[0001] This invention relates to a winding device forthe winding of predetermined lengths
of thread and tape materials in which the material is wound on to a spool, to a pre-determined
maximum diameter of winding, said winding device having a first measuring device having
a measuring wheel to determine the length of material, a second measuring device to
determine the number of revolutions of the spool, a register for the digital registration
of the values given during production of a reference spool, and a comparator device
which compares the stored values with the values arising during the manufacture of
a production spool and which, when discrepancies arise, controls a thread brake through
which the material runs, which thread brake has two opposing brake plates of which
the pressure of one brake plate in the direction of the opposing brake plate is controlled
in relation to the measured discrepancy determined by the comporator device.
[0002] Such a winding device is already known from DE-AS 17 74 229. There, information carriers
are used for the measuring of the length and the diameter of the winding material,
said information carriers are driven by rolls of the winding device. Here it is of
disadvantage that the rolls themselves may have a slip which may lead to discrepancies.
Furthermore, at the known winding device the thread brake is operated by means of
rods setting out from a differential gear which due to mechanical backlash may lead
to discrepancies. The thread brake is operated furthermore by a spring loaded brake
shoe which may also lead to discrepancies because the spring force does not proceed
in proportion to the brake stroke of the rods which operate the thread brake. The
purpose of the invention is to form a winding device in the prior described manner
as such that an essential and cost-saving working method.will be achieved.
[0003] The solution of the task is achieved in that the determination of the values is achieved
without contact with the measuring wheel and spool by transducers each of which transmit
a digital signal to the respective digital register which provide an input to a microprocessor
whose output acts on the thread brake which is electro-magnetically controlled by
the control signal formed by the microprocessor, in which the movable brake plate
is directly coupled to the anchor, of the electromagnet.
[0004] By the means the measurement results are registered free from backlash and contact
and act over a digital signal processing directly on the thread brake. The moveable
brake shoe of the thread brake is directly coupled with the armature of the electromagnet
and, in this manner, causes a brake reaction which is always reproduceable and which,
to a large extent, proceeds proportionally with regard to the measurement results.
By means of this simple designed device, the winding material may be processed more
precisely and economically.
[0005] Preferably, the apparatus of the invention includes a microprocessor system for storing
the reference data, for processing the production data, and for comparing the production
data with the reference data in orderto provide the output signal for regulating the
tensioning means. In this case, the reference data is stored in the memory of the
microprocessor system when the reference winding is made on the winding machine. For
example, for each ten revolutions of the winding drive, the output of a transducer
associated with either the measuring wheel, or the thread guide which contacts the
winding, is stored. When the production winding is made, the output of the transducer
is compared with the stored values, for each ten revolutions of the winding drive,
in order to determine if there is any difference orerror. Ifthere is, an error signal
is produced and this is supplied to the adjustable tensioning means in order to regulate
the tension so as to compensate for the difference. For example, if an insufficient
length of material is present on the production winding after a given number of revolutions
of the winding drive, the control signal causes the tensioning means to reduce the
tension on the material. With a reduced tension, the material is not so tightly wound
and hence more material is drawn onto the production winding for each revolution of
the winding drive. Conversely, the tension is increased in order to produce a tighter
winding if too much material has been wound after a given number of revolutions of
the winding drive. The situation is checked at intervals (e.g. on every 10th revolutions
of the winding drive) to see if the error has been corrected. If not, the tension
is regulated until the correct amount of materials has been fed to the production
winding. Thus, the winding process is periodically checked throughout the complete
winding cycle so as to ensure that, at the end of the cycle, the production winding
has the required length and cross-section, or the required cross-section.
[0006] Clearly, the intervals at which the situation is checked can be made so short that
the tension of the material is regulated in an almost continuous manner.
[0007] In the case of using a microprocessor control system, characteristic reference data
may be placed in store for reference windings of different shapes. In the case of
spools of sewing threads, this data may be stored with reference to a serial number
which represents the length of thread on a spool of a given shape. Thus, the apparatus
can be programmed so that the serial number is entered into the microprocessor system
whereupon the correct reference data characteristics are available from the store
so as to provide the correct form of control for making production spools of a specific
type.
[0008] Examples of the invention will now be described with reference to the accompanying
drawings, in which:
Fig. 1 diagrammatically illustrates different characteristic curves which relate to
the number of turns and to either the length, or the cross-section of a reference
winding.
Fig. 2 shows one example of the invention, in schematic form, which uses a measuring
wheel.
Fig. 3 is a cross-sectional view of a preferred form of thread brake for use in the
arrangements of Fig. 2.
[0009] Embodiments of the invention will now be described with reference to winding sewing
thread on a spool to make a production winding having a similar length and diameter.
However it will be understood that the arrangement described can be modified or used
as a basis for winding other material either with, or without a core (such as a spool).
[0010] Fig. 1 is a graph illustrating typical characteristic curves (a) and (b) which relate
a measured length (L) of thread to the number of revolutions (n) of a spool on which
the thread is wound. The meaning of the graph will become apparent with regard to
the following description of the arrangement shown in Fig. 2.
[0011] Fig. 2 schematically illustrates one form of a winding machine which embodies the
invention. Thread 10 passes through an adjustable thread brake 1 to a measuring wheel
11. The thread 10 passes once around the periphery of the measuring wheel 11 and then
it passes down towards and through a thread guide 12. The thread passes from the guide
12 onto a spool 13 which is rotated at high speed by a drive (not shown). The measuring
wheel and the spool 13 both rotate in the direction of the arrows shown on the drawing.
[0012] A transducer 14 provides a pulsed output signal representing the number of revolution
of the measuring wheel 11. The transducer 14 may be of the type which responds, for
example, to the passage of a small magnet 15 attached the periphery of the measuring
wheel 11. Alternatively, it may be of a photoelectric type wherein a beam of light
is periodically interrupted by the passage of a shutter as the wheel 11 rotates. A
similar transducer 16 senses the passage of a permanent magnet 17 which is attached
to the drive (not shown) of the spool 13. Transducer 16 also provides a pulse output
signal representing the number of revolutions of the spool 13. The outputs from transducers
14, 16 are converted from analog to digital form (by an A/D converter not shown) and
the corresponding digital signals are supplied to respective registers 18, 19. Registers
18, 19 are both connected to, or are part of a microprocessing system 20 which includes
a microprocessing unit together with a suitable memory. An output from the microprocessor
system 20 is connected to the adjustable thread brake 1 for supplying a control signal
to adjust the clamping pressure of the brake, and hence to regulate the tension of
the thread 10 passes to the measuring wheel 11 and hence to the spool 13.
[0013] The thread brake 1 is preferably of the type described in our Copending European
Patent Application No. 0045643. This type of thread brake is generally illustrated
in Fig. 3. It employs a pair of circular braking discs 2, 3 which are freely and rotatably
mounted on a sleeve 8 adjacent an end face of an electromagnet 4. The electromagnet
4 has a cylindrical body, the longitudinal axis of which is coaxial with the braking
discs 2, 3. Both discs 2, 3 have a central aperture to receive the sleeve 8, the sleeve
being made of wear- resistant material and being mounted on a pin 8a passing through
the cylindrical magnet. A retaining ring 9 is fitted to the end of the sleeve 8 to
retain the discs 2, 3 whilst allowing them to move axially on the sleeve 8. The central
aperture in disc 3 is countersunk. As the bearing face of each disc 2, 3 on sleeve
8 is small, both discs can tilt with respect to the longitudinal axis of the sleeve
8. Disc 2, which is nearest to the end face of the electromagnet 4, is generally plain,
but disc 3 has a series of countersunk apertures extending radially around its central
aperture, the countersunk side of the apertures facing outwardly away from the electromagnet
4. The other side of disc 3, which faces the opposite side of disc 2, is also slightly
concave. The thread passes between the opposed major faces of the braking discs 2,
3 and around a part of the circumference of sleeve 8. The thread thereby makes an
angle with the sleeve 8 (preferably between 110 to 160 degrees) and this prevents
the disc 3 from tilting round the thread (e.g. where the thread acts as a tilt bearing).
The angle of the thread also serves to avoid direct contact between the two discs
2, 3. The thread is thereby clamped between the discs when the electromagnet 4 is
energised. The outermost disc 3, with the radial apertures, is made of ferromagnetic
material, but the other disc is made of nonferromagnetic material. The radial apertures
7, in the ferromagnetic disc 3 provide an exist for material abraded from the thread,
due to friction between the thread and the thread brake. The electromagnet 4 is controlled
by varying a supply of direct current thereto whereby the braking pressure is adjusted
and hence the tension of the thread is regulated.
[0014] The mode of operation of the arrangement shown in Fig. 2 will now be described. It
will be assumed that the same thread and winding machine is used for winding thread
on a reference spool as well as on a production spool.
[0015] Thread is first wound onto the reference spool 13 so that the reference spool contains
a predetermined length of thread and so that the thread windings have a predetermined
outer diameter. This may be achieved by winding thread on reference spools with different
tension, in order to select the reference spool with the optimum thread winding diameter.
Conventional means are employed, such as a reciprocating thread guide (not shown),
so as to feed the thread helically onto the spool 13 in order to build up a cylindrical
winding. During this process, the registers 18, 19 are indexed in accordance with
the number of revolutions of the measuring wheel 11 and the spool 13 respectively.
Instantaneous values of register 18 are entered, at regular intervals into the memory
of the microprocessor system 20. For example, each time that the register 18 counts
ten revolution of the spool 13, the contents of register 18 are gated into the memory
of the microprocessor system 20. The gating circuitry, which may be conventional,
is not shown but its construction and operation will be clear to those skilled in
the art. The contents of register 18, i.e. the instantaneous values of the number
of revolutions of the measuring wheel 1 for every tenth revolution of the spool 13,
are stored in the memory of the microprocessor 20 so that they can be retrieved in
the sequence in which they were recorded.
[0016] The diameter of the measuring wheel 11 is constant, whereby a predetermined length
of thread is passed to the spool 13 for each revolution of wheel 11. However, the
diameter of the windings on the spool 13 will gradually increase from a small to a
large diameter as the winding proceeds. If the diameter of the measuring wheel 11
was somewhere between the small and large diameters of the thread windings on spool
13, the counting rate of register 18 will initially by lower than that of register
19. The counting rates will then become similar, when the winding diameter on spool
13 is similar to the diameter of wheel 11. Then, the counting rate of register 18
will exceed that of register 19, i.e. When the winding diameter in spool 13 exceeds
the diameter of wheel 11. If the instantaneous values of register 18 are plotted on
a graph against every ten revolutions of the spool 13, a characteristic curve of the
ratio of a measured length of thread to the number of revolutions of the spool 13
is obtained as shown in Fig. 1. In practice, the diameter of the measuring wheel 11,
with respect to the minimum and the maximum diameters of the thread windings on the
spool 5, is such that the characteristic curve is approximately linear, at least over
its initial length. If thread having a different thickness is used, or if the thread
is wound onto a spool having a different diameter, the characteristic curve will be
different and this is indicated by the broken line (b) in Fig. 1.
[0017] After the memory of the microprocessor system 20 has been loaded with the instantaneous
values derived from register 18, the reference spool is replaced by a production spool.
Thread 10 is then wound onto the production spool 13 and, during the winding process,
similar instantaneous values of register 18 a're periodically supplied to the microprocessor
system 20. For example for every ten revolutions of the production spool 13, the contents
of register 18 are entered into the system 20. The system 20 then compares the production
data with the reference data (by conventional means, not shown in detail), in order
to provide a control signal for adjusting the clamping pressure on the thread brake
1. For example, assuming that the production spool 13 has made fifty revolutions,
the corresponding instantaneous value of register 18 stored in the memory whilst winding
the reference spool is compared with the same instantaneous value of register 18 which
is obtained during the winding of the production spool. If the readings differ, an
error signal is generated and this is converted, by the system 20, into the control
signal which is supplied to the thread brake 1. This control signal regulates the
amount of direct current supported to the electromagnet and hence it adjusts the clamping
pressure applied by the braking disc 2, 3 whereby the thread tension is regulated
during the winding process. For example, if the reading on register 18 when winding
thread on the production spool is less than it was when winding the thread on the
reference spool, this will mean that the thread is being wound too tightly on the
production spool. Hence, the braking pressure is relieved so that the thread is more
loosely wound on spool 13. Relieving the braking pressure will reduce the thread tension
hence resulting in a looser winding. Therefore, more thread will be wound on spool
13, for each revolution, and hence the counting rate of register 18 will increase
until it "catches up" with the "correct" value stored in the memory of the microprocessor
system 20. The clamping pressure of the thread brake 1 is adjusted until the instantaneous
values of the production data and reference data coincide whereupon the error signal
is zero and the correct thread tension is applied for winding the thread on the production
spool. Conversely, the braking pressure is increased to increase the tension if the
thread is wound too loosely on the spool 13. The operation is such that, at the end
of the winding cycle, a predetermined amount of thread is wound onto the spool 13
and that the diameter of the thread windings is same as that on the reference spool.
[0018] The construction and mode of operation of the transducer 14, 16 the registers 18,
19 and the microprocessor system 20 are generally conventional and hence known to
those skilled in the art. Therefore, no detailed description will be given in order
to facilitate the description of the novel features of the arrangement which embody
the invention.
[0019] A change in the nominal thickness of the thread, i.e. a distinct change in thickness
of the material which is wound, will provide a different characteristic curve in Fig.
1. However, by using the same characteristic curve, it is possible to compensate for
small changes in nominal thread thickness. Despite the usual quality control which
is exercised when manufacturing thread, there are bound to be slight differences in
nominal thread thickness due to the nature of the thread and the manufacturing process.
Whereas such variations gave rise to problems in the prior art, the present invention
can be applied to compensate for slight differences in nominal thread thickness. For
example, if the thread is slightly thicker than it should be, the thread can be wound
more tightly onto the spool 13 so as to end up with windings of the predetermined
diameter. Conversely, if the thread is slightly thinner than usual, it is wound more
loosely to provide windings having the required diameter.
[0020] The arrangement according to the invention will also compensate for variations in
the coefficient of friction between the thread 16 and the thread brake 1. Thread is
normally coated with oil so that it runs smoothly through thread guides without too
much friction. However, despite quality control, the coating may be patchy or thin,
or even missing entirely in some places. Clearly, there will be greater friction between
the thread brake 1 and the thread 10 when the coating is missing. This has the result
of increasing the thread tension and hence causing the thread to be wound more tightly
onto the spool 13. However, the arrangement shown in Fig. 2 will detect and compensate
for this problem, because the control signal from the microprocessor system 20 would
cause the braking pressure to be relieved, to reduce the thread tension, whereby the
thread is wound more loosely on the spool 13.
[0021] A further advantage is that the winding speed does not effect the mode of operation
of an arrangement which embodies the invention. An increase in winding speed merely
results in increasing the rate at which the production data is supplied to the microprocessor
system 20 for comparison with the reference data which is already in the memory. Thus
operation is generally independent of winding speed.
[0022] The invention may be applied to single spool or multispool winding machines. With
regard to the arrangements described above, the microprocessor system 20 may be supplied
with multiplexed inputs and conditioned to provide respective error signals to the
corresponding thread brakes on a multispool winding machine. The arrangement may also
be such that the microprocessor system stores reference data which can be retrieved
in response to a serial number which is entered by means of a keyboard. The serial
number represents a certain type of spool carrying a predetermined length of a particular
type of thread.
[0023] Thus, it can be seen that the arrangement which embody the invention operate in accordance
with direct digital control in order to manufacture production windings which are
"copies" of a reference winding.
Aufwickelungsvorrichtung zur Aufwickelung einer vorher festgelegten Länge von Faden-
und Bandmaterial, wobei das Material auf eine Spule (13) aufgewickelt wird bis zu
einem vorher festgelegten, maximalen Aufwickelungsdurchmesser, wobei besagte Aufwickelungsvorrichtung
eine erste Meßvorrichtung mit einem Meßrad (15) aufweist, um die Länge des Materials
festzustellen, mit einer zweiten Meßvorrichtung, um die Anzahl der Umdrehungen der
Spule (13) festzustellen, einer Registriervorrichtung (18,19) für die digitale Registrierung
der gegebenen Werte während des Betriebes einer entsprechenden Spule, und einer Vergleichsvorrichtung
(20), die die aufgewickelten Werte mit den Werten vergleicht, die während des Betriebes
einer Betriebsspule anfallen, und die, wenn Abweichungen auftreten, eine Fadenbremse
(1) steuert, durch die das Material läuft, wobei die Fadenbremse zwei sich gegenüberliegende
Bremsplatten aufweist, von denen der Druck der einen Bremsplatte in Richtung auf die
gegenüberliegende Bremsplatte im Verhältnis zu der gemessenen Abweichung gesteuert
wird, die von der Vergleichsvorrichtung festgestellt wird, dadurch gekennzeichnet,
daß die Feststellung der Werte ohne Kontakt mit dem Meßrad und der Spule durch Umformer
(14, 16) erreicht wird, wobei jeder Umformer ein digitales Signal an die entsprechende
Digitalregistrierung- (18, 19) übermittelt, die einen Eingangsimpuls an einen Mikroprozessor
(20) abgibt, dessen Ausgangsimpuls auf die Fadenbremse (1) wirkt, die elektro-magnetisch
von dem vom Mikroprozessor erteilten Steuersignal gesteuert wird, in dem die bewegliche
Bremsplatte (3) direkt mit dem Anker (8, 8a) des Elektromagnets gekuppelt wird.
Dispositif enrouleur pour le bobinage de longueurs pré-déterminées de matériaux en
forme de fils et de rubans, dans lequel le matériau est enroulé sur une bobine (13)
jusqu'à ce que l'enroulement atteigne un diamètre prédéterminé maximum, ledit dispositif
enrouler comportant un premier dispositif de mesure muni d'une roue de mesure (15)
pour déterminer la longueur du matériau, un second dispositif de mesure, pour déterminer
le nombre de révolutions de la bobine (13), un registre (18, 19) pour l'enregistrement
numérique des valeurs données au cours de la formation d'une bobine de référence,
et un dispositif comparateur (20) qui compare les valeurs mémorisées aux valeurs apparaissant
lors de la production d'une bobine de fabrication et qui lorsque des perturbations
se manifestent, commande un frein de fil (1) à travers lequel le matériau défile,
ce frein de fil possédant deux plaques de frein en vis-à-vis, la pression de l'une
des plaques de frein exercée dans la direction de la plaque de frein en vis-à-vis
étant ajustée en fonction de la perturbation mesurée qui est déterminée par le comparateur,
caractérisé en ce que la détermination des valeurs et réalisée, sans aucun contact
avec la roue de mesure et la bobine, par des transducteurs (14, 16), chacun de ceux-ci
transmettant un signal numérique au registre numérique correspondant (18, 19) lequel
délivre un signal d'entrée à un micro-processeur (20) dont la sortie agit sur le frein
de fil (1) qui est commandé électromagnétiquement par le signal de commande formé
par le micro-processeur, dans lequel la plaque de frein mobile (3) est directement
accouplée, à l'induit (8, 8a) de l'électroaimant.