WO2000037535A1 - Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels - Google Patents
Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels Download PDFInfo
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- WO2000037535A1 WO2000037535A1 PCT/US1999/028239 US9928239W WO0037535A1 WO 2000037535 A1 WO2000037535 A1 WO 2000037535A1 US 9928239 W US9928239 W US 9928239W WO 0037535 A1 WO0037535 A1 WO 0037535A1
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- acid
- diamine
- dinitrile
- grams
- adiponitrile
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G69/00—Macromolecular compounds obtained by reactions forming a carboxylic amide link in the main chain of the macromolecule
- C08G69/02—Polyamides derived from amino-carboxylic acids or from polyamines and polycarboxylic acids
- C08G69/04—Preparatory processes
-
- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G69/00—Macromolecular compounds obtained by reactions forming a carboxylic amide link in the main chain of the macromolecule
- C08G69/02—Polyamides derived from amino-carboxylic acids or from polyamines and polycarboxylic acids
- C08G69/26—Polyamides derived from amino-carboxylic acids or from polyamines and polycarboxylic acids derived from polyamines and polycarboxylic acids
- C08G69/28—Preparatory processes
Definitions
- This invention relates to a process for the hydrolysis of adiponitrile and production of nylon 6,6. More specifically, the invention relates to the catalytic hydrolysis of adiponitrile at low catalyst levels.
- Polyamides are currently produced commercially from dicarboxylic acids and diamines.
- nylon 6,6 is commercially produced from adipic acid and hexamethylenediamine. Alternate routes to these materials have been explored within the art.
- the art has taught processes to produce nylon 6,6 from adiponitrile and hexamethylenediamine.
- U.S. Patent No. 2,245,129 discloses a process to produce polyamides by reacting adiponitrile, hexamethylenediamine, and water at high temperatures and pressures.
- a modified process to react adiponitrile with hexamethylenediamine and water was disclosed in U.S. Patent No. 3,847,876. Catalysts were introduced into the processes to promote this reaction as disclosed by U.S. Patent Nos. 4,490,521; 4,542,205;
- U.S. Patent No. 4,501,881 discloses a process to form polyamides from adiponitrile, hexamethylenediamine, adipic acid and water.
- a significant shortcoming of these before mentioned processes to produce polyamides from adiponitrile and hexamethylenediamine is the production of significant levels of the dimer of the aliphatic diamine. In the case of hexamethylenediamine, the dimer product would be bis(hexamethylene)triamine (BHMT).
- BHMT bis(hexamethylene)triamine
- Such a two step process provided triamine levels in the 560 to 1,300 ppm levels versus the 1 ,420 to 1,610 ppm levels found through the teachings of other background art.
- the patent teaches the use of 5 grams of orthophosphorous acid and 1.8 grams of calcium hypophosphite catalyst in the hydrolysis of 487 grams of adiponitrile, (see U.S. Patent No. 5,627,257, Example 1).
- the present invention overcomes the shortcomings of the background art providing polyamides with low levels of triamine impurities without the need for substantial amounts of catalysts.
- the present invention provides a two step process (i.e., nitrile hydrolysis followed by the addition of the diamine and polymerization) utilizing low levels of catalysts.
- the polyamide product of the invention has been found to have enhanced melt stability when compared to two step processes of the background art which utilize significantly higher levels of catalysts, (see, for example, U.S. Patent No. 5,627,257).
- One aspect of the present invention involves the hydrolysis of nitriles through a process which incorporates low levels of catalysts. This process involves heating the nitrile, water, a cocatalyst, and a catalyst in the temperature range of 200 to 300 ° C. Surprisingly it has been found that this process provides essentially complete nitrile hydrolysis without the need of the high levels of catalyst required in the above mentioned background art.
- a further aspect of the present invention comprises the use of the as formed nitrile hydrolysate in the production of polyamides. This was performed by adding the diamine to the hydrolysate followed by heating and polymerization. Surprisingly the produced polyamides of the present invention have been found to have enhanced melt stability when compared to those produced with background art levels of catalysts.
- the present invention provides an improved process for producing polyamide comprising the steps of: (a) reacting a dinitrile containing 2 to 20 carbon atoms with at least a stoichiometric amount of water in the presence of from 0.1 to 500 mmoles of catalyst per mole of the dinitrile and in the presence of from 0.01 to 0.5 moles of a dicarboxylic acid cocatalyst at a temperature from 200 to 300 ° C in the absence of air for a time sufficient for at least 95 mole % of the dinitrile to undergo hydrolysis and form a hydrolysate; (b) adding a diamine to the hydrolysate formed in step (a), wherein the amount of diamine is within 10 mole % of equimolar based on the starting amount of dinitrile; (c) heating the hydrolysate and diamine mixture in the presence of water for a time sufficient to polymerize; and then (d) recovering polyamide characterized by low triamine content and improved melt stability.
- the dinitrile is selected from the group consisting of adiponitrile, suberonitrile, sebaconitrile, 1,12-dodecane dinitrile, terephthalonitrile, and methyl glutaronitrile
- the catalyst is selected from the group consisting of phosphoric acid, phosphorous acid, hypophosphorous acid, pyrophosphoric acid, sodium hypophosphite hydrate, manganese(II)hypophosphite monohydrate, calcium hypophosphite, sulfuric acid, sulfamic acid, sodium bisulfate, ammonium hydrogen sulfate, phosphotungstic acid hydrate, phosphomolybdic acid hydrate, zinc acetate dihydrate, zinc sulfate heptahydrate, copper(II)acetate monohydrate, calcium acetate, acetic acid, glycolic acid, lanthanum trifluoromethanesulfonate, manganese(II)acetate tetrahydrate, cety
- the dinitrile is adiponitrile
- the diamine is hexamethylenediamine
- the catalyst is a mixture of phosphorous acid and calcium hypophosphite
- the dicarboxylic acid is adipic acid and wherein the recovered polyamide (nylon 6,6) is characterized by a BHMT content of below 1,000 ppm.
- One aspect of the present invention involves the hydrolysis of nitriles through a process which employs low levels of catalysts. This process involves heating the nitrile, water, a cocatalyst and a catalyst in the temperature range of 200 to 300 ° C. Surprisingly it has been found that this process provides essentially complete nitrile hydrolysis without the need of the high levels of catalyst required in the above mentioned background art.
- nitrile is meant to include any material which incorporates a nitrile functionality.
- the nitrile will be a dinitrile containing from 2 to 20 carbons.
- the dinitrile may be aliphatic, straight chain or branched, or aromatic.
- the dinitrile may contain other functionalities.
- Specific examples of dinitriles which may find use within the present invention include adiponitrile, suberonitrile, sebaconitrile, 1,12-dodecane dinitrile, terephthalonitrile, methyl glutaronitrile, and the like. More preferably, the dinitrile is adiponitrile.
- Water is used in the present invention both as a reactant in the hydrolysis of the nitrile and as a processing aid in the polymerization.
- the amount of water required in the nitrile hydrolysis step should be at least equal in stoichiometry to the amount of nitrile to be hydrolyzed.
- the catalyst component of the present invention may include any substance which promotes the hydrolysis of nitriles, and/or the polymerization of the resultant hydrolysate with diamines to form polyamides.
- the intimate functional details of the catalyst are not fully known. These may include catalysts identified within the background art, above. Representative classes of catalysts may include oxygen-containing phosphorus compounds, oxygen-containing boron compounds, oxygen-containing sulfur compounds, metal-containing compounds, such as copper or manganese, aliphatic and aromatic carboxylic acids, Lewis acids and the like.
- catalysts include phosphoric acid, phosphorous acid, hypophosphorous acid, pyrophosphoric acid, sodium hypophosphite hydrate, manganese(II)hypophosphite monohydrate, calcium hypophosphite, sulfuric acid, sulfamic acid, sodium bisulfate, ammonium hydrogen sulfate, phosphotungstic acid hydrate, phosphomolybdic acid hydrate, zinc acetate dihydrate, zinc sulfate heptahydrate, copper(II)acetate monohydrate, calcium acetate, acetic acid, glycolic acid, lanthanum trifluoromethanesulfonate, manganese(II)acetate tetrahydrate, cetyltrimethylammonium bromide, 12-molybdosilicic acid hydrate, mixtures of the same and the like.
- An effective amount of catalyst to promote the hydrolysis is needed in the present invention. The effective amount of catalyst will depend on the catalyst type. Typically this falls within the range of 0.10
- the cocatalyst component of the present invention includes aliphatic and aromatic dicarboxylic acids.
- the dicarboxylic acids may contain from 2 to 20 carbons. Specific examples include adipic acid and terephthalic acid, but this should not be considered limiting.
- An effective amount of the cocatalyst to promote the hydrolysis is needed in the present invention.
- the effective amount of cocatalyst will depend on the cocatalyst type, hydrolysis process conditions and the like.
- the level of the cocatalyst may range from about 1 to 50 mole percent of cocatalyst based on dinitrile. Preferably, this falls within the range of about 5 to 20 mole percent of cocatalyst based on dinitrile.
- the hydrolysis process involves heating the nitrile, water, cocatalyst and a catalyst in the temperature range of 200 to 300 °C.
- the reactor design is not critical.
- the reactor may be a stirred autoclave, an unstirred autoclave, a column reactor, a tube reactor, a loop reactor and the like.
- the process is generally run in the absence of air.
- the air may be removed by any known process. Examples include purging the reactor with inert gases, such as nitrogen or argon, evacuating the reactor and filling it with inert gases, pressurizing the reactor with inert gases followed by venting to 1 atmosphere, and the like. These processes may repeated as many times as desired.
- the temperature range of the process is determined by the rate of the hydrolysis reaction.
- the reaction temperature may remain constant throughout the course of the reaction or may be varied.
- the reaction pressure may be within the range of about 25 to 1 ,000 psig.
- the reaction pressure may be controlled by the amount of water added, the temperature, the vent setting or a combination of the same.
- the length of the hydrolysis process will be a function of the reaction temperature, process design, reaction catalyst type and level and the like.
- the time should be long enough to effectively hydrolyze at least 95 mole percent of the nitrile. Preferably, the time should be long enough to effectively hydrolyze at least 98 mole percent of the nitrile.
- a further aspect of the present invention comprises the use of the as formed nitrile hydrolysate in the production of polyamides. This was performed by adding the diamine to the hydrolysate followed by heating and polymerization.
- diamine is meant to include any material which incorporates two amine functions.
- the diamine will contain from
- the diamine may be aliphatic, straight chain or branched, or aromatic.
- the diamine may contain other functionalities. Specific examples of diamines which may find use in the present invention include hexamethylenediamine, tetramethylenediamine, 1 ,12-dodecane diamine, and p- xylene diamine.
- the diamine should be added at a level of within 10 mole percent of equimolar based on the nitrile. The exact level will be determined by the molecular weight desired, the reactor design, losses of the nitrile during the hydrolysis process, losses of diamine during the polymerization process and the like.
- Other substances may be added with the diamine. Examples of the substances may include water, stabilizers, polymerization catalysts, processing aids and the like.
- the polymerization process involves heating the nitrile hydrolysate, diamine, and water in the temperature range of 200 to 350 °C.
- the reactor design is not critical.
- the reactor may be the same reactor design used for the hydrolysis process or may be different.
- the reactor may be a stirred autoclave, an unstirred autoclave, a column reactor, a tube reactor, a loop reactor, or the like.
- the process is generally run in the absence of air.
- the air may be removed by any known process. Examples include purging the reactor with inert gases, such as nitrogen or argon, evacuating the reactor and filling it with inert gases, pressurizing the reactor with inert gases followed by venting to 1 atmosphere and the like. These processes may be repeated as many times as desired.
- the temperature range of the process is determined by the rate of the polymerization and the melting point of the product polymer.
- the temperature will generally be in the range of 200 to 350 °C.
- the pressure in the polymerization process may be in the range of 0 to 1 ,000 psig or may be performed under vacuum. The pressure may be constant throughout the polymerization process or may be varied. Generally the pressure will be reduced during the polymerization process.
- the polymerization process will require a sufficient time to form polymer. This time will be a function of the specific reactants, the product desired, the reaction temperature, the reaction pressure, and the like. Generally the polymerization process will require from 0.1 to 10 hours.
- the polymerization should be conducted within specific temperature/pressure stages.
- the specific temperature/pressure profile will generally depend on the specific reactants used and the product desired.
- the polymerization process may include heating the reactants to 250 to 310 °C with pressures between 200 and 300 psig, (set by the vent), followed by reducing the pressure and finishing in the temperature range of about 250 to 310 °C. This should not be considered limiting.
- adiponitrile hydrolysis level and products were determined by high pressure liquid chromatography (HPLC) analysis.
- Relative viscosity (RN) of the polymer samples was determined as a 8.4 weight percent polymer solution in 90.0 % formic acid.
- Polyamide end group analysis was determined by titration.
- bis(hexamethylene)triamine (BHMT) levels were determined by gas chromatography (GC) analysis of the polyamide hydrolysate, all as generally known in the art.
- the autoclave was pressurized to 60 psig with nitrogen and then the pressure was released. This operation was repeated for a total of 6 times. With stirring, the autoclave was heated to 270 °C. After achieving 270 °C, a peak autogenous pressure of 635 psig was observed. During the course of this operation the pressure slowly reduced to
- a mixture of adiponitrile (150.00 grams), water (125.00 grams), phosphorous acid (0.075 grams), calcium hypophosphite (0.027 grams), and adipic acid (22.50 grams) was added to a 1 liter stainless steel autoclave at room temperature.
- the autoclave was pressurized to 60 psig with nitrogen and the pressure was then released. This operation was repeated for a total of 6 times.
- Example 2 A mixture of adiponitrile (150.00 grams), water (125.00 grams), phosphorous acid (0.075 grams), calcium hypophosphite (0.027 grams), and adipic acid (22.50 grams) was added to a 1 liter stainless steel autoclave at room temperature. The autoclave was pressurized to 60 psig with nitrogen and the pressure was then released. This operation was repeated for a total of 6 times.
- a mixture of adiponitrile (100.00 grams), water (80.00 grams), phosphorous acid (0.050 grams), calcium hypophosphite (0.018 grams), and adipic acid (15.00 grams) was added to a 400 cc stainless steel shaker tube at room temperature.
- the shaker tube was pressurized to 60 psig with nitrogen and the pressure was then released. This operation was repeated for a total of 6 times.
- Example 4 A mixture of adiponitrile (100.00 grams), water (80.00 grams), phosphorous acid (0.050 grams), calcium hypophosphite (0.018 grams), and adipic acid (15.00 grams) was added to a 400 cc stainless steel shaker tube at room temperature. The shaker tube was pressurized to 60 psig with nitrogen and the pressure was then released. This operation was repeated for a total of 6 times. With shaking, the shaker tube was heated to 230 °C. After 8 hours at 230 °C, the shaker tube was allowed to cool to room temperature. The contents of the autoclave were analyzed by HPLC with the results shown above in Table 2. Example 5.
- a mixture of adiponitrile (100.00 grams), water (166.60 grams), phosphorous acid (0.050 grams), calcium hypophosphite (0.018 grams), and adipic acid (15.00 grams) was added to a 400 cc stainless steel shaker tube at room temperature.
- the shaker tube was pressurized to 60 psig with nitrogen and the pressure was then released. This operation was repeated for a total of 6 times. With shaking, the shaker tube was heated to 250 °C. After 3 hours at 250 °C, the shaker tube was allowed to cool to room temperature.
- the contents of the shaker tube were analyzed by HPLC with the results shown above in Table 2.
- Example 6 A mixture of adiponitrile (100.00 grams), water (166.60 grams), phosphorous acid (0.050 grams), calcium hypophosphite (0.018 grams), and adipic acid (15.00 grams) was added to a 400 cc stainless steel shaker tube at room temperature. The shaker tube was pressurized to 60 psig with nitrogen and the pressure was then released. This operation was repeated for a total of 6 times. With shaking, the shaker tube was heated to 250 °C. After 5 hours at 250 °C, the shaker tube was allowed to cool to room temperature. The contents of the shaker tube were analyzed by HPLC with the results shown above in Table 2. Comparative Example C2 and Examples 7 to 28.
- a mixture of adiponitrile (40.00 grams), water (33.26 grams), phosphorous acid (0.41 grams), calcium hypophosphite (0.15 grams), and adipic acid (6.00 grams) was added to a 300 cc stainless steel autoclave.
- the autoclave was pressurized to 300 psig with nitrogen and then the pressure was released. This operation was repeated for a total of 3 times.
- the autoclave was pressurized to
- Example 29 A mixture of adiponitrile (40.00 grams), water (33.26 grams), phosphorous acid (0.0205 grams), calcium hypophosphite (0.0075 grams), and adipic acid (6.00 grams) was added to a 300 cc stainless steel autoclave. The autoclave was pressurized to 300 psig with nitrogen and then the pressure was released. This operation was repeated for a total of 3 times. The autoclave was pressurized to 300 psig with nitrogen and then the pressure was vented to 10 psig nitrogen and heated to 230 °C with stirring. After 6 hours at 230 °C, the autoclave was allowed to cool to room temperature.
- the autoclave was opened and hexamethylenediamine (68.46 grams of a 69.76 weight percent aqueous hexamethylenediamine solution) was added. The autoclave was resealed. The autoclave was pressurized to 300 psig with nitrogen and then the pressure was released. This operation was repeated for a total of 3 times. The autoclave was pressurized to 300 psig with nitrogen and then the pressure was vented to 10 psig nitrogen. With stirring, the autoclave was heated to 270 °C with the vent set at 200 psig. After achieving 270 °C, the pressure was reduced down to atmospheric pressure over 20 minutes.
- Example 30 A mixture of adiponitrile (2353 grams), water (1958 grams), phosphorous acid (1.21 grams), calcium hypophosphite (0.44 grams), and adipic acid (353 grams) was added to a 35 gallon stainless steel autoclave. The autoclave was flushed with nitrogen and heated to 230 °C with stirring. After 6 hours at 230 °C, the autoclave was allowed to cool to room temperature.
- the autoclave was opened and a small sample of the hydrolysate was analyzed by HPLC and found to contain 1 1.8 weight percent adipamide, 61.3 weight percent adipamic acid, no detectable amount of 5-cyanovaleramide, 26.9 weight percent adipic acid, and no detectable amount of 5 -cyanovaleric acid.
- Hexamethylenediamine (3,383 grams of a 81.98 weight percent aqueous hexamethylenediamine solution), was added to the autoclave. The autoclave was resealed. The autoclave was flushed with nitrogen. With stirring, the autoclave was heated to 275 °C with the vent set at 250 psig.
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Priority Applications (5)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
DE69916652T DE69916652T2 (en) | 1998-12-22 | 1999-11-30 | PROCESS FOR HYDROLYSIS OF ADIPONITRILE AND FOR THE PRODUCTION OF NYLON 66 USING LITTLE CATALYST |
CA002347819A CA2347819C (en) | 1998-12-22 | 1999-11-30 | Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels |
EP99961859A EP1141087B1 (en) | 1998-12-22 | 1999-11-30 | Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels |
BR9917021-3A BR9917021A (en) | 1998-12-22 | 1999-11-30 | Polyamide production process |
JP2000589600A JP4425473B2 (en) | 1998-12-22 | 1999-11-30 | Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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US09/217,799 | 1998-12-22 | ||
US09/217,799 US6084056A (en) | 1998-12-22 | 1998-12-22 | Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels |
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WO2000037535A1 true WO2000037535A1 (en) | 2000-06-29 |
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PCT/US1999/028239 WO2000037535A1 (en) | 1998-12-22 | 1999-11-30 | Process for the hydrolysis of adiponitrile and the production of nylon 6,6 utilizing low catalyst levels |
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US (1) | US6084056A (en) |
EP (1) | EP1141087B1 (en) |
JP (1) | JP4425473B2 (en) |
KR (1) | KR20010082763A (en) |
CN (1) | CN1272364C (en) |
BR (1) | BR9917021A (en) |
CA (1) | CA2347819C (en) |
DE (1) | DE69916652T2 (en) |
MX (1) | MX220674B (en) |
MY (1) | MY117664A (en) |
TW (1) | TW576845B (en) |
WO (1) | WO2000037535A1 (en) |
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EP2920234A4 (en) * | 2012-11-16 | 2016-07-06 | Rhodia Operations | Thermoplastic polymer composition comprising an alkali metal hypophosphite salt |
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US6509439B1 (en) * | 2000-04-14 | 2003-01-21 | E. I. Du Pont De Nemours And Company | Process for the production of polyamides from dinitriles and diamines |
GB2379414A (en) * | 2001-09-10 | 2003-03-12 | Seiko Epson Corp | Method of forming a large flexible electronic display on a substrate using an inkjet head(s) disposed about a vacuum roller holding the substrate |
KR102262328B1 (en) | 2019-09-24 | 2021-06-09 | 한국과학기술연구원 | Catalyst for hydrolysis of chemical warfare agents with enhanced activity and recyclability |
CN113429316A (en) * | 2021-06-30 | 2021-09-24 | 瑞典国际化工技术有限公司 | Method for refining adiponitrile |
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WO1998008889A2 (en) * | 1996-08-30 | 1998-03-05 | Basf Aktiengesellschaft | Process for producing polyamides from aminonitriles |
-
1998
- 1998-12-22 US US09/217,799 patent/US6084056A/en not_active Expired - Lifetime
-
1999
- 1999-11-30 CN CNB998149799A patent/CN1272364C/en not_active Expired - Fee Related
- 1999-11-30 DE DE69916652T patent/DE69916652T2/en not_active Expired - Lifetime
- 1999-11-30 CA CA002347819A patent/CA2347819C/en not_active Expired - Fee Related
- 1999-11-30 BR BR9917021-3A patent/BR9917021A/en not_active IP Right Cessation
- 1999-11-30 KR KR1020017007900A patent/KR20010082763A/en not_active Application Discontinuation
- 1999-11-30 EP EP99961859A patent/EP1141087B1/en not_active Expired - Lifetime
- 1999-11-30 JP JP2000589600A patent/JP4425473B2/en not_active Expired - Fee Related
- 1999-11-30 WO PCT/US1999/028239 patent/WO2000037535A1/en not_active Application Discontinuation
- 1999-12-14 TW TW088121893A patent/TW576845B/en not_active IP Right Cessation
- 1999-12-21 MY MYPI99005618A patent/MY117664A/en unknown
-
2001
- 2001-06-20 MX MXPA01006338 patent/MX220674B/en not_active IP Right Cessation
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EP0093481A1 (en) * | 1982-04-05 | 1983-11-09 | The Standard Oil Company | Preparation of polyamides |
US4501881A (en) * | 1982-04-05 | 1985-02-26 | The Standard Oil Company | Preparation of polyamide by contacting diamine, dinitrile, water, dicarboxylic acid |
US4603192A (en) * | 1985-01-10 | 1986-07-29 | The Standard Oil Company | Process for the manufacture of spinnable polyamides utilizing a mixture of an oxygenated phosphorus compound and an oxygenated boron compound as catalyst |
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Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP2920234A4 (en) * | 2012-11-16 | 2016-07-06 | Rhodia Operations | Thermoplastic polymer composition comprising an alkali metal hypophosphite salt |
Also Published As
Publication number | Publication date |
---|---|
US6084056A (en) | 2000-07-04 |
MX220674B (en) | 2004-05-28 |
BR9917021A (en) | 2001-09-25 |
DE69916652T2 (en) | 2005-04-28 |
CA2347819A1 (en) | 2000-06-29 |
EP1141087B1 (en) | 2004-04-21 |
CN1331716A (en) | 2002-01-16 |
CA2347819C (en) | 2007-03-27 |
MY117664A (en) | 2004-07-31 |
DE69916652D1 (en) | 2004-05-27 |
JP4425473B2 (en) | 2010-03-03 |
TW576845B (en) | 2004-02-21 |
CN1272364C (en) | 2006-08-30 |
EP1141087A1 (en) | 2001-10-10 |
MXPA01006338A (en) | 2002-02-01 |
KR20010082763A (en) | 2001-08-30 |
JP2002533497A (en) | 2002-10-08 |
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