The present disclosure relates to the processing of continuous flow of an elongate windable element.
The processing of elongate windable elements such as fiber or synthetic threads, as used in the textile industry, wire filaments and the like, is well known. Such processing may be required for the purpose of applying different types of treatment, such as dyeing, coating and the like, or as part of a continuous feed of such elements along a production line, for example, in the textile industry.
Examples of systems which process thread are the present Applicant's WO 2017/013651 entitled An Integrated System and Method for Treating a Thread and Using Thereof, and WO 2017/203524 entitled System, Machine and Method for Treating Threads or Parts Thereof.
In accordance with an embodiment of the present disclosure, there is provided a treatment unit for treating a continuously through-flowing elongate windable element, wherein the unit includes:
(a) a substantially sealed enclosure for containing a gaseous environment, the enclosure having an inlet port for the continuous ingress of an elongate windable element and an outlet port for the continuous egress of treated elongate windable element;
(b) treatment apparatus located within the enclosure, for treating the elongate windable element therein; and
(c) a spatial loading system located within the enclosure, for continuous collection of the elongate windable element within the enclosure, and for conveying the elongate windable element from the inlet port to the outlet port.
Additionally, treatment by the treatment apparatus causes a release of materials sought to be contained into the interior of the enclosure, and the treatment unit also includes pressure-reducing apparatus within the enclosure for preventing the exhaustion of the materials sought to be contained from within the enclosure to the exterior thereof.
Further, the pressure-reducing apparatus is operative to cause a localized reduction in pressure within the enclosure.
Additionally, the pressure-reducing apparatus includes a blower for gas circulation within the enclosure, operative to cause a reduction in pressure in an area adjacent to the inlet port.
Further, the treatment unit also includes: a suction device for removing gas from the interior of the enclosure; and
apparatus for collecting the materials sought to be contained so as to prevent their release into the atmosphere exterior to the enclosure.
Additionally, the spatial loading system is operative to convey the elongate windable element through the enclosure at a rate predetermined so as to expose it to treatment by the treatment apparatus for a predetermined dwell time.
Further, the inlet and outlet ports are spaced apart by a predetermined linear distance, the spatial loading system includes one or more loading members having a non-linear loading surface for winding the elongate windable element therealong along a non-linear loading path,
and wherein the length of the loading path is of a magnitude which is at least three times the linear distance between the inlet and outlet ports.
Additionally, the one or more loading members have a generally cylindrical surface for receiving the elongate windable element in a wound arrangement.
Further, one or more of the loading members is revolvable, and the spatial loading system also includes a drive for rotation thereof.
Additionally, the non-linear loading path is serpentine.
Further, the one or more loading members are a plurality of discrete loading members defining nodes along the serpentine loading path.
Additionally, the plurality of discrete loading members includes first and second opposing arrangements of discrete loading members, and wherein on loading, the elongate windable element becomes wound alternately about opposing loading members of each of the first and second arrangements, along the serpentine loading path.
Additionally, the inlet port is a slotted opening for the lateral insertion of a length of the elongate winding element into the treatment unit;
the first arrangement of discrete loading members is arranged in a predetermined mutual spatial relationship relative to the slotted opening so as to receive the elongate winding element therefrom;
the second arrangement of discrete loading members is movable relative to the first arrangement and the slotted opening between a first position and a second position,
wherein, in the first position, the second arrangement is disposed such that the slotted opening is disposed between the first and second arrangements,
and in the second position, the second arrangement is disposed distally from the slotted opening such that the first arrangement is positioned therebetween;
wherein each loading member of each of the first and second arrangements is spaced apart so as to enable passage of the second arrangement of discrete loading members through the first arrangement of discrete loading members when moving between the first and second positions; and
wherein when the second arrangement is located in the first position and a length of the elongate windable element is introduced laterally through the slotted opening so as to overlie the first arrangement of discrete loading members, the second arrangement is operative to translate towards the second position, through the first arrangement of discrete loading members, towards the second position, so as to engage the elongate windable element and to pull it through the members of the first arrangement along the serpentine loading path.
In accordance with a further embodiment, the spatial loading system also includes a rotational winding arm for engaging the elongate windable element so as to wind it around the one or more loading members.
Additionally, the loading path is helical, and the one or more loading members are configured to receive the elongate windable element thereabout in a helical arrangement, of which adjacent coils are non-touching.
Further, the exterior of each of the one or more loading members is contoured so as to define the helical loading path.
Additionally, the spatial loading system also includes:
a drive;
a transmission for transmitting a rotational motion from the drive to the rotational winding arm; and
a controller for controlling the operation of the drive, the controller operative to adjust the drive in a manner so as to adjust the dynamic conditions at which the spatial loading system collects and conveys the elongate windable element from the inlet port to the outlet port of the enclosure.
Further, the controller is operable to normally operate the drive in a direction so as to cause loading of the elongate windable element by the spatial loading system, and wherein the controller is further selectably operable to operate the drive in reverse, thereby to cause unloading of the elongate windable element from the spatial loading system.
Additionally, one or more of the loading members is revolvable, and wherein the transmission is also operative to transmit thereto, a second rotational motion from the drive.
Further, there are provided a plurality of generally cylindrical loading members mounted for rotation about a central axis.
Additionally, the spatial loading system is mounted within the enclosure onto a central support axis defining the central axis and is adapted for selectable rotation thereabout.
Further, the treatment apparatus includes at least two mutually independently operable treatment sources for treating the elongate flexible element in at least two mutually independent treatment zones.
Additionally, one or more of the treatment sources is a temperature treatment apparatus.
Further, two or more of the treatment sources are mounted within the enclosure and are mutually independently operable, each being operable at a selected temperature so as to define at least two independently controllable temperature treatment regions within the enclosure.
Additionally, the elongate flexible element is marked with a marking substance and after entry into the enclosure through the inlet port, the spatial loading system is operative to expose the substance bearing elongate flexible element to a predetermined treatment by the treatment apparatus for a desired dwell time.
Further, the elongate flexible element is a dyed thread, the treatment unit is a dryer, and the treatment apparatus includes one or more heat sources operative to dry the thread prior to its egress from the dryer.
In accordance with an additional embodiment of the present disclosure, there is provided a substantially sealed enclosure for the through-processing of a continuously through-flowing elongate flexible element bearing a treatable substance which emits materials sought to be contained during treatment in the enclosure, which includes:
(a) a plurality of walls defining an interior;
(b) an inlet port for the continuous ingress of an elongate flexible element into the interior;
(c) an outlet port for the continuous egress of the treated elongate flexible element;
(d) treatment apparatus located within the enclosure, for treating the elongate windable element therein, giving rise to the release of materials sought to be contained within the enclosure; and
(e) pressure-reducing apparatus operative to cause a localized reduction in pressure within the enclosure.
Additionally, the pressure-reducing apparatus includes a blower for gas circulation within the enclosure, operative to cause a reduction in pressure in an area adjacent to the inlet port.
Further, the substantially sealed enclosure also includes:
a suction device for removing gas from the interior of the enclosure; and
apparatus for collecting the materials sought to be contained so as to prevent their release into the atmosphere exterior to the enclosure.
In accordance with a further embodiment of the present disclosure, there is provided a collection unit for handling of a continuous through flow of an elongate windable element, the collection unit including:
(a) an enclosure for the through-processing of a continuously through-flowing elongate windable element, the enclosure having an inlet port for the continuous ingress of the elongate windable element and an outlet port for the continuous egress of the elongate windable element; and
(b) a spatial loading system located within the enclosure, for continuous collection and paying out of the elongate windable element within the enclosure, and for conveying the elongate windable element from the inlet port to the outlet port.
Additionally, the inlet and outlet ports are spaced apart by a predetermined linear distance, the spatial loading system includes one or more loading members having a non-linear loading surface for winding the elongate windable element therealong along a non-linear loading path,
and wherein the length of the loading path is of a magnitude which is at least three times the linear distance between the inlet and outlet ports.
Further, each of the one or more loading members has a generally cylindrical surface for receiving the elongate windable element in a wound arrangement.
Additionally, one or more of the loading members is revolvable, and the spatial loading system also includes a drive for rotation thereof.
Further, the non-linear loading path is serpentine.
Additionally, the one or more loading members include a plurality of discrete loading members defining nodes along the serpentine loading path.
Further, the plurality of discrete loading members includes first and second opposing arrangements of discrete loading members, and wherein on loading, the elongate windable element becomes wound alternately about opposing loading members of each of the first and second arrangements, along the serpentine loading path.
Additionally, the inlet port is a slotted opening for the lateral insertion of a length of the elongate winding element into the enclosure;
the first arrangement of discrete loading members is arranged in a predetermined mutual spatial relationship relative to the slotted opening so as to receive the elongate winding element therefrom;
the second arrangement of discrete loading members is movable relative to the first arrangement and the slotted opening between a first position and a second position,
wherein, in the first position, the second arrangement is disposed such that the slotted opening is disposed between the first and second arrangements,
and in the second position, the second arrangement is disposed distally from the slotted opening such that the first arrangement is positioned therebetween;
wherein each loading member of each of the first and second arrangements is spaced apart so as to enable passage of the second arrangement of discrete loading members through the first arrangement of discrete loading members when moving between the first and second positions; and
wherein when the second arrangement is located in the first position and a length of the elongate windable element is introduced laterally through the slotted opening so as to overlie the first arrangement of discrete loading members, the second arrangement is operative to translate towards the second position, through the first arrangement of discrete loading members, towards the second position, so as to engage the elongate windable element and to pull it through the members of the first arrangement along the serpentine loading path.
In accordance with yet a further embodiment, the spatial loading system also includes a rotational winding arm for engaging the elongate windable element so as to wind it around the one or more loading members.
Additionally, the loading path is helical, and the one or more loading members are configured to receive the elongate windable element thereabout in a helical arrangement, of which adjacent coils are non-touching.
Further, the exterior of each of the one or more loading members is contoured so as to define the helical loading path.
Additionally, the spatial loading system also includes:
a drive;
a transmission for transmitting a rotational motion from the drive to the rotational winding arm; and
a controller for controlling the operation of the drive,
the controller operative to adjust the drive in a manner so as to adjust the dynamic conditions at which the spatial loading system collects the elongate windable element and conveys the elongate windable element from the inlet port to the outlet port of the enclosure.
Further, the controller is operable to normally operate the drive in a direction so as to cause loading of the elongate windable element by the spatial loading system, and wherein the controller is further selectably operable to operate the drive in reverse, thereby to cause unloading of the elongate windable element from the spatial loading system.
Additionally, one or more of the loading members is revolvable, and wherein the transmission is also operative to transmit a second rotational motion thereto, from the drive.
Further, there are provided a plurality of generally cylindrical loading members mounted for rotation about a central axis.
Additionally, the spatial loading system is mounted within the enclosure onto a central support axis defining the central axis and is adapted for selectable rotation thereabout.
In accordance with yet a further embodiment of the present disclosure, there is provided a multi-station system of processing a continuous throughflow of an elongate windable element, which includes:
(a) at least first and second treatment units for the through flow and treatment of an elongate windable element, the second treatment unit being operable to normally receive from the first treatment unit an outflow of elongate windable element treated therein in a continuous process,
wherein the first treatment unit is operative to emit therefrom the elongate windable element at a first rate of travel, and the second treatment unit is operative to intake the elongate windable element at a second rate of travel, and
wherein the first and second rates are different one from the other; and
(b) a collection unit disposed between the at least first and second units, adapted for selectably receiving and collecting a throughflow of the elongate windable element from the first treatment unit at the first rate, and for providing the elongate windable element to the second treatment unit at the second rate, wherein the collection unit is operative to selectively collect the through flowing element at a rate selected to change the rate of travel of the through flowing element from the first rate to the second rate.
Additionally, each of the at least first and second treatment units is constructed and operative in accordance with any of the treatment units disclosed herein.
Exemplary embodiments are illustrated in referenced figures. Dimensions of components and features shown in the figures are generally chosen for convenience and clarity of presentation and are not necessarily shown to scale. The figures are listed below.
The terms used herein denote also inflections and conjugates thereof. Unless otherwise noted, technical terms are used according to conventional usage. Unless otherwise explained, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. The singular terms “a,” “an,” and “the” include plural referents unless context clearly indicates otherwise. Similarly, the word “or” is intended to include “and” unless the context clearly indicates otherwise. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of this disclosure, suitable methods and materials are described below. The term “comprises” means “includes.” The abbreviation, “e.g.” is derived from the Latin exempli gratia and is used herein to indicate a non-limiting example. Thus, the abbreviation “e.g.” is synonymous with the term “for example.”
In case of conflict, the present specification, including explanations of terms, will control. In addition, all the materials, methods, and examples are illustrative and not intended to be limiting.
Referring now to
In its most general form, system 10 includes a plurality of processing stations through which element 12 flows substantially continuously.
As seen in
Dyeing station 14 is generally intended to mean a station for applying a dye to a thread, for example, as described in the above-referenced WO 2017/013651, and dryer 16 is intended to mean a treatment unit into which dyed thread enters in a continuous throughflow from dyeing station 14, undergoes a drying process as described below, and thereafter exits. It will thus be appreciated that unless specified to the contrary, the terms ‘treatment unit’ and ‘dryer’ are used interchangeably herein.
Referring now to
As seen in
It will be appreciated that unit 16 is not limited by scale or size. Accordingly, enclosure 20 within which element 12 is collected, and within which a treatment may be provided as described herein, may be of any predetermined size, varying from a small tabletop device, to the size of a room or hall used for major industrial production.
Substantially sealed enclosure 20 has an inlet port 22 for the continuous ingress of elongate windable element 12 and an outlet port 24 for the continuous egress of treated elongate windable element. Preferably, there is also provided a gas exit 26, a suction device 28 for removing gas from the interior 30 of enclosure 20, and containing apparatus 32 for process materials sought to be contained and prevented from exiting into the environment outside enclosure 20
The treatment apparatus disposed within enclosure 20 is a function of the treatment required. In the present example, in which unit 16 is a dryer, the treatment required may be temperature related, such that apparatus 34 may be a heater or a cooler; or any other type of treatment which may be beneficial to element 12 flowing through unit 16
Optionally, in accordance with some embodiments, there may also be provided a blower 36 for circulating the gas environment within enclosure 20, as indicated by arrows 38.
In accordance with a preferred embodiment, for example, as shown and described in conjunction with
The treatment unit 16 generally, when in use as a dryer, and spatial loading system 100 in particular, are described in detail hereinbelow, in accordance with various embodiments, in conjunction with
Referring now briefly to
In an alternative embodiment, as illustrated in
As described above, unit 16 includes a spatial loading system 100 for collection and paying out of element 12. A particular feature of system 100 is that it facilitates the collection and throughflow of a length of the element 12 along a loading path which is at least triple, and may be significantly greater than the linear distance between the inlet and outlet ports of enclosure 20.
As illustrated in
Similarly, in
Reference is now made to
Dryer unit 416 has a generally flat configuration, in which enclosure 420 has a generally flat, rectangular configuration, having a removable cover 472. Typically, a pair of generally flat heating elements 434 (
Referring now also to
Referring now also to
In the illustrated embodiment, first arrangement 480 is secured so as to have a position that is fixed relative to slotted opening 473, such that when a length of element 12 is inserted laterally through opening 473 it overlies first arrangement 480 of discrete loading members 481 (
Second bridge member 485 of second arrangement 483 is mounted, as seen particularly in
It is further seen that the first and second arrangements 480 and 483 are spaced apart, as well as being staggered, one relative to the other, so as to enable passage of the second arrangement of discrete loading members through said first arrangement of discrete loading members when moving between the first and second positions
Referring now briefly to
Referring now particularly to
The second arrangement 483 is then moved such that its loading members 484 pass through the first loading members 481, so as to engage the element 12 in the manner shown and described in conjunction with
Referring now to
Unit 516 includes a substantially sealed enclosure 520 for containing a gaseous environment, having an inlet port 602 (
Treatment unit 516 houses a rotational spatial loading system 500 within enclosure 520, for continuous collection and paying out of the elongate windable element therewithin, and for conveying the elongate windable element from inlet port 602 to outlet port 600 after a desired dwell time within enclosure 520. The dwell time is determined, inter alia, according to the type of treatment performed within enclosure 520, the material of which element 12 is composed, and the rate at which element 12 is passed through unit 516. In accordance with the embodiment of
As seen in
A winding system, referenced 630, is also provided, in association with rotational spatial loading system 500, for winding the flexible element 12 thereon, as described below. In the present embodiment, bobbins 616 are rotatable, as described below, and are distributed about a central axis 690 (
In the present example, each bobbin 616 is mounted for rotation about a bobbin axis 617, which typically is its longitudinal axis of symmetry.
As seen in
Treatment unit 516 also includes a rotation drive 625 operative to rotate bobbins 616 about their respective bobbin axes 617. The direction of rotation is preferably opposite to the direction of winding, so as to reduce friction and tension on element 12, as it is wound thereabout. Bobbins 616 are rotated by a rotational driving force which is transferred from rotation drive 625 to rotation gear 618 (
In the present example, in order to limit the number of access points between the interior and exterior of enclosure 520, winding drive shaft 629 extends through the center of rotation drive gear 627, such that a single access opening only, is required therefor.
A further advantage of having the spatial loading system 500 mounted on a single axis is the access that this facilitates to the system, for maintenance. When required, front cover 572 (
As mentioned briefly above and is illustrated in
As seen in
Referring now in more detail to
It will be appreciated that while a specific direction of rotation of winding arm 700 is shown and described herein, for the winding accumulation of the element 12 within unit 516, the direction of rotation of winding arm 700 may be reversed, so as to facilitate the unwinding of element 12, and its paying it out in the opposite direction.
The described translation of leader element 720 along guide screw 730 is provided by the positioning of guide chain or belt 710 about gear wheel 705 (
Static follower 771 of winding arm 700 has a groove formed thereon (
It will be appreciated that the coiled accumulation of element 12 on rotational spatial loading system 500 is of a total length that is significantly greater than the distance between the inlet and exits ports 22 and 24 as described above in conjunction with
Referring once again to
In the present embodiment, as seen, temperature treatment apparatus 534 and blower 536 (
In certain embodiments, controller 800 can be operable by at least one processor configured to execute software. In certain embodiments, controller 800 can be operably by a plurality of electric switches operable according to an embedded software in controller 800. Treatment unit 516 can include a sensor 590 arranged within enclosure 520 to collect measurements, for example, temperature, humidity, presence of a predetermined gas and/or the like. Sensor 590 is operative to communicate with controller 800 to facilitate the operation of treatment unit 516 by controller 800. For example, controller can operate blower 536 to increase or decrease the amount of hot air blown into gaseous environment according to a temperature measurement of the sensor 590 to ensure optimal temperature in the enclosure 520 for treatment of the element 12. Controller 800 can provide the information to an output (not shown), such as a display, thereby facilitating an operator of treatment unit 516 to track the conditions of the gaseous environment. Based on the information, the at least one processor or the operator, via controller 800, can operate treatment unit 516 to provide the desired treatment to the elongate windable element.
Reference is now made to
In order to compensate for these potential differences, there are provided one or more buffer units 1012, for the purpose of optimizing processing of through flowing element 12. Buffer units 1012, illustrated schematically in
It will thus be appreciated that when sought to change the dynamic conditions, such as, rate of travel and/or tension of the through flowing element 12, a given buffer unit 1012, receiving element 12 at a first rate of travel and/or tension, may be operated to selectively accumulate and pay out element 12 at a second rate of travel and/or tension, different from the first rate of travel and/or tension, but equal to the rate of travel and/or tension suitable for the intake of the downstream station.
The descriptions of the various embodiments of the present invention have been presented for purposes of illustration, but are not intended to be exhaustive or limited to the embodiments disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The terminology used herein was chosen to best explain the principles of the embodiments, the practical application or technical improvement over technologies found in the marketplace, or to enable others of ordinary skill in the art to understand the embodiments disclosed herein.
Filing Document | Filing Date | Country | Kind |
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PCT/IL2020/050509 | 5/12/2020 | WO | 00 |
Number | Date | Country | |
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62847972 | May 2019 | US |