Method and apparatus for removing contaminants from aqueous materials

The method addresses the inefficiencies in wastewater recovery by using high-temperature microfiltration and reverse osmosis to remove contaminants from polymerization wastewater, enhancing efficiency and reducing costs through improved filtration and energy recovery.

JP7764375B2Active Publication Date: 2025-11-05AKVOTEK PTY LTD
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Patent Information

Application Number
JP2022535516
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-09
Filing Date
2020-12-09
Publication Date
2025-11-05
Estimated Expiration
2040-12-09

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Abstract

1. A method for removing contaminants from an aqueous material, comprising: providing an aqueous material containing one or more non-particulate contaminants; filtering the aqueous material to remove at least a portion of the one or more non-particulate contaminants to form a recovered portion of the aqueous material, reducing the amount of contaminants to an amount that allows reuse of the recovered portion of the aqueous material; The aqueous material is filtered by passing the aqueous material through a partially permeable membrane at a temperature above 50°C.
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION The present invention relates to a method for removing contaminants from an aqueous material. The present invention also relates to an apparatus for removing contaminants from an aqueous material feed stream.

[0002] In particular, but not exclusively, the present invention relates to the treatment of wastewater resulting from polymerization processes for recovery and reuse. [Background technology]

[0003] Several polymers are produced by emulsion or suspension polymerization, including polyvinyl chloride (PVC), polystyrene (PS), poly(methyl) methacrylate (PMM), and polyacrylate (PA).

[0004] Typically, suspension polymerization reactions produce particles having a size in the range of about 50 μm to 5 mm in diameter, while emulsion polymerization reactions produce particles having a size in the range of about 2 μm to 150 μm.

[0005] Typically, water and other additives are added to the polymerization process before, during, or after polymerization. Additives include substances that control the formation of monomer droplets and the resulting polymer particles. Examples of additives used in the polymerization process include particle stabilizers such as polyvinyl alcohol (PVA), surfactants to control and regulate droplet size, catalysts and accelerators added at the beginning or during the process, and reaction quenching agents.

[0006] The polymerization process typically forms a slurry of powdered polymer in water, which is removed by centrifugation and drying.

[0007] The supernatant liquid from the centrifugation process is collected as waste in a tank and cannot be reused unless it is treated to remove residual polymer particles and other contaminants.

[0008] Contaminants include particulate and non-particulate additives such as salts, surfactants, and stabilizer molecules. Wastewater obtained from PVC polymerization reactions may also contain contaminants such as free chlorine formed by the decomposition of vinyl chloride monomer and polymer particles.

[0009] One of the problems associated with the recovery of wastewater generated by polymerization reactions, particularly those used to produce PVC, is the need to cool the wastewater at one or more stages in the recovery process to minimize biofouling.

[0010] Some contaminants in wastewater, such as sodium lauryl sulfate, promote bacterial growth in membrane filters used in existing wastewater recovery technologies employed in cooling water processes. Some bacteria, such as sulfur-reducing bacteria, produce hydrogen sulfide, which is toxic, corrosive, and flammable, making them undesirable in industrial environments.

[0011] However, new problems arise associated with cooling the wastewater. Cooling the recovered wastewater reduces the solubility of contaminants present in the wastewater, such as some synthetic polymers like PVC, stabilizers, surfactants, and other residual chemicals added to the water for the polymerization reaction.

[0012] Furthermore, filtration is difficult due to the presence of polymer particles, such as PVC particles, that are produced during the polymer polymerization reaction. PVC particles tend to agglomerate and can impede or significantly reduce the efficiency of filters used to remove pollutants from wastewater.

[0013] Additionally, the PVC particles are coated with polyvinyl alcohol (PVA), which binds the PVC particles together and helps the PVC fill gaps and openings, restricting fluid flow through the filter during the recovery process.

[0014] Existing membrane technology does not allow for effective recovery in wastewater. New wastewater recovery methods or technologies are needed that can effectively filter particulate and non-particulate contaminants. Additionally, improved membrane technologies that can reduce biofouling are also needed. Summary of the Invention [Means for solving the problem]

[0015] According to a first aspect, there is provided a method for removing contaminants from an aqueous material, the method comprising: providing an aqueous material containing one or more non-particulate contaminants; filtering the aqueous material to remove at least a portion of the one or more non-particulate contaminants to form a recovered portion of the aqueous material, reducing the amount of contaminants to an amount that allows reuse of the recovered portion of the aqueous material; The filtering of the aqueous material is characterized by the step of passing the aqueous material through a partially permeable membrane at a temperature greater than 50°C.

[0016] In some embodiments, the filtering step comprises subjecting the aqueous material to reverse osmosis at a temperature greater than 50°C.

[0017] According to a second aspect, there is provided a method for removing contaminants from an aqueous material, the method comprising: providing an aqueous material containing one or more contaminants, including particulate contaminants; subjecting the aqueous material to a first filtering step to substantially remove particulate contaminants from the aqueous material to form a partially filtered aqueous material; subjecting the partially filtered aqueous material to a second filtration step to remove at least a portion of the residual contaminants from the partially filtered aqueous material to form a recovered portion of the aqueous material, reducing the amount of contaminants to an amount that allows for reuse of the recovered portion of the aqueous material; The second filtering step comprises passing the partially filtered aqueous material through a partially permeable membrane at a temperature greater than 50°C.

[0018] In some embodiments, the second filtration step comprises subjecting the aqueous material to reverse osmosis at a temperature greater than 50°C.

[0019] In some embodiments, the first filtering step comprises subjecting the aqueous material to microfiltration.

[0020] In some embodiments, the first filtration step includes centrifuging the aqueous material to reduce the concentration of particulate contaminants in the aqueous material before subjecting the aqueous material to the microfiltration.

[0021] In some embodiments, the first filtration step comprises: (i) passing the aqueous material through a hydrocyclone to form an overflow stream and a downstream stream, the overflow stream having a reduced concentration of particulate contaminants relative to the downstream stream; (ii) subjecting the overflow stream to microfiltration to remove particulate contaminants and form a partially filtered aqueous material.

[0022] The step of subjecting the overflow stream to microfiltration may be carried out at a temperature ranging from about 50°C to about 90°C.

[0023] In some embodiments, the method includes passing the downstream stream through a hydrocyclone to form an overflow stream capable of combining with the aqueous material.

[0024] In some embodiments, the method includes sending the first downstream flow and / or the second downstream flow to a particulate contaminant recovery process.

[0025] In some embodiments, the first filtration step comprises: (i) passing the aqueous material through a hydrocyclone to form a first overflow stream and a first downstream stream, the first overflow stream having a reduced concentration of particulate contaminants relative to the downstream stream; (ii) passing the first overflow stream through a hydrocyclone to form a second overflow stream and a second downstream stream, the second overflow stream having a reduced concentration of particulate contaminants relative to the second downstream stream; (iii) subjecting the second overflow stream to microfiltration to form the partially filtered aqueous material.

[0026] The step of subjecting the overflow stream to microfiltration may be carried out at a temperature ranging from about 50°C to about 90°C.

[0027] In some embodiments, the method further comprises passing the first downstream stream and / or the second downstream stream through a hydrocyclone to form an overflow stream capable of combining with the aqueous material.

[0028] In some embodiments, the method further comprises sending the first downstream flow and / or the second downstream flow to a particulate pollutant recovery process.

[0029] According to a third aspect, there is provided a method for removing contaminants from an aqueous material, the method comprising: providing an aqueous material containing one or more contaminants, including particulate contaminants; subjecting the aqueous material to a pretreatment process to reduce the concentration of particulate contaminants in the aqueous material to form a pretreated aqueous material; subjecting the pretreated aqueous material to a first filtration step to substantially remove the particulate contaminants from the aqueous material to form a partially filtered aqueous material; subjecting the partially filtered aqueous material to a second filtration step to remove at least a portion of the residual contaminants from the partially filtered aqueous material to form a recovered portion of the aqueous material, reducing the amount of contaminants to an amount that allows for reuse of the recovered portion of the aqueous material; The second filtration step is characterized by including passing the aqueous material through a partially permeable membrane at a temperature greater than 50°C.

[0030] In some embodiments, the second filtering step comprises subjecting the aqueous material to reverse osmosis at a temperature greater than 50°C.

[0031] In some embodiments, the pretreatment step comprises: The method includes a step of reducing the number of particulate contaminants in the aqueous material by centrifuging the aqueous material to remove particulate contaminants having a diameter of at least 10 μm.

[0032] In some embodiments, the first filtering step comprises subjecting the aqueous material to microfiltration to remove particulate contaminants.

[0033] In some embodiments, the microfiltration comprises passing the overflow stream through a membrane and performing the microfiltration at a temperature ranging from about 50°C to about 90°C.

[0034] In some embodiments, the pretreatment step comprises: The method includes a step of passing the aqueous material through a hydrocyclone to form an overflow stream and a downstream stream, the overflow stream having a reduced concentration of particulate contaminants compared to the downstream stream, and the overflow stream forming the pretreated aqueous material.

[0035] In some embodiments, the method includes passing the downstream stream through a hydrocyclone to form an overflow stream that can be combined with the aqueous material.

[0036] In some embodiments, the method further comprises the step of directing the downstream stream to the particulate contaminant recovery process.

[0037] In some embodiments, the pretreatment step comprises: (i) passing the aqueous material through a hydrocyclone to form a first overflow stream and a first downstream stream, the first overflow stream having a reduced concentration of particulate contaminants relative to the downstream stream; (ii) passing the first overflow stream through a hydrocyclone to form a second overflow stream and a second downstream stream, the second overflow stream having a reduced concentration of particulate contaminants compared to the second downstream stream, and forming the pretreated aqueous material.

[0038] In some embodiments, the method includes passing the first downstream stream and / or the second downstream stream through a hydrocyclone to form an overflow stream capable of combining with the aqueous material.

[0039] In some embodiments, the method includes sending the first downstream flow and / or the second downstream flow to a particulate contaminant recovery process.

[0040] According to a fourth aspect, there is provided an apparatus for removing contaminants from an aqueous material feed stream, the apparatus comprising: a first filtration module configured to receive an aqueous material feed stream containing one or more contaminants, including particulate contaminants, and to reduce the concentration of particulate contaminants in the aqueous material feed stream to form a pretreated aqueous material stream; a second filtration module in fluid communication with the first filtration module and configured to receive the pre-treated aqueous material stream and substantially remove the particulate contaminants from the aqueous material stream to form a partially filtered aqueous material stream; a third filtration module in fluid communication with the second filtration module and configured to receive the partially filtered aqueous material stream; The third filtration module includes a partially permeable membrane capable of withstanding an operating temperature greater than 50°C and is configured to remove at least a portion of the residual contaminants to form a recovered portion of the aqueous material feed stream and to reduce the amount of contaminants to an amount that allows reuse of the recovered portion of the aqueous material feed stream.

[0041] In some embodiments, the first filtration module includes at least one separator configured to remove particulate contaminants having a diameter of at least 10 μm, and the at least one separator may be a hydrocyclone.

[0042] In some embodiments, the second filtration module includes at least one microfiltration membrane configured to remove particulate contaminants having a particle size greater than 0.5 μm, and the at least one microfiltration membrane may be configured to withstand operating temperatures up to about 90° C.

[0043] In some embodiments, the partially permeable membrane is a reverse osmosis membrane.

[0044] According to a fifth aspect, there is provided an apparatus for removing contaminants from an aqueous material feed stream, the apparatus comprising: a filtration module configured to receive an aqueous material feed stream containing one or more non-particulate contaminants, the filtration module including a partially permeable membrane capable of withstanding an operating temperature greater than 50°C, the filtration module configured to remove at least a portion of the non-particulate contaminants to form a recovered portion of the aqueous material feed stream, and to reduce the amount of contaminants to an amount that allows for reuse of the recovered portion of the aqueous material feed stream.

[0045] In some embodiments, the partially permeable membrane is a reverse osmosis membrane. [Effects of the Invention]

[0046] One or more aspects of the process of the present invention may provide one or more of the following advantages.

[0047] Lower capital costs because some previously available and used process steps may be eliminated, and less plant and equipment may be required to carry out the processes herein.

[0048] Operating costs are reduced because the process according to the invention eliminates the energy required in the stages that are not required in the processes herein, typically the energy required in the cooling stages. Additionally, the process according to the invention reduces microbial buildup on plant and equipment.

[0049] Additionally, downtime of the plant or equipment due to buildup or blockage of the plant or equipment, typically due to small diameter openings, gaps, holes, or the like within the plant or equipment, can be reduced.

[0050] The membrane life can be increased by reducing the need for chemical cleaning to remove biofouling.

[0051] Finally, the value of wastewater recovered using the processes herein can be increased by recovering thermal energy, returning thermal energy to the reactor, providing thermal energy for uses around the facility, e.g., boilers, and eliminating the need to cool the wastewater stream to prevent blockages or plugging of the plant or facility. [Brief explanation of the drawings]

[0052] The process aspects will now be explained by way of example with reference to the accompanying drawings. [Figure 1] 1 is a flow chart illustrating a method for removing non-particulate contaminants from an aqueous material, according to an embodiment of the present invention. [Figure 2] 1 is a schematic diagram illustrating an apparatus for removing contaminants from an aqueous material according to an embodiment of the present invention. [Figure 3] 1 is a schematic diagram illustrating an apparatus for removing contaminants from an aqueous material according to an embodiment of the present invention. [Figure 4] 1 is a flow chart illustrating a method for removing particulate and non-particulate contaminants from an aqueous material, according to an embodiment of the present invention. [Figure 5] 1 is a schematic perspective view of a microfiltration membrane according to an embodiment of the present invention. [Figure 6] 1 is a cross-sectional side view of a microfiltration membrane module according to an embodiment of the present invention. [Figure 7] 1 is a schematic diagram illustrating an apparatus for removing particulate and non-particulate contaminants from an aqueous material according to an embodiment of the present invention. [Figure 8] 1 is a flow chart illustrating a method for removing particulate and non-particulate contaminants from an aqueous material according to an embodiment of the present invention. [Figure 9] 1 is a schematic diagram illustrating an apparatus for removing particulate contaminants from an aqueous material including a bank of hydrocyclones, according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0053] The present invention relates to the treatment of aqueous materials to remove contaminants and provide reusable recovered portions from the aqueous materials.

[0054] In an exemplary embodiment, the method is used to reuse, recover or purify wastewater obtained from a chemical process, preferably a PVC manufacturing process.

[0055] Wastewater is treated to remove contaminants, such as particles and chemicals used in chemical processes, to form a recovered portion of the water, reducing the amount of contaminants to an amount that allows the recovered portion of the water to be reused.

[0056] In this embodiment, the term "contaminant" is used to encompass all potentially undesirable substances (physical, chemical, biological) in particulate or non-particulate form.

[0057] Contaminants include, but are not limited to, particles such as polymer particles and other types of particles, chemical additives such as salts, surfactants, stabilizers and other undesirable chemicals, by-products of chemical processes such as free chlorine in PVC polymerization reactions, microorganisms such as bacteria, and any biological or chemical substance that adversely affects the safety and quality of the waterborne material.

[0058] Additionally, the terms "partially permeable" and "semi-permeable" used in connection with membranes in this example can be used interchangeably.

[0059] Additionally, the terms "feed stream," "aqueous feed stream," "aqueous material," and "wastewater" used in the examples can be used interchangeably.

[0060] In one embodiment, the present disclosure relates to a method for improving the quality of wastewater obtained from a polymerization process, the method comprising one or more treatment steps that improve the quality of the wastewater, allowing the treated wastewater to be reused in various ways.

[0061] For example, the amount of residual contaminants contained in the water recovered by the method of the present invention is sufficiently low that the recovered water can be reused as feed water for further polymerization reactions.

[0062] The method of the present invention is particularly suitable for use in treating wastewater by-products such as those produced in polymerization reactions to form polyvinyl chloride (PVC). Contaminants or unwanted materials produced in the polymerization process, particularly small particles often referred to as "fines," remain in the wastewater and must be removed before the aqueous material can be reused.

[0063] Although the method and apparatus according to the present invention will be described with reference to specific embodiments, the scope of protection of the invention is not limited to the described embodiments, but is rather broader and covers other forms, modifications, variations, processes equivalent to the process according to the present invention, and plants and equipment in which the process is carried out. The present invention also covers equipment used to separate or remove pollutants or other undesirable materials. Furthermore, the present invention also covers the application of the method according to the present invention to a range of materials different from those specified in the examples.

[0064] In an embodiment of the method according to the invention, the water to be recycled by treating the wastewater obtained from the polymerization process must have properties and characteristics similar to those of the raw feed water, and at least have the same levels of constituents as the raw feed water, so as to be suitable for reuse as feed water for another polymerization process.

[0065] An embodiment of the method for removing contaminants from an aqueous material according to the present invention will now be described with reference to FIG.

[0066] In the embodiments described herein, an aqueous feed stream, such as wastewater, containing one or more non-particulate contaminants is provided. The feed stream may be, for example, wastewater from a chemical process containing trace amounts of particulate contaminants. In some cases, the feed stream is wastewater that has undergone a pre-treatment filtration process to remove particulate contaminants.

[0067] The method includes a filtering step of filtering the aqueous material to remove at least a portion of one or more non-particulate contaminants to form a recovered portion of the aqueous material, reducing the amount of contaminants to an amount that allows reuse of the recovered portion of the aqueous material.

[0068] In the above-described embodiment, the aqueous feed stream 50 is subjected to reverse osmosis 100 at a temperature greater than 50° C. to obtain recovered water 120 .

[0069] Although not shown, in some embodiments, the aqueous feed stream is subjected to an additional reverse osmosis process at a temperature greater than 50°C to further reduce the amount of undesirable contaminants in the recovered aqueous material and further improve the quality of the recovered water. Any suitable partially permeable membrane capable of withstanding temperatures above 50°C may be used.

[0070] The recovered portion of the aqueous material can be reused as water supply in chemical reactors, desalinated water plants, and other suitable applications and processes.

[0071] In some embodiments, the method includes the use of a reverse osmosis membrane. During permeation, a solvent moves through a partially permeable membrane from a region of low solute concentration to a region of high solute concentration. Conversely, during reverse osmosis, pressure is applied to force a solvent through a semi-permeable membrane in a process that selectively removes components from the solvent.

[0072] In some embodiments, the reverse osmosis membrane is formed from a cellulose acetate membrane, a thin film composite (TFC) membrane. The cellulose acetate membrane allows the passage of free chlorine present in the water being treated at levels up to about 2 ppm. The TFC membrane includes a polyamide deactive layer formed as an ultrafiltration layer, and the polyamide deactive layer formed as an etching layer. Both cellulose acetate and TFC membranes have a spiral wound geometry. Reverse osmosis membranes may have any suitable or desired shape and may be made from different types of materials.

[0073] A major advantage of reverse osmosis membranes is that they are highly effective at removing non-particulate contaminants. Some osmosis membranes can tolerate the presence of particles as small as 0.5 μm. However, the presence of large solid particles in the aqueous feed stream can adversely affect the efficiency of the membrane.

[0074] Therefore, if the aqueous feed stream contains particulate contaminants, multiple filtration processes are required, as described in more detail below.

[0075] 2 is a schematic flow chart of an apparatus for removing contaminants from an aqueous material, the apparatus including a plurality of reverse osmosis membrane modules 140 arranged in a cascade. Preferably, the group of membrane modules is positioned between a feed water tank 160 and a recycled water tank 170.

[0076] 2, seven membranes 130 are arranged in two modules, with four membranes 130 in the first module and three membranes 130 in the second module. The multiple cascade arrangement 150 can increase the recovery efficiency of permeate or aqueous material for reuse in subsequent reactions, such as PVC polymerization reactions. The water recovered by such a cascade arrangement will be at least 93% of the feed water.

[0077] However, in some embodiments, the cascaded membranes may be a single component or may be arranged in any other suitable configuration, spatial arrangement, sequence, pathway, etc.

[0078] In other embodiments, the number of membranes may be any other suitable number.

[0079] Preferably, the membrane has a length of about 1 m (40 inches) and a diameter ranging from about 2 inches to 10 inches. In other embodiments, the membrane has a diameter of about 2.5 inches, 4 inches, or 8 inches. However, the membrane can have any suitable length and / or diameter.

[0080] Figure 2 shows backpressure line 180. Backpressure line 180, controlled by valve 182, creates feed pressure to force the aqueous feed stream through the pores in the membrane. The reverse osmosis process must be carried out at sufficient pressure to overcome the osmotic pressure created by contaminants in the feed stream.

[0081] In the example illustrated in Figure 2, the osmotic pressure is about 300 kPa. Because the osmotic pressure in the first stage of the cascade is only about 70 kPa, back pressure must be applied to the feed stream to prevent too high a permeability in the first and second stages.

[0082] 7 illustrates an apparatus for removing particulate and non-particulate contaminants from a microfiltration feed tank 260. The flow from the microfiltration feed tank 260 passes through a reverse osmosis module 230 before being stored in a purified water tank 270. Various pumps 280, 282, 284 control the flow of fluid through the apparatus.

[0083] 2, seven membranes 130 are arranged in two modules, with four membranes 130 in the first module and three membranes 130 in the second module. The multiple cascade configuration 150 can increase the recovery efficiency of permeate or aqueous material for reuse in subsequent reactions, such as PVC polymerization reactions.

[0084] 3 is a schematic diagram of another example of a reverse osmosis module design according to the present invention, which has an internal recirculation system 190 with bleed-off 195 to control the overall recovery process.

[0085] The combination of membrane module 140 and membrane path length is determined based on the flow of feed stream 50 through each membrane to optimize the feed flow through each membrane of the membrane module.

[0086] Conventional reverse osmosis membranes contain materials that are sensitive to elevated temperatures. Typically, conventional reverse osmosis membranes are limited to operating at temperatures above about 45°C, whereas the temperature of the feed stream is usually above about 50°C.

[0087] For example, some conventional reverse osmosis membranes designed for water applications include sealing devices, such as brine seals, that have components including plastic or rubber. Such sealing devices prevent feed water from slipping around the membrane by sealing the exterior of the membrane against the housing. By preventing the feed stream from flowing around the membrane, the sealing devices can force the feed stream to flow through feed spacers and channels through which water can be extracted. However, the sealing devices cannot withstand elevated temperatures.

[0088] Thus, in conventional reverse osmosis processes, the feed stream must be brought down to a temperature below 45°C before undergoing the reverse osmosis filtration step, which is a very inconvenient and energy inefficient process, especially when a multi-step filtration process is required.

[0089] In contrast, the improved reverse osmosis membranes of the present invention can withstand temperatures above 50°C.

[0090] For example, in an embodiment described in more detail below, particulate contaminants can be substantially removed from the aqueous material by subjecting the aqueous material to microfiltration prior to the reverse osmosis step.

[0091] The microfiltration process is generally carried out at a temperature between 50°C and 90°C to promote the solubility of non-particulate contaminants in the water and to avoid agglomeration of particulate contaminants.

[0092] For example, wastewater from polyvinyl polymerization processes typically contains PVA attached to the PVC particles. The PVA acts as a binder to bind the particles together and increases the cross-linking between the particles. However, the solubility of PVA in water increases with the temperature of the water. Therefore, it is desirable to carry out the microfiltration step at a temperature in the range of about 50°C to about 90°C.

[0093] Additionally, higher temperatures can reduce biofouling and bacterial growth caused by surfactants and other chemical contaminants present in wastewater, especially when derived from chemical processes such as polyvinyl polymerization.

[0094] Cooling the water prior to reverse osmosis treatment is similarly undesirable because it results in the loss of heat contained in the water and requires additional energy and time to cool the water to a temperature suitable for the reverse osmosis filtration process.

[0095] As a significant advantage, reverse osmosis membranes according to embodiments of the present invention do not include conventional sealing devices and are constructed from materials that can withstand elevated temperatures.

[0096] An embodiment of the present invention uses an internal recirculation system with a bleed-off, typically in the form of a bleed-off valve, to control the overall recovery of recycled water.

[0097] As an even greater advantage, the water recovered using the reverse osmosis process described above can be efficiently reused in subsequent chemical processes that require high temperature feed water.

[0098] As described above, embodiments of the present invention for removing contaminants from aqueous materials include one or more steps for separating or filtering undesirable particulate and non-particulate contaminants from a feed stream. Forms of the separation step include multi-stage processes that include two or more individual separation steps, as described below.

[0099] In one embodiment, shown schematically in Figure 4, the method involves subjecting an aqueous feed stream 50 to a first filtration step (microfiltration) 200 to substantially remove particulate contaminants from the aqueous material stream to form a partially filtered aqueous material 220. The first filtration step also forms a retentate stream 222 containing a high concentration of the filtered particulate contaminants removed from the feed stream 50.

[0100] The partially filtered aqueous material 220 is then subjected to a second filtration step (reverse osmosis) 100 to remove at least a portion of the remaining contaminants from the partially filtered aqueous material and form a recovered portion of the aqueous material 120. The amount of contaminants in the recovered portion is reduced to an amount that allows the recovered portion of the aqueous material to be reused. As noted above, the reverse osmosis step 100 is performed at a temperature greater than 50°C.

[0101] In some embodiments of the method of the present invention, the cross-flow velocity is in the range of about 0.1 m / s to about 5 m / s, typically in the range of about 0.5 m / s to about 1 m / s.

[0102] In some embodiments, the microfiltration step removes particulate contaminants having a particle size greater than 0.5 μm, forming a partially filtered aqueous material suitable for further processing by a reverse osmosis filtration step.

[0103] In some embodiments, the residual aqueous stream 222, now with an increased concentration of particulate contaminants, is subjected to a drying step 400 to recover selected particulate contaminants 224, such as PVC particles. This process is shown schematically on the right side of Figure 4 and at the bottom right of Figure 8.

[0104] In embodiments where the aqueous material contains particulate contaminants larger than 10 μm, the microfiltration step is preceded by a separation / pretreatment step to reduce the concentration of particulate contaminants in the aqueous feed stream, details of which are described below with reference to FIG.

[0105] In some embodiments, the microfiltration step 200 includes passing the aqueous material through one or more microfiltration membranes having pore sizes ranging from 0.05 μm to 1 μm. In other embodiments, the microfiltration membranes have pore sizes ranging from about 0.2 μm to 0.4 μm.

[0106] In yet another embodiment, the microfiltration membrane has a pore size suitable for removing particulate contaminants having a particular size range.

[0107] In some embodiments, the microfiltration membrane and its housing can withstand operating temperatures up to about 85° C. Additionally, the microfiltration membrane can tolerate the presence of free chlorine in the aqueous material being treated. For example, the microfiltration membrane can tolerate the presence of free chlorine in the aqueous material at concentrations up to about 1 ppm.

[0108] In some embodiments, the selection of the microfiltration membrane is determined by the suitability of the microfiltration membrane for near-continuous operation at elevated temperatures, for example, near-continuous operation at temperatures ranging from about 50°C to about 90°C.

[0109] Additionally, the efficiency of the water treatment and / or recovery process can be increased by selecting a microfiltration membrane that is particularly suited for near-continuous operation at elevated temperatures of about 80 to about 85°C.

[0110] Microfiltration membranes can be formed from any suitable or readily available material, including polymers suitable for forming such membranes, such as polyethersulfone (PES), polysulfone (PS), polyvinylidene fluoride (PVDF), polytetrafluoroethylene (PTFE), selected inorganic membrane materials that are ceramic-based or include ceramic, sintered stainless steel, or a combination comprising one or more of such materials.

[0111] Suitable microfiltration membranes can take many forms, based on the configuration of the membrane's pore structure. A preferred form of membrane is an asymmetric membrane with sized holes on the feed side of the membrane and larger holes behind the sized holes. These membranes have a low pressure drop across the membrane, and all solid particles passing through the outer sizing layer continue through the membrane without permanent retention.

[0112] Other membranes include homogeneous membranes, in which pores are regularly spaced throughout the membrane structure, and turtle channel membranes, in which the pore size is determined by the narrowest passage through the sponge-like structure.

[0113] Exemplary microfiltration membranes include modifiers. Typical modifiers include those that change the membrane from substantially hydrophobic to substantially hydrophilic, or those that provide channels through the membrane that allow water to pass through. Suitable polymers for modifying the properties and characteristics of microfiltration membranes include polyvinylpyrrolidone (PVPP).

[0114] Modification of base microfiltration membranes to change their characteristics or properties can be accomplished at any suitable and convenient time using suitable or readily available materials. In forming microfiltration membranes, modifying materials or agents are incorporated into the membrane polymer prior to membrane formation, and the agent is then removed from the membrane to form the membrane pores. The addition and removal of such agents leaves a residual coating on the surfaces of the membrane pores, modifying the membrane's surface chemistry to make the surface hydrophilic and allowing water to pass through the membrane, removing unwanted materials.

[0115] Furthermore, any suitable or readily available material can be used to manufacture the housing of the microfiltration membrane. Examples of materials that can be used to make the housing include chlorinated PVC (see PVC), PES, and stainless steel.

[0116] An example of a microfiltration membrane according to an embodiment of the present invention is shown in FIG.

[0117] Some forms of microfiltration membrane 230 are tubular or hollow fiber membranes. In some embodiments, a typical tubular or hollow fiber membrane has a central lumen 234. In some embodiments, a tubular hollow fiber membrane has a feed flow directed toward the central lumen of the membrane.

[0118] In some embodiments, the fluid is allowed to flow over the entire surface area of ​​the membrane to prevent deposition or slow flow of suspended particles, typically PVC fines, which can cause a buildup of solid particles within the membrane, clogging the membrane or reducing its efficiency in removing contaminants.

[0119] In some embodiments, membrane 232 is disposed within membrane module 240, as shown schematically in FIG.

[0120] In the above-described embodiments, the membrane module is constructed by assembling bundles of tubular or hollow fiber membranes.

[0121] However, the membrane modules can have any readily available or suitable form, style, appearance, configuration, or equivalent. Furthermore, the number of individual fiber membranes comprising the membrane modules can be set at will. For example, the number of individual fiber membranes in each membrane module can be about 1 to 10,000, and the membrane surface area of ​​each membrane module can be about 0.1 m. 2 ~100m 2 The value can be between

[0122] The membrane module may have any suitable or desired dimensions. In some embodiments, the membrane module has a length of about 1 m to 2 m and a diameter in the range of about 25 mm to 300 mm. Typically, the inner diameter of the membrane fiber or tube is in the range of about 0.7 mm to 25 mm.

[0123] In some embodiments, the microfiltration process operates under pressure and is part of a pressurized system.

[0124] In the embodiments described above, the microfiltration process operates under pressure by means of a reciprocating pump or a separate pressure pump.

[0125] In some embodiments, the driving pressure is in the range of about 0.2 bar to 3 bar, hi some embodiments, the driving pressure is in the range of about 0.4 bar to 1.5 bar.

[0126] The flow rate (flux) of a membrane is measured relative to the surface area of ​​the membrane. In some embodiments, the flow rate is between about 10 L and 200 L per hour in meters squared. In some embodiments, the flow rate is between about 40 L and 80 L per hour in meters squared.

[0127] As mentioned above, if the aqueous material contains large particulate contaminants, the first step of the multiple filtration process reduces the amount of particulate contaminants in the aqueous material.

[0128] The overall configuration of the three-stage process according to an embodiment of the present invention is shown schematically in Figure 8. The above method will now be summarized.

[0129] According to this embodiment, in a broad sense, an aqueous material to be recovered contains one or more contaminants, including particulate contaminants. The aqueous material is provided. The aqueous material may be, for example, wastewater obtained from a chemical process such as a PVC polymerization reaction.

[0130] In a first method step, the aqueous material is subjected to a pretreatment step to reduce the concentration of particulate contaminants in the aqueous material to form a pretreated aqueous material.

[0131] In a second method step, the pretreated aqueous material is subjected to a first filtration step to substantially remove particulate contaminants from the aqueous material and form a partially filtered aqueous material.

[0132] In a third method step, the partially filtered aqueous material is subjected to a second filtration step to remove at least a portion of the remaining contaminants from the partially filtered aqueous material to form a recovered portion of the aqueous material and reduce the amount of contaminants to an amount that allows for reuse of the recovered portion of the aqueous material. The second filtration step includes passing the aqueous material through a partially permeable membrane at a temperature greater than 50°C.

[0133] In some embodiments, the first filtration step comprises microfiltration of the aqueous material from which large particles have been removed by pretreatment, and in some embodiments, the second filtration step comprises reverse osmosis of the aqueous material from which particulate contaminants have been removed by partial filtration.

[0134] As mentioned above, aqueous materials containing large particulate contaminants are not suitable for microfiltration. Particles larger than 10 μm tend to reduce the specified filtration rate and block the pores in the membrane. PVC fine particles are known to be particularly difficult to filter because they tend to agglomerate and clog filter openings or pores larger than the size of the PVC particles. For example, PVC particles with sizes ranging from about 10 μm to about 50 μm can clog a filter with a 200 μm opening.

[0135] 8, in accordance with the above-described embodiment, the number of particulate contaminants in an aqueous feed stream can be reduced by subjecting the aqueous feed stream 50 to centrifugation 100. Centrifugation of the aqueous feed stream is a pretreatment step to remove particulate contaminants having a diameter of at least 10 μm or greater, thereby forming an aqueous feed stream suitable for microfiltration.

[0136] In particular, an aqueous feed stream can be directed to a hydrocyclone to form an overflow stream 320 and a downstream stream 322, where the overflow stream can have a reduced concentration of particulate contaminants relative to the downstream stream.

[0137] The downstream stream is sent to a particulate contaminant recovery process, as shown in the upper right portion of Figure 8. The recovery process includes a step 400 of drying the downstream stream to recover selected particulate contaminants, such as PVC particles 324. It should be noted that this step is an optional step and is performed only if there is a desire to recover selected particulate contaminants.

[0138] The downstream stream is optionally sent to a second hydrocyclone (not shown) to form an overflow stream that combines with the aqueous material. In some embodiments, the recovery rate from this process ranges from about 80% to about 90%, based on the amount of water introduced into the second hydrocyclone.

[0139] The overflow stream 320 is treated according to the method shown in FIG.

[0140] In some embodiments of the process, the amount of water recovered in the hydrocyclone overflow stream ranges from about 85% to about 95% of the amount of influent water introduced into the hydrocyclone, and the amount of water recovered in the hydrocyclone downstream stream ranges from about 5% to about 15% of the amount of water introduced tangentially to the hydrocyclone center core.

[0141] In some versions of this process, the hydrocyclone typically removes up to about 95% of suspended solids having a diameter of approximately 10 μm and a specific gravity of 1.4, values ​​that are typical of the small particles produced by PVC polymerization and are in the normal range for PVC fines.

[0142] In some versions of the process, the overflow from the second hydrocyclone is sent to the system's feed tank for reprocessing or to a storage facility, such as a clarified water tank.

[0143] In some embodiments of the process of the present invention, water recovery using a two-stage hydrocyclone process is greater than about 95%, typically about 97.5%.

[0144] The purpose of hydrocyclone purification is to further improve the quality of the water that will be treated by subsequent treatment steps, including additional filtration steps such as microfiltration using microfiltration membranes, to reduce the amount of suspended solids to a level that allows the water to be reused in the subsequent polymerization process.

[0145] The above-described method according to the present invention is carried out in an apparatus comprising filtration modules each used for a different filtration step, the modules used for subsequent filtration steps being in fluid communication.

[0146] The first filtration module is configured to receive an aqueous material feed stream containing one or more contaminants, including particulate contaminants, and reduce the concentration of the particulate contaminants in the aqueous material stream to form a pretreated aqueous material stream.

[0147] In some embodiments, the first filtration module includes at least one hydrocyclone configured to remove particulate contaminants having a diameter of at least 10 μm.

[0148] FIG. 9 shows a schematic configuration of an apparatus using a hydrocyclone according to an embodiment of the present invention. The system includes a plurality of hydrocyclones 340 disposed between a supply tank 360 and a purified water recovery tank 370 .

[0149] In the embodiment described above, the installation includes six hydrocyclones, but in other embodiments the installation may include any suitable number of hydrocyclones.

[0150] In exemplary embodiments, the hydrocyclones have a diameter of about 20 mm to about 100 mm, or about 40 mm to about 50 mm, respectively. The hydrocyclone is about 1 m 3 / hour~about 10m 3 / h flow rate, preferably about 2 m 3 / hour~about 5m 3 Dimensioned to handle a flow rate of 1000 kJ / hr.

[0151] The operating conditions for a hydrocyclone are that it must be able to generate up to approximately 1000G. In operation, water is pumped into the hydrocyclone using a pump at a pressure of about 200 kPA to about 500 kPA, typically about 300 kPA to about 350 kPA.

[0152] A second filtration module in fluid communication with the first filtration module is configured to receive the pre-treated aqueous material stream and substantially remove particulate contaminants from the aqueous material stream to form a partially filtered aqueous material stream.

[0153] In an exemplary embodiment, the second filtration module includes at least one microfiltration membrane configured to remove particulate contaminants having a particle size greater than 0.5 μm.

[0154] A third filtration module in fluid communication with the second filtration module is configured to receive the partially filtered aqueous material stream, the third filtration module including a partially permeable membrane capable of withstanding an operating temperature greater than 50°C, and configured to remove at least a portion of the residual contaminants to form a recovered portion of the aqueous material feed stream, reducing the amount of contaminants to an amount that allows reuse of the recovered portion of the aqueous material feed stream. The third filtration module is used independently to remove contaminants from an aqueous material feed stream containing one or more non-particulate contaminants.

[0155] In some embodiments of the method and apparatus for removing contaminants from an aqueous material, the feed stream for the polymerization reaction comprises recycled water obtained from the polymerization reaction described above. Typically, the apparatus has a membrane skid-pipe structure incorporating a membrane module. In some embodiments, the feed stream is recirculated within the membrane skid-pipe structure using a recycle pump. More typically, the recirculation pump creates a flow that maintains a cross-flow velocity along the length of the membrane module, which prevents solid particles from agglomerating and reliably limits particle adhesion to the membrane surface, thereby facilitating efficient continuous operation of the membrane module.

[0156] Some forms of equipment in which the process is carried out include backwash pumps for backwashing the membranes and membrane modules, which can help maintain the membranes and membrane modules in effective operating condition by removing undesirable material that has accumulated in the pores of the membranes.

[0157] In some embodiments, backwashing of microfiltration membranes and modules is a multi-step process that includes backwashing without crossflow, backwashing with forward or backward crossflow, and cleaning with or without forward or backward backwash flow.

[0158] Where any publication is referred to in this specification as prior art, such reference is not an admission that the publication is common general knowledge in Australia or anywhere else.

[0159] It should be noted that in the claims that follow and the foregoing detailed description of the invention, unless the context requires otherwise by clear language or necessary implication, the term "comprise" and its variants "comprises" and "comprising" are used in a non-exclusive manner to specify the presence of stated features but not to limit the presence or addition of further features to various embodiments of the invention.

Claims

1. 1. A method for removing contaminants from an aqueous material feed stream obtained from a polymerization process, comprising: providing an aqueous material feed stream from a polymerization process containing one or more contaminants, including particulate and non-particulate contaminants; centrifuging the aqueous material feed stream in a first hydrocyclone to form a first overflow stream and a first downstream stream, the first overflow stream having a reduced concentration of particulate contaminants relative to the first downstream stream; directing the first downstream stream to a second hydrocyclone to form a second overflow stream combineable with the aqueous material feed stream; subjecting at least the first overflow stream to a microfiltration process to substantially remove particulate contaminants having a particle size greater than 0.5 μm to form a partially filtered aqueous material stream; and subjecting the partially filtered aqueous stream to reverse osmosis at a temperature greater than 50°C to remove at least a portion of the non-particulate contaminants to form a recovered aqueous stream having a reduced concentration of contaminants for reuse in another polymerization process.

2. 10. The method of claim 1, wherein centrifuging the aqueous material feed stream comprises removing particulate contaminants having a diameter of at least 10 microns.

3. 10. The method of claim 1, wherein the microfiltration step is performed on the first overflow stream at a temperature in the range of about 70°C to about 90°C.

4. 1. An apparatus for removing contaminants from an aqueous material feed stream, comprising: a first filtration module including at least two hydrocyclones configured to receive an aqueous material feed stream containing one or more contaminants, including particulate and non-particulate contaminants, the first hydrocyclone centrifuging the aqueous material feed stream to form a first overflow stream and a first downstream stream, the first overflow stream having a reduced concentration of particulate contaminants relative to the first downstream stream, and a second hydrocyclone centrifuging the first downstream stream to form a second overflow stream combineable with the aqueous material feed stream; a second filtration module in fluid communication with the first filtration module and configured to receive at least the first overflow stream, the second filtration module having at least one microfiltration membrane configured to substantially remove particulate contaminants having a particle size greater than 0.5 μm to form a partially filtered aqueous material stream; a third filtration module in fluid communication with the second filtration module and configured to receive the partially filtered aqueous material stream; the third filtration module includes a reverse osmosis membrane capable of withstanding an operating temperature greater than 50°C and is configured to remove at least a portion of the residual contaminants in the partially filtered aqueous material stream to form a recovered portion of the aqueous material feed stream and to reduce the amount of contaminants to an amount that enables reuse of the recovered portion of the aqueous material feed stream.

5. 5. The apparatus of claim 4, wherein the at least one hydrocyclone of the first filtration module is configured to remove particulate contaminants having a diameter of at least 10 microns.

6. 5. The apparatus of claim 4, wherein the at least one microfiltration membrane is configured to withstand operating temperatures up to about 90°C.

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