Dual-terminated polyamide for high speed spinning application
10494740 ยท 2019-12-03
Assignee
Inventors
- Yu Zhang (Shanghai, CN)
- Min Wang (Shanghai, CN)
- Shuwen Peng (Shanghai, CN)
- David J. Loy (North Chesterfield, VA, US)
- Jie Wei (Shanghai, CN)
- Tingzhi Chen (Shanghai, CN)
Cpc classification
C08G69/48
CHEMISTRY; METALLURGY
D01D5/253
TEXTILES; PAPER
International classification
D01D5/084
TEXTILES; PAPER
D01D5/253
TEXTILES; PAPER
C08G69/48
CHEMISTRY; METALLURGY
Abstract
Methods of producing a polyamide filaments and fibers are provided. The methods include providing a dual-terminated polyamide and spinning the dual-terminated polyamide at a speed of 3500 m/min to 8000 m/min to form a fiber. In one embodiment, the polyamide has an amine endgroup concentration of 25 mmol/kg to 40 mmol/kg and a carboxyl endgroup concentration of 18 mmol/kg to 50 mmol/kg. Fibers and yarns comprising polyamide filaments and fibers formed from the method are also disclosed.
Claims
1. A method of producing a plurality of fibers, the method comprising: providing a dual-terminated polyamide-6 (PA-6) having an amine endgroup concentration of 25 mmol/kg to 40 mmol/kg, a carboxyl endgroup concentration of 18 mmol/kg to 50 mmol/kg, and a relative viscosity of 2.6 RV to 3.0 RV; and spinning the dual-terminated polyamide-6 (PA-6) at a speed of 3500 m/min to 8000 m/min to form the fibers.
2. The method of claim 1, wherein spinning includes heating the dual-terminated polyamide-6 (PA-6) to a temperature of 230 C. to 300 C.
3. The method of claim 1, wherein spinning includes extruding the dual-terminated polyamide-6 (PA-6) through a spinneret including tri-lobal shape holes, wherein the tri-lobal shape holes define an R value of 0 to 0.1 mm.
4. The method of claim 1, wherein the polyamide fibers each comprises a plurality of filaments, and the polyamide fibers have a denier per filament of 1.5 to 5.
5. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) includes amine endgroups and carboxyl endgroups with different, chemically distinct terminators.
6. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has an amine endgroup concentration of 27 mmol/kg to 37 mmol/kg.
7. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has an amine endgroup concentration of 30 mmol/kg to 35 mmol/kg.
8. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has a carboxyl endgroup concentration of 20 mmol/kg to 40 mmol/kg.
9. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has a carboxyl endgroup concentration of 22 mmol/kg to 30 mmol/kg.
10. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has a relative viscosity of 2.7 RV to 3.0 RV.
11. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has a relative viscosity of 2.8 RV to 3.0 RV.
12. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has a polydispersity index less than 1.8.
13. The method of claim 1, wherein the dual-terminated polyamide-6 (PA-6) has an extractables content of less than 0.8 wt. %.
14. The method of claim 1, wherein prior to the spinning step, the dual-terminated polyamide-6 (PA-6) is heated to a temperature of 240 C. to 300 C.
15. The method of claim 1, wherein prior to the spinning step, the dual-terminated polyamide-6 (PA-6) is heated to a temperature of 250 C. to 290 C.
16. The method of claim 1, wherein the spinning step is carried out at a speed of 4000 m/min to 6000 m/min.
17. The method of claim 4, wherein the polyamide fibers each comprises a plurality of filaments, and the polyamide fibers have a denier per filament of 1.7 to 5.
18. The method of claim 4, wherein the polyamide fibers each comprises a plurality of filaments, and the polyamide fibers have a denier per filament of 1.7 to 3.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(28) Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate exemplary embodiments of the invention and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION
(29) Although the fibers and filaments exemplified below are formed from dual-terminated PA-6 material, the disclosure is not intended to be limited to only dual-terminated PA-6 materials. Fibers and filaments according to the present disclosure may also be formed from other dual terminated polyamides, including, for example, polyamide-6 (PA-6), polyamide-6,6 (PA-66), polyamide-666 (PA-666), polyamide-46 (PA-46), polyamide-610 (PA-610), polyamide-1212 (PA-1212), and mixtures and copolymers thereof.
(30) Although not so limited, the dual-terminated PA material described herein is particularly useful in forming yarn for textiles.
(31) Referring first to
(32) The PA-6 material includes both amine endgroups and carboxyl end-groups.
(33) The amine endgroup concentration can be determined by the amount of p-toluenesulfonic acid (PTSA) needed to titrate a sample of the polyamide in 68% phenol/32% methanol according to the formula:
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In one exemplary embodiment, the dual-terminated PA-6 resin has an amine endgroup concentration as great as 40 mmol/kg, 37 mmol/kg, 35 mmol/kg, 32 mmol/kg, as little as 30 mmol/kg, 27 mmol/kg, 25 mmol/kg, or lower, or within any range defined between any two of the foregoing values, such as 40 mmol/kg to 25 mmol/kg, 35 mmol/kg to 25 mmol/kg, or 35 mmol/kg or lower.
(35) The carboxyl endgroup concentration can be determined by the amount of potassium hydroxide (KOH) needed to titrate a sample of the polyamide in benzyl alcohol according to the formula:
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In one exemplary embodiment, the dual-terminated PA-6 resin has a carboxyl endgroup concentration as great as 50 mmol/kg, 40 mmol/kg, 30 mmol/kg, 25 mmol/kg, as little as 22 mmol/kg, 20 mmol/kg, 18 mmol/kg, or lower, or within any range defined between any two of the foregoing values, such as 50 mmol/kg to 18 mmol/kg, 30 mmol/kg to 20 mmol/kg, 25 mmol/kg to 20 mmol/kg, or 25 mmol/kg or lower. In one exemplary embodiment, the dual-terminated PA-6 resin has a total endgroup concentration (amine endgroups+carboxyl endgroups) as great as 100 mmol/kg, 80 mmol/kg, 60 mmol/kg, 55 mmol/kg, as little as 50 mmol/kg, 45 mmol/kg, 40 mmol/kg or lower, or within any range defined between any two of the foregoing values, such as 100 mmol/kg to 40 mmol/kg, 60 mmol/kg to 50 mmol/kg, or 65 mmol/kg or lower.
(37) In one exemplary embodiment, the dual-terminated PA-6 resin has a relative viscosity (RV), according to GB/T 12006.1-2009/ISO 307:2007 is as little as 2.4 RV, 2.45 RV, 2.5 RV, 2.55 RV, 2.6 RV, as great as 2.65 RV, 2.7 RV, 2.75 RV, 2.8 RV, 2.85 RV, 2.9 RV, 2.95 RV, 3.0 RV or within any range defined between any two of the foregoing values, such as 2.4 RV to 3.0 RV, 2.4 RV to 2.6 RV, or 2.6 RV to 3.0 RV. In some applications, such as for a tri-lobal textile fiber, a relatively high molecular relative viscosity such as 2.6 RV or higher, 2.65 RV to 3.0 RV, or 2.7 RV to 3.0 RV, corresponding to a relatively high molecular weight, may provide improved dimensional stability.
(38) In one exemplary embodiment, the dual-terminated PA-6 resin has a formic acid viscosity (FAV), according to ASTM D-789 is as little as 35 FAV, 40 FAV, 45 FAV as high as 50 FAV, 55 FAV, 60 FAV, 65 FAV or within any range defined between any two of the foregoing values, such as 35 FAV to 65 FAV, 35 FAV to 50 FAV, or 55 FAV to 65 FAV.
(39) In one exemplary embodiment, the dual-terminated PA-6 resin has a relatively narrow molecular weight distribution. In one exemplary embodiment, the polydispersity index, defined as the ratio of the weight average molecular weight to the number average molecular weight (M.sub.w/M.sub.n) is as great as 2.0, 1.95, 1.9, as little as 1.85, 1.8, 1.75, 1.7, or less, or within any range defined between any two of the foregoing values, such as 2.0 to 1.7, 1.9 or less, 1.85 to 1.75, or 1.8 or less. In one exemplary embodiment, the polydispersity index is less than 1.8.
(40) In one exemplary embodiment, the dual-terminated PA-6 resin has a relatively low extractable content according to ISO 6427. In one exemplary embodiment, the extractable content is as great as 0.8 wt. %, 0.7 wt. %, 0.65 wt. %, as little as 0.6 wt. %, 0.55 wt. %, 0.5 wt. %, 0.4 wt. %, or less, or within any range defined between any two of the foregoing values, such as 0.8 wt. % to 0.4 wt. %, 0.65 wt. % to 0.5 wt. %, or 0.8 wt. % or less. In one exemplary embodiment, the extractable content is less than 0.6 wt. %.
(41) In one exemplary embodiment, the dual-terminated PA-6 resin has a relatively low moisture level according to ASTM D-6869. In one exemplary embodiment, the moisture level is as great as 1200 ppm, 1000 ppm, 800 ppm, 700 ppm, as little as 600 ppm, 500 ppm, 400 ppm, or less, or within any range defined between any two of the foregoing values, such as 1200 ppm to 400 ppm, 700 ppm to 400 ppm, or 600 ppm or less. In one exemplary embodiment, the extractable content is less than 600 ppm.
(42) As illustratively shown in
(43) Each arm 12 defines first side 16 and second side 18, terminating in tip 20. Arms 12 each include a width 21 defined by the distance between first side 16 and second side 18 as shown in
(44) In one exemplary embodiment, the outlet 10 includes the joint arc radius 26 between two arms, also referred to as the R value. In one exemplary embodiment, the R value may be as little as 0 mm, 0.005 mm, 0.01 mm, 0.02 mm, 0.025 mm, 0.03 mm as great as 0.05 mm, 0.08 mm, 0.09 mm, 0.1 mm or within any range defined between any two of the foregoing values, such as 0 mm to 0.1 mm, 0.01 mm to 0.05 mm, 0.02 mm to 0.05 mm, or 0.02 mm to 0.03 mm.
(45) In one exemplary embodiment, tip 20 is substantially rounded. In one exemplary embodiment, tip 20 has a radius that may be as little as, 0.03 mm, 0.035 mm, 0.04 mm, as great as 0.055 mm, 0.06 mm, 0.065 mm, or within any range defined between any two of the foregoing values, such as 0.03 mm to 0.06 mm, 0.035 mm to 0.055 mm, 0.04 mm to 0.065 mm.
(46) As illustrated in
(47) An end-view of illustrative fibers 20 formed from a tri-lobal spinneret with an arm joint arc radius from 0 to 0.1 mm is shown in
(48) In another embodiment, the spinneret includes one or more outlets for forming a round, triangular, or concave triangular fiber. Illustrative fibers 22 formed from a round spinneret are shown in
(49) In one exemplary embodiment, the dual-terminated PA-6 resin is heated to a temperature as little as 230 C., 235 C., 240 C., 245 C., 250 C., as high as 285 C., 290 C., 295 C., 300 C., or higher, or within any range defined between any two of the foregoing values, such as 230 C. to 285 C., 255 C. to 285 C., or 260 C. to 300 C. In a more particular embodiment, the dual-terminated PA-6 resin may be maintained at the above temperature for a time as 5 minutes, 10 minutes, 15 minutes, as great as 30 minutes, 40 minutes, 45 minutes, or greater, or within any range defined between any two of the foregoing values, such as 5 minutes to 40 minutes or 10 minutes to 30 minutes.
(50) In one exemplary embodiment, the dual-terminated PA-6 resin is thermally stable at relatively high temperatures, such as temperatures as low as 260 C., 265 C., 270 C., as high as 275 C., 280 C., or higher, or within any range defined between any two of the foregoing values, such as 260 C. to 280 C.
(51) In one exemplary embodiment, the dual-terminated PA-6 resin can be spun at relatively high speeds. In one exemplary embodiment, the dual-terminated PA-6 resin is spun at speeds 3500 m/min, 4000 m/min, 4500 m/min, as high as 6000 m/min, 7000 m/min, 8000 m/min, or within any range defined between any two of the foregoing values, such as 3500 m/min to 6000 m/min, or 4000 m/min to 6000 m/min.
(52) In one exemplary embodiment, the spun PA fiber is of high quality. In one exemplary embodiment, a percentage of best quality yarn, (AA %), is determined by the following formula, on condition that the dyeing uniformity is good:
AA %=(number of full bobbins)(weight of each full bobbin)/(weight of total material fed to spin)
The top quality rating is a rating of AA is as determined by the China textile industry standards. The number of full bobbins refers the number of bobbins that reach a predetermined weight (such as 6 kg) without experiences a fiber or filament break during spinning to this weight. If a fiber breaks before the bobbin reaches its full weight, then the bobbin is classified as a rating of A, not AA. In one exemplary embodiment, the spun fiber has an AA % as great as 100%, 99%, 97.5%, as low as 95%, 92.5%, 90%, 85%, or within any range defined between any two of the foregoing values, such as 85% to 100%, 90% to 100%, or 95% to 100%.
(53) As shown in the illustrative embodiment of
(54) In block 106, the spun fibers are wound up to form a bobbin. In an exemplary embodiment, each fiber may contain as little as 3, 6, 12, or as great as 48, 72, 96, filaments, or within any range defined between any two of the foregoing values, such as 12 to 48. The fibers may have a total denier as great little as 20, 30, as great as 350, 400, or within any range defined between any two of the foregoing values, such as 30 to 150. The denier per filament may be as little as 1.5, 1.7, 2, as great as 3, 4, 5, or within any range defined between any two of the foregoing values, such as 1.5 to 5, 1.7 to 5, or 1.7 to 3.
(55) In block 108, spun fiber may dyed. Exemplary dyes include acid dyes, such as Neutral Grey-2BL, Neutral Blue-BNL, Erionyl Red, and Lanaset Blue-2R.
EXAMPLES
Example 1
Thermal Stability of Various PA-6 Materials
(56) PA materials from various sources were tested for thermal stability. The resins tested are provided in Table 1 below, along with the Formic Acid Viscosity (FAV), total active endgroup concentration, and amine (NH.sub.2) and carboxyl (COOH) endgroup concentration.
(57) TABLE-US-00001 TABLE 1 PA-6 resins for thermal stability [COOH] Total EG [NH.sub.2] EG EG Resin Termination type FAV mmol/kg mmol/kg mmol/kg Comparative Mono-terminated (di- 39.0 120.5 44.4 76.1 Resin 1 (low RV) functional acid) Comparative Mono-terminated (di- 41.2 124 47.0 77.0 Resin 2 (low RV) functional acid) Comparative Mono-terminated (di- 40.5 115.6 44.6 71.0 Resin 3 (low RV) functional acid) Comparative None 40 139.7 68 71.7 Resin 4 (low RV) Comparative Mono-terminated (di- 35.0 117.0 44 73 Resin 5 (low RV) functional acid) Comparative Mono-terminated (di- 39.0 121 45 76 Resin 6 (low RV) functional acid) Example Resin 7 Dual-terminated 46.4 59.6 34.9 24.7 (low RV) (mono-functional acid, mono-functional amine) Example Resin 8 Dual-terminated 61.3 49.3 27.4 21.9 (high RV) (mono-functional acid, mono-functional amine) Comparative Mono-terminated (di- 58.9 105.5 44.6 60.9 Resin 9 (high functional acid) RV)
(58) Each PA resin was held at a temperature of 260 C. for 60 minutes. A viscosity measurement was taken every 2 minutes starting at 15 minutes using a rheology test. The results are provided in
(59) As shown in
(60) Samples of the mono-terminated low RV Comparative Resin 2# and high RV Comparative Resin 9# and dual-terminated high RV Example Resin 8# were aged at 265 C. in the injection molding equipment, staying for 0, 10, 30, and 60 minutes. Bars then were formed, we sealed the bar in the aluminum foil bag before test. All the tests shown in
(61) As shown in
(62) The mono-terminated Comparative Resins 2# and 9# and dual-terminated Example Resin 8# were then tested using Thermal Gravimetric Analysis (TGA) under nitrogen gas from room temperature to 265 C. at a temperature rise of 20 C./min. The results are shown in
(63) Rheology samples of the Samples of the mono-terminated Comparative Example 9# and dual-terminated Example 8# resins were then tested using a time sweep at 265 C. and 10 rad/s for 30 minutes. The results are shown in
Example 2
PA-6 Fiber Spinning Trials
(64) Dual-terminated PA-6 resin having an RV of 2.83, 0.6% extractable content, and 600 ppm H.sub.2O was successfully spun according to the conditions in Table 2.
(65) TABLE-US-00002 TABLE 2 Spinning conditions Trial 1 Trial 2 Trial 3 Trial 4 Trial 5 Trial 6 Spinning 84 hr 48 hr 120 hr 24 hr 168 hr 168 hr duration Fiber type FDY FDY HOY HOY FDY FDY Fiber spec 40/24 70/42 30/12 48/24 40/12 40/24 Denier per 1.7 2.9 2.5 2 3.3 1.7 filament Spinning 4500 m/min 4500 m/min 4500 m/min 4500 m/min 5000 m/min 5000 m/min speed Spinning 270 C. 270 C. 260-270 C. 280 C. 270 C. 270 C. temp. Yarn shape Tri-lobal Tri-lobal Concave Concave Tri-lobal Tri-lobal triangle triangle AA % 97% 98% Greater 100% 91.4% 92.0% than 90%
(66) As shown in Table 2, the dual terminated PA-6 resin provided good spinnability. In addition, the dual-terminated PA-6 resin provided a high percentage of best quality fibers, as indicated by the relatively high AA %.
(67) The tenacity and elongation of various tri-lobal fibers were tested according to Test Standard GB14344, by using Instron equipment, under 23 C., 50 RH. The FDY fiber by using our dual-terminated Example 8# had a required minimum tenacity of 3.8 cN/dtex and minimum elongation of 35%. The HOY fiber and POY fiber had a required minimum tenacity of 3.8 cN/dtex and an elongation range of 57-63%. The results are provided in Table 3.
(68) TABLE-US-00003 TABLE 3 Fiber physical properties Fiber Fiber Tenacity Elongation type spec (cN/dtex) (%) Mono-terminated Ex. 9# FDY 100D/36F 3.87 35.8 Dual-terminated Ex. 8# FDY 100D/36F 4.1 44 Dual-terminated Ex. 8# FDY 70D/24F 4.36 36 Dual-terminated Ex. 8# FDY 40D/24F 4.24 38 Dual-terminated Ex. 8# HOY 30D/12F 4.17 60.20 Dual-terminated Ex. 8# POY 48D/24F 4.1 58.90 Dual-terminated Ex. 8# FDY 40D/12F 4.3 36 Dual-terminated Ex. 8# FDY 40D/24F 4.4 37 (Trial 6)
(69) As shown in Table 3, each fiber met the minimum requirements. In addition, the dual-terminated fiber had better tenacity and elongation than the comparable mono-terminated fibers.
(70) The tri-lobal dual-terminated FDY PA fibers was also tested for unevenness, oil content, and hot water shrinkage according to China Textile Industry Standard, under 23 C., 50 RH. The results are provided in Table 4.
(71) TABLE-US-00004 TABLE 4 Fiber physical properties 70D/ 40D/ 40D/ 40D/24F 24F 24F 12F (Trial 6) Required value Unevenness 0.95% 1% 0.8% 0.9% less than or equal to 1.1% Oil content 0.8% 11% 1% 1% 0.8% to 1.2% Hot water 12.22% 11.42% 12% 11% 8% to 15% shrinkage
(72) As shown in Table 4, each yarn met the minimum requirements.
(73) An end-view of the tri-lobal fibers of a 70D/24F and 40D/24F fabric are illustrated in
(74) A comparison of the Example 8# with a 100D/36F fabric woven by Example 9# supplier commercial super shinning tri-lobal fiber is shown in
Example 3
Dyed Fabric and Woven Fabric
(75) More than 20 fiber bobbins were knitted together to form long hosiery, then put it in the dyeing tank to dye under 96 C., for 30 min, then to compare the dyeing uniformity under standard light box according to China Textile Industry Standards.
(76) As shown in
(77) As further shown in
(78) Referring next to
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(82) Referring next to
(83) While the present disclosure is primarily directed to high-speed spinning applications, it should be understood that the features disclosed herein may have application to other spinning and extrusion processes, including low-speed spinning, such as carpet fiber spinning, and medium speed spinning, such as conventional spinning.
(84) While this invention has been described as relative to exemplary designs, the present invention may be further modified within the spirit and scope of this disclosure. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains.