Field
[0001] The present disclosure relates to a fabric including a filament-staple fiber composite
yarn, in which the filament-staple fiber composite yarn includes staple fibers and
filaments and is configured such that the staple fibers are inserted into the filaments,
so that evenness of the filament-staple fiber composite yarn is excellent, and a fabric
manufactured using the same has excellent processability and appearance.
Background
[0002] Filament-staple fiber composite yarns are a category of composite yarns that incorporate
both continuous filaments composed of long fibers and staple fibers made from shorter
fibers. The development of these composite yarns has been propelled by technological
advancements and the increasing diversity of industrial applications for fibers. As
markets evolve and consumer preferences shift, the functionality of fibers has expanded
significantly, leading to innovative solutions that cater to a wide array of demands
and tastes.
[0003] Filament-staple fiber composite yarns offer advantages by leveraging the unique benefits
of both filaments and staple fibers, thus enabling the creation of diverse structures,
shapes, and manufacturing methods tailored to meet various applications. Ongoing research
is focused on improving the design and production techniques for these composite yarns.
Among the established methods for manufacturing filament-staple fiber composite yarns
are the Sirospun and sirofil techniques. The Sirospun method is employed due to its
capability to accommodate a wide range of fiber mixtures, allowing for the production
of composite yarns with varied properties. However, this method has the drawback of
lower fiber efficiency, as it can result in the physical clumping of fibers or inconsistencies
in the manufacturing process. The sirofil method is also limited in its application
to different fiber mixtures, which restricts its potential for producing a broader
array of filament-staple fiber composite yarns.
[0004] The conventional techniques described above face several significant challenges related
to the formability of composite yarns, often resulting in limitations regarding the
types of fibers that can be utilized. These constraints are frequently dictated by
several factors, including the specific shape of the composite yarns or the chosen
manufacturing method. Notably, one important issue arises from the potential loss
of staple fibers within filament-staple fiber composite yarns, which can adversely
affect the overall performance and integrity of the resulting products. This loss
not only diminishes the mechanical properties of the yarn but also impacts its functionality
and usability in various applications.
[0005] Furthermore, in response to the growing demands of the eco-friendly recycling market,
the utilization of fibers produced from recycled waste fabrics presents significant
challenges. These recycled fibers tend to be shorter in length, which complicates
the application of traditional ring spinning techniques for manufacturing composite
yarns. The limitations imposed by the short length of recycled fibers hinder the effectiveness
of existing production methods, rendering them less desirable for creating high-quality
composite yarns.
[0006] Accordingly, there is a need to develop to develop a filament-staple fiber composite
yarn that are not hindered by the limitations of existing production methods.
Summary
[0007] The present disclosure has been made keeping in mind the problems encountered in
the related art, and various aspects are to provide a fabric including a filament-staple
fiber composite yarn and an article including the fabric.
[0008] The present disclosure solves the problems described above, and demonstrates the
development of a filament-staple fiber composite yarn having a novel binding form,
and comprises staple fibers that are firmly bound inside filaments and no loss thereof
occurs, and a fabric manufactured using the same has excellent processability and
appearance, thus culminating in the present disclosure.
[0009] Various aspects provide: a fabric including a filament-staple fiber composite yarn,
in which the filament-staple fiber composite yarn includes a staple fiber portion
including a plurality of staple fibers adjacent to each other and a filament portion
including a plurality of filaments twisted on an outer surface of the staple fiber
portion.
[0010] In embodiments, the staple fibers include one or more of vegetable fiber, animal
fiber, mineral fiber, recycled fiber of vegetable fiber, recycled fiber of animal
fiber or recycled fiber of mineral fiber.
[0011] In embodiments, the vegetable fiber include one or more of cotton fiber, cellulose
fiber, hemp fiber, pineapple fiber, coffee bean fiber, banana fiber, ramie fiber,
corn silk fiber or bamboo fiber, the animal fiber includes one or more of leather
fiber, wool fiber, cashmere, camel hair fiber, mohair fiber, alpaca fiber or silk
fiber, and the mineral fiber may include mica fiber or glass fiber.
[0012] In embodiments, the filaments include one or more of polyester-based fiber, polyamide-based
fiber, polyurethane-based fiber, polyurea-based fiber, polyacryl-based fiber, polyvinyl
alcohol-based fiber, polyvinyl chloride-based fiber, polyvinylidene chloride-based
fiber, polypropylene-based fiber, polyethylene-based fiber, polystyrene-based fiber,
polyfluoroethylene-based fiber or biodegradable fiber.
[0013] In embodiments, the content of the staple fibers are 20 parts by weight to 50 parts
by weight based on 100 parts by weight of the filament-staple fiber composite yarn.
[0014] In embodiments, the filament-staple fiber composite yarn has evenness U% of less
than 2.
[0015] Various aspects provide: an article including the fabric described above.
[0016] In embodiments, the article includes automobile interiors, shoes, furniture, decorations,
bags, clothing, mobile phone covers, electronic product covers, or car seats.
[0017] In embodiments, disclosed herein is a filament-staple fiber composite yarn that is
utilized as a composite yarn because, despite containing staple fibers, the staple
fibers are firmly bound inside filaments.
[0018] In embodiments, the composite yarn is configured such that staple fibers are inserted
into the filaments, preventing loss of the staple fibers and exhibiting excellent
evenness.
[0019] In embodiments, the composite yarn includes various types of staple fibers, making
it possible to manufacture composite yarns having various feels and effects.
[0020] In embodiments, the composite yarn can has excellent tensile strength and elongation
despite containing staple fibers, exhibiting excellent processability and appearance
when applied to a fabric, and is widely used as a raw material for automobile interiors,
shoe parts, or fabrics processed by lamination, such as the back of coated fabrics,
nonwoven intermediates, etc.
Description of Drawings
[0021]
FIG. 1 shows a conceptual view showing a filament-staple fiber composite yarn according
to an embodiment of the present disclosure;
FIG. 2 shows a weaving design table of a fabric according to an embodiment of the
present disclosure;
FIG. 3 shows a photograph of woven fabric manufactured according to Example 1.
FIG. 4 shows a photograph of woven fabric manufactured according to Example 2.
FIG. 5 shows a photograph of woven fabric manufactured according to Example 3.
FIG. 6 shows a photograph of woven fabric manufactured according to Example 4.
FIG. 7 shows a photograph of woven fabric manufactured according to Example 5.
FIG. 8 shows a photograph of woven fabric manufactured according to Comparative Example
1.
FIG. 9 shows a photograph of woven fabric manufactured according to Comparative Example
2.
FIG. 10 shows a photograph of a knitted fabric manufactured according to Example 6.
[0022] Hereinafter, various aspects will be described in detail so that various aspects
may be easily implemented by those skilled in the art. However, the present disclosure
may be embodied in many different forms and is not limited to the embodiments described
herein.
Detailed Description
Example 1. Manufacture of woven fabric using filament-staple fiber composite yarn
1. Manufacture of filament-staple fiber composite yarn
(1) Manufacture of weft
[0023] In order to manufacture a filament-staple fiber composite yarn for weft, recycled
polyethylene terephthalate (PET) having fineness of 240 denier (D) was used as filaments
and leather fibers having an average length of 1 mm were used as staple fibers.
[0024] The leather fibers were sprayed onto the filaments and bound to each other. The leather
fibers were sprayed using a staple fiber spray device and the leather fibers were
quantitatively supplied at a supply rate of 0.1 g/min/spindle to a cylinder at 1,000
rpm using a gear pump at 30 rpm. As such, by supplying air to the surface of the cylinder
using a first air knife, the clumped leather fibers attached to the cylinder wire
were removed, and the leather fibers were uniformly distributed on the filaments.
The air pressure of the first air knife was 1.5 kgf/cm
2.
[0025] By passing the filaments on which the leather fibers were distributed through a second
air knife, clumped leather fibers among leather fibers attached to the surface of
the filaments were removed and uniform binding was achieved. The second air knife
was designed to be located both above and below the filaments to which the leather
fibers were bound, and the air pressure was 1.5 kgf/cm
2.
[0026] The fibers were passed through a winder to twist the filament-staple fiber composite
yarn followed by winding, yielding a filament-staple fiber composite yarn. The winding
speed was 15 m/min, TPM (twist per meter) was 600, and the weight proportion of leather
fibers contained in the filament-staple fiber composite yarn was 20 wt%.
(2) Manufacture of warp
[0027] In order to manufacture a filament-staple fiber composite yarn for warp, a filament-staple
fiber composite yarn for warp was manufactured in the same manner as in (1) above,
with the exception that recycled polyethylene terephthalate (PET) having fineness
of 420 denier (D) was used as filaments and the weight proportion of leather fibers
contained in the filament-staple fiber composite yarn was changed to 30 wt%.
[0028] The fineness of the manufactured filament-staple fiber composite yarn for warp was
600 denier (D), and the number of warp yarns was 8,200.
2. Manufacture of woven fabric
[0029] A woven fabric was manufactured with an Oxford weave as shown in FIG. 2 using the
weft and warp yarns manufactured in (1) and (2) above, respectively. The fabric width
was 70 inches.
Example 2. Manufacture of woven fabric using filament-staple fiber composite yarn
[0030] A woven fabric was manufactured in the same manner as in Example 1, with the exception
that, in (1) of Example 1, recycled polyethylene terephthalate (PET) having fineness
of 210 denier (D) was used as filaments, leather fibers were supplied at a supply
rate of 0.15 g/min/spindle using a gear pump at 45 rpm, and the weight proportion
of leather fibers contained in the filament-staple fiber composite yarn was changed
to 30 wt%.
Example 3. Manufacture of woven fabric using filament-staple fiber composite yarn
[0031] A woven fabric was manufactured in the same manner as in Example 1, with the exception
that, in (1) of Example 1, recycled polyethylene terephthalate (PET) having fineness
of 420 denier (D) was used as filaments, leather fibers were quantitatively supplied
at a supply rate of 0.3 g/min/spindle to a cylinder at 2,000 rpm using a gear pump
at 90 rpm, and the weight proportion of leather fibers contained in the filament-staple
fiber composite yarn was changed to 30 wt%.
Example 4. Manufacture of woven fabric using filament-staple fiber composite yarn
[0032] A woven fabric was manufactured in the same manner as in Example 1, with the exception
that, in (1) of Example 1, recycled polyethylene terephthalate (PET) having fineness
of 500 denier (D) was used as filaments, leather fibers were quantitatively supplied
at a supply rate of 0.83 g/min/spindle to a cylinder at 2,500 rpm using a gear pump
at 250 rpm, TPM (twist per meter) was set to 500, and the weight proportion of leather
fibers contained in the filament-staple fiber composite yarn was changed to 50 wt%.
Example 5. Manufacture of woven fabric using filament-staple fiber composite yarn
[0033] A woven fabric was manufactured in the same manner as in Example 1, with the exception
that, in (1) of Example 1, recycled polyethylene terephthalate (PET) having fineness
of 750 denier (D) was used as filaments, leather fibers were quantitatively supplied
at a supply rate of 2.5 g/min/spindle to a cylinder at 2,500 rpm using a gear pump
at 375 rpm, TPM (twist per meter) was set to 400, and the weight proportion of leather
fibers contained in the filament-staple fiber composite yarn was changed to 50 wt%.
Example 6. Manufacture of knitted fabric using filament-staple fiber composite yarn
[0034] A knitted fabric was manufactured using the filament-staple fiber composite yarn
manufactured in (1) of Example 1. More specifically, 96 filament-staple fiber composite
yarns were used, and a knitted fabric was manufactured through circular knitting using
a Jacquard knitting machine under conditions of a width of 30 inches, a gauge of 16,
and a feed rate of 48 m/min.
[0035] Table 1 below shows the conditions for manufacturing the filament-staple fiber composite
yarns for weft according to Examples 1 to 5 and the filament-staple fiber composite
yarn according to Example 6 and the processability for fabric weaving and circular
knitting.
[Table 1]
| |
Example 1 |
Example 2 |
Example 3 |
Example 4 |
Example 5 |
Example 6 |
| Filament |
Type |
Recycled PET |
| Fineness (D) |
240 |
210 |
420 |
500 |
750 |
240 |
| Staple fiber |
Gear pump rotation rpm |
30 |
45 |
90 |
250 |
375 |
30 |
| Cylinder rotation rpm |
1,000 |
1,000 |
2,000 |
2,500 |
2,500 |
1,000 |
| Average length (mm) |
1 |
1 |
1 |
1 |
1 |
1 |
| Supply rate (g/min/spindle)* |
0.1 |
0.15 |
0.3 |
0.83 |
2.5 |
0.1 |
| Air knife |
Air pressure (kgf/cm2) |
1.5 |
1.5 |
1.5 |
1.5 |
1.5 |
1.5 |
| Winding |
Winding speed (m/min) |
15 |
15 |
15 |
15 |
15 |
15 |
| Twist per number (TPM) |
600 |
600 |
600 |
500 |
400 |
600 |
| Composite yarn |
Fineness (D) |
300 |
300 |
600 |
1,000 |
1,500 |
300 |
| Staple fiber content (wt%) |
20 |
30 |
30 |
50 |
50 |
20 |
| Woven fabric |
Processability |
Good |
Good |
Good |
Good |
Good |
- |
| Staple fiber loss |
No |
No |
No |
No |
No |
- |
| Circular knitted fabric |
Processability |
- |
- |
- |
- |
- |
Good |
| Staple fiber loss |
- |
- |
- |
- |
- |
No |
| * When manufacturing 1 composite yarn, for 12 spindles, filaments and staple fibers
are fed in 12-fold contents. |
[0036] As shown in Table 1, in the manufacture of woven fabrics and knitted fabric using
the filament-staple fiber composite yarns manufactured according to Examples of the
present disclosure, processability was excellent and no staple fiber loss occurred.
Comparative Example 1. Manufacture of woven fabric using filament-staple fiber composite
yarn
[0037] A woven fabric was manufactured in the same manner as in Example 1, with the exception
that, in (1) of Example 1, recycled polyethylene terephthalate (PET) having fineness
of 120 denier (D) was used as filaments, leather fibers were quantitatively supplied
at a supply rate of 0.2 g/min/spindle to a cylinder at 2,000 rpm using a gear pump
at 60 rpm, TPM (twist per meter) was set to 400, and the weight proportion of leather
fibers contained in the filament-staple fiber composite yarn was changed to 60 wt%.
Comparative example 2. Manufacture of woven fabric using filament-staple fiber composite
yarn
[0038] A woven fabric was manufactured in the same manner as in Example 1, with the exception
that, in (1) of Example 1, recycled polyethylene terephthalate (PET) having fineness
of 240 denier (D) was used as filaments, leather fibers were quantitatively supplied
at a supply rate of 0.4 g/min/spindle to a cylinder at 2,000 rpm using a gear pump
at 120 rpm, TPM (twist per meter) was set to 400, and the weight proportion of leather
fibers contained in the filament-staple fiber composite yarn was changed to 60 wt%.
[0039] Table 2 below shows the conditions for manufacturing the filament-staple fiber composite
yarns for weft according to Comparative Examples 1 and 2 and the processability for
fabric weaving.
[Table 2]
| |
Comparative Example 1 |
Comparative Example 2 |
| Filament |
Type |
Recycled PET |
| Fineness (D) |
120 |
240 |
| Staple fiber |
Gear pump rotation rpm |
60 |
120 |
| Cylinder rotation rpm |
2,000 |
2,000 |
| Average length (mm) |
1 |
1 |
| Supply rate (g/min/spindle)* |
0.2 |
0.4 |
| Air knife |
Air pressure (kgf/cm2) |
1.5 |
1.5 |
| Winding |
Winding speed (m/min) |
15 |
15 |
| Twist per number (TPM) |
400 |
400 |
| Composite yarn |
Fineness (D) |
300 |
600 |
| Staple fiber content (wt%) |
60 |
60 |
| * When manufacturing 1 composite yarn, for 12 spindles, filaments and staple fibers
are fed in 12-fold contents. |
Test Example 1. Evaluation of evenness of filament-staple fiber composite yarn
[0040] The evenness (U%) of the filament-staple fiber composite yarns for weft manufactured
in Examples 1 to 5 and Comparative Examples 1 and 2 was measured, and the results
thereof are shown in Table 3 below. As such, the evenness (U%) was measured using
an evenness tester from Keisokki, Japan (yarn speed: 100 m/min, measurement range:
25%, measurement time: 3 min). Meanwhile, the evenness (U%) shown in Table 3 below
was judged to be good when the value was 1.2 or less, and was judged to be poor when
the value was 2.0 or more.
[Table 3]
| |
Example 1 |
Example 2 |
Example 3 |
Example 4 |
Example 5 |
Comparative Example 1 |
Comparative Example 2 |
| Evenness (U%) |
0.8 |
1 |
0.9 |
1.2 |
1.2 |
2.1 |
2.3 |
| Staple fiber loss |
No |
No |
No |
No |
No |
Yes |
Yes |
[0041] As shown in Table 3, in the filament-staple fiber composite yarns for weft manufactured
according to Examples 1 to 5, evenness was excellent and there was no loss of staple
fibers.
[0042] In contrast, in the filament-staple fiber composite yarns for weft manufactured in
Comparative Examples 1 and 2, evenness was poor and also staple fiber loss occurred.
This is deemed to be due to the high content of staple fibers contained in the filament-staple
fiber composite yarn.
Test Example 2. Evaluation of properties of filament-staple fiber composite yarn
[0043] The properties of the filament-staple fiber composite yarns for weft manufactured
in Examples 1 to 5 and Comparative Examples 1 and 2 were measured, and the results
thereof are shown in Table 4 below.
[Table 4]
| |
Example 1 |
Example 2 |
Example 3 |
Example 4 |
Example 5 |
Comparative Example 1 |
Comparative Example 2 |
| Tensile strength (g/d) |
3.1 |
2.8 |
2.4 |
1.8 |
1.6 |
1.4 |
1.4 |
| Elongation (%) |
27 |
27 |
29 |
28 |
30 |
28 |
27 |
[0044] As shown in Table 4, the filament-staple fiber composite yarns for weft manufactured
according to Examples of the present disclosure exhibited excellent tensile strength
and tensile elongation, whereas the filament-staple fiber composite yarns for weft
manufactured according to Comparative Examples exhibited reduced tensile strength.
Test Example 3. Evaluation of appearance of woven fabric and knitted fabric
[0045] The photographs of the woven fabrics manufactured in Examples 1 to 5 are shown in
FIGs. 3 to 7, respectively. As shown in FIGs. 3 to 7, the woven fabrics manufactured
according to Examples exhibited a neat appearance without exposure of the staple fibers.
[0046] In contrast, the photographs of the woven fabrics manufactured in Comparative Examples
1 and 2 are shown in FIGs. 8 and 9, respectively. As shown in FIGs. 8 and 9, exposure
of the staple fibers occurred in the woven fabrics manufactured according to Comparative
Examples.
[0047] Also, the photograph of the knitted fabric manufactured in Example 6 is shown in
FIG. 10. As shown in FIG. 10, the knitted fabric manufactured according to Example
6 had an excellent appearance without exposure of the staple fibers.
[0048] Hereinafter, a detailed description will be given of various aspects. Various aspects
may be implemented in many different forms and is not limited to the embodiments described
herein, but rather various aspects are defined only by the claims set forth below.
[0049] The terms used herein are merely used to describe specific embodiments and are not
intended to limit the present disclosure. The singular expression includes the plural
expression unless the context clearly dictates otherwise. Throughout the specification
of the present disclosure, "including" a component means that other components may
be further included, rather than excluding other components, unless specifically stated
otherwise.
[0050] The filament-staple fiber composite yarn may be referred to as a long-short fiber
composite yarn because it includes both long filaments and short staple fibers. As
such, the staple fiber may be a short fiber having a length of 150 mm or less (preferably
60 mm or less, more preferably 0.01 mm to 10 mm, even more preferably 1 mm to 5 mm),
and a plurality of such staple fibers may be included. Also, the filament may be a
fiber having a length exceeding 150 mm, namely a fiber longer than the staple fiber.
Various aspects provide:
[0051] a fabric including a filament-staple fiber composite yarn, in which the filament-staple
fiber composite yarn includes a staple fiber portion composed of a plurality of staple
fibers adjacent to each other and a filament portion composed of a plurality of filaments
formed by twisting on an outer surface of the staple fiber portion.
[0052] Referring to FIG. 1, the filament-staple fiber composite yarn and fabric are specified
below.
[0053] In various aspects, the fabric may be a woven fabric or a knitted fabric, and for
a woven fabric, at least one of weft or warp may include the filament-staple fiber
composite yarn. The knitted fabric may be a circular knit or a warp knit, and according
to various aspects, may be a circular knit. The fabric is manufactured using the filament-staple
fiber composite yarn, exhibiting excellent processability, and the staple fibers are
firmly bound inside the filaments and no loss thereof occurs, so the fabric may have
a neat appearance.
[0054] In various aspects, the filament-staple fiber composite yarn may include a staple
fiber portion composed of a plurality of staple fibers adjacent to each other. The
plurality of staple fibers is provided in a lumped form adjacent to each other, and
may be collectively referred to as a staple fiber portion.
[0055] In various aspects, the staple fiber may be manufactured using fibers or may be obtained
from waste fibers. The staple fiber may be a short fiber and a plurality of staple
fibers is preferably included. The length of the fiber may be 150 mm or less, preferably
60 mm or less, more preferably 0.01 mm to less than 10 mm, and according to various
aspects, the length thereof may be about 1 mm. If the length of the staple fiber is
10 mm or more, evenness of the manufactured filament-staple fiber composite yarn may
decrease and loss of staple fibers may occur.
[0056] In various aspects, the staple fiber may be selected from vegetable fiber, animal
fiber, mineral fiber, recycled fiber thereof, and combinations thereof.
[0057] In various aspects, the vegetable fiber may be fiber extracted or produced from the
leaves, stems, husks, or seeds of plants, and may be selected from, for example, cotton
fiber, cellulose fiber, flax fiber, pineapple fiber, coffee bean fiber, banana fiber,
ramie fiber, corn silk fiber, bamboo fiber, and combinations thereof. When the staple
fiber includes vegetable fiber, the filament-staple fiber composite yarn may be imparted
with enhanced naturalness and absorbency, and an eco-friendly effect may be exhibited.
[0058] The vegetable fiber may be a staple fiber that is difficult to apply to ring spinning
due to the short length thereof, and examples thereof may include those fiberized
after drying and preserving wood powder made from ground waste wood, coffee grounds,
tea grounds, etc.
[0059] In various aspects, the animal fiber may be fiber obtained or produced from the wool
of an animal, and may be selected from, for example, leather fiber, wool fiber, cashmere,
camel hair fiber, mohair fiber, alpaca fiber, silk fiber, and combinations thereof.
When the staple fiber includes animal fiber, the effects of soft feel, natural aesthetics,
and heat retention may be exhibited. The leather fiber may indicate cowhide fiber.
[0060] In various aspects, the mineral fiber may be fiber extracted from natural minerals
or minerals, and may be selected from among, for example, mica fiber and glass fiber.
When the staple fiber includes mineral fiber, fire resistance, corrosion resistance,
and heat and noise insulation effects may be exhibited.
[0061] The staple fiber may be recycled fiber, and it may be fiber obtained by recycling
the staple fiber selected from vegetable fiber, animal fiber, mineral fiber, and combinations
thereof. Specifically, the staple fiber may be fiber recycled from discarded fabrics
or clothing, and for example, when short cotton staple fibers collected by re-carding
underwear are used, the soft feel, absorbency, and breathability of cotton may be
imparted.
[0062] In various aspects, the filament-staple fiber composite yarn may include a filament
portion composed of a plurality of filaments formed by twisting on the outer surface
of the staple fiber portion. The plurality of filaments is twisted in a certain orientation
and is formed along the outer surface of the staple fiber portion, and may be collectively
referred to as a filament portion. Since the staple fiber portion is provided to be
inserted into the filament portion, loss of staple fibers may be completely prevented.
The staple fibers, which are short, may not be twisted even when twisting is performed
during the manufacturing process.
[0063] In various aspects, the filament may be polymer fiber, and long filaments may be
used.
[0064] In various aspects, the filament may be in the form of a filament yarn, spun yarn,
D.T.Y (draw textured yarn), or A.T.Y (air textured yarn).
[0065] In various aspects, the filament may include a fiber selected from polyester-based
fiber, polyamide-based fiber, polyurethane-based fiber, polyurea-based fiber, polyacryl-based
fiber, polyvinyl alcohol-based fiber, polyvinyl chloride-based fiber, polyvinylidene
chloride-based fiber, polypropylene-based fiber, polyethylene-based fiber, polystyrene-based
fiber, polyfluoroethylene-based fiber, biodegradable fiber, and combinations thereof.
The filament may include a fiber selected from nylon, vinylon, acryl, polyvinyl alcohol
(PVA), polyethylene (PE), polypropylene (PP), polyethylene terephthalate (PET), polytrimethylene
terephthalate (PTT), polybutylene terephthalate (PBT), recycled polyethylene terephthalate
(PET), polylactic acid (PLA), Tencel, chitosan, spider silk, and combinations thereof.
Meanwhile, the filament preferably includes recycled polyethylene terephthalate (PET),
polytrimethylene terephthalate (PTT), or polylactic acid (PLA).
[0066] In various aspects, in the filament-staple fiber composite yarn, the thickness of
the filament may be 60 denier (D) or more, 100 denier (D) to 2,000 denier (D), 100
denier (D) to 1,000 denier (D), or 200 denier (D) to 800 denier (D). If the thickness
of the filament is less than 100 denier (D), the thickness as a reference fiber may
be too low, and a composite yarn including the same may not have sufficient properties,
making it difficult to apply the same to a fabric. On the other hand, if it exceeds
2,000 denier (D), the thickness as a reference fiber may be too high, and a problem
may occur in which the unique texture developed by including staple fibers is not
well expressed.
[0067] In various aspects, in the filament-staple fiber composite yarn, the content of the
staple fibers may be 10 parts by weight to 80 parts by weight, or 20 parts by weight
to less than 60 parts by weight, based on 100 parts by weight of the composite yarn.
According to various aspects, the content thereof may be 20 parts by weight to 50
parts by weight. If the content of the staple fibers is less than 10 parts by weight
based on 100 parts by weight of the composite yarn, the content of the staple fibers
is too small, and various feels and effects that are developed by including various
types of staple fibers may not be well expressed. On the other hand, if the content
thereof is 60 parts by weight or more, the relative content of the filaments is too
small, and the properties of the composite yarn may deteriorate, the evenness may
decrease, and staple fiber loss may occur.
[0068] In various aspects, the filament-staple fiber composite yarn is able to completely
prevent loss of the staple fibers because the filaments are formed to wrap around
the outside of the staple fibers. When a fabric is manufactured using the same, the
appearance of the fabric may be very neat due to no loss of the staple fibers. The
staple fibers may be collected through a re-separation process after use of the filament-staple
fiber composite yarn.
[0069] In various aspects, the filament-staple fiber composite yarn may have evenness U%
of less than 2, or 1.2 or less. Tensile strength may be 1.5 g/D to 3.5 g/D, and elongation
may be 25% to 50%.
[0070] In various aspects, the filament-staple fiber composite yarn may be used to manufacture
suede fabric, moquette fabric, knit fabric, or the like.
[0071] In various aspects, it is possible to manufacture an article using a fabric including
the filament-staple fiber composite yarn. Examples of the article may include automobile
interiors, shoe parts such as sneakers, furniture, decorations, accessories such as
bags, clothing, mobile phone covers, electronic product covers, and car seats. The
automobile interior may be a headliner, door trim, or floor carpet.
[0072] In various aspects, the article may have a surface of artificial leather by applying
a coating onto one side of a woven fabric or knitted fabric manufactured from the
filament-staple fiber composite yarn, and the coating may be a PU coating, a PVC coating,
an RP coating, a pigment coating, a spray coating, an aqueous coating, or an oily
coating. The fabric may be manufactured by applying leather fibers onto the woven
fabric or knitted fabric followed by interlocking using a water jet or needle punch,
and may have a smooth appearance by performing a brushing or buffing process on the
woven fabric or knitted fabric.
[0073] Below, a method of manufacturing a filament-staple fiber composite yarn is described
in detail.
[0074] The method of manufacturing the filament-staple fiber composite yarn may include
spraying staple fibers onto filaments.
[0075] In various aspects, spraying of the staple fibers may be performed using a staple
fiber spray device, and the staple fiber spray device may continuously include a gear
pump configured to quantitatively supply staple fibers and a cylinder configured to
uniformly distribute and spray staple fibers onto the surface of filaments. The supply
rate of staple fibers through the gear pump may be 0.1 g/min/spindle to 200 g/min/spindle,
and may be about 0.1 g/min/spindle to 2.5 g/min/spindle. If the supply rate of the
staple fibers is less than 0.1 g/min/spindle, the content of the staple fibers is
too small, resulting in poor composite yarn formation, whereas if the supply rate
of the staple fibers exceeds 2.5 g/min, the properties of the resulting filament-staple
fiber composite yarn may become weak. Also, the rotation rpm of the gear pump may
be 500 rpm or less, and the rotation rpm of the cylinder may be 3,000 rpm or less.
[0076] In various aspects, the staple fiber spray device may further include a first air
knife configured to supply air to the cylinder. By supplying air to the cylinder,
it is possible to remove clumped staple fibers attached to the cylinder wire and provide
uniform distribution of staple fibers on filaments. The angle of the first air knife
may be adjustable as needed, and the injected air pressure may be 3.0 kgf/cm
2 or less.
[0077] The method of manufacturing the filament-staple fiber composite yarn may include
injecting air to the filaments onto which the staple fibers are sprayed.
[0078] In various aspects, air injection may be performed using a second air knife, and
the second air knife may be located both above and below the filaments onto which
the staple fibers are sprayed, and may serve to inject air. The angle of the second
air knife may be adjustable as needed, and the injected air pressure may be 3.0 kgf/cm
2 or less.
[0079] In various aspects, by injecting air to the filaments onto which the staple fibers
are sprayed, clumped staple fibers among the staple fibers attached to the surface
of the filaments may be removed, and the staple fibers may be more uniformly bound
thereto.
[0080] The method of manufacturing the filament-staple fiber composite yarn may include
twisting the filaments onto which the staple fibers are sprayed.
[0081] In various aspects, the staple fibers may be inserted into the filaments by twisting
the filaments onto which the staple fibers are sprayed. Accordingly, as shown in FIG.
1, the staple fibers may be firmly bound to the inside of the filaments without loss
thereof. The twisting may be performed using a winder, and the twisting may be conducted
through twisting and winding. Twisting allows the staple fibers to be more firmly
bound inside the filaments. The twisting and winding speed may be 60 m/min or less,
10 m/min to 60 m/min, or 15 m/min to 50 m/min. If the speed is less than 10 m/min,
economic efficiency may decrease, whereas if it exceeds 60 m/min, TPM (twist per meter)
for composite yarn formation may be low, resulting in loss of staple fibers. The TPM
level may be 800 or less, 100 to 800, or 800 or less but greater than 300. If the
TPM level is 300 or less, loss of the staple fibers from the formed composite yarn
may occur, whereas if it exceeds 800, excessive production speed reduction and excessive
twisting may occur. When performing the twisting, the staple fibers, which are short,
may not be twisted, and only the long filaments may be twisted in a certain orientation.
[0082] In various aspects, the filament-staple fiber composite yarn is manufactured under
constant temperature and constant humidity conditions, or under room temperature and
humidity conditions. The filament-staple fiber composite yarn may be manufactured
at a constant temperature of about 20°C to 30°C and a constant relative humidity of
50% to 60%. If the conditions for manufacturing the filament-staple fiber composite
yarn fall out of the above temperature and humidity ranges, a problem of static electricity
being generated when supplying staple fibers may occur.
[0083] Hereinbefore, various aspects has been described in detail with reference to the
drawings and preferred embodiments, but the scope of the technical idea of the various
aspects are not limited to these drawings and embodiments. Accordingly, various modifications
or equivalent embodiments may exist within the scope of the technical idea of the
present disclosure. Therefore, the scope of the technical idea according to the present
disclosure should be interpreted by the claims, and any technical idea within a range
equivalent thereto should be interpreted as being within the scope of the present
disclosure.
Non-Limiting Applicability
[0084] A filament-staple fiber composite yarn can be utilized as a composite yarn because,
despite containing staple fibers, the staple fibers are firmly bound inside filaments.
[0085] The composite yarn is configured such that the staple fibers are inserted into the
filaments, preventing loss of the staple fibers and exhibiting excellent evenness.
[0086] The composite yarn includes various types of staple fibers, making it possible to
manufacture composite yarns having various feels and effects.
[0087] The composite yarn can have excellent tensile strength and elongation despite containing
staple fibers, exhibiting excellent processability and appearance when applied to
a fabric, and can be widely used as a raw material for automobile interiors, shoe
parts, or fabrics processed by lamination, such as the back of coated fabrics, nonwoven
intermediates, etc.