IP Library Granted Patent US 9,944,753
Granted Patent B2
US 9,944,753 · App. 15/037,633 · Granted Apr 17, 2018

Continuous polyamidation process—I

Inventors: Ernest Keith Marchildon (Kingston, CA); Karen A. Surgenor (Kingston, CA); Bryan D. Kaushiva (West Yorkshire, GB)
Assignee: INVISTA NORTH AMERICA S.A R.L.
C08G69/28B01J4/002B01J10/002B01J14/00B01J19/0006B01J19/006B01J19/0066B01J19/18B01J19/245C08L77/00B01J2219/002B01J2219/00186B01J2219/00202B01J2219/00231
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Quick Facts
Patent No.
US 9,944,753
App. No.
15/037,633
Granted
Apr 17, 2018
Kind
B2
Abstract

A continuous process for the manufacture of a polyamide, the process comprising the steps of: (i) flowing a stream A comprising a molten dicarboxylic acid, or a molten dicarboxylic acid-rich mixture comprising a dicarboxylic acid and a diamine, through a first stage and at least one more reaction stage of a vertical multistage reactor, wherein the first stage is at the top of the reactor; (ii) counter-currently flowing a stream B comprising a diamine as either a vapor or a diamine-rich liquid through at least one of the stages below the first reaction stage of said vertical multistage reactor; (iii) accumulating a liquid phase material P comprising polyamide at and/or below the final stage of said reactor; wherein said reactor is equipped with internal features suitable for effecting contact between counter-currently flowing streams A and B; and wherein said process further comprises the step of agitating said liquid phase material P by injecting a gaseous stream C comprising steam, or at least one inert gas, or a mixture of steam and at least one inert gas into the reactor at or below the final stage of the reactor. The invention further provides a vertical multistage reactor configured to implement said process.

Claims (32)

1. A continuous process for the manufacture of a polyamide, the process comprising the steps of:

(i) flowing a stream A comprising a molten dicarboxylic acid, or a molten dicarboxylic acid-rich mixture comprising a dicarboxylic acid and a diamine, through a first stage and at least one more reaction stage of a vertical multistage reactor, wherein the first stage is at the top of the reactor;

(ii) counter-currently flowing a stream B comprising a diamine as a vapour or a diamine-rich liquid through at least one of the stages below the first reaction stage of said vertical multistage reactor;

(iii) accumulating a liquid phase material P comprising polyamide at and/or below the final stage of said reactor;

wherein said reactor is equipped with internal features suitable for effecting contact between counter-currently flowing streams A and B; and

wherein a gaseous stream C consists or consists essentially of steam, is injected into the reactor at or below the final stage of the reactor to sparge said liquid phase material P to attain agitation thereof.

2. The process of claim 1 , wherein the viscosity of said liquid phase material P is controlled by directly controlling the chemical equilibrium of the polyamidation reaction in the reactor or by controlling stream B so that the amounts of diamine and dicarboxylic acid introduced into the reactor during the process are stoichiometrically imbalanced, wherein said viscosity of said liquid phase material P is maintained at a value of about 0.1 to about 1,200 poise.

3. The process of claim 2 , wherein the chemical equilibrium is controlled by injecting a stream comprising steam into at least one of the stages below said first reaction stage of said vertical multistage reactor.

4. The process of claim 2 , wherein the chemical equilibrium is controlled by maintaining the pressure of the reactor at a pressure greater than atmospheric pressure.

5. The process of claim 4 , wherein the reactor is maintained at a pressure of about 1.5 atm to about 20 atm.

6. The process of claim 1 , wherein the moisture concentration of the liquid phase material P is maintained at a level of 0.1 wt % to 3.0 wt %.

7. The process of claim 2 , wherein viscosity is controlled by controlling stream B so that the diamine and dicarboxylic acid introduced into the reactor are stoichiometrically imbalanced.

8. The process of claim 7 , wherein an excess of dicarboxylic acid over diamine is introduced into the reactor during the process, wherein the stoichiometric imbalance in the liquid phase material P is such that the molar ratio of [moles dicarboxylic acid units]:[moles of diamine units] is 1.005:1 to 1.3:1.

9. The process of claim 1 , wherein the dicarboxylic acid comprises one or more diacids chosen from oxalic acid, malonic acid, succinic acid, glutaric acid, pimelic acid, adipic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecandioic acid, maleic acid, glutaconic acid, traumatic acid, and muconic acid, 1,2- or 1,3-cyclohexande dicarboxylic acids, 1,2- or 1,3-phenylenediacetic acids, 1,2- or 1,3-cyclohexane diacetic acids, isophthalic acid, terephthalic acid, 4,4′-oxybisbenzoic acid, 4,4-benzophenone dicarboxylic acid, 2,6-napthalene dicarboxylic acid, p-t-butyl isophthalic acid and 2,5-furandicarboxylic acid.

10. The process of claim 1 , wherein the diamine is chosen from ethanoldiamine, trimethylenediamine, putrescine, cadaverine, hexamethyelenediamine, 2-methyl pentamethylenediamine, heptamethylenediamine, 2-methyl hexamethylenediamine, 3-methyl hexamethylenediamine, 2,2-dimethyl pentamethylenediamine, octamethylenediamine, 2,5-dimethyl hexamethylenediamine, nonamethylenediamine, 2,2,4- and 2,4,4-trimethyl hexamethylenediamines, decamethylenediamine, 5-methylnonanediamine, isophoronediamine, undecamethylenediamine, dodecamethylenediamine, 2,2,7,7-tetramethyl octamethylenediamine, meta-xylylene diamine, paraxylylene diamine, bis(p-aminocyclohexyl)methane, bix(aminomethyl)norbornane, any C2-C16 aliphatic diamine optionally substituted with one or more C1 to C4 alkyl groups, aliphatic polyether diamines and furanic diamines.

11. The process of claim 1 , wherein the dicarboxylic acid is adipic acid and the diamine is hexamethylenediamine.

12. The process of claim 1 , wherein the vertical multistage reactor has at least 6 and/or no more than 10 stages.

13. The process of claim 1 , wherein each stage of the reactor comprises a horizontal plate, a vertical channel and a weir.

14. A continuous process for the manufacture of a polyamide, the process comprising the steps of:

(i) flowing a stream A comprising a molten dicarboxylic acid, or a molten dicarboxylic acid-rich mixture comprising a dicarboxylic acid and a diamine, through a first stage and at least one more reaction stage of a vertical multistage reactor, wherein the first stage is at the top of the reactor;

(ii) counter-currently flowing a stream B comprising a diamine as a vapour or a diamine-rich liquid through at least one of the stages below the first reaction stage of said vertical multistage reactor; and

(iii) accumulating a liquid phase material P comprising polyamide at and/or below the final stage of said reactor;

wherein said reactor is equipped with internal features suitable for effecting contact between counter-currently flowing streams A and B;

wherein a gaseous stream C consists or consists essentially of steam, is injected into the reactor at or below the final stage of the reactor to sparge said liquid phase material P to attain agitation thereof; and

wherein the reactor is maintained at a pressure of at least about 1.5 atm.

15. A continuous process for the manufacture of a polyamide, the process comprising the steps of:

(i) flowing a stream A comprising a molten dicarboxylic acid, or a molten dicarboxylic acid-rich mixture comprising a dicarboxylic acid and a diamine, through a first stage and at least one more reaction stage of a vertical multistage reactor, wherein the first stage is at the top of the reactor;

(ii) counter-currently flowing a stream B comprising a diamine as a vapour or a diamine-rich liquid through at least one of the stages below the first reaction stage of said vertical multistage reactor; and

(iii) accumulating a liquid phase material P comprising polyamide at and/or below the final stage of said reactor;

wherein said reactor is equipped with internal features suitable for effecting contact between counter-currently flowing streams A and B;

wherein a gaseous stream C consists or consists essentially of steam, is injected into the reactor at or below the final stage of the reactor to sparge said liquid phase material P to attain agitation thereof; and

wherein the moisture concentration of the liquid phase material P is maintained at a level of at least 0.1 wt %.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2022
From: INV NYLON CHEMICALS AMERICAS, LLC
To: INV NYLON POLYMERS AMERICAS, LLC
Reel/Frame 061803/0585 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 7, 2021
From: INVISTA NORTH AMERICA, LLC
To: INV NYLON CHEMICALS AMERICAS, LLC
Reel/Frame 054914/0897 →
CHANGE OF NAME Recorded Dec 15, 2020
From: INVISTA NORTH AMERICA S.A.R.L.
To: INVISTA NORTH AMERICA, LLC
Reel/Frame 054765/0645 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2017
From: MARCHILDON, ERNEST KEITH; SURGENOR, KAREN A.; KAUSHIVA, BRYAN D
To: INVISTA NORTH AMERICA S.A.R.L.
Reel/Frame 042810/0619 →
Priority Claims (1)
GB 1320520.8 · Nov 20, 2013 · national
Continuity (1)
Related Publication 20160289383A1 · Oct 6, 2016