Tufting machine and tufting method

The tufting machine with a control system and gauge components addresses the challenge of creating patterned tufted fabrics by precisely controlling yarn placement and pile height, replicating loom-formed fabrics with enhanced efficiency.

JP7721838B2Active Publication Date: 2025-08-13CARD MONROE CORP
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Patent Information

Application Number
JP2024019324
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-03-13
Filing Date
2024-02-13
Publication Date
2025-08-13
Estimated Expiration
2037-03-16

AI Technical Summary

Technical Problem

There is a need for tufting machines and methods that can produce carpets and rugs with enhanced control over the placement and formation of stitches or tufts, particularly for creating patterns with multiple colors and varying pile heights, to replicate the look and feel of loom-formed fabrics efficiently.

Method used

A tufting machine with a control system and gauge components, such as level-cut loop loopers or hooks, that allow selective control over yarn placement and pile height, enabling the formation of patterned tufted articles with varying colors and pile heights, and a transition mechanism to adjust needle positions, ensuring the desired pattern density is achieved.

Benefits of technology

The machine can create tufted articles with precise pattern density and appearance, matching loom-formed fabrics, by controlling yarn placement and pile height, and ensuring the correct density of visible tufts per inch.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a tufting machine of selectively forming a tuft made of threads including threads of a different color or type, in order to form a patterned tufted article such as a carpet.SOLUTION: A series of needles are reciprocated between inside and outside of a back-lining material that has been supplied though a tufting machine, and are engaged by a series of gauge parts so as to pick a thread loop from the needles. The gauge parts would be selectively controlled by an activator so as to be extended or retreated to a position or height sufficient to pick the thread loop from the needles or not to pick the loop. The thread feeding to the needles further would be controlled so as to back rob threads not to be picked by the gauge parts, while the lining feeding would be controlled so as to enable the formation of the tuft in an increased ratio exceeding a pattern stitch ratio for a pattern of the article that has been formed and tufted.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] This patent application is a formalization of previously filed, co-pending U.S. Provisional Patent Application No. 62 / 309,489, filed March 17, 2016, by the inventors herein. This patent application is filed in accordance with the laws and regulations governing provisional patent applications, specifically 35 U.S.C. § 119(e), and 37 CFR §§ 1.78(a)(3) and 1. 78(a)(4) of the filing date of this cited provisional patent application. The specification and drawings of the above-referenced provisional patent application are incorporated herein by reference as if set forth in their entirety.

[0002] The present disclosure relates generally to tufting machines and methods of forming tufted fabrics. Specifically, the present invention relates to tufting machines including selectively controllable gauge components, such as loopers, and methods of forming patterned tufted fabrics, such as carpets, with enhanced control over the placement and formation of stitches or tufts within the pattern. [Background technology]

[0003] In the tufting field, particularly with regard to commercial and hospitality carpets, there has been an increasing demand for the production of carpets and rugs with new visual patterns, including the use of multiple different colors, in an effort to keep up with changing consumer tastes and increased competition in the marketplace. Carpet designers and manufacturers have therefore placed increased emphasis on creating newer, different, and more eye-catching patterns for carpets, rugs, and other tufted fabrics, including patterns having selective placement and display of specific colors or types of yarn within the pattern areas, with the resulting tufted fabric being formed with substantially the correct pattern density of visible tufts for the pattern. Specifically, it has become desirable to attempt to replicate as closely as possible the look and feel of patterned carpets, rugs, or other fabrics that are formed on a loom but that can be created and formed therein on a wide-width tufting machine, allowing for increased efficiency in the production of such patterned tufted carpets, rugs, and / or other fabrics.

[0004] It can therefore be seen that a need exists for systems and methods for forming tufted fabrics, such as carpets and rugs, that address these and other related and unrelated problems within the art. Summary of the Invention [Means for solving the problem]

[0005] Briefly described, the present invention relates generally to a tufting machine and method for forming patterned tufted articles in which the placement and pile height of yarn or stitch tufts formed in a backing can be selectively controlled to enable the formation of patterned tufted articles, such as carpets, having a variety of pattern effects, including the formation of tufted articles with free-flowing multicolor and / or multiple pile height patterns and having a substantially woven or loom-formed appearance. The tufting machine of the present invention will typically include a control system for controlling the operating elements of the tufting machine to form or create a desired input, programmed, scanned, and / or designed pattern. The resulting patterned tufted article can include a variety of pattern effects, including having multiple varying or different pile heights, different types of tufts within the same and / or varying tuft rows, and other texturing effects, as well as placement of various colors and / or types of yarns visible at selected locations and pile heights across the backing, with the resulting tufted article provided with a retained and / or visible color / stitch density per inch that substantially matches the desired or specified pattern density or stitches per inch of the formed / tufted pattern.

[0006] The tufting machine will include at least one needle bar with a series of needles mounted thereon, along with a tufting zone defined along the path of the needles' reciprocating motion. Backing material is fed through the tufting zone, and tufts of yarn are introduced therein as the needles are reciprocated in and out of the backing material. A transition mechanism may also be provided to laterally transition the needle bar across the tufting zone; multiple transition mechanisms may be utilized if the tufting machine includes more than one transition needle bar. The transition mechanism is generally operable in response to control commands from a control system and may comprise a servo-motor-controlled shifter, one or more cams, or other shifters, such as the "SmartStep" transition mechanism manufactured by Card-Monroe Corp., to incrementally move or transition the needle bar laterally across the backing according to programmed and / or designed pattern transition steps for the tufted pattern.

[0007] The tufting machine will also generally include at least one yarn feed mechanism or pattern device for controlling the feeding of yarn to those individual needles. Such pattern yarn feed pattern devices or mechanisms may be, for example, Yarntronics, such as those manufactured by Card-Monroe Corp. TM or Infinity IIE TM The yarn feeders and the like can include various roll, scroll, servo scroll, single-end, or double- or multiple-end yarn feeders. Other types of yarn feed control mechanisms can also be used. At least one yarn feed mechanism or pattern device can be operated to selectively control the feeding of yarn to selected needles according to pattern instructions to form tufts of yarn, including tufts with varying pile heights, to create a desired carpet pattern appearance.

[0008] In other embodiments, the control system may further comprise or operate in conjunction with a stitch distribution control system such as that disclosed in U.S. Patent No. 8,357,989 (the disclosure of which is incorporated herein by reference as if fully set forth), and may control at least one yarn delivery mechanism so that yarns to be shown on the face or surface of the tufted article may generally be delivered in a quantity sufficient to form tufts of the desired height, while non-emerging yarns that should not be shown within the tufted areas will be back-lobbed or otherwise drawn low enough and / or pulled from the backing to avoid creating undesirable gaps or spaces between and / or minimize interference with the face or retained visible tufts of the pattern yarns. For each pixel or stitch location of the pattern, a series of yarns may generally be presented, and yarns not selected to be visible or appearing at such stitch location may be hidden, drawn low enough and / or removed so as not to interfere with the selected yarns that will be visible. Thus, only the desired or selected yarns / colors to be placed at a particular stitch location will typically be retained at such stitch location, while the remaining yarns / colors may be hidden in the pattern area currently being sewn, including by having the yarns removed or pulled from the backing and floating on the surface of the backing material. The control system will further control the coordinated operation of the transfer mechanism, yarn feed mechanism, and gauge component assembly according to instructions for the pattern being formed to control the selective formation of yarn loops and / or tufts, and their length or pile height.

[0009] The gauge element assembly, in one embodiment, will comprise a series of gauge elements provided below the tufting zone, which may include level-cut loopers or hooks reciprocated to engage the needles as they penetrate the backing material and pick loops of yarn therefrom. The gauge elements may further each be selectively movable in a direction generally normal to the direction of their reciprocating motion, e.g., moved substantially perpendicular to the stroke or reciprocating motion of the needles on and off the backing, i.e., up and down, and moved in a reciprocating motion toward and away from the needles to selectively pick and form loops of yarn in the backing material. Additionally, the vertical movement of the gauge elements can be controlled to form varying loops of yarn of varying pile heights in the backing material, including the formation of loops of different pile heights, or even no loops of yarn in the backing. In still further embodiments, other configurations and / or combinations of loop pile loopers, cut pile hooks, cut / loop hooks, level-cut loopers or hooks, and / or other gauge elements may also be used.

[0010] In one embodiment, the gauge component may include a level-cut looper or hook, each having an elongated body, a lower or first portion slidably mounted within the module or gauge block, and a second upper or hooked portion extending at an angle relative to the body portion and which may include an elongated throat terminating in a pointed proximal end or bill. The lower or distal end of the body may extend through the gauge block or module and may be connected to an actuator. The actuator may comprise a hydraulic, air, or pneumatic cylinder, a motor, or other similar actuator. Each actuator of the level-cut loop looper or hook may be selectively controlled according to pattern instructions to raise or retract the looper to a desired vertical position relative to the associated needle for picking the yarn loop from the needle, including picking the yarn loop at different points in the needle's stroke to form loops / tufts of different pile heights, as well as being retracted to a "non-sew" position where the yarn loop will generally not be picked. In a further embodiment or operation, the actuators can be controlled / triggered to operate their level cut loop loopers or hooks to retract or lower the loops of yarn captured thereon to stretch or pull lower and create higher pile and / or other effects, such as for tip shear or other additional pattern texture effects, along with such captured loops.

[0011] The level cut loop loopers or hooks may additionally be arranged to engage the needles, including being arranged substantially in-line, offset, or staggered, and / or in other configurations, as needed to engage in-line, staggered, and / or dual needle bar arrangements. Each level cut loop looper or hook may further be arranged at an angle relative to the needle as it penetrates the backing. For example, in some embodiments, the level cut loop looper or hook may be arranged and / or extendable / retractable along a travel path oriented at an angle that may range from about 1° to about 10° from perpendicular to the needle and / or its stroke or vertical movement, while in other arrangements, no offset may be provided between the level cut loop looper or hook and the needle, i.e., a 0° angle may be provided. The offset of the level cut loop looper or hook relative to the needle can further be varied depending on the spacing and / or alignment of the needles so that the level cut loop looper can be extended and retracted along a path of travel that is angled or offset relative to the needles as needed to minimize potential engagement of the level cut loop looper or hook by the needle as it is retracted.

[0012] In operation of a tufting machine and method according to one exemplary embodiment of the present invention, as needles are reciprocated into and out of the backing, actuators of the level cut loop loopers or hooks can be selectively engaged or disengaged to move them between varying extended or raised positions, including a fully retracted or non-sewing position, in which such level cut loop loopers or hooks do not engage associated or corresponding needles and therefore will not form any yarn loops, and a fully extended position. In their raised or extended positions, the level cut loop loopers or hooks can engage the needles at different penetration depths or points along the needle stroke or cycle of the needles as the needles pass into and out of the backing material, picking and pulling yarn loops of varying lengths from the needles. The yarn loops picked from the needles can therefore have varying pile heights or lengths depending on the position of the level cut loop loopers or hooks relative to their associated or corresponding needles. For example, in the fully raised position, smaller or reduced length yarn loops can be formed to create lower pile heights, or even substantially hidden yarn loops in the backing, including such loops being substantially eliminated by controlling the yarn feed. Longer yarn loops can be picked and formed by loopers presented in the lowered position to create higher or larger pile height yarn tufts in the backing. In addition, the actuators can be further controlled to selectively lower or retract their corresponding level cut loop loopers or hooks, along with the yarn loops captured thereon, to form even longer yarn loops to enable additional patterning effects, such as for tip shears and the like.

[0013] The needles can also generally be shifted laterally relative to the longitudinal movement of the backing through the tufting zone to present different colors or types of yarn at each stitch location of the pattern being formed in the backing material. For example, needles in one or more needle bars can be threaded with a series of desired colors in various thread-up sequences. In addition, the backing material can typically be activated at an actual or effective stitch rate that substantially exceeds the specified or desired pattern stitch rate for the pattern being formed. As a result, as the needles are shifted, a desired number of different colors or types of yarn can be presented at each stitch location, and by controlling the extension and / or retraction of the level cut loop looper or hook, yarn loops can be selectively formed in the backing material, and such yarn loop formation can be further controlled for varying pile heights of the resulting tufts. For example, a series of different colors or types of yarn can be presented at each stitch location as the needle bar is transitioned, and if a tuft of a particular color or type of yarn is not selected to be sewn at that stitch location, the corresponding level cut loop looper or hook can be held in a retracted or lowered position so that loops of such non-selected yarn are generally not formed.

[0014] Additionally, as the needles are reciprocated out of the backing, the yarn feed therefor can also be controlled to cause non-selected yarns to retract, backlob, or otherwise pull back or out of the backing material with the needles, and to cause some yarn loops to retract, backlob, or pull back to a sufficient extent to prevent such yarns from appearing at that stitch location in the finished patterned article. Control of the backing material at higher operating effective or actual stitch rates allows for the formation of a substantially increased number of stitches of yarn presentation into the backing material to substantially avoid missing colors or types of yarn or gaps from being created, appearing, or otherwise appearing in the pattern areas of the patterned tufted article. The finished patterned tufted article can thus be provided with a density of tufts per inch that substantially matches the desired or specified pattern stitch rate, i.e., for a pattern designed with a pattern stitch rate of 8, 10, or 12, or other number of stitches per inch, the resulting finished patterned tufted article can be formed with a density of visible and / or retained face yarns or tufts per inch that can approximately match the pattern stitch rate.

[0015] Various objects, features and advantages of the present invention will become apparent to those skilled in the art upon examination of the following detailed description, when taken in conjunction with the accompanying drawings. The present invention provides, for example, the following. (Item 1) A tufting machine, comprising: at least one needle bar, said at least one needle bar having a series of needles mounted therealong; a backing feed roll for feeding a backing material through a tufting zone of the tufting machine; at least one yarn delivery mechanism for delivering a string of yarn to said needles; a series of gauge elements mounted below the needles and movable to engage with the needles as the needles are reciprocated into the backing material to pick loops of thread therefrom, the series of gauge elements further including: a body extendable and retractable relative to the needles and movably mounted along a support; and an upper portion protruding at an angle from the body and having a throat along which the loops of thread are picked from the needles; a series of actuators coupled to the gauge parts for controlling extension and retraction of the gauge parts; a control system including programming for controlling the yarn feed mechanism and for controlling yarn feed to the needles in coordination with controlling operation of the actuator to move selected ones of the gauge elements between a non-stitching position where the gauge elements will not pick loops of yarn from the needles and an extended picking position where the throats of the gauge elements are located at selected elevations relative to needle penetration depths whereby the throats of the gauge elements pick loops of yarn from the needles to form tufts of yarn in the backing material with varying pile heights according to a pattern being formed; A tufting machine comprising: (Item 2) 2. The tufting machine of claim 1, further comprising a transition mechanism for transitioning the at least one needle bar laterally across the backing material, the control system further comprising programming that enables the control system to coordinately control the transition of the at least one needle bar by the transition mechanism, the feeding of the backing material by the backing feed roll, and control of the actuator, and to control the yarn feed mechanism and control the feeding of the yarn to the needles as they are reciprocated in and out of the backing to present a series of yarns at selected stitch locations along the backing material as the backing material is moved through the tufting zone at an operating stitch rate sufficiently in excess of a pattern stitch rate of a pattern formed to provide several tufts per inch of face yarn retained in the backing that is approximately equal to the pattern stitch rate. (Item 3) Item 2. The tufting machine of item 1, wherein the gauge components comprise level cut loop loopers or hooks. (Item 4) Item 10. The tufting machine of item 1, wherein the actuator comprises a hydraulic or pneumatic cylinder. (Item 5) Item 2. The tufting machine of item 1, wherein the gauge member is movable along a travel path oriented at an angle of about 1° to about 10° relative to the needle. (Item 6) Item 10. The tufting machine of item 1, wherein the yarn delivery mechanism comprises at least one of a scroll, a roll, a single-end, a double-end, or a multiple-end yarn delivery pattern device. (Item 7) feeding a series of threads to a series of needles; feeding a backing along a travel path through a tufting machine; reciprocating at least a portion of the needle to convey the yarn into and out of the backing and to engage the needle with a series of gauge elements to pick loops of yarn therefrom; moving the gauge components in a direction substantially perpendicular to the direction of reciprocating motion of the needles to position the selected ones of the gauge components relative to the corresponding needles such that selected ones of the gauge components engage their corresponding needles and pick loops of thread therefrom, while other ones of the gauge components are positioned in a non-sewing position so as not to pick loops of thread from the needles; controlling the feeding of yarn to the needle in conjunction with selective engagement of the needle by the gauge element to control the formation of loops in the yarn that are picked up by the gauge element and to maintain the yarn that is not picked up by the gauge element using the needle; A method for forming a tufted pattern, comprising: (Item 8) 8. The method of claim 7, wherein feeding the backing through the tufting machine includes feeding the backing at an increased stitch rate approximately equal to the fabric stitch rate of the tufted article, increased by a sufficient amount so that at selected stitch locations of the pattern formed in the backing, some yarns are inserted into the backing and unselected yarns are back-lobbed from such stitch locations, while loops of selected yarns emerging at such stitch locations are captured by the gauge elements to form a series of tufts per inch that approximately matches the desired stitch rate. (Item 9) 9. The method of claim 8, wherein presenting a desired number of threads comprises shifting at least some of the needles to carry the threads transversely relative to the feed of the backing. (Item 10) 8. The method of claim 7, wherein moving the gauge elements includes activating a series of actuators associated with the gauge elements to retract or extend the selected ones of the gauge elements to position the throats of the selected ones of the gauge elements relative to the needles to pick loops of thread therefrom. (Item 11) 8. The method of claim 7, wherein moving the gauge part in a substantially vertical direction comprises moving the gauge part along a path of travel at an angle ranging from about 1° to about 10° relative to a direction of reciprocating motion of the needle. (Item 12) 1. A method of tufting a patterned article having a desired fabric stitch rate using a tufting machine having at least one needle bar carrying a plurality of needles, the method comprising: threading at least some of the needles with a series of different colors or types of thread in a selected order to form a pattern; moving a backing through a tufting zone at a stitch rate that is at least twice the desired fabric stitch rate for the pattern; feeding the yarn to the needles and translating the at least one needle bar as the needles are reciprocated into the backing to present a series of yarns to a series of stitch locations within the backing; reciprocating a series of loopers or hooks toward said needles and selectively extending or retracting said loopers or hooks to an elevation for picking a loop of yarn from said needles; at each stitch location where a loop of presented yarn is not picked by a corresponding looper or hook, controlling said feed of such yarn to retract said corresponding looper or hook to a position where it will not pick the loop of yarn from the needle and back-lob such yarn; controlling the feeding of the picked yarn loops retained at each stitch location when the yarn loops are picked from the presented yarn loops to form a yarn tuft having a desired pile height; A method comprising: (Item 13) Item 13. The method of item 12, wherein selectively extending or retracting the looper or hook comprises activating an actuator for the selected one of the looper or hook in a direction substantially perpendicular to the direction of reciprocating motion of the needle. (Item 14) Item 13. The method of item 12, further comprising one or more of the threads being presented at selected stitch locations. (Item 15) Item 13. The method of item 12, further comprising the step of translating at least some of the needles laterally relative to the backing. (Item 16) Item 13. The method according to item 12, wherein the step of selectively extending or retracting the looper or hook comprises the step of moving the looper or hook along a path of travel in a substantially perpendicular direction at an angle ranging from about 1° to about 10° relative to a direction of reciprocating motion of the needle. (Item 17) A tufting machine, comprising: a backing feed roll for feeding a backing material through the tufting machine; one or more needle bars, each having a series of needles spaced therealong, the needles being reciprocated into and out of the backing material; a yarn feed mounted along the tufting machine for feeding yarn to each of the needles; gauge elements positioned below the backing material, each of the gauge elements having a body with a throat extending at an angle relative to the body, the gauge elements being extendable in a substantially vertical direction as the gauge elements are reciprocated toward and away from the needle that penetrates the backing; a series of actuators each coupled to one of the gauge components and selectively operable to move the throat of a selected one of the gauge components between a disengaged position and an extended picking position relative to the penetration depth of an associated one of the needles picking a loop of yarn therefrom; wherein the feeding of the yarn is controlled in coordination with movement of the selected one of the gauge components by the actuator to form tufts of yarn of a selected pile height in the backing material. Tufting machine. (Item 18) Item 18. The tufting machine of item 17, further comprising a transition mechanism for transitioning the at least one needle bar laterally across the backing material, the control system further comprising programming that enables the control system to coordinately control the transition of the at least one needle bar by the transition mechanism, the feeding of the backing material by the backing feed roll, and control of the actuator, and to control the yarn feed mechanism and control the feeding of the yarn to the needles as they are reciprocated in and out of the backing to present a series of yarn to selected stitch locations along the backing material as the backing material is moved through the tufting zone at an operating stitch rate sufficiently in excess of a pattern stitch rate of a pattern formed to provide several tufts per inch of face yarn retained in the backing that is approximately equal to the pattern stitch rate. (Item 19) Item 18. The tufting machine of item 17, wherein the gauge components comprise level cut loop loopers or hooks. (Item 20) Item 18. The tufting machine of item 17, wherein the actuator comprises a hydraulic or pneumatic cylinder. [Brief explanation of the drawings]

[0016] [Figure 1] FIG. 1 is a side view of one exemplary embodiment of a tufting machine with a selectively controllable looper assembly in accordance with the principles of the present invention. [Figure 2] FIG. 2 is a side view of the tufting zone of the tufting machine of FIG. [Figure 3] FIG. 3 is a perspective view of the tufting machine of FIG. 1-2. [Figure 4A] 4A-4B are perspective views of a portion of a series of needles and their respective level cut loop loopers or hooks, according to one embodiment of the principles of the invention. [Figure 4B] 4A-4B are perspective views of a portion of a series of needles and their respective level cut loop loopers or hooks, according to one embodiment of the principles of the invention. [Figure 5] 5A-5C are side views illustrating the operation of a selectively actuatable level cut loop looper or hook in accordance with the principles of the present invention.

[0017] Those skilled in the art will understand that, according to common practice, the various features of the figures discussed below are not necessarily drawn to scale, and that the dimensions of the various features and elements of the figures may be enlarged or reduced so as to more clearly illustrate the embodiments of the invention described herein. DETAILED DESCRIPTION OF THE INVENTION

[0018] Referring now to the drawings, in which like numerals refer to like parts throughout the several views, FIGS. 1-5C generally illustrate an embodiment of a tufting machine 10 and method for forming patterned tufted articles in accordance with the principles of the present invention, in which the placement of stitches or tufts 5 of yarn Y can be controlled and located at desired locations within a backing material B. Such tufts or stitches can be formed with a sculpted, multiple pile height tufted appearance and can be positioned with increased selectivity and / or control to create further variation or free-flowing pattern effects. For example, tufted articles can be formed using yarn tufts formed with varying pile heights to provide a sculpted appearance, and using different colors or types of yarn to form multicolor patterns with various geometric and / or free-flowing designs. In addition, it will be understood that various numbers of different types and / or colors of yarn (i.e., two, three, five, six, etc.) can be used to form patterned tufted articles of multiple pile heights in accordance with the principles of the present invention.

[0019] As generally illustrated in FIG. 1, in one embodiment, a tufting machine 10 will include a frame 11, which may include a head or upper portion 12 that houses a needle bar drive 13 and defines a tufting zone T. The needle bar drive mechanism 13 (FIGS. 1 and 2) typically includes a series of push rods 14 that may be connected by connector rods 17 to a needle bar drive 16 (such as a gear box / assembly) shown in FIG. 1 or a similar mechanism, which in turn may be connected to and driven by, for example, one or more drive belts or drive chains 19, to a main drive shaft 18 of the tufting machine, which itself is driven by a motor, such as a servo motor. Alternatively, the push rods 14 of the needle bar drive mechanism 13 may be connected directly to the main drive shaft 18 via connector rods 17, for drive from the main drive shaft or by an independent drive system (not shown).

[0020] An encoder or similar sensor may additionally be provided to monitor the rotation of the main drive shaft and report the position of the main drive shaft to a control system 25 (FIG. 1) that controls the operation of the tufting machine 10. The control system 25 may generally comprise a tufting machine control including a computer / processor or system controller 26 with an operator interface 26A, such as a touch screen, keyboard, mouse, or the like, through which an operator can input patterns, make adjustments, etc. In some embodiments, the control system 25 may comprise or include a stitch distribution control system such as disclosed in U.S. Pat. No. 8,359,989, the disclosure of which is incorporated herein by reference as if fully set forth, and the controller 26 further includes programming for control methods for forming tufted patterns, including sculpted-like patterns, having tufts formed at multiple pile heights and with various color / stitch placement control patterns such as disclosed in U.S. Pat. No. 8,359,989.

[0021] The control system 25 will generally include programming that enables monitoring and control of the operating elements of the tufting machine 10, such as the needle bar drive mechanism 13, the yarn feed device 27, the backing feed roll 28, the main drive shaft 18, the needle bar transition mechanism 40 (FIG. 3), and the gauge component assembly 30 mounted below the tufting zone T of the tufting machine, in accordance with calculated / determined pattern instructions, as discussed more fully below. The control system 25 (FIG. 1) may also receive and execute or store pattern information in the memory storage of the system controller 26. In response to the formulated / programmed pattern instructions, the control system 25 will control the operating elements of the tufting machine 10 to form a desired tufted pattern in the backing material B as the backing material is forced through the tufting zone T by the backing feed roll 28 in the direction of arrow 33, as shown in FIGS. 1-3.

[0022] In some embodiments, system controller 26 of control system 25 can be programmed with instructions for forming one or more desired patterns for one or more tufted articles, generally including a series of pattern steps, which steps can be created or calculated manually or through the use of a design center or design software as would be understood by one of ordinary skill in the art, or can receive such patterns via input from a disk, USB, or other external drive, or through a network connection. Alternatively, controller 26 can include image recognition software that allows scanned and / or designed pattern images, such as designed patterns, including pile height and other features, such as the placement of loop pile and cut pile tufts in the pattern, indicated by different colors or similar markers or indicators, as well as photographs, drawings, and other images, to be input, programmed, recognized, and processed by the control system, including receiving input from a design center, or through various design software systems, or via a scanner or other imaging device 31 (FIG. 1). The control system can recognize and identify various pattern features, including color and / or differences in texture of the designed pattern image, which indicate texture effects such as placement or location of loops and / or cut pile tufts, and can assign selected yarns thereto.

[0023] Additionally, in embodiments such as when control system 25 operates with, comprises, or includes the functionality of a stitch distribution control system, as disclosed in U.S. Patent No. 8,359,989 (incorporated herein by reference as if fully set forth), the control system can also be provided with software / programming to read and recognize the colors of the input scanned pattern and can assign feed locations for the yarn being fed from the feed creel to various of the needles based on the thread-up sequence of the needles in the needle bar to optimize the feeding of various colors of yarn in the creel for its best use to form the pattern area recognized from the pattern image. The system control can further create a pattern area or pattern mapping, including a series of pattern pixels or tuft / stitch placement locations, that identify the spaces or locations where various colors of yarn and / or cut / loop pile tufts will be selectively placed to form the imaged pattern. The desired pattern density, i.e., the desired number of stitches per inch, that will appear on the face side of the finished patterned tufted article can also be selected, and the actual effective or working process stitch rate for the pattern can be calculated to achieve the desired fabric stitch rate appearance of the pattern.

[0024] The control system 25 of the present invention may further include programming to receive, determine, and / or execute various transition or cam profiles, or may calculate suggested transition profiles based on scanned, input, or other designed pattern images or pattern files. Effectively, in one embodiment, a designed pattern file image, photograph, drawing, etc. may be loaded, scanned, or otherwise input at the tufting machine or via a network connection, and the control system may read, recognize, and calculate pattern steps / parameters, including control of yarn feed, control of backing movement and / or needle reciprocation to form tufts in the backing at an effective stitch rate that achieves the desired pattern density, cam / transition profile, and yarn alignment that matches the scanned and / or designed pattern image, and thereafter control the operation of the tufting machine to form this selected pattern. The operator may additionally select or modify the stitch rate, yarn feed, selected cam profile, or calculated transition profile, such as by indicating whether the pattern is to have two, three, four, five, six, or more colors, or a desired number of pattern repeats, and / or via manual override control / programming, manually calculate, input, and / or adjust or change the creel allocation, transition profile, and / or color mapping produced by the control system, as needed.

[0025] As shown in FIGS. 1-3 , the tufting machine 10 may further include one or more needle bars 35 attached to and driven by the push rod 14. The needle bars 35 move a series of needles 36 in a reciprocating motion (indicated by arrows 37 / 37′) in and out of the backing material B to convey or insert the yarn Y into the backing. In some embodiments, the needles may be arranged in a single in-line row along one or two needle bars. In other embodiments, the needles 36 may be mounted in an alternating arrangement along a single needle bar or along a pair of needle bars, with offset rows of needles spaced laterally along the length of each needle bar and interleaved across the tufting zone of the tufting machine. The needle bars 35 may further be translatable laterally across the width of the backing material to translate or step the needles 36 in a direction transverse to or generally perpendicular to the longitudinal path of travel through the tufting machine. Thus, although one exemplary embodiment may be shown in the figures including a single needle bar 35 with an in-line row of needles 36 arranged along it, the present invention is not limited to the use of a single needle bar or any particular configuration of needles. Instead, it will be understood by those skilled in the art that additional arrangements of dual needle bars and single needle bars having spaced apart rows of needles 36, which may be arranged in-line or in an alternating or offset configuration, both of which may be further shifted, may also be utilized in a tufting machine 10 incorporating a system according to the present invention.

[0026] Each needle will generally include a shank or body 38 terminating in a pointed end 38A and including a breakaway point or area 39 where gauge element 32 can engage and pick up thread Y from the needle, as shown in FIGS. 4A-5A. As the needles are reciprocated in a substantially vertical motion in the direction of arrows 37 and 37' (FIG. 2), they will be selectively engaged by gauge element 32 of gauge element assembly 30, as shown in FIGS. 5A-5C, to penetrate into and out of backing material B along a stroke to a desired or predetermined penetration depth, carrying thread Y therewith and picking up a loop L of thread from the needle. Additionally, as shown in FIG. 3, a transition mechanism 40 can also be coupled to needle bar 35 (or multiple needle bars) when used to transition the needle bar laterally across the tufting zone in the direction of arrows 41 and 41' according to calculated or computed pattern instructions. The transition mechanism 40 is suitable for use with Smart Step needles, such as those manufactured by Card-Monroe Corp. TM The needle bar shifter may include a type of shifter, or alternatively may include various other types of shifting mechanisms, including servo motor or hydraulically controlled shifters and / or pattern cam shifters as are conventionally used. Additional shifting mechanisms may also be used, including backing material or jute shifters operable separately or in conjunction with the needle bar shifter to shift the backing material laterally relative to the needles.

[0027] As further illustrated in Figure 1, one or more yarn feed mechanisms or devices 27 may be mounted to the frame 11 of the tufting machine 10 for controlling the feeding of yarn Y to each of the needles 36 during operation of the tufting machine. For example, as shown in Figure 3, a series of different types or colors of yarn (Y1-Y4) may be fed to each of the needles in a selected thread-up sequence or order (e.g., ABCD), with the thread-up sequence generally determined or selected based on the pattern being performed. Additionally, although one yarn feeding unit 27 is shown along one side of the tufting machine 10 (for illustrative purposes), in other embodiments, multiple yarn feeding units can be mounted on one or both sides of the tufting machine to feed yarn to the needles 36 of one or more needle bars 35.

[0028] There are a variety of yarn feed devices that can be utilized with the stitch distribution control system of the present invention to control the feeding of different yarns Y to various ones of the needles 36. The pattern yarn feed device or mechanism 27 (FIG. 1) can comprise a conventional yarn feed / drive mechanism, such as a roll or scroll pattern device having a series of rolls that extend at least partially along the tufting machine and are driven by a motor under the direction of the control system 25 to control the feeding of yarns across the tufting machine to form pattern repeats and / or multiple pile heights and / or other texture effects across the width of the backing material. Such yarn feed mechanisms or devices include the Quick Thread 1000, manufactured by Card-Monroe Corp. TM , Enhanced Graphics TM and / or multiple pile height scroll yarn feed controls / devices. Alternatively, an Infinity TM and Infinity IIE TM Other types of pattern yarn feeding devices can be used, including the use of individual yarn feed rolls or drives 45 to control the feeding of a single yarn (or end) or multiple ends of yarn (i.e., 2-4 or more yarns) to needles 36, such as single and multi-end / servo scroll devices, including systems, having multiple yarn feed drives 45 as shown in FIG. 1, each including a motor 46 and feed roll 47, to control the feeding of a specific set of repeating yarns to selected needles.

[0029] For example, U.S. Patent Nos. 6,009,818, 5,983,815, 7,096,806, and 8,887,703 disclose pattern yarn feed mechanisms or devices for controlling yarn feed or distribution to the needles of a tufting machine. U.S. Patent No. 5,979,344 further discloses a precision drive system for driving various operating elements of a tufting machine, including for translating one or more needle bars. All of these systems can be utilized with the present invention and are incorporated herein by reference in their entirety. Thus, while FIG. 1 illustrates a single- or multiple-end type yarn feed mechanism 27, it will be understood by those skilled in the art that the pattern yarn feed mechanisms utilized to control yarn feed can include single- or double-end yarn feed controls, scrolls, rolls, and / or similar devices, and / or various combinations thereof, and can be mounted along one or both sides of the tufting machine. Still further, the control system 25 can provide yarn feed compensation and / or yarn feed modeling to help control and reduce or minimize the amount of unretained / unemerged yarn fed, avoiding excessive yarn feeding and thus minimizing waste during the tufting operation.

[0030] The yarn feed device, in coordination with other operating systems of the tufting machine, including back feed, needle bar transition, and operation of the gauge component assembly 30, can be controlled to selectively feed yarns to their individual needles, allowing for the presentation of several different colors or types of yarns into the packing, and the selective picking and retention of loops of selected or desired ones of the presented yarns (e.g., yarns selected to appear on the front side of the finished patterned article), to form tufts of such yarns with selected or desired pile heights. Additionally, surface or face yarns or tufts, which are those that appear on the face side of the tufted article, can be controlled to be fed in sufficient quantity to form such tufts of a selected color or type of yarn at a desired or specified pile height, while non-appearing yarns, which are those that are hidden in particular color and / or texture areas of the pattern, will be back-lobbed and / or pulled low enough or pulled out of the backing material to a sufficient extent to avoid such yarns interfering with the face yarns or retained tufts that are visible in the pattern areas and to avoid creating undesirable spaces or gaps between the retained yarns or face yarns. In one embodiment, each color or type of yarn that can be placed / tufted into each pixel or stitch location can generally be present at any such pixel or stitch location of the tufting, and only the yarn selected to appear or appear in the pixel or stitch location will be retained and formed at the desired pile height. Thus, for example, with respect to a four-color pattern, each of the four color yarns A, B, C, and D that may be tufted at a particular pixel or location may be presented at such pixel, with only one or more selected yarns of the pattern, e.g., only the "A" yarn, being retained, while the remaining unselected yarns B, BC, BD and / or other combinations may be presented and backlobbed / pulled back and / or removed from the backing at such pixel or stitch location.Thus, when a yarn is presented at a pixel or stitch location, if the yarn is one that will be retained or emerge at the pixel or stitch location, the yarn feed 27 can be controlled to feed a certain amount of yarn to form a tuft of yarn at the pixel or stitch location. If the presented yarn is not one that will be retained or emerge at the pixel or stitch location, it can be controlled so that no loop or tuft may be formed or may be pulled back and / or removed. If no yarn is selected for insertion at a particular pixel or stitch location, the gauge component can also be controlled to selectively pick or not pick loops of yarn presented at a particular pixel.

[0031] As further shown in FIGS. 1-3, the gauge element assembly 30 is generally mounted below the bed 34 and tufting zone T of the tufting machine 10. As the needles penetrate the backing material, they are engaged by a series of gauge elements 32 of the gauge element assembly 30 to form loops L (FIGS. 2-3) of yarn Y to form tufts 5 of a selected color or type of yarn with a selected length or pile height. The gauge elements 32 of the gauge element assembly 30, in one embodiment, can include a series of level cut loop loop loopers or hooks 50, each of which can be slidably mounted within a module block or holder 51, which can be mounted to a gauge bar 52 or similar mount or device for attaching the level cut loop loop loopers or hooks 50 to a drive mechanism 53 that reciprocates the level cut loop loop loopers or hooks toward and away from the needles in the direction of arrows 54 and 54' as shown in FIGS. 1-3. It will further be understood by those skilled in the art that various other types of gauge components may also be used, including cut pile hooks, loop pile loopers, cut loop clips, or other gauge components.

[0032] As shown in Figures 2, 4A-4B, and 5A-5C, each level cut loop looper or hook 50 may generally include an elongated lower body or first portion 60 that may be slidably mounted within its modular block or holder 51, and an upper, second, or hook portion 61 that generally includes an elongated throat 62 that may extend at an angle relative to the lower or body portion 60 and terminate in a generally pointed proximal end or bill 63. For example, the throat and proximal end may be configured similarly to a loop pile looper. As further shown in Figures 1, 2, and 5A-5C, the distal end 64 of the body of each level cut loop looper or hook generally extends through its modular block or holder, through which it is slidable, and may be coupled to an actuator 66 by a gate or connector 67 or the like.

[0033] In one embodiment, as generally illustrated in FIGS. 2 and 5A-5C , the actuators may generally comprise hydraulic or pneumatic cylinders 68, each including a cylinder rod or shaft 69, which would be connected to an associated or corresponding one of the level cut loop loopers by a connector or gate 67. In some embodiments, the actuators may also be used to control the operation of more than one level cut loop looper or hook. Additionally, as would be understood by one skilled in the art, other types of actuators may also be used, including solenoids, motors, or other similar actuation mechanisms. Each of the actuators will generally be coupled to a control system 25, which will selectively control its actuation to control the firing and / or movement of each of the level cut loop loopers relative to the needle. The actuators would be controlled to selectively extend and retract the level cut loop loopers or hooks such that as the level cut loop loopers are reciprocated in the direction of arrows 54 and 54' toward and away from the needle 36, the positions of their throats / bills may be varied in a direction that is generally normal to the reciprocating movement of the level cut loop loopers or hooks in the direction of arrows 54 / 54' and / or in a movement that is substantially perpendicular to the needle (i.e., generally up and down), as illustrated by arrows 71 and 71' in Figures 2, 4A, and 5A-5C. Not only can the actuators be controlled to extend and retract the level cut loop loopers between extended and / or non-sewing positions, but they can also be selectively controlled to extend and / or retract the level cut loop loopers to a series of varying positions or elevations relative to the needle stroke or penetration depth. Thus, the position or location of the throat of the level cut loop looper relative to the needles can be controlled and varied to cause the picking and / or formation of loops of yarn from selected ones of the needles, or to cause no picking of yarn, at varying pile heights or lengths, as shown in Figures 5A-5C.

[0034] For example, in the fully extended position, selected ones of the level cut loop loopers or hooks can pick loops of yarn from the needles engaged thereby, and that loop can generally be formed with a first selected or desired pile height, while others of the level cut loop loops can be extended or retracted to positions or locations between the fully extended and retracted positions to pick and form loops of yarn with a second or other different length or pile height. Some of the level cut loop loopers or hooks can also be moved by their actuators to a fully lowered or retracted position to place them in a non-sewing position, whereby the throats / bills of such level cut loop loopers or hooks are located below the end of the needle's full penetration depth or stroke and therefore will not pick loops of yarn from their corresponding or respective needles. In other operations, the actuators can be selectively controlled or triggered to retract or lower their individual level cut loop loopers after a loop of yarn has been captured thereon, drawing such captured loop of yarn lower and stretching or creating higher pile or increased length yarn for additional patterning effects, such as for tip shear and / or other texture effects.

[0035] As shown in FIGS. 4A-4B , the level cut loop loopers or hooks 50 will each generally be arranged at defined intervals across the tufting zone positioned to engage the needles, including arranged substantially in-line, offset, staggered, and / or other configurations as needed, depending on the needle configuration of one or more needle bars (e.g., if the needles are arranged in-line, staggered, and / or other configurations along a single or dual needle bar). The level cut loop loopers or hooks 50 can further each be arranged at an angle or offset relative to the needles penetrating the backing so as to move or be extendable / retractable along a travel path 71 / 71′ that is angled relative to the needles and / or their breakaway points. Such offset movement of the level cut loop loopers or hooks can additionally be varied as needed to minimize potential engagement of the level cut loop loopers or hooks by the needles as the loopers are retracted, depending on the needle spacing and / or arrangement.

[0036] For example, in some embodiments, the level cut loop looper or hook may be aligned and / or moved along the travel path at an angle / offset, shown as θ in FIG. 4B , which may range from about 1° to about 10° or more from vertical and / or relative to the stroke of the needles as the level cut loop looper is retracted; in one exemplary embodiment, the level cut loop looper or hook may be aligned and / or moved along the travel path at an angle of about 4° to 6° relative to the path or direction of the reciprocating motion of the needles as the needles complete their stroke or reciprocating motion into and out of the backing, while in other embodiments, substantially no offset, i.e., about a 0° angle relative to the needles, may be provided between the level cut loop looper and the needles. Thus, when the level cut loop looper is extended to a sufficient position / height to engage the needle's breakaway area 39 (FIGS. 4A-5A), its throat / bill will generally be properly aligned or positioned to engage and pick loops of yarn from their corresponding needles. As the level cut loop loopers are retracted, they may be moved further along an offset travel path such that their throats / bills may be positioned or located at a location outside the needle travel path to minimize potential inadvertent thread pick-up when the level cut loop loopers are moved to and / or are in a retracted non-sewing position.

[0037] In operation, according to some embodiments, tufted articles can be formed in accordance with the systems and methods of the present invention, with such patterns including the use of multiple different colors and / or types of yarn to form various patterns and pattern effects, as well as sculpted or multiple pile height effects. For example, the systems and methods of the present invention can be operated in conjunction with a stitch distribution control system or thread color placement system such as those disclosed and illustrated in U.S. Patent Nos. 8,141,505, 8,359,987, and 8,776,703, the disclosures of which are incorporated herein by reference as if fully set forth. In such embodiments, the yarn stitches or tufts formed in the backing material can further be formed at an increased or higher actual operating or effective process stitch rate compared to the fabric or pattern stitch rate desired or prescribed for the tufted pattern being formed. Thus, if the pattern or fabric stitch rate or density of the pattern being formed requires that the tufted article have the appearance of 8, 10, 12, etc. stitches per inch formed therein and / or shown on its face side, the actual operating or effective number of stitches per inch formed during operation of the tufting machine will be substantially greater than the desired or specified pattern or fabric stitch rate.Thus, the actual formation of stitches or tufts of yarn in the backing material is achieved at an increased actual operating or effective process stitch rate, whereby, effectively, a greater number of stitches per inch than would be required to appear in the finished pattern are formed in the backing material, and those stitches or face yarns that are not desired to appear or remain on the face side of the pattern region or area being sewn are back-lobbed or pulled out of the backing material to an extent that allows such yarns to be retained or sewn within the backing, while substantially avoiding the creation of undesirable or unnecessary gaps or spaces between the retained or face yarns of the pattern (i.e., those tufts of yarn that will remain visible or appear in the finished pattern of the tufted article).

[0038] For illustrative purposes, in one exemplary embodiment, the effective process stitch rate can be based on or determined by increasing the fabric or pattern stitch rate of the pattern approximately formed or tufted in the selected colors. For a pattern having a desired fabric or pattern stitch rate of about 10-12 stitches per inch and using two to four colors, the effective or operational process stitch rate (i.e., the rate at which stitches are actually formed into the backing material) can be from about 18-20 stitches per inch up to about 40 or more stitches per inch. However, it will be understood by those skilled in the art that additional variations or adjustments to such operational or effective process stitch rates may be made for a particular pattern depending on the type and / or size of the yarn and / or other factors. For example, if a thicker, larger size, or heavier yarn is used, the effective process stitch rate may be subject to additional variations as needed to account for the use of such larger yarn (e.g., for a four-color pattern, the effective process stitch rate may be further varied, such as being performed at about 25-38 stitches per inch, although further variations may be used as needed). Thus, while a selected or programmed pattern being implemented may be designed or desired to have 10-12 stitches per inch as the desired pattern density or stitch rate therefor, the system may actually operate to produce as many as 20-48 or more stitches per inch depending on the number of thread colors and / or types, but visually from the front side of the finished tufted article, only the desired / selected 10-12 stitches will generally appear.

[0039] Additionally, when a series of different colors are being tufted, the needles 36 of needle bar 35 are generally provided with the desired thread-up; for example, for a four-color pattern, an A, B, C, D thread-up can be used on the needles. Alternatively, when two needle bars are used, the needles of each needle bar can be provided with an alternating thread-up sequence, i.e., the A / C threads are on the front needle bar and the rear needle bar is threaded with the B / D color thread-up. Additionally, the needles of such front and rear needle bars can be arranged in an alternating or offset alignment. The needle bar or bars will further be shifted by control of a needle bar shifter 40 (FIG. 2) in conjunction with control of the backing material and control of the yarn feed according to a shift profile for the pattern being formed, generally to effectively present each one or each different type of yarn of a thread color (i.e., 2, 3, 4, 5 colors, etc.) that can be sewn at selected pattern pixels or tuft / stitch locations on the cut pile hooks or level cut loop looper hooks by shifting the needle bars laterally relative to the backing material as the backing material is fed through the tufting zone.

[0040] For example, for a four-color pattern, one through four colors that can be sewn at the next pixel or stitch location are presented to the desired level cut loop looper or cut pile hook as the backing material is incrementally moved approximately 1 / 8 to 1 / 40 inch with each transition or cam movement cycle; i.e., one, two, three, four, or no yarn can be presented at a selected pixel or stitch location. The level cut loop looper or cut pile hook engages to form a loop of yarn, and one or more desired yarns are retained to form selected tufts, while the remaining yarns are generally pulled out of the backing material to float along the backing material. These unretained yarns can be pulled low or backlobbed by controlling the yarn feed mechanism, including pulling the unretained yarns. Thus, each level cut loop looper or cut pile hook is endowed with the ability to tuft any one of the pattern colors, or potentially more than one color (i.e., two, three, four, five, six, etc.), for each pattern pixel or tuft / stitch location associated therewith during each transition sequence and corresponding incremental movement of the backing material, or perhaps none of the colors are presented to it. As described, if none of the different types or colors of yarn are tufted or placed at a particular tuft or stitch location or pixel, the yarn feed can be controlled to limit or otherwise control the needle threads that may be presented at such stitch location or pixel to pull back substantially all of the yarn or otherwise prevent such yarn from being placed at or appearing at that stitch location, and / or the needle bar can additionally be controlled to skip or otherwise avoid or omit needle / thread presentation to that stitch location or pixel.

[0041] The feed of backing material B can be further controlled, i.e., by the stitch distribution control system, in a variety of ways. For example, the tufting machine backing roll 28 can be controlled to hold the backing material in a fixed position for a determined number of stitches or cycles of the needle bar, or can move the backing material at a desired number of stitches per inch, i.e., about 1 / 40 inch per penetration or variations thereof, such that four stitches move about 1 / 10 inch as they are introduced into the backing for a pattern with four colors and an effective stitch rate of 40 stitches per inch. The movement of the backing material can also be varied or manipulated on a stitch-by-stitch or pixel basis, with the average movement of all stitches over the operation or cycle substantially matching the calculated incremental movement of the effective process stitch rate. For example, for a four color cycle, the first stitch can be performed at 1 / 80 inch, the next two stitches at 1 / 40 inch, and the fourth stitch at 1 / 20 inch, so that the average movement of the backing over the four stitch cycle averages 1 / 40 inch for each stitch presented, as needed to achieve the desired stitch / color placement.

[0042] Each different yarn / color that can be tufted at a particular stitch location or pixel can thus be presented at such stitch location or pixel as the pattern is formed in the backing material. To achieve such presentation of yarn at each pixel or stitch location, the needle bar can generally be shifted using a combination of single and / or double jumps or shifts as needed / desired for the calculated or selected cam or shift profile of the pattern being executed / formed, for example, based on the number of colors being executed in the pattern and the area of the pattern area formed by each specific color. Such combinations of single and double shift jumps or steps can be utilized to laterally shift the needle bar to avoid tufting over or engaging previously sewn tufts as the backing material is advanced at its effective or working stitch rate. The backing can also be shifted by a backing or jute shifter, etc., either in conjunction with or separately from the needle bar shifting mechanism.

[0043] 1 and 2, the level cut loop loopers or hooks 50 of the gauge component assembly 30 will be reciprocated toward the needles in the direction of arrow 54 to engage and pick or pull loops of thread from their associated or corresponding needles. Additionally, the actuators 66 for the level cut loop loopers can be selectively controlled and engaged to extend or retract selected ones of the level cut loop loopers or hooks so that the bill 63 and its throat portion 62 are positioned as desired relative to the needles as the needles 36 penetrate and complete their stroke into and out of the backing. 4-5C, the location or positioning of the bill and / or throat portion of the level cut loop looper or hook can be varied between a fully extended or elevated position and a lowered or retracted "non-sew" position where yarn loops can be substantially prevented from being picked and / or formed by such level cut loop looper or hook to provide selective picking of yarn loops, including generally not picking any yarn loops and controlling the length of yarn loops selectively picked from the yarn presented at each stitch location or pixel according to instructions for the pattern being formed. As a result, the locations where selected or desired face yarn loops shown in the "finished" pattern are picked from the needles by the level cut loop looper or hook can be controlled, and the resulting tuft formation from such picked yarn loops remaining in the backing can be further controlled so that they can be formed at a variety of different pile heights.

[0044] The yarn type / color of each series of yarn presented at each pixel or stitch location that is retained or indicated on the face side of the backing at a particular stitch location will generally be determined by the pattern instructions or programming for forming the tufted pattern. Controlling the activation and / or positioning of the level cut loop looper or hook 50 corresponding to or associated with the needle carrying such yarn can enable the tufting machine to selectively pick and retain loops of that yarn at each stitch location where such yarn remains according to the pattern to form a resulting tuft of such yarn at a selected pile height. For example, if a presented yarn is not indicated or appears, the corresponding level cut loop looper or hook can be retracted to a non-sew position so that loops of yarn are not picked, and the yarn feed therefor can be controlled so that the yarn is not retained at the pixel or stitch location. With respect to the retained yarns / colors, i.e., the yarns that appear on the face side of the patterned tufted article, the positions or elevations of the level cut loop loopers or hooks and the yarn delivery mechanisms that deliver these yarns can generally be coordinately controlled to enable the picking and formation of loops of such yarns sufficient to form tufts of the desired type and pile height.

[0045] Further control of backing feed at increased effective or operating process stitch rates (e.g., the actual rate at which stitches are formed in the backing) in accordance with the principles of the present invention further provides an area of more densely or compressed stitches or tufts per inch such that back-lobbed yarns are removed or drawn down sufficiently to avoid creating undesirable spaces or gaps between retained face yarns (those that emerge on the face of the tufted article according to the pattern) or interfering with or showing through such retained face yarns that are formed in the backing material. Additionally, the control system can perform yarn feed compensation and / or yarn feed modeling to help control and reduce the amount of unretained or non-emerging yarns that may "float" on the back of the backing material, further helping to reduce / minimize excess yarn feed and / or waste.

[0046] Additionally, the yarn delivery mechanism controlling the respective delivery of yarn to each of the needles can be selectively controlled to backlob or pull yarns carried by the needles or by the reciprocating motion of the needles substantially out of the backing material, generally retracting or pulling back / pulling some yarn loops to a substantially lower position to avoid such unselected yarn ends from occupying selected stitch locations or otherwise interfering with the placement of yarns shown in particular color regions formed according to selected face yarns or patterns. For example, when particular level cut loop loopers or hooks are retracted to a fully retracted or "non-sew" position, loops generally will not be picked from the needles associated with such fully retracted level cut loop loopers or hooks, while yarn delivery is correspondingly controlled so that yarns are allowed to travel with those needles into and out of the backing material. Additionally, in certain instances where a loop of thread is formed, such as when a level cut loop looper or hook is in a fully extended position and forms a low loop, the resulting loop of thread formed can be further back-lobbed or pulled substantially low or pulled out of the backing material by controlling the thread feed to an extent that leaves an amount of thread engaged with or "sewn" to the backing, while substantially removing such thread to an extent that the ends of such unselected thread generally do not interfere with the placement of the appearing face or selected thread at a particular stitch location within the color area being sewn.

[0047] The placement of non-emerging threads sewn or otherwise secured to the backing material can also be controlled to prevent the formation of such extended length ends that may later snag or cause other defects in the finished tufted article. For example, the control system can also be programmed / set to sew such non-emerging threads or form low stitches at desired intervals, e.g., every 1 inch to 1.5 inches, although larger or smaller intervals can also be used. Thread compensation can also be used to help ensure that a sufficient amount of thread is delivered when necessary to prevent a thread from showing through another color or blowing out, i.e., a thread protruding through one of the stitch threads along with several threads that are placed together, while generally allowing the non-emerging thread to be sewn into the backing material. Additionally, if extended lengths or ends are to be formed for multiple non-emerging threads, the spacing at which such different threads are sewn into the backing material can be varied (i.e., 1 inch on one, 1.5 inches on the other, etc.) to avoid such sewn threads interfering with each other and / or with the threads of the color area being formed.

[0048] Still further, the actuators 66 can also be controlled in conjunction with control of the yarn feed mechanism to engage and cause the formation of extended or elongated yarn loops, such as by retracting or lowering, their respective level cut loop loopers or hooks, along with any loops of yarn captured thereon. The captured yarn loops can thus be further drawn and / or elongated, while the corresponding yarn feed can also be controlled to feed additional amounts of such yarn. As a result, even longer or greater length yarn loops can be formed in the backing, such as for tip shear and / or other patterning features, to create higher pile tufts and / or produce other desired pattern effects. Selective control of the actuators 66 to selectively retract and extend the level cut loop loopers or hooks 50 can further be used to provide additional variations or transition steps or pile heights in the pattern, controlled as needed, for example, to provide more gradual or subtle differences or variations in pile height, or to provide more dramatic or distinct separations between the pile heights of the yarn tufts being formed.

[0049] Thus, across the width of the tufting machine, the control system will control the yarn transfer and feed of each color or desired pattern texture effect so that each color that can or will be sewn at a particular tuft location or pattern pixel will be presented within that pattern pixel space or tuft location for sewing, but only the selected yarn tuft for a particular color or pattern texture effect will remain at that tuft / stitch location or pattern pixel. As will be further described, additional or more colors can also be presented to each looper during the tufting step to form mixed-color tufts or to provide a tweed effect as desired, with two or more stitches or colors being placed at the desired pattern pixel or tuft location. The result of the operation of the stitch distribution control system thus provides a multicolor visual or texture effect of pattern colors that are selectively placed to achieve the desired density and pattern appearance for the finished tufted article. This further enables the creation of a wide variety of geometric, free-flowing, and other pattern effects by controlling the placement of tufts or yarns at selected pattern pixels or tuft locations.

[0050] Thus, the systems and methods for tufting engraved-like multiple pile height patterned articles of the present invention can enable an operator to formulate and execute a variety of tufted patterns, having different looks, textures, etc., on a tufting machine without necessarily having to utilize a design center to plan and create the patterns. Instead, the present invention allows an operator to scan an image (i.e., photograph, drawing, jpeg, etc.) or upload a designed pattern file on the tufting machine in addition to and / or as an alternative to manually preparing a pattern or using a design center, and the stitch distribution control system can read the image, formulate program steps or parameters, and thereafter control the tufting machine substantially without further operator input or control that would necessarily be required to form the desired tufted patterned article.

[0051] The foregoing description generally illustrates and describes various embodiments of the present invention. However, it will be understood by those skilled in the art that various changes and modifications may be made to the above-discussed structures of the present invention without departing from the spirit and scope of the present invention as disclosed herein, and that all matter contained in the above description or shown in the accompanying drawings is intended to be interpreted as illustrative and not limiting. Furthermore, the scope of the present disclosure is intended to cover various modifications, combinations, additions, alterations, etc. to the above-described embodiments that are considered to be within the scope of the present invention. Thus, the various features and characteristics of the present invention as discussed herein may be selectively interchanged and applied to other illustrated and non-illustrated embodiments of the present invention, and numerous variations, modifications, and additions may further be made thereto without departing from the spirit and scope of the present invention as set forth in the appended claims.

Claims

1. A tufting machine, comprising: at least one needle bar, said at least one needle bar having a series of needles mounted therealong; a backing feed roll for feeding a backing material through a tufting zone of the tufting machine; at least one thread feeding mechanism for feeding thread to the series of needles; a translation mechanism configured to translate the at least one needle bar laterally across the backing material; a gauge component assembly below the backing material, the gauge component assembly being movable in a reciprocating motion toward and away from the series of needles as the series of needles are reciprocated into the backing material, and movable to a position to pick a loop of yarn therefrom, the gauge component assembly comprising: a plurality of gauge parts slidably received within a module or holder, each of said plurality of gauge parts including a body having an upper portion, said upper portion projecting from said body at an angle and defining a throat, said loop of thread being picked along said throat from said series of needles; a gauge component assembly comprising: a gauge component assembly, each of the plurality of gauge components being extendable and retractable in a direction substantially perpendicular to a stroke of a corresponding needle of the series of needles; a control system including programming for controlling the yarn delivery mechanism to control the delivery of the yarn to the series of needles in coordination with controlling the extension and retraction in the substantially vertical direction of selected ones of the plurality of gauge elements such that each selected one of the plurality of gauge elements is moved to a selected elevation to form tufts of yarn in the backing material at one or more selected pile heights according to a pattern being formed; A tufting machine comprising:

2. 2. The tufting machine of claim 1, wherein the control system further comprises programming for coordinating control of the transition of the at least one needle bar by the transition mechanism, the feeding of the backing material by the backing feed roll, the extension and retraction of the selected one of the plurality of gauge elements, and control of the yarn feed mechanism that feeds yarn to the series of needles as the series of needles is reciprocated into and out of the backing material to present a series of yarn at selected stitch locations along the backing material as the backing material is moved through the tufting zone at an operating stitch rate that is greater than a pattern stitch rate of the pattern being formed, and to pull out loops of unselected yarn where such loops are not picked up by one of the plurality of gauge elements, wherein the operating stitch rate provides a number of retained tufts per inch of yarn or face yarn retained in the backing material that is equivalent to the pattern stitch rate.

3. The tufting machine of claim 1 , wherein the plurality of gauge components comprise level cut loop loopers, loop pile loopers, or cut pile hooks.

4. 10. The tufting machine of claim 1, wherein the gauge element assembly further comprises a plurality of actuators, each actuator coupled to at least one of the plurality of gauge elements, the plurality of actuators configured to extend or retract the plurality of gauge elements in directions substantially perpendicular thereto.

5. The tufting machine of claim 4 , wherein the plurality of actuators comprise hydraulic or pneumatic cylinders.

6. 2. The tufting machine of claim 1, wherein the selected ones of the plurality of gauge components are extendable and retractable in their additional directions along a path of travel oriented at an angle of between 1° and 10° relative to the stroke of the corresponding needle.

7. The tufting machine of claim 1 , wherein the yarn delivery mechanism comprises at least one of a scroll, a roll, a single-end, a double-end, or a multiple-end yarn delivery pattern device.

8. 10. The tufting machine of claim 1, wherein said at least one needle bar comprises a pair of needle bars, each having a series of needles mounted in spaced rows therealong.

Citation Information

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