The present disclosure relates to closure systems used in combination in any of a variety of applications including clothing, for example in a low-friction lacing system for footwear that provides equilibrated tightening pressure across a wearer's foot.
Previous efforts in rotary closure systems to lace a shoe, while being securely latched, can have inherent flaws such as the tendency to become locked into a de-tensioning position or become jammed when rotated too far in an incorrect rotational direction. Previous rotary closure designs included housings that fully encapsulate a spool, which can cause tensioning elements to become tangled inside the housing and can sometimes obstruct rotation of the spool. Further, if a mistake is made during assembly or components are misaligned, one risks damaging the rotary closure by attempting to and realign components of the rotary closure.
Additionally, prior rotary closure designs required manufacturing of mirrored components to form a left-handed and a right-handed rotary closure. Users and/or customers must choose which type of closure they desired beforehand.
It is with these observations in mind, among others, that various aspects of the present disclosure were conceived and developed.
According to one aspect, a rotary closure system includes a dial with a projection on an underside of the dial to engage a pawl assembly. The pawl assembly is in connection with teeth of a housing, and the housing receives a spool therein. The housing has teeth around a peripheral edge, the pawl assembly engageable with the teeth, or with the spaces between the teeth. A flange or base member may be coupled or integral to the housing.
The rotary closure system has a first, locked position and a second, unlocked position. In the first, locked position, an inner arm of the pawl assembly engages the spool and a tooth of the housing. In the second, unlocked position, the inner arm of the pawl assembly disengages the spool.
In some embodiments, the pawl assembly comprises a first pawl and a second pawl. In some embodiments, the first pawl and the second pawl are reversible. In other embodiments, the first pawl and second pawl are directional and not reversible.
According to another aspect, the first pawl and the second pawl each comprise a body with: (i) a first inner arm for engaging the spool, (ii) a second outer arm for engaging the teeth of the housing and incrementally tightening the spool as the dial is turned in a locking direction in the first, locked position; and (iii) a third outer arm for engaging the dial. The second outer arm may include a ramped projection for engaging a tooth of the housing. The projection on the underside of the dial may comprise a first projection to engage a first pawl of the pawl assembly and a second projection to engage a second pawl of the pawl assembly.
According to another aspect, the first projection of the dial engages the third outer arm of the first pawl, and the second projection of the dial engages the third outer arm of the second pawl. In some embodiments, the dial further comprises a first protuberance on the underside of the dial and, in the second, unlocked position, the first protuberance is positioned radially inward from the ramped projection of the second outer arm of the first pawl, preventing the second outer arm of the first pawl from flexing radially inwardly. The first and second projections of the dial may be ramped.
According to another aspect, the third outer arm for engaging the dial includes a radially inwardly extending projection to interface with the dial projection and provide resistance between the first, locked position and the second, unlocked position.
According to one aspect, a rotary closure system includes a flange coupled to a housing, and a spool receivable within the housing. A first pawl element and a second pawl element engage an inner side of a dial and the housing. The first pawl element and the second pawl element form a pawl assembly.
According to another aspect, the pawl assembly has a first position to allow the rotary closure to be a right-handed rotary closure and a second position to allow the rotary closure to be a left-handed rotary closure.
According to yet another aspect, a method can be provided for manufacturing a rotary closure system. The method includes manufacturing a reversible pawl assembly such that the pawl assembly can be rotated or flipped top-to-bottom to allow the rotary closure system to be right- or left-handed. In some configurations, all components of the rotary system are manufactured the same, whether the system is for a right- or left-handed rotary system.
Other aspects of the disclosed subject matter, as well as features and advantages of various aspects of the disclosed subject matter, should be apparent to those of ordinary skill in the art through consideration of the ensuing description, the accompanying drawings, and the appended claims.
The following drawings illustrate what are currently considered to be specific representative configurations for carrying out the disclosed subject matter and are not limiting as to embodiments which may be made in accordance with this disclosure. The components in the drawings are not necessarily to scale relative to each other. Like reference numerals designate corresponding parts throughout the several views.
This disclosure generally relates to a rotary closure. Various embodiments of a rotary closure are suitable for a right-handed wearer or when it is otherwise most convenient to wind the dial in a clockwise direction to tighten, and the reversible pawl assembly can be rotated 180 degrees to be used in an orientation suitable for a left-handed wearer or when it is otherwise most convenient to wind the dial in a counterclockwise direction to tighten. By merely rotating the reversible pawl assembly 180 degrees, the same spool, housing, dial, and base member can be used. It is not necessary to manufacture different parts. In other configurations, the rotary closure system is not identical for clockwise and counterclockwise tightening directions, i.e., the same pawl does not allow for a left-handed and right-handed tightening pawl system.
Additionally, a housing that provides an increased spool capacity and reduces jamming of a tensioning element that is to be repeatedly tensioned and de-tensioned around the spool. Referring to the drawings, embodiments of a rotary closure for a shoe are illustrated and generally indicated as 100.
One embodiment of the present disclosure is shown and described in a rotary closure of
The dial 105 includes projections/bosses on the underside or inner surface 178 of the dial 105 to engage the pawl assembly 104, housing, and/or spool. The pawl assembly 104 is in connection with the teeth of the housing 102. The pawl assembly 104 has a locked position for engaging the spool 103, and an unlocked position for disengaging from the spool 103. The pawl assembly 104 may include one or more pawls. The housing 102 includes an opening to receive the spool 103 and teeth to engage the pawl assembly 104. A base member 106 is provided at the base of the housing 102 to receive the housing and connect the rotary closure system to footwear or another desired application. In the configuration shown in
The rotary closure 100 includes a housing 102 that engages the pawl assembly 104 and the dial 105 and further defines a spool passage 124 in which the spool 103 can be partially encapsulated. To assemble the rotary closure 100, the pawl assembly 104 is coupled with the dial 105, which are in turn coupled with the housing 102 to form a subassembly. The spool 103 can then be disposed within the spool passage 124 of the housing 102.
When assembled, the rotary closure system 100 has a locked position for engaging the spool 103, and an unlocked position for disengaging from the spool 103. In one embodiment, the locked position has each of the two members of the pawl assembly with (i) an inner arm 161 (
In use, the rotary closure system is installed in the desired direction to tighten (for example, as shown in
In some embodiments, a projection 164 is provided on one or more of the outer arms 162 of the pawl assembly. This radially inwardly extending projection 164 engages with the radially outward side of the dial 105 projection 182, providing designed resistance between the locked and unlocked positions.
While
In some embodiments, the dial further includes one or more projections on the inner or underside of the dial 105 for engagement with the pawl. Pawl engagement projections may be, in some embodiments, one or more bosses 181, one or more ramps 182, etc. In some embodiments, one projection is provided. In other embodiments, two, three, four, or more pawl-engagement projections may be provided. The projections may be any suitable shape and/or size desired, and may be located at any position on the underside of the dial as desired. For example, a single boss may be provided to engage one or more pawls such that as the dial rotates, the boss engages the pawl and similarly rotates the pawl. Alternatively, the projections may be positioned and/or shaped to bias the pawl, such as to bias an arm of the pawl inwardly or outwardly as desired.
In one embodiment, two bosses 181 are provided on the underside of the dial. The bosses have an ovular shape, but other shapes can also be used. In the unlocked position (see
In the locked position (see
Another embodiment of the present disclosure is shown and described in a rotary closure of
The rotary closure 100 includes a housing 102 that engages the pawl assembly 104 and the dial 105 and further defines a spool passage 124 in which the spool 103 can be partially encapsulated. To assemble the rotary closure 100, the pawl assembly 104 is coupled with the dial 105, which are in turn coupled with the housing 102 to form a subassembly 101 illustrated in
When assembled, the dial 105 operatively engages the pawl assembly 104 and the spool 103 to rotate the spool 103 within the housing 102 in a first rotational direction to tension the tensioning element around the spool, and a second rotational direction to de-tension the tensioning element. When assembled, the components of the subassembly 101 and the spool 103 are aligned along a common center axis. The assembled spool 103 and subassembly 101 including the dial 105, pawl assembly 104, and housing 102 may then be coupled to a base member 106, which is secured along an exterior portion of a shoe (not shown) to complete assembly. In some embodiments, the dial 105 can include a logo or other indicia. In some embodiments, the base member 106 is not a separate element; rather, a flange or other suitable mechanism can be integral to the housing 102 to allow the rotary closure 100 to be sewn or otherwise attached to a shoe, etc.
Referring to
The closed body defines a first flange wall 111 and an opposite second flange wall 112 that envelop the housing 102, and a rim 113 that extends beyond the first and opposite second flange walls 111 and 112. The first flange wall 111 and the opposite second flange wall 112 collectively define a first flange window 119A and an opposite second flange window 119B for passage of a tensioning element when assembled. The flange floor 116 of the base member 106 forms a plurality of seats 115A-B that accept a plurality of respective shoulders 129A-B (
The base member 106 further includes a first a first slot 109 formed opposite a second slot 110 for coupling opposite sides of the housing 102 to the base member 106. The housing 102 may include first and second retention members (127A and 127B, see
As further shown in
In some embodiments, as shown in
The housing also defines a first arch 126A and a second arch 126B configured for passage of one or more lacing (tensioning) elements (not shown) between an interior of the spool passage 124 and an exterior of the housing 102. Referring briefly back to
Referring to
The teeth 136 operatively engage a pawl member 152 of the pawl assembly 104 for turning the spool 103 in the first rotational direction, essentially “catching” the spool 103 and forcing the spool 103 to rotate in the first rotational direction with the dial 105 and pawl assembly 104. As further shown, in some embodiments the body 130 of the spool 103 defines a first window 144 and a second window 145. Structurally, the first and second windows 144 and 145 allow passage of the tensioning element to secure the tensioning element to the body 130 of the spool 103 while the tensioning element is being wound around the spool 103 during operation of the rotary closure 100.
Referring to
Referring to
Each of the pawls includes a body 155 with (i) a first inner arm 161 that includes pawl member 152 for engaging the extension 133 of the spool 103, (ii) a second outer arm 162a for engaging the housing 102, and (iii) a third outer arm 162b. In some embodiments, the pawl member 152 defines distal portion 166 positioned away from the body 155 in which the distal portion 166 forms an inwardly extending projection 167 defining a pawl recess 169. A slot may be formed between the first inner arm 161 and the second outer arm 162a to allow the two arms to move independently (i.e., one can be flexed inwardly while the other can be flexed outwardly). In some configurations, only a first, inner arm 161 is provided. Or, a first and second arm can be provided.
In operation, the pawl assembly 104 is operatively engaged with the extension 133 (
Each pawl also includes a second outer arm 162a to incrementally engage the plurality of teeth 123 (
The pawl assembly 104 further includes a third outer arm 162b to engage one of the two opposing ramps 182 (or dial projections 182) on the inner surface 178 of the dial 105. The third outer arm 162b can also include one or more ramped projections 162c (
The ramps 182 (seen best in
The dial 105 provides a means for actuating the rotary closure 100 through manual rotation of the dial 105 indefinitely in the first rotational direction and prevents or limits rotation in the opposite second rotational direction. In some embodiments, the dial 105 includes a body 176 defining an exterior surface 177 and an inner surface 178. In some embodiments, the exterior surface 177 forms a gripping surface 183 configured for gripping by the hand of the user when rotating the dial 105. As specifically shown in
In some embodiments, the inner surface 178 of the dial 105 forms the opposing ramps 182, which is a protrusion from the inner surface 178. As illustrated in
When assembled, the rotary closure system 100 has a locked position for engaging the spool 103, and an unlocked position for disengaging from the spool 103. In this embodiment, the locked position has each of the two members of the pawl assembly with (i) an inner arm 161 (
When assembled, the rotary closure system 100 has a locked position for engaging the spool 103, and an unlocked position for disengaging from the spool 103. In this embodiment, the locked position has each of the two members of the pawl assembly with (i) an inner arm 161 (
When assembled, the rotary closure system 100 has a locked position for engaging the spool 103, and an unlocked position for disengaging from the spool 103. In this embodiment, the locked position has the single pawl of the pawl assembly with (i) an inner arm 161 (
In one method of assembly of the rotary closure 100, the housing 102 allows manufacturers to assemble the dial 105, the pawl assembly 104 and the housing 102 together in a snap-fit engagement as the subassembly 101. The subassembly 101 enables a manufacturer to ensure that the dial 105, pawl assembly 104 and the housing 102 are working properly prior to full assembly of the rotary closure 100. The spool 103 and associated tensioning element (not shown) can thereafter be coupled with the subassembly 101 either by the manufacturer or by a consumer. The formation of the subassembly 101 also enables the consumer to remove and/or replace the spool 103 in case of jamming or to replace the tensioning element without complete disassembly of the housing 102 from the dial 105 and the pawl assembly 104, thus reducing a likelihood of destruction of the rotary closure 100.
The subassembly 101 can be assembled by coupling the pawl assembly 104 with the dial 105. Next, the housing 102 is coupled with the dial 105 by snapping the circumferential flange 128 of the housing 102 to the inner surface 178 of the dial 105 by the one or more engagement elements 185 of the dial 105 as discussed above and as illustrated in
In prior art configurations, it was required to provide a right-handed rotary closure as well as a separate left-handed rotary closure, with the left-handed rotary closure including the same components but completely mirrored across the vertical axis, including a mirrored flange, a mirrored dial, a mirrored pawl assembly, a mirror spool, and a mirrored housing. However, according to the present disclosure, a single rotary closure can be manufactured that allows for right- or left-handed closure by simply flipping (i.e., rotating from top to bottom) the reversible pawl assembly. This allows for easier manufacturing, as well as numerous options for installation by a manufacturer or user without having to buy a specifically-handed rotary closure. In some configurations, the pawl assembly may have directionality and not be reversible.
The following embodiments are provided as examples only of specific configurations, materials, arrangements, etc. contemplated by the authors of this disclosure:
Embodiment 1: A rotary closure system comprising: a flange coupled to a housing, a spool receivable within the housing; a first pawl element and a second pawl element engaging an inner side of a dial and the housing; wherein the first pawl element and the second pawl element form a pawl assembly and wherein the pawl assembly has a first position to allow the rotary closure to be a right-handed rotary closure and a second position to allow the rotary closure to be a left-handed rotary closure.
Embodiment 2: The rotary closure system of embodiment 1, wherein the first pawl element comprises a first inward arm that includes a pawl member for engaging an extension of the spool.
Embodiment 3: The rotary closure system of embodiment 1, wherein the first pawl element comprises a second outer arm for engaging the housing.
Embodiment 4: The rotary closure system of embodiment 1, wherein the first pawl element comprises a third outer arm for engaging the dial.
Embodiment 5: The rotary closure system of embodiment 1, wherein the inner side of the dial further comprises two opposing ramps to lock the pawl assembly in place.
Embodiment 6: A rotary closure system comprising: a housing, a spool receivable within the housing; a first pawl and a second pawl engaging an inner side of a dial and the housing; and wherein the first pawl and the second pawl form a pawl assembly and wherein the pawl assembly has a first position to allow the rotary closure system to be a right-handed rotary closure and a second position to allow the rotary closure system to be a left-handed rotary closure.
Embodiment 7: The rotary closure system of embodiment 6, wherein the housing further comprises a flange for attaching the rotary closure system to a shoe.
Embodiment 8: A rotary closure system comprising: a dial with a projection on an underside of the dial to engage a pawl assembly; the pawl assembly in connection with teeth of a housing; the housing receiving a spool therein, and the housing having teeth around a peripheral edge, the pawl assembly engageable with the teeth; and a flange coupled to a housing; wherein the rotary closure system has a first, locked position and a second, unlocked position; wherein, in the first, locked position, an inner arm of the pawl assembly engages the spool and a tooth of the housing; and wherein, in the second, unlocked position, the inner arm of the pawl assembly disengages the spool.
Embodiment 9: The rotary closure system of embodiment 8, wherein the pawl assembly comprises a first pawl and a second pawl.
Embodiment 10: The rotary closure system of embodiment 8 or 9, wherein the first pawl and the second pawl are reversible.
Embodiment 11: The rotary closure system of any one of embodiments 8-10, wherein the first pawl and the second pawl each comprise a body with: a first inner arm for engaging the spool, a second outer arm for engaging the teeth of the housing and incrementally tightening the spool as the dial is turned in a locking direction in the first, locked position; and a third outer arm for engaging the dial.
Embodiment 12: The rotary closure system of any one of embodiments 8-11, wherein the second outer arm includes a ramped projection for engaging a tooth of the housing.
Embodiment 13: The rotary closure system of any one of embodiments 8-12, wherein the projection on the underside of the dial comprises a first projection to engage a first pawl of the pawl assembly and a second projection to engage a second pawl of the pawl assembly.
Embodiment 14: The rotary closure system of any one of embodiments 8-13, wherein the first projection of the dial engages the third outer arm of the first pawl, and wherein the second projection of the dial engages the third outer arm of the second pawl.
Embodiment 15: The rotary closure system of any one of embodiments 8-14, wherein the dial further comprises a first protuberance on the underside of the dial and wherein, in the second, unlocked position, the first protuberance is positioned radially inward from the ramped projection of the second outer arm of the first pawl, preventing the second outer arm of the first pawl from flexing radially inwardly.
Embodiment 16: The rotary closure system of any one of embodiments 8-15, wherein the first and second projections of the dial are ramped.
Embodiment 17: The rotary closure system of any one of embodiments 8-16, wherein the third outer arm for engaging the dial includes a radially inwardly extending projection to interface with the dial projection and provide resistance between the first, locked position and the second, unlocked position.
Embodiment 18: The rotary closure system of any one of embodiments 8-17, wherein the flange is integral to the housing.
The various embodiments described above, including elements of the various embodiments described above, can be combined to provide further embodiments. Various portions and components of apparatus within the scope of this disclosure, including for example, structural components, can be formed by one or more various suitable manufacturing processes known to those in the art. Similarly, various portions and components of apparatuses within the scope of this disclosure can be made from suitable materials known to those in the art.
Exemplary embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Advantages and features of the present disclosure and methods accomplishing them will become apparent from the following description of exemplary embodiments with reference to the accompanying drawings.
It will be appreciated that various aspects discussed in reference to one drawing may be present and/or used in conjunction with the embodiment shown in another drawing, and each element shown in multiple drawings may be discussed only once.
Reference in the specification to “one configuration,” “one embodiment,” “a configuration,” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the configuration is included in at least one configuration, but is not a requirement that such feature, structure, or characteristic be present in any particular configuration unless expressly set forth in the embodiments as being present.
Furthermore, the described features, structures, or characteristics of configurations of the disclosed subject matter may be combined in any suitable manner in one or more configurations. Configurations of the disclosed subject matter may be practiced without one or more of the specific details, or with other methods, components, materials, and so forth. In other instances, well-known structures, materials, or operations are not shown or described in detail to avoid obscuring aspects of the invention.
It should also be noted that, as used in this specification and the appended embodiments, singular forms such as “a,” “an,” and “the” may include the plural unless the context clearly dictates otherwise. Thus, for example, reference to “a base” may include one or more of such bases, and reference to “the pawl” may include reference to one or more of such pawls.
As used herein, a plurality of items, structural elements, compositional elements, and/or materials may be presented in a common list for convenience. However, these lists should be construed as though each member of the list is individually identified as a separate and unique member. Unless otherwise indicated, all numbers expressing quantities used in the specification and embodiments are to be understood as being modified in all instances by the term “about.” Accordingly, unless indicated to the contrary, the numerical parameters set forth in the specification and attached embodiments are approximations that may vary depending upon the desired properties sought to be obtained by the embodiments of the present disclosure. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the embodiments, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the present disclosure are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. Any numerical value, however, inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements. In one embodiment, the terms “about” and “approximately” refer to numerical parameters within 10% of the indicated range.
All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. The use of any and all examples, or exemplary language (e.g., “such as”) provided herein is intended merely to better illuminate the embodiments of the present disclosure and does not pose a limitation on the scope of the present disclosure. No language in the specification should be construed as indicating any non-claimed element essential to the practice of the embodiments of the present disclosure.
The above description has set out various features, functions, methods, and other aspects of the disclosure. Time and further development may change the manner in which the various aspects are implemented. The scope of protection defined by the claims is not intended to be limited to the specific sizes, shapes, features, or other aspects of the disclosed embodiments. The claimed inventions may be implemented or embodied in other forms while still being within the scopes of the concepts disclosed hereby. For example, while the rotary closure herein has been described with respect to use with a shoe, the rotary closure system can also be implemented in other settings without departing from the scope of the claims and/or disclosure. Also included are equivalents of the elements of the claims that can be made without departing from the scopes of concepts properly protected by the claims that follow.
This application claims priority under 35 U.S.C. 119 (e) to U.S. provisional application No. 63/534,239 filed Aug. 23, 2023 and U.S. Provisional application No. 63/551,420 filed Feb. 8, 2024, which are both explicitly incorporated by reference herein in their entireties.
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Number | Date | Country | |
---|---|---|---|
63551420 | Feb 2024 | US | |
63534239 | Aug 2023 | US |