EP3298185A1 - Mechanismus zur steuerung der hin- und herbewegung von schussfadengreifern in einer webmaschine - Google Patents

Mechanismus zur steuerung der hin- und herbewegung von schussfadengreifern in einer webmaschine

Info

Publication number
EP3298185A1
EP3298185A1 EP16734734.3A EP16734734A EP3298185A1 EP 3298185 A1 EP3298185 A1 EP 3298185A1 EP 16734734 A EP16734734 A EP 16734734A EP 3298185 A1 EP3298185 A1 EP 3298185A1
Authority
EP
European Patent Office
Prior art keywords
slider
worm screw
variable
sliding blocks
bush
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.)
Granted
Application number
EP16734734.3A
Other languages
English (en)
French (fr)
Other versions
EP3298185B1 (de
Inventor
Giuseppe Casarotto
Andrea Panzetti
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.)
Itema SpA
Original Assignee
Itema SpA
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 Itema SpA filed Critical Itema SpA
Publication of EP3298185A1 publication Critical patent/EP3298185A1/de
Application granted granted Critical
Publication of EP3298185B1 publication Critical patent/EP3298185B1/de
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • DTEXTILES; PAPER
    • D03WEAVING
    • D03DWOVEN FABRICS; METHODS OF WEAVING; LOOMS
    • D03D47/00Looms in which bulk supply of weft does not pass through shed, e.g. shuttleless looms, gripper shuttle looms, dummy shuttle looms
    • D03D47/27Drive or guide mechanisms for weft inserting
    • D03D47/275Drive mechanisms

Definitions

  • the present invention relates to an improved mechanism for controlling the reciprocating movement of the carrying and drawing grippers of a weaving loom, by which weft transport and insertion inside the shed is performed.
  • the invention relates in particular to a mechanism of this type in which the conversion of the continuous circular motion of the main motor of the loom, in a reciprocating rectilinear movement of the grippers, comprises a coupling between a slider, provided with a reciprocating rectilinear movement, and a variable-pitch worm screw, driven in a reciprocating rotary movement by said slider.
  • the invention relates to a device of this type which, in comparison to similar devices already on the market, exhibits a lower friction, a reduction of the passive loads and therefore . an improved efficiency of conversion of the reciprocating movement of the slider in a reciprocating rotary movement of the worm screw.
  • Weaving looms are normally classified into several major categories according to the system with which the weft is inserted into the shed formed by the warp.
  • the present invention falls into the category of shuttleless looms and, specifically, of gripper looms.
  • the weft is carried into the shed and until the middle of the fabric being formed by a carrying gripper, while a corresponding drawing gripper moves from the other end of the shed up to the middle of the fabric. In this position the weft yarn exchange between the two grippers takes place and thereafter the two grippers return back in their starting positions out of the shed, thus achieving the complete insertion of the weft into the shed.
  • Each worm screw is preferably a variable-pitch screw, free to rotate on bearings which also prevent any axial displacement of the same, said screw having an axis perpendicular to the main rotation shaft of the loom, and being coaxial to a respective one of said toothed gears which is keyed at one of its ends.
  • the reciprocating rectilinear movement imparted to the slider-nut is converted into reciprocating rotary movement of the worm screw, thanks to the presence of pairs of wheels or rollers idle-pivoted on the slider and sliding on the flanks of each of the threads of said worm screw.
  • This solution has allowed to obtain extraordinary advantages compared with existing solutions, especially in terms of reduction of clearances, compactness of the mechanism and high possibility of adjusting at will the law of motion of the grip- pers - in particular lower speeds in the steps of gripping/releasing and exchanging the weft and higher speeds during the carrying step of the weft - by varying the variable- pitch thread shape of the worm screw.
  • This solution of course made it possible to significantly increase the working speed of the looms, without encountering the problems associated with previous traditional mechanical solutions based on levers and cams.
  • the reduction of clearances has in fact allowed to keep always constant, even at different speeds of the loom, the arri- val point of the grippers at the middle of the shed, i.e. the .
  • this new sliding block guide device has thus brought to a marked improvement in the duration of the same sliding blocks compared to previous guide rollers, which improvement allowed a further increase of the speed of the loom.
  • the reciprocating rotation that the sliding blocks per- form around their own support pin, to adapt to the continuous change of the angle of the variable-pitch screw thread necessarily causes a lateral misalignment of the same with respect to the straight line joining their centres of rotation.
  • the angle of the pair of sliding blocks with respect to the supporting bush is thus determined in such a way that this misalignment is zero in correspondence of an intermediate value of the inclination of the thread of the variable-pitch screw, so as to make as low as possible the value of such misalignment, respectively at one side and at the opposite side, when the thread of the screw has inclinations greater or less than the above said intermediate value.
  • the presence of this variable misalignment between the opposite sliding blocks does of course give rise to a corresponding torque between the reaction forces arising between the sliding blocks and the thread and causes a greater interaction between the sliding blocks and the thread and therefore a greater wear, compared to an ideal condition in which sliding blocks could be always perfectly aligned with each other. Therefore, the need is still felt for an improvement of the duration of the useful life of sliding blocks and a reduction of the extent of mechanical interactions between the screw and sliding blocks, in order to in- crease the efficiency of the guide mechanism and to reduce the noise thereof.
  • the object of the present invention is therefore to provide a mechanism for controlling the movement of the grippers of a weaving loom which overcomes the above mentioned drawback and makes it possible to further improve the efficiency of the above-described slider/worm screw mechanical coupling.
  • Fig. 1 is a perspective view of the general structure of the two control assemblies of the grippers, which illustrates the essential constituent elements of the improved control mechanism of the grippers according to the present invention
  • Fig. 2 is an exemplary perspective view of the coupling between a worm screw and a pair of sliding blocks according to the prior art disclosed by the above cited patent EP-0164627;
  • Figs. 3A, 3B and 3C are front views of the coupling of Fig. 2 in three different positions of the variable-pitch screw, which illustrate the different possible misalignments between the sliding blocks;
  • Fig. 4 is an exemplary perspective view of the coupling between a worm screw and a dual single-piece sliding block according to the present invention
  • Figs. 5A, 5B and 5C are front views of the coupling of Fig. 4, in the same different positions of the variable-pitch screw of Fig. 2, illustrating the constant, perfect alignment, of the two opposed portions of the single-piece sliding block; and Fig. 6 is an enlarged-scale and perspective view of an embodiment of the dual single-piece sliding block according to the present invention.
  • the control mechanism of the grippers of the present invention incorporates, as said in the introductory part of the present description, the general structure of the known control assemblies.
  • Such assemblies illustrated schematically in Fig. 1, thus each comprise mechanical elements apt to convert the continuous circular motion of a main shaft A of the loom (of which only the two terminal lengths are shown for easiness) in a rectilinear reciprocating movement of the grippers according to a path parallel to the axis of the main shaft A.
  • Such mechanical elements comprise, in particular:
  • crank 1 integral with the shaft A, on which a connecting rod 2 is articulated, apt to determine, through the small end of the connecting rod 2a, the reciprocating rectilinear movement of a slider 3 along a fixed slide 4, in a direction perpendicular to the axis of shaft A:
  • variable-pitch worm screw 5 free to rotate around its own longitudinal axis on suitable bearings that prevent any axial displacement thereof, coupled to the slider 3 by means of pairs of opposing sliding blocks P (best illustrated in Figs. 2 and 3) , pivotally attached to the slider 3, to determine the reciprocating rotary movement of a toothed gear D, keyed to and coaxial with the worm screw 5;
  • a flexible strap N provided with holes F on at least part of its length, adapted to engage with said holes the teeth of the toothed gear D to cause the reciprocating rectilinear movement of a weft inserting gripper, fixed to the free end Np of said strap N, in a direction parallel to the axis of shaft A.
  • the coupling between said worm screw and the slider comprises two pairs of sliding blocks P, each pair of sliding blocks being housed inside a respective bush integral to said slider.
  • two mutually opposite bushes are provided, in each of which two opposing sliding blocks P are pivoted around concurrent axes X lying in a plane A, having a set fixed inclination, crosswise the thread of the worm screw 5 .
  • the X axes are arranged symmetrically with respect to the line of intersection of plane A with a plane B perpendicular to the axis of the worm screw 5, and form between them an angle equal to the thread section angle, so that the contact surfaces of the four sliding blocks P can oper- ate simultaneously in sliding contact on the two opposite flanks of the two threads of the worm screw 5.
  • Fig. 3A shows a portion of the screw 5, having a long pitch and thus a smaller angle with respect to the longitudinal axis H of the screw 5
  • Fig. 3C represents a short-pitch portion and thus with a larger angle with respect to said axis
  • arid Fig. 3B shows an intermediate-pitch portion.
  • Figs. 4 and 5 finally represent the constructive solution proposed by the present invention, according to which the slid- ing blocks 6 are assembled on the slider 3 according to a fully innovative design, which allows to brilliantly solve the drawback described above.
  • each pair of sliding blocks 6 is securely fixed inside a bush 7, preferably of cylindrical shape (shown schematically in Fig. 4 in dashed lines and in greater detail in Fig. 6) , while the whole bush is axially pivoted on the slider 3 according to an axis Z which is the intersection between a plane A, perpendicular to the screw thread, and a plane B, perpendicular to the axis H of the screw 5.
  • the axis Z about which the bush 7 is free to rotate is thus simultaneously perpendicular to the screw thread 7 and to the axis H of said screw.
  • the two sliding blocks 6 preferably have a symmetrical configuration with respect to the plane A and are positioned on opposite sides with respect to the axis Z and mutually spaced apart at a sufficient extent to allow them to closely fit the thread of screw 5 between them.
  • the sliding blocks 6, and in particular their contact surfaces with the flanks of said thread preferably extend for the entire width of the bush 7 and are inclined and shaped so as to fit exactly the inclination and shape of said flanks, as schematically represented in Figs. 4 and 6. According to this provision, the contact surface of sliding blocks 6 with the thread flanks of the worm screw 5 is maximised, and then correspondingly the specific load between these elements is reduced.
  • the assembly of the sliding blocks 6 and the bush 7 thus forms a dual single-piece sliding block T, the double contact surface of which extends substantially in correspondence of a diameter of said cylindrical bush 7, and which is axially pivoted on the slider 3 along the axis Z.
  • Bush pivoting can be achieved by a standard axial pin integral to the bush 7 or, al- ternatively, it is the same bush 7 which, with its cylindrical side wall, forms a large-diameter pin housed in a mating cylindrical hole formed in the slider 3.
  • a similar dual single-piece sliding block T is obviously pivoted on the slider 3, about the same axis (Z), on the oppo- site side of the worm screw 5, and is adapted to cooperate with the second thread of the screw.
  • a third single-piece sliding block T may of course be provided in case of use of a three- threaded worm screw 5.
  • Figs. 5A, 5B and 5C The different positions that the dual single-piece sliding block T takes on in correspondence of the various portions of the variable-pitch screw 5 are illustrated schematically in Figs. 5A, 5B and 5C. These figures clerly show how in this case the plane A, thanks to the particular construction described above, is maintained always perpendicular to both the thread and the contact surface of the sliding blocks 6, in all the different positions of the screw, and then correspondingly varying its inclination with respect to the longitudinal axis H of the screw 7.
  • the solution described above in addition to having solved the problem of misalignment between opposed sliding blocks P of the known art, also involves various other advantages and, in particular, a substantial stress reduction on the slider 3 and the screw 5 and thus a greater useful life of these components.
  • the dual single-piece sliding block T according to the present invention provides a large surface area of sliding contact between the sliding blocks 6 and the screw 5, and then a low specific contact load.
  • the particular structure of the dual single-piece sliding block T of the present invention thanks to the reduced overall dimensions of the support structure, also allows to decrease the value of the vertex angle of the thread cross section of the worm screw 5, which is substantially triangular, to values less than 15°, resulting in an increase of the transmittable torque in the slider/worm screw coupling, thanks to the increase of the active component (parallel to the thread) of the transmitted force, the lever arm bein the same.
  • the control mechanism of the present invention is therefore apt to offer a better overall mechanical efficiency with respect to known mechanisms.
  • the very compact conformation of the dual single-piece sliding block T allows the use of a suitable hydrostatic lubrication system, apt to ensure the formation of a continuous meatus of lubricating substance on the coupling between the sliding blocks 6 and the worm screw 5, even in the positions of movement reversal of the slider 3 and in the toughest working conditions.
  • This allows to further reduce the wear of the sliding blocks 6, with a considerable advantage in terms of lower cost of replacement parts and fewer interruptions of the weaving operations for replacement of such parts.

Landscapes

  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Transmission Devices (AREA)
  • Looms (AREA)
EP16734734.3A 2015-05-22 2016-05-18 Mechanismus zur steuerung der hin- und herbewegung von schussfadengreifern in einer webmaschine Active EP3298185B1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
ITUB2015A000830A ITUB20150830A1 (it) 2015-05-22 2015-05-22 Meccanismo perfezionato per comandare il movimento alternato delle pinze di trasporto della trama in un telaio tessile
PCT/IB2016/052904 WO2016189429A1 (en) 2015-05-22 2016-05-18 Mechanism for controlling the reciprocating movement of weft carrying grippers in a weaving loom

Publications (2)

Publication Number Publication Date
EP3298185A1 true EP3298185A1 (de) 2018-03-28
EP3298185B1 EP3298185B1 (de) 2019-06-05

Family

ID=53901005

Family Applications (1)

Application Number Title Priority Date Filing Date
EP16734734.3A Active EP3298185B1 (de) 2015-05-22 2016-05-18 Mechanismus zur steuerung der hin- und herbewegung von schussfadengreifern in einer webmaschine

Country Status (6)

Country Link
EP (1) EP3298185B1 (de)
JP (1) JP6751413B2 (de)
CN (1) CN107820525B (de)
HK (1) HK1251628B (de)
IT (1) ITUB20150830A1 (de)
WO (1) WO2016189429A1 (de)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IT201900009372A1 (it) 2019-06-18 2020-12-18 Itema Spa Telaio tessile comprendente un dispositivo ottico di monitoraggio dello stato di usura dei nastri di comando delle pinze

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CS209426B2 (en) * 1975-03-10 1981-12-31 Albatex Ag Facility for the control of needle motion for loading the weft on the weaving machines
IT1196136B (it) * 1984-06-07 1988-11-10 Vamatex Spa Meccanismo per il comando dei movimenti di organi di inserzione della trama in telai di tessitura senza navette
CN85104954B (zh) * 1985-06-28 1988-12-14 瓦马特克斯联合股票公司 无梭织机中控制引纬元件运动的机构
US5651396A (en) * 1995-03-09 1997-07-29 National Science Council Variable pitch lead transmission mechanism for weft gripper strap drive
US5526851A (en) * 1995-04-24 1996-06-18 National Science Council Variable pitch cyclindrical cam mechanism for controlling the motion of a weft insertion member
CN2267260Y (zh) * 1996-11-18 1997-11-12 林林波 无梭织布机用的控制引纬驱动的装置
DE102004008448A1 (de) * 2004-02-16 2005-09-01 Picanol N.V. Vorrichtung zum Umformen einer Rotationsbewegung in hin- und hergehende Rotationsbewegungen
DE102006016873B3 (de) * 2006-04-07 2007-08-02 Lindauer Dornier Gmbh Greiferstangen-Antrieb einer Webmaschine und Webmaschine mit einem Greifersystem

Also Published As

Publication number Publication date
ITUB20150830A1 (it) 2016-11-22
JP2018522146A (ja) 2018-08-09
JP6751413B2 (ja) 2020-09-02
HK1251628A1 (zh) 2019-02-01
HK1251628B (zh) 2019-11-29
EP3298185B1 (de) 2019-06-05
WO2016189429A1 (en) 2016-12-01
CN107820525A (zh) 2018-03-20
CN107820525B (zh) 2019-02-15

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