Method for producing guanidinoacetic acid
By controlling ammonia and dicyandiamide levels and adjusting the glycine:cyanamide ratio, the process effectively minimizes melamine formation, improving GAA yield and selectivity, addressing the inefficiencies in existing GAA production methods.
Patent Information
- Application Number
- JP2023513994
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-01
- Filing Date
- 2021-08-19
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2041-08-19
AI Technical Summary
Existing methods for producing guanidinoacetic acid (GAA) from cyanamide and glycine result in the formation of unwanted by-products, particularly dicyandiamide and melamine, which are difficult to control and purify, leading to reduced yield and selectivity, and economic inefficiencies.
A process that controls the ammonia and dicyandiamide content in the reaction mixture by maintaining the ammonia content at 20 g/L or less and dicyandiamide at 5 wt % or less, using pH control with acids and ammonia stripping, and adjusting the glycine:cyanamide molar ratio to 4:1 or greater, while monitoring and maintaining the pH between 8 to 10.
Significantly reduces melamine formation and improves the yield and selectivity of GAA production, enhancing the economic viability and product quality.
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Abstract
Description
[Technical Field]
[0001] Guanidinoacetic acid (GAA) is a colorless, crystalline organic compound used as an animal feed additive (WO 2005120246 / US 2011257075). GAA is a natural precursor of creatine (e.g., Humm et al., Biochem. J. (1997) 322, 771-776). Therefore, supplementation with GAA can optimize the supply of creatine in the body.
[0002] The present invention relates to a method for producing guanidinoacetic acid (GAA) by reacting cyanamide with glycine in an aqueous reaction mixture in the presence of a base.
[0003] The preparation of GAA by adding cyanamide to glycine was first described in 1861 (M. Strecker, comptes rendus 1861, 52, 1212; cited in Ber. Chem. Ges. (now: Eur. J. Inorg. Chem.) 1908, 41, 4385). A weakly alkaline aqueous ammonia solution was used as the reaction medium. More recent literature also describes reaction conditions using sodium hydroxide solution or sodium carbonate as a base for pH adjustment (e.g., CN102329250 and CN101462983).
[0004] Producing GAA from cyanamide and glycine requires an alkaline environment (pH 8-10), which is also the very same environment that can produce unwanted by-products, particularly dicyandiamide and melamine: [ka]
[0005] In the literature (EP 3677329 and CN 102329250) which present problems in this respect, two methods for producing GAA from cyanamide and glycine are described: A) Method of adding cyanamide solution to alkaline glycine solution (fed-batch; Figure 1). B) Glycine and cyanamide are added to a continuously operated reaction system, and the mother liquor containing glycine is continuously recycled after product separation (Figure 2).
[0006] A) Fed-batch: Especially at the beginning of the reaction, the setup is characterized by a large excess of glycine, which suppresses the formation of by-products. However, the provided glycine has poor pH buffering properties, so a large amount of base is required to adjust the pH value. However, as the glycine is consumed during the reaction, the buffering effect decreases, causing an excessive increase in pH and a decrease in yield and selectivity. This undesirable effect can be prevented by adding acid, but this has not yet been described. pH control by acid leads to an overall higher rate of salt formation.
[0007] B) Continuously operated reaction systems: For technical reasons, in continuous operation only a small excess of glycine is permitted in the reactor (usually glycine:cyanamide = 2:1), otherwise the circulation section would be too large, resulting in low selectivity. At the same time, by-products must be purged from the cycle, otherwise there is a risk of accumulation. However, in such purge streams, a large amount of glycine is also removed and lost.
[0008] The by-product dicyandiamide is formed in significantly greater amounts than melamine, which is a critical component as its presence is regulated in parts per million by some countries. While it is possible to purify the final GAA product in a washing step, this is laborious and involves significant losses of product and raw materials in the wash water.
[0009] CN105503659 discloses another method for preparing GAA, in which GAA is formed by adding liquid ammonia to an aqueous solution of glycine to adjust the pH to 10, heating the solution to 55°C, and adding 50% aqueous cyanamide solution. Under these conditions, the ammonia content can be considered to be kept below the 20 g / L threshold. However, CN105503659 does not disclose how to control the dicyanamide content in this reaction, nor does it disclose any method for controlling the melamine impurity obtained by this method.
[0010] Therefore, it would be desirable to prevent or significantly reduce the formation of melamine in order to improve the economics of GAA production from glycine and cyanamide while also improving product quality.
[0011] This is achieved by a process for producing guanidinoacetic acid (GAA) from glycine and cyanamide that avoids reaction conditions that promote melamine formation, particularly by a process for producing guanidinoacetic acid by reacting cyanamide with glycine in an aqueous reaction mixture in the presence of a base, where the ammonia content in the reaction mixture is controlled to 20 g / L or less, and the dicyandiamide content in the reaction mixture is maintained at 5 wt % or less.
[0012] Suitable bases for the process according to the invention are, for example, potassium or sodium hydroxides, bicarbonates or carbonates.
[0013] It is known that melamine can be formed from cyanamide or by the reaction of cyanamide with dicyandiamide. However, both reactions typically require very high temperatures (see Example 1), which cannot explain the significant melamine formation at low temperatures (see Example 2). Because typical reaction temperatures for GAA production are below 100°C, an alternative method for melamine formation is needed to rationalize the observation. Contrary to the intuitive assumption that cyanamide is always required for melamine formation in aqueous solutions below 100°C, melamine formation was observed in the absence of cyanamide (see Example 3). In fact, the presence of dicyandiamide and ammonia similarly promotes the formation of trace amounts of melamine (see Examples 4 and 5). Thus, according to the present invention, the absence of either dicyandiamide or ammonia enables the production of GAA with significantly reduced melamine content. According to the present invention, the dicyandiamide content must be below its solubility product, which depends on the pH and temperature.
[0014] The formation of dicyandiamide is typically promoted by a low glycine:cyanamide ratio or an excessively high pH during the GAA reaction. Thus, a low glycine:cyanamide ratio is a typical technical challenge in continuous GAA processes, while excessively high pH values are often observed at the end of fed-batch processes. A third aspect of dicyandiamide accumulation, which applies to both GAA processes, is the recirculation of mother liquor, which strongly influences the actual dicyandiamide level. Slight ammonia formation is observed throughout the GAA process. However, ammonia formation is greatly promoted at excessively high pH values, which is particularly challenging for fed-batch processes. Alternatively, ammonia can be used as a base in the GAA process, directly resulting in the presence of large amounts of this compound. To reduce ammonia content or avoid its formation, it is preferable not to use ammonia as a base, and the reaction pH should be carefully monitored and maintained below 10, which is particularly important for fed-batch processes. Alternatively, ammonia can be removed from the aqueous solution by stripping, which is effective in both process types.
[0015] Thus, in the process according to the invention, the ammonia content can be controlled by at least one of the following means: (a) Stripping the ammonia from the reaction mixture, which on a laboratory scale means high speed stirring to increase the surface area, or on an industrial scale stripping with an inert gas, such as nitrogen or air. (b) Adding organic or inorganic acids when the pH value rises to a level above pH=10.
[0016] The pH of the reaction mixture can be measured by an electronic pH meter or pH paper.
[0017] The dicyandiamide content can be controlled by continuously adding cyanamide and glycine to the reaction mixture while glycine is being added to the reaction mixture so that the molar ratio of glycine:cyanamide in the reaction mixture is at least 4:1. This can be achieved by simultaneously adding cyanamide and glycine to a premixed aqueous solution containing glycine and a base, thereby continuously reacting the cyanamide with a molar excess of glycine, and adjusting the rate of simultaneous addition of cyanamide and glycine so that the molar ratio of base to glycine in the reaction mixture remains constant in the range of 0.1 to 0.4 throughout the entire period of simultaneous addition of cyanamide and glycine.
[0018] This particular method, in which the molar ratio of glycine:cyanamide in the reaction mixture is 4:1 or greater during the addition of glycine to the reaction mixture, can be modified in that the cyanamide is reacted with an overall equimolar amount of glycine, and in a subsequent step, the remaining molar amount of cyanamide is continuously added to the glycine-containing reaction mixture without the glycine (resulting in an overall equimolar amount of cyanamide and glycine) while the pH of the reaction mixture is maintained within the range of about 8 to about 10 by the addition of acid during this subsequent step. Ideally, the pH of the reaction mixture is maintained within the range of about 8 to about 10 by the addition of acid during this subsequent step.
[0019] The acid added to the reaction mixture to control the pH may be sulfurous acid, acetic acid, hydrochloric acid, carbonic acid, carbon dioxide, formic acid or phosphoric acid, preferably acetic acid and sulfurous acid or the amino acid glycine.
[0020] In the process according to the invention, the dicyandiamide content can be controlled by precipitating dicyandiamide from the reaction mixture, and a suitable precipitation method, expressly referred to, is disclosed, for example, in Chinese Utility Model Publication No. 211099033.
[0021] In one embodiment, the yield of GAA relative to cyanamide is at least 15 mol %, preferably at least 45 mol %, more preferably at least 60 mol %, even more preferably at least 70 mol %, and most preferably at least 90 mol %. [Brief explanation of the drawings]
[0022] [Figure 1] FIG. 1 illustrates fed-batch. [Figure 2] FIG. 1 is a diagram showing a continuously operated reaction system.
[0023] Experimental section General Information Supplier: - Glycine (pa): Merck KGaA, Darmstadt (Germany) - Cyanamide, 50% in H2O: ABCR GmbH, Karlsruhe (Germany) - Dicyandiamide: Alfa Aesar as part of Thermo Fischer Scientific, Kandel (Germany) - Sodium hydroxide: Merck KGaA, Darmstadt (Germany) - Ammonia, 25% in H2O: Merck KGaA, Darmstadt (Germany)
[0024] Equipment: - 250mL three-neck flask - 300mL pressure vessel
[0025] Analytical equipment: - GAA analysis with Agilent HPC Derivatization: None Column: Zorbax SB-Phenyl; Column temperature: 30°C UV detection at 200nm Eluent: 1780 g H2O + 68 g orthophosphoric acid, 85 wt% in H2O ·Flow rate: 0.4mL / min ·Holding time: 15.1 minutes - Melamine analysis using Agilent HPC Derivatization: None Column: HiChrom Alltima 5μm C18; Column temperature: 20℃ UV detection at 210nm Eluent A: 1780 g H2O + 68 g orthophosphoric acid, 85 wt% in H2O Eluent B: Acetonitrile Time / Flow Program: [Table 1] ·Holding time: 18.0 minutes The pH of the reaction mixture can be measured by an electronic pH meter or pH paper.
[0026] Example 1 Dicyandiamide (8.4 g, 100 mmol) and aqueous cyanamide solution (8.4 g, 50 wt %, 100 mmol) were mixed in a 300 mL pressure vessel and then heated to 120° C. under stirring for 4 hours (pH value of the suspension = 5). The amount of melamine formed was determined by HPLC analysis of the reaction mixture formed. Melamine production: 7.0 mmol
[0027] Example 2 Dicyandiamide (8.4 g, 100 mmol) and aqueous sodium hydroxide (10 g, 0.004 wt % in water, 0.01 mmol, pH value of the suspension = 9) were mixed in a 300 mL pressure vessel and then heated to 90° C. under stirring for 4 hours. The amount of melamine formed was determined by HPLC analysis of the reaction mixture formed. Melamine production: 0.1 mmol
[0028] Example 3 Dicyandiamide (8.4 g, 100 mmol) and aqueous sodium hydroxide (10 g, 0.004 wt %, 0.01 mmol) were mixed in a 300 mL pressure vessel (pH value of the suspension = 10). The reaction mixture was heated to 90 °C under stirring for 4 h. The amount of melamine formed was determined by HPLC analysis of the reaction mixture formed. Melamine production: 5.0 mmol
[0029] Example 4 Dicyandiamide (8.4 g, 100 mmol), water (45 g), sodium hydroxide (0.3 g, 8.5 mmol), and aqueous ammonia (5.3 g, 32 wt%, 100 mmol) were mixed in a 300 mL pressure vessel (pH value of the suspension = 11). Aqueous cyanamide solution (8.4 g, 50 wt%, 100 mmol) was added and the reaction mixture was heated to 90 °C under stirring for 4 hours. The amount of melamine formed was determined by HPLC analysis of the reaction mixture. Melamine production: 4.6 mmol
[0030] Example 5 Dicyandiamide (8.4 g, 100 mmol) and aqueous ammonia (5.3 g, 32 wt %, 100 mmol) were mixed in a 300 mL pressure vessel. Aqueous cyanamide (8.4 g, 50 wt %, 100 mmol) was added and the reaction mixture was heated to 90° C. with stirring for 4 hours. The amount of melamine formed was determined by HPLC analysis of the reaction mixture. Melamine production: 5.0 mmol
[0031] [Table 2]
[0032] Example 6 - Synthesis of GAA according to the present invention but with increased dicyandiamide content (closed system) Dicyandiamide (8.4 g, 100 mmol), water (50 g), sodium hydroxide (0.65 g, 16 mmol), and glycine (7.5 g, 100 mmol) were mixed in a 300 mL pressure vessel (pH value of the suspension = 9.5). An aqueous solution of cyanamide (8.4 g, 50 wt %, 100 mmol) was added. The reaction mixture was heated to 90 °C under stirring for 4 hours to ensure complete reaction to GAA. Both the amount of melamine and the amount of GAA produced were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 91% Melamine production: 0.4 mmol
[0033] Example 7 - Synthesis of GAA according to the present invention but with increased dicyandiamide content (open system) Dicyandiamide (8.4 g, 100 mmol), water (50 g), sodium hydroxide (0.65 g, 16 mmol), and glycine (7.5 g, 100 mmol) were mixed in a 250 mL three-neck flask (pH value of the suspension = 9.5). An aqueous cyanamide solution (8.4 g, 50 wt %, 100 mmol) was added. The reaction mixture was heated to 90 °C under stirring for 4 hours to ensure complete reaction to GAA. High-speed stirring increases the surface area, which means that ammonia can easily escape from the reaction mixture. Ammonia was clearly odored in the gas phase. Both the melamine and GAA production amounts were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 93% Melamine production: 0.4 mmol
[0034] Example 8 - GAA synthesis at high dicyandiamide content and high pH (closed system) Dicyandiamide (8.4 g, 100 mmol), water (50 g), sodium hydroxide (4.0 g, 100 mmol), and glycine (7.5 g, 100 mmol) were mixed in a 300 mL pressure vessel (pH of the suspension = 12). Aqueous cyanamide solution (8.4 g, 50 wt %, 100 mmol) was added. The reaction mixture was heated to 90°C with stirring for 4 hours to ensure complete reaction to GAA. Both the amount of melamine and the amount of GAA produced were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 44% Melamine production: 9.4 mmol
[0035] Example 9 - GAA synthesis at high dicyandiamide content and high pH (open system) Dicyandiamide (8.4 g, 100 mmol), water (50 g), sodium hydroxide (4.0 g, 100 mmol), and glycine (7.5 g, 100 mmol) were mixed in a 250 mL three-neck flask (pH of the suspension = 12). Aqueous cyanamide solution (8.4 g, 50 wt %, 100 mmol) was added. The reaction mixture was heated to 90°C with stirring for 4 hours to ensure complete reaction to GAA. Both the amount of melamine and the amount of GAA produced were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 37% Melamine production: 4.1 mmol
[0036] Example 10 - GAA synthesis at high pH (closed system) Glycine (7.5 g, 100 mmol), water (58 g), and sodium hydroxide (4.0 g, 100 mmol) were mixed in a 300 mL pressure vessel (pH of the suspension = 12). Aqueous cyanamide solution (8.4 g, 50 wt %, 100 mmol) was added. The reaction mixture was heated to 90°C under stirring for 4 hours to ensure complete reaction to GAA. Both the amount of melamine and the amount of GAA produced were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 22% Melamine production: 0.9 mmol
[0037] Example 11 - GAA synthesis at high pH (open system) Glycine (7.5 g, 100 mmol), water (58 g), and sodium hydroxide (4.0 g, 100 mmol) were mixed in a 250 mL three-neck flask (pH of the suspension = 12). Aqueous cyanamide solution (8.4 g, 50 wt %, 100 mmol) was added. The reaction mixture was heated to 90°C under stirring for 4 hours to ensure complete reaction to GAA. Both the amount of melamine and the amount of GAA produced were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 17% Melamine production: 0.8 mmol
[0038] [Table 3]
[0039] Examples 6 to 11: General Notes Examples 6 and 7 were carried out under conditions according to the invention, but with the addition of an equimolar amount of dicyanamide (100 mmol / 11 wt %) to the reaction mixture. These examples show that reactions under ammonia-free and non-ammonia-forming conditions (pH=9.5) still result in very low melamine concentrations, even when additional dicyandiamide is added to the reaction mixture.
[0040] Examples 8 and 9: For reactions under ammonia-containing and ammonia-forming conditions (pH>10), the presence of dicyandiamide in the reaction mixture leads to higher melamine concentrations.
[0041] Examples 10 and 11: For reactions under ammonia-free and ammonia-forming conditions (pH>10), the absence of dicyandiamide in the reaction mixture leads to low melamine concentrations.
[0042] "Closed" means a system in which the formed ammonia cannot escape. This system corresponds to a real production plant. Although a real production plant is not a closed system, the ammonia does not easily escape due to its large volume. Therefore, high ammonia concentration values are also present here.
[0043] "Open" refers to a small, open system with a stirrer, which simplifies the ammonia escape and allows for the simulation of ammonia "stripping." The experiment indeed confirmed that even under conditions of high melamine content, less melamine was obtained compared to a closed system.
[0044] Example 12: Method for producing GAA according to the present invention Glycine (4.3 kg, 57 mol), water (11.4 kg), and sodium hydroxide (50% in water, 1.5 kg, 18.9 mol) were mixed. Aqueous cyanamide solution (50.4% in water, 3.4 kg, 40.5 mol) was added at 18 mL / min over 178 min. The reaction was stirred at 90 °C for 5 h to ensure complete conversion to GAA. High-speed stirring increases the surface area, which means that ammonia can easily escape from the reaction mixture. Ammonia was clearly odored in the gas phase. The ammonium concentration of the reaction mixture was tested using a commercially available colorimetric test kit (Merck, Ammonium Test with MQUANT®). The ammonia concentration during the reaction ranged from 5 g / L to 8 g / L. The amounts of GAA and dicyandiamide produced were determined by HPLC analysis of the formed suspension. GAA yield relative to cyanamide: 67% Dicyandiamide 1.8% by weight
[0045] Example 13: A method for producing GAA according to the present invention with pH control In a 50 L reactor, cyanamide (50 wt% in HO, 4.5 kg, 54 mol, 1.0 eq, 24 mL / min in 178 min) was added to a stirred aqueous solution of glycine (5.8 kg, 77 mol, 1.4 eq) and sodium hydroxide (50 wt% in HO, 1.2 kg, 15 mol) (16 kg water, glycine content of the solution: 25 wt%) at 82 °C. After stirring for an additional 2 h at 82 °C, the GAA yield was determined by HPLC analysis of the formed suspension. pH value at the start of the reaction: 9, pH value at the end of the reaction: 10 GAA yield: 88% (5.6 kg) Dicyandiamide 1.8% by weight
[0046] Example 14: Method for producing GAA according to the present invention with sequential addition of cyanamide and glycine and pH control In a 50 L reactor, an aqueous solution of cyanamide (50 wt% in HO, 4.5 kg, 54 mol, 1.0 eq, 24 mL / min in 178 min) and glycine (4.6 kg, 62 mol, 1.1 eq) (14 kg water, glycine content of the solution: 25 wt%, total 107 mL / min in 178 min) was added to an aqueous solution of glycine (1.2 kg, 15 mol, 0.28 eq) and sodium hydroxide (50 wt% in HO, 0.30 kg, 3.8 mol) (3.2 kg water, glycine content of the solution: 25 wt%) at 82 °C with stirring. After stirring for an additional 2 h at 82 °C, the GAA yield was determined by HPLC analysis of the formed suspension. pH value at the start of the reaction: 9.5, pH value at the end of the reaction: 8.9 GAA yield: 89% (5.7 kg) Dicyandiamide 3.6% by weight
Claims
1. 1. A method for producing guanidinoacetic acid by reacting cyanamide with glycine in an aqueous reaction mixture in the presence of a base, the method comprising controlling the ammonia content in the reaction mixture to 20 g / L or less, and maintaining the dicyandiamide content in the reaction mixture to 5 wt. % or less by continuously adding cyanamide, or cyanamide and glycine, to a premixed aqueous solution containing glycine and the base.
2. The ammonia content was measured by the following means: (a) stripping ammonia from the reaction mixture; (b) adding an organic or inorganic acid when the pH value of the reaction mixture rises to a level above pH=10; The method of claim 1 , wherein the control is performed by at least one of the following:
3. 3. The method of claim 1 or 2, wherein the dicyandiamide content is controlled by continuously adding cyanamide and glycine to the reaction mixture while glycine is being added to the reaction mixture such that the molar ratio of glycine:cyanamide in the reaction mixture is 4:1 or greater.
4. 4. The method of claim 3, wherein cyanamide is continuously reacted with a molar excess of glycine by simultaneously adding cyanamide and glycine to a premixed aqueous solution containing glycine and said base, and the rate of simultaneous addition of cyanamide and glycine is adjusted so that the molar ratio of base to glycine in said reaction mixture is maintained constant in the range of 0.1 to 0.4 throughout the entire period of simultaneous addition of cyanamide and glycine.
5. 5. The method of claim 4, wherein cyanamide is reacted with an overall equimolar amount of glycine, and in a subsequent step, the remaining cyanamide is added continuously to the glycine-containing reaction mixture without glycine, while maintaining the pH of the reaction mixture within the range of 8 to 10 by the addition of acid.
Citation Information
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Process for preparing guanidino acetic acid
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