EP2467324B1 - Verfahren und vorrichtung zum ablegen einer flexiblen materialbahn - Google Patents

Verfahren und vorrichtung zum ablegen einer flexiblen materialbahn Download PDF

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Publication number
EP2467324B1
EP2467324B1 EP10740642.3A EP10740642A EP2467324B1 EP 2467324 B1 EP2467324 B1 EP 2467324B1 EP 10740642 A EP10740642 A EP 10740642A EP 2467324 B1 EP2467324 B1 EP 2467324B1
Authority
EP
European Patent Office
Prior art keywords
laying
air nozzles
material web
air
station
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Not-in-force
Application number
EP10740642.3A
Other languages
German (de)
English (en)
French (fr)
Other versions
EP2467324A1 (de
Inventor
Torsten Goele
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Oerlikon Textile GmbH and Co KG
Original Assignee
Oerlikon Textile GmbH and Co KG
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Oerlikon Textile GmbH and Co KG filed Critical Oerlikon Textile GmbH and Co KG
Publication of EP2467324A1 publication Critical patent/EP2467324A1/de
Application granted granted Critical
Publication of EP2467324B1 publication Critical patent/EP2467324B1/de
Not-in-force legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65HHANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
    • B65H45/00Folding thin material
    • B65H45/02Folding limp material without application of pressure to define or form crease lines
    • B65H45/06Folding webs
    • B65H45/10Folding webs transversely
    • B65H45/101Folding webs transversely in combination with laying, i.e. forming a zig-zag pile

Definitions

  • the invention relates to a method for depositing a flexible material web according to the preamble of claim 1 and to an apparatus for carrying out the method according to the preamble of claim 9.
  • two different variants are known for depositing a material web in order to guide a flexible material web into a plurality of superimposed material layers.
  • the material web is fed by a stationary feeder to a storage location.
  • the stationary feeder are associated with laying means by which the web is reciprocated between two opposite ends of the tray.
  • a method for depositing a flexible material web in a plurality of superimposed material layers in which the material web is fed to a storage location, wherein the material web by a first blowing in a first storage direction to an end of the storage location and by a second blowing in a second storage direction is fed back and forth to an opposite end of the deposition site and in which the bubbles are generated by a plurality of alternately activated air nozzles. Also, a corresponding device is described.
  • the feed device is held movably, and guided up and down above the depositing point between the ends of the depositing point.
  • Such a method and such a device are for example from DE 10 2005 016 745 A1 divulg.
  • the supply via rollers which are arranged on a horizontally movable carriage. The cart will be between the ends of the storage station back and forth.
  • the rollers are associated with blowing devices, which are formed on the carriage and generate a directed to the material web blowing.
  • Another object of the invention is to provide a method and a device of the generic type, with which or which the material web is particularly gently stored.
  • the invention makes use of contactless guidance of the web of material by means of blowing, wherein for bridging the large laying lengths the blowing is produced by a plurality of successively activated air nozzles.
  • This makes it possible on the one hand limit the blowing produced by one air nozzle in their conveying effect to a permissible for normal compressed air functional area.
  • On the other hand can be implemented on the number of successively arranged in a blowing direction air nozzles any Ablegeart.
  • At least one of the blowing devices is formed by a plurality of air nozzles arranged along one of the deposition directions, which are each aligned in the depositing direction and can be activated successively.
  • Mechanical means for guiding and depositing the material web can be reduced to at least a minimum.
  • the zigzag-shaped storage of the material web is achieved exclusively by the mutual activation of the blowing devices.
  • the method variant is particularly advantageous, in which also the opposite blowing is also generated by a plurality of successively activated air nozzles blowing in the opposite direction of deposition.
  • the back and forth of the material web between the ends of the storage location is performed exclusively by the alternately activated Anblasungen.
  • Each of the bubbles thus has a plurality of temporally successively activated air nozzles, so that the material web can be placed in long Ablegeartn.
  • the device according to the invention has the feeding device arranged in the middle region of the depositing station, the second blowing device having a plurality of air nozzles arranged along the second depositing direction, which are each aligned in depositing direction and can be activated one after the other.
  • the air nozzles are activated to produce one of the Anblasungen depending on a position of the material web between the ends of the storage location according to a preferred method variant.
  • the time intervals for activating the blowing in a storage direction air nozzles can be adjusted to the feed rate of the material web, so that no negative overlay effects can arise.
  • the method variant is particularly advantageous, in which the air nozzles are activated as a function of a temporal activation sequence, which is determined as a function of the feed rate of the material web.
  • a temporal activation sequence which is determined as a function of the feed rate of the material web.
  • the method variant can be further improved by detecting the feed speed of the material web from a circumferential speed of a feed roller, through which feed roller the material web is fed. Correction adjustments can therefore also be made within a depositing process in order, for example, to take account of deviations in the feed rate directly in the startup sequence.
  • the method variant is particularly suitable, in which the bubbles are produced by a plurality of air nozzles opposite each other on both longitudinal sides of the deposit location. In this way, each longitudinal side of the depositing point can generate an injection directed at the material web. The material web can be guided and laid evenly over the entire strip width.
  • the air nozzles located directly opposite the longitudinal sides preferably form an air nozzle pair which is activated and deactivated synchronously. This makes it possible to avoid misalignments of the material web within the storage location due to uneven inflations on the longitudinal sides of the material web.
  • the material layers can be tightly folded very compactly as a stack.
  • the air nozzles for generating the blowing are preferably carried out according to an advantageous embodiment of the invention with a control valve which is connected to a control device and independently of each other for the activation of the air nozzles is controllable.
  • a control valve which is connected to a control device and independently of each other for the activation of the air nozzles is controllable.
  • control device In order to be able to make corrections to the activation sequence of the control valves for guiding and depositing the material web, the control device is connected according to a device variant with a sensor device by which a current position of the material web between the ends of the deposition station can be detected directly or indirectly. It can even be used to run online controls to enable and disable the air jets.
  • the sensor device Since the position of the web in the deposition is determined essentially by the feed rate and thus the supplied material length between storage station and feeder, the sensor device preferably has a speed sensor, which is assigned to detect the peripheral speed of a feed roller of the feeder. This makes it possible to determine the material length of the material web fed per unit of time, which directly influences the position of the material web.
  • the feeding of the material web is preferably carried out in the apparatus according to the invention by means of a feeding device formed from a pair of rollers.
  • the conveyor rollers face each other in a conveying gap, wherein at least one of the conveyor rollers is drivable. In this way, the material web can be fed to the deposition station essentially without slippage, so that a substantially constant supply speed is ensured during the deposition process.
  • the laying of a material web with larger strips of material is preferably carried out with the device variant in which at least one of the blowing devices has a plurality of air nozzles distributed on both longitudinal sides of the deposition station.
  • the degree of control of the material web between the longitudinal sides of the storage station is achieved in particular by the fact that the air nozzles directly opposite the longitudinal sides form an air nozzle pair whose associated control valves can be controlled synchronously.
  • the deposition of the material web in a compact stack of several layers of material can be achieved in particular by the fact that a separate movable hold-down is arranged at each end of the storage station, which is driven by actuators for smoothing and holding the material layers.
  • This development of the device also has the advantage that after the switching of the blowing devices, the deposited piece of material of the material web remains fixed at the end of the deposition site.
  • the storage station preferably performs a transverse movement between two end positions in order to be able to occupy a larger storage area of the storage station in strip-shaped material webs. In this case, several zig-zag-shaped material layers are formed, which are laid next to each other and to one another in a pile.
  • FIG. 1 and 2 an embodiment of the device according to the invention for carrying out the method according to the invention for depositing a flexible material web is shown in several views.
  • Fig. 1 shows the embodiment schematically in a cross-sectional view and in Fig. 2 the embodiment is shown in a plan view. Unless an explicit reference is made to one of the figures, the following description applies to both figures.
  • the deposit location for receiving a material web 2 into a plurality of deposited material layers 16 is formed by a storage station 1.
  • the storage station 1 can be formed for example by a height-adjustable storage table.
  • the storage station 1 extends over a laying length between two ends 17.1 and 17.2.
  • the laying length of the storage station 1 is in this case significantly larger than a depositing width, which are determined by two opposite longitudinal sides 18.1 and 18.2 of the storage station.
  • the storage station 1 is associated with a stationary feeder 3 in the central region.
  • the feeding device 3 is held above the depositing station 1 and has two conveying rollers 4.1 and 4.2, which form a conveying nip as a pair of rollers, in which the material web 2 is fed.
  • One of the feed rollers 4.1 or 4.2 is connected to a drive.
  • a laying device 5 is provided between the storage station and the feeder 3, to deposit the supplied material web 2 zig-zag to form several layers of material in the storage station.
  • the laying device 5 has two blowing devices 6.1 and 6.2 in order to alternately produce a directed in a deposition direction blowing.
  • the blowing device 6.1 a total of three air nozzles 7.1, 7.2 and 7.3.
  • the air nozzles 7.1 to 7.3 are arranged distributed on the longitudinal side 18.1 in the area between the feed device 3 and the end 17.1 of the storage station 1 at a distance from each other.
  • a first air nozzle 7.1 is held immediately below the conveyor rollers 4.1 and 4.2.
  • the second air nozzle 7.2 and the third air nozzle 7.3 are arranged on the longitudinal side 18.1 until shortly before the end 17.1 of the storage station 1.
  • Each of the air nozzles 7.1, 7.2 and 7.3 have an identical blowing direction, which in this case defines the storage direction towards the end 17.1 of the storage station 1.
  • Each air nozzles 7.1 to 7.3 are each assigned a control valve 9.1 to 9.3.
  • the control valves 9.1 to 9.3 are connected via a control line to a control device 11.
  • each of the control valves 9.1 to 9.3 for activating and deactivating the air nozzles 7.1 to 7.3 can be controlled separately.
  • the air nozzles 7.1 to 7.3 are connected to a compressed air source, not shown here.
  • Each of the air nozzles 7.4 to 7.6 is also associated with a control valve 9.4 to 9.6.
  • the control valves 9.4 to 9.6 are coupled to the control device 11, which is not shown in detail at this point.
  • the air nozzles 7.4 to 7.6 also have a blowing direction, which is directed in the direction of deposit to the end 17.1 of the storage station 1.
  • the air nozzles 7.1 to 7.6 connected to a pressure source are aligned in such a way that the blowing is directed onto the material web 2 guided between the air nozzles.
  • the directly opposite air nozzles 7.1 and 7.4 or 7.2 and 7.5 or 7.3 and 7.6 synchronously activated or deactivated as an air nozzle pair.
  • the respective control valves 9.1 and 9.4 are controlled synchronously.
  • a second blowing device 6.2 is provided in order to guide the material web 2 for depositing in the opposite direction of deposition to the opposite end 17. 2 of the deposition station 1.
  • the blowing device 6.2 three air nozzles 8.1 to 8.3, which are arranged distributed on the longitudinal side 18.1.
  • a first air nozzle 8.1 is held between the air nozzles 7.1 and 7.2 of the first blowing device 6.1.
  • the air nozzles 8.2 and 8.3 are arranged distributed on the longitudinal side 18.2 between the end 17.2 and the feeder 3.
  • Each of the air nozzles 8.1 to 8.3 has a directed towards the end of 17.2 blowing direction and thus forms an opposite Anblasung for guiding and storage of the web 2 to the opposite end 17.2 of the storage station 1.
  • Each of the air nozzles 8.1 to 8.3 is a separate control valve 10.1 to 10.3 connected to a pressure source.
  • the control valves 10.1 to 10.3 are connected via control lines to the control device 11 and independently controllable.
  • the second blowing device 6.2 is also formed by further air nozzles 8.4 to 8.6 on the opposite longitudinal side 18.2 of the storage station 1.
  • the air nozzles 8.4 to 8.6 each form a plurality of pairs of air nozzles with the air nozzles 8.1 to 8.3, which are activated and deactivated synchronously via their associated control valves 10.1 to 10.6.
  • the air nozzles 8.1 to 8.6 are aligned on the longitudinal sides 18.1 and 18.2 of the deposition station such that the blowing produced by the blowing device 6.2 is directed directly onto the material web 2 guided between the longitudinal sides 18.1 and 18.2.
  • the air nozzles 7.1 to 7.6 of the first blowing device 6.1 and the air nozzles 8.1 to 8.6 of the second blowing device 6.2 are preferred supplies a common compressed air source. However, there is also the possibility that each blowing device 6.1 and 6.2 are assigned separate sources of compressed air.
  • the control device 11 is coupled to a sensor device 14.
  • the sensor device 14 is formed in this embodiment by a speed sensor 15 which is assigned to the driven conveyor roller 4.1.
  • the speed sensor 15 the drive speed of the feed roller 4.1 and the peripheral speed of the feed roller 4.1 is detected and transmitted to the controller 11.
  • the controller 11 it is thus possible to determine an added material length of the material web 2 from the actual feed speed of the material web 2, so that its position can be determined over the length of the material web 2 fed into the intermediate space between the feed device 3 and the deposition station 1. From this, a time sequence can then be derived in order to control the activation and deactivation of the individual air nozzles 7.1 to 7.6 and 87.1 to 8.6 of the blowing devices 6.1 and 6.2.
  • each of the ends 17.1 and 17.2 is assigned a hold-down 12.1 and 12.2.
  • the hold-down 12.1 and 12.2 are plate-shaped and driven by an actuator 13.1 and 13.2 movable.
  • Fig. 3 and 4 is the embodiment of Fig. 1 shown in different operating conditions for storing the material web 2.
  • the web 2 fed by the feeder 3 continuously the storage station 1.
  • the first air nozzle 7.1 or the first pair of air nozzles 7.1 and 7.4 via the control device 11 activated.
  • the generated blow is directed to the web 2 and leads them in a first storage direction to the end of 17.1.
  • the material web 2 deposits on the deposition station 1 or the topmost material layer 16.
  • the adjacent air nozzle 7.2 or the adjacent air nozzle pair 7.2 and 7.5 these are activated.
  • the blowing effect of the first blowing device 6.1 is maintained and guides the material web 2 continuously up to the end 17.1 of the deposition station 1.
  • the material web 2 is folded and smoothed by the holding-down device 12.1, so that a new material layer 16 can be produced by guiding the material web 2 in the opposite depositing direction.
  • the first blowing device 6.1 is deactivated so that the material web 2 deposits itself automatically in the section between the end 17.1 of the deposition station and the feed device 3.
  • a second blowing is generated in an opposite direction of deposit to the opposite end 17.2. This process is in Fig. 4 shown.
  • blowing device 6.2 is activated to guide the web to the opposite end 17.2.
  • the air nozzles 8.1 to 8.6 or the air nozzle pairs of the blowing device 6.2 are also activated according to a time sequence which is predetermined by the control device 11 as a function of the feed speed of the material web 2.
  • the material web 2 settles to a new material layer, and is folded at the opposite end 17.2 by the second hold-down 12.2, smoothed and fixed.
  • the inventive method and the device according to the invention are not limited to the illustrated and described embodiment.
  • the number of air nozzles for guiding the material web in a depositing direction depends in particular on the length of the filing path.
  • additional air nozzles can be added.
  • the feeding of the material web could also take place at one end of the deposition station, so that only one of the blowing devices would be formed by a plurality of air nozzles distributed on the longitudinal sides.
  • control device In order to activate the air nozzles, the control device is preferably given a chronological start-up sequence that is tuned to a specific feed speed of the material web. Thus, even without continuous monitoring of the feed rate make fixed settings that ensure safe storage of the web of the storage station.
  • the sensor device is formed by position sensors which are arranged distributed along one of the longitudinal sides.
  • the method variant is carried out, in which the feed rate is monitored by a speed sensor.
  • the power-on sequences for activating and deactivating the air nozzles of the blowing devices can be controlled.
  • the storage stations are preferably coupled to a drive, which executes a movement between two end positions transversely directed for receiving the material layers.
  • a drive which executes a movement between two end positions transversely directed for receiving the material layers.
  • This can also be advantageous square material stacks are laid in which the storage length is equal to a storage width.

Landscapes

  • Preliminary Treatment Of Fibers (AREA)
  • Folding Of Thin Sheet-Like Materials, Special Discharging Devices, And Others (AREA)
EP10740642.3A 2009-08-19 2010-08-05 Verfahren und vorrichtung zum ablegen einer flexiblen materialbahn Not-in-force EP2467324B1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102009038089 2009-08-19
PCT/EP2010/061455 WO2011020709A1 (de) 2009-08-19 2010-08-05 Verfahren und vorrichtung zum ablegen einer flexiblen materialbahn

Publications (2)

Publication Number Publication Date
EP2467324A1 EP2467324A1 (de) 2012-06-27
EP2467324B1 true EP2467324B1 (de) 2014-01-08

Family

ID=42935563

Family Applications (1)

Application Number Title Priority Date Filing Date
EP10740642.3A Not-in-force EP2467324B1 (de) 2009-08-19 2010-08-05 Verfahren und vorrichtung zum ablegen einer flexiblen materialbahn

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EP (1) EP2467324B1 (da)
CN (1) CN102471005B (da)
DK (1) DK2467324T3 (da)
WO (1) WO2011020709A1 (da)

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP6281532B2 (ja) * 2015-07-13 2018-02-21 トヨタ自動車株式会社 金属空気電池用電解液、及び、金属空気電池
CN118773826B (zh) * 2024-06-25 2025-09-05 晋江市聚嘉环保科技有限公司 一种气凝胶喷胶棉及其生产用的铺网机

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1180236B (de) * 1962-06-27 1964-10-22 Warner Jones And Company Ltd K Vorrichtung zum Falten von abschnittsweise mit querverlaufenden Schwaechungslinien versehenen Bahnen aus Papier, Kunststoff od. dgl.
DE2712588C2 (de) * 1977-03-22 1983-12-08 Siemens AG, 1000 Berlin und 8000 München Einlegevorrichtung für eine vorgefaltete Endlospapierbahn in einem Papierstapler
US4279610A (en) * 1979-10-22 1981-07-21 Crown Zellerbach Corporation Cross-lapped web forming system
DE3001729A1 (de) * 1980-01-18 1981-07-23 Krauss U. Reichert Gmbh + Co Kg Spezialmaschinenfabrik, 7012 Fellbach Stofflegemaschine
US4460350A (en) 1980-09-02 1984-07-17 Sperry Corporation Continuous printed paper stacking device
DE102005016745A1 (de) * 2005-04-11 2006-10-12 Saurer Gmbh & Co. Kg Verfahren und Vorrichtung zum Ablegen einer flexiblen Materialbahn
DE102005016754B4 (de) 2005-04-11 2012-12-27 Nis Ingenieurgesellschaft Mbh Verfahren zum Entwässern von Substanzen
CN201287991Y (zh) * 2008-08-07 2009-08-12 邯郸纺织机械有限公司 一种折布平衡机构

Also Published As

Publication number Publication date
EP2467324A1 (de) 2012-06-27
WO2011020709A1 (de) 2011-02-24
CN102471005B (zh) 2014-09-24
DK2467324T3 (da) 2014-04-07
CN102471005A (zh) 2012-05-23

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