[0001] The invention relates to a backrest assembly for pile warp threads in a terry weaving
machine, comprising a tension roller and a support beam, wherein the tension roller
is arranged to guide the pile warp threads, wherein the support beam is mountable
to a frame of the weaving machine so as to be rotatable to-and-fro about a support
beam axis, and wherein the tension roller is supported in parallel to the support
beam by two or more support elements, which support elements are mounted fixed in
position to the support beam.
[0002] As generally known to the person skilled in the art, for weaving a terry fabric,
the fell line of the fabric is displaced relative to a reed for causing a variation
of a distance between a constant beat-up line and the fell line. If, after a plurality
of inserted weft threads and beat-ups effected at a distance from the fell line, the
fell line of the fabric is displaced in such a way that the fell line is moved closer
to the beat-up line of the reed, the previously inserted weft threads are carried
along towards the fell line during beat-up of a next inserted weft thread. The weft
threads move relative to the more tightly tensioned ground warp threads, while carrying
with them the loosely tensioned pile warp threads. Thereby, the pile warp threads
form loops.
[0003] For forming loops, a low pile warp tension is required. However, in terry fabrics,
it is common to have a first fabric part woven as a terry fabric followed by a second
fabric part woven as a normal or flat fabric. Therefore, it is generally known in
terry weaving machines to use a low tension of the pile warps threads for weaving
a terry fabric and high tension of the pile warps threads for weaving a flat fabric
between the terry fabrics.
[0004] As described for example in
EP 1888826 B1, it is known to provide a resiliently held tension roller arranged to guide the pile
warp threads, which may move together with the woven fabric if the woven fabric is
moved away from the beat-up line for avoiding that pile warp threads are pulled back
out of the just woven terry fabric.
[0005] EP 1 335 052 A1 shows a tension device for warp threads with a tension beam mounted to a first arm
of a lever, wherein a second arm of the lever is loaded by a bellow spring. A similar
device is shown in
DE9304801.
[0006] US5743307 shows a tension device for warp threads comprising two rollers, wherein a lever is
attached to a first roller. Bellows are mounted between a frame of the weaving machine
and the lever. A removal of the warp threads from a beam is regulated in such manner
that the lever always remains in a same position.
[0007] US2016/230317 A1 shows a tension device for warp threads comprising a thread deflecting element that
lies on an air-filled rubber hose or elongated pressure cushion.
[0008] It is one object of the present application to provide a backrest assembly with a
moveably mounted tension roller, wherein it is avoided that a tension of the pile
warp threads will increase substantially during a movement of the tension roller upon
a displacement of the woven fabric.
[0009] It is another object of the present application to provide a backrest assembly with
a tension roller mounted by support brackets on a support beam, which allows for an
easy adjustment of a position of the support brackets along the support beam axis
on the support beam.
SUMMARY OF THE INVENTION
[0010] According to a first aspect of the invention, a backrest assembly for pile warp threads
in a terry weaving machine, comprising a tension roller and a support beam is provided,
wherein the tension roller is arranged to guide the pile warp threads, wherein the
support beam is mountable to a frame of the weaving machine so as to be rotatable
to-and-fro about a support beam axis, wherein the tension roller is supported in parallel
to the support beam by two or more support elements, which support elements are mounted
fixed in position to the support beam, and wherein the tension roller is loaded by
at least one bellow spring, wherein he at least one bellow spring is coupled to the
support beam by a linkage system having at least a coupling lever attached to the
support beam to rotate with the support beam, and wherein a distance between the force
application position of the at least one bellow spring on the coupling lever and the
support beam axis is shorter than or equal to a distance between an axis of the tension
roller and the support beam axis.
[0011] The tension roller is resiliently mounted such that the tension roller is displaceable
upon a movement of a woven fabric for forming loops in the pile warp threads of a
terry fabric. In preferred embodiments, the backrest assembly is a passive device,
wherein the tension roller is displaced due to forces applied by the pile warp threads
without a drive for actively displacing the tension roller. In the context of the
application, the expression tension roller describes an elongated element having as
a smooth guidance surface for guiding the pile warp threads along the guidance surface
of the tension roller.
[0012] A warp tension of the pile warp threads is set using at least one bellow spring.
In the context of the application, the expression bellow spring is used for describing
a spring comprising one bellow or several bellows filled with a compressible fluid,
which bellow allows the spring to expand and contract in a linear direction. The elastic
force or spring force of the bellow spring is settable by the pressure of the fluid
in the bellow. In preferred embodiments, the bellow is filled with air, in particular
pressurized air. The person skilled in the art will understand that instead of air
another fluid can be used. The bellow spring can be designed such that the pressure
and, thus, the force applied by the bellow spring does not or only insignificantly
vary with the expansion and contraction of the bellow due to a movement of the tension
roller.
[0013] The warp tension of the pile warp threads depends on the pressure inside the bellow
spring. By setting the pressure, the warp tension can be set easily and without steps.
With the movement of the tension roller, the bellow or the bellows of the bellow spring
is/are expanded or contracted in a linear direction. When designing the bellow spring
such that the force applied by the bellow spring does not or only insignificantly
vary with the expansion and contraction of the bellow(s) due to a movement of the
tension roller an at least essentially constant warp tension can be achieved in the
pile warp threads guided by the tension roller even while the tension roller is moved
over a large distance for a displacement of the woven fabric in use of the terry weaving
machine. In other words, the backrest assembly has a low inertia and the movement
of the tension roller causes only low variations or no variations in the warp tension
during the terry weaving process, although the backrest assembly itself is rather
rigid and the tension roller moves over a large distance.
[0014] The backrest assembly in embodiments comprises or cooperates with a pressure regulator
system that is able to regulate the pressure of the fluid in the at least one bellow
spring and/or to measure the pressure of the fluid in the at least one bellow spring,
which pressure is proportional to the pile warp thread tension. Preferably, the used
fluid is air.
[0015] In preferred embodiments, the bellow spring is a rolling-lobe spring, in particular
a rolling-lobe air spring. The rolling-lobe spring comprises a bellow, which is usually
attached at one end to a roll-off piston, which roll-off piston is made for example
of metal or plastic. Upon a contraction, the roll-off piston moves within the bellow,
and the bellow is pushed over the roll-off piston so that the bellow defines a rolling
lobe which rolls over the outer surface of the roll-off piston. An internal volume
of such a rolling-lobe spring only marginally changes when the rolling-lobe spring
expands or contracts, i.e. when the bellow rolls over the outer surface of the roll-off
piston. In alternative or in addition, the bellow spring is in fluid communication
with a large fluid container, in particular a large airtank, for providing an internal
volume, which only marginally changes with the expansion or contraction of the bellow
spring. Several rolling-lobe springs could be combined to form one bellow spring.
[0016] The tension roller moves in a weaving plane, which is at least essentially in a horizontal
plane. In one embodiment, the bellow spring is mounted so as to expand and contract
in parallel to the weaving direction and coupled to the support elements for a force
application. Preferably, the bellow spring is mounted so as to expand and contract
in a direction substantially perpendicular to the weaving direction.
[0017] The at least one bellow spring is coupled to the support beam by a linkage system
having at least a coupling lever attached to the support beam to rotate with the support
beam. This allows for a suitable arrangement of the bellow spring at the periphery
of the support beam, while keeping the support brackets, which may extend through
the warp threads, small in size.
[0018] A distance between the force application position of the at least one bellow spring
on the coupling lever and the support beam axis is shorter than or equal to a distance
between an axis of the tension roller and the support beam axis. When the distance
between the force application position of the at least one bellow spring on the coupling
lever and the support beam axis is shorter than or equal to the distance between the
tension roller axis and the support beam axis, a leverage effect is advantageously
used as any variation in the pressure applied by the at least one bellow spring will
have a smaller effect on the warp tension as applied to the pile warp threads by the
tension roller.
[0019] In one embodiment, the coupling lever via which the at least one bellow spring is
coupled to the support beam and the support elements supporting the tension roller
are arranged at an angle of approximately 75° to approximately 105°. Hence, a movement
direction at a distal end of the coupling lever is almost perpendicular to a movement
direction at a distal end of the support elements. Hence, when the tension roller
is moved in a weaving plane, which is at least essentially in a horizontal plane,
the distal end of the coupling lever is moved at least essentially in a vertical direction.
[0020] In one embodiment, the bellow spring is guided for avoiding a movement of the bellow
spring in other directions than its axial direction and, thus, for avoiding a buckling
or bending of the bellow of the bellow spring. In preferred embodiments, the linkage
system is a four-joint-linkage comprising a rod extending in an axial direction of
the at least one bellow spring or in parallel to an axial direction of the at least
one bellow spring, the coupling lever being coupled to the rod at a first joint and
attached to the support beam to rotate with the support beam, and an auxiliary lever
arranged in parallel to the coupling lever, the auxiliary lever being coupled to the
rod at a second joint and mountable to the frame of the weaving machine so as to be
rotatable to-and-fro about an axis parallel to the support beam axis. The four-joint-linkage
system also avoids an inclination of the rod and, thus, a movement of the bellow spring
in other directions than its axial direction, wherein in addition friction forces
are avoided.
[0021] In an alternative embodiment, an auxiliary tension element and a deflection beam
are provided, wherein the auxiliary tension element is supported in parallel to the
support beam by two or more support elements, wherein the deflection beam is mounted
fixed in position to the frame of the weaving machine between the tension roller and
the auxiliary tension element, and wherein the deflection beam, the tension roller
and the auxiliary tension element are arranged for guiding pile warp threads. The
tension roller and the auxiliary tension element in one embodiment are similar or
identical in design and are arranged symmetrically at either side of the deflection
beam. In one embodiment, the auxiliary tension element is supported by several or
all support elements supporting the tension roller such that the number of support
elements is minimized.
[0022] In one embodiment, the tension roller and/or the auxiliary tension element are supported
in the support elements so as to be not rotatable about their axis. In case the tension
roller and/or the auxiliary tension element are supported so as to be not rotatable
about their axes, the cross-section thereof may be chosen so as to be different from
a circular or annular cross-section, for example a curved cross-section, as long as
a smooth guidance surface for guiding the pile warp threads along the guidance surface
of the tension roller and/or of the auxiliary tension element is possible.
[0023] In one embodiment, the at least one bellow spring is mounted via a force measuring
device for measuring the force acting on the bellow spring. The force measuring device
is for example mounted between the bellow spring and a frame of the weaving machine.
In preferred embodiments, in particular when the bellow spring is mounted to expand
and contract in a vertical direction, the force measuring device is mounted below
the bellow spring. In one embodiment, a warp tension is determined based on such measured
forces acting on the bellow spring. In preferred embodiments, in use a warp tension
is determined based on a pressure of the fluid in the bellow spring measured by a
pressure sensor or any other pressure measuring device, wherein the force measuring
device mounted between the bellow spring and the frame of the weaving machine is used
for example for calibrating a value of the warp tension based on the value of the
pressure in the bellow spring measured by the pressure sensor or any other pressure
measuring device. In alternative or in addition, in case a force applied at a distal
end of the coupling lever is almost perpendicular to a warp tension as applied to
the tension roller by the pile warp threads in a weaving direction, in one embodiment,
the support beam is mounted via a support beam force measuring device for measuring
the force acting in parallel to the weaving plane on the support beam.
[0024] In alternative or in addition to the force measuring device, in one embodiment a
position determination device is provided for determining a position of the tension
roller. A determined position of the tension roller in one embodiment is used for
controlling a rotation of a pile warp beam via which pile warp threads are supplied
to the tension roller in such a way, that the tension roller moves to-and fro about
this determined position within a defined range, for example a determined position,
in which the support elements for the tension roller are oriented almost vertical.
In one embodiment, the position of the tension roller is measured directly. In preferred
embodiments, the position of the tension roller is determined indirectly by measuring
an angular position of the support beam. The angular position of the support beam
in one embodiment is measured using an absolute angular position sensor, for example
an encoder. In other embodiments, a position detector, for example a linear distance
detector, is provided on a frame of the weaving machine, which position detector cooperates
with a cam profile mounted on the support beam for measuring a linear distance between
the cam profile and the position detector, so that the angular position of the support
beam can be determined based on the measured distance between the cam profile and
the position detector.
[0025] The position determination device and the at least one bellow spring can be arranged
at opposite ends of the support beam. In preferred embodiments, the position determination
device and the at least one bellow spring are arranged at the same end of the support
beam.
[0026] In one embodiment, the position determination device is used for determining whether
the tension roller is within a defined range. In other embodiments, in alternative
or in addition a safety detector device is provided for detecting whether a position
of the tension roller is within a defined range, which safety detector device comprising
a sensor and a detection object, wherein one of the sensor and the detection object
is arranged to move with the support beam and the other one is mounted fixed in position
on the frame of the weaving machine. The sensor or the detection object, which is
arranged to move with the support beam, in one embodiment is attached to the support
beam itself. In other embodiments, it is attached to a further element, which is coupled
to the support beam so as to move with the support beam. For example, it could be
attached to the cam profile of the position determination device, to one of the support
elements, to any of the elements of the linkage system, for example the coupling lever,
or to an additional element, which is coupled to the support beam so as to move with
the support beam. The safety detector device and the at least one bellow spring can
be arranged at opposite ends of the support beam. In preferred embodiments, the safety
detector device and the at least one bellow spring are arranged at the same end of
the support beam.
[0027] In preferred embodiments, the pressure of the at least one bellow spring is variable
between a low pressure and a high pressure to allow weaving with different warp tensions,
for example for different weaves. As described above, in use of terry weaving machines,
it is well known to produce a terry towel, which has a first part having terry loops
and which has a second part, for example an end border, which second part is a normal
or flat fabric without terry loops. It is common practice to weave such a second part
with a rather high tension for the pile warp threads. Hence, in one embodiment, the
pile warp threads are guided along the tension roller so as to have a higher tension
when a normal fabric has to be woven, than when a terry fabric has to be woven, wherein
the warp tension is regulated by varying the pressure of the at least one bellow spring.
[0028] In order to allow for a simple adjustment of the tension of the pile warp thread,
in one embodiment at least a first bellow spring and a second bellow spring are provided,
wherein preferably the pressure in the first bellow spring is settable differently
to the pressure in the second bellow spring. With such an embodiment, for example
the first bellow spring is set to a low pressure, so that the resulting pile warp
tension is suitable for weaving the terry fabric, wherein the tension applied in preferred
embodiments is at least essentially constant for allowing the formation of loops of
rather constant height. The second bellow spring is set to a high pressure for weaving
a flat fabric, for example an end border. In one embodiment, the second bellow spring
is mechanically decoupled from the support beam for weaving the terry fabric. In other
embodiments, the second bellow spring is in addition set to a low pressure or even
an at least almost zero pressure when weaving the terry fabric.
[0029] In other words, providing at least two bellow springs offers the advantage that the
pressure of the first bellow spring can be set to the desired low pressure and the
first bellow spring can be regulated to maintain the desired low pressure as constant
as possible, for example to a constant value. This low pressure is present in the
first bellow at least during terry weaving, and preferably also when weaving a flat
fabric. On the other hand, the pressure at the second bellow spring is variable and
set to a high pressure for weaving a flat fabric and set to a low or zero pressure
when weaving a terry fabric. For this purpose, in one embodiment, a suitable pressure
regulator system, in particular a valve system, is provided for supplying a fluid
of high pressure via the regulator system to the second bellow spring when weaving
a normal fabric, and to allow the fluid to escape, for example via an escape valve,
for weaving a terry fabric. In one embodiment, the regulator system comprises a shut-off
valve, which is arranged between a fluid inlet to the second bellow spring and a large
fluid container. For weaving a normal fabric, the shut-off valve is closed in order
to hinder the fluid present in the second bellow spring from escaping the bellow and
from flowing towards the large fluid container, so that the second bellow spring acts
as a spring with a more rigid or stronger characteristic. When providing a second
bellow spring with a relatively small volume, this allows for a rapid increase of
the pressure of the fluid in the second bellow spring.
[0030] In an alternative embodiment, instead of a second bellow spring a mechanical spring
assembly is provided, which is coupled to the supply beam for weaving a flat fabric
and decoupled from the supply beam for weaving the terry fabric.
[0031] In an embodiment, the first bellow spring and the second bellow spring are arranged
at opposite ends of the tension roller.
[0032] According to an embodiment, the support beam is provided at its shell surface with
a positioning element extending in parallel to the support beam axis, and wherein
the support elements are displaceable along the support beam axis and aligned to each
other by means of the positioning element.
[0033] To allow for a sufficient load bearing capacity, it is generally known to provide
a number of support elements, which are distributedly arranged along the support beam.
Preferably, in order to not harm the warp threads that extend within a woven terry
fabric, the support elements are arranged between two towels to be woven next to one
another. Due to this, only warp threads might be damaged that extend between two terry
towels to be woven, and damaged warp threads will not be present in the towel itself.
It is therefore generally known to adjust the number and/or position of the support
elements along the support beam axis depending on a width of a towel to be woven and/or
a number of towels to be woven simultaneously.
[0034] With the positioning element, a position along the axis of the displaceably arranged
support elements can be easily adjusted while the positioning element provides for
a perfect aligning of the support elements to each other. This allows to arrange all
support elements in a same angular position with respect to the support beam. Such
a support beam having a positioning element is advantageous for different types of
backrest assemblies. In such a backrest assembly preferably the tension roller is
loaded by at least one bellow spring. In other embodiments, in such a backrest assembly
having a positioning element, the tension roller is loaded by a mechanical spring
assembly or only loaded by means of an active device for displacing the tension roller.
[0035] In preferred embodiments, the positioning element comprises at least one rail segment,
wherein the support elements are each provided with a guide groove, which guide groove
is shaped complementary in shape to the rail segment and adapted to receive the rail
segment to slidingly connect the associated support element to the support beam. A
rail segment is advantageous for preventing dust accumulation.
[0036] In one embodiment, a positioning element made from a single rail segment, also to
be named as rail, extending over the full length of the support beam is provided.
In other embodiments, the positioning element comprises at least two rail segments
which are arranged aligned to one another and, for example, adjacent or at a small
distance to one another.
[0037] In one embodiment, the support elements are mounted to the rail segment. In preferred
embodiments, the rail segment provides for an alignment, wherein the support elements
are mounted to the support beam in each case by means of a brace assembly surrounding
the support beam, the brace assembly comprising at least a first brace and a second
brace, which first brace and second brace together surround the support beam. This
allows for a secure mounting with a sufficient load bearing capacity.
[0038] According to a second aspect, a terry weaving machine comprising such a backrest
assembly is provided.
[0039] Further, a use of a bellow spring in a backrest assembly for pile warp threads in
a terry weaving machine is shown, which backrest assembly comprises a tension roller
arranged to guide the pile warp threads, wherein the tension roller is loaded by the
bellow spring. Using a bellow spring in a backrest assembly for pile warp threads
in a terry weaving machine is advantageous as it allows for a movement of the tension
roller over a large distance for a movement with the woven fabric. Preferably the
backrest assembly and/or the bellow spring is/are designed such that upon the movement
of the tension roller a pile warp tension at least essentially remains constant.
BRIEF DESCRIPTION OF THE DRAWINGS
[0040] In the following, an embodiment of the invention will be described in detail with
reference to the drawings. Throughout the drawings, the same elements will be denoted
by the same reference numerals. In the schematic drawings
- Fig. 1
- shows a terry weaving machine with a backrest assembly for pile warp threads.
- Fig. 2
- is a perspective view of a backrest assembly for pile warp threads.
- Fig. 3
- is a perspective view of the backrest assembly of Fig. 2 without a frame of the weaving
machine.
- Fig. 4
- shows a detail of the backrest assembly of Fig. 2.
- Fig. 5
- shows in a side view detail of the backrest assembly of Fig. 2 without the frame of
the weaving machine.
- Fig. 6
- shows a position measuring device of the backrest assembly of Fig. 1.
- Fig. 7
- shows in detail a part of a tensioning roller mounted to a support beam by a support
bracket.
- Fig. 8
- shows a detail of the backrest assembly according to a second embodiment similar to
Figs. 2 to 7 seen from another side.
- Fig. 9
- shows a terry weaving machine with a backrest assembly for pile warp threads according
to a third embodiment similar to Fig. 3.
- Fig. 10
- shows an air supply system for a terry weaving machine with a backrest assembly of
Fig. 9.
- Fig. 11
- shows a detail of a terry weaving machine with a backrest assembly according to a
third embodiment.
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0041] Fig. 1 schematically shows a terry weaving machine 1 with a backrest assembly 3 for
pile warp threads 13, which backrest assembly 3 comprises amongst others a tension
roller 16 and a support beam 33. The terry weaving machine shown in Fig. 1 is similar
to the terry weaving machine known from
EP 1888826 B1. A terry weaving machine can be a rapier weaving machine, an air-jet weaving machine
or any other similar type of weaving machine.
[0042] The terry weaving machine 1 shown in Fig. 1 comprises a warp beam 10 with ground
warp threads 11 and a warp beam 12 with pile warp threads 13. The ground warp threads
11 are deflected over a backrest 14 into the weaving plane. The pile warp threads
13 run over a deflector 15 to a tensioning roller 16 and via the tensioning roller
16 into the weaving plane. Both the ground warp threads 11 and the pile warp threads
13 travel to shedding devices indicated by arrows 17.
[0043] Upstream of the backrest 14 for the ground warp threads 11 a stationary deflection
roll 44 is provided, such that the ground warp threads 11 always are guided towards
the backrest 14 with the same angle, irrespective of an amount of ground warp threads
11 wound to the warp beam 10 as indicated by broken lines 11A, 11B. For the same purpose,
a stationary deflection roll 45 is arranged upstream of the deflector 15, such that
the pile warp threads 13 always run in the same direction to the deflector 15, wherein
the path of the pile warp threads 13 is indicated by broken lines 13A, 13B.
[0044] Weft threads (not shown) are inserted into the sheds formed by the ground warp threads
11 and the pile warp threads 13, commonly referred to as warp threads. A reed 19,
which is mounted to and swiveled with a sley 18, brings the inserted weft threads
to a beat-up line. At the beat-up line, the weft threads are tied up by means of the
warp threads 11, 13 when the shed is changed. A woven fabric 20 formed in this way
is drawn off by means of a draw-off roller 21 and then wound onto a fabric beam 22.
In the embodiment shown in Fig. 1, a breast beam 23 and two deflectors 24, 25 are
arranged upstream of the draw-off roller 21, which draw-off roller 21 is driven in
the draw-off direction. The woven fabric 20 deflected downwards by the breast beam
23 out of the weaving plane is deflected by the deflector 25 in such a way that the
same fabric side (bottom side of the fabric) which lies on the breast beam 23 also
lies on the circumferential surface of the draw-off roller 21. In an alternative not
shown, the deflector 25 is omitted an the woven fabric 20 lies with its top side on
the circumferential surface of the draw-off roller 21, and is further guided via another
guide to the fabric beam 22, similar as shown in the embodiment shown in Fig. 12 of
EP 1899515 B1 incorporated herewith by reference.
[0045] The backrest 14 of the ground warp threads 11 and the breast beam 23 may be moved
to and fro as indicated respectively by double-headed arrows A and B. In this embodiment,
the backrest 14 for the ground warp threads 11 is swivelable by means of levers 26
holding its two ends. The levers 26 are coupled to a stationary shaft 40 arranged
coaxial to the axis 48 of the backrest 14 for the ground warp threads 11. The lever
26 which bears the backrest 14, comprises an arm 46, which is held by a spring element
47 which is supported on the frame of the weaving machine. In the embodiment shown
in Fig. 1 the spring element 47 is arranged at the right side of the backrest 14.
In an alternative the spring element 47 can be arranged on the left side of the backrest
14. The breast beam 23 is mounted on both sides via levers 27, which are swivelable
about an axis coaxial with the axis of the deflector 24.
[0046] The levers 26, 27 are acted upon by transmission bars 28, 29, whose respective other
ends are coupled to a swivel arm 30. On either side of the fabric width, such swivel
arms 30 are arranged non-rotatably on a shaft which may be swiveled to and fro by
means of a drive motor 31, for example a stepping motor or a geared motor. By means
of this drive system 32 comprising the levers 26, 27, the transmission bars 28, 29,
the swivel arms 30 and the drive motor 31, the backrest 14 for the ground warp threads
11 and the breast beam 23 may be moved to and fro in the same direction. During this
to-and-fro motion, the woven fabric 20 is displaced relative to the reed 19, which
may be swiveled between a rear position and a front position. In the process, the
distance from the fell of the woven fabric 20 to the beat-up line of the reed 19 is
varied.
[0047] In the embodiment shown, the backrest assembly 3 for the pile warp threads 13, the
design of which will be explained in greater detail below, is not driven by the drive
system 32. However, the tensioning roller 16 is resiliently mounted, such that it
is moveable in a direction, which at least substantially coincides with the weaving
plane. Hereby, the tensioning roller 16 can follow the movement of the woven fabric
20. The tension roller 16 is part of the backrest assembly 3, which further comprises
a support beam 33, wherein the tension roller 16 is supported in parallel to the support
beam 33 by two or more support elements 51.
[0048] If, for example, provision is made for the woven fabric 20 to be moved away from
the reed 19, to the left in Fig. 1, after beat-up of a weft thread to the fell of
the fabric, the next weft threads are not beaten up to the fell, but rather remain
at a distance therefrom. If, for example, the woven fabric 20 with its fell is then
moved back closer to the reed 19 after two to four or more insertions, by moving the
backrest 14 and the breast beam 23 accordingly (to the right in Fig. 1), the reed
19 moves the last inserted weft threads up to the fell on the next beat-up. In the
process, these weft threads slide along the ground warp threads 11, which are relatively
tightly tensioned. The pile warp threads 13 are less tightly tensioned, such that
the weft threads carry the pile warp threads 13 with them during the beat-up movement.
In this way, the respective parts of the pile warp threads 13 are formed into loops.
If the backrest 14 and the breast beam 23 are then swiveled again by means of the
drive motor 31 in such a way that the fell of the woven fabric 20 moves away from
the reed 19 (to the left in Fig. 1), the pile warp threads 13 are tightened. The pile
warp threads 13 then draw the tensioning roller 16 in the direction towards the reed
19, wherein the resilient mounting of the tensioning roller 16 allows a movement of
the tensioning roller 16 in such way that the previously formed loops are not pulled
back out of the woven fabric 20 as the woven fabric 20 is displaced. In preferred
embodiments, the deflector 15 assists in this resilient function, wherein the deflector
15 being to this end of elastic construction. The deflector 15 preferably is a cylindrically
curved spring steel sheet whose edges are attached to a bar, similar as shown in the
embodiment shown in Fig. 3 of
EP 1888825 B1 incorporated herewith by reference. In another embodiment (not shown), the deflector
15 is mounted rotatably and/or provided with a rotary drive.
[0049] Figs. 2 to 7 show an embodiment of a backrest assembly 3 for pile warp threads 13
(see Fig. 1). The backrest assembly 3 shown in Figs. 2 to 7 comprises the support
beam 33, wherein the support beam 33 is mounted to a frame 50 (see Fig. 2) of the
weaving machine 1 (see Fig. 1) so as to be rotatably to-and-fro about a support beam
axis 34 (see Fig. 3) as indicated by a double-headed arrow R in Fig. 2.
[0050] The backrest assembly 3 further comprises the tension roller 16, which tension roller
16 is supported in parallel to the support beam 33 by six support elements 51. In
an embodiment, the tension roller 16 is supported in the support elements 51 so as
to be rotatable about its axis 35. Preferably, the tension roller 16 is supported
in the support elements 51 so as to be not rotatable about its axis 35. The support
elements 51 are mounted fixed in a settable position along the support beam axis 34
to the support beam 33. It will be understood by the person skilled in the art that
the number and relative position of support elements 51 is only by way of example
and can be adjusted for example depending on the number of terry fabrics woven in
parallel.
[0051] The tension roller 16 is further loaded by a bellow spring 52, in particular a rolling-lobe
bellow spring. In the embodiment shown, the bellow spring 52 is coupled to the support
beam 33 by a linkage system 53, for indirectly applying a load to the tension roller
16 via the support beam 33.
[0052] As best shown in the detail of Fig. 4, in the embodiment shown, the linkage system
53 is a four-joint-linkage with a rod 54 extending in parallel to an axial direction
42 of the bellow spring 52 and a coupling lever 55 attached to the support beam 33
to rotate with the support beam 33, wherein the coupling lever 55 is coupled to the
rod 54 at a first joint 56. The linkage system 53 further has an auxiliary lever 57
arranged in parallel to the coupling lever 55, wherein the auxiliary lever 57 is coupled
to the rod 54 at a second joint 58 and mountable to the frame of the weaving machine
so as to be rotatable to-and-fro about an axis 59 parallel to the support beam axis
34 (see Fig. 3). In the embodiment shown, the bellow spring 52 and the rod 54 are
vertically arranged, i.e. the bellow spring 52 extends or contracts in the vertical
direction. The four-joint-linkage system provides a linear movement of the rod 54
along its length direction, i.e. in the embodiment shown in the vertical direction
as indicated by a double-headed arrow C in Fig. 4, and avoids inclinations of the
rod 54. Hence, forces on the bellow spring 52 in other directions than its length
direction, i.e. the vertical direction in the embodiment shown, are avoided.
[0053] In the embodiment shown, the rod 54 is arranged in parallel to the axial direction
42 of the bellow spring 52. This arrangement is advantageous for mounting the bellow
spring 52 to the frame 50. In other embodiments, the rod 54 is arranged collinear
to the axial direction 42 of the bellow spring 52.
[0054] The length of the coupling lever 55 and the position of the first joint 56 are chosen
such that a distance between the force application position of the bellow spring 52
on the coupling lever 55 and the support beam axis 34 (see Fig. 3) is shorter than
a distance between the axis 35 of the tension roller 16 and the support beam axis
34. Therefore, an effective lever-arm for a force applied by the bellow spring 52
is shorter than an effective lever-arm for a resulting force at the tension roller
16. This leverage effect is advantageous as only a low warp tension is required for
the pile warp threads.
[0055] In the embodiment shown, the coupling lever 55 and the support elements 51 are arranged
at an angle of approximately 100°. Hence, a movement direction of the rod 54 coupled
to the coupling lever 55 is almost perpendicular to a movement direction of the tension
roller 16 supported by the support elements 51.
[0056] As best shown in the details of Fig. 4 and 5, in the embodiment shown, the backrest
assembly 3 further comprises a force measuring device 60 for measuring the force acting
on the bellow spring 52. In the embodiment shown, the force measuring device 60 is
arranged below the bellow spring 52, between a support 49 for the bellow spring 52
and a mounting bracket 61, which mounting bracket 61 is fixed to the frame 50 of the
weaving machine. The force measuring device 60 measures the force acting on the bellow
spring 52.
[0057] The force measured by the force measuring device 60 in one embodiment is used for
regulating the warp tension. Preferably, a pressure of the fluid in the bellow spring
52 is also measured for example by means of a pressure sensor (not shown), wherein
the warp tension is regulated based on a measured pressure of the fluid in the bellow
spring 52. The force measured by the force measuring device 60 is then used for calibrating
the value of the warp tension based on the value of the pressure of the fluid in the
bellow spring 52 measured by a pressure sensor.
[0058] As best shown in the detail of Fig. 5 and 6, in the embodiment shown, the backrest
assembly 3 further comprises a position determination device 62 for determining a
position of the tension roller 16. In the embodiment shown, the position of the tension
roller 16 is determined indirectly by measuring an angular position of the support
beam 33. The position determination device 62 of the embodiment shown comprises a
position detector 63 for example a linear distance detector, which is arranged fixed
in position on the frame 50 of the weaving machine 1. A cam profile 64 is mounted
on the support beam 33 to rotate with the support beam 33. The position detector 63
cooperates with the cam profile 64 for measuring a linear distance D between the cam
profile 64 and the position detector 63. As the cam profile 64 rotates with the support
beam 33, the angular position of the support beam 33 can be determined based on the
measured distance D between the cam profile 64 and the position detector 63.
[0059] In the embodiment shown, the position determination device 62 and the bellow spring
52 are arranged at the same end of the support beam 33. In other embodiments, the
position determination device 62 and the bellow spring 52 are arranged at opposite
ends of the support beam 33.
[0060] The support elements 51 are mounted fixed in a settable axial position to the support
beam 33, and in a defined angular position with respect to the support beam 33. As
best seen in Fig. 7, in the embodiment shown the support beam 33 is provided at its
shell surface with a positioning element 65 in the form of a rail segment 66 extending
in parallel to the support beam axis 34, wherein the support elements 51 are each
provided with a guide groove 67, which guide groove 67 is complementary in shape to
the rail segment 66 and adapted to receive the rail segment 66 to slidingly connect
the associated support element 51 in a determined angular position to the support
beam 33. As shown in Fig. 2, in the embodiment shown, the positioning element 65 comprises
several rail segments 66, which are arranged aligned and adjacent to one another.
[0061] For fixing the support elements 51 in a chosen position to the support beam 33, each
support element 51 is further provided with a brace assembly 68 surrounding the support
beam 33. In the embodiment shown, the brace assembly 68 comprises a first brace 69,
which is fixed to the support element 51 by means of two screws 70. The brace assembly
68 further comprises a second brace 71, which is screwed to the first brace 69 with
screws 72 (see Fig. 6) for clamping the support beam 33 between the two braces 69
and 71. The positioning element 65 in one embodiment is provided with marks indicating
predefined positions for the support elements 51.
[0062] It will be understood by the person skilled in the art that other devices for fixing
the support elements 51 can be combined with the backrest assembly 3 having a tension
roller 16 loaded by a bellow spring 52, as well as the brace assembly 68 can be advantageously
used in a backrest assembly 3, wherein the tension roller 16 is not loaded by a bellow
spring 52.
[0063] In one embodiment, the position determination device 62 described above is further
used for determining whether the tension roller 16 is within a defined range, wherein
leaving the defined range causes an emergency stop of the weaving machine 1.
[0064] Fig. 8 shows a detail of the backrest assembly 3 according to a second embodiment.
The backrest assembly 3 of Fig. 8 is similar to that of Figs. 2 to 7, wherein the
same reference numbers are used for the same or similar elements. In the embodiment
shown in Fig. 8, in addition to the position determination device 62 a safety detector
device 36 is provided for detecting whether a position of the tension roller 16 is
within a defined range. The safety detector device 36 comprises a sensor 73 and a
detection object 74, for example a portion of the auxiliary lever 57, wherein the
sensor 73 is mounted fixed in position by means of a fixation plate 37 on a frame
of the weaving machine. It will be understood that the detection object 74 could be
a portion of any part of the linkage system 53. In the embodiment shown, the safety
detector device 36 and the bellow spring 52 are arranged at the same end of the support
beam 33. In other embodiments, the safety detector device 36 and the bellow spring
52 are arranged at opposite ends of the support beam 33.
[0065] In the embodiments shown above, one bellow spring 52 provided. It will be understood
by the person skilled in the art, that instead of one bellow spring 52, two or more
bellow springs could be provided which are arranged at the same or opposite ends of
the support beam 33. In alternative or in addition, each bellow spring or individual
ones of a plurality of bellow springs in one embodiment comprise more than one bellow,
wherein the bellows are coupled via a common linkage system to the support beam 33.
[0066] As generally known, in terry fabrics, it is common to have a first fabric part woven
as a terry fabric followed by a second fabric part woven as a normal or flat fabric,
for example at an end border. For weaving the flat fabric, a higher warp tension of
the pile warp threads is required. Therefore, in one embodiment, the pressure in the
bellow spring 52 is variable between a low pressure for weaving a terry weave and
a high pressure for weaving a flat weave.
[0067] Figs. 9 and 10 show a backrest assembly 3 according to a third embodiment and a fluid
supply system 75 for such a backrest assembly 3, respectively. The backrest assembly
3 of Fig. 9 is similar to that of Figs. 2 to 7, wherein the same reference numbers
are used for the same or similar elements. In the embodiment shown in Fig. 9 and 10,
two bellow springs 52, 152 are provided, which are arranged at opposite ends of the
support beam 33. The bellow springs 52, 152 are each coupled to the support beam 33
via a linkage system 53, 153. Both linkage systems 53, 153 are designed as a four-joint-linkage
with a rod 54, 154 extending in parallel to an axial direction of the bellow spring
52, 152 and a coupling lever 55, 155 attached to the support beam 33 to rotate with
the support beam 33, wherein the coupling lever 55, 155 is coupled to the rod 54,
154 at a first joint 56, 156. Each linkage systems 53, 153 further comprises an auxiliary
lever 57, 157 arranged in parallel to the coupling lever 55, 155, wherein the auxiliary
lever 57, 157 is coupled to the rod 54, 154 at a second joint 58, 158 and mountable
to the frame of the weaving machine so as to be rotatably to-and-fro about an axis
59, 159 parallel to the support beam axis 34 (see Fig. 3).
[0068] In one embodiment, the pressures within the two bellow springs 52, 152 at all times
are set so as to be almost identical, in other words at least within limits identical.
[0069] In preferred embodiments, the pressure in the first bellow spring 52 is set differently
to the pressure in the second bellow spring 152. For example the first bellow spring
52 is set to a low pressure, so that the resulting pile warp tension is suitable for
weaving the terry fabric, the pressure in the first bellow spring 52 is kept constant
for all weaving operations. The pressure in the second bellow spring 152 is variable.
In one embodiment, the pressure in the second bellow spring 152 is set to a high pressure
for weaving a flat fabric, for example an end border, and set to a low pressure or
even an at least almost zero pressure when weaving the terry fabric.
[0070] In the embodiment shown in Fig. 9, each bellow spring 52, 152 is mounted via a force
measuring device 60, 160 to the frame 50 of the weaving machine. Further, a position
determination device 62 is arranged at the side of the support beam 33 at which the
first bellow spring 52 is provided. It will be understood that the position determination
device 62 could also be arranged at the opposite side of the support beam 33 at which
the second bellow spring 152 is provided. In still another embodiment, no position
determination device 62 is provided.
[0071] For regulating the variable pressure of the second bellow spring 152 as well as for
regulating the pressure of the first bellow spring 52 in order to achieve a desired
warp tension, in the embodiment shown the fluid supply system 75 as shown in Fig.
10 is provided. In the embodiment shown, a pressure in the two bellow springs 52,
152 is regulated in the same way but by independent elements to allow for an independent
pressure setting.
[0072] The fluid supply system 75 is connected to a fluid supply 76, in particular an air
supply. Between the fluid supply 76 and the bellow spring 52, 152 in each case is
provided a controlled pressure regulator system 77, 177 allowing a controllable fluid
feed to the bellow spring 52, 152 or a controllable fluid escape from the bellow spring
52, 152. Downstream of the pressure regulator system 77, 177, a fluid container 78,
178 such as an airtank is provided, which is in fluid communication with the associated
bellow spring 52, 152 via a controlled shut-off valve 79, 179. The pressure downstream
of the pressure regulator system 77, 177 is measured using a pressure sensor 80, 180,
also to be named as a pressure gauge.
[0073] The pressure in the first bellow spring 52 can be set with the shut-off valve 79
open, i.e. with the bellow spring 52 in fluid communication with the fluid container
78. The pressure is set by the pressure regulator system 77 to a low value suitable
for weaving a terry fabric.
[0074] As described above, in one embodiment, the pressure in the second bellow spring 152
is set to a high pressure for weaving a flat fabric, for example an end border, and
set to a low pressure or even an at least almost zero pressure when weaving the terry
fabric. For setting the pressure in the second bellow spring 152 to a low value, the
pressure can be set with the shut-off valve 179 open, i.e. with the second bellow
spring 152 in fluid communication with the fluid container 178 as described for the
first bellow spring 52. In alternative, the pressure regulator system 177 is controlled
so that fluid can escape from the bellow spring 152, so that no force is applied by
the second bellow spring 152 to the tension roller 16 (see Fig. 9). For this purpose,
the shut-off valve 179 is preferably closed, so that the fluid present in the second
bellow spring 152 can escape rather fast out of the bellow spring 152, while the pressure
present in the fluid container 178 remains. In order to set the pressure to a high
value, in one embodiment the pressure regulator system 177 is controlled so that fluid
flows from the fluid supply 76 to the bellow spring 152, for example when the shut-off
valve 179 is closed so that the supplied fluid is hindered from flowing towards the
large fluid container 178. In result, the pressure in the bellow spring 152 can increase
rather fast. Further, when the shut-off valve 179 is closed, the second bellow spring
152 acts as a spring with a more rigid or stronger characteristic. In particular,
when providing a second bellow spring 152 with a relatively small volume, this allows
for a rapid increase of the pressure of the fluid in the second bellow spring 152.
[0075] Fig. 11 shows a detail of a terry weaving machine 1 with a backrest assembly 3 according
to a third embodiment. The terry weaving machine 1 and the backrest assembly 3 shown
in Fig. 11 are similar to the terry weaving machine 1 and the backrest assembly 3
shown in Fig. 1. Therefore, identical reference signs are used for the same or similar
elements and a detailed description of such elements is omitted.
[0076] The backrest assembly 3 for pile warp threads 13 comprises a support beam 33 and
a tension roller 16, which tension roller 16 is supported in parallel to the support
beam 33 by support elements 51 so as to rotate with the support beam 33. The tension
roller 16 shown in Fig. 11 has an essentially semicircular shape and is mounted in
a non-rotatable manner to the support elements 51. Upstream of the tension roller
16, the pile warp threads 13 are guided along the support beam 33, wherein the support
beam 33 deflects the pile warp threads 13 so as to be guided towards the elements
arranged downstream thereof at an angle, which does not depend on the remaining amount
of pile warp threads 13 on the pile warp beam 12.
[0077] In addition, in the embodiment shown in Fig. 11, for tensioning the pile warp threads
13 a deflection beam 39 and an auxiliary tension element 38 are provided. The deflection
beam 39 is mounted fixed in position to the frame 50 of the weaving machine 1. The
tension roller 16 and the auxiliary tension element 38 are arranged at either side
of the deflection beam 39. The auxiliary tension element 38 is supported in parallel
to the support beam 33 by the support elements 51 so as to rotate with the support
beam 33. The person skilled in the art will understand that in an alternative arrangement,
a deflection beam mounted fixed in position may be arranged downstream of the tension
roller 16.
[0078] In the embodiment shown, the tension roller 16 and the auxiliary tension element
38 are arranged at common support elements 51 such that the number of support elements
51 is minimized. In other embodiments, the tension roller 16 and the auxiliary tension
element 38 are at least partially arranged on different support elements 51. In the
embodiment shown, the tension roller 16 and the auxiliary tension element 38 are similar
or identical in design. In other embodiments, the tension roller 16 and the auxiliary
tension element 38 differ in design.
[0079] A bellow spring 52 is coupled to the support beam 33 via a coupling lever 55 for
loading the tension roller 16 and the auxiliary tension element 38.
[0080] In the embodiments shown, the backrest assembly is a passive device without a drive
for actively displacing the tension roller. In another embodiment, a drive device
is assigned to the backrest assembly for the pile warp threads comprising the tension
roller for an active displacement of the tension roller, which drive device can be
similar as the drive device shown in the embodiment shown in Fig. 3 of
EP 1888825 B1. In still another embodiment, a drive device is assigned to the bellow spring for
an active displacement of the bellow spring, thereby causing a displacement of the
tension roller.
1. Backrest assembly for pile warp threads (13) in a terry weaving machine (1), comprising
a tension roller (16) and a support beam (33), wherein the tension roller (16) is
arranged to guide the pile warp threads (13), wherein the support beam (33) is mountable
to a frame (50) of the weaving machine (1) so as to be rotatable to-and-fro about
a support beam axis (34), and wherein the tension roller (16) is supported in parallel
to the support beam (33) by two or more support elements (51), which support elements
(51) are mounted fixed in position to the support beam (33), wherein the tension roller
(16) is loaded by at least one bellow spring (52, 152), wherein at least one bellow
spring (52, 152) is coupled to the support beam (33) by a linkage system (53, 153)
having at least a coupling lever (55, 155) attached to the support beam (33) to rotate
with the support beam (33), characterized in that a distance between the force application position of the at least one bellow spring
(52, 152) on the coupling lever (55, 155) and the support beam axis (34) is shorter
than or equal to a distance between an axis (35) of the tension roller (16) and the
support beam axis (34).
2. Backrest assembly according to claim 1, characterized in that the coupling lever (55, 155) and the support elements (51) are arranged at an angle
of approximately 75° to approximately 105°.
3. Backrest assembly according to claim 1 or 2, characterized in that the linkage system (53) is a four-joint-linkage comprising a rod (54, 154) extending
in an axial direction of the at least one bellow spring (52, 152) or in parallel to
an axial direction of the at least one bellow spring (52, 152), the coupling lever
(55, 155) being coupled to the rod (54, 154) at a first joint (56, 156) and attached
to the support beam (33) to rotate with the support beam (33), and an auxiliary lever
(57, 157) arranged in parallel to the coupling lever (55, 155), the auxiliary lever
(57, 157) being coupled to the rod (54, 154) at a second joint (58, 158) and mountable
to the frame (50) of the weaving machine (1) so as to be rotatably to-and-fro about
an axis (59, 159) parallel to the support beam axis (34).
4. Backrest assembly according to any one of claims 1 to 3, characterized in that an auxiliary tension element (38) and a deflection beam (39) are provided, wherein
the auxiliary tension element (38) is supported in parallel to the support beam (33)
by two or more support elements, wherein the deflection beam (33) is mounted fixed
in position to the frame (50) of the weaving machine (1) between the tension roller
(16) and the auxiliary tension element (38), and wherein the deflection beam (33),
the tension roller (16) and the auxiliary tension element (38) are arranged for guiding
pile warp threads (13).
5. Backrest assembly according to any one of claims 1 to 4, characterized in that the at least one bellow spring (52, 152) is mounted via a force measuring device
(60, 160) for measuring the force acting on the bellow spring (52, 152).
6. Backrest assembly according to any one of claims 1 to 5, characterized in that a position determination device (62) is provided for determining a position of the
tension roller (16), wherein in particular the position of the tension roller (16)
is determined indirectly by measuring an angular position of the support beam (33).
7. Backrest assembly according to claim 6, characterized in that the position determination device (62) and the at least one bellow spring (52, 152)
are arranged at an end of the support beam (33).
8. Backrest assembly according to any one of claims 1 to 7, characterized in that a safety detector device (36) is provided for detecting whether a position of the
tension roller (16) is within a defined range, which safety detector device (36) comprising
a sensor (73) and a detection object (74), wherein one of the sensor (73) and the
detection object (74) is arranged to move with the support beam (33) and the other
one is mounted fixed in position on the frame (50) of the weaving machine (1).
9. Backrest assembly according to any one of claim 1 to 8, characterized in that the pressure of the at least one bellow spring (52, 152) is variable between a low
pressure and a high pressure to allow weaving with different warp tensions.
10. Backrest assembly according to any one of claims 1 to 9, characterized in that a first bellow spring (52) and a second bellow spring (152) are provided, wherein
preferably the pressure in the first bellow spring (52) is settable differently to
the pressure in the second bellow spring (152).
11. Backrest assembly according claim 10, characterized in that the first bellow spring (52) and the second bellow spring (152) are arranged at opposite
ends of the tension roller (16).
12. Backrest assembly according to any one of claims 1 to 11, characterized in that the at least one bellow spring (52, 152) is an air spring, in particular a rolling-lobe
air spring.
13. Backrest assembly according to any one of claims 1 to 12, characterized in that the support beam (33) is provided at its shell surface with a positioning element
(65) extending in parallel to the support beam axis (34), and wherein the support
elements (51) are displaceable along the support beam axis (34) and aligned to each
other by means of the positioning element (65).
14. Backrest assembly according claim 13, characterized in that the positioning element (65) comprises at least one rail segment (66), wherein the
support elements (51) are each provided with a guide groove (67), which guide groove
(67) is shaped complementary in shape to the rail segment (66) and adapted to receive
the rail segment (66) to slidingly connect the associated support element (51) to
the support beam (33).
15. Backrest assembly according claim 14, characterized in that the positioning element (65) comprises at least two rail segments (66) which are
arranged aligned to one another, and in particular adjacent or at a distance to one
another.
16. Backrest assembly according claim 13, 14 or 15, characterized in that the support elements (51) are mounted to the support beam (33) in each case by means
of a brace assembly (68) surrounding the support beam (33), in particular the brace
assembly (68) comprising at least a first brace (69) and a second brace (71).
17. Terry weaving machine comprising a backrest assembly (3) according to any one of claims
1 to 16.
1. Streichbaumanordnung für Polkettfäden (13) in einer Frottierwebmaschine (1), umfassend
eine Spannrolle (16) und einen Stützbaum (33), wobei die Spannrolle (16) zum Führen
der Polkettfäden (13) angeordnet ist, wobei der Stützbaum (33) so an einem Rahmen
(50) der Webmaschine (1) montiert ist, dass er hin und her um eine Stützbaumachse
(34) drehbar ist, und wobei die Spannrolle (16) parallel zum Stützbaum (33) durch
zwei oder mehr Stützelemente (51) abgestützt wird, welche Stützelemente (51) ortsfest
am Stützbaum (33) montiert sind, wobei die Spannrolle (16) durch mindestens eine Balgfeder
(52, 152) belastet ist, wobei mindestens eine Balgfeder (52, 152) mit dem Stützbaum
(33) durch ein Verbindungssystem (53, 153) gekoppelt ist, das mindestens einen Kupplungshebel
(55, 155) aufweist, der am Stützbaum (33) befestigt ist, um mit dem Stützbaum (33)
zu drehen, dadurch gekennzeichnet, dass ein Abstand zwischen der Kraftangriffsposition der mindestens einen Balgfeder (52,
152) am Kupplungshebel (55, 155) und der Stützbaumachse (34) kürzer oder gleich einem
Abstand zwischen einer Achse (35) der Spannrolle (16) und der Stützbaumachse (34)
ist.
2. Streichbaumanordnung nach Anspruch 1, dadurch gekennzeichnet, dass der Kupplungshebel (55, 155) und die Stützelemente (51) in einem Winkel von etwa
75° bis etwa 105° angeordnet sind.
3. Streichbaumanordnung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass das Verbindungssystem (53) ein Viergelenkgestänge ist, das eine Stange (54, 154)
umfasst, die sich in einer axialen Richtung der mindestens einen Balgfeder (52, 152)
oder parallel zu einer axialen Richtung der mindestens einen Balgfeder (52, 152) erstreckt,
der Kupplungshebel (55, 155) mit der Stange (54, 154) an einem ersten Gelenk (56,
156) gekoppelt ist und am Stützbaum (33) befestigt ist, um mit dem Stützbaum (33)
zu drehen, und einen Hilfshebel (57, 157), der parallel zum Kupplungshebel (55, 155)
angeordnet ist, der Hilfshebel (57, 157) mit der Stange (54, 154) an einem zweiten
Gelenk (58, 158) gekoppelt ist und so am Rahmen (50) der Webmaschine (1) montiert
ist, dass er um eine Achse (59, 159) hin und her parallel zur Stützbaumachse (34)
drehbar ist.
4. Streichbaumanordnung nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, dass ein Hilfsspannelement (38) und ein Umlenkbaum (39) vorgesehen sind, wobei das Hilfsspannelement
(38) durch zwei oder mehr Stützelemente parallel zum Stützbaum (33) abgestützt wird,
wobei der Umlenkbaum (33) ortsfest am Rahmen (50) der Webmaschine (1) zwischen der
Spannrolle (16) und dem Hilfsspannelement (38) montiert ist, und wobei der Umlenkbaum
(33), die Spannrolle (16) und das Hilfsspannelement (38) zum Führen von Polkettfäden
(13) angeordnet sind.
5. Streichbaumanordnung nach einem der Ansprüche 1 bis 4, dadurch gekennzeichnet, dass die mindestens eine Balgfeder (52, 152) über eine Kraftmessvorrichtung (60, 160)
zum Messen der auf die Balgfeder (52, 152) wirkenden Kraft montiert ist.
6. Streichbaumanordnung nach einem der Ansprüche 1 bis 5, dadurch gekennzeichnet, dass eine Positionsbestimmungsvorrichtung (62) zum Bestimmen einer Position der Spannrolle
(16) vorgesehen ist, wobei insbesondere die Position der Spannrolle (16) indirekt
durch Messen einer Winkelposition des Stützbaums (33) bestimmt wird.
7. Streichbaumanordnung nach Anspruch 6, dadurch gekennzeichnet, dass die Positionsbestimmungsvorrichtung (62) und die mindestens eine Balgfeder (52, 152)
an einem Ende des Stützbaums (33) angeordnet sind.
8. Streichbaumanordnung nach einem der Ansprüche 1 bis 7, dadurch gekennzeichnet, dass eine Sicherheitserfassungsvorrichtung (36) vorgesehen ist, zum Erfassen ob eine Position
der Spannrolle (16) innerhalb eines definierten Bereichs liegt, welche Sicherheitserfassungsvorrichtung
(36) einen Sensor (73) und ein Erfassungsobjekt (74) umfasst, wobei von dem Sensor
(73) und dem Erfassungsobjekt (74) einer angeordnet ist, um sich mit dem Stützbaum
(33) zu bewegen, und der andere ortsfest am Rahmen (50) der Webmaschine (1) montiert
ist.
9. Streichbaumanordnung nach einem der Ansprüche 1 bis 8, dadurch gekennzeichnet, dass der Druck der mindestens einen Balgfeder (52, 152) zwischen einem niedrigen Druck
und einem hohen Druck variabel ist, um das Weben mit unterschiedlichen Kettspannungen
zu ermöglichen.
10. Streichbaumanordnung nach einem der Ansprüche 1 bis 9, dadurch gekennzeichnet, dass eine erste Balgfeder (52) und eine zweite Balgfeder (152) vorgesehen sind, wobei
vorzugsweise der Druck in der ersten Balgfeder (52) unterschiedlich zum Druck in der
zweiten Balgfeder (152) einstellbar ist.
11. Streichbaumanordnung nach Anspruch 10, dadurch gekennzeichnet, dass die erste Balgfeder (52) und die zweite Balgfeder (152) an gegenüberliegenden Enden
der Spannrolle (16) angeordnet sind.
12. Streichbaumanordnung nach einem der Ansprüche 1 bis 11, dadurch gekennzeichnet, dass die mindestens eine Balgfeder (52, 152) eine Luftfeder, insbesondere eine Rollbalg-Luftfeder,
ist.
13. Streichbaumanordnung nach einem der Ansprüche 1 bis 12, dadurch gekennzeichnet, dass der Stützbaum (33) an seiner Mantelfläche mit einem sich parallel zur Stützbaumachse
(34) erstreckenden Positionierelement (65) versehen ist, und wobei die Stützelemente
(51) entlang der Stützbaumachse (34) verschiebbar sind und mittels des Positionierelements
(65) zueinander ausgerichtet sind.
14. Streichbaumanordnung nach Anspruch 13, dadurch gekennzeichnet, dass das Positionierelement (65) mindestens ein Schienensegment (66) umfasst, wobei die
Stützelemente (51) jeweils mit einer Führungsnut (67) vorgesehen sind, welche Führungsnut
(67) formkomplementär zum Schienensegment (66) geformt ist und angepasst ist, um das
Schienensegment (66) aufzunehmen, um das zugehörige Stützelement (51) gleitend mit
dem Stützbaum (33) zu verbinden.
15. Streichbaumanordnung nach Anspruch 14, dadurch gekennzeichnet, dass das Positionierelement (65) mindestens zwei Schienensegmente (66) umfasst, die zueinander
ausgerichtet angeordnet sind, und insbesondere benachbart oder zueinander beabstandet
sind.
16. Streichbaumanordnung nach Anspruch 13, 14 oder 15, dadurch gekennzeichnet, dass die Stützelemente (51) am Stützbaum (33) jeweils mittels einer den Stützbaum (33)
umgebenden Strebenanordnung (68) montiert sind, die Strebenanordnung (68) umfassend
insbesondere mindestens eine erste Strebe (69) und eine zweite Strebe (71).
17. Frottierwebmaschine umfassend eine Streichbaumanordnung (3) nach einem der Ansprüche
1 bis 16.
1. Ensemble porte-fils pour fils de chaîne à poils (13) dans une machine à tisser d'éponge
(1), comprenant un rouleau tendeur (16) et une poutre de support (33), le rouleau
tendeur (16) est disposé pour guider les fils de chaîne à poils (13), dans lequel
la poutre de support (33) peut être montée sur un châssis (50) de la machine à tisser
(1) de manière rotatif en va-et-vient autour d'un axe de poutre de support (34), et
dans lequel le rouleau tendeur (16) est supporté parallèlement à la poutre de support
(33) par deux ou plusieurs éléments de support (51), lesquels éléments de support
(51) sont montés fixe en position sur la poutre de support (33), dans lequel le rouleau
tendeur (16) est chargé par au moins un ressort à soufflet (52, 152), dans lequel
au moins un ressort à soufflet (52, 152) est couplé à la poutre de support (33) par
un système de liaison (53, 153) ayant au moins un levier d'accouplement (55, 155)
fixé à la poutre de support (33) pour tourner avec la poutre de support (33), caractérisé en ce qu'une distance entre la position d'application de force d'au moins un ressort à soufflet
(52, 152) sur le levier d'accouplement (55, 155) et l'axe de la poutre de support
(34) est inférieur ou égal à une distance entre un axe (35) du rouleau tendeur (16)
et l'axe de la poutre de support (34).
2. Ensemble porte-fils selon la revendication 1, caractérisé en ce que le levier d'accouplement (55, 155) et les éléments de support (51) sont disposés
selon un angle d'environ 75° à environ 105°.
3. Ensemble porte-fils selon la revendication 1 ou 2, caractérisé en ce que le système de liaison (53) est une liaison à quatre articulations comprenant une
tige (54, 154) s'étendant dans une direction axiale d'au moins un ressort à soufflet
(52, 152) ou parallèlement à une direction axiale d'au moins un ressort à soufflet
(52, 152), le levier d'accouplement (55, 155) étant couplé à la tige (54, 154) au
niveau d'une première articulation (56, 156) et fixé à la poutre de support (33) pour
tourner avec la poutre de support (33), et un levier auxiliaire (57, 157) disposé
parallèlement au levier d'accouplement (55, 155), le levier auxiliaire (57, 157) étant
couplé à la tige (54, 154) au niveau d'une deuxième articulation (58, 158) et peut
être monté sur le châssis (50) d'une machine à tisser (1) de manière rotatif en va-et-vient
autour d'un axe (59, 159) parallèle à l'axe de la poutre de support (34).
4. Ensemble porte-fils selon l'une quelconque des revendications 1 à 3, caractérisé en ce qu'un élément tendeur auxiliaire (38) et une poutre de renvoi (39) sont prévus, dans
lequel l'élément tendeur auxiliaire (38) est supporté parallèlement à la poutre de
support (33) par deux ou plusieurs éléments de support, dans lequel la poutre de renvoi
(33) est montée fixe en position sur le châssis (50) de la machine à tisser (1) entre
le rouleau tendeur (16) et l'élément tendeur auxiliaire (38), et dans lequel la poutre
de renvoi (33), le rouleau tendeur (16) et les éléments tendeur auxiliaires (38) sont
disposés pour guider des fils de chaîne à poils (13).
5. Ensemble porte-fils selon l'une quelconque des revendications 1 à 4, caractérisé en ce que l'au moins un ressort à soufflet (52, 152) est monté via un dispositif de mesure
de force (60, 160) pour mesurer la force agissant sur le ressort à soufflet (52, 152).
6. Ensemble porte-fils selon l'une quelconque des revendications 1 à 5, caractérisé en ce qu'un dispositif de détermination de position (62) est prévu pour déterminer une position
du rouleau tendeur (16), dans lequel en particulier la position du rouleau tendeur
(16) est déterminée indirectement par mesurer une position angulaire de la poutre
de support (33).
7. Ensemble porte-fils selon la revendication 6, caractérisé en ce que le dispositif de détermination de position (62) et l'au moins un ressort à soufflet
(52, 152) sont disposés à une extrémité de la poutre de support (33).
8. Ensemble porte-fils selon l'une quelconque des revendications 1 à 7, caractérisé en ce qu'un dispositif détecteur de sécurité (36) est prévu pour détecter si une position du
rouleau tendeur (16) se trouve dans une zone définie, lequel dispositif détecteur
de sécurité (36) comprenant un capteur (73) et un objet de détection (74), dans lequel
un du capteur (73) et de l'objet de détection (74) est disposé pour se déplacer avec
la poutre de support (33) et l'autre est monté fixe en position sur le châssis (50)
de la machine à tisser (1).
9. Ensemble porte-fils selon l'une quelconque des revendications 1 à 8, caractérisé en ce que la pression d'au moins un ressort à soufflet (52, 152) est variable entre une basse
pression et une haute pression pour permettre de tisser avec différentes tensions
de chaîne.
10. Ensemble porte-fils selon l'une quelconque des revendications 1 à 9, caractérisé en ce qu'un premier ressort à soufflet (52) et un deuxième ressort à soufflet (152) sont prévus,
dans lequel la pression dans le premier ressort à soufflet (52) est de préférence
réglable différemment de la pression dans le deuxième ressort à soufflet (152).
11. Ensemble porte-fils selon la revendication 10, caractérisé en ce que le premier ressort à soufflet (52) et le deuxième ressort à soufflet (152) sont disposés
aux extrémités opposées du rouleau tendeur (16).
12. Ensemble porte-fils selon l'une quelconque des revendications 1 à 11, caractérisé en ce que l'au moins un ressort à soufflet (52, 152) est un ressort pneumatique, en particulier
un ressort pneumatique à lobes roulants.
13. Ensemble porte-fils selon l'une quelconque des revendications 1 à 12, caractérisé en ce que la poutre de support (33) est prévue au niveau de sa surface de l'enveloppe d'un
élément de positionnement (65) s'étendant parallèlement à l'axe de la poutre de support
(34), et dans lequel les éléments de support (51) sont déplaçables le long de l'axe
de la poutre de support (34) et alignés les uns par rapport aux autres au moyen de
l'élément de positionnement (65).
14. Ensemble porte-fils selon la revendication 13, caractérisé en ce que l'élément de positionnement (65) comprend au moins un segment de rail (66), dans
lequel les éléments de support (51) sont prévus chacun d'une rainure de guidage (67),
laquelle rainure de guidage (67) est de forme complémentaire à la forme du segment
de rail (66) et adapté à recevoir le segment de rail (66) pour relier coulissant l'élément
de support (51) associé à la poutre de support (33).
15. Ensemble porte-fils selon la revendication 14, caractérisé en ce que l'élément de positionnement (65) comprend au moins deux segments de rail (66) disposés
alignés l'un par rapport à l'autre, et en particulier adjacents ou à distance l'un
par rapport à l'autre.
16. Ensemble porte-fils selon la revendication 13, 14 ou 15, caractérisé en ce que les éléments de support (51) sont montés sur la poutre de support (33) dans chaque
cas au moyen d'un ensemble de renforts (68) entourant la poutre de support (33), en
particulier l'ensemble de renfort (68) comprenant au moins un premier renfort (69)
et un deuxième renfort (71).
17. Une machine à tisser d'éponge comprenant un ensemble porte-fils (3) selon l'une quelconque
des revendications 1 à 16.