Wastewater purification with nanoparticle-treated bed
10449513 ยท 2019-10-22
Assignee
Inventors
Cpc classification
B01J20/28004
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/258
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01J2220/66
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/256
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C02F1/001
CHEMISTRY; METALLURGY
B01J20/06
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3433
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3289
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3204
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3425
PERFORMING OPERATIONS; TRANSPORTING
C02F2303/18
CHEMISTRY; METALLURGY
Y10T428/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T428/252
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01J20/08
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3236
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/259
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C02F1/288
CHEMISTRY; METALLURGY
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B01J2220/46
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J20/04
PERFORMING OPERATIONS; TRANSPORTING
B01J20/06
PERFORMING OPERATIONS; TRANSPORTING
B01J20/08
PERFORMING OPERATIONS; TRANSPORTING
B01J20/28
PERFORMING OPERATIONS; TRANSPORTING
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Nanoparticle-treated particle packs, such as sand beds, may effectively filter and purify liquids such as waste water. When tiny contaminant particles in waste water flow through the particle pack, the nanoparticles will capture and hold the tiny contaminant particles within the pack due to the nanoparticles' surface forces, including, but not necessarily limited to van der Waals and electrostatic forces. Coating agents may help apply the nanoparticles to the particle surfaces in the filter beds or packs.
Claims
1. A method for purifying an aqueous liquid containing contaminant particles, the method comprising: contacting said aqueous liquid containing contaminant particles selected from a group consisting of sediments, soil particles, and mining particles with a particle pack comprising substrate particles and comparatively smaller particulate additives; where the substrate particles are comparatively larger than the particulate additive and are sand, where the particle pack is at least partially coated with a coating agent comprising alcohol, where the particulate additives have a mean particle size from about 4 nm to about 500 nm and are comprised of calcium oxide; and attracting said contaminant particles from the aqueous liquid to the particulate additive to purify the aqueous liquid.
2. The method of claim 1 where the effective amount of the particulate additives ranges from about 1 part by weight particulate additive for about 200 to about 5000 parts by weight of the particle pack.
3. The method of claim 1 where the mean particle size of the substrate particles in the particle pack ranges from about 2000 microns to about 45 microns.
4. A method for purifying aqueous fluids containing contaminant particles, the method comprising: contacting said aqueous liquid containing contaminant particles selected from a group consisting of sediments, soil particles, and mining particles with a particle pack comprising substrate particles and comparatively smaller particulate additives; where the substrate particles are comparatively larger than the particulate additive, have a mean particle size of from about 2000 microns to about 45 microns and are sand, where the particle pack is at least partially coated with a coating agent comprising alcohol, where the particulate additives have a mean particle size of 1000 nm or less and are comprised of calcium oxide; where the particulate additive ranges from about 1 part by weight for about 200 to about 5000 parts by weight of the particle pack; and attracting said contaminant particles from the aqueous liquid to the particulate additive to purify the aqueous liquid.
5. The method of claim 4 where the mean particle size of the particulate additives is from about 4 nm to about 500 nm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) Methods and compositions of nanoparticle-treated sand beds have been discovered as useful to purify waste water. When tiny contaminant particles in waste water flow through a nanoparticle-treated sand bed, the nanoparticles will capture and hold the tiny contaminant particles in the sand bed by the nanoparticles' surface forces, including but not necessarily limited to, van der Waals and electrostatic forces, thereby removing them from the liquid. The contaminants or impurities may include, but not necessarily be limited to, sediments, soil particles, mining particles, water treatment particles, and the like. In one non-limiting embodiment the treated fluids are aqueous, by which is meant they contain water; in a non-restrictive, alternative embodiment the aqueous fluids are at least 50 weight % water, alternatively at least 30 wt % water. The purified water may thus be used as injection water in underground hydrocarbon reservoirs to effectively recover hydrocarbons, or as municipal water for continued purification for human consumption.
(8) It has been discovered that nano-sized particles like magnesium oxide (MgO) may be used to remove contaminants such as clay and non-clay particles from liquids, that is, to remove, reduce or rid them from being present in the fluid, such as water. Some nano-sized particles, also called nanoparticles herein, not only have high surface areas compared to their small sizes, but also have relatively high surface charges that permit them to associate, link or connect other particles together, including other charged particles, but also other non-charged particles. In one non-limiting embodiment, these associations or connections between the contaminant particles and the nano-sized particles are due to electrical attractions and other intermolecular forces or effects.
(9) As will be shown, laboratory tests have demonstrated that relatively small amounts of MgO nanoparticles can remove and eliminate dispersed clay particles. It is expected that charged and non-charged colloidal silicas will also be removed. Other nanoparticles such as ZnO, Al.sub.2O.sub.3, zirconium dioxide (ZrO.sub.2), TiO.sub.2, cobalt (II) oxide (CoO), nickel (II) oxide (NiO), and pyroelectric and piezoelectric crystals may also be used in the methods and compositions herein.
(10) The nanoparticles may be applied directly to and placed on and in a particulate pack, such as a sand bed, typically by contacting the pack or bed with a fluid in which the nanoparticles are suspended. In one embodiment, a mixture of a coating agent and nanoparticles at least partially coat the selected sand bed or other porous media (substrate particles). If sand or gravel is at least partially coated with the coating agent and the nanoparticles, then the contaminants and impurities may be removed from the fluid, e.g. wastewater, and may be eliminated or suppressed thereby purifying the fluid.
(11) The coating agent may be a carrier fluid that includes, but is not necessarily limited to, an alcohol, glycol, polyol, vegetable oil, fish oil and combinations thereof. One particularly suitable carrier fluid may be monopropylene glycol. Alternatively, suitable coating agents include, but are not necessarily limited to, mineral oil or other hydrocarbon that accomplishes the purposes of the methods and compositions described herein. Specific, non-limiting examples of suitable mineral oils include ConocoPhillips PURE PERFORMANCE Base Oils II or III, such as 225N, 600N, ULTRA-S 3 and ULTRA-S 8; Penreco DRAKEOL oils, such as DRAKEOL 21, DRAKEOL 35 and DRAKEOL 600; and ExxonMobil Chemical mineral oils, such as EXXSOL D80 and ISOPAR M oils. It is expected that a filtering or purification product will include nanoparticles in the coating agent oil, for instance about 15 wt % nano-sized MgO particles in the Drakeol 600 mineral oil. It has been discovered that during mixing with the particles of the pack or bed, the nanoparticles in oil, glycol, or other carrier will plate out on or at least partially coat the substrate particles. How much coating of the substrate particles that occurs is concentration dependant, based on both the amount of particles, e.g. sand, used and the amount of nanoparticles used. In a non-limiting example, the carrier fluid may additionally have a surfactant present, such as an oil-wetting surfactant like sorbitan monooleate (i.e. SPAN 80 from Uniqema), to improve and/or enhance the oil-wetting of the pack or bed substrate particles by the nanoparticles. In another non-limiting example, the presence of a surfactant may preferentially reduce the thickness of the DRAKEOL 600 mineral oil layer on the sand pack particles. Reduced oil layer thickness may enhance nanoparticle exposure on the sand or ceramic particles. Use of lower viscosity mineral oils, such as DRAKEOL 15, DRAKEOL 18 or EXXSOL D80 can also be used to reduce oil layer thickness. Other agents besides SPAN 80 may be employed to optimize the oil coating or wetting or thickness on the sand pack or ceramic bed particles, agents such as: sorbitan esters, ethoxylated sorbitan esters, ethoxylated alcohols, ethoxylated alkyl-phenols, alkyl-dicarboxylics, sulfosuccinates, phospholipids, alkyl-amines, quaternary amines, alkyl-siloxanes, and the like. It is not necessary that a resin be used as a coating agent or binder, and in one non-limiting embodiment, no resin is used.
(12) It is theorized that the nanoparticles remain on the particles of the particle pack primarily by electrostatic and other charges between the nanoparticle and particle surfaces, however, other attractions or coupling forces may exist to initially and over the long-term keep the nanoparticles coated on the pack or bed substrate particles. The inventors do not want to be limited to any particular theory. It is suspected that in most conditions the carrier fluid only assists the initial coating process of the nanoparticles on to the substrate particles of the pack or bed. However, other agents may be added to the carrier fluid that may further enhance the initial and/or long-term nanoparticle attraction to the sand (silica or quartz or feldspars), glass, ceramic and the like particles.
(13) Nano-sized particles of alkaline earth metal oxides, alkaline earth metal hydroxides, alkali metal oxides, alkali metal hydroxides, transition metal oxides, transition metal hydroxides, post-transition metal oxides, and post-transition metal hydroxides, piezoelectric crystals, pyroelectric crystals, and mixtures thereof have been discovered to have particular advantages for filtering out and binding up impurities and contaminants, thereby purifying fluids.
(14) Magnesium oxide particles and powders have been suitably used to filter fluids herein. However, it will be appreciated that although MgO particles are noted throughout the description herein as one representative or suitable type of alkaline earth metal oxide and/or alkaline earth metal hydroxide particle, other alkaline earth metal oxides and/or alkaline earth metal hydroxides and/or transition metal oxides, transition metal hydroxides, post-transition metal oxides, and post-transition metal hydroxides, piezoelectric crystals, pyroelectric crystals, may be used in the methods and compositions herein. Additionally, the alkali metal oxides and/or hydroxides may be used alone or in combination with the alkaline earth metal oxides and hydroxides, and/or together with one or more transition metal oxide, transition metal hydroxide, post-transition metal oxide, post-transition metal hydroxide, piezoelectric crystal, and pyroelectric crystal.
(15) By post-transition metal is meant one or more of aluminum, gallium, indium, tin, thallium, lead and bismuth. In another non-limiting embodiment herein, the nano-sized particles are oxides and hydroxides of elements of Groups IA, IIA, IVA, IIB and IIIB of the previous IUPAC American Group notation. These elements include, but are not necessarily limited to, Na, K, Mg, Ca, Ti, Zn and/or Al. In one non-limiting embodiment, there is an absence of alumina (aluminum oxide) and/or aluminum hydroxide from the suitable nanoparticles.
(16) The nano-sized particulate additives herein may also be piezoelectric crystal particles (which include pyroelectric crystal particles). Pyroelectric crystals generate electrical charges when heated and piezoelectric crystals generate electrical charges when squeezed, compressed or pressed.
(17) In one non-limiting embodiment, specific suitable piezoelectric crystal particles may include, but are not necessarily limited to, ZnO, berlinite (AlPO.sub.4), lithium tantalate (LiTaO.sub.3), gallium orthophosphate (GaPO.sub.4), BaTiO.sub.3, SrTiO.sub.3, PbZrTiO3, KNbO.sub.3, LiNbO.sub.3, LiTaO.sub.3, BiFeO.sub.3, sodium tungstate, Ba.sub.2NaNb.sub.5O.sub.5, Pb.sub.2KNb.sub.5O.sub.15, potassium sodium tartrate, tourmaline, topaz and mixtures thereof. The total pyroelectric coefficient of ZnO is 9.4 C/m.sup.2K. ZnO and these other crystals are generally not water soluble.
(18) In one non-restrictive explanation, when the particle pack or sand bed contains very small pyroelectric crystals, such as nano-sized ZnO, the pyroelectric crystals may be heated and/or pressed and high surface charges are generated. The surface charges may be generated or produced if the fluid is under pressure. These surface charges permit the crystal particles to associate, link, connect or otherwise relate the impurities and contaminants together to bind them together and also to the surrounding particle pack or sand surfaces. The association or relation of the impurities or contaminants is thought to be very roughly analogous to the crosslinking of polymer molecules by crosslinkers, in one non-limiting image.
(19) In another non-limiting embodiment, the nano-sized solid particulates and powders useful herein include, but are not necessarily limited to, alkaline earth metal oxides or alkaline earth metal hydroxides, or mixtures thereof. In one non-limiting embodiment, the alkaline earth metal in these additives may include, but are not necessarily limited to, magnesium, calcium, barium, strontium, combinations thereof and the like. In one non-limiting embodiment, MgO may be obtained in high purity of at least 95 wt %, where the balance may be impurities such as Mg(OH).sub.2, CaO, Ca(OH).sub.2, SiO.sub.2, Al.sub.2O.sub.3, and the like.
(20) In an additional non-restrictive version, the particle size of the additives and agents ranges between about 4 nanometers independently up to about 1000 nanometers. In another non-limiting embodiment, the particle size ranges between about 4 nanometers independently up to about 500 nanometers. In another non-restrictive version, the particles may have a mean particle size of about 250 nm or less, alternatively about 100 nm or less, and in another possible version about 50 nm or less, alternatively 40 nm or less.
(21) The amount of nano-sized particles in the sand or ceramic bed pack material may be from about 1 pound of nanoparticles for about 200 pounds to 5000 pounds of sand. It will be appreciated that any other unit of weight may be used, for instance, from about 1 gram of nanoparticles for about 200 grams to 5000 grams of sand. In an alternate embodiment, the nanoparticles are present in an amount of from about 1 part by weight nanoparticles to about 1000 independently to about 2000 parts sand or ceramic pack material.
(22) The nano-sized particles herein may be added to water, a glycol, alcohol, polyol, olefin, vegetable oil, fish oil, or mineral oil, or mixtures of these, as the carrier fluida combination which also serves to initially coat, or at least partially coat, the nanoparticles to the sand or ceramic. In another non-limiting embodiment, the nano-sized particles coated on ceramic particles or sand herein may be added to an aqueous fluid during a treatment.
(23) The sand, ceramic, glass or other substrate particles of the pack or bed may have a mean particle size of the particles of from about 10 mesh to about 325 mesh (about 2000 microns to about 45 microns), in one non-limiting embodiment. Alternatively, the substrate particles may range in size from about 20 mesh independently to about 200 mesh (from about 850 microns independently to about 75 microns). The substrate particle size range may be wide, such as from about 40 mesh to about 200 mesh (from about 425 microns to about 250 microns), or the particle size range may be relatively narrow, such as from about 20 mesh to about 40 mesh (from about 850 microns to about 425 microns).
(24) In another non-limiting version, the nanoparticles may be coated on ceramic or sand at a supplier facility before use in a fluid purifying treatment. In a different non-limiting embodiment, a select portion of the sand or ceramic may be lightly coated with carrier fluid containing nanoparticles during a treatment, or before a fluid purification or clarification treatment. It has been discovered that PG-coated nanoparticles tend to be attached to, adhered to, or bound to the ceramic particles or sand.
(25) Laboratory tests have shown that 35 nanometer MgO particles and monopropylene glycol (PG) coated on a 20/40 mesh (850/425 micron) sand pack can successfully remove contaminants from wastewater.
(26) While the methods and structures herein are sometimes described typically herein as having use in wastewater fluids, such as those from paper processing, the compositions and methods are also expected to be useful in oil field recovery, e.g. produced formation water, exhausted drilling muds, metal-working, agricultural operations, mining operations, environmental remediation operations, waste disposal operations, cleaning operations, manufacturing operations and the like.
(27) The invention will be further described with respect to the following Examples which are not meant to limit the invention, but rather to further illustrate a few of the various embodiments.
EXAMPLES
(28) Laboratory sand pack tests (20/40 mesh or 850/425 micron) with and without nanoparticles treatment show that nanoparticle-treated sand packs may capture and hold tiny particles that cloud a simulated wastewater. A simulated wastewater was prepared with 0.25% by weight (bw) natural bentonite and 0.25% bw illite in water. The graph of particle size distribution (PSD) for bentonite is shown in
COMPARATIVE EXAMPLE 1
(29) A test without a nanoparticle-treated sand pack demonstrates that cloudy water flows into the pack, and essentially the same cloudy water flows out of the pack.
INVENTIVE EXAMPLE 2
(30)
(31) Rev Dust (the mean particle size was about 20 microns and it contained 12% quartz, 7% cristobalite, 4% illite, 29% mixed layers, 26% kaolinite, and 22% chlorite) was used as another simulated wastewater for tests like Example 1 and 2. The results are the same as that of bentonite and illite wastewater flowing through the sand pack. These Rev Dust particles were clearly and easily removed.
(32) The nanoparticles were 35 nm MgO, product #12N-0801 available from Inframat Advanced Materials. The procedure for making the nanoparticles-treated sand pack was as follows: 1. Mixed the nanoparticles with 99.8 wt % monopropylene glycol to make 2 pound per gallon (ppg) (0.2 kg/liter) (2 pounds (0.9 kg) nanoparticles in one gallon monopropylene glycol) suspension (nano-fluid). 2. Added 2.5 ml of the nano-fluid from step 1 into 250 grams of 20/40 mesh (850/425 micron) sand in a bottle, and shook the bottle several minutes to make the sand uniformly coated by the nano-fluid. 3. Poured the treated sand into a one-inch (2.54 cm) inner diameter (ID) acrylic tube to form the sand pack for testing.
(33) After 90 ml of the particle-containing, highly-concentrated cloudy water was passed through the treated sand pack, clean, clear water still flowed out of the pack.
REGENERATIVE EXAMPLE 3
(34) A process of regenerating the sand or ceramic particle bed may include using a lightly acidic water to strip the nanoparticles and trapped/fixed sediments, contaminants or impurities from the bed pack. In one non-restrictive version, the acidic water may be 1.0% HCl or 2% citric acid in tap water to dose the bed pack. Then, new nanoparticles would be placed back onto the bed pack, again as a dose treatment fluid composed of nanoparticles product added to tap water or glycol or the like to re-coat or re-plate the nanoparticles onto the bed pack particles or materials. The nanoparticles product may be a glycol, such as propylene glycol, as mentioned, or a USP or technical grade mineral oil slurry product.
(35) The acidic stripping fluid, once it removes the nanoparticles and trapped/fixated sediments, would need appropriate conditioning and/or disposal. If the trapped sediments are simply river sediments, like soil particles, then the acidic waste could simply be neutralized (for instance with sodium bicarbonate (baking soda) or other common material), and would then be a non-hazardous material, relatively easy to dispose of. However, if there are heavy metals and the like, for instance, toxic components to the sediments that were trapped or captured (e.g. toxic elements, compounds, contaminated soil particles, etc.) by the fixation of the nanoparticles, then once stripped by the acidic water, the stripping fluid would need appropriate handling, conditioning and/or disposal.
(36) In the foregoing specification, it will be evident that various modifications and changes may be made thereto without departing from the broader spirit or scope of the invention as set forth in the appended claims. Accordingly, the specification is to be regarded in an illustrative rather than a restrictive sense. For example, specific combinations of alkaline earth metal oxides, alkaline earth metal hydroxides, alkali metal oxides, alkali metal hydroxides, transition metal oxides, transition metal hydroxides, post-transition metal oxides, post-transition metal hydroxides, piezoelectric crystals, and pyroelectric crystals, of various sizes; brines; base fluids; bed and pack particles (sand, ceramic or glass beads, gravel); coating agents (glycols, alcohols, mineral oils) and other components falling within the claimed parameters, but not specifically identified or tried in a particular composition, are anticipated to be within the scope of this invention.
(37) The present invention may suitably comprise, consist or consist essentially of the elements disclosed and may be practiced in the absence of an element not disclosed.
(38) The words comprising and comprises as used throughout the claims is to interpreted including but not limited to.