Nanoadhesion structures for sporting gear
10966469 · 2021-04-06
Assignee
Inventors
Cpc classification
B29C66/472
PERFORMING OPERATIONS; TRANSPORTING
A43B13/186
HUMAN NECESSITIES
B29C66/729
PERFORMING OPERATIONS; TRANSPORTING
B29C66/1122
PERFORMING OPERATIONS; TRANSPORTING
B29K2033/12
PERFORMING OPERATIONS; TRANSPORTING
B29C66/43
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
A63B33/004
HUMAN NECESSITIES
B29C66/30321
PERFORMING OPERATIONS; TRANSPORTING
A44B19/08
HUMAN NECESSITIES
A41D13/0015
HUMAN NECESSITIES
B29C66/431
PERFORMING OPERATIONS; TRANSPORTING
A63B2209/10
HUMAN NECESSITIES
B29K2033/12
PERFORMING OPERATIONS; TRANSPORTING
A43B13/12
HUMAN NECESSITIES
International classification
A43B13/12
HUMAN NECESSITIES
A43B13/22
HUMAN NECESSITIES
A63B33/00
HUMAN NECESSITIES
A41D13/00
HUMAN NECESSITIES
Abstract
An apparatus including a first surface configured to attach the apparatus to a second surface of another object, and a plurality of elongated nanofibers. Each nanofiber has one end connected to the first surface and an opposite end extending away from the first surface. The plurality of elongated nanofibers is configured to adhere to the second surface by nanoadhesion when brought into contact with the second surface.
Claims
1. An article of apparel comprising: a first fabric panel comprising: an edge, a top surface having a first portion disposed proximate to the edge and a second portion disposed on a side of the first portion opposite of the edge, a bottom surface, a first set of nanofibers disposed on the first portion of the top surface of the first fabric panel, and a first fold of the first fabric panel disposed between the first portion of the first fabric panel and the second portion of the first fabric panel such that the first portion of the first fabric panel is folded over onto the second portion of the top surface of the first fabric panel; and a second fabric panel removably coupled to the first fabric panel, the second fabric panel comprising: an edge, a top surface, a bottom surface having a third portion disposed proximate to the edge and a fourth portion disposed on a side of the first portion opposite of the edge, a second set of nanofibers disposed on the third portion of the bottom surface of the second fabric panel, and a second fold of the second fabric panel disposed between the third portion of the second fabric panel and the fourth portion of the second fabric panel such that the third portion of the second fabric panel is folded over onto the fourth portion of the bottom surface of the second fabric panel, wherein the third portion of the second fabric panel abuts the first portion of the first fabric panel so that the first set of nanofibers couples to the second set of nanofibers via nanoadhesion, the first portion of the first fabric panel being disposed between the third portion of the second fabric panel and the fourth portion of the second fabric panel, and the third portion of the second fabric panel being disposed between the first portion of the first fabric panel and the second portion of the first fabric panel.
2. The article of apparel of claim 1, wherein each nanofiber in the first set of nanofibers is generally perpendicular to the top surface of the first fabric panel and each nanofiber in the second set of nanofibers is generally perpendicular to the bottom surface of the second fabric panel.
3. The article of apparel of claim 1, further comprising: at least one set of stitching disposed along an abutment of the first portion to the third portion.
4. The article of apparel of claim 1, wherein the first fabric panel further comprises: a third set of nanofibers disposed on a fifth portion of the bottom surface of the first fabric panel, the fifth portion being disposed proximate to the edge of the first fabric panel, and the fifth portion and the third set of nanofibers being disposed opposite the first portion and the first set of nanofibers; and a fourth set of nanofibers disposed on the second portion of the top surface of the first fabric panel.
5. The article of apparel of claim 4, wherein the second fabric panel further comprises: a fifth set of nanofibers disposed on a sixth portion of the top surface of the second fabric panel, the sixth portion being disposed proximate to the edge of the second fabric panel, and the sixth portion and the fifth set of nanofibers being disposed opposite the third portion and the second set of nanofibers; and a sixth set of nanofibers disposed on the fourth portion of the bottom surface of the second fabric panel.
6. The article of apparel of claim 5, wherein when the second fabric panel is removably coupled to the first fabric panel, the third set of nanofibers couples to the sixth set of nanofibers via nanoadhesion, and the fourth set of nanofibers couples to the fifth set of nanofibers via nanoadhesion.
7. The article of apparel of claim 1, wherein the first fabric panel is a first fabric panel of a shirt and the second fabric panel is a second fabric panel of the shirt.
8. The article of apparel of claim 1, wherein the edge of the first fabric panel is a bottom edge of a shirt, and the edge of the second fabric panel is a top edge of a pair of pants.
9. The article of apparel of claim 1, wherein the edge of the first fabric panel is a first edge of a cuff on a shirt sleeve, and the edge of the second fabric panel is a second edge of the cuff of the shirt sleeve.
10. The article of apparel of claim 1, wherein the second fabric panel is a pocket.
11. The article of apparel of claim 1, wherein the first fabric panel is a fabric panel of a shirt and the second fabric panel is a hood.
12. The article of apparel of claim 1, wherein the first fabric panel is a fabric panel of a body of a shirt and the second fabric panel is a sleeve.
13. The article of apparel of claim 1, wherein the first fabric panel is a fabric panel of a shirt that includes at least one opening and the second fabric panel is a reconfigurable vent disposed proximate to the at least one opening to alter a size of at least one openings of the shirt.
14. An article of apparel comprising: a first fabric panel comprising: a top surface, a bottom surface, a first set of fabric folds forming a first edge, the first set of fabric folds forming a plurality of folds of the first fabric panel, a first set of nanofibers disposed on the top surface of the first fabric panel and the bottom surface of the first fabric panel within the first set of fabric folds, and a second set of nanofibers disposed on the top surface proximate to the first set of fabric folds; and a second fabric panel removably coupled to the first fabric panel, the second fabric panel comprising: a top surface, a bottom surface, a second set of fabric folds forming a second edge, the second set of fabric folds forming a plurality of folds of the second fabric panel, a third set of nanofibers disposed on the top surface of the second fabric panel and the bottom surface of the second fabric panel within the second set of fabric folds, and a fourth set of nanofibers disposed on the bottom surface proximate to the second set of fabric folds, wherein, when the second fabric panel is removably coupled to the first fabric panel, a portion of the first set of nanofibers couples to the fourth set of nanofibers via nanoadhesion and a portion of the third set of nanofibers couples to the second set of nanofibers via nanoadhesion, the first set of fabric folds being disposed between the top surface of the first fabric panel and the bottom surface of the second fabric panel, the second set of fabric folds being disposed between the bottom surface of the second fabric panel and the top surface of the first fabric panel, and a first fold of the first set of fabric folds is in abutment with a second fold of the second set of fabric folds.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete appreciation of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
(2) The invention will be better understood from reading the description which follows and from examining the accompanying figures. These are provided solely as non-limiting examples of the invention. In the drawings:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(48) Referring now to the drawings, wherein like reference numerals designate identical or corresponding parts throughout the several views.
(49) Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference characters will be used throughout the drawings to refer to the same or like parts.
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(51) When the first terminal end 22 of the nanofiber 20 contacts another surface, attraction forces, including van der Waal forces, adhere the nanofiber end 22 to the other surface. The other surface may also have a second nanofiber attached by adhesive that adheres to the nanofiber and/or the mounting surface. The attraction forces produced by contact with the nanofiber is referred here as nanoadhesion. The resulting attraction forces mimic the action of setae on a gecko's foot.
(52) The nanofibers are constructed using various methods. These methods generally involve casting or molding the fibers, growing them in a solution, or deposition. One method may be to use lithography methods where a recess may be etched in a semiconductor substrate and nitride and oxide layers are deposited on the substrate. The surface then may be patterned and etched. When the underlying structure is etched, a stress difference between the oxide and nitride layers causes the structure to curl and to form a shaft structure. The ends 22 of the shaft may be roughened to increase surface area available for contact by using wet etching, radiation, plasma roughening, electrochemical etching and others.
(53) A preferred method of making nanofibers involves creating yarns of sub-micron diameter fibers. These yarns may be cut from the yarns to release the fibers in lengths such that when adhered to a mounting surface, in a position perpendicular to the mounting surface, the nanofiber will not collapse under its own weight.
(54) The nanofibers may be then collected and prepared for attachment to the mounting surface. The nanofibers may be cleaned to remove contaminants and then chemically treated to accept an electric charge. The nanofibers may be spin-dried and then oven-dried to a specific moisture content. Conductivity may depend on moisture content, so it may be preferable that some moisture remain with the nanofibers. The nanofibers 20 are then packaged in moisture-proof containers 4 to maintain optimal moisture until a later attachment of the nanofibers 20 to a mounting surface.
(55) The nanofibers 20 may then be attached to a mounting surface via a flocking process. There are various types of flocking methods available, but an electrostatic-based flocking method may be preferred for attaching nanofibers to a mounting surface because of its ability to better align the nanofibers to the mounting surface.
(56) Two electrostatic-based flocking processes are preferred for permanently attaching the nanofibers 20 to the mounting surface. The first process involves an adhesive to attach the nanofibers 20 to the mounting surface and the second process involves heat instead of the adhesive.
(57) In the first process shown in
(58) As shown in
(59) This methodology will create a scaled fiber assembly substantially similar to that encountered in nature within the gecko's foot, and in a manner that lends itself to large scale industrial production.
(60) After the adhesive 3 may be applied, the mounting surface 2 may be placed between the flock hopper 5 and a grounded electrode 8 as shown in
(61) The temperature and humidity of the flocking environment may be critical in controlling the charge on the airborne nanofibers. Humidity too low may cause the nanofibers to not effectively take on an electrical charge and humidity too high may cause the nanofibers to undesirably stick or clump to each other. These humidity and temperature levels may be optimized according to the nanofiber characteristics and the adhesive used.
(62) Once the nanofibers 20 are electrically-charged and released from the flock hopper 5 to be airborne above the mounting surface as elements 7, the nanofibers 7 will align themselves with the magnetic field between the electrodes 6, 8 and accelerate towards an oppositely-charged electrode 8 arranged below the mounting surface 2. The aligned and accelerated nanofibers 7 collide with and embed into the adhesive 3 in a position substantially perpendicular to the mounting surface 2.
(63) Alternatively, the adhesive may be electrically charged instead of having a grounded electrode beneath the mounting surface. The nanofibers 20 would similarly embed into the adhesive 3 in the position substantially perpendicular to the mounting surface 2.
(64) As shown in
(65) The second process may be shown in
(66) As represented in
(67) After heating, the mounting surface 2 may be placed between the flock hopper 5 and a grounded electrode 8 as shown in
(68) Once the airborne nanofibers 7 are electrically-charged and released from the flock hopper 5 to be airborne above the mounting surface, they will align themselves with the magnetic field between the electrodes 6,8 and accelerate towards an oppositely-charged electrode 8 arranged below the substrate 2. The aligned and accelerated nanofibers 7 collide with the heated mounting surface 2 and nanofibers 7 partially melt at the contact point between the nanofibers 20 and the heated mounting surface 2 to form a permanent attachment point.
(69) The mounting surface 2 may then be removed from between the flock hopper 5 area and the excess nanofibers 21 that are not attached to the mounting surface 2 are removed via vacuum 9 or other suction device as shown in
First Embodiment—Nanofiber Swimming Goggles
(70) Sporting gear provides useful applications for nanoadhesion. In the first embodiment, swim goggles are commonly used to enable swimmers to keep water out of their eyes. The swim goggles 101 are illustrated in
(71) As shown in
(72) The nanofibers 20 are not configured to penetrate the skin contact area 123 which is composed of several skin layers including the epidermis and dermis. The human epidermis is the outer skin layer and its minimum thickness is 50 microns at the eyelids. The human epidermis has five sub-layers and the cells divide at the inner layers and are gradually pushed to the exterior layers where their cells flatten and die to be shed every two weeks. The nanofibers 20 may be configured to merely contact the outer layers of the epidermis to avoid skin injury.
(73) Another embodiment of the goggles may have a rubber gasket. The rubber gasket may act as the sealant surface 106 and may be merely attached to the eye component 102 via adhesive such as epoxy cement or the like. The gasket 106 may be made from rubber, silicone, or other soft material. One end 24 of each nanofiber 20 may be permanently attached to the rubber gasket 106 using one of the flocking processes 1, 12. The skin contact area 123, 124 contacts the unattached end 22 of the nanofibers 20 when the swim goggles 101 are worn and a nanoadhesion attachment may be made between the nanofiber 20 and the skin contact area 123,124.
(74) Embodiments of the goggles 101 are intended to be used by the wearer in a similar way. The wearer places the eye components 102, 109 over the eyes 121, 122, so that the end 22 of the nanofibers 20 attached to the sealant surface 106 contacts the skin contact area 123. The wearer then fastens the head band 104 around the wearer's head to provide a comfortable fit which pulls the sealant surface 106 against the skin 123 in order to form a watertight seal. The wearer may also slightly depress the eye component 102 against the skin 123 to force a small amount of air to be pushed out from between the eye compartment 102 and the eye 121. When this air is pushed out, the watertight seal keeps the air from returning and thereby maintains a negative suction between the eye component 102 and the corresponding eye 121 to improve the watertight seal. The negative suction is an absolute pressure less than ambient pressure. The user may also depress the eye component 109 to achieve a similar negative suction to improve the watertight seal related to the other eye 122.
(75) As the wearer engages in a water activity involving immersing the user's head and swim goggles 101 in water, the watertight seal may be maintained because the skin 123 remains in contact with the sealant surface 106 as a result of the negative suction, the pull of the head band 104, and the nanoadhesion attraction between the nanofibers 20 and the skin 123. This watertight seal may be more robust than goggles without nanofibers 20, because as the wearer engages in vigorous activities while wearing the goggles 101 the tight seal may be vulnerable to compromise as the contact skin area 123 changes shape relative to the sealant surface 106 during the water activity.
(76) When the water activity has been completed, the wearer merely releases the head band 104 from the back of the wearer's head and the wearer pulls the eye components 102, 109 from the skin contact areas 123, 124.
(77) A second aspect to this first embodiment may be swim goggles without a head band 104, connector interface 107, and nose bridge 108 as shown in
(78) As shown in
(79) In yet another embodiment, the sealant surface 132 having nanofibers 20 may be located instead on a waistband or shirt cuff to grip the nearby skin better.
Second Embodiment—Replaceable Shoe Components
(80) Another embodiment utilizing the nanofibers 20 is illustrated in
(81) The nanoadhesion embodiments of shoe 200 are intended to be used by the wearer in a similar way. The wearer inserts her foot into the upper 201 and fastens the upper 201 comfortably to the foot so the foot may be disposed between the upper 201 and the lower 202. The wearer may engage in whatever activity desired so that the outsole components 220, 221, 222, 223, 224 may have a set of impacts with the ground.
(82) When the activity has been completed, the upper 201 may be unfastened and the wearer's foot removed from the shoe 200. When one or more of the components of the lower 202 become worn beyond repair and need to be replaced, then the wearer will pull the set of nanofibers 231 permanently attached to the worn component from the set of nanofibers 241 attached to another component. Next, the wearer may attach a replacement component having a new set of nanofibers 231 on a mounting surface 230 to the old corresponding set of nanofibers 241 on the other component by bringing them in contact.
Third Embodiment—Nanofiber Seams
(83) Yet another embodiment may be to produce a nanofiber seam to connect woven panels as part of athletic gear such as shirts, jackets, shorts, pants, hats, socks, and/or shoes. Various seam configurations may be created with nanofibers. For example,
(84) The woven panels 310, 320 may first be cut to the proper size prior to being attached by the seam 301. The woven panel 310 has a top side 312 and a bottom side 313 as shown in
(85) In yet an alternative embodiment, the nanofibers 231, 241 may be attached to the panels 310, 320 in both single-sided 412, 422 and double-sided 411, 421 nanofiber areas as shown in
(86) In another embodiment, a nanofiber seam 504 may be produced by attaching nanofibers to panels, 310, 320 to form a set of single-sided nanofiber areas 511, 521 as shown in
(87) The nanofiber seams 304, 404, 504, may be used by apparel designers to construct various athletic gear products from one or more woven panels. When the athletic gear is utilized by the final user, the nanofiber seam should keep one or more woven panels reliably together.
(88) In yet another embodiment, the seam arrangement represented by the nanofiber panel edges 511, 521 may be used to reconfigure a pocket on clothing so that the location and the shape of the space that can be accommodated within the pocket may be changed by adjusting the contact area between the panel edges 511 and 521 at a perimeter of the pocket and clothing that the pocket is mounted upon.
(89) In a further embodiment, the seam arrangement represented by the nanofiber panel edges 511, 521 may be used to connect a jacket to pants, e.g., sporting apparel such as running jackets and pants, warm-up jackets and pants, and/or ski jackets and pants. This may improve warmth by keeping the wind out of the area between the jacket and the pants. The panel edge 511 may be on the bottom of the jacket edge and the panel edge 521 may be on the top of the pants as shown in the
(90) In yet a further embodiment, the seam arrangement represented by the nanofiber panel edges 511, 521 may be used to connect cuff-tabs on shirt sleeves to eliminate the need for buttons.
(91) In another embodiment, the seam arrangement represented by the nanofiber panel edges 511, 521 may be used to adjust the size of air vents in clothing so that the user may decide to enlarge vents during strenuous activity and then reduce the size of the vents after the activity has finished.
(92) In a further embodiment, the seam arrangement represented by the nanofiber panel edges 511, 521 may be used to attach and detach removable clothing elements, such as hoods and sleeves.
(93) In yet another embodiment, the seam arrangement represented by the nanofiber panel edges 511, 521 may be used to attach and detach packaging components so the packaging closure may be curved instead of straight.
Fourth Embodiment—Nanofiber Zipper
(94) Yet another embodiment that may utilize the nanofibers 20 in sporting gear is a nanofiber zipper 600, as shown in the athletic shirt 300 shown earlier in
(95) The nanofiber zipper 600 may be illustrated in
(96) The first and second nanofiber folds 602, 612 as well as the first and second nanofibers 603, 613 may be created and attached using the same concepts already discussed as part of the processes used to make the nanofiber seams 304, 404, 504.
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(98) The zipper slider 630 opens and closes the zipper 600 and includes a control handle (not shown) for the user to control the zipper 600. The control handle may be attached at an attachment point 650 as shown in
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(100) A close-up of the zipper slider 630 is shown at
(101) The nanofiber zipper 600 may be supplemented by other fasteners such as traditional hooks or buttons.
(102) The nanofiber zipper 600 is operated by the user by grabbing a control handle (not shown) attached to the 650 attachment at the zipper slider 630. The user moves the zipper slider 630 up 700 along the length of the panel edges 606, 616 to close the zipper 600. The user may open the zipper 600 by moving the zipper slider 630 down 701 along the length of the panel edge 606, 616 and the nanofibers on the panel edges 606, 616 may be pulled apart by the zipper slider. The process is reversible and the zipper 600 may be opened and closed many times.
(103) Although various zipper embodiments are possible with nanoadhesion, the preferred embodiment is shown in
Fifth Embodiment—Device Attachment
(104) Yet another embodiment that may utilize the nanofibers 20 in sporting gear is a nanofiber attachment, as demonstrated by a wristwatch 800 in
(105) The nanofiber watch 800 may include a strap 801 while worn on the wrist 126 or may be attached to the wrist 126 directly using nanofibers 20 as shown in
(106) A second aspect to the device attachment is to attach a second device 810 to the arm 127 as shown in
(107) In a third aspect to the device attachment embodiment, a second device 810 is attached to a piece of clothing 812 as shown in
(108) In yet a fourth aspect to the device attachment embodiment, the second device 810 is attached to a piece of clothing 812 having nanofibers 815 attached to the clothing 812. In this aspect a nanoadhesion attachment is formed between the nanofibers 20 attached to the second device 810 and the nanofibers 815 attached to the clothing 812 using the one or more of the flocking processes described earlier. The user merely attaches the second device 810 to the clothing 812 so that the nanofibers 20 on the device 810 and the nanofibers 815 on the clothing 812 come in contact with each other to form a nanoadhesion attachment. The user engages in whatever activity is desired and the nanoadhesion attachment keeps the device 810 attached to the clothing 812. When the second device 810 is to be removed from the clothing 812, then the wearer may pull the second device 810 away from the clothing 812 to separate the nanofibers 20, 815 as shown in
(109) In yet a fifth aspect to the device attachment embodiment, the second device 810 illustrated in either
(110) In yet a sixth aspect to the device attachment embodiment, the second device 810 may be a backpack and a set of associated straps that may be attached to a wearer's clothing using nanofibers 20 attached to the associated straps. The nanofibers 20 may be attached to nanofibers 815 on the wearer's clothing to form a nanoadhesion attachment. An advantage of using nanofibers 20, 815 to attach the straps to the clothing may be to reduce chafing during activity. Other embodiments may have a backpack without straps and the backpack attached directly to the clothing with a nanoadhesion attachment.
(111) In a seventh embodiment, a bottle closure (broadly represented as element 810 in
(112) In an eighth embodiment, a roof rack may to interface with an automobile (the roof rack broadly represented as element 810 in
(113) In a ninth embodiment, a clothing hanger (the hanger is broadly represented as element 810 in
(114) In a tenth embodiment, a clothing price tag or information tag (the tag is broadly represented as element 810 in
(115) In an eleventh embodiment, a portion of a surface of a glove (the portion of the glove surface is broadly represented as element 810 in
(116) In a twelfth embodiment, a gripping surface (the gripping surface broadly represented as element 810 in
(117) Further, it should be appreciated that the exemplary embodiments of the invention are not limited to the exemplary embodiments shown and described above. While this invention has been described in conjunction with exemplary embodiments outlined above, various alternatives, modifications, variations and/or improvements, whether known or that are, or may be, presently unforeseen, may become apparent. Accordingly, the exemplary embodiments of the invention, as set forth above are intended to be illustrative, not limiting. The various changes may be made without departing from the spirit and scope of the invention. Therefore, the systems and methods according to exemplary embodiments of this invention are intended to embrace all now known or later-developed alternatives, modifications, variations and/or improvements.
(118) Obviously, numerous modifications and variations of the present invention are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims, the invention may be practiced otherwise than as specifically described herein.