BACKGROUND OF THE INVENTION
[0001] The present invention relates to a yarn cooler configured to cool yarns spun out
from a spinning beam.
[0002] Patent Literature 1 (Japanese Unexamined Patent Publication No.
2011-252260) recites a melt spinning device which is configured to generate yarns. The melt spinning
device includes a spinning beam configured to spin out yarns and a yarn cooler configured
to cool the yarns spun out from the spinning beam. To be more specific, the yarn cooler
includes a yarn cooling unit configured to cool the yarns by blowing air onto the
yarns and a duct in which a passage for supplying air to the yarn cooling unit is
formed.
[0003] In this yarn cooler, a passage-enlarged portion in which the passage width increases
toward the downstream side is provided at an intermediate portion of the duct in order
to arrange the width of a downstream portion (a portion on the yarn cooling unit side)
of the passage to be more or less identical with the width of the yarn cooling unit.
In this regard, when nothing is provided in the passage-enlarged portion, air uninterruptedly
flows from the upstream side to the downstream side. The speed of the air is therefore
relatively high at a central portion in the width direction of the passage and is
relatively low at outer end portions in the width direction. When the speed of the
air is significantly different at different positions in the width direction, the
yarns may not be evenly cooled at the yarn cooling unit and the yarn quality may be
uneven. It is therefore necessary to adjust the airflow in the passage-enlarged portion
to restrain the dispersion in speed of air in the width direction.
[0004] In connection with the above, Patent Literature 2 (Japanese Unexamined Patent Publication
No.
H8-201215) teaches that airflow is adjusted at an enlarged duct. To be more specific, in the
enlarged duct, partition plates are provided to radially extend from upstream end
portions toward downstream end portions so as to divide the passage in the enlarged
duct into a plurality of small passages. In this way, the adjustment of the airflow
is performed on the downstream side by causing air to evenly flow into the small passages.
SUMMARY OF THE INVENTION
[0005] The partition plates are provided in a simple manner in the arrangement disclosed
in Patent Literature 2. This arrangement may be disadvantageous in that the airflow
is disturbed as the air collides with an upstream end portion of each partition plate,
with the result that the airflow adjustment is not effectively done. Under this circumstance,
a technology for firmly enhancing the effect of the airflow adjustment by the partition
plates has been demanded.
[0006] An object of the present invention is to suppress the disturbance of a gas flow even
if gas flowing in a passage-enlarged portion collides with an upstream end portion
of a partition plate, and to suppress dispersion in speed of gas.
[0007] According to the first aspect of the invention, a yarn cooler includes: a yarn cooling
unit configured to cool a yarn spun out from a spinning apparatus, by applying gas
to the yarn; and a duct in which a passage where the gas supplied to the yarn cooling
unit flows is formed, the duct including: a passage-enlarged portion including an
inner wall surface which is formed to increase the width of the passage from an upstream
side toward a downstream side of the passage; and partition plates which are lined
up in a passage width direction and are radially provided from the upstream side toward
the downstream side, in the passage-enlarged portion, bulging portions being formed
at end portions on the upstream side of the respective partition plates, each of the
bulging portions including a part which increases in size in the passage width direction
from the end portion on the upstream side of the bulging portion toward the downstream
side, and the length of a gap between two bulging portions of neighboring two of the
partition plates being 12mm or longer and 30mm or shorter.
[0008] In the present invention, gas flowing through the passage enters the yarn cooling
unit while spreading on account of the passage-enlarged portion. In the passage-enlarged
portion, the passage is divided into small passages by the partition plates. With
this arrangement, the gas flows to downstream side through any small passages. According
to the present invention, each of the bulging portions formed on the respective partition
plates includes a part which increases in size in the passage width direction from
the end portion on the upstream side toward the downstream side. This facilitates
part of the gas coming from the upstream side to smoothly flow along the surface of
each bulging portion. This prevents the gas flow from being detached from the partition
plate and disturbed.
[0009] As a result of diligent study, the inventor of the subject application found that
the size of the gap between two bulging portions significantly influenced on the dispersion
in speed of the gas. To be more specific, the inventor of the subject application
found that the obstruction to the gas flow by the bulging portions was restrained
when the length of a gap between the two bulging portions was 12mm or longer, as in
the present invention. The inventor also found that, when the length of the gap was
30 mm or shorter, the intervals between the partition plates were not too long, and
the flow adjustment effect exerted by the partition plates was facilitated.
[0010] As described above, disturbance of a gas flow is suppressed even if gas flowing in
a passage-enlarged portion collides with an upstream end portion of a partition plate,
and dispersion in speed of gas is suppressed.
[0011] According to the second aspect of the invention, the yarn cooler of the first aspect
is arranged such that the length of the gap between the two bulging portions of the
neighboring two of the partition plates is equal to or longer than 18mm and equal
to or shorter than 30mm.
[0012] According to the present invention, by setting the length of the gap between the
two bulging portions to be not shorter than 18mm and not longer than 30mm (i.e., by
setting the lower limit value of the this length to be longer than that in the first
aspect), obstruction to the gas flow by the bulging portions is further suppressed,
and the dispersion in speed of air is further suppressed.
[0013] According to the third aspect of the invention, the yarn cooler of the first or second
aspect is arranged such that the length of a gap between the inner wall surface of
the passage-enlarged portion and a bulging portion of a partition plate which is closest
to the inner wall surface is equal to or longer than the length of the gap between
the two bulging portions of the neighboring two of the partition plates and seven
times or less longer than the length of the gap between the two bulging portions of
the neighboring two of the partition plates.
[0014] In regard to the first or second aspect of the invention, the inventor of the subject
application also found that the relationship between (i) the length of the gap between
the inner wall surface of the passage-enlarged portion and the bulging portion closest
to the inner wall surface and (ii) the length of the gap between the two bulging portions
significantly influenced on the dispersion in speed of the gas. When the former length
is relatively too long, the gas excessively flows into the gap between the inner wall
surface of the passage-enlarged portion and the partition plate (i.e., into the end
portion in the passage width direction in the passage-enlarged portion), with the
result that the degree of dispersion in speed of the gas is high. Meanwhile, when
the former length is relatively too short, the gas excessively flows into the intervals
between the partition plates (i.e., into a central portion in the passage width direction
in the passage-enlarged portion). According to the present invention, by setting the
former length to be equal to or longer than the latter length and seven times or less
longer than the latter length, the balance between the speed of the gas at the end
portions in the passage width direction and the speed of air at the central portion
in the passage width direction is improved in the passage-enlarged portion, with the
result that the dispersion in speed of air is restrained.
[0015] According to the fourth aspect of the invention, the yarn cooler of the third aspect
is arranged such that the length of the gap between the inner wall surface of the
passage-enlarged portion and the bulging portion of the partition plate which is closest
to the inner wall surface is 1.5 times or more longer than and 5.5 times or less longer
than the length of the gap between the two bulging portions of the neighboring two
of the partition plates.
[0016] According to the present invention, by setting the length of the gap between the
inner wall surface of the passage-enlarged portion and the bulging portion closest
to the inner wall surface to be 1.5 times or more longer than and 5.5 times or less
longer than the length of the gap between the two bulging portions, the balance of
the speed of the gas in the passage width direction is further improved.
[0017] According to the fifth aspect of the invention, the yarn cooler of any one of the
first to fourth aspects is arranged such that, in a passage length direction which
is orthogonal to the passage width direction, the length of each of the partition
plates is at least 26% of the length of the inner wall surface.
[0018] When the partition plate is too short, the gas may not sufficiently spread to the
outer sides in the passage width direction in the passage-enlarged portion. According
to the present invention, because in the passage length direction each partition plate
is 26% or more of the inner wall surface in length, the gas is properly guided outward
in the passage width direction by the partition plates, and hence the gas is evenly
spread to reach the end portions in the passage width direction.
[0019] According to the sixth aspect of the invention, the yarn cooler of any one of the
first to fifth aspects is arranged such that the bulging portions of the partition
plates are lined up along the passage width direction to form a single line.
[0020] When the bulging portions are arranged, for example, in an arc shape or in a staggered
manner, the length of the gap between two bulging portions tends to be long, and hence
the number of the partition plates required to keep the length to be equal to or shorter
than a predetermined length may be large. According to the present invention, the
bulging portions are lined up to form a single line along the passage width direction,
i.e., linearly lined up. Because this restrains the length of the gap between the
two bulging portions from becoming long, it is possible to restrain increase in number
of the required partition plates. Furthermore, when, for example, the bulging portions
are provided to be arc-shaped or in a staggered manner in the production of the passage-enlarged
portion, arranging the bulging portions may require a lot of labor if the length of
the gap between each pair of bulging portions is taken into account. Such labor is
reduced in the present invention.
[0021] According to the seventh aspect of the invention, the yarn cooler of any one of the
first to sixth aspects is arranged such that a cross sectional shape of each of the
bulging portions is circular, and the diameter of each of the bulging portions is
not less than 4mm and not more than 20mm.
[0022] According to the present invention, because the cross sectional shape of the bulging
portion is circular, the gas flowing from the upstream side smoothly move to the downstream
side. However, when the diameter of the bulging portion is short, the effect of allowing
the gas in contact with the partition plate to smoothly move may be deteriorated.
Meanwhile, when the diameter of the bulging portion is long, it is necessary to increase
the intervals between the partition plates in order to maintain the length of the
gap between the bulging portions to fall within the predetermined range. Because as
a result of this the width of the passage rapidly increases at the immediate downstream
of the bulging portions, the gas flow may become destabilized. For this reason, it
is preferable that the diameter of each bulging portion is not less than 4mm and not
more than 20mm.
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
FIG. 1 is a cross section of a melt spinning device of an embodiment of the present
invention.
FIG. 2 is a cross section taken along a line II-II in FIG. 1.
FIG. 3(a) is a cross section of a passage-enlarged portion taken along a line III-III
in FIG. 1. FIG. 3(b) is an enlarged view of a bulging portion of each partition plate
in FIG. 3(a).
FIG. 4 is an enlarged view of an upstream end portion of a passage-enlarged portion.
FIG. 5 shows conditions of all Examples and Comparative Examples and data of the degree
of dispersion in speed of air obtained through fluid analysis.
FIGs. 6(a) and 6(b) show conditions of some Examples and Comparative Examples and
data of the degree of dispersion in speed of air obtained through fluid analysis.
FIG. 7 shows conditions of some Examples and Comparative Examples and data of the
degree of dispersion in speed obtained through fluid analysis.
FIGs. 8(a) and 8(b) show conditions of some Examples and Comparative Examples and
data of the degree of dispersion in speed obtained through fluid analysis.
FIGs. 9(a) and 9(b) show analysis results (speed distributions in the passage-enlarged
portion) regarding the dependency on the existence of bulging portions.
FIGs. 10(a) to 10(d) show analysis results regarding the dependency on the length
of the gap between the bulging portions.
FIGs. 11(a) to 11(d) show analysis results regarding the dependency on the length
of the gap between the bulging portions.
FIGs. 12(a) and 12(b) show analysis results regarding the dependency on the length
of the gap between the bulging portions.
FIGs. 13(a) to 13(d) show analysis results regarding the dependency on the ratio between
two types of gap lengths concerning the bulging portions.
FIGs. 14(a) to 14(d) show analysis results regarding the dependency on the ratio between
two types ofgap lengths concerning the bulging portions.
FIGs. 15(a) to 15(c) show analysis results regarding the dependency on the ratio between
two types of gap lengths concerning the bulging portions.
FIGs. 16(a) to 16(d) show analysis results regarding the dependency on the length
of a partition plate.
FIGs. 17(a) to 17(d) show analysis results regarding the dependency on the diameter
of the bulging portion.
FIG. 18 illustrates a passage-enlarged portion of a modification.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] The following will describe an embodiment of the present invention with reference
to FIG. 1 to FIG. 17.
(Outline of Melt Spinning Device)
[0025] To begin with, the structure of a melt spinning device 1 will be described with reference
to FIG. 1 and FIG. 2. FIG. 1 is a cross section of the melt spinning device of the
present embodiment. FIG. 2 is a cross section taken along a line II-II in FIG. 1.
The description below is given on the premise that the up-down direction, front-rear
direction, and left-right direction in FIG. 1 and FIG. 2 are respectively the up-down
direction, front-rear direction, and left-right direction relative to the melt spinning
device 1 in the present embodiment. The melt spinning device 1 includes members such
as a spinning beam 2 (spinning apparatus of the present invention), a yarn cooler
3, and an oil guide 4.
[0026] The spinning beam 2 is configured to spin out yarns Y which are made of molten polymer.
The spinning beam 2 is provided with a plurality of pack housings 11. To the pack
housings 11, spinning packs 12 are attached, respectively. The pack housings 11 (spinning
packs 12) are staggered to form two lines along the left-right direction. To each
spinning pack 12, molten polymer is supplied from an unillustrated pipe or the like.
Each spinning pack 12 has, at its lower end portion, a spinneret 13 having nozzles
(not illustrated). The supplied molten polymer is spun out from the spinning pack
12 through the nozzles of the spinneret 13. The polymer spun out through the nozzles
is cooled at the yarn cooler 3 into filaments f. The yarn cooler 3 will be described
later. To put it differently, one multi-filament yarn Y formed of plural filaments
f is spun out from one spinneret 13.
[0027] The yarn cooler 3 is provided to cool and solidify molten polymer spun out from the
spinning packs 12. The yarn cooler 3 is located below the spinning beam 2. As shown
FIG. 1 and FIG. 2, the yarn cooler 3 includes members such as: a box 20; cooling cylinders
21 (yarn cooling units of the present invention) accommodated in the box 20; and partitioning
cylinders 22.
[0028] As shown in FIG. 1, the internal space of the box 20 is partitioned by a flow adjustment
plate 23 into upper and lower spaces. The flow adjustment plate 23 is formed by a
material such as punching metal having a flow adjustment function, and is horizontally
provided. In the upper space (above the flow adjustment plate 23) of the box 20, the
cooling cylinders 21 are provided to be directly below the spinning packs 12, respectively.
The cooling cylinders 21 are staggered along the left-right direction in accordance
with the arrangement of the spinning packs 12, as shown in FIG. 2. The wall of each
cooling cylinder 21 is, in a manner similar to the flow adjustment plate 23, made
of a material having flow adjustment capability such as punching metal. In the lower
space (below the flow adjustment plate 23) of the box 20, the partitioning cylinders
22 are provided to be directly below the cooling cylinders 21, respectively. Being
different from the cooling cylinders 21, the wall of each partitioning cylinder 22
is made of an air-impermeable material. A yarn Y passes through the internal spaces
of the cooling cylinder 21 and the partitioning cylinder 22 which are directly below
the spinning pack 12.
[0029] A duct 25 is connected to a rear side part of a lower portion of the box 20 (see
FIG. 1). The duct 25 is connected to a compressed air source (not illustrated). The
compressed air source feeds air for cooling the yarns Y to the inside of the duct
25. The air from the compressed air source is supplied to the lower space of the box
20 through the duct 25. The duct 25 will be detailed later.
[0030] The flow of cooling air having entered the lower space of the box 20 is adjusted
upward while passing through the horizontal flow adjustment plate 23, and flows into
the upper space of the box 20. The flow of the air having entered the upper space
of the box 20 is adjusted when passing through the wall of each cooling cylinder 21,
and flows into each cooling cylinder 21. The air is blown to each yarn Y from the
entire outer circumference of the corresponding cooling cylinder 21, so that each
yarn Y is cooled in the corresponding cooling cylinder 21. Because the wall of each
partitioning cylinder 22 is air-impermeable, the cooling air does not directly flow
from the lower space of the box 20 into the partitioning cylinder 22.
[0031] The oil guide 4 is configured to apply oil to the yarns Y. The oil guide 4 is provided
below the corresponding cooling cylinder 21 and partitioning cylinder 22. The yarn
Y having been cooled in the cooling cylinder 21 comes into contact with the oil guide
4. During this contact, the oil guide 4 discharges oil to the yarn Y so that the oil
is applied to the yarn Y. The yarn Y to which the oil has been applied by the oil
guide 4 is taken up by a take-up roller (not illustrated)) provided below the oil
guide 4. The yarn Y is then sent to a winding device (not illustrated) and is wound
onto a bobbin (not illustrated) at the winding device.
(Structure of Duct)
[0032] The following will describe the structure of the duct 25 of the yarn cooler 3 with
reference to FIG. 1, FIGs. 3(a) and 3(b), and FIG. 4. FIG. 3(a) is a cross section
taken along a line III-III in FIG. 1. FIG. 3(b) is an enlarged view of a bulging portion
31 of a later-described partition plate 29. FIG. 4 is an enlarged view of a lower
(upstream) end portion of a later-described passage-enlarged portion 28. Hereinafter,
in the explanation of the passage-enlarged portion 28, the up-down direction is the
length direction (passage length direction) of the passage-enlarged portion 28. The
upper side is the downstream side whereas the lower side is the upstream side. Furthermore,
the left-right direction is the width direction (hereinafter, passage width direction)
of the passage-enlarged portion 28.
[0033] The duct 25 includes: a vertical passage portion 26 extending in the up-down direction;
and a horizontal passage portion 27 extending in the front-rear direction. The lower
end (upstream end) of the vertical passage portion 26 is connected to the compressed
air source. The horizontal passage portion 27 extends horizontally from the upper
end of the vertical passage portion 26, and is coupled to the rear side wall portion
of the lower portion of the box 20. Air fed from the compressed air source flows to
the box 20, through the vertical passage portion 26 and the horizontal passage portion
27 of the duct 25.
[0034] As shown in FIG. 3(a), the passage-enlarged portion 28 is formed at a downstream
end portion of the vertical passage portion 26 of the duct 25. The passage width of
the passage-enlarged portion 28 increases fanwise toward the downstream side. Two
side walls 30 are formed at the respective end portions in the passage width direction
of the passage-enlarged portion 28 to be symmetrical in the passage width direction.
Each of these side walls 30 obliquely extends relative to the passage length direction.
Each of the two side walls 30 has an inner wall surface 30a which forms the internal
space of the passage-enlarged portion 28. That is to say, in FIG. 3(a), a region surrounded
by the two inner wall surfaces 30a and two two-dot chain lines is the internal space
of the passage-enlarged portion 28. The length of the inner wall surface 30a in the
passage length direction is referred to as the length X1. The horizontal passage portion
27 is connected to the downstream end portion of the passage-enlarged portion 28.
From a different perspective, the passage width of the duct 25 is increased at the
passage-enlarged portion 28, and the horizontal passage portion 27 connected to the
passage-enlarged portion 28 extends to the box 20 while keeping the increased passage
width.
[0035] In the passage-enlarged portion 28, a plurality of (five in FIG. 3(a)) partition
plates 29 are provided to be lined up in the passage width direction. The partition
plates 29 are provided to adjust an airflow so that air in the passage-enlarged portion
28 evenly spreads in the passage width direction. The partition plates 29 are radially
provided from an upstream inlet portion 28a where the passage width is narrow toward
a downstream outlet portion 28b where the passage width is wide. The partition plates
29 are substantially identical with one another in length. The partition plates 29
are arranged at substantially equal intervals with an angle θ1. To be more specific,
a partition plate 29 provided at a central part in the passage width direction of
the passage-enlarged portion 28 is provided along the passage length direction, whereas
a partition plate 29 provided at an outer part in the passage width direction is inclined
with respect to the passage length direction. The partition plate 29 which is closest
to the inner wall surface 30a is provided to form an angle θ2 with the inner wall
surface 30a. In the present embodiment, the angle θ1 is substantially equal to the
angle θ2.
[0036] In the passage length direction, the partition plates 29 which are provided at the
end portions in the passage width direction (i.e., which are most inclined with respect
to the passage length direction) are the shortest among the partition plates 29. The
length of each of these shortest partition plates 29 in the passage length direction
is referred to as the length X2. The lengths of the other partition plates 29 in the
passage length direction are more than the length X2.
[0037] In the passage-enlarged portion 28 structured as described above, air flows into
the passage-enlarged portion 28 through the inlet portion 28a (see an arrow 101 in
FIG. 3(a)), and then flows into small passages 33 which are formed by the partition
plates 29 (see an arrow 102 in FIG. 3(a)). The air flowing along the small passages
33 spreads in the passage width direction, and further flows toward the outlet portion
28b where the passage width is wide (see an arrow 103 in FIG. 3(a)).
[0038] In regard to the above, if the partition plate 29 are not properly disposed or arranged,
the airflow cannot be effectively adjusted, and hence dispersion in speed in the passage
width direction may be significant at around the outlet portion 28b. When air with
large dispersion in speed flows into the box 20, the speed of the air is uneven between
the cooling cylinders 21 in the box 20. This results in differences in yarn cooling
capability by air between the cooling cylinders 21, and hence the yarn quality may
be uneven. To firmly enhance the airflow adjustment by the partition plates 29 and
to suppress the dispersion in air speed, the present embodiment employs the following
structure.
[0039] As shown in FIGs. 3(a) and 3(b), a bulging portion 31 is provided at an upstream
end portion of each partition plate 29. The bulging portion 31 is, for example, formed
by attaching, to an upstream end portion of the partition plate 29, a round bar 32
extending in the height direction (which is the direction orthogonal to the plane
of the figure and will be simply referred to as the height direction) of the partition
plate 29, which is the direction orthogonal to the passage length direction and is
orthogonal to the passage width direction (see FIG. 3(b)). The cross section of the
bulging portion 31 taken in the direction orthogonal to the height direction is circular
in shape. To put it differently, in the passage width direction, the bulging portion
31 increases in size toward the downstream side from the upstream end portion to an
intermediate portion of the bulging portion 31. In other words, at an upstream side
part 31a of the bulging portion 31 (i.e., a part surrounded by a two-dot chain line
and a thick semicircle shown in FIG. 3(b)), the bulging portion 31 increases in size
in the passage width direction from the upstream end portion toward the downstream
side. To put it differently, the bulging portion 31 includes a part which increases
in size in the passage width direction from the upstream end portion toward the downstream
side.
[0040] The bulging portions 31 are lined up to form a single line along the passage width
direction, i.e., linearly lined up. As shown in FIG. 4, the length of the gap between
two bulging portions 31 provided at the respective partition plates 29 which are adjacent
to each other is termed the length W1. To be more specific, the length W1 is the shortest
length of the gap between two bulging portions 31 (i.e., the length of the gap between
end portions in the passage width direction of two bulging portions 31 in the present
embodiment). Meanwhile, the length of the gap between the inner wall surface 30a and
the bulging portion 31 of the partition plate 29 which is closest to the inner wall
surface 30a is termed the length W2. To be more specific, the length W2 is the length
of the gap in the passage width direction between the inner wall surface 30a and an
end in the passage width direction of the bulging portion 31 of the partition plate
29 which is closest to the inner wall surface 30a.
[0041] Suppose that each partition plate 29 does not have the bulging portion 31. In this
case, when air enters the passage-enlarged portion 28, the air collides with the upstream
end portions of the flow adjustment plates 29. Thus, the flow of air is likely to
be detached from the partition plate 29 and disturbed. In this connection, the bulging
portions 31 are provided at the upstream end portions of the respective partition
plates 29 in the present embodiment, and the upstream side part 31a of each bulging
portion 31 increases in size in the passage width direction toward the downstream
side. This facilitates part of the air coming from the upstream side to smoothly flow
along the surface of each bulging portion 31.
[0042] In addition to the above, the inventor of the subject application found that the
following conditions regarding the locations and arrangements of the partition plates
29 and the bulging portions 31 significantly influenced on the airflow adjustment
effect. To be more specific, as a result of fluid analysis described below, the inventor
found that the airflow adjustment effect was improved by setting each of the following
factors to fall within a suitable range: (1) the length W1 of the gap between the
bulging portions 31; (2) the ratio (W2/W1) of the length W2 of the gap between the
inner wall surface 30a and the bulging portion 31 to the length W1; (3) the ratio
(X2/X1) of the length in the passage length direction of the partition plate 29 to
the length in the passage length direction of the inner wall surface 30a; and (4)
the diameter of the bulging portion 31 in cross section.
(Conditions of Analysis)
[0043] The following describes the fluid analysis carried out by the inventor of the subject
application. Conditions shared by all analytical models were as follows. The type
of gas was air. Each of the angle θ1 and the angle θ2 (see FIG. 3(a)) was set at 8
degrees. The thickness of each partition plate 29 was 1mm. An amount of air flowing
into the inlet portion 28a was 11.0m
3/min. The number of the partition plates was 5 except in some examples.
[0044] The following will describe the details of the analysis conditions and analysis results,
with reference to FIG. 5 to FIG. 17(d). FIG. 5 to FIG. 8(b) are tables showing the
details of the analysis conditions and the analysis results. FIG. 9(a) to FIG. 17(d)
show analysis results of Examples and Comparative Examples (the speed distributions
in the passage-enlarged portion 28 in cross section corresponding to FIG. 3(a)). FIG.
5 shows analysis conditions and analysis results of all examples (Examples 1 to 11)
and all comparative examples (Comparative Examples 1 to 6), whereas each of FIG. 6(a)
to FIG. 8(b) shows the dependency on a parameter of examples and comparative examples.
In FIG. 6(a) to FIG. 8(b), a parameter concerning each dependency is surrounded by
a thick-bordered frame. In FIG. 9(a) to FIG. 17(d) each showing the speed distribution,
the air speed is low at a dark part whereas the air speed is high at a light gray
part.
[0045] FIG. 5 to FIG. 8(b) show, as specific conditions, the diameter of the bulging portion
31, the length W1, the length W2, the ratio W2/W1, and the ratio X2/X1. In addition,
the number of the partition plates 29 is also shown because the number of the partition
plates 29 is different in an example (Example 7). As the analysis results, FIG. 5
to FIG. 8(b) show the degree of dispersion in speed of air at a downstream end portion
of the passage-enlarged portion 28 (i.e., a standard deviation of speed; hereinafter,
this will be simply referred to as standard deviation), generation of a whirl in the
passage-enlarged portion 28, and judgment (OK or NG).
[0046] The standard deviation was calculated from data of the air speed distribution in
a cross section (orthogonal to the passage length direction) of the downstream end
portion of the passage-enlarged portion 28. The smaller this standard deviation is,
the smaller the degree of dispersion in speed of air is. Whether a whirl was generated
was determined by visually checking the speed distribution figures in FIG. 9(a) to
FIG. 17(d). (Generated whirls are indicated by white circles in FIG. 9(a) to FIG.
17(d).) Energy loss increases when a whirl is generated. Furthermore, a whirl may
increase the degree of dispersion in speed of air. In regard to the judgment, an example
in which the standard deviation was 0.85 or lower and the formation of a whirl of
air (i.e., airflow disturbance) in the passage-enlarged portion 28 was inconspicuous
was judged as OK, whereas an example which did not satisfy these conditions was judged
as NG. The following will describe the analysis results related to the respective
dependencies.
(Dependency on Existence of Bulging Portion)
[0047] To begin with, as shown in FIG. 6(a), a case where the bulging portions 31 were formed
at the upstream end portions of the partition plates 29 was compared with a case where
no bulging portions were formed, in regard to the standard deviation and the formation
of a whirl. Both in the case (Example 1) where the bulging portions 31 were formed
and the case (Comparative Example 1) where no bulging portions 31 were formed, no
whirl was formed (see FIG. 9). However, the standard deviation was large, i.e., 0.89,
and significant dispersion in speed was observed in Comparative Example 1. Meanwhile,
the standard deviation was small, i.e., 0.75 and a good result was obtained in the
Example. The analysis result shows that, because part of the air coming from the upstream
side smoothly flows along the surface of each bulging portion 31, the disturbance
of the airflow is restrained and the degree of dispersion in speed of air is restrained
to be low.
(Dependency on W1)
[0048] As shown in FIG. 6(b), fluid analysis was done regarding the dependency of the degree
of dispersion in speed of air, etc. on the length W1. To be more specific, the length
W1 was changed within the range of 6mm to 44mm, and comparisons were made in regard
to the standard deviation and the formation of a whirl (Examples 1 to 6 and Comparative
Examples 2 to 5). Furthermore, the diameter of the bulging portion 31 was altered
(ϕ8mm or (ϕ16mm). In FIG. 6(b), the examples and the comparative examples are arranged
in an ascending order of the length W1.
[0049] Consequently, irrespective of the diameter of the bulging portion 31, in the cases
(Examples 1 to 6) in which the length W1 was equal to or longer than 12mm and equal
to or shorter than 30mm, good analysis results were obtained such that the standard
deviation was equal to or smaller than 0.85 and the formation of a whirl was inconspicuous
(see FIG. 10 and FIG. 11). In particular, when the length W1 was equal to or longer
than 18mm and equal to or shorter than 30mm, a better result was obtained, i.e., the
formation of a whirl was not observed at all. A case where W1=12mm was judged as OK
because, in the analysis results of some examples (Examples 2 and 5), small whirls
were observed (see FIGs. 10(b) and 10(c)) but the standard deviation was small, i.e.,
0.85 and the small whirls were considered to be small in energy loss. Meanwhile, when
the length W1 was out of the range of 12mm or longer and 30mm or shorter (Comparative
Examples 2 to 5), the standard deviation was large and large whirls were observed
at end portions in the passage width direction of the passage-enlarged portion 28
(see FIG. 10 to FIG. 12).
[0050] The inventor of the subjection application understands the results described above
as below. When the length W1 is too short, an airflow from the upstream side tends
to be obstructed by the bulging portions 31, with the result that the air does not
easily flow into the small passages 33 between the partition plates 29, and the flow
adjustment effect by the partition plates 29 is insufficient. Meanwhile, when the
length W1 is too long, the intervals of the partition plates 29 are also too long,
with the result that the flow adjustment effect by the partition plates 29 is insufficient
also in this case. On this account, it is necessary to arrange the length W1 to fall
within the optimum range (more specifically, equal to or longer than 12mm and equal
to or shorter than 30mm) in order to suppress the degree of dispersion in speed of
air to be small in the passage width direction. To put it differently, when the length
W1 is 12mm or longer, obstruction to air entrance into the intervals between the partition
plates 29 by the bulging portions 31 is restrained. Meanwhile, when the length W1
is 30 mm or shorter, the intervals between the partition plates 29 are not too long.
With these arrangements, the partition plates 29 properly exert the flow adjustment
effect and the degree of dispersion in speed of air is small. More preferably, when
the length W1 is arranged to be equal to or longer than 18mm and equal to or shorter
than 30mm, the degree of dispersion in speed of air is further decreased and the generation
of whirls is restrained.
(Dependency on the ratio of W2/W1)
[0051] As shown in FIG. 7, fluid analysis was done in regard to the dependency of the degree
of dispersion in speed of air or the like on the ratio of W2/W1. To be more specific,
the ratio W2/W1 was changed within the range of 0.35 to 15.4, and comparisons were
made in regard to the standard deviation and the formation of a whirl (Examples 1
to 7 and Comparative Examples 2 to 5). In FIG. 7, the examples and the comparative
examples are arranged in an ascending order of the ratio W2/W1.
[0052] As a result, when the length W2 was equal to or longer than the length W1 and was
seven times or less longer than the length W1 (Examples 1 to 7), the standard deviation
was 0.85 or smaller and the formation of whirls was inconspicuous (see FIG. 13 to
FIG. 15). Furthermore, when the length W2 was 1.5 times or more longer than and 5.5
times or less longer than the length W1 (Examples 1, 3, 5, and 7), the standard deviation
was lower than 0.8 and better results were obtained. Furthermore, even if the diameter
of the bulging portion 31 and the length W1 remained the same (Example 2 and Example
7), the standard deviation was significantly lowered and no whirl was generated when
the ratio W2/W1 was changed from about 7 to about 5.5 (and the number of the partition
plates was changed from 5 to 7 and the inclination of the inner wall surface 30a was
changed in accordance with the change in the number of plates in Example 7). Meanwhile,
when the ratio W2/W1 was out of the range of 1 or higher and 7 or lower (Comparative
Examples 2 to 5), the degree of dispersion in speed of air was high and large whirls
were observed (see FIG. 13 and FIG. 15).
[0053] The inventor of the subjection application understands the results described above
as below. When the length W2 is too short relative to the length W1, an airflow entering
the gap between the inner wall surface 30a and the partition plate 29 (at an end portion
in the passage width direction in the passage-enlarged portion 28) is obstructed,
with the result that the air speed becomes unbalanced in the passage width direction.
Meanwhile, when the length W2 is too long relative to the length W1, excessive air
flows into an end portion in the passage width direction in the passage-enlarged portion
28, with the result that the air speed becomes unbalanced in the passage width direction.
It is therefore preferable to arrange the ratio W2/W1 to fall within an optimum range
(to be more specific. one time or more and seven times or less). In this regard, when
the length W2 is equal to or longer than the length W1, an airflow into the end portions
in the passage width direction in the passage-enlarged portion 28 is facilitated.
Meanwhile, when the length W2 is seven times or less longer than the length W1, excessive
airflow into the end portions in the passage width direction in the passage-enlarged
portion 28 is prevented. This improves the balance between the speed of air at the
end portions in the passage width direction and the speed of air at the central portion
in the width direction in the passage-enlarged portion 28, with the result that the
degree of dispersion in speed of air is restrained to be small. More preferably, the
degree of dispersion in speed of air is further restrained when the length W2 is 1.5
times or more longer than the length W1 and 5.5 times or less longer than the length
W1.
[0054] The range of the ratio W2/W1 with which the degree of dispersion in speed of air
is restrained to be low ranges from 1 to a value which is several times higher than
1, presumably because of the following reason. Because the partition plates 29 are
radially provided in the passage-enlarged portion 28, the outermost partition plate
29 in the passage width direction forms an angle which is large to some degree with
the passage length direction (see the angle θ3 in FIG. 4; in this analysis condition,
θ3=2×θ1, i.e., 16 degrees). On this account, it is considered that a large amount
of air among the air flowing from the upstream side and flowing on the outer side
in the passage width direction makes contact with the partition plate 29, and the
air at the end portions in the passage width direction tends to slow down on account
of friction between the air and the partition plates 29. As such, the speed of the
air flowing at the end portions in the passage width direction is not easily increased
as compared to the air flowing at the central portion in the passage width direction.
For this reason, it is considered that the speed of the air is unlikely to become
unbalanced in the passage width direction even when the length W2 is considerably
longer than the length W1.
(Dependency on the ratio of X2/X1)
[0055] As shown in FIG. 8(a), fluid analysis was done regarding the dependency of the degree
of dispersion in speed of air or the like on the ratio X2/X1, while changing the ratio
(X2/X1) of the length X2 in the passage length direction of the partition plate 29
which was shortest in the passage length direction to the length X1 in the passage
length direction of the inner wall surface 30a. To be more specific, the ratio X2/X1
was changed within the range of 13% to 78%, and comparisons were made in regard to
the standard deviation and the formation of a whirl (Examples 1, 8, and 9 and Comparative
Example 6). As a result, when the ratio X2/X1 was 26% or higher (Examples 1, 8, and
9), the standard deviation was 0.85 or smaller and the formation of whirls was not
observed (see FIGs. 16(b) to 16(d)). In particular, the standard deviation was lowest
in Example 9 in which the ratio X2/X1 was the highest (78%). Meanwhile, when the partition
plate 29 was short (Comparative Example 6), the standard deviation was large and the
formation of whirls were conspicuous at end portions in the passage width direction
in the passage-enlarged portion 28 (see FIG. 16(a)).
[0056] It is considered that this is because, the longer the partition plate 29 is in the
passage-enlarged portion 28, the more the air is guided outward in the passage width
direction by the partition plate 29. It is considered that, when the partition plate
29 is too short, the air flows out to a region where the partition plate 29 is not
provided in the passage length direction, before the air sufficiently spreads outward
in the passage width direction, with the result that the air does not evenly spread
to the outer sides in the passage width direction in a sufficient manner. For this
reason, each partition plate 29 preferably has at least predetermined length (i.e.,
at least 26% of the length of the inner wall surface 30a) in the passage length direction.
Basically, the longer each partition plate 29 is, the better. For this reason, in
the passage length direction, the length of each partition plate 29 is more preferably
50% or more of the length of the inner wall surface 30a, and further preferably 75%
or more of the length of the inner wall surface 30a.
(Dependency on Diameter of Bulging Portion)
[0057] As shown in FIG. 8(b), the diameter of the bulging portion was changed within the
range of ϕ4mm to ϕ20mm, and comparisons were made in regard to the standard deviation
and the formation of a whirl (Examples 1, 6, 10, and 11) . As a result, in all examples,
the standard deviation was 0.85 or smaller and the formation of whirls was not observed
(see FIGs. 17(a) to 17(d)).
[0058] When each bulging portion 31 is too small, the effect of allowing air in contact
with the partition plate 29 to smoothly move may be deteriorated. Meanwhile, when
each bulging portion 31 is too large, as described above, it is necessary to increase
the intervals between the partition plates 29 in order to maintain the length W1 to
fall within the predetermined range. Because as a result of this the width of each
small passages 33 rapidly increases at the immediate downstream of the bulging portions
31, the airflow may become destabilized. For this reason, it is preferable that the
diameter of the cross section of each bulging portion 31 is preferably not less than
4mm and not more than 20mm.
[0059] As described above, in the passage-enlarged portion 28, because the bulging portion
31 formed at each partition plate 29 includes a part which increases in size in the
passage width direction from the end portion on the upstream side toward the downstream
side, part of the air flowing from the upstream side is encouraged to smoothly flow
along the surface of the bulging portion 31. This prevents the airflow from being
detached from the partition plate 29 and disturbed.
[0060] Furthermore, because the length W1 between the two bulging portions 31 is 12mm or
longer, obstruction to the airflow by the bulging portions 31 is restrained. Furthermore,
because the length W1 is 30 mm or shorter, the intervals between the partition plates
29 are not too long, and the flow adjustment effect exerted by the partition plates
29 is facilitated.
[0061] In this way, the disturbance of the gas flow due to collision of gas flowing in the
passage-enlarged portion 28 with the partition plates 29 is restrained, and the dispersion
in speed of air is suppressed.
[0062] More preferably, by setting the length W1 to be to shorter than 18mm and not longer
than 30mm (i.e., by increasing the lower limit value of the length W1), obstruction
to the airflow by the bulging portions is further suppressed, and the dispersion in
speed of air is further suppressed.
[0063] In addition to the above, by setting the length W2 of the gap in the passage width
direction between the inner wall surface 30a of the passage-enlarged portion 28 and
the partition plate 29 closest to the inner wall surface 30a to be equal to or longer
than the length W1 and seven times or less longer than the length W1, the balance
between the speed of air at the end portions in the passage width direction and the
speed of air at the central portion in the passage width direction is improved in
the passage-enlarged portion 28, with the result that the dispersion in speed of air
is restrained. Further preferably, by setting the length W2 to be 1.5 times or more
longer than the length W1 and 5.5 times or less longer than the length W1, the balance
of the speed of the air in the passage width direction is further improved.
[0064] Furthermore, because in the passage length direction each partition plate 29 is
26% or more of the inner wall surface 30a in length, the air is properly guided outward
in the passage width direction by the partition plates 29, and hence the air is evenly
spread to reach the end portions in the passage width direction.
[0065] In addition to the above, the bulging portions 31 are lined up to form a single line
along the passage width direction. In other words, the bulging portions 31 are linearly
lined up along the passage width direction. With this arrangement, the length W1 between
two bulging portions 31 is maintained to be short as compared to cases where, for
example, the bulging portions 31 are lined up to form an arc or lined up in a staggered
manner. It is therefore possible to restrain increase in number of partition plates
required to maintain the length W1 to be equal to or shorter than a predetermined
length. Furthermore, labor required to line up the bulging portions 31 while taking
account of the length W1 is reduced.
[0066] In addition to the above, because the diameter of each bulging portion is 4mm or
longer and 20mm or shorter, smooth movement of the air in contact with each partition
plate 29 is ensured, rapid increase in width of each small passage 33 is restrained
at the immediate downstream of each bulging portion 31, and destabilization of the
airflow is restrained.
[0067] 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) While in the embodiment above the partition plates 29 are substantially identical
with one another in length, the disclosure is not limited to this arrangement. For
example, as shown in FIG. 18, in a duct 25a, partition plates provided in the passage-enlarged
portion 28 may be different from one another in length. For example, a partition plate
29a which is closest to the inner wall surface 30a may be the longest, whereas a partition
plate 29b which is provided at a central portion in the passage width direction may
be the shortest. In this way, it is possible to further efficiently spread the air
in the passage width direction by elongating the partition plate 29a provided at an
end portion in the passage width direction.
- (2) While in the embodiment above the partition plates 29 extend from the upstream
end portions (in the vicinity of the inlet portion 28a) toward the downstream side
in the passage-enlarged portion 28, the disclosure is not limited to this arrangement.
The upstream end portions of the partition plates 29 may not be provided in the vicinity
of the inlet portion 28a in the passage-enlarged portion 28.
- (3) While in the embodiment above each bulging portion 31 has a circular cross sectional
shape, the disclosure is not limited to this arrangement. The cross sectional shape
of the bulging portion may be elliptic, or may be triangular and have a corner protruding
toward the upstream side. In other words, the bulging portion may be variously shaped
on condition that the portion includes a part which increases in size in the passage
width direction from an upstream end portion toward the downstream side.
- (4) While in the embodiment above the bulging portions 31 are linearly lined up along
the passage width direction, the disclosure is not limited to this arrangement. For
example, the bulging portions 31 may be lined up to form an arc.
- (5) Gas other than air may be supplied to the duct 25.