inorganic iodide. Adding and / or applying the inorganic halide compound or inorganic sulfide compound and the sorbent to the contaminant-containing material reduces the environmental availability of at least a portion of the one or more environmental contaminants in the material.
[0012] These and other embodiments and features of the present invention will become apparent from the following detailed description and appended claims. [Brief explanation of the drawings]
[0013] [Figure 1] The figure is a graph showing mercury adsorption as a function of bromide ion concentration from Example 1. DETAILED DESCRIPTION OF THE INVENTION
[0014] This diagram illustrates an embodiment of certain aspects of the invention and is not intended to impose limitations on the scope of the invention.
[0015] The present invention provides a process for reducing the environmental availability of environmental pollutants. As used herein, the term "reducing environmental availability" refers to stabilizing, immobilizing, fixing, encapsulating, separating, containing, destroying, rendering harmless, degrading, and decaying, reducing the amount, reducing the mobility, and / or reducing the ability to migrate of at least one environmental contaminant. Stabilization and / or immobilization can be performed in a medium. Reducing the environmental availability of an environmental contaminant reduces the bioavailability of the contaminant and, therefore, its bioaccumulation.
[0016] As used herein, the term "environmental pollutant(s)" refers to chemical elements or compounds, or mixtures thereof, known to be harmful to humans and / or to adversely affect the environment (ecosystem). Environmental pollutants are typically regulated by one or more government agencies. Examples of environmental pollutants include mercury in all forms (e.g., elemental mercury, organic mercury compounds, and inorganic mercury compounds); other organic substances (e.g., including but not limited to hydrophobic organic compounds, polycyclic aromatic hydrocarbons, polychlorinated biphenyls, dioxins, furans, and / or chlorinated pesticides); toxic elements, organic and inorganic heavy metal compounds (e.g., including but not limited to compounds containing As, Pb, Zn, Cu, Cr, and / or Cd); and other environmental pollutants known to those skilled in the art.
[0017] As used herein, terms such as "treated," "contacted," and "purified" indicate that an inorganic halide compound or an inorganic sulfide compound and / or a sorbent interacts with a material containing one or more environmental contaminants in a manner that results in a reduction in the environmental availability of the one or more environmental contaminants.
[0018] The phrase "inorganic halide" and the word "halide" are used throughout this specification to refer to halide ions (fluoride, chloride, bromide, and iodide).
[0019] In the practice of the present invention, the cleaning agent comprises an inorganic halide compound and an adsorbent, or an inorganic sulfide compound and an adsorbent. In embodiments where the material contains bromide ions in addition to one or more environmental contaminants, the cleaning agent is a bromine-containing carbonaceous material.
[0020] Adsorbents include carbonaceous materials and inorganic materials. Suitable carbonaceous materials that can be used as adsorbents in the practice of the present invention include, but are not limited to, activated carbon, carbon black, charcoal, and coal. A preferred carbonaceous material is activated carbon, which can be used in many forms, including, but not limited to, powder, granular, or extruded, and has a high specific surface area.
[0021] Suitable inorganic materials that can be used as adsorbents in the practice of the present invention include inorganic oxides (e.g., alumina (amorphous and crystalline), silica, magnesia, and titania); natural zeolites (e.g., chabazite, clinoptilolite, and faujasite); synthetic zeolites (e.g., zeolites with high Si:Al ratios such as synthetic chabazite (ZSM-5, beta zeolite, sodalite), zeolites with intermediate Si:Al ratios (Y zeolite, A zeolite), silica alumina phosphate (SAPO) zeolites, ion-exchanged zeolites, uncalcined zeolites); clay minerals (e.g., kaolin, kaolinite, bentonite, montmorillonite); synthetic clays (e.g., laponite, saponite, sauconite, stevensite, kaolinite, hectorite); organoclays (e.g., trimethylstearyl ammonium salts, dimethyldialkyl (C 14 -C 18 ) ammonium salts, methyldihydroxyethylammonium salts, hydrogenated tallow ammonium salt-treated montmorillonite, and aminopropyltriethoxysilane and octadecylamine), bentonite, hectorite, and attapulgite treated with quaternary ammonium salts; zeolites treated with N,N,N-trimethyl-1-hexadecanaminium chloride; inorganic hydroxides (e.g., iron hydroxide); mixed metal oxides (e.g., hyaluronate); Examples of suitable inorganic materials include inorganic oxides (e.g., silica, dorotalcite, and metallized bilayer clays); diatomaceous earth; cement dust; hydrotreating catalysts including catalysts on substrates (e.g., alumina, silica, or titania); inorganic carbonates (e.g., alkali metal carbonates (e.g., sodium carbonate and potassium carbonate) and alkaline earth carbonates (e.g., calcium carbonate)); and combinations of any two or more of the foregoing. Preferred inorganic materials include inorganic oxides (especially silica), natural zeolites (especially chabazite), inorganic carbonates (especially calcium carbonate), and clay minerals (especially kaolinite and bentonite).
[0022] Another type of adsorbent that can be used in the practice of the present invention is a modified adsorbent material, where "modified" means that the adsorbent material has been contacted with a chemical to modify it. The adsorbent material can be a carbonaceous material or an inorganic material. Preferred carbonaceous and inorganic materials are described above. Preferably, the modified adsorbent material comprises a modified carbonaceous material. The modified adsorbent materials are typically halogen- and sulfur-containing adsorbents, preferably halogen- and sulfur-containing carbonaceous materials, more preferably halogen-containing carbonaceous materials, especially bromine-containing carbonaceous materials.
[0023] When the modified adsorbent material is a halogen-containing adsorbent, the halogen includes one or more halogens selected from fluorine, chlorine, bromine, and / or iodine, with bromine being the preferred halogen. The amount of halogen (or halogen content) on the adsorbent typically corresponds to a total bromine content (or calculated as bromine) ranging from about 0.1 wt.% to about 20 wt.% based on the total weight of the halogen-containing adsorbent, where the bromine value is calculated even if the halogen is not bromine. Halogen-containing adsorbents can be prepared from an adsorbent material and one or more halogen-containing compounds, as described in U.S. Patent Nos. 6,953,494 and 9,101,907 and International Patent Publication No. WO 2012 / 071206.
[0024] When the modified adsorbent material is a sulfur-containing adsorbent, the amount of sulfur (or sulfur content) of the adsorbent is typically in the range of about 0.1 wt % to about 15 wt % based on the total weight of the sulfur-containing adsorbent. The sulfur-containing adsorbent can be prepared from an adsorbent material and one or more sulfur-containing compounds or elemental sulfur, as described in International Patent Publication No. WO 2012 / 071206, Wei et al., Environ. Sci. Technol. 1998, 32, 531-538, and Asian et al., Int. J. Environ. Sci. Technol. 2015, 12, 2511-2522.
[0025] The inorganic halide compound can be an inorganic fluoride, an inorganic chloride, an inorganic bromide, an inorganic iodide, or a mixture of any two or more halides. Inorganic chlorides and inorganic bromides are preferred inorganic halides. Inorganic bromides are more preferred. The inorganic halide is provided by one or more inorganic halide compounds. Mixtures of inorganic halide compounds can be used. The mixtures can contain the same inorganic halide element and / or different inorganic halide elements. Types of inorganic halide compounds that can be used include hydrohalic acids, alkali metal halides, alkaline earth halides, other metal halide salts, and ammonium halides.
[0026] Hydrogen halides include hydrogen chloride, hydrogen bromide, and hydrogen iodide.
[0027] Alkali metal halides include lithium halides, sodium halides, potassium halides, rubidium halides, and cesium halides. Sodium halides and potassium halides are preferred. Suitable alkali metal halides include sodium fluoride, sodium chloride, sodium bromide, sodium iodide, potassium fluoride, potassium chloride, potassium bromide, and potassium iodide. Alkaline earth halides include magnesium halides, calcium halides, strontium halides, and potassium iodide. Suitable metal halide salts include iron(III) fluoride, iron(III) chloride, iron(III) bromide, iron(III) iodide, manganese(II) fluoride, manganese(II) chloride, manganese(II) bromide, and manganese(II) iodide. Ammonium halides include ammonium chloride, ammonium bromide, and ammonium iodide.
[0028] Preferred inorganic halide compounds include hydrogen bromide, sodium chloride, sodium bromide, potassium bromide, potassium bromide, calcium bromide, iron(III) bromide, and manganese(II) bromide. More preferred are hydrogen bromide, sodium chloride, sodium bromide, potassium bromide, potassium iodide, and calcium bromide. Even more preferred are sodium bromide and calcium bromide, especially sodium bromide.
[0029] The inorganic sulfide compound can be hydrogen sulfide, ammonium sulfide, an alkali metal sulfide, an alkaline earth sulfide, or another metal sulfide salt. Alkali metal sulfides include lithium sulfide, sodium sulfide, potassium sulfide, rubidium sulfide, and cesium sulfide. Sodium sulfide and potassium sulfide are preferred. Alkaline earth sulfides include magnesium sulfide, calcium sulfide, strontium sulfide, and barium sulfide. Calcium sulfide is preferred. Other suitable metal sulfide salts include iron(III) sulfide and manganese(II) sulfide.
[0030] Preferred inorganic sulfide compounds include hydrogen sulfide, sodium sulfide, potassium sulfide, and calcium sulfide. More preferred are hydrogen sulfide and sodium sulfide, especially sodium sulfide.
[0031] In some embodiments, the inorganic halide or sulfide compound is used as a solid. If small particles are needed or desired, the solid inorganic halide or sulfide compound can be converted to the necessary or desired particle size. In other embodiments, the inorganic halide or sulfide compound is used as a solution or slurry, typically preferably an aqueous solution.
[0032] In the solution, the inorganic halide or sulfide compound can be present at a concentration up to its solubility limit in the solvent. The inorganic halide or sulfide compound in the solution or slurry is present in an amount such that the halide or sulfide, calculated as bromide, is about 0.5% to about 45% by weight based on the total weight of the solution. Preferably, the inorganic halide or sulfide compound in the solution or slurry is present in an amount such that the halide or sulfide, calculated as bromide, is about 1% to about 30% by weight, more preferably about 5% to about 20% by weight based on the total weight of the solution or slurry.
[0033] As used throughout this specification, the phrases "as bromide," "reported as bromide," "calculated as bromide," and similar phrases for halide and sulfide refer to the amount of halide or sulfide, and unless otherwise specified, the value is calculated for bromide. For example, inorganic fluorides may be used, but the amount of halide relative to the weight of the solution or slurry will be reported as a bromide value.
[0034] The relative amounts of halide or sulfide and adsorbent will vary widely depending on the needs of the particular material requiring purification. In many cases, the amount of adsorbent relative to halide or sulfide will be very low, e.g., from about 100 ppm to about 1000 ppm (about 0.01% to about 0.1% by weight). )
[0035] Activated carbon suitable for use in the process of the present invention can have a wide range of particle sizes and distributions, from nanometers to centimeters, and can be formed from activated carbon forms including, for example, but not limited to, powder, granular, or extruded, high specific surface area, various unique pore structures, various pore distributions, and other characteristics known to those skilled in the art.
[0036] These inorganic halide compounds and adsorbents, or inorganic sulfide compounds and adsorbents, when used together, particularly inorganic bromide compounds, more specifically inorganic bromide compounds and activated carbon, can reduce the environmental availability of contaminants in a material through means including, but not limited to, oxidation and / or adsorption. Adsorption can reduce the environmental availability of environmental contaminants by reducing the mobility of such contaminants. Other ways in which inorganic halide compounds and adsorbents, or inorganic sulfide compounds and adsorbents, when used together, can reduce the environmental availability of contaminants are by promoting the decomposition of such contaminants through surface reactions and / or by inhibiting the formation of contaminants such as methylmercury, and / or by other mechanisms. In the process of the present invention, whether applied to solids, liquids, or combinations thereof, environmental contaminants contacted by inorganic halide compounds or inorganic sulfide compounds and / or adsorbed by adsorbents are stabilized so that desorption to the environment is substantially minimized.
[0037] In the practice of the present invention, the inorganic halide or inorganic sulfide compound and the adsorbent are not mixed or blended before application to the material to be purified. The phrase "used together" means that both the inorganic halide or inorganic sulfide compound and the adsorbent are used in the process. The inorganic halide or inorganic sulfide compound and the adsorbent can be added or applied to the material to be purified at the same time or at different times, and at the same location or at different locations. When the inorganic halide or inorganic sulfide compound and the adsorbent are added at different times, the respective periods may overlap, or the periods for adding and / or applying the inorganic halide or inorganic sulfide compound and the adsorbent may not overlap. The inorganic halide or inorganic sulfide compound and the adsorbent can be added and / or applied to the material to be treated via the same conduit or different conduits, or via the same addition mode or different addition modes. For example, if the inorganic halide or sulfide compound and the adsorbent are injected, they may be injected through separate injection ports, and the inorganic halide or sulfide compound and the adsorbent may be injected at different times. The desirability of adding and / or applying the inorganic halide or sulfide compound and the adsorbent will depend on various factors, such as the material being treated and the purification method being used.
[0038] Mercury and other environmental pollutants can be effectively removed by reacting with inorganic halide or sulfide compounds and / or by adsorbing onto or within the adsorbent (particularly inorganic bromide and activated carbon). For example, bromide ions can chemically bond with ionic mercury.
[0039] Some inorganic halide or sulfide compounds and sorbents (especially inorganic bromide compounds and activated carbon) can be used together to capture mercury, physically and / or chemically adsorbing it. Mercury captured by a combination of activated carbon and one or more inorganic bromides is stable over a wide range of pH values. Here, "stable" means that mercury is not released in significant amounts from the combination of activated carbon and one or more inorganic bromides after capture.
[0040] Inorganic halide compounds or inorganic sulfide compounds used in the process of the present invention, and adsorption The agent may be formulated with other optional components such as pH buffers (e.g., including, but not limited to, carbonates and phosphates), carriers (e.g., including, but not limited to, sand and mud), binders (e.g., including, but not limited to, mud, clay, and polymers), and / or other additives (e.g., including, but not limited to, iron compounds and sulfur compounds).
[0041] In the practice of the present invention, the inorganic halide or inorganic sulfide compound and the sorbent can be used in various forms, including as a dry sorbent and a dry inorganic halide compound, or one or both of the inorganic halide or inorganic sulfide compound and the sorbent can be in a suitable fluid (e.g., a slurry). As used herein, the term "suitable fluid" refers to fluids such as water and other fluids. Given the teachings of the present disclosure, one of ordinary skill in the art would have the knowledge to select an appropriate fluid, as the selection will depend on variables (e.g., the composition of the material, the composition of environmental contaminants present in the material, etc.).
[0042] Some treatments of materials can be carried out both in-situ and ex-situ.
[0043] Thermal desorption and retort treatment are two common ex situ thermal processes for mercury remediation. These techniques involve heating the contaminated medium to volatilize the mercury, followed by condensation of the vapor to liquid elemental mercury. Inorganic halide or sulfide compounds and adsorbents, preferably inorganic bromides and activated carbon, can be used to adsorb mercury as an alternative to liquid mercury condensers or to remove mercury in the exhaust gases exiting the condenser.
[0044] In some applications, the inorganic halide or sulfide compounds and / or adsorbents remain in or with the material. In other applications, the inorganic halide or sulfide compounds and / or adsorbents may be recovered after use. If recovered after use, the adsorbents may be disposed of or regenerated and reused.
[0045] A substance containing one or more environmental contaminants may be solid, liquid, or a combination of solid and liquid, or a combination of one or more solids and one or more liquids. If a substance is solid, it may contain multiple solids. If a substance is liquid, it may contain multiple liquids.
[0046] In some processes of the present invention, whether applied to materials comprising one or more solids, one or more liquids, or a combination of at least one solid and at least one liquid, the use of inorganic halide or inorganic sulfide compounds and adsorbents can be a stand-alone purification method or can complement the use of other purification methods. In other processes according to the present invention, inorganic halide or inorganic sulfide compounds and adsorbents can be used in addition to one or more other purification agents in the same purification process.
[0047] Adding an inorganic halide or sulfide compound and a sorbent to the contaminated waste adsorbs one or more contaminants. In some embodiments, the inorganic halide or sulfide compound and sorbent remain in the material to stabilize and / or solidify the material. In other embodiments, the combined inorganic halide or sulfide compound, sorbent, and material are placed in a landfill, often along with a binder and other compounds.
[0048] As used herein, the term "solid(s)" includes, but is not limited to, soil, trash, waste, and other such materials known to those skilled in the art. Soil is a preferred solid to treat in the practice of the present invention. The process of the present invention is provided for reducing the environmental availability of at least a portion of one or more environmental contaminants in a solid that contains one or more environmental contaminants. Materials that are solids may be referred to herein as solid objects. be.
[0049] Adding and / or applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the solid (a) injecting the inorganic halide compound or inorganic sulfide compound and the sorbent into the solid through holes and / or depressions and / or channels optionally present in the substrate, whether already present or manually created (e.g., by drilling holes in the substrate); and / or (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the solid; and / or (c) incorporating an inorganic halide or inorganic sulfide compound and an adsorbent onto at least a portion of the surface of the solid; and / or (d) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the contained solids; and / or (e) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the solid; and / or (f) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the reactive barrier; and / or (g) forming a reactive barrier containing an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (h) placing an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the vacuum well in which the solids are treated.
[0050] Some preferred methods for adding and / or applying the inorganic halide or inorganic sulfide compound and the adsorbent to the solid include: (a) injecting the inorganic halide compound or inorganic sulfide compound and the sorbent into the solid through holes and / or depressions and / or channels optionally present in the substrate, whether already present or manually created (e.g., by drilling holes in the substrate); and / or (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the solid; and / or (c) incorporating an inorganic halide or inorganic sulfide compound and an adsorbent onto at least a portion of the surface of the solid; and / or (d) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the contained solids; and / or (e) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the solid; and / or (f) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the reactive barrier; and / or (g) forming a reactive barrier containing an inorganic halide compound or an inorganic sulfide compound and an adsorbent.
[0051] A more preferred method for adding and / or applying the inorganic halide compound or inorganic sulfide compound and the adsorbent to the solid is: (a) injecting an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the solid; (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the solid; and / or (c) incorporating an inorganic halide or inorganic sulfide compound and an adsorbent onto at least a portion of the surface of the solid.
[0052] The blending of the inorganic halide compound or inorganic sulfide compound and the adsorbent on the surface of the solid as in (c) above can be carried out by blending the inorganic halide compound or inorganic sulfide compound and the adsorbent with a part of the solid and then applying a mixture of the inorganic halide compound or inorganic sulfide compound, the adsorbent and a part of the solid to the surface of the solid, or by blending the inorganic halide compound or inorganic sulfide compound and the adsorbent on the surface of the solid.
[0053] An embodiment of treating a solid to reduce the environmental availability of one or more environmental contaminants includes (i) drilling holes, depressions, and / or channels in the solid; (ii) covering the surface of the solid with a layer of inorganic halide or inorganic sulfide compounds and a sorbent; and (iii) heating portions of the solid to cause the one or more environmental contaminants (e.g., mercury) to migrate toward the surface with the inorganic halide or inorganic sulfide compounds and sorbent thereon.
[0054] Another embodiment of treating a solid to reduce the environmental availability of one or more environmental contaminants includes (i) drilling holes, depressions, and / or channels in the solid; (ii) filling some of the holes or channels with an inorganic halide compound or an inorganic sulfide compound and a sorbent; and (iii) purging heated air into the holes or channels to migrate the one or more environmental contaminants (e.g., mercury) toward the holes filled with the inorganic halide compound or inorganic sulfide compound and the sorbent.
[0055] In some embodiments of the present invention, a solid is heated to vaporize environmental contaminants (e.g., mercury) in a vacuum well. As in (h) above, if an inorganic halide or sulfide compound and a sorbent are present in the vacuum well, the inorganic halide or sulfide compound and / or the sorbent can absorb the vaporized environmental contaminant(s). In these processes, the inorganic halide or sulfide compound is placed with the material to be treated, and the sorbent contacts vapors generated at one or more locations in the vacuum well before the vapors are released into the atmosphere. One application of this process is in soil vapor extraction (SVE) for mercury remediation, where inorganic halide or sulfide compounds and a sorbent (particularly inorganic bromide and activated carbon) can be used in the vacuum well to adsorb mercury.
[0056] In certain types of solids, such as soil, inorganic halide or sulfide compounds and sorbents can be used to immobilize mercury before or during soil stabilization and solidification (S / S) in in situ and / or ex situ processes. One ex situ process involves adding inorganic halide or sulfide compounds, sorbents, one or more binders, and other ingredients to contaminated materials and mixing them in a reactor. The mixture is then stabilized and cemented or placed in a landfill. In some embodiments, inorganic bromides and powdered activated carbon can be used in the S / S treatment process. Mercury adsorbed to the inorganic bromides and powdered activated carbon is stabilized during concrete production and curing. See, for example, U.S. Patent Nos. 8,404,038 and 8,420,033. This is advantageous because fly ash and cement are typical binders used in S / S technology.
[0057] In another embodiment of the present invention, in which an inorganic halide or sulfide compound and a sorbent (particularly inorganic bromide and powdered activated carbon) are used as a remediation agent for mercury-contaminated soil, the inorganic halide or sulfide compound and the sorbent are spread on the contaminated soil. In this manner, the soil is undisturbed, and the inorganic halide or sulfide compound and the sorbent (particularly inorganic bromide and activated carbon) are present in the top layer of the soil, blocking mercury migration from the soil.
[0058] Either or both of the inorganic halide or sulfide compounds and the adsorbent (particularly inorganic bromide compounds and activated carbon) can be mixed with another agent to create a mixture that improves penetration of the inorganic halide or sulfide compounds and / or adsorbent into solids (particularly soils). In some embodiments, a pH adjuster is also applied, either separately or mixed with the inorganic halide or sulfide compounds and the adsorbent, optionally along with an agent that improves penetration of the inorganic halide or sulfide compounds and / or adsorbent into solids.
[0059] The process of the present invention is provided for reducing the environmental availability of at least a portion of one or more environmental contaminants in a liquid containing the one or more environmental contaminants. As used herein, the term "liquid(s)" includes, but is not limited to, groundwater, wastewater, surface water, saltwater, freshwater (e.g., lakes, ponds), and other such materials known to those skilled in the art. Materials that are liquids may be referred to herein as liquids.
[0060] Adding and / or applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the liquid (a) injecting an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the liquid, optionally with filtration of the adsorbent used; and / or (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the liquid; and / or (c) combining an inorganic halide compound or an inorganic sulfide compound and a sorbent with the liquid; and / or (d) passing the liquid over a fixed bed containing an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (e) passing the liquid through a filter containing an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (f) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the amount of liquid contained therein; and / or (g) contacting the liquid with an inorganic halide compound or an inorganic sulfide compound and pumping the liquid through a fixed bed or column containing an adsorbent during or after contact with the inorganic halide compound or inorganic sulfide compound.
[0061] Combining the inorganic halide compound or inorganic sulfide compound and the adsorbent with the liquid as described above in (c) can be done by combining the inorganic halide compound or inorganic sulfide compound and the adsorbent with all of the liquid, or by combining the inorganic halide compound or inorganic sulfide compound and / or the adsorbent with a portion of the liquid to form a slurry, and then combining the slurry with the remaining liquid.
[0062] Some materials are combinations of at least one solid and at least one liquid, including sediments, slurries, sediments, pore water (e.g., soil pore water or sediment pore water), and other solid-liquid combinations. Sediments, soil pore water, and sediment pore water are preferred combinations to treat in the practice of the present invention. These combinations are sometimes referred to as multiphase materials. The process of the present invention is provided for reducing the environmental availability of at least a portion of one or more environmental contaminants in combinations that include one or more environmental contaminants. Materials that are combinations are sometimes referred to herein as formulations.
[0063] Adding and / or applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the formulation (a) injecting the inorganic halide compound or inorganic sulfide compound and the sorbent into the formulation through holes and / or depressions and / or channels optionally present in the substrate, whether already present or manually created (e.g., by drilling holes in the substrate); and / or (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the formulation; and / or (c) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent onto at least a portion of the surface of the formulation, as described above for solid and / or liquid materials; and / or (d) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the formulation; and / or (e) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the formulation; and / or (f) coating the surface of the material with a layer comprising an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (g) placing an inorganic halide compound or an inorganic sulfide compound and an adsorbent in the cap; and / or (h) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the reactive barrier; and / or (i) forming a reactive barrier containing an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (j) incorporating an inorganic halide compound or an inorganic sulfide compound and a sorbent into the geotextile mat; and / or (k) In a manner similar to that described for solids, the method can include placing an inorganic halide compound or an inorganic sulfide compound and an adsorbent in a vacuum well in which the formulation is treated.
[0064] Some preferred methods for adding and / or applying the inorganic halide or inorganic sulfide compound and the sorbent to the formulation include: (a) injecting the inorganic halide compound or inorganic sulfide compound and the sorbent into the formulation through holes and / or depressions and / or channels optionally present in the substrate, whether already present or manually created (e.g., by drilling holes in the substrate); and / or (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the formulation; and / or (c) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent onto at least a portion of the surface of the formulation, as described above for solid and / or liquid materials; and / or (d) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the formulation; and / or (e) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the formulation; and / or (f) coating the surface of the material with a layer comprising an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (g) placing an inorganic halide compound or an inorganic sulfide compound and an adsorbent in the cap; and / or (h) adding an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the reactive barrier; and / or (i) forming a reactive barrier containing an inorganic halide compound or an inorganic sulfide compound and an adsorbent; and / or (j) incorporating an inorganic halide compound or an inorganic sulfide compound and a sorbent into the geotextile mat.
[0065] A more preferred method for adding and / or applying the inorganic halide compound or inorganic sulfide compound and the sorbent to the formulation is: (a) injecting an inorganic halide compound or an inorganic sulfide compound and a sorbent into the formulation; (b) applying an inorganic halide compound or an inorganic sulfide compound and an adsorbent to the surface of the formulation; (c) incorporating an inorganic halide or inorganic sulfide compound and an adsorbent onto at least a portion of the surface of the formulation; and / or (d) incorporating an inorganic halide compound or an inorganic sulfide compound and an adsorbent into the formulation.
[0066] As described above in (d), the inorganic halide or sulfide compound and adsorbent can be incorporated into the formulation by incorporating the inorganic halide or sulfide compound and adsorbent into the formulation, or by incorporating the inorganic halide or sulfide compound and / or adsorbent into a portion of the formulation to form a mixture, and then combining the mixture with the surface of the formulation. In these embodiments, the inorganic halide compound and adsorbent can include, for example, but are not limited to, inorganic chloride or inorganic bromide and activated carbon, preferably inorganic bromide and a carbonaceous material, more preferably sodium bromide and / or calcium bromide and activated carbon.
[0067] Another embodiment of the present invention provides a process for reducing the environmental availability of at least a portion of one or more environmental contaminants in a substance containing one or more environmental contaminants and bromide ions. The process includes adding and / or applying a bromine-containing carbonaceous material to the substance, thereby reducing the environmental availability of at least a portion of the one or more environmental contaminants in the substance. In this embodiment, because bromide ions are present in the substance along with the environmental contaminant(s), there is no need to add or apply an inorganic halide compound. The purifying agent in this embodiment of the present invention includes a bromine-containing carbonaceous material. In a preferred embodiment, the amount of bromine in the bromine-containing carbonaceous material ranges from about 0.1 wt.% to about 20 wt.%, based on the total weight of the bromine-containing carbonaceous material. A feature of this embodiment is that only a bromine-containing carbonaceous material needs to be added and / or applied, and the treatment of the substance and its considerations are the same as those described above for the adsorbent. In this embodiment, the application of an inorganic halide compound or an inorganic sulfide compound is optional.
[0068] Adding and / or applying a bromine-containing carbonaceous material to a solid containing one or more environmental contaminants and bromide ions comprises: (a) injecting a bromine-containing carbonaceous material into a solid; (b) applying a bromine-containing carbonaceous material to a surface of a solid; (c) incorporating a bromine-containing carbonaceous material onto at least a portion of the surface of the solid; (d) adding a bromine-containing carbonaceous material to the contained solid; (e) incorporating a bromine-containing carbonaceous material into the solid; (f) adding a bromine-containing carbonaceous material to the reactive barrier; (g) forming a reactive barrier containing a bromine-containing carbonaceous material; and / or (h) placing the bromine-containing carbonaceous material in a vacuum well in which the solids are to be treated.
[0069] Some preferred methods for adding and / or applying the bromine-containing carbonaceous material to a solid include: (a) injecting a bromine-containing carbonaceous material into a solid; (b) applying a bromine-containing carbonaceous material to a surface of a solid; (c) incorporating a bromine-containing carbonaceous material onto at least a portion of the surface of the solid; (d) adding a bromine-containing carbonaceous material to the contained solid; (e) incorporating a bromine-containing carbonaceous material into the solid; (f) adding a bromine-containing carbonaceous material to the reactive barrier; and / or (g) forming a reactive barrier comprising a bromine-containing carbonaceous material.
[0070] A more preferred method for adding and / or applying the bromine-containing carbonaceous material to a solid is to (a) injecting a bromine-containing carbonaceous material into a solid; (b) applying a bromine-containing carbonaceous material to a surface of a solid; and / or (c) incorporating a bromine-containing carbonaceous material onto at least a portion of the surface of the solid.
[0071] As in (c) above, incorporating the bromine-containing carbonaceous material onto the surface of the solid can be carried out by incorporating the bromine-containing carbonaceous material with a portion of the solid and then applying a mixture of the bromine-containing carbonaceous material and the portion of the solid to the surface of the solid, or by incorporating the bromine-containing carbonaceous material onto the surface of the solid.
[0072] An embodiment of treating a solid to reduce the environmental availability of one or more environmental contaminants includes (i) drilling holes, depressions, and / or channels in the solid; (ii) covering the surface of the solid with a layer of bromine-containing carbonaceous material; and (iii) heating portions of the solid to cause the one or more environmental contaminants (e.g., mercury) to migrate toward the surface with the bromine-containing carbonaceous material thereon.
[0073] Another embodiment of treating a solid to reduce the environmental availability of one or more environmental contaminants includes (i) drilling holes, depressions, and / or channels in the solid; (ii) filling some of the holes or channels with a bromine-containing carbonaceous material; and (iii) purging heated air into the holes or channels to migrate the one or more environmental contaminants (e.g., mercury) toward the holes filled with the bromine-containing carbonaceous material.
[0074] In another embodiment of the present invention, where the bromine-containing carbonaceous material is a remediation agent for mercury-contaminated soil, the bromine-containing carbonaceous material is spread over the contaminated soil. In this manner, the soil is undisturbed and the bromine-containing carbonaceous material is present in the top layer of the soil, blocking the migration of mercury from the soil.
[0075] Adding and / or applying a bromine-containing carbonaceous material to a liquid containing one or more environmental contaminants and bromide ions comprises: (a) injecting a bromine-containing carbonaceous material into a liquid; (b) applying a bromine-containing carbonaceous material to the surface of the liquid; (c) incorporating a bromine-containing carbonaceous material into the liquid; (d) passing the liquid over a fixed bed comprising a bromine-containing carbonaceous material; (e) passing the liquid through a filter containing a bromine-containing carbonaceous material; (f) adding a bromine-containing carbonaceous material to the amount of liquid contained therein; and / or (g) pumping the liquid through a fixed bed or column containing the bromine-containing carbonaceous material.
[0076] The blending of the bromine-containing carbonaceous material with the liquid as described above in (c) can be accomplished by blending the bromine-containing carbonaceous material with all of the liquid, or by blending the bromine-containing carbonaceous material with a portion of the liquid to form a slurry, and then blending the slurry with the remaining liquid.
[0077] Adding and / or applying a bromine-containing carbonaceous material to a formulation containing one or more environmental pollutants and bromide ions comprises: (a) injecting a bromine-containing carbonaceous material into the formulation; (b) applying a bromine-containing carbonaceous material to the surface of the formulation; (c) incorporating a bromine-containing carbonaceous material onto at least a portion of the surface of the formulation; (d) incorporating a bromine-containing carbonaceous material into the formulation; (e) adding a bromine-containing carbonaceous material to the formulation; (f) coating the surface of the substance with a layer comprising a bromine-containing carbonaceous material; (g) placing a bromine-containing carbonaceous material within the cap; (h) adding a bromine-containing carbonaceous material to the reactive barrier; (i) forming a reactive barrier comprising a bromine-containing carbonaceous material; (j) incorporating a bromine-containing carbonaceous material into a geotextile mat; and / or (k) placing the bromine-containing carbonaceous material in a vacuum well in which the formulation is to be treated.
[0078] Some preferred methods for adding and / or applying the bromine-containing carbonaceous material to the formulation include: (a) injecting a bromine-containing carbonaceous material into the formulation; (b) applying a bromine-containing carbonaceous material to the surface of the formulation; (c) incorporating a bromine-containing carbonaceous material onto at least a portion of the surface of the formulation; (d) incorporating a bromine-containing carbonaceous material into the formulation; (e) adding a bromine-containing carbonaceous material to the formulation; (f) coating the surface of the substance with a layer comprising a bromine-containing carbonaceous material; (g) placing a bromine-containing carbonaceous material within the cap; (h) adding a bromine-containing carbonaceous material to the reactive barrier; (i) forming a reactive barrier comprising a bromine-containing carbonaceous material; and / or (j) incorporating the bromine-containing carbonaceous material into a geotextile mat.
[0079] A more preferred method for adding and / or applying the bromine-containing carbonaceous material to the formulation is to (a) injecting a bromine-containing carbonaceous material into the formulation; (b) applying a bromine-containing carbonaceous material to the surface of the formulation; (c) incorporating a bromine-containing carbonaceous material onto at least a portion of the surface of the formulation; and / or (d) incorporating a bromine-containing carbonaceous material into the formulation.
[0080] Incorporation of the bromine-containing carbonaceous material into the formulation as in (d) above can be accomplished by incorporating the bromine-containing carbonaceous material into the formulation, or by incorporating the bromine-containing carbonaceous material into a portion of the formulation to form a mixture and then incorporating the mixture onto the surface of the formulation. In these embodiments, the bromine-containing carbonaceous material can be bromine-containing activated carbon.
[0081] As will be apparent to those skilled in the art, many variables regarding the use of the present invention must be considered depending on the material being treated. For all processes of the present invention, whether applied to solids, liquids, or combinations thereof, given the teachings herein, those skilled in the art will have the knowledge at hand to determine the amount of inorganic halide or inorganic sulfide compound and sorbent to use, whether any components are used in combination with the inorganic halide or inorganic sulfide compound and sorbent, and if so, the specific optional components and amounts that will be beneficial, the number of applications of the process of the present invention and the period between such applications that will be beneficial, whether the process of the present invention will be used in combination with known purification methods, and if so, how to use them to achieve beneficial results.
[0082] The following examples are presented for illustrative purposes and are not intended to impose limitations on the scope of the present invention.
[0083] In the examples, unless otherwise stated, the amount of mercury present in the samples is measured via cold vapor atomic absorption spectrometry on an atomic absorption spectrometer equipped with a mercury vapor analyzer (CVAA; Atomic Absorption Mercury Spectrometer with Zeeman Background Correction, Ohio Lumex Co., Model No. RA915+).
[0084] In all examples, experiments using activated carbon are for comparison purposes. Unless otherwise stated, the powdered activated carbon used in the examples was prepared from coconut shells.
[0085] Example 1 Powdered activated carbon (PAC) was added to several reaction bottles, followed by 50 mL of mercury solution. This solution had a pH of 2 and contained approximately 50 ppm of mercury from Hg(NO3)2. The amount of PAC in each reaction bottle was 0.4 g / L. Solid NaBr was dissolved in deionized water to form a solution containing 2 wt% bromide ions. An amount of the NaBr solution was pipetted into each reaction bottle.
[0086] The samples were rotated at 30 rpm for 24 hours, and each resulting mixture was passed through a syringe filter (0.45 μm pore membrane) to separate the solids from the liquid. For comparison, a separate experiment was run in parallel using activated carbon without bromide solution. The mercury concentration of the liquid filtered from each solution was then measured. The results are summarized in Table 1.
[0087] In these experiments, at a steady-state concentration of bromide ions of approximately 16 ppm, the capacity of activated carbon was 100 mg Hg / g activated carbon (adsorbent), significantly greater than the mercury adsorption of activated carbon in the absence of bromide ions.
[0088] The figure is a graph showing mercury adsorption as a function of bromide ion concentration, where the x-axis is bromide ion concentration (mg / L) and the y-axis is Hg adsorbed (mg / g adsorbent). [Table 1]
[0089] Example 2 More samples were prepared and tested, prepared as in Example 1. One set of runs used powdered activated carbon made from coconut shells. The results are summarized in Table 2. [Table 2]
[0090] Example 3 Samples prepared as in Example 1 were prepared and tested. In these experiments, the initial mercury concentration was varied. The results are summarized in Table 3. [Table 3]
[0091] Example 4 Samples prepared as in Example 1 were prepared and tested using NaCl, NaI, and NaS as well as NaBr. The results are summarized in Table 4. [Table 4]
[0092] Example 5 Samples were prepared and tested using NaBr. Powdered activated carbon (PAC) was added to the sand at a loading of 1 wt% and packed into several columns for testing. 50 mL of a mercury solution containing 50 ppm of mercury from Hg(NO3)2 at a pH of 2 was added to each column. Solid NaBr was dissolved in deionized water to form a bromide-containing solution in an amount that resulted in a bromide ion to mercury molar ratio of 1:1 to 4:1. A comparison sample without bromide ions was also tested. NaBr solution was added to each column to extract the mercury. The mercury concentration of the liquid eluted from each column was then measured. The results are summarized in Table 5. [Table 5]
[0093] Example 6 Several soil samples were prepared and tested. Powdered activated carbon (PAC) was added to some of the soil samples at 1 wt%, and solid NaBr was dissolved in deionized water to form a solution containing 40 ppm NaBr, which was then added to some of the soil samples. A solution of either HgCl2 or Hg(NO3)2 was added to each soil sample to add 50 ppm Hg to each sample. Two different pH solutions were used. The samples were rotated at 30 rpm for 24 hours, and each of the resulting mixtures was passed through a syringe filter (0.45 μm pore membrane) to separate the solids from the liquid. For comparison, parallel experiments were conducted using soil without PAC or bromide solution. All experiments except those containing both PAC and NaBr were for comparison. The mercury concentration of the filtered liquid from each solution was then measured. The results are summarized in Table 6. [Table 6]
[0094] Example 7 Several wastewater samples containing mercury were treated with a combination of bromide ion and activated carbon. Solid NaBr was dissolved in deionized water to form a sodium bromide solution, which was then added to the wastewater sample. Two samples were treated using the batch method. A portion of the sodium bromide solution was added, followed by a portion of powdered activated carbon. The sample was shaken several times, and then each resulting mixture was passed through a syringe filter (0.45 μm pore membrane) to separate the solids from the liquid. The mercury concentration of the filtered liquid from each solution was then measured. One sample was treated using a column, where the wastewater sample was pumped through a granular activated carbon (GAC) bed, and the effluent was then analyzed. The results are summarized in Table 7. [Table 7]
[0095] Further embodiments of the present invention include, but are not limited to, the following.
[0096] A) A process for reducing the environmental availability of at least a portion of one or more environmental contaminants in a material that contains one or more environmental contaminants, said process comprising: adding and / or applying an inorganic halide compound or an inorganic sulfide compound to the material, wherein the inorganic halide compound is sodium bromide or calcium bromide and the inorganic sulfide compound is hydrogen sulfide or sodium sulfide; and adding and / or applying an adsorbent to the material, wherein the adsorbent is activated carbon or a bromine-containing carbonaceous material; thereby reducing the environmental availability of at least a portion of one or more environmental contaminants in the material.
[0097] B) The process according to A), wherein the inorganic halide compound or inorganic sulfide compound is in solution in an amount such that the halide or sulfide is from about 0.5% to about 45% by weight, calculated as bromide, based on the total weight of the solution.
[0098] C) The process according to A), wherein the inorganic halide compound or inorganic sulfide compound is in solution in an amount such that the halide or sulfide is from about 1% to about 30% by weight, calculated as bromide, based on the total weight of the solution.
[0099] D) The process according to A), wherein the inorganic halide compound or inorganic sulfide compound is in solution in an amount such that the halide or sulfide is from about 5% to about 20% by weight, calculated as bromide, based on the total weight of the solution.
[0100] E) A process similar to any of A) through D) where the substance is soil.
[0101] F) A process similar to any of A)-D) where the material is sediment.
[0102] G) The substance is soil pore water or sediment pore water, and the process is the same as any of A) to D). Seth.
[0103] H) The process according to A), wherein the inorganic halide compound is sodium bromide, the adsorbent is activated carbon, the inorganic halide compound is in solution in an amount such that the halide is from about 0.5% to about 45% by weight, calculated as bromide based on the total weight of the solution, and the material is soil, sediment, soil pore water, or sediment pore water.
[0104] I) The process according to H), wherein the inorganic halide compound or inorganic sulfide compound is present in an amount of about 1% to about 30% by weight, preferably about 5% to about 20% by weight, of halide, calculated as bromide, relative to the total weight of the solution.
[0105] J) The process according to A), wherein the inorganic sulfide compound is sodium sulfide, the adsorbent is activated carbon, the inorganic sulfide compound is in solution in an amount such that the sulfide is from about 0.5% to about 45% by weight, calculated as bromide, based on the total weight of the solution, and the material is soil, sediment, soil pore water, or sediment pore water.
[0106] K) The process according to J), wherein the inorganic sulfide compound is present in an amount of about 1% to about 30% by weight, preferably about 5% to about 20% by weight, of sulfide, calculated as bromide relative to the total weight of the solution.
[0107] Any component referred to by chemical name or formula anywhere in this specification or in the claims, whether referred to in the singular or plural, is identified as being present prior to contact with another substance (e.g., another component, solvent, etc.) referred to by that chemical name or formula. It does not matter what chemical change, transformation, and / or reaction occurs in the resulting mixture or solution, since such change, transformation, and / or reaction is a natural consequence of bringing the particular components together under the conditions required in accordance with this disclosure. The component is therefore identified as a component that is brought together in connection with performing a desired operation or forming a desired composition. Also, the claims herein below, even when referring to a substance, component, and / or ingredient in the present tense (e.g., "comprising," "being," etc.), refer to the substance, component, or ingredient as if it existed immediately prior to its first contact, blending, or mixing with one or more other substances, components, and / or ingredients in accordance with this disclosure. The fact that substances, components, or ingredients may have lost their original identity due to chemical reaction or transformation in the course of the contacting, blending, or mixing operation, when carried out in accordance with this disclosure and the ordinary skill of a chemist, is therefore of no practical importance.
[0108] The present invention may comprise, consist of, or consist essentially of the materials and / or procedures recited herein.
[0109] As used herein, the term "about" modifying the amount of a component in a composition or used in a method of the present invention refers to variations in numerical quantity that may occur, for example, due to typical measurements and liquid handling procedures used in making concentrates or using solutions in the real world; due to inadvertent errors in these procedures; due to differences in the manufacture, source, or purity of components used to make the composition or carry out the method; etc. The term about also encompasses amounts that differ due to different equilibrium conditions of a composition resulting from a particular initial mixture. Whether modified by the term "about," the claims encompass the equivalent of the quantity.
[0110] As used herein, the articles "a" or "an" when used herein, unless expressly stated otherwise, extend the scope of the description or claims to a single element to which the article refers. Rather, the article "a" or "an," as used herein, is intended to cover one or more such elements unless the context clearly indicates otherwise.
[0111] While the invention has been described with respect to one or more preferred embodiments, it should be understood that other modifications can be made without departing from the scope of the invention as set forth in the following claims.
Claims
1. 1. A process for reducing the environmental availability of at least a portion of one or more environmental contaminants in a material that contains said one or more environmental contaminants, said process comprising: adding and / or applying an inorganic halide compound or an inorganic sulfide compound to the substance, wherein the inorganic halide compound comprises one or more of inorganic fluoride, inorganic chloride, inorganic bromide, and / or inorganic iodide; and Adding and / or applying an adsorbent to the material, thereby reducing the environmental availability of at least a portion of the one or more environmental contaminants in the material; wherein the adsorbent is a bromine-containing carbonaceous material, and wherein the inorganic halide or sulfide compound is not mixed or blended with the adsorbent prior to application to the material, and the amount of the adsorbent relative to the inorganic halide or sulfide compound is between 0.01% and 0.1% by weight; wherein the material containing the environmental pollutant is a solid, a liquid, or a combination of at least one solid and at least one liquid; The process.
2. The process of claim 1 , wherein the carbonaceous material is activated carbon.
3. 10. The process of claim 1, wherein the adsorbent comprises an inorganic material, the inorganic material being selected from inorganic oxides, natural zeolites, inorganic carbonates, and clay minerals.
4. 10. The process of claim 1, wherein the adsorbent comprises an inorganic material, the inorganic material being selected from chabazite, silica, calcium, kaolinite, and bentonite.
5. 5. The process of any one of claims 1 to 4, wherein the inorganic halide compound is an inorganic chloride or an inorganic bromide.
6. 2. The process of claim 1, wherein the inorganic halide compound is an inorganic bromide and the adsorbent is activated carbon.
7. 7. The process of claim 6, wherein the inorganic halide compound is sodium bromide or calcium bromide.
8. 8. The process of any one of claims 1 to 7, wherein the inorganic halide compound is in solution and in an amount such that it is from about 0.5% to about 45% by weight, calculated as bromide, based on the total weight of the solution.
9. 5. The process of any one of claims 1 to 4, wherein the inorganic sulfide compound is an alkali metal sulfide or an alkaline earth sulfide.
10. 2. The process of claim 1, wherein the inorganic sulfide compound is an alkali metal sulfide and the adsorbent is activated carbon.
11. 11. The process of claim 10, wherein the inorganic halide compound is sodium bromide or calcium bromide.
12. 12. The process of any one of claims 1 to 4 or 9 to 11, wherein the inorganic sulfide compound is in solution and in an amount such that it is from about 0.5% to about 45% by weight, calculated as bromide, based on the total weight of the solution.
13. The process of any one of claims 1 to 12, wherein the material comprising the environmental pollutant is a solid.
14. adding and / or applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the solid, (a) injecting the inorganic halide compound or the inorganic sulfide compound and the adsorbent into the solid; (b) applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the surface of the solid; (c) incorporating the inorganic halide compound or the inorganic sulfide compound and the adsorbent onto at least a portion of the surface of the solid; (d) adding the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the contained solid; (e) combining the inorganic halide compound or the inorganic sulfide compound and the adsorbent with the solid; (f) adding the inorganic halide compound or the inorganic sulfide compound and the adsorbent to a reactive barrier; (g) forming a reactive barrier containing the inorganic halide compound or the inorganic sulfide compound and the adsorbent; 14. The process of claim 13, comprising one or more of: (h) placing the inorganic halide compound or the inorganic sulfide compound and the adsorbent into a vacuum well where the solids are treated.
15. The process of any one of claims 1 to 12, wherein the substance containing the environmental pollutant is a liquid.
16. adding and / or applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the liquid; (a) injecting the inorganic halide compound or the inorganic sulfide compound and the adsorbent into the liquid; (b) applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the surface of the liquid; (c) combining the inorganic halide compound or the inorganic sulfide compound and the adsorbent with the liquid; (d) passing the liquid over a fixed bed comprising the inorganic halide compound or the inorganic sulfide compound and the adsorbent; (e) passing the liquid through a filter containing the inorganic halide compound or the inorganic sulfide compound and the adsorbent; (f) adding the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the liquid in an amount to be contained; (g) contacting the liquid with the inorganic halide compound or the inorganic sulfide compound and pumping the liquid through a fixed bed or column containing the adsorbent during or after contact with the inorganic halide compound or the inorganic sulfide compound.
17. The process of any one of claims 1 to 12, wherein the material containing the environmental pollutant is a combination of at least one solid and at least one liquid.
18. adding and / or applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the formulation; (a) injecting the inorganic halide compound or the inorganic sulfide compound and the adsorbent into the formulation; (b) applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the surface of the formulation; (c) incorporating the inorganic halide compound or the inorganic sulfide compound and the adsorbent on at least a portion of the surface of the composition; (d) combining the inorganic halide compound or the inorganic sulfide compound and the adsorbent into the blend; (e) adding the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the formulation; (f) coating the surface of the material with a layer comprising the inorganic halide compound or the inorganic sulfide compound and the adsorbent; (g) placing the inorganic halide compound or the inorganic sulfide compound and the adsorbent in a cap; (h) adding the inorganic halide compound or the inorganic sulfide compound and the adsorbent to a reactive barrier; (i) forming a reactive barrier containing the inorganic halide compound or the inorganic sulfide compound and the adsorbent; (j) incorporating the inorganic halide compound or the inorganic sulfide compound and the adsorbent into a geotextile mat; 20. The process of claim 17, comprising one or more of: (k) placing the inorganic halide compound or the inorganic sulfide compound and the adsorbent into a vacuum well in which the formulation is treated.
19. 15. The process of claim 13 or 14, wherein the solid is soil.
20. said adding and / or applying (a) injecting the inorganic halide compound or the inorganic sulfide compound and the adsorbent into the solid; (b) applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the surface of the solid; 20. The process of claim 18, comprising one or more of: (c) incorporating the inorganic halide compound or the inorganic sulfide compound and the adsorbent onto at least a portion of the surface of the solid.
21. 19. The process of claim 17 or 18, wherein the formulation is a deposit.
22. said adding and / or applying (a) injecting the inorganic halide compound or the inorganic sulfide compound and the adsorbent into the formulation; (b) applying the inorganic halide compound or the inorganic sulfide compound and the adsorbent to the surface of the formulation; (c) incorporating the inorganic halide compound or the inorganic sulfide compound and the adsorbent on at least a portion of the surface of the composition; 22. The process of claim 21, comprising one or more of: (d) combining the inorganic halide compound or the inorganic sulfide compound, and the sorbent into the combination.
23. the material is soil or sediment; the inorganic halide compound is sodium bromide or calcium bromide and the adsorbent is activated carbon; or 2. The process of claim 1, wherein the inorganic sulfide compound is hydrogen sulfide or sodium sulfide and the adsorbent is activated carbon.
Citation Information
Patent Citations
Mercury-polluted water treatment process
CN102030440A
JP1974031145A
Treatment for waste water containing mercury
JP1983049490A
Waste treatment material and waste treatment
JP1998005720A
Mercury adsorbent and method for removing mercury in hydrocarbon oil with the same
JP1998202003A