The present application is a 371 of International application PCT/EP2012/004984, filed Nov. 30, 2012, the priority of this application is hereby claimed and this application is incorporated herein by reference.
The invention relates to a rotary closure for a shoe, especially for a sports shoe, comprising: a housing which can be attached to the shoe, a tensioning roller which is rotatable supported around an axis in the housing, wherein a tensioning element can be spooled during lacing of the shoe on the tensioning roller and a rotary knob which is arranged rotatable around the axis at the housing to turn the tensioning roller. Furthermore, the invention relates to a shoe with such a rotary closure.
A rotary closure of the generic kind is for example known DE 297 01 491 U1. Such a rotary closure should allow the lacing of a shoe at the one hand during lacing of the tensioning element (lace thread or wire) by rotating of the rotary knob with low torque and still high tension. At the other hand also an easy slacking of the tensioning element should also be possible when the shoe should be taken off again.
Further important aspects are a light weight of the rotary closure and a cost-efficient production with as few parts as possible.
Rotary closures with a complex mechanics became known to make the slacking of the tensioning element possible in an easy manner. For example, the rotary knob was already arranged pivotable respectively foldaway at the housing, wherein after the pivoting respectively swiveling of the rotary knob a de-latching of the tensioning roller takes place so that the tightened tensioning element becomes free of tension. At other solutions a press button can be activated to carry out the de-latching of the tensioning roller.
At other different kinds of rotary closures planetary gears are employed for the gear reduction of the rotary movement of the rotary knob to reach said aims.
It is detrimental at the known systems that the mentioned requirements cannot be fulfilled collectively without problems. Rotary closures which fulfill the mechanical requirements are often designed so complex that an expensive production with relatively many parts is given.
It is the object of the invention to further develop a rotary closure of the generic kind so that at the one hand an easy but also strong tension of the tensioning element is given during the closing of the rotary closure and that at the other hand an easy releasing respectively de-latching of the tensioning element is possible. Simultaneously, a light construction is aimed for and a cost-efficient production with few parts should be realized.
The solution of this object by the invention is characterized in that the rotary closure according to the kind mentioned above furthermore comprises:
The housing has preferably a cylindrical shape.
The first blocking gearing is preferably formed into an inner circumference of the housing. This inner circumference is thereby preferably formed cylindrically. The housing can thereby consists of plastic material, wherein the first blocking gearing is formed into the material of the housing.
The second blocking gearing and the tensioning roller are preferably formed as a one-piece part, especially as injection moulded part.
The axis of rotation for the parts which are movable respectively rotatable supported relatively to the housing is preferably realized by a bolt. Here, especially a screw bolt (screw) is considered.
The tensioning element is mostly a tensioning wire.
The two control elements are preferably formed at the rotary knob as pencil-shaped protrusions, especially as cylindrical formed protrusions. The two control elements can thereby be arranged at the same diameter from the axis and offset in circumferential direction.
The intermediate carrier comprises preferably two pawls which are arranged at the intermediate carrier diametrically with respect to the axis. The at least one pawl can thereby be arranged as an elastic section radially to the axis at the intermediate carrier. The pawl can furthermore extend as substantially straight tongue-shaped section substantially in circumferential direction of the intermediate carrier.
The intermediate carrier consists due to production reasons preferably of a sheet-metal part at which the pawls are formed from the material of the intermediate carrier.
The locking lever consists preferably of metal.
A bearing bolt can be arranged at the locking lever protruding in the direction of the axis which is supported in a recess in the intermediate carrier.
Thereby, preferably a single locking lever is arranged at or in the intermediate carrier.
The rotary knob can comprise a recess at a circumferential position eccentrically from the axis, i. e. remote from the axis, especially a circular shaped recess; the intermediate carrier can comprise a marking at its side facing the rotary knob, wherein the marking is visible through the recess when the rotary knob is located with its second control element in the second crank section of the locking lever and the locking lever it located thus in the second swivel position. By doing so it is possible to recognize the positioning of the rotary knob when the rotary closure is in the de-latched position and the tensioning element (tensioning wire) is consequently slacked for taking off the shoe. The marking is thereby preferably designed as a colour point.
Furthermore, the invention relates to a shoe, especially a sport shoe, with a rotary closure of the described kind.
Accordingly, the proposed rotary closure thus comprises a housing in which the tensioning roller (spool wheel) for the tensioning element (wire) is rotatable supported, namely around the central axis. The tensioning roller is provided with a ratchet (second blocking gearing) which allows a rotation in one direction of rotation, however this rotation prevents when the locking lever is engaged. The locking lever is rotatable supported in the intermediate carrier (carrier element) which is rotatable supported around the central axis, namely around a swivel axis which is arranged parallel to the central axis but distanced from the same. The intermediate carrier can be rotated around the central axis—for tensioning of the wire—but only in tensioning direction what is achieved by pawls (spring tongues) which are arranged elastically radial to the outer side at the intermediate carrier and which engage in the first blocking gearing (catch profile) which is machined at the inner side of the edge of the housing.
The rotary knob (lid) which is rotatable supported around the central axis comprises the two control elements (cams). The first control element engages in the intermediate carrier during tensioning of the wire (rotation into direction R1) and rotates the same together with the locking lever in the closing direction. A turn back of the tensioning roller is thereby prevented because the locking section (hook section) of the locking lever engages into the second blocking gearing of the tensioning roller and thus hinders the tensioning roller from turning back.
If the rotary knob (lid) is turned in the direction against the tensioning direction (direction of rotation R2) the second pawl element (cam) presses against the cam-like formed section (second crank section) of the locking lever so that the same is rotated around the swivel axis in such a manner that the locking section (hook section) is brought out of engagement with the second blocking gearing (ratchet) of the tensioning roller; now, the spooled wire can be pulled off the tensioning roller which can now rotate freely.
Beneficially, a simple design with few parts is obtained which not only keeps the production costs of the rotary closure low but also minimizes the weight of the rotary closure.
The geometrical forming of the parts, especially of the tensioning roller, allows that a high tensioning force in the tensioning element is reached with low torques at the rotary knob when the shoe respectively the tensioning element is tensioned.
However, it is possible by turning back of the rotating knob against the tensioning direction of rotation to establish a de-latched status in which the tensioning element can be drawn off from the tensioning roller.
In the drawing an embodiment of the invention is depicted. It shows:
In the figures a rotary closure 1 can be seen which can be attached for example to the instep of a shoe to serve for lacing of the shoe; but also other locations for attachment are possible, for example in the lateral region or in the heel region of the shoe.
The rotary closure 1 comprises a cylindrical housing 2 which consists of plastic material and is equipped with a first blocking gearing 8 at an inner cylindrical area. By means of a bolt 16 (for example a screw with a closure in the end region by means of a screw nut) a central axis A is formed by which different rotatable parts of the rotary closure 1 are supported.
At first a tensioning roller 3 is freely rotatable supported in the housing 2. A tensioning wire respectively tensioning element 4 can be spooled on the tensioning roller 3, namely in known manner so that during spooling the shoe is tensioned respectively laced at the foot of the wearer.
At the upper side of the tensioning roller 3 a second blocking gearing 11 is formed. The tensioning roller 3 consists also of plastic material so that the blocking gearing 11 is formed by the injection molding process of the form part.
An intermediate carrier 6 is arranged on the tensioning roller 3 and also supported around the axis A which consists of a punched and deformed sheet metal part. The intermediate carrier 6 comprises two pawls 7 which are provided and designed for the engagement in the first blocking gearing 8. Accordingly, the intermediate carrier 6 can rotate relatively to the housing 2 in only one direction of rotation (namely in the direction of rotation R1, see
A locking lever 9 made of metal (steel) is arranged between the tensioning roller 3 and the intermediate carrier 6. The locking lever has a bearing bolt 17 which fits into a recess 18 which is machined into the intermediate carrier 6.
Thus, the locking lever 9 can swivel relatively to the intermediate carrier 6 around an axis B which is parallel to the axis A but distanced from the same and can namely take two swivel positions:
In a first swivel position I (see
In a second swivel position II (see
Above the intermediate carrier 6 the rotary knob 5 is rotatable arranged around the axis A. The rotary knob 5 has two control elements at its bottom side which is not visible in
As it can be seen in
Thus, during rotation of the rotary knob 5 in the direction R1 not only a de-spooling of the tensioning element 4 from the tensioning roller 3 is prevented. Rather the rotary knob 5 takes with it via the first control element 12 the intermediate carrier 6 together with the locking lever 9 as well as (by means of the locking section 10) the tensioning roller 3 in the direction of rotation R1 so that the tensioning element 4 is spooled on the tensioning roller 3 and the tensioning roller 3 is incidentally hindered from turning back (said turning back is prevented by the pawls 7 at the intermediate carrier 6).
However, during the rotation of the rotating knob 5 in the opposite direction of rotation R2 the second control element 13 is—as shown in FIG. 3—pressed in the second crank section 15 which brings the locking lever 9 in the second swivel position II. The locking section 10 gets out of engagement with the second blocking gearing 11 so that the tensioning roller 3 is now freely rotatable and the spooled tensioning element 4 can be pulled off respectively de-spooled.
In the rotary knob 5 a recess 19 is provided, at the intermediate carrier 6 a colored marking 20 (see
Filing Document | Filing Date | Country | Kind |
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PCT/EP2012/004984 | 11/30/2012 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/082652 | 6/5/2014 | WO | A |
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Number | Date | Country | |
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