Adiabatic gel polymerization method for the production of water-soluble polymer electrolytes.
The adiabatic gel polymerization method using UV LED light sources addresses the inefficiencies of current methods by increasing production rate and reducing residual monomers, resulting in higher molecular weight and lower insoluble polyelectrolytes.
Patent Information
- Application Number
- JP2020564450
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-05-16
- Filing Date
- 2019-05-15
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2039-05-15
AI Technical Summary
Current photoinitiated polymerization methods for producing water-soluble polyelectrolytes result in low throughput, high residual monomer content, and high insoluble matter, due to the limitations of existing UV light sources that do not efficiently absorb and emit UV light in the 220-280 nm range, leading to inefficient polymerization.
An adiabatic gel polymerization method using a UV LED light source with a narrower emission spectrum and higher intensity, combined with a UV tube light source, to initiate polymerization at specific temperatures and intensities, followed by drying and grinding to achieve desired particle sizes.
This method increases polymer production rate by 10% and reduces residual monomer content, achieving higher molecular weight products with lower insoluble matter, meeting regulatory standards and improving polymer characteristics.
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Abstract
Description
[Technical Field]
[0001] This application claims priority to U.S. patent application Ser. No. 15 / 981,840, filed May 16, 2018, the contents of which are expressly incorporated herein by reference. [Background technology]
[0002] The present invention relates to the production of water-soluble polyelectrolytes. The produced polymers are cationic vinyl polymers that can then be used as flocculating agents in wastewater treatment, ore and coal processing, and papermaking. In particular, the method relates to an adiabatic gel polymerization method for the production of water-soluble polyelectrolytes, using a UV LED module or a combination of a UV tube light source and a UV LED module, resulting in polymers with increased throughput, lower residual monomer content, and lower insoluble matter compared to current photopolymerization polymerization methods.
[0003] Water-soluble polyelectrolytes are used in large quantities worldwide in water treatment plants to improve the flocculation and dewatering of produced sewage sludge. Typically, cationic polymers such as acrylic acid or its derivatives, polymers of methacrylic acid esters, and copolymers of these esters derived from acrylamide are added to the system to bind contaminants and dissolve the particles in the water.
[0004] In traditional aqueous polymerization, water-soluble monomers, such as acrylic monomers, can be polymerized in dilute aqueous solution to obtain a polymer in the form of a gel, which can then be dried and ground. When this is done, the polymerization can be carried out in a continuous manner on a conveyor belt to which layers of reactants are applied, or discontinuously and batchwise. Polyelectrolytes are generally synthesized by mixing a combination of monomers based on ethylenically unsaturated monomers and initiating radical polymerization.
[0005] However, photoinitiated polymerization was soon found to be advantageous for producing polymers with high molecular weights because it can be carried out using concentrated monomer solutions, at high reaction rates, and at low reaction temperatures. Therefore, it is important that new photoinitiators and photoinitiator systems be developed to improve upon previously developed products and methods.
[0006] Commercially used photoinitiators generally absorb light in the ultraviolet spectrum, ranging from about 250 nanometers to 450 nanometers, although many types of photoinitiators that absorb between 400 nm and 700 nm are also in use. Photoinitiators convert light energy into chemical energy in the form of reactive intermediates, such as free radicals, that start polymerization.
[0007] Light absorption by a photoinitiator requires that the emission line from the light source overlap with the absorber of the photoinitiator, and therefore the photoinitiator is recognized as being dependent on the particular polymerization being completed.
[0008] Many compounds have been used in the past to initiate the polymerization of monomers, whether cationic, anionic, or nonionic. For example, diaryliodonium salts and triarylsulfonium salts are the most common compounds used as photoinitiators for cationic monomers. From the perspective of this invention, the most important physicochemical properties of photoinitiators are their spectroscopic properties (i.e., the range and magnitude of light absorption) and photocleavage efficiency (the efficiency of generating a strong protonic acid that initiates the cationic polymerization process). These particular photoinitiators create a significant technical problem in that there is a lack of efficient and sufficiently powerful UV light sources that absorb and emit UV light in the wavelength range of 220 nm to 280 nm. Currently used and known light sources are low-pressure mercury lamps and deuterium bulbs, which emit light in the absorption spectrum of commercially available cationic photoinitiators. Xenon lamps, like other broadband UV-Vis-NIR sources, emit only a small amount of supplied energy below 300 nm. Therefore, medium-pressure mercury lamps (MPM lamps) are the most commonly used UV light source in the photochemical industry. However, these light sources emit most of their energy in a broad range of wavelengths around 365 nm, far from the absorption maxima of most commercially available photoinitiators, resulting in low yields.
[0009] Photoinitiators, such as benzoin and benzoin derivatives, have been used in the continuous production of polymers or copolymers of water-soluble monomers.
[0010] Current polymerization of cationic polyelectrolytes involves, inter alia, the polymerization of (meth)acrylamide, cationic (meth)acrylic acid ester-based monomers and (meth)acrylamide-based monomers and / or terpolymers of hydrolytically stable cationic monomers. The electrolytes are prepared by known methods such as emulsion, solution, gel, and suspension polymerization. [Prior art documents] [Patent documents]
[0011] [Patent Document 1] U.S. Patent No. 4,857,610 Summary of the Invention [Problem to be solved by the invention]
[0012] However, there continues to be a need for new photoinitiating systems to be developed to improve upon previous polymerized products and processes, particularly where the resulting polymers have increased throughput, low residual monomer content, and low insolubles compared to current photoinitiated polymerization methods. [Means for solving the problem]
[0013] The present invention relates to an adiabatic gel polymerization method for producing water-soluble polyelectrolytes. More specifically, the method involves providing a monomer solution containing aqueous acrylamide, an ethylenically unsaturated monomer, and a photoinitiator. Polymerization of the polyelectrolyte may be carried out as a batch or continuous process. To initiate the reaction, the monomer solution is purged of oxygen, and the pH and temperature are adjusted to begin the polymerization process.
[0014] The photopolymerization reaction is initiated using a UV light source having a medium wavelength and desired intensity. The reaction is continued at which point the intensity of the UV light source is increased until a desired temperature is reached, producing a gelatinous polymer product, followed by a second desired temperature. The product is dried and ground to a desired particle size depending on the end use. DETAILED DESCRIPTION OF THE INVENTION
[0015] The present invention relates to an adiabatic photopolymerization method for producing water-soluble polyelectrolytes. A monomer solution containing water-soluble acrylamide, an ethylenically unsaturated monomer, and a photoinitiator is prepared and oxygen is removed. The pH and temperature are adjusted to the desired values, and polymerization is initiated using a UV light source of medium wavelength and desired intensity. The reaction, which can be a batch or continuous process, is continued until a specific temperature is reached, at which point the intensity of the UV light source is increased, and a gelatinous product is produced. The gelatinous product is then dried and ground to the desired particle size.
[0016] In one embodiment of the method, after the monomer solution containing aqueous acrylamide, ethylenically unsaturated monomer, and photoinitiator is purged, the pH may be adjusted to about 3 to about 7, and the temperature may be adjusted to less than 25°C, less than 10°C, or minus (-) 5°C or less before initiating photopolymerization.
[0017] In some embodiments of the method, the reaction may be a coinitiator polymerization, where a redox initiator is used in combination with a photoinitiator, or the initiator may be a photoinitiator alone.
[0018] In another embodiment of the method, after the monomer solution has been purged and the pH and temperature adjusted as described above, a medium wavelength of about 365 nm and a wavelength of about 0.1 milliwatts / cm 2 (mW / cm 2 ) ~ approx. 2.5mW / cm 2 and 0.2 mW / cm 2 (mW / cm 2 ) ~ approx. 2.0mW / cm 2 A UV light source having an intensity that may be used to initiate photopolymerization.
[0019] In another aspect of the method, after photopolymerization is initiated and the temperature of the photopolymerization reaction reaches a temperature that may be about 40° C. to about 80° C., or about 50° C. to about 60° C., the intensity of the UV light source is about 5 mW / cm at 365±10 nm until the maximum reaction temperature reaches about 50° C., alternatively about 120° C., and alternatively about 150° C. 2 ~365±10nm, approximately 1500mW / cm2 to approximately 10 mW / cm at 365 ± 10 nm. 2 ~365±10nm, approximately 50mW / cm 2 and about 15 mW / cm at 365 ± 10 nm. 2 ~365±10nm, approximately 30mW / cm 2 This depends on the content of the polymerizable substrate.
[0020] In some embodiments of the present method, the reaction may be carried out in a continuous or batch process as described in US Pat. No. 4,857,610, incorporated in its entirety by reference.
[0021] In some embodiments of the method, the UV light source may be a tube light source, an LED light source, or a combination of a tube light source and an LED light source, and the UV light source may start with a tube light source followed by an LED light source, i.e., as the intensity of the light source increases, an LED light source is used. Alternatively, an LED may be the UV light source start, followed by a tube UV light source, as long as the intensity of the initial UV light source is increased once the desired temperature for the polymerization reaction is reached.
[0022] In some embodiments of the method, upon completion of polymerization, the polymerized product is a gelatinous material having a gel matrix or gummy bear consistency. The gelatinous material is dried at a temperature of about 70°C to 150°C, and optionally at a temperature of about 80°C to 130°C. Drying may be accomplished in a batch or continuous manner, such as in a belt dryer or fluidized bed dryer, within the above temperature range. After drying, the product is ground to a desired particle size fraction. The desired particle size fraction may be about 100 microns to about 1400 microns, alternatively about 200 microns to about 1200 microns, or alternatively about 500 microns to about 800 microns, depending on the application of the polymerized product being used.
[0023] In another embodiment of the method, the gelatinous material is dried batchwise in a circulating air dryer at temperatures of about 70°C to about 150°C, and optionally at temperatures of about 80°C to 130°C. Drying of the gelatinous product can also be achieved at these temperatures in continuous processes such as belt dryers or fluidized bed dryers. After drying, the product is ground to a desired particle size fraction of about 100 microns to about 1400 microns, optionally about 200 microns to about 1200 microns, or optionally about 500 microns to about 800 microns, depending on the application of the polymerized product being used.
[0024] In yet another embodiment, the gelatinous material may be dried using a temperature profile of about 110°C to about 120°C for about 10 minutes, followed by about 95°C to about 105°C for about 40 minutes, followed by about 85°C to about 95°C for about 30 minutes, after which the dried product is ground to the desired particle size.
[0025] Surprisingly, we have found that when using a UV light source, such as an LED light source, a narrower emission spectrum and higher intensity in the target wavelength range can be achieved compared to standard UV tubes or bulbs. Therefore, it is possible to produce higher molecular weight products at higher monomer concentrations in the monomer solution. This results in higher throughputs being achieved under these conditions while maintaining the same product characteristics and specifications. For example, the monomer content of the final product can be increased to 43%-48%, resulting in at least a 10% higher production rate. In addition, it is possible to produce products with lower residual monomers than currently possible, a less limiting factor in terms of regulatory requirements.
[0026] In some embodiments of the present method, a change from a UV light source, i.e., from a tube to an LED, has been found to be beneficial. To achieve the desired performance described herein, the wavelength distribution and intensity are monitored and controlled both during the initial polymerization stage and after the increase in UV light source intensity. The increase in UV light source intensity from the initial to the final intensity should be at least 10 times higher in intensity than the initial UV light source, may be at least about 30 times higher in intensity than the initial UV light source, and may be at least about 60 times higher in intensity than the initial UV light source at the target wavelength. The influence of the wavelength range depends on the initiator system and monomer mixture used. However, the wavelength may range from about 365 nm to 395 nm. The width of the wavelength range is within a range of about ±50 nm, may be about ±25 nm, and may be within a range of about ±10 nm UVA emission intensity per wavelength. [Example]
[0027] Comparable μW / cm for all spectra 2 Comparison of UV spectra of polymerization using a UV LED light source to polymerization using a standard UV light source (here, Philips Cleo Performance blue, 40W)
[0028] When polymerizing at increased monomer solids, using only or partially using a UV LED light source, corresponding to an increase in throughput per hour, leads to a final product within the desired target range for this particular product. It has been found that, within the scope of the present invention, improved polymerization methods can be produced not only when UV LEDs are used alone, but also when UV LED light sources are used in combination with UV bulb light sources and other types of UV light sources, as long as the light intensity is increased at an appropriate time or temperature.
[0029] Table 1 below shows the effectiveness of changing the light source and / or intensity at certain points in the polymerization process. The product specifications in the table were a minimum viscosity of 800 millipascals (mPas), a maximum insoluble matter of 30 milliliters (ml), and a maximum residual acrylamide content of 99 parts per million (ppm). The results show that if the intensity of the light source is increased during the polymerization process in accordance with the present invention, products with desirable properties can be more effectively produced.
[0030] [Table 1]
[0031] Batch Reaction Example 1 - High concentration cationic acrylic acid derivative polyelectrolyte The following compounds were added, in order, to a standard polymerization vessel: 0.15 grams (g) of Trilon® C (10% solution, diethylenetriaminepentaacetic acid), 348.8 g of a 43% aqueous acrylamide solution, 437.5 g of an 80% (2-acryloyloxy-ethyl)-trimethylammonium chloride (ADAME-Quat) solution, and 160.6 g of water. The pH of the mixture was adjusted to 5.0 with 50% sulfuric acid, the mixture was cooled to minus (-) 5°C, and oxygen was removed by purging the polymerization vessel with nitrogen.
[0032] After purging the polymerization vessel, 0.50 g of 2,2'-azobis(2-methylpropionamidine) dihydrochloride (ABAH) was added, and the polymerization was carried out under a UV tube light source (Philips Cleo Performance, ca. 350 μW / cm 2 When the reaction temperature reached 60 °C, the intensity was reduced to 1500 μW / cm 2 increased to.
[0033] Over the course of a few minutes, the polymerization temperature increased from minus (-) 5°C to approximately 80°C. The resulting polymer was in the form of a gel and was dried using the following temperature profile: 115°C for 10 minutes, then 100°C for 40 minutes, then 90°C for 30 minutes. Using a meat grinder, the dried product was ground to a particle size fraction of approximately 100 microns (μm) to 1400 μm, as determined using sieve analysis.
[0034] Example 2 - High concentration cationic acrylic acid derivative polyelectrolyte Polymerization was performed using a UV tube light source (Philips Cleo Performance, approximately 350 μW / cm 2 The polymerization method described in Example 1 was followed, except that the UV light source was started using a UV LED module (365 nm LEDs at 3.5 W) at full power when the reaction temperature reached 60°C. Polymerization continued until a temperature of 80°C was reached. The product was dried according to the temperature profile used in Example 1 above and ground to a particle size fraction of approximately 100 μm to 1400 μm using sieve analysis.
[0035] Example 3 - Cationic acrylic acid derivative polyelectrolyte with medium acrylamide ratio To a standard polymerization vessel was added the following: 5 grams (g) of Trion® C (a 10% solution of diethylenetriaminepentaacetic acid), 1269.8 g of a 43% aqueous acrylamide solution, 367.5 g of an 80% ADAME-Quat solution, and 345.7 g of softened water. The resulting monomer solution had a monomer content of 42%. The pH was adjusted to 5.0 with 50% sulfuric acid, the mixture was cooled to minus (-) 5°C, and oxygen was removed by purging with nitrogen. To this mixture was added 0.50 g of 2,2'-azobis(2-methylpropionamidine) dihydrochloride (ABAH), and the polymerization was initiated using a UV tube light source (Philips Cleo Performance, approximately 1500 μW / cm). 2 The polymerization was initiated using a 40W (at 40°C). The polymerization was continued until a temperature of 80°C was reached and a polymer gel was obtained, which was then dried using the following temperature profile: 115°C for 10 minutes, then 100°C for 40 minutes, and then 90°C for 30 minutes. The dried product was ground using a meat grinder to a particle size fraction of approximately 100 μm to 1400 μm using sieve analysis.
[0036] Example 4 - Medium Concentration Cationic Acrylic Acid Derivative Polyelectrolyte Polymerization was performed using a Philips Cleo Performance lamp at approximately 1500 μW / cm 2 The polymerization method described in Example 3 was followed, except that the polymerization was initiated using a 40 W UV tube light source at 1000 K, and when the reaction temperature reached 60°C, the UV tube light source was changed to a UV LE module with a wavelength of 365 nm and an emission of 3.5 W at full power. The polymerization was continued until a temperature of 80°C was reached. The product was dried according to the temperature profile used in Examples 1 and 3 above and ground to a particle size fraction of approximately 100 μm to 1400 μm using sieve analysis.
[0037] [Table 2]
[0038] In experiments where the intensity of the light source was varied and increased, Examples 2 and 4, the products were within the desired parameters in all three measurables, as shown in Table 2. As shown in Table 2, the products obtained from the methods used in Examples 1 and 3 invariably resulted in products having insolubles.
[0039] Continuous Belt Reaction Example 5 - High concentration cationic acrylic acid derivative polyelectrolyte Acrylamide, Adame-Quat (AETAC), and softened water were mixed in-line to obtain a monomer solution with a monomer content of 43%. The pH was adjusted to 5.5, and the monomer solution was purged with nitrogen and cooled to -5°C. The monomer solution was mixed with ABAH initiator and applied to a conveyor belt with a moving speed of 10 cm / min at a speedometer of 3000 kg / hr for a total reaction time of 30 minutes.
[0040] Polymerization was performed using a UV tube light source (Philips Cleo Performance 365 nm, 0.8–1.8 mW / cm 2The mixture was stirred using a 40W (4000 W) evaporator until it reached the end of the conveyor belt and produced a polymer gel, which was then dried and processed. At the end of the conveyor belt, the produced polymer gel was chopped, cut, dried, crushed, and sieved. Over the time range, the average brine viscosity and insoluble content of the produced material were 880 mPas and 6 ml, respectively, and the residual monomer concentration was 570 ppm, both of which are desirable standards in the industry.
[0041] Example 6 - High concentration cationic acrylic acid derivative polyelectrolyte The AETAC monomer solution described in Example 5 was mixed with ABAH, and the mixture was applied to a conveyor belt at a speedometer of 3000 kg / h, and polymerization was carried out using a UV tube light source (Philips Cleo Performance 365 nm, 0.8-1.8 mW / cm). 2 The reaction was initiated using a power of 40 W at 365 nm. When the reaction temperature was increased to 60 °C and maintained for 5 min, the UV emission intensity was adjusted to approximately 16–18 mW / cm at 365 nm until the end of the conveyor belt system was reached. 2 During this time, the monomer content of the monomer solution increased to about 47%.
[0042] However, at some point, increasing the intensity of the UV light source will be necessary, depending on factors such as layer thickness, belt speed, initiation rate, etc. Adjustments will be necessary for each polymerization, depending on the type of belt process used. In this example, the average brine viscosity did not decrease, and the insoluble content of the resulting material did not increase, averaging 800 mPa·s brine viscosity and 5 ml insoluble content. In fact, the residual monomer concentration decreased to an average of 160 ppm.
[0043] Example 7 - High concentration cationic acrylic acid derivative polyelectrolyte The AETAC monomer solution described in Example 5 was mixed with ABAH, and the mixture was applied to a conveyor belt polymerization system at a speedometer of 3000 kg / h, and the polymerization was carried out using a UV tube light source (Philips Cleo Performance 365 nm, 0.8-1.8 mW / cm). 2The reaction was initiated using a power of 40 W at 365 nm. When the reaction temperature reached 60 °C and was maintained for 5 min, the UV emission intensity was reduced to approximately 16-18 mW / cm at 365 nm. 2 During that time frame, the monomer content of the monomer solution increased from 48% to 50%. During this time, the monomer feed was increased stepwise from 3000 kg / hr to 4000 kg / hr. Despite a slight decrease in average brine viscosity, the insoluble and residual monomer concentrations remained within the target range.
[0044] Example 8 - High concentration cationic acrylic acid derivative polyelectrolyte 1.8mW / cm 2 The method described in Example 7 was used for this process, except that UV radiation of 1000 ppm was used during the entire continuous process. This resulted in an increase in viscosity and a significantly elevated residual monomer concentration, yielding over 1000 ppm. This indicates that increasing the monomer solids content in the monomer solution can lead to an out-of-spec material if it does not result in increased strength at the target temperature / reaction rate.
[0045] While the present invention has been described with respect to particular embodiments, it is apparent that numerous other forms and modifications of this invention will be apparent to those skilled in the art, and it is intended that the appended claims be construed to cover all such obvious forms and modifications which are within the true spirit and scope of the present invention.
[0046] All references in this application, including books, patents, published applications, journal articles and other publications, are hereby incorporated by reference in their entirety.
Claims
1. 1. An adiabatic gel polymerization method for producing a water-soluble polymer electrolyte, comprising: providing a monomer solution comprising aqueous acrylamide and ethylenically unsaturated monomers; - purging the monomer solution to remove oxygen from the monomer solution and adjusting the pH of the monomer solution to between 3 and 7 and the temperature to a range below 25°C and above -10°C (minus 10°C); adding a photoinitiator to the monomer solution, the photoinitiator being added to the monomer solution before or after the steps of purging and adjusting the pH of the monomer solution; - wavelength 365±50 nanometers (nm) to 395±50 nm and intensity 0.1 mW / cm until the temperature reaches 50°C to 60°C 2 ~2.5 mW / cm 2 initiating photopolymerization using a UV light source having When the reaction temperature reaches 50°C-60°C, increase the intensity of the UV light source, in this case 5 mW / cm at 365±10 nm, until the maximum reaction temperature reaches 80°C-120°C. 2 50 mW / cm at ∼365 ± 10 nm 2 increasing the intensity of the UV light source to continue polymerization and produce a gelatinous polymer; a polymerization process comprising the steps of drying said gelatinous polymer and grinding the dried product to a desired particle size.
2. 10. The method of claim 1, wherein the monomer solution is purged at a temperature of from -5°C to -10°C.
3. 10. The method of claim 1, wherein the gelatinous polymer is dried at a temperature of from 70°C to 150°C.
4. Photopolymerization is 0.2 mW / cm 2 ~2.0 mW / cm 2 The method according to any one of claims 1 to 3, wherein the method is initiated by utilizing a UV light source having an intensity of
5. The intensity of the UV light source is 15 mW / cm at 365±10 nm. 2 ~30 mW / cm at 365 ± 10 nm 2 The method according to any one of claims 1 to 4, wherein the temperature is increased to
6. 10. The method of claim 1, wherein the gelatinous polymer is dried using a temperature profile of 110°C to 120°C for 10 minutes, followed by 95°C to 105°C for 40 minutes, followed by 85°C to 95°C for 30 minutes.
7. 10. The method of claim 1, wherein the intensity of the initial UV light source is increased by at least 10 times when the temperature of the initiated polymerization reaches 50-60°C.
8. 8. The method of claim 7, wherein the intensity of the initial UV light source is increased by at least 30 times when the temperature of the initiated polymerization reaches 50°C to 60°C.
Citation Information
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