MULTICOLUMN FILTRATION SYSTEM FOR PROCESSING INDUSTRIAL WASTEWATER
20220106202 · 2022-04-07
Assignee
Inventors
Cpc classification
International classification
Abstract
Disclosed herein is a multicolumn filtration assembly for processing industrial wastewater. The multicolumn filtration assembly comprises: (i) a water inlet tee element interconnected with a bypass line and a water outlet manifold; (ii) a valve interposed the water inlet tee element and the bypass line; (iii) a water inlet manifold interconnected with the bypass line; and (iii) a plurality of water filtration columns interposed the water inlet manifold and the water outlet manifold wherein each of the plurality of water filtration columns has a first valve for controlling water inflow from the water inlet manifold and a second valve for controlling water outflow into the water outlet manifold. Also disclosed are multistage multicolumn fluid filtration systems and fluid treatment systems comprising multicolumn filtration assemblies.
Claims
1. A multicolumn fluid filtration assembly, comprising: a fluid inlet tee element interconnected with a bypass line and a fluid outlet manifold; a valve interposed the fluid inlet tee element and the bypass line; a fluid inlet manifold interconnected with the bypass line; and a plurality of fluid filtration columns interposed the fluid inlet manifold and the fluid outlet manifold wherein each of the plurality of fluid filtration columns has a first valve for controlling fluid inflow from the fluid inlet manifold and a second valve for controlling fluid outflow into the fluid outlet manifold.
2. A multicolumn filtration assembly according to claim 1, wherein each of the plurality of fluid filtration columns is provided with a differential pressure gauge to detect a rate of flow out of the each of the plurality of fluid filtration columns.
3. A multicolumn filtration assembly according to claim 1, wherein each of the plurality of fluid filtration columns is provided with a pair of flow-rate sensors, wherein a first flow-rate sensor is configured to detect a rate of flow into and a second flow-rate sensor is configured to detect a rate of flow out of the each of the plurality of fluid filtration columns.
4. A multicolumn filtration assembly according to claim 1, wherein the multicolumn filtration assembly is mounted onto a transportable skid.
5. A multicolumn filtration assembly according to claim 4, wherein the transportable skid is provided with an enclosure for housing therein the multicolumn filtration assembly.
6. A multicolumn filtration assembly according to claim 1, wherein the fluid inlet tee element is sealably engaged with two bypass lines, wherein: a first bypass line is interconnected with a first fluid inlet manifold, said first fluid inlet interconnected with a first plurality of fluid filtration columns, said first plurality of fluid filtration columns interconnected with a first fluid outlet manifold, wherein each of the plurality of fluid filtration columns has a first valve for controlling fluid inflow from the first fluid inlet manifold and a second valve for controlling fluid outflow into the first fluid outlet manifold; a second bypass line is interconnected with a second fluid inlet manifold, said second fluid inlet interconnected with a second plurality of fluid filtration columns, said second plurality of fluid filtration columns interconnected with a second fluid outlet manifold, wherein each of the second plurality of fluid filtration columns has a first valve for controlling fluid inflow from the second fluid inlet manifold and a second valve for controlling fluid outflow into the second fluid outlet manifold; a first valve is interposed the fluid inlet tee element and the first bypass line; and a second valve is interposed the fluid inlet tee element and the second bypass line.
7. A multicolumn filtration assembly according to claim 1, wherein the fluid inlet tee element is interconnected with two bypass lines, wherein: a first bypass line is interconnected with a first fluid inlet manifold, said first fluid inlet interconnected with a first plurality of fluid filtration columns, said first plurality of fluid filtration columns interconnected with a first fluid outlet manifold, wherein each of the plurality of fluid filtration columns has a first valve for controlling fluid inflow from the first fluid inlet manifold and a second valve for controlling fluid outflow into the first fluid outlet manifold; a second bypass line is interconnected with a second fluid inlet manifold, said second fluid inlet interconnected with a second plurality of fluid filtration columns, said second plurality of fluid filtration columns interconnected with the first fluid outlet manifold, wherein each of the second plurality of fluid filtration columns has a first valve for controlling fluid inflow from the second fluid inlet manifold and a second valve for controlling fluid outflow into the first fluid outlet manifold; a first valve is interposed the fluid inlet tee element and the first bypass line; and a second valve is interposed the fluid inlet tee element and the second bypass line.
8. A multistage, multicolumn fluid filtration assembly, comprising: a first fluid filtration assembly according to claim 1; and a second fluid filtration assembly according to claim 1, wherein the first and second fluid filtration assemblies are adapted to operably connect to each other in that the fluid outlet manifold of the first fluid filtration assembly is interconnected with the bypass line of the second first fluid filtration assembly and with the outlet manifold of the second first fluid filtration assembly, and in that the fluid inlet manifold of the first fluid filtration assembly is interconnected with the fluid inlet manifold of the second fluid filtration assembly; and wherein a valve is interposed: the fluid outlet manifold of the first fluid filtration assembly and the bypass line of the second first fluid filtration assembly; the fluid outlet manifold of the first fluid filtration assembly and the outlet manifold of the second assembly; and the fluid inlet manifold of the first fluid filtration assembly and the fluid inlet manifold of the second fluid filtration assembly.
9. A fluid treatment system comprising fluid filtration assembly according to claim 1 operably connected to one or more additional fluid treatment equipment.
10. The fluid treatment system of claim 9, wherein the one or more additional fluid treatment equipment comprises a reverse osmosis system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Embodiments of the present disclosure will be described in conjunction with reference to the following drawings, in which:
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DETAILED DESCRIPTION
[0030] The embodiments of the present disclosure generally relate to multicolumn fluid filtration apparatus and assemblies that can be operated continuously to clean-up and polish untreated or primary-treated fluids captured and collected from various industrial operations. The embodiments disclosed herein are particularly suitable for, for example, high-volume continuous throughput of fluid collected and captured from hydraulic fracking operations, fluid collected and captured from steam-assisted gravity drainage (SAGD) operations, fluid captured and collected from mining operations, fluid captured and collected from agricultural operations, or fluid that has been contaminated as a result of destruction caused by a natural disaster. The fluid may be, for example and without limitation, wastewater, freshwater (e.g. lake water), contaminated water, turbid water, primary-treated produced water, or tailings.
[0031] One embodiment disclosed herein pertains to a multicolumn fluid filtration assemblies that comprise at least (i) a manifold system comprising a fluid inlet tee element connected to a bypass line interconnected with a fluid inlet manifold, and a fluid outlet manifold, (ii) a plurality of fluid filtration columns wherein each of the fluid filtration columns is connected at one end with the fluid inlet manifold, and at the other end with the fluid outlet manifold. A manifold valve is provided at the juncture of the fluid tee element and the fluid outlet manifold for use to controllably direct the incoming flow of fluid into the bypass line connected to the fluid inlet manifold, or alternatively into the fluid outlet manifold. Each fluid filtration column is provided with a first valve (inflow valve) at its juncture with the fluid inlet manifold and a second valve (outflow valve) at its juncture with the fluid outlet manifold. The present fluid filtration columns are suitably dimensioned and configured to receive therein a suitable filter cartridge of the type that is commonly used with filter pots. The fluid filtration columns may also be configured as a multi-pot unit, with each fluid filtration column containing, for example, up to 24 filter cartridges. In a further example, each multi-pot fluid filtration column may be configured to contain two or three or four or five or six or seven or eight or nine or ten filter cartridges. In an alternative example, each multiple-pot fluid filtration column may be configured to contain eleven or twelve or thirteen or fourteen or sixteen or seventeen or eighteen or nineteen or twenty or twenty-one or twenty-two or twenty-three or twenty-four filter cartridges. Such configurations may provide increased filtering efficiency as well as longevity of the filter cartridges. Examples of suitable filter cartridges include those available from Clean Harbors Inc. through their distribution outlets known as JL Filtration Inc., from ESG Filtration Ltd., from ISI Water, and the like.
[0032] When a multicolumn fluid filtration assembly according to the present disclosure is interconnected to a supply of fluid (e.g. primary-treated wastewater) and to an outlet for the cleaned-up polished fluid, the manifold valve may be positioned to direct the flow of incoming fluid through the bypass line into the fluid inlet manifold. Each of the plurality of fluid filtration columns has its inflow and outflow valves in an open position. The incoming fluid flows from the fluid inlet manifold through the plurality of fluid filtration columns into the fluid outflow manifold after which, the cleaned-up and polished fluid flows out of the multicolumn fluid filtration assembly. While not necessary, it is suitable to provide flow rate meters at the inlet end and outlet end of each fluid filtration column to enable monitoring of filter cartridge performance and condition. When the rate of fluid flow through a fluid filtration column is impeded below a set threshold flowrate, the fluid filtration column can be taken offline and isolated by closing its inlet and outlet valves after which, the column cap may be removed, the used filter cartridge removed and replaced with a fresh cartridge. The column cap is then sealingly reengaged with the fluid filtration column, the inlet and outlet valves opened thereby bringing the serviced fluid filtration column back online to receive therethrough a supply of fluid.
[0033] It is within the scope of this disclosure to provide each fluid filtration column with a differential pressure gauge for monitoring the pressure changes in the fluid flowing into the fluid filtration column and fluid flowing out of the fluid filtration column. It is within the scope of the present disclosure to alternatively provide a pair of fluid-flow-rate sensors wherein a first sensor is positioned about the fluid inlet of the column and a second sensor is positioned about the fluid outlet of the column. The pair of fluid-flow-rate sensors may continuously transmit electronic data by wireless means or by wired means, to a monitoring device that may continuously record the rate of flow of fluid through the column. The monitoring device may be configured to provide visual and downloadable time-based reports and report summaries regarding changes in the rate of flow of fluid through the column. The monitoring device may also be configured to issue an alert if the rate of flow of fluid through the column falls below a set threshold level. The alert may be an audible alert, or an alert that is visible on an alert device provided on the column, or an alert that is transmitted to a portable receiver such as personal handheld device.
[0034] It is to be noted that as used herein, the term “plurality of fluid filtration columns” means two or more fluid filtration columns connected in parallel to the fluid inlet manifold and the fluid outlet manifold. For example, “plurality” may mean two or three or four or five or six or seven or eight or nine or ten or eleven or twelve or thirteen or fourteen or fifteen or sixteen or seventeen or eighteen or more fluid filtration columns each connected in parallel to the fluid inlet manifold and the fluid outlet manifold.
[0035] The configuration of a plurality of fluid filtration columns, each connected in parallel to the fluid inlet manifold and the fluid outlet manifold, allows continuous flow of, for example, primary-treated wastewater through the multicolumn fluid filtration assemblies disclosed herein whilst one or more individual fluid filtration columns are taken offline for service to remove and replace clogged filter cartridges thereby facilitating increased production of cleaned-up and polished fluid suitable for recycling and concurrently eliminating shut-downs to service filtration equipment during ongoing operations. An example of an embodiment of the present disclosure is illustrated in
[0036] It is within the scope of the present disclosure to mount the multicolumn fluid filtration assemblies disclosed herein, onto transportable skids that are mountable onto the frameworks of heavy-duty over-the-road trucks or alternatively, onto the decks or frameworks of trailers towable by 1-ton trucks, heavier-duty trucks, and heavy-duty over-the-road truck tractors. An example of suitable transportable skids is illustrated in
[0037] It is within the scope of the present disclosure to additionally provide enclosures engaged with the skids and perimeter housing into which the multicolumn fluid filtration assemblies disclosed herein are mounted. Suitable enclosures include external walls and roofing configured with polyurethane metal-clad panels Suitable polyurethane metal-clad panels are available from, for example, Metalex Metal Buildings Inc. (Stettler, AB, CA), A Better Panel Inc. (Innisfail AB, CA), Canalta Panels Lt.d (Vegreville, AB. CA). An example of a suitable enclosure 40 comprising 1½″ (3.81 cm) polyurethane metal-clad panels is illustrated in
[0038] It is to be noted that while the preceding example disclosed a multicolumn fluid filtration assembly having a single fluid inlet manifold and a single fluid outlet manifold interconnected with twelve fluid filtration columns, wherein one or more of the twelve fluid filtration columns may be separated, isolated and serviced while pressurized fluid flow is maintained through the remaining fluid filtration columns, it is within the scope of the present disclosure to provide less than twelve fluid filtration columns. For example, eleven or ten or nine or eight or seven or six or five or four or three or two fluid filtration columns. It is also within the scope of the present disclosure to provide more that twelve fluid filtration columns interconnecting the fluid inlet manifold and the fluid outlet manifold, for example thirteen or fourteen or fifteen or sixteen or seventeen or eighteen or more fluid filtration columns. Those skilled in this art will understand that a single fluid inlet manifold and a single fluid outlet manifold interconnected with twelve fluid filtration columns as described in the previous example, will conveniently fit onto a transportable skid provided with a perimeter housing and enclosure, that can be securely engaged to the framework of a heavy-duty over-the-road truck and alternatively, to a trailer deck towable by a heavy-duty over-the-road truck tractor.
[0039] Although the foregoing has been described in some detail by way of illustration and example for purposes of clarity of understanding, it is readily apparent to those of ordinary skill in the art in light of the teachings of the present disclosure that certain changes and modifications may be made thereto without departing from the spirit or scope of the appended claims.
[0040] For example, the preceding example illustrated one embodiment of the multicolumn fluid filtration assemblies disclosed herein having 10″-dia. (25.4 cm dia.) fluid throughput tees for the inlet and outlet manifolds, wherein the inlet and outlet manifolds are fitted with 4″-dia. (10.2 cm dia.) inlet and outlet tees for interconnection with 8″-dia. (20.3 cm dia.) fluid filtration columns fitted with 4″-dia. (10.2 cm dia.) inlet and outlet tees. However, those skilled in these arts will understand that smaller-scale multicolumn fluid filtration assemblies are possible. One example may have 8″-dia. (20.3 cm dia.) fluid throughput tees for the inlet and outlet manifolds, wherein the inlet and outlet manifolds are fitted with 4″-dia. (10.2 cm dia.) inlet and outlet tees for interconnection with 8″-dia. (20.3 cm dia.) fluid filtration columns fitted with 4″-dia. (10.2 cm dia.) inlet and outlet tees. Alternatively, the 8″-dia. (20.3 cm dia.) water throughput tees for the inlet and outlet manifolds may be fitted with 3″-dia. (7.62 cm dia.) inlet and outlet tees for interconnection with fluid filtration columns having 3″-dia. (7.62 cm dia.) inlet and outlet tees. Another example may have 6″-dia. (15.2 cm dia.) fluid throughput tees for the inlet and outlet manifolds, wherein the inlet and outlet manifolds are fitted with 3″-dia. (7.62 cm dia.) inlet and outlet tees for interconnection with 6″-dia. (15.2 cm dia.) fluid filtration columns fitted with 3″-dia. (7.62 cm dia.) inlet and outlet tees.
[0041] Those skilled in these arts will understand that fluid will have to be pumped into the multicolumn fluid filtration assembly under pressure. The pumps may be stationary or transportable. Examples of suitable pumps include (i) 6″×6″ (15.2 cm×15.2 cm) 127 HP pumps that provide flowrates of 7 m.sup.3/min, (ii) 8″×6″ (20.3 cm×15.2 cm) 550 HP pumps that provide flowrates of 12 m.sup.3/min, (iii) 10″×8″ (25.4 cm×20.3 cm) 375 HP that provide flowrates of 12 m.sup.3/min.
[0042] It is also to be noted that while the preceding example illustrated in
[0043] Another embodiment of the present disclosure relates to a multicolumn fluid filtration assembly having a pair of fluid inlet manifolds and a pair of fluid outlet manifolds interconnected with pluralities of fluid filtration columns. One example comprises a single fluid inlet tee that is connected to two bypass lines wherein each bypass line is interconnected with a separate fluid inlet manifold. Each separate fluid inlet manifold is interconnected with a plurality of fluid filtration columns that are connected with a corresponding fluid outlet manifold, i.e., two sets of fluid inlet and outlet manifolds. In this example, each set of inlet/outlet manifolds is interconnected, preferably, by six fluid filtration columns. However, each set of inlet/outlet manifolds may be interconnected by five or four or three or two fluid filtration columns. Alternatively, each set of inlet/outlet manifolds may be interconnected by seven or eight or nine or more fluid filtration columns. One example comprises a single fluid inlet tee that is connected to two bypass lines wherein each bypass line is interconnected with a separate fluid inlet manifold. Each separate fluid inlet manifold is interconnected with a plurality of fluid filtration columns that are connected with a corresponding fluid outlet manifold, i.e., two sets of fluid inlet and outlet manifolds. In this example, each set of inlet/outlet manifolds is interconnected, preferably, by six fluid filtration columns. However, each set of inlet/outlet manifolds may be interconnected by five or four or three or two fluid filtration columns. Alternatively, each set of inlet/outlet manifolds may be interconnected by seven or eight or nine or more fluid filtration columns. Another example comprises a single fluid inlet tee that is connected to three bypass lines wherein each bypass line is interconnected with a separate fluid inlet manifold. Each separate fluid inlet manifold is interconnected with a plurality of fluid filtration columns that are connected with a corresponding fluid outlet manifold, i.e., three sets of water inlet and outlet manifolds. In this example, each set of inlet/outlet manifolds is interconnected, preferably, by four fluid filtration columns. However, each of the three sets of inlet/outlet manifolds may be interconnected by three or two fluid filtration columns. Alternatively, each of the three sets of inlet/outlet manifolds may be interconnected by five or six or more fluid filtration columns.
[0044] It is within the scope of this disclosure to configure a multicolumn fluid filtration assembly receiving a supply of fluid, with two fluid inlet manifolds and a single fluid outlet manifold wherein each of the fluid inlet manifolds is interconnected to the fluid outlet manifold with a plurality of fluid purification columns. An example of this embodiment is illustrated in
[0045] It is noted that the pipes used in the assemblies of the present disclosure may be of any suitable diameter. In some configurations, the pipes have a diameter in the range of 2″ (5.08 cm) to 36″ (91.4 cm). For example, the pipes may have a diameter of 2″ (5.08 cm) or 3″ (7.62 cm) or 4″ (10.2 cm) or 6″ (15.2 cm) or 8″ (20.3 cm) or 10″ (25.4 cm) or 12″ (30.5 cm) or 14″ (35.6 cm) or 16″ (40.6 cm) or 18″ (45.7 cm) or 20″ (50.8 cm) or 22″ (55.9 cm) or 24″ (61.0 cm) or 26″ (66.0 cm) or 28″ (71.1 cm) or 30″ (76.2 cm) or 32″ (81.3 cm) or 36″ (91.4 cm). Further, it is optional for the configurations described herein, if so desired, to provide a fluid outlet manifold having a larger internal diameter than the diameters of the fluid inlet diameters. For example, if the fluid inlet manifold diameters are 10″ (25.4 cm), then the fluid outlet manifold may have a diameter of 12″ (30.5 cm) or 14″ (35.6 cm) or 16″ (40.6 cm). If the fluid inlet manifold diameters are 8″ (20.3 cm), then the fluid outlet manifold may have a diameter of 10″ (25.4 cm) or 12″ (30.5 cm) or 14″ (35.6 cm). If the fluid inlet manifold diameters are 6″ (15.2 cm), then the fluid outlet manifold may have a diameter of 8″ (20.3 cm) or 10″ (25.4 cm) or 12″ (30.5 cm).
[0046] It is also within the scope of this disclosure to configure a multistage, multicolumn fluid filtration assembly. The multistage, multicolumn fluid filtration assembly may a first multicolumn fluid filtration assembly (i.e. a first stage) and a second multicolumn fluid assembly (i.e. a second stage). The first and second multicolumn fluid assemblies may have any configuration previously disclosed herein (e.g. any number of bypass lines, fluid inlet manifolds, fluid filtration columns, fluid outlet manifolds, fitting and pipe sizes, etc.), while being adapted to operatively connect to each other.
[0047] The first and second multicolumn fluid filtration assemblies may be operatively connected to the second multicolumn fluid filtration assembly using a variety of configurations. For example, each fluid outlet manifold of the first multicolumn fluid filtration assembly may be separately interconnected with a corresponding fluid outlet manifold of the second multicolumn fluid filtration assembly. As well, each fluid outlet manifold of the first multicolumn fluid filtration assembly may also be interconnected with one or more bypass lines of the second multicolumn fluid filtration assembly. Each plurality of fluid filtration columns is interconnected with the fluid outlet manifold(s) of the second multicolumn fluid filtration assembly. A valve for controlling the inflow of fluid may interpose components of the first multicolumn fluid filtration assembly interconnected with the second multicolumn fluid filtration assembly that are interconnected.
[0048] In such configurations of multistage, multicolumn fluid filtration assemblies, the fluid may be selectively allowed to pass through the first and second stages using valves interposed the first multicolumn fluid filtration assembly and the second multicolumn fluid filtration assembly. For example, the incoming fluid may be filtered in the first stage and subsequently filtered in the second stage, or may optionally be sent directly to the fluid outlet manifold(s) of the second stage without filtering. Alternatively, incoming fluid may instead be sent directly to the fluid outlet manifold(s) of the first stage and filtered only in the second stage.
[0049] Further, the multistage, multicolumn fluid filtration assemblies of the present disclosure may also be configured such that each fluid inlet manifold of the first multicolumn fluid filtration assembly is separately interconnected with a corresponding fluid inlet manifold of the second multicolumn fluid filtration assembly. A valve for controlling the inflow of fluid may interpose fluid inlet manifolds of the first multicolumn fluid filtration assembly that are interconnected with those the fluid inlet manifolds of the second multicolumn fluid filtration assembly. Such configurations may allow the first stage and the second stage of the multistage, multicolumn fluid filtration assembly to selectively operate as a single-stage fluid filtration assembly. For example, incoming fluid may flow, to the fluid inlet manifold(s) of the first stage and subsequently to the fluid inlet manifold(s) of the second stage. Thus, the fluid, by way of the fluid inlet manifolds of the first and second stages, may be filtered through the plurality of fluid filtration columns of both the first and second stage simultaneously such that the multistage, multicolumn filtration assembly operates as a single-stage assembly.
[0050] The multistage, multicolumn fluid filtration assemblies of the present disclosure may therefore comprise multiple stages that are selectively operable simultaneously, individually, or sequentially. For example, fluid may be fed to the first stage and then to the second stage, to the first stage only, to the second stage only, or to the first and second stages simultaneously.
[0051] Further, as will be appreciated, the first and second stages of the multistage, multicolumn fluid filtration assemblies may be outfitted with different pluralities of fluid filtration columns. For example, the first stage may be configured for the filtration of coarse particles, while the second stage is configured for the filtration of fine particles.
[0052] For greater clarity, an example multistage, multicolumn fluid filtration assembly 200 is illustrated in
[0053] The first stage 210 is connected to the second stage 220 by way of the first fluid outlet manifold 250 and the fluid inlet manifolds 260a, 260b. In more detail, the first fluid outlet manifold 250 is connected by way of valves 320a, 320b to bypass lines 280a, 280b of the second stage 220 as well as to a second fluid outlet manifold 290 of the second stage 220 by way of a valve 330. As well, the fluid inlet manifolds 260a, 260b each connected by way of valves 340a, 340b to fluid inlet manifolds 300a, 300b, respectively, of the second stage 220.
[0054] The second stage 220 of the multistage, multicolumn fluid filtration assembly 200 is configured in a similar manner to the first stage 210. That is, each of fluid inlet manifolds 300a, 300b are connected to a plurality of fluid filtration columns 310a, 310b, which are in turn connected to the second fluid outlet manifold 290.
[0055] Thus, manipulation of the valves 320a, 320b, 330, 340a, 340b, and 350, allows for the selective use of the first stage 210 and second stage 220 of the multicolumn fluid filtration assembly 200. That is, the first stage first stage 210 and second stage 220 may be operated simultaneously, individually, or sequentially, as previously described herein.
[0056] Further, it is noted that while the present disclosure generally describes the multistage, multicolumn fluid filtration assembly as having two stages, the multistage, multicolumn fluid filtration may have more than two stages. For example, the multistage, multicolumn fluid filtration may comprise three or four or more stages, with each additional stage connected to a previous stage as described above.
[0057] Additionally, the multistage, multicolumn fluid filtration assembly may be sized so as to be capable of being skid-mounted and/or housed, in the same manner as the assemblies illustrated in
[0058] It is also within the scope of this disclosure to provide a fluid treatment system comprising a multicolumn fluid assembly of the present disclosure operably connected to one or more additional fluid processing equipment. For example, as illustrated in
[0059] As will be appreciated, reverse osmosis systems are generally used for the purification of fluids. Thus, interconnecting the multicolumn fluid filtration assemblies of the present disclosure to a reverse osmosis system may be particularly useful for applications such as producing potable water after, for example, a natural disaster has rendered a source of water unfit for consumption. In operation, the multicolumn fluid filtration assemblies of the present disclosure may remove particulate matter from the contaminated water, while the reverse osmosis system may subsequently render the water potable.
[0060] Additionally, while a reverse osmosis system is illustrated, the additional fluid processing equipment may be any equipment, system, or apparatus that may further treat or process the filtered fluid. Other suitable equipment includes, for example, UV treatment systems, boilers, chemical treatment apparatus, and the like.
[0061] Furthermore, the additional fluid treatment or processing equipment (e.g. the reverse osmosis system) may also be mountable on skids to facilitate their transport. This may allow for relatively easy transport of the multicolumn fluid filtration systems of the present disclosure along with the additional treatment or processing equipment to a job site (e.g. a remote location or area affected by a natural disaster) for their deployment.
[0062] Thus, in view of the configurations described above, while the filtration assemblies of the present disclosure have been generally described in relation to industries such as oil and gas, mining, and agriculture, and for use in applications such as civil or natural disaster response, it will be appreciated that the assemblies may be used in a wide variety of industries and/or applications. That is, the assemblies may be used in any industry or application that may require the high-throughput filtration of a fluid.
[0063] It must be noted that as used in this specification and the appended claims, the singular forms “a”, “an”, and “the” include plural reference unless the context clearly dictates otherwise. Unless defined otherwise all technical terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which the present disclosure belongs.
[0064] The phrase “and/or”, as used herein in the specification and in the claims, should be understood to mean “either or both” of the elements so conjoined, i.e., elements that are conjunctively present in some cases and disjunctively present in other cases. Multiple elements listed with “and/or” should be construed in the same fashion, i.e., “one or more” of the elements so conjoined. Other elements may optionally be present other than the elements specifically identified by the “and/or” clause, whether related or unrelated to those elements specifically identified.
[0065] As used herein in the specification and in the claims, “or” should be understood to encompass the same meaning as “and/or” as defined above. For example, when separating items in a list, “or” or “and/or” shall be interpreted as being inclusive, i.e., the inclusion of at least one, but also including more than one, of a number or list of elements, and, optionally, additional unlisted items.
[0066] As used herein, whether in the specification or the appended claims, the transitional terms “comprising”, “including”, “having”, “containing”, “involving”, and the like are to be understood as being inclusive or open-ended (i.e., to mean including but not limited to), and they do not exclude unrecited elements, materials or method steps. Only the transitional phrases “consisting of” and “consisting essentially of”, respectively, are closed or semi-closed transitional phrases with respect to claims and exemplary embodiments herein. The transitional phrase “consisting of” excludes any element, step, or ingredient which is not specifically recited. The transitional phrase “consisting essentially of” limits the scope to the specified elements, materials or steps and to those that do not materially affect the basic characteristic(s) of the subject matter disclosed and/or claimed herein.