HIGHLY ELASTIC COPOLYMERIZED ARAMID FIBERS
20180223452 ยท 2018-08-09
Inventors
Cpc classification
F41H5/0485
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41H5/0471
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A highly elastic copolymerized aramid fiber of the present invention includes aramid copolymers which contain an aromatic group substituted with a cyano group (CN), so as to have an elastic modulus of 1,100 to 1,300 g/d, a strength of 17 to 30 g/d and an elongation of 1 to 4%. According to the present invention, the content of the solvent remaining in the fiber is small in a range of less than 100 ppm, and the crystallinity, crystal size and orientation angle of the fiber are properly controlled by the heat treatment. Therefore, the elastic modulus is greatly improved even without a decrease in the strength, as compared to the conventional aramid fibers. The present invention is useful as a material for various products requiring high elasticity as well as high strength of aramid fibers such as bulletproof materials.
Claims
1. A highly elastic copolymerized aramid fiber, comprising aramid copolymers which contain an aromatic group substituted with a cyano group (CN), so as to have an elastic modulus of 1,100 to 1,300 g/d, a strength of 17 to 30 g/d and an elongation of 1 to 4%.
2. The highly elastic copolymerized aramid fiber according to claim 1, wherein the highly elastic copolymerized aramid fiber has a crystallinity of 60 to 80%, a crystal size of 100 to 200 (200 faces) and 100 to 170 (110 faces) and an orientation angle (200 faces) of 2 to 9.
3. The highly elastic copolymerized aramid fiber according to claim 1, wherein the aramid copolymers which contain an aromatic group substituted with a cyano group (CN) has a repeat unit represented by the following formula
(NH-A-NH COArCO)[Formula I] (wherein Ar is an aromatic group represented by Formula II below, and A is an aromatic group represented by Formula III below or an aromatic group having a ratio of the aromatic group of Formula II below to the aromatic group of Formula III below in a range of 1:9 to 9:1) ##STR00002##
Description
DESCRIPTION OF DRAWINGS
[0015]
[0016]
[0017]
[0018]
BEST MODE
[0019] Hereinafter, the present invention will be described in detail with reference to the accompanying drawings.
[0020] A highly elastic copolymerized aramid fiber according to the present invention includes aramid copolymers which contain an aromatic group substituted with a cyano group (CN), so as to have an elastic modulus of 1,100 to 1,300 g/d, a strength of 17 to 30 g/d and an elongation of 1 to 4%.
[0021] The present invention provides a highly elastic copolymerized aramid fiber, which includes aramid copolymers containing an aromatic group substituted with a cyano group (CN), so as to have an elastic modulus of 1,100 to 1,300 g/d, a strength of 17 to 30 g/d, a crystallinity of 60 to 80%, a crystal size of 100 to 200 (200 faces) and 100 to 170 (110 faces), an orientation angle (200 faces) of 2 to 9.
[0022] The aramid copolymer containing the aromatic group substituted with a cyano group (CN) has a repeat unit represented by Formula I below:
(NH-A-NH COArCO)[Formula I]
[0023] (wherein Ar is an aromatic group represented by Formula II below, and A is an aromatic group represented by Formula III below or an aromatic group having a ratio of the aromatic group of Formula II below to the aromatic group of Formula III below in a range of 1:9 to 9:1)
##STR00001##
[0024] Different physical properties of the highly elastic copolymerized aramid fiber according to the present invention have been assessed by means of the following methods.
[0025] Crystallinity (%)
[0026] Using a diffraction pattern obtained by X-ray analysis, a ratio of crystal peaks to amorphous peaks was estimated to thus determine the crystallinity.
[0027] Crystal size ()
[0028] Using a diffraction pattern obtained by X-ray analysis, a full width at half maximum (FWHM) to thus calculate the crystal size using Scherrer equation.
[0029] Strength (g/d), Elongation (%) and Elastic Modulus (g/d)
[0030] Elongation physical properties of the aramid fiber were determined according to ASTM D885 test method. In particular, the physical properties of the fiber were determined by stretching a copolymerized aramid fiber having a length of 25 cm by means of Instron tester (Instron Engineering Corp., Canton, Mass.) until it is broken.
[0031] Herein, an elongation velocity was set to be 300 mm/min and an initial load was set to be fineness1/30 g. After testing five samples, an average of the tested results was estimated. The elastic modulus, strength and elongation were estimated from a gradient on a strength-stretch curve (S-S curve), a maximum load at breaking and a length at breaking, respectively.
[0032] Orientation Angle
[0033] After azimuthal scanning at a site of each face of the diffraction pattern obtained by X-ray analysis, the full width at half maximum (FWHM) of each peak was measured to determine the orientation angle.
[0034] Next, an example of the method for fabricating a highly elastic copolymerized aramid fiber of the present invention will be described.
[0035] However, the following example of the above method is proposed as a preferred embodiment to fabricate the highly elastic copolymerized aramid fiber of the present invention, and it is duly not construed that the scope of the present invention is particularly limited to this example.
[0036] First, the present invention conducts a process of preparing a spinning dope for fabrication of aramid fibers. More particularly, after adding inorganic salt to an organic solvent to prepare a polymerization solvent, para-phenylenediamine and cyano-para-phenylenediamine may be dissolved together or cyano-para-phenylenediamine may be dissolved alone in the organic solvent to prepare a mixture solution. After then, a small amount of terephthaloyl dichloride is added to the mixture solution while stirring the same to conduct primary polymerization, thereby forming a prepolymer.
[0037] Then, terephthaloyl dichloride is further added to the polymerization solvent to conduct secondary polymerization, so as to prepare a spinning dope for preparing aramid, in which the copolymerized aramid copolymers which contain an aromatic group substituted with a cyano group (CN) is dissolved in an organic solvent.
[0038] In this regard, the organic solvent used herein may include, for example, N-methyl-2-pyrrolidone (NMP), N,N-dimethylacetamide (DMAc), hexamethylphosphoamide (HMPA), N,N,N,N-tetramethylurea (TMU), N,N-dimethylformamide (DMF) or a mixture thereof. The inorganic salt used herein may include, for example, CaCl.sub.2, LiCl, NaCl, KCl, LiBr, KBr, or a mixture thereof.
[0039] Next, as shown in
[0040] In this regard, according to an embodiment of the present invention, as shown in
[0041] In particular, as shown in
[0042] As a result, the injected washing solution may be smoothly penetrated into the aramid fiber Y passing over the washing roller 50, so as to decrease a content of the organic solvent remaining in the aramid fiber Y to less than 100 ppm.
[0043] Further, according to an embodiment of the present invention, the washed aramid fiber is heated at a temperature of 250 to 500 C. under a tensile strength of 0.01 to 5 g/d for 0.5 to 20 seconds and a water content during heat treatment is controlled to be 5 to 100%.
[0044] Hereinafter, the present invention will be described in more detail by the following examples and comparative examples. However, these examples are proposed for concretely explaining the present invention, while not limiting the scope of the present invention to be protected.
EXAMPLE 1
[0045] N-methyl-2-pyrrolidone (NMP) organic solvent including 3 wt. % of CaCl.sub.2 was fed in a reactor under a nitrogen atmosphere, and 50 mol % of para-phenylenediamine and 50 mol % of cyano-p-phenylenediamine were dissolved therein to prepare a mixture solution.
[0046] Then, 100 mol % of terephthaloyl dichloride was added to the reactor containing the mixture solution, thereby preparing a spinning dope including a copolymerized aramid polymer.
[0047] Thereafter, as shown in
EXAMPLE 2
[0048] N-methyl-2-pyrrolidone (NMP) organic solvent including 3 wt. % of CaCl.sub.2 was fed in a reactor under a nitrogen atmosphere, and 100 mol % of cyano-p-phenylenediamine was dissolved therein to prepare a mixture solution.
[0049] Then, 100 mol % of terephthaloyl dichloride was added to the reactor containing the mixture solution, thereby preparing a spinning dope including a copolymerized aramid polymer.
[0050] Thereafter, as shown in
EXAMPLE 3
[0051] N-methyl-2-pyrrolidone (NMP) organic solvent including 3 wt. % of CaCl.sub.2 was fed in a reactor under a nitrogen atmosphere, and 50 mol % of para-phenylenediamine and 50 mol % of cyano-p-phenylenediamine were dissolved therein to prepare a mixture solution.
[0052] Then, 100 mol % of terephthaloyl dichloride was added to the reactor containing the mixture solution, thereby preparing a spinning dope including a copolymerized aramid polymer.
[0053] Thereafter, as shown in
EXAMPLE 4
[0054] N-methyl-2-pyrrolidone (NMP) organic solvent including 3 wt. % of CaCl.sub.2 was fed in a reactor under a nitrogen atmosphere, and 100 mol % of cyano-p-phenylenediamine was dissolved therein to prepare a mixture solution.
[0055] Then, 100 mol % of terephthaloyl dichloride was added to the reactor containing the mixture solution, thereby preparing a spinning dope including a copolymerized aramid polymer.
[0056] Thereafter, as shown in
COMPARATIVE EXAMPLE 1
[0057] N-methyl-2-pyrrolidone (NMP) organic solvent including 3 wt. % of CaCl.sub.2 was fed in a reactor under a nitrogen atmosphere, and 50 mol % of para-phenylenediamine and 50 mol % of cyano-p-phenylenediamine were dissolved therein to prepare a mixture solution.
[0058] Then, 100 mol % of terephthaloyl dichloride was added to the reactor containing the mixture solution, thereby preparing a spinning dope including a copolymerized aramid polymer.
[0059] Thereafter, as shown in
COMPARATIVE EXAMPLE 2
[0060] N-methyl-2-pyrrolidone (NMP) organic solvent including 3 wt. % of CaCl.sub.2 was fed in a reactor under a nitrogen atmosphere, and 100 mol % of cyano-p-phenylenediamine was dissolved therein to prepare a mixture solution.
[0061] Then, 100 mol % of terephthaloyl dichloride was added to the reactor containing the mixture solution, thereby preparing a spinning dope including a copolymerized aramid polymer.
[0062] Thereafter, as shown in
TABLE-US-00001 TABLE 1 Comparative Comparative Section Example 1 Example 2 Example 3 Example 4 Example 1 Example 2 Elastic modulus 1,200 1,250 1,110 1,300 900 1,250 Strength (g/d) 24 22 18 30 20 15 Elongation (%) 2.2 3.4 1.2 3.9 4.8 4.5 Orientation angle 4 6 2 9 10 5 (200 faces) Crystallinity (%) 65 78 68 75 57 75 Crystal (200 130 190 110 160 90 180 size faces) () (110 125 165 100 155 82 160 faces)
DESCRIPTION OF REFERENCE NUMERALS
[0063] 10: Extruder, 20: Spinneret
[0064] 30: Coagulation tank, 40: Coagulation tube
[0065] 41: Coagulant solution injection hole, Y: Aramid fiber
[0066] 50: Washing roller, 70: Heater
[0067] 80: Winding roller, 90: Washing solution injection nozzle
[0068] J: Washing solution injected toward aramid fiber
[0069] 51: Washing solution injection hole, 52: Washing solution feeding pipe
INDUSTRIAL APPLICABILITY
[0070] The present invention is useful as a material for various products requiring high elasticity as well as high strength of aramid fibers such as bulletproof materials.