The invention relates to a device for inserting of weft threads in an air jet weaving machine comprising at least one set of main nozzles which are mounted in series, to each of which a regulating valve is individually assigned, the settings of which determine the intensity of impulse transmission to the weft thread, the regulating valves being independently settable by means of a control and regulating unit.
A set of main nozzles mounted in series serves for inserting a weft thread each pick or weft insertion. In most instances, two main nozzles are mounted in series, of which one is arranged stationarily and the other is arranged on a batten.
It is known (EP 0 239 137 B1) for only the stationarily arranged main nozzle to be preceded by a regulating valve and for the following main nozzle to be supplied with an unregulated compressed air stream. In this known device, the impact of the stationary main nozzle may be relatively low, whereas the impact of the following main nozzle is always very high. The result of this may be that the following main nozzle blows too strongly, that is to say has too great a share of the total impulse transmitted to the weft thread, which may be unfavorable for the weft threads and weft insertions.
It is also known (EP 0 879 307 B1) to assign to each set of main nozzles mounted in series a common regulating valve and a common switching valve. In a device of this type, it is relatively difficult to coordinate the impacts of the main nozzles mounted in series with one another correctly, that is to say to set a suitable impulse transmission.
It is also known (EP 1 086 265 B1) to assign specific regulating valves to the main nozzles of a set which are arranged in series, so that impulse transmission can be set individually for each main nozzle. Individual setting may, in practice, lead to problems, since the proportional contributions of each of the main nozzles mounted to series in the overall impulse transmission should be coordinated with one another. On the one hand, what should be ensured is that a weft thread is sufficiently tensioned between the main nozzles, so that it cannot sag in loops or the like. On the other hand, however, a weft thread should not be exposed to excessively high forces so that it is not damaged.
The object on which the invention is based is to provide a device of the type initially mentioned, in which the coordination of the proportions of the main nozzles in impulse transmission does not present any problems.
This object is achieved in that the control and regulating unit defines the settings of the individual regulating valves of a set of main nozzles with respect to one another, in order to form an overall value for the intensity of the impulse transmission of the set of main nozzles.
By virtue of the design according to the invention, when a weaving machine is set to a new fabric, only one overall value for the intensity of impulse transmission has to be set. The control and regulating unit then automatically assumes the setting of the individual regulating valves in a predetermined ratio to one another. This automatic assignment of the settings of the regulating valves to one another is maintained even when the weft insertion is regulated, for example for inserting of weft threads consisting of filament yarn. In this case, it is expedient, for example, to carry out regulation to a constant arrival angle, that is to say to an angle of the main shaft of the weaving machine at which a weft thread arrives on the opposite side. in this regulation, the impulse transmission becomes the manipulated variable which changes as a function of the diameter of a weft thread bobbin. Where weft threads consisting of filament yarn are concerned, the situation often arises where weft threads have to be inserted from the outer layers of the bobbin by means of a greater quantity of compressed air and/or compressed air at higher pressure than toward the end of the used-up bobbin. In order to maintain a constant arrival angle, the quantity of compressed air and/or the pressure of the compressed air as manipulated variable is varied by the control and regulating unit. During this variation of the manipulated variable, the control and regulating unit automatically ensures that the ratio of the settings of the individual regulating valves of the main nozzles of a set is suitably maintained according to predetermined criteria.
Further features and advantages of the invention may be gathered from the following description of the embodiments illustrated in the drawings in which:
In
A weft thread 15 is metered in a known way by means of a prewinding apparatus 16 and is blown by the main nozzles 13, 14 into a shed formed from warp threads. Within the shed, the weft thread is taken over by the relay nozzles 12, that is to say by the air streams blown from these, and is transported further on to the opposite side of the weaving machine. The arrival of the weft thread 15 on the side lying opposite the insertion side is detected by means of a weft thread monitor 30 and is communicated as a pulse signal to a control and regulating unit 17. The relay nozzles 12 are connected to a compressed air supply arrangement which is not illustrated in any more detail.
The main nozzles 13, 14 are likewise connected to a compressed air source or an arrangement for the supply of compressed air. This contains, in the exemplary embodiment, a compressed air source 18 which feeds compressed air to a tank 20 via a pressure regulating valve 19. The main nozzles 13, 14 are connected to the tank 20 in each case via a regulating valve 21, 22 and a switching valve 23, 24. The control and regulating unit 17 determines the switching time points of the switching valves 23, 24 and the settings of the regulating valves 21, 22. In addition, the main nozzles 13, 14 are connected to the tank via reducing valves 25, 26. A nonreturn valve 27, 28 is provided in each case in the line between the reducing valves 25, 26 and the main nozzles 13, 14.
The regulating valves 21, 22 are preferably quantity regulating valves, by means of which the compressed air quantity flowing to the main nozzles 13, 14 when the switching valves 23, 24 are opened can be regulated. In the weft intermissions, that is to say when the switching valves 23, 24 are closed, compressed air flows out of the tank 20 via the reducing valves 25, 26 to the main nozzles 13, 14. Consequently, in the main nozzles 13, 14, a compressed air flow is maintained which keeps the weft thread 15 tensioned. In a modified embodiment, the regulating valves 21, 22 are pressure regulating valves.
The control and regulating unit 17 further receives information on the instantaneous angular position of the main shaft of the weaving machine. In the exemplary embodiment, this takes place, for example, via an angle detector 31 which is assigned to the shaft of the batten 10.
Further, to the control and regulating unit 17 is assigned an input unit 29, by means of which, for example, the desired value for the arrival angle of the main shaft can be entered, that is to say the angular position which is detected by the angle detector 31 and at which the weft thread 15 is to reach the weft thread monitor 30. Furthermore, by means of the input unit 29, the operator can also set the impulse transmission, exerted by the set of main nozzles 13, 14, to the weft thread 15. As illustrated in
In the exemplary embodiment according to
There may be provision for inputting in the control and regulating unit 17 a plurality of profiles for the curves 40, 41 which an operator can select according to previously known criteria in order to optimize the weft insertion. Alternatively, however, there may also be provision for the operator to configure the profile of the curves 40 or 41 and, in particular, the profile of the curve 41 himself and thus to determine the ratio at which the control and regulating unit then implements the ratio of the settings of the regulating valves 21, 22 of the main nozzles 13, 14 with respect to one another.
In the exemplary embodiment according to
It becomes clear from the foregoing that the setting of the overall impulse transmission takes place by means of an “imaginary” or virtual main nozzle. The weaver sets a value for overall impulse transmission of, for example, 80%, the control and regulating unit 17 then automatically setting the regulating valves 21, 22 to suitable values, for example such that the opening cross section of the regulating valve 21 is set at 90% and the opening cross section of the regulating valve 22 of the main nozzle 14 is set at 70%.
The regulating valves 21, 22 are expediently equipped with stepping motors which allow an exact setting of the opening cross sections of the regulating valves 21, 22. The control and regulating unit 17 activates these stepping motors by means of pulses. Regulating valves of this type are known, for example, from EP 879 307 B1 and EP 1 086 265 B1.
If the weft threads are woven from filament yarn, it is possible to regulate the weft insertion. It has been shown that welt threads 15 consisting of filament yarn are relatively air-unfriendly when they come from outer layers of a weft thread bobbin. They are more and more air-friendly when they come from layers of this weft thread bobbin which lie further inward. At the commencement of the working off of a weft thread bobbin, therefore, a higher impulse transmission is required, that is to say a relatively high pressure and/or a relatively high quantity per unit time of compressed air, which are then reduced more and more, the further this weft thread bobbin is worked off. This reduction in impulse transmission may take place by means of a regulating arrangement which by means of the weft thread monitor 30 detects the arrival of the weft thread on the side lying opposite the main nozzles 13, 14 and communicates this arrival to the control and regulating unit 17. The control and regulating unit 17 additionally receives information on the instantaneous rotary angle of the main shaft of the weaving machine, for example by means of the angle detector 31 of the shaft of the batten 10. By means of these signals, it is detected whether a weft thread has arrived in the correct angular position of the main shaft of the weaving machine. In the event of deviations, regulation takes place via the setting of the overall impulse transmission, that is to say the setting of the regulating valves 21, 22, in such a way that a constant arrival angle is obtained. The control and regulating unit 17 in this case automatically sets the ratio of the settings of the regulating valves 21, 22 according to the changed overall impulse transmission.
In the embodiment according to
In this embodiment according to
The main nozzles may, in principle, be of any desired number. In so far as more than two main nozzles are provided, according to the invention at least two main nozzles should in each case be assigned a regulating valve settable by the control and regulating unit 17.
The operator of the weaving machine, usually a weaver, determines how the control and regulating unit is to operate. In this case, the weaver can also decide that, during weaving, the control and regulating unit, which, for example, has carried out a setting of the regulating valves 21, 22 according to
In the exemplary embodiments according to
Number | Date | Country | Kind |
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10 2005 004 064 | Jan 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2006/000346 | 1/17/2006 | WO | 00 | 2/15/2008 |
Publishing Document | Publishing Date | Country | Kind |
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WO2006/077063 | 7/27/2006 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3303857 | Scheffel | Feb 1967 | A |
3693668 | Svaty | Sep 1972 | A |
3734143 | Svaty | May 1973 | A |
3821972 | Svaty et al. | Jul 1974 | A |
4020877 | Spisiak et al. | May 1977 | A |
4183382 | Scheffel | Jan 1980 | A |
4328842 | Scheffel | May 1982 | A |
4347872 | Brouwer et al. | Sep 1982 | A |
4410016 | Manders | Oct 1983 | A |
4450876 | van Mullekom | May 1984 | A |
4458729 | Brouwer et al. | Jul 1984 | A |
4466468 | Brouwer et al. | Aug 1984 | A |
4501008 | Rosseel et al. | Feb 1985 | A |
4534387 | van Hest | Aug 1985 | A |
4651785 | Volland et al. | Mar 1987 | A |
4703779 | Philippe et al. | Nov 1987 | A |
4722370 | Manders | Feb 1988 | A |
4759392 | van Bogaert et al. | Jul 1988 | A |
4850398 | Van Bogaert | Jul 1989 | A |
5031672 | Wahhoud et al. | Jul 1991 | A |
5086812 | Van Bogaert et al. | Feb 1992 | A |
5111852 | Verhulst | May 1992 | A |
5197520 | Reimertz | Mar 1993 | A |
5303746 | Wahhoud et al. | Apr 1994 | A |
5388618 | Decock | Feb 1995 | A |
5417250 | Markey | May 1995 | A |
5462095 | Okesaku | Oct 1995 | A |
5816296 | Schuster | Oct 1998 | A |
5970996 | Markey et al. | Oct 1999 | A |
6062273 | Peeters et al. | May 2000 | A |
6109309 | Dornier et al. | Aug 2000 | A |
6223783 | Peeters et al. | May 2001 | B1 |
6305433 | Peeters | Oct 2001 | B1 |
6748981 | Gielen et al. | Jun 2004 | B2 |
7110847 | Ostyn | Sep 2006 | B2 |
7350542 | Peeters et al. | Apr 2008 | B2 |
20020170615 | Gielen et al. | Nov 2002 | A1 |
Number | Date | Country |
---|---|---|
195 17 748 | Nov 1995 | DE |
692 13 975 | Apr 1997 | DE |
0 239 137 | Sep 1987 | EP |
0 442 546 | Aug 1991 | EP |
442546 | Aug 1991 | EP |
0 879 307 | Nov 1998 | EP |
1 086 265 | Mar 2001 | EP |
1 420 095 | May 2004 | EP |
1 473 391 | Nov 2004 | EP |
Number | Date | Country | |
---|---|---|---|
20080216912 A1 | Sep 2008 | US |