BACKGROUND OF THE INVENTION
[0001] The present invention relates to a method of manufacturing a false-twisted processed
yarn.
[0002] Patent Literature 1 (
Japanese Laid-Open Patent Publication No. 2016-141912) discloses a method of manufacturing a false-twisted processed yarn obtained by false-twisting
a yarn (raw yarn) formed of filaments made of synthetic fibers. To be more specific,
the running raw yarn is twisted while being heated and drawn. The false-twisted processed
yarn is formed in this way, and is still wavy in shape even after being untwisted.
Typically, a partially oriented yarn in which the orientation of polymers forming
the filaments is partially adjusted (i.e., the polymers are partially oriented) is
used as the raw yarn. The partially oriented yarn (POY) is produced by, e.g., a spinning
apparatus of Patent Literature 2 (
Japanese Laid-Open Patent Publication No. 2008-138301).
SUMMARY OF THE INVENTION
[0003] Typically, when (i) the raw yarn which is POY is false-twisted and (ii) the running
speed (processing speed) of the yarn is arranged to be higher than the maximum speed,
the yarn starts to vibrate (i.e., surging occurs) so that false twisting cannot be
properly performed. There have recently been demands for further improvement in production
efficiency of false-twisted processed yarns.
[0004] An object of the present invention is to increase the maximum speed at which a false-twisted
processed yarn can be produced.
[0005] According to a first aspect of the invention, a method of manufacturing a false-twisted
processed yarn is a method of manufacturing the false-twisted processed yarn with
use of a false-twist texturing machine which is able to false-twist a running raw
yarn while heating and drawing the raw yarn. The false-twist texturing machine includes:
a heater configured to heat the raw yarn; a drawing device configured to draw the
raw yarn heated by the heater; and a false-twisting device which is provided downstream
of the heater in a yarn running direction and which is configured to false-twist the
raw yarn. In this regard, the raw yarn is a partially oriented yarn formed of PET
synthetic fibers. When the partially oriented yarn is not false-twisted, the partially
oriented yarn has a pre-processing elongation of less than 100%, a boiling water shrinkage
of 3.7% to 25%, and a strength of 2.9 cN/dtex or more. In this regard, the pre-processing
elongation is the residual elongation, and the raw yarn is false-twisted at a processing
speed of 1100 m/min or more while being heated and drawn.
[0006] In the false-twist texturing machine, the raw yarn is twisted by the false-twisting
device. In this regard, surging occurs mainly in the case where the yarn slips in
the false-twisting device so as to be repeatedly loosened and tensioned. Typically,
the higher the running speed (processing speed) of the yarn in the false-twisting
device is, the more likely the yarn is to slip in the false-twisting device. When
the processing speed exceeds the maximum speed, the surging occurs. The inventors
of the subject application found that the maximum speed was increased in the case
where the false-twisted processed yarn was manufactured with use of the raw yarn which
was not false-twisted and which had a low residual elongation (hereinafter, this will
be referred to as the pre-processing elongation) of less than 100% and a low boiling
water shrinkage of 3.7% to 25%. In other words, even when such a raw yarn was false-twisted
at a high processing speed of 1100 m/min or more, the occurrence of surging was suppressed.
The inventors of the subject application considered the reasons of this as follows.
[0007] The low pre-processing elongation and the low boiling water shrinkage mean that,
typically, the orientation of polymers forming the raw yarn and the crystallization
of the raw yarn have progressed. When such a raw yarn is false-twisted, high tension
(hereinafter, this will be referred to as the processing tension) is applied to the
raw yarn immediately on the upstream side of the false-twisting device in the yarn
running direction. To be more specific, the processing tension is mainly determined
by (i) orientation relaxation of the raw yarn and (ii) a resistance force of the raw
yarn against drawing. The orientation relaxation is caused as the raw yarn is heated
by the heater. Typically, as the orientation of the raw yarn is relaxed, the raw yarn
running on the upstream side of the false-twisting device in the yarn running direction
is thermally contracted. When the thermal contraction force is large, the processing
tension is high. The crystallization has progressed at a part of the raw yarn, and
the orientation relaxation is not caused at this part. Instead, because this part
has high rigidity, the above-described resistance force is large at this part. When
this resistance force is large, the processing tension is high.
[0008] Because of these two factors, when (i) the pre-processing elongation of the raw yarn
is less than 100% and (ii) the boiling water shrinkage of the raw yarn is 25% or less,
the processing tension is high. It is therefore possible to suppress loosening of
the yarn during false twisting. It is also possible to suppress the occurrence of
surging. Meanwhile, when the boiling water shrinkage is excessively low (i.e., when
the crystallization of the raw yarn has progressed too far), high torsional stress
is caused when the raw yarn is about to be false-twisted. When the torsional stress
is excessively high, an elastic restoring force of the yarn against the torsional
stress is also excessively high. As a result, in the false-twisting device, the yarn
is likely to slip in the same direction as the torsional stress. In order to suppress
this slip of the yarn, the inventors of the subject application considered that the
boiling water shrinkage needed to be high to some degree (specifically, to be higher
than 3.7%).
[0009] The raw yarn has a high strength of 2.9 cN/dtex or more. With this arrangement, even
when high tension is applied to the raw yarn, breakage of the raw yarn is suppressed.
It is therefore possible to suppress the generation of fluff and/or the yarn breakage
during the false twisting.
[0010] As such, the maximum speed at which the false-twisted processed yarn can be produced
is increased.
[0011] According to a second aspect of the invention, the method of the first aspect is
arranged such that the pre-processing elongation of the raw yarn is 80% or more.
[0012] Typically, when the crystallization of one raw yarn has progressed too far, the pre-processing
elongation of this raw yarn is excessively low. When the crystallization of the raw
yarn has progressed too far, the above-described torsional stress is likely to be
high so that, in the false-twisting device, the yarn is likely to slip in the same
direction as the torsional stress. As a result, the maximum speed may be decreased.
It is therefore preferable that the pre-processing elongation is 80% or more.
[0013] According to a third aspect of the invention, the method of the first or second aspect
is arranged such that the boiling water shrinkage of the raw yarn which is not false-twisted
is 3.7% or more and 10% or less.
[0014] This aspect increases the above-described resistance force. It is therefore possible
to increase the processing tension.
[0015] According to a fourth aspect of the invention, the method of any one of the first
to third aspects is arranged such that the orientation degree of the raw yarn which
is not false-twisted is measured by means of Raman spectroscopy and is 1.23 or more
and 1.38 or less.
[0016] Typically, when the orientation of the raw yarn has progressed too far, the crystallization
of the raw yarn tends to progress too far. According to this aspect, the orientation
degree is not too high and not too low. Therefore, while the processing tension is
increased, the above-described torsional stress is suppressed from being excessively
high.
[0017] According to a fifth aspect of the invention, the method of any one of the first
to fourth aspects is arranged such that the crystallizing degree of the raw yarn which
is not false-twisted is 26% or more and 38% or less.
[0018] According to this aspect, the crystallizing degree is not too high and not too low.
Therefore, while the processing tension is increased, the above-described torsional
stress is suppressed from being excessively high.
[0019] According to a sixth aspect of the invention, the method of any one of the first
to fifth aspects is arranged such that the target elongation which is a target value
of the residual elongation of the formed false-twisted processed yarn is set to be
18% or more and 26% or less.
[0020] This aspect makes it possible to manufacture the false-twisted processed yarn whose
residual elongation is typical.
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
FIG. 1 is a profile of a false-twist texturing machine configured to embody a method
of manufacturing (manufacturing method) false-twisted processed yarns in the present
embodiment.
FIG. 2 is a schematic diagram of the false-twist texturing machine, expanded along
paths of yarns.
FIG. 3 shows a spun yarn winding system for producing raw yarns.
FIG. 4(a) is a table showing, e.g., conditions of manufacturing (manufacturing conditions)
the raw yarns in Examples and Comparative Examples, and FIG. 4(b) is a table showing,
e.g., conditions of false twisting (false-twisting conditions) in those Examples and
those Comparative Examples.
FIG. 5(a) is a table showing, e.g., manufacturing conditions of the raw yarns in other
Examples and other Comparative Examples, and FIG. 5(b) is a table showing, e.g., false-twisting
conditions in those Examples and those Comparative Examples.
FIG. 6(a) is a table showing, e.g., manufacturing conditions of the raw yarns in other
Examples and other Comparative Examples, and FIG. 6(b) is a table showing, e.g., false-twisting
conditions in those Examples and those Comparative Examples.
FIG. 7 is a graph which schematically shows the relationship between the composition
ratio of the molecular structure of each raw yarn and the spinning speed of each raw
yarn.
FIG. 8(a) is a graph showing the correlation between the maximum speed of the false
twisting and the residual elongation (described later) of each raw yarn, and FIG.
8(b) is a graph showing the correlation between the maximum speed of the false twisting
and the processing tension (described later) of each raw yarn.
FIG. 9(a) is a graph showing the correlation between the maximum speed of the false
twisting and the boiling water shrinkage of each raw yarn, and FIG. 9(b) shows an
enlargement of a part of the graph of FIG. 9(a).
FIG. 10(a) is a graph showing the correlation between the boiling water shrinkage
and residual elongation of each raw yarn, and FIG. 10(b) is a graph showing the correlation
between the residual elongation and spinning speed of each raw yarn.
FIG. 11(a) is a graph showing the correlation between the maximum speed of the false
twisting and the degree of orientation (orientation degree) of each raw yarn, and
FIG. 11(b) is a graph showing the correlation between the maximum speed of the false
twisting and the degree of crystallizing (crystallizing degree) of each raw yarn.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] The following will describe an embodiment of the present invention. For the sake
of convenience, a direction perpendicular to the sheet of FIG. 1 is referred to as
a base longitudinal direction. Furthermore, a left-right direction on the sheet of
FIG. 1 is referred to as a base width direction. An up-down direction on the sheet
of FIG. 1, i.e., a direction orthogonal to both the base longitudinal direction and
the base width direction is referred to as an up-down direction (a vertical direction)
in which the gravity acts. In this regard, the base longitudinal direction and the
base width direction are substantially in parallel to a horizontal direction. A direction
in which each later-described yarn Y runs is referred to as a yarn running direction.
(Overall Structure of False-Twist Texturing Machine)
[0023] To begin with, the following will describe the overall structure of a false-twist
texturing machine 1 configured to embody a manufacturing method of false-twisted processed
yarns Yf in the present embodiment, with reference to FIG. 1 and FIG. 2. FIG. 1 is
a profile of the false-twist texturing machine 1. FIG. 2 is a schematic diagram of
the false-twist texturing machine 1, expanded along paths of yarns Y (yarn paths).
[0024] The false-twist texturing machine 1 is configured to false-twist yarns Y (raw yarns
Yr) so as to manufacture false-twisted processed yarns Yf. Each raw yarn Yr is made
of, e.g., polyester synthetic fibers. Each raw yarn Yr is, e.g., a multi-filament
yarn formed of plural filaments. Alternatively, each raw yarn Yr may be formed of
a single filament. Each raw yarn Yr is a typical partially-oriented yarn (POY) in
which polymers forming each filament are partially oriented. The raw yarns Yr are
formed by a later-described spun yarn winding system 100 (see FIG. 3).
[0025] The false-twist texturing machine 1 includes a yarn supplying unit 2, a processing
unit 3, and a winding unit 4. The yarn supplying unit 2 is able to supply the yarns
Y. The processing unit 3 is configured to take out the yarns Y from the yarn supplying
unit 2 and to false-twist the yarns Y. The winding unit 4 is configured to wind the
yarns Y processed by the processing unit 3 onto winding bobbins Bw. Components of
the yarn supplying unit 2, the processing unit 3, and the winding unit 4 are aligned
to form plural lines (see FIG. 2) in the base longitudinal direction. The base longitudinal
direction is a direction orthogonal to a yarn running surface (the sheet of FIG. 1)
of the yarns Y, on which the yarn paths from the yarn supplying unit 2 to the winding
unit 4 via the processing unit 3 are provided.
[0026] The yarn supplying unit 2 includes a creel stand 7 retaining yarn supply packages
Ps, and is configured to supply the yarns Y (raw yarns Yr) to the processing unit
3. The processing unit 3 is configured to take out the yarns Y from the yarn supplying
unit 2 and to process the yarns Y. In the processing unit 3, for example, the following
members are provided in this order from the upstream side in the yarn running direction:
first feed rollers 11; twist-stopping guides 12; first heaters 13; coolers 14; false-twisting
devices 15; second feed rollers 16; interlacing devices 17; third feed rollers 18;
a second heater 19; and fourth feed rollers 20. The winding unit 4 includes plural
winding devices 21. Each winding device 21 is configured to wind a yarn Y false-twisted
by the processing unit 3 onto a winding bobbin Bw, so as to form a wound package Pw.
Hereinafter, the yarns Y which have been false-twisted by the processing unit 3 may
be referred to as the false-twisted processed yarns Yf.
[0027] The false-twist texturing machine 1 includes a main base 8 and a winding base 9 that
are spaced apart from each other in the base width direction. The main base 8 and
the winding base 9 are substantially identical in length in the base longitudinal
direction. The main base 8 and the winding base 9 oppose each other in the base width
direction. The false-twist texturing machine 1 includes units termed spans. Each span
includes a pair of the main base 8 and the winding base 9. In one span, each device
is placed so that the yarns Y running while being aligned in the base longitudinal
direction can be simultaneously false-twisted. In the false-twist texturing machine
1, the spans are placed in a left-right symmetrical manner to the sheet, with a center
line C of the main base 8 in the base width direction being set as a symmetry axis
(i.e., the main base 8 is shared between the left span and the right span). The spans
are aligned in the base longitudinal direction.
(Processing Unit)
[0028] The following will describe the structure of the processing unit 3 with reference
to FIG. 1 and FIG. 2. Each first feed roller 11 is configured to unwind a yarn Y from
a yarn supply package Ps attached to the yarn supplying unit 2, and to feed the yarn
Y to a first heater 13. As shown in FIG. 2, for example, the first feed roller 11
is configured to feed one yarn Y to the first heater 13. Alternatively, the first
feed roller 11 may be able to feed adjacent yarns Y to the downstream side in the
yarn running direction. Hereinafter, the conveyance speed of conveying the yarn Y
by the first feed roller 11 is referred to as a first yarn feeding speed.
[0029] Each twist-stopping guide 12 is arranged to prevent the twist of a yarn Y formed
by a false-twisting device 15 from being propagated to the upstream side of the twist-stopping
guide 12 in the yarn running direction. Each first heater 13 is configured to heat
yarns Y fed from some first feed rollers 11 to a predetermined processing temperature.
As shown in FIG. 2, for example, the first heater 13 (a heater of the present invention)
is able to heat two yarns Y. The number of the yarns Y heated by the first heater
13 is not limited to this. Each cooler 14 is configured to cool a yarn Y heated by
a first heater 13. As shown in FIG. 2, for example, the cooler 14 is configured to
cool one yarn Y. Alternatively, the cooler 14 may be able to simultaneously cool plural
yarns Y.
[0030] Each false-twisting device 15 is provided downstream of a first heater 13 and a cooler
14 in the yarn running direction. The false-twisting device 15 is configured to twist
a yarn Y. For example, the false-twisting device 15 is a known so-called disc-friction-type
false-twisting device. The false-twisting device 15 includes plural discs (not illustrated)
arranged to form a helix. These discs are rotationally driven in the same direction.
In this way, the yarn Y is twisted by the friction force between the yarn Y and the
surface of each disc.
[0031] Each second feed roller 16 is configured to feed a yarn Y processed by a false-twisting
device 15 to an interlacing device 17. Hereinafter, the conveyance speed of conveying
the yarn Y by the second feed roller 16 is referred to as a second yarn feeding speed.
In this regard, a speed (hereinafter, this speed is referred to as a processing speed)
at which each yarn Y is false-twisted is defined by, e.g., the second yarn feeding
speed. The second yarn feeding speed is higher than the first yarn feeding speed.
With this arrangement, the yarn Y is drawn and false-twisted between the first feed
roller 11 and the second feed roller 16.
[0032] A combination of the first feed roller 11 and the second feed roller 16 may be referred
to as a drawing device. The ratio of the second yarn feeding speed to the first yarn
feeding speed is typically referred to as the draw ratio. The yarn Y is tensioned
while running between the first feed roller 11 and the second feed roller 16. In this
regard, when the yarn Y runs immediately upstream of the false-twisting device 15
in the yarn running direction, tension is applied to the yarn Y. Hereinafter, for
the sake of convenience, this tension may be referred to as the processing tension.
[0033] Each interlacing device 17 is configured to interlace a yarn Y. The interlacing device
17 includes, e.g., a known interlace nozzle configured to interlace the yarn Y by
means of an airflow. Each third feed roller 18 is configured to feed a yarn Y running
on the downstream side of an interlacing device 17 in the yarn running direction,
to the second heater 19. As shown in FIG. 2, for example, the third feed roller 18
is configured to feed one yarn Y to the second heater 19. Alternatively, the third
feed roller 18 may be able to feed adjacent yarns Y to the downstream side in the
yarn running direction. The conveyance speed of conveying the yarn Y by the third
feed roller 18 is lower than the conveyance speed of conveying the yarn Y by each
second feed roller 16. The yarn Y is therefore relaxed between the second feed roller
16 and the third feed roller 18. The second heater 19 is configured to heat yarns
Y fed from some third feed rollers 18. The second heater 19 extends along a vertical
direction, and one second heater 19 is provided in one span. Each fourth feed roller
20 is configured to feed a yarn Y heated by the second heater 19 to a winding device
21. As shown in FIG. 2, for example, the fourth feed roller 20 is able to feed one
yarn Y to the winding device 21. Alternatively, the fourth feed roller 20 may be able
to feed adjacent yarns Y to the downstream side in the yarn running direction. The
conveyance speed of conveying the yarn Y by the fourth feed roller 20 is lower than
the conveyance speed of conveying the yarn Y by each third feed roller 18. The yarn
Y is therefore relaxed between the third feed roller 18 and the fourth feed roller
20.
[0034] In the processing unit 3 arranged as described above, the yarn Y drawn between the
first feed roller 11 and the second feed roller 16 is twisted by the false-twisting
device 15. The twist formed by the false-twisting device 15 propagates to the twist-stopping
guide 12, but does not propagate to the upstream side of the twist-stopping guide
12 in the yarn running direction. The yarn Y which is twisted and drawn is heated
by the first heater 13 and thermally set. After that, the yarn Y is cooled by the
cooler 14. The yarn Y is untwisted on the downstream side of the false-twisting device
15 in the yarn running direction. However, the yarn Y is maintained to be wavy in
shape on account of the thermal setting described above (i.e., the crimp contraction
of the yarn Y is maintained).
[0035] The false-twisted yarn Y is interlaced by the interlacing device 17 while being relaxed
between the second feed roller 16 and the third feed roller 18. After that, the yarn
Y is guided toward the downstream side in the yarn running direction. Furthermore,
the yarn Y is thermally processed by the second heater 19 while being relaxed between
the third feed roller 18 and the fourth feed roller 20. Finally, the yarn Y (false-twisted
processed yarn Yf) fed from the fourth feed roller 20 is wound by the winding device
21.
(Winding Unit)
[0036] The following will describe the structure of the winding unit 4 with reference to
FIG. 2. The winding unit 4 includes winding devices 21. Each winding device 21 is
able to wind, e.g., one yarn Y onto one winding bobbin Bw. The winding device 21 includes
a fulcrum guide 31, a traverse device 32, and a cradle 33. The fulcrum guide 31 functions
as a fulcrum when the yarn Y is traversed. The traverse device 32 is able to traverse
the yarn Y by means of a traverse guide 34. The cradle 33 is configured to rotatably
support the winding bobbin Bw. A contact roller 35 is provided in the vicinity of
the cradle 33. The contact roller 35 is configured to make contact with a surface
of a wound package Pw so as to apply a contact pressure to the surface of the wound
package Pw. In the winding unit 4 arranged as described above, the yarn Y fed by the
fourth feed roller 20 described above is wound onto the winding bobbin Bw by each
winding device 21 so as to form the wound package Pw.
(Spun Yarn Winding System)
[0037] The following will describe the spun yarn winding system 100 as one example of a
system for producing raw yarns Yr, with reference to FIG. 3. FIG. 3 is a profile which
schematically shows the spun yarn winding system 100. For the sake of convenience,
a predetermined direction orthogonal to the up-down direction is referred to as a
front-rear direction. The front-rear direction is in parallel to the left-right direction
on the sheet of FIG. 3. A direction orthogonal to both the up-down direction and the
front-rear direction is referred to as a left-right direction. The left-right direction
is in parallel to a direction perpendicular to the sheet of FIG. 3.
[0038] The spun yarn winding system 100 is configured to wind spun-out yarns Y onto bobbins
B, so as to form packages P (yarn supply packages Ps described above). The spun yarn
winding system 100 includes a spinning apparatus 101, a cooler 102, a take-up unit
103, and a winding unit 104.
[0039] The spinning apparatus 101 is configured to discharge (spin out) molten polymer which
is a material of the yarns Y (raw yarns Yr). The cooler 102 is configured to cool
and solidify the molten polymer. The molten polymer is solidified and formed as the
yarns Y each of which is formed of one or more filaments. An oil applicator (not illustrated)
configured to apply oil to each yarn Y is provided below the cooler 102.
[0040] The take-up unit 103 is configured to take up the descending yarns Y. The take-up
unit 103 includes, e.g., a first godet roller 111 and a second godet roller 112. The
first godet roller 111 is provided below the spinning apparatus 101, the cooler 102,
and the oil applicator. The first godet roller 111 is configured to take up the yarns
Y and to send the yarns Y to the second godet roller 112. For example, the second
godet roller 112 is provided above and behind the first godet roller 111. The second
godet roller 112 is configured to send the yarns Y to the winding unit 104.
[0041] The winding unit 104 is configured to wind the yarns Y onto the bobbins B so as to
form the packages P. The winding unit 104 is provided below the second godet roller
112. The winding unit 104 includes fulcrum guides 121, traverse guides 122, a turret
123, two bobbin holders 124, and a contact roller 125.
[0042] Each fulcrum guide 121 functions as a fulcrum when a yarn Y is traversed by a traverse
guide 122. The fulcrum guides 121 are aligned in the front-rear direction. The fulcrum
guides 121 are provided for the respective yarns Y. The traverse guides 122 are provided
for traversing the respective yarns Y. The traverse guides 122 are aligned in the
front-rear direction. The traverse guides 122 are provided for the respective fulcrum
guides 121. The turret 123 is substantially disc-shaped. An axis of the turret 123
is substantially parallel to the front-rear direction. The turret 123 is rotationally
driven by an unillustrated turret motor. Each of the two bobbin holders 124 is arranged
to support the bobbins B so that the bobbins B are aligned in the front-rear direction.
An axis of each bobbin holder 124 is substantially in parallel to the front-rear direction.
The two bobbin holders 124 are rotatably supported by the turret 123. When viewed
in the front-rear direction, the two bobbin holders 124 oppose each other over a center
point of the turret 123. To be more specific, for example, when one bobbin holder
124 is positioned at the highest part of the turret 123, the other bobbin holder 124
is positioned at the lowest part of the turret 123. Each bobbin holder 124 is arranged
to rotatably support the bobbins B which are provided for the respective yarns Y.
The bobbins B which are provided for the respective yarns Y are attached to each bobbin
holder 124 so as to be aligned in the front-rear direction. Each of the two bobbin
holders 124 is rotationally driven by an individual winding motor (not illustrated).
An axis of the contact roller 125 is substantially in parallel to the front-rear direction.
The contact roller 125 is provided immediately above upper one of the two bobbin holders
124. The contact roller 125 is configured to make contact with the surfaces of the
packages P supported by upper one of the two bobbin holders 124. With this arrangement,
the contact roller 125 applies a contact pressure to the surfaces of the unfinished
packages P so as to adjust the shape of each package P.
[0043] When upper one of the two bobbin holders 124 is rotationally driven, the yarns Y
which are traversed by the traverse guides 122 are wound onto the bobbins B so as
to form the packages P. When the formation of the packages P is completed, the turret
123 is rotated so as to switch over the upper and lower positions of the two bobbin
holders 124. Because of this, one bobbin holder 124 having been at the lower position
is moved to the upper position. As a result, the yarns Y are wound onto the bobbins
B attached to this bobbin holder 124 having been moved to the upper position, so as
to form packages P. Meanwhile, the other bobbin holder 124 to which the fully-formed
packages P are attached is moved to the lower position by the turret 123. These fully-formed
packages P are collected by, e.g., an unillustrated package collector. The collected
packages P are then attached to the yarn supplying unit 2 of the false-twist texturing
machine 1 as the above-described yarn supply packages Ps.
[0044] Typically, when the running speed (processing speed) of the yarns Y is arranged to
be higher than the maximum speed (this may be referred to as the surging speed) in
the false-twist texturing machine 1, the yarns Y start to vibrate (i.e., surging occurs)
so that the false-twisted processed yarns Yf cannot properly produced. There have
recently been demands for further improvement in production efficiency of the false-twisted
processed yarns Yf. As a result of diligent study, the inventors of the subject application
found a method of increasing the maximum speed (the maximum speed at which the false-twisted
processed yarns Yf can be produced) of false twisting. Hereinafter, the maximum speed
of the false twisting may be simply referred to as the maximum speed.
(Processing Conditions Required in False Twisting)
[0045] Before describing the manufacturing method of the false-twisted processed yarns Yf
in the present embodiment, the following will outline processing conditions required
for producing the false-twisted processed yarns Yf by false-twisting (to be more specific,
by drawing and false-twisting) the raw yarns Yr.
[0046] Before being false-twisted by the false-twist texturing machine 1, each raw yarn
Yr has predetermined residual elongation (pre-processing elongation) as a unique characteristic
of the raw yarn Yr. The residual elongation of each yarn Y is the elongation of the
yarn Y after the yarn Y is pulled and broken under predetermined conditions. In other
words, the residual elongation is the elongation ratio of the yarn Y which has been
broken to the yarn Y which is not pulled yet. The residual elongation of the raw yarn
Yr may vary depending on a manufacturing condition of the raw yarn Yr in the spun
yarn winding system 100. The strength of the raw yarn Yr (the pulling force applied
to the raw yarn Yr when the raw yarn Yr is broken) may also vary depending on the
manufacturing condition of the raw yarn Yr in the spun yarn winding system 100.
[0047] The raw yarn Yr is typically required to be false-twisted so that the residual elongation
of each false-twisted processed yarn Yf achieves a predetermined target value (hereinafter,
this will be referred to as the target elongation). In other words, the raw yarn Yr
is typically false-twisted in consideration of the pre-processing elongation and the
target elongation. The target elongation may slightly vary depending on the use of
the false-twisted processed yarn Yf. The typical target elongation is within the range
of 18 to 26%. In false-twist texturing machine 1, the operating conditions of the
first feed roller 11, the first heater 13, the cooler 14, the false-twisting device
15, the second feed roller 16, etc. are set as the processing conditions so that the
residual elongation of the false-twisted processed yarn Yf achieves the target elongation.
For example, the above-described draw ratio is determined (calculated) by the relationship
between the pre-processing elongation and the target elongation.
(Cause of Surging)
[0048] The following will briefly describe the cause of the surging. As the running yarn
Y is unintentionally and repeatedly loosened and tensioned, the surging occurs. The
direct cause of the surging is mainly due to the false-twisting device 15. The surging
may occur between the first feed roller 11 and the second feed roller 16 in the yarn
running direction. For example, the running yarn Y may slip on the surfaces of the
discs in the false-twisting device 15 of the friction type. Even when the yarn Y slips
in the false-twisting device 15, the yarn Y is able to properly run as long as it
is not loosened (i.e., as long as the tension is applied to the yarn Y). However,
when the running speed (substantially equal to the second yarn feeding speed) of the
yarn Y is high in the false-twisting device 15, the yarn Y is likely to slip. The
more frequently the yarn Y slips, the more likely the yarn Y is to be loosened. When
the yarn Y is unintentionally loosened and tensioned between the first feed roller
11 and the second feed roller 16, the yarn Y vibrates so as not to properly run. That
is, the surging occurs. The second yarn feeding speed at which the surging starts
to occur is the above-described maximum speed.
[0049] An effective method of suppressing the surging is to increase the tension (i.e.,
processing tension) of the yarn Y running immediately on the upstream side of the
false-twisting device 15 in the yarn running direction. However, as described above,
the draw ratio is determined in advance in consideration of the pre-processing elongation
and the target elongation. Typically, the higher the draw ratio is, the higher the
processing tension may be. However, when the draw ratio is excessively high, the residual
elongation of the false-twisted processed yarn Yf is significantly different from
the target elongation. Such a false-twisted processed yarn Yf does not qualify as
a product.
(Manufacturing Method of False-Twisted Processed Yarn)
[0050] To solve the problem above, the inventors of the subject application considered a
method of manufacturing a false-twisted processed yarn Yf which qualified as a product
and increasing the maximum speed. In this regard, the inventors of the subject application
performed the false twisting with use of raw yarns Yr which were manufactured under
different manufacturing conditions in the spun yarn winding system 100. To be more
specific, the inventors of the subject application prepared the raw yarns Y respectively
for Examples 1 to 16 and Comparative Example 1 to 13 as shown in the tables of FIG.
4(a) to FIG. 6(b). How these Examples and these Comparative Examples are divided will
be described later. The target thickness of a raw yarn Yr of each Example and that
of a raw yarn Yr of each Comparative Example were set in a typical thickness (83 dtex
(decitex)). The number of filaments forming the raw yarn Yr is 48 in Examples 1 to
4 and Comparative Examples 1 to 2 (see FIG. 4(a) and FIG. 4(b)). The number of filaments
forming the raw yarn Yr is 72 in Examples 5 to 12 and Comparative Examples 3 to 5
(see FIG. 5(a) and FIG. 5(b)). The number of filaments forming the raw yarn Yr is
144 in Examples 13 to 16 and Comparative Examples 6 to 13 (see FIG. 6(a) and FIG.
6(b)).
[0051] Each of FIG. 4(a), FIG. 5(a), and FIG. 6(a) is a table showing the manufacturing
condition and physical properties of each raw yarn Yr. In the table, a value of the
spinning speed is shown as the manufacturing condition of each raw yarn Yr. Furthermore,
the following values are shown as the physical properties of each raw yarn Yr: a value
of the residual elongation (pre-processing elongation); a value of the strength; a
value of the fineness; a value of the boiling water shrinkage; a value of the orientation
degree; and a value of the crystallizing degree. The spinning speed (the unit is m/min)
is the winding speed at which each yarn Y is wound onto a bobbin B. The residual elongation
(the unit is %) was measured by using TENSORAPID (Trademark) which was the strength
meter/extensometer of Uster Technologies. Similarly, the strength (the unit is cN/dtex
(cN/decitex)) was measured by using TENSORAPID (Registered Trademark) which was the
strength meter/extensometer of Uster Technologies. To calculate the fineness, a yarn
sample with a predetermined length was obtained by using an electric sizing reel (a
machine for winding a yarn to make a hank) of INTEC CO., LTD. After that, the weight
of this yarn sample was measured by using a typical scale. In this way, the fineness
was calculated as the ratio of the weight of this yarn sample to the length of this
yarn sample. In this regard, the unit of the fineness is dtex (decitex). To calculate
the boiling water shrinkage (this unit is %), a yarn sample with a predetermined length
was heated by using a thermostat bath (this model number is T-22H) of Thomas Kagaku
CO., LTD. After that, the boiling water shrinkage was calculated by measuring the
length of the heated yarn sample with use of a typical ruler. The orientation degree
(dimensionless quantity) was measured by using a RAMAN touch (Registered Trademark)
which was the Raman spectrometer of Nanophoton Corporation. The crystallizing degree
(this unit is %) was measured by using DSC25 (this is the model number of the product)
which was the differential scanning calorimeter of TA Instruments Materials Science.
The birefringence is typically measured as the index of orientation degree of a material
forming each yarn Y. However, instead of measuring the birefringence, the inventors
of the subject application measured the orientation degree by means of Raman spectroscopy.
In this regard, the orientation degree and crystallizing degree ware measured only
in Examples 1 to 4 and Comparative Examples 1 to 2 just for reference.
[0052] As the raw yarns Yr, the inventors of the subject application used PET (i.e., polyester)
yarns Y which were manufactured by the spun yarn winding system 100 so as to obtain
different values of the residual elongation. In this regard, the residual elongation
of each raw yarn Yr is changeable by changing the spinning speed in the spun yarn
winding system 100. Typically, when the winding speed is high, molten polymer spun
out from the spinning apparatus 101 is easily drawn before being solidified. That
is, the higher the winding speed is, the more the residual elongation of each raw
yarn Yr tends to be low. As the raw yarns Yr of plural types, the inventors of the
subject application prepared (i) raw yarns Yr with the residual elongation of 100%
or more and (ii) raw yarns Yr with the residual elongation of less than 100%. It has
been said that the raw yarns Yr with the residual elongation of 100% or more are suitable
for drawing and the false twisting. Meanwhile, it has been said that the raw yarns
Yr with the residual elongation of less than 100% are not suitable for the drawing
and the false twisting. Except the spinning speed, the inventors of the subject application
performed settings so that the raw yarns Yr had the same typical manufacturing conditions.
With this arrangement, the typical false twisting can be performed at least for a
conventional raw yarn Yr with the residual elongation of 100% or more. The strength
of each raw yarn Yr with the residual elongation of less than 100% was higher than
that of each raw yarn Yr with the residual elongation of 100% or more, i.e., higher
than 2.9 cN/dtex.
[0053] The inventors of the subject application set the manufacturing condition (false-twisting
condition) of each false-twisted processed yarn Yf in consideration of the residual
elongation (pre-processing elongation described above) and target elongation of each
raw yarn Yr which was not false twisted yet. In this regard, the false-twisting conditions
of all false-twisted yarns Yf have the same target elongation which is 22%. Each of
FIG. 4(b), FIG. 5(b), and FIG. 6(b) is a table showing the false-twisting condition,
processability, and physical properties of each false-twisted processed yarn Yf. In
the table, a value of the above-described draw ratio is shown as the false-twisting
condition of each false-twisted processed yarn Yf. Furthermore, a value of the maximum
speed (described later) and a value of the processing tension are shown as the processability
of each false-twisted processed yarn Yf. Furthermore, values of the residual elongation
strength of each false-twisted processed yarn Yf are shown as the physical properties
of each false-twisted processed yarn Yf. The processing tension (the unit is cN) was
measured by using a typical tensiometer. The residual elongation and strength of each
false-twisted processed yarn Yf were measured by using the same apparatuses which
were used for measuring those of each raw yarn Yr.
[0054] In addition to the draw ratio, other false-twisting conditions are provided for each
false-twisted processed yarn Yf. The inventors of the subject application set the
other false-twisting conditions of each false-twisted processed yarn Yf in typical
values. It is known that this arrangement makes it possible to false-twist, at least,
each raw yarn Yr with the residual elongation of 100% or more so as to obtain a traditional
high-quality false-twisted processed yarn.
[0055] The inventors of the subject application manufactured each false-twisted processed
yarn Yf under a false-twisting condition (the draw ratio) corresponding to each raw
yarn Yr. When each false-twisted processed yarn Yf was manufactured, the inventors
of the subject application checked the maximum speed by keeping a value of the draw
ratio and gradually increasing the processing speed. Under each false-twisting condition
(hereinafter, this will be simply referred to as a condition), the highest processing
speed at which the surging does not occur is the maximum speed. Traditionally, the
maximum speed in the known case at which a traditional normal raw yarn was false-twisted
was approximately 1000 m/min. Under some conditions, the processing speed was considerably
higher than the maximum speed in the known case.
[0056] The inventors of the subject application divided examples with the respective conditions
into Examples and Comparative Examples. To be more specific, when the maximum speed
was 1100 m/min or more in an example with a condition on the premise that (i) the
residual elongation of a raw yarn Yr was less than 100%, (ii) the false twisting was
properly performed, and (iii) the yarn quality of a false-twisted processed yarn Yf
was appropriate, the inventors of the subject application classified this example
as an Example irrespective of the number of filaments forming the raw yarn Yr. Meanwhile,
when the maximum speed was less than 1100 m/min in an example with a condition, the
inventors of the subject application classified this example as a Comparative Example.
That is, when the maximum speed in an example with a condition was simply higher than
the maximum speed in the known case, the inventors of the subject application classified
this example as an Example. This is how Examples and Comparative Examples are divided
in the present embodiment.
[0057] When the false twisting was properly performed, problems such as yarn breakage and
generation of fluff did not occur during the false twisting. The generation of fluff
is a yarn quality defect caused when only some of filaments forming a yarn Y are broken.
The yarn breakage is caused when a yarn Y is completely broken, and causes the manufacture
of a false-twisted processed yarn Yf to stop. In the present embodiment, the generation
of fluff and the yarn breakage did not occur during the false twisting in Examples
and Comparative Examples, and the false twisting was properly performed.
[0058] When the yarn quality of a false-twisted processed yarn Yf is appropriate, the residual
elongation and strength of the false-twisted processed yarn Yf are substantially identical
with those of a known false-twisted processed yarn. When the residual elongation of
a false-twisted processed yarn Yf was 18 to 26% and the strength of the false-twisted
processed yarn Yf was 3.7 or more, the inventors of the subject application determined
this false-twisted processed yarn Yf as a false-twisted processed yarn Yf with appropriate
yarn quality.
[0059] As shown in FIG. 4(a) to FIG. 6(b), when raw yarns Yr with the pre-processing elongation
of less than 100% (i.e., raw yarns Yr which were considered to be unsuitable for the
drawing and the false twisting) were false-twisted, values of the maximum speed of
the false twisting were considerably high. The inventors of the subject application
considered the reason of this as follows. To begin with, as described above, the higher
the winding speed in the spun yarn winding system 100 is, the lower the residual elongation
of each raw yarn Yr is. When one raw yarn Yr is considerably drawn by the spun yarn
winding system 100, the residual elongation of this raw yarn Yr is low. When the raw
yarn Yr is drawn, the orientation of polymers in the raw yarn Yr is adjusted (the
polymers are oriented). In this regard, the crystallization of the polymers progresses
along with the orientation of the polymers. The inventors of the subject application
considered that there was causality between such phenomenon and the increased values
of the maximum speed of the false twisting.
[0060] In this regard, the inventors of the subject application also considered that (i)
there were three structures of molecules in each raw yarn Yr as described below and
(ii) the ratio (hereinafter, this will be referred to as the composition ratio) of
mixture of these three structure of the raw yarn Yr varied depending on the spinning
speed. The following describes the details with reference to FIG. 7. FIG. 7 is a graph
showing the relationship between the composition ratio of the molecular structure
of each raw yarn Yr and the spinning speed of each raw yarn Yr. The vertical axis
indicates the composition ratio. The transverse axis indicates the spinning speed.
As the first structure, each raw yarn Yr may have an unoriented-noncrystalline structure
(hereinafter, this will be referred to as the structure S1) in which the polymers
are not oriented and not crystallized. As the second structure, the raw yarn Yr may
have an oriented-noncrystalline structure (hereinafter, this will be referred to as
the structure S2) in which the polymers are oriented and not crystallized. As the
third structure, the raw yarn Yr may have an oriented-crystalline structure (hereinafter,
this will be referred to as the structure S3) in which the polymers are oriented and
crystallized. The structures S1, S2, and S3 are divided by solid lines in the graph
of FIG. 7.
[0061] In this regard, the raw yarn Yr may include an unoriented-crystalline structure in
which the polymers are not oriented and are crystallized. However, because the raw
yarn Yr runs in the spun yarn winding system 100 while being pulled to some degree,
the raw yarn Yr is highly unlikely to include the unoriented-crystalline structure.
This structure is therefore not detailed.
[0062] As shown in FIG. 7, when the spinning speed is very low in an example with a condition,
a large part of the raw yarn Yr has the structure S1 (indicated by a two-dot chain
line L1). As compared to this, when the spinning speed is slightly high in an example
with a condition, the ratio of a part corresponding to the structure S2 increases
and that of a part corresponding to the structure S1 decreases in the raw yarn Yr
(indicated by a two-dot chain line L2) . As compared to this, when the spinning speed
is relatively high in an example with a condition, the structure S3 appears in the
raw yarn Yr (indicated by a two-dot chain line L3). As compared to this, when the
spinning speed is high in an example with a condition, the ratio of a part corresponding
to the structure S3 increases and that of a part corresponding to the structure S1
and that of a part corresponding to the structure S2 decrease in the raw yarn Yr (indicated
by a two-dot chain line L4) . As compared to this, when the spinning speed is very
high in an example with a condition, a large part of the raw yarn Yr has the structure
S3 (indicated by a two-dot chain line L5).
[0063] By being heated, the structure S2 (oriented-noncrystalline structure) of the raw
yarn Yr is likely to turn into the structure S1 (unoriented-noncrystalline structure)
so that a large thermal contraction may be generated because of orientation relaxation.
Meanwhile, a structural change caused by heating is unlikely to occur in the structure
S3 (oriented-crystalline structure) of the raw yarn Yr. Therefore, a thermal contraction
force is unlikely to be generated. However, because the structure S3 of the raw yarn
Yr has high rigidity, stress is likely to be caused when external force is applied.
The inventors of the subject application considered that the characteristics of these
structures of the raw yarn Yr affected each other in a complicated manner so that
(i) the processing tension varied depending on the pre-processing elongation of the
raw yarn Yr and (ii) the maximum speed of the false twisting also varied.
[0064] In many examples of the present embodiment, raw yarns Yr were manufactured at the
high spinning speed. In each of the raw yarns Yr, the ratio of a part corresponding
to the structure S1 and that of a part corresponding to the structure S2 are relatively
low and that of a part corresponding to the structure S3 is relatively high. Therefore,
the inventors of the subject application focused on the ratio of a noncrystalline
structure (the structure S1 or the structure S2) of the raw yarn Yr to a crystalline
structure (the structure S3) of the raw yarn Yr in addition to the pre-processing
elongation of the raw yarn Yr. This ratio is significantly reflected on the boiling
water shrinkage which is one physical property of the raw yarn Yr.
[0065] The following will describe the correlation between items with reference to the graphs
of FIG. 8(a) to FIG. 11(b). FIG. 8(a) is a graph showing the correlation between the
maximum speed of the false twisting and the residual elongation of each raw yarn Yr.
FIG. 8(b) is a graph showing the correlation between the maximum speed of the false
twisting and the processing tension. FIG. 9(a) is a graph showing the correlation
between the maximum speed of the false twisting and the boiling water shrinkage of
each raw yarn Yr. FIG. 9(b) shows an enlargement of a part of the graph of FIG. 9(a).
FIG. 10(a) is a graph showing the correlation between the boiling water shrinkage
and residual elongation of each raw yarn Yr. FIG. 10(b) is a graph showing the correlation
between the residual elongation and spinning speed of each raw yarn Yr. FIG. 11(a)
is a graph showing the correlation between the maximum speed of the false twisting
and the orientation degree of each raw yarn Yr. In this regard, FIG. 11(a) shows a
correlation between the maximum speed of the false twisting and the orientation degree
of each raw yarn Yr. This correlation (indicated by a dashed line) is estimated by
interpolation. FIG. 11(b) is a graph showing the correlation between the maximum speed
of the false twisting and the crystallizing degree of each raw yarn Yr. In this regard,
FIG. 11(b) shows a correlation between the maximum speed of the false twisting and
the crystallizing degree of each raw yarn Yr. This correlation (indicated by a dashed
line) is estimated by interpolation.
[0066] As shown in FIG. 8(a), when the pre-processing elongation (residual elongation) of
the raw yarn Yr is approximately 90 to 100%, the maximum speed is highest. In regard
to the pre-processing elongation of 90% or less, the lower the pre-processing elongation
is, the lower the maximum speed tends to be. Especially, when the pre-processing elongation
is 80% or less, the maximum speed tends be 1100 m/min or less. In this regard, the
pre-processing elongation at which the maximum speed is highest varies depending on
the number of filaments forming the raw yarn Yr. Therefore, the pre-processing elongation
is unlikely to be closely related to the maximum speed. The inventors of the subject
application thus considered that the pre-processing elongation of 80% or more was
not a prerequisite for the maximum speed of 1100 m/min or more.
[0067] As shown in FIG. 8(b), the higher the processing tension is, the higher the maximum
speed tends to be. This tendency is more or less consistent with the above-described
opinion of the inventors. However, when the processing tension is excessively high,
the decrease in maximum speed tends to start. The inventors of the subject application
thus considered that the maximum speed was not determined only by the processing tension.
[0068] As shown in FIG. 9(a), when the boiling water shrinkage of the raw yarn Yr is approximately
10%, the maximum speed is highest. Typically, the further the crystallization of the
raw yarn Yr progresses, the higher the boiling water shrinkage is. This tendency regarding
the maximum speed does not actually depend on the number of filaments forming the
raw yarn Yr. The inventors of the subject application thus considered that the maximum
speed was determined mainly by the boiling water shrinkage. FIG. 9(a) and FIG. 9(b)
showed that, when the boiling water shrinkage was 3.7 to 40%, the maximum speed was
1100 m/min or higher.
[0069] For reference, as shown in FIG. 10(a), the higher the boiling water shrinkage of
the raw yarn Yr is, the higher the residual elongation (pre-processing elongation)
tends to be. This typical tendency means that, in the raw yarn Yr, the higher the
ratio of a part corresponding to the structure S3 is, the more difficultly the raw
yarn Yr is drawn. As shown in FIG. 10(a), when the boiling water shrinkage is approximately
25% or less, the pre-processing elongation is less than 100%.
[0070] For reference, as shown in FIG. 10(b), the higher the spinning speed of the raw yarn
Yr is, the lower the residual elongation (pre-processing elongation) of the raw yarn
Yr tends to be. However, a specific relationship between the spinning speed and the
pre-processing elongation varies depending on the number of filaments forming the
raw yarn Yr. According to the graph of FIG. 10(b), it is therefore possible to presume
that the spinning speed and the pre-processing elongation are not the main factors
to determine the maximum speed.
[0071] For reference, as shown in FIG. 11(a), the orientation degree of the raw yarn Yr
is preferably 1.23 or more and 1.38 or less so that the maximum speed is 1100 m/min
or more.
[0072] For reference, as shown in FIG. 11(b), the crystallizing degree of the raw yarn Yr
is preferably 26% or more and 38% or less so that the maximum speed is 1100 m/min
or more.
[0073] As described above, when the pre-processing elongation of the raw yarn Yr is less
than 100%, a total of (i) a thermal contraction force because of the orientation relaxation
in the crystallized raw yarn Yr and (ii) a resistance force of the raw yarn Yr against
the drawing is presumably large. Therefore, when (i) the pre-processing elongation
of the raw yarn Yr is less than 100% and (ii) the boiling water shrinkage of the raw
yarn Yr is 25% or less, the processing tension applied to the raw yarn Yr is high.
Because of this, even when the second yarn feeding speed is high, loosening of the
yarn Y is suppressed. The occurrence of surging is also suppressed. Meanwhile, when
the boiling water shrinkage is excessively low (i.e., when the crystallization of
the raw yarn Yr has progressed too far), high torsional stress is caused when the
yarn Y is about to be false-twisted. When the torsional stress is excessively high,
an elastic restoring force of the yarn Y against the torsional stress is also excessively
high. As a result, in the false-twisting device 15, the yarn Y is likely to slip in
the same direction as the torsional stress. In order to suppress the torsional stress
and the slip of the yarn Y, the boiling water shrinkage needs to be high to some degree
(specifically, to be higher than 3.70).
[0074] As described above, when a partially oriented yarn whose pre-processing elongation
is less than 100%, whose boiling water shrinkage is 3.7% or more and 25% or less,
and which is formed of PET synthetic fibers is used as the raw yarn Yr, the maximum
speed is considerably high. In this case, even when the processing speed is set to
be 1100 m/min or more, the occurrence of surging is suppressed. The boiling water
shrinkage of the raw yarn Yr is preferably 3.7% or more and 10% or less. This increases
the above-described resistance force.
[0075] It has been said that (i) the generation of fluff and the yarn breakage are likely
to occur in a partially oriented yarn whose pre-processing elongation is less than
100% and (ii) such a partially oriented yarn is not appropriate for the drawing and
the false twisting. Nevertheless, the generation of fluff and the yarn breakage did
not occur in Examples. This is presumably because the raw yarn Yr which is not false-twisted
has a high strength of 2.9 cN/dtex or more. The strength of the raw yarn Yr needs
to be higher than 2.9 cN/dtex so that the generation of fluff and the yarn breakage
do not occur even when high tension is applied to the raw yarn Yr.
[0076] The pre-processing elongation is preferably 80% or more.
[0077] The target elongation is preferably 18% or more and 26% or less. The orientation
degree of the raw yarn Yr which is not false-twisted is measured by the Raman spectrometer,
and is preferably 1.23 or more and 1.38 or less. The crystallizing degree of the raw
yarn Yr is preferably 26% or more and 38% or less.
[0078] As described above, the raw yarn Yr whose pre-processing elongation is less than
100% and whose boiling water shrinkage is 3.7% or more and 25% or less is false-twisted.
With this arrangement, the processing tension is high. It is therefore possible to
suppress the loosening of the yarn Y. It is also possible to suppress the occurrence
of surging. The raw yarn Yr has a high strength of 2.9 cN/dtex or more. With this
arrangement, even when high tension is applied to the raw yarn Yr, breakage of the
raw yarn Yr is suppressed. It is therefore possible to suppress the generation of
fluff and/or the yarn breakage. This makes it possible to increase the maximum speed
at which the false-twisted processed yarn Yf can be produced.
[0079] When the pre-processing elongation is excessively low, the maximum speed may be decreased.
Therefore, the pre-processing elongation is preferably 80% or more.
[0080] The boiling water shrinkage of the raw yarn Yr is preferably 3.7% or more and 10%
or less. This increases the above-described resistance force. It is therefore possible
to increase the processing tension.
[0081] The orientation degree of the raw yarn Yr is measured by means of Raman spectroscopy,
and is 1.23 or more and 1.38 or less. As such, the orientation degree is not too high
and not too low. With this arrangement, while the processing tension is increased,
the above-described torsional stress is suppressed from being excessively high.
[0082] The crystallizing degree of the raw yarn Yr is 26% or more and 38% or less. As such,
the crystallizing degree is not too high and not too low. With this arrangement, while
the processing tension is increased, the above-described torsional stress is suppressed
from being excessively high.
[0083] The target elongation is 18% or more and 26% or less. It is therefore possible to
manufacture the false-twisted processed yarn Yr whose residual elongation is typical.
[0084] The following will describe modifications of the above-described embodiment. The
members identical with those in the embodiment above will be denoted by the same reference
numerals and the explanations thereof are not repeated.
- (1) In the embodiment above, the target elongation is 18% or more and 26% or less.
However, the disclosure is not limited to this. The target elongation may be less
than 18%, or may be more than 26%.
- (2) The pre-processing elongation of the raw yarn Yr may be less than 80% as long
as the boiling water shrinkage of the raw yarn Yr is 3.7% or more and 25% or less.
- (3) The orientation degree of the raw yarn Yr is measured by means of Raman spectroscopy,
and may not be within the range of 1.23 to 1.38.
- (4) The crystallizing degree of the raw yarn Yr may not be within the range of 26%
to 38%.
- (5) The above-described manufacturing method of the false-twisted processed yarn Yr
may be used not only in the false-twist texturing machine 1, but also in a known false-twist
texturing machine (not illustrated) differently structured.