HEEL FOR A WOMAN'S SHOE WITH HIGH HEEL
Heel (2) for a women's shoe (1) with a high heel; the heel (2) has a main structure (3) provided with.—at least a first slit (8) which is horizontally oriented, extends from side to side through the main structure (3) along a longitudinal direction (9), and is blind along a transverse direction (10) perpendicular to the longitudinal direction (9) starting from an inner portion of the main structure (3) and ending in correspondence to a first side (11) of the main structure (3); and at least a second slit (12) which is horizontally oriented, extends from side to side through the main structure (3) along the longitudinal direction (9), and is blind along the transverse direction (10) that is perpendicular to the longitudinal direction (9) starting from an inner portion of the main structure (3) and ending in correspondence to a second side (13) of the main structure (3) that is opposite to the first side (11).
The present invention relates to a heel for a women's shoe with a high heel (i.e. a heel having a height greater than 5 cm).
PRIOR ARTTo increase the comfort of a women's shoe with a high heel (i.e. to reduce the mechanical stresses to which the foot is subjected during walking with a women's shoe with a high heel), it was proposed to make the heel vertically elastic (i.e. it was proposed to introduce a vertically directed elasticity into a heel).
To make the heel vertically elastic it was proposed to divide the heel into an upper portion and a lower portion which can vertically move with respect to one another and to interpose between the two portions an elastic body that establishes a mechanical connection between the two portions themselves; the elastic body may be constituted by a metal spring (for example as described in patent application FR2235655A1), or can be constituted by a “soft” element in plastic material (as for example described in patent application DE8316581U1). However, this known solution has several drawbacks as it requires a number of additional components, leading to significant complication at the level of the production process and is applicable only to a limited type of heels.
The patent application FR1002135A1 describes a women's shoe provided with a heel wherein a plurality of horizontal slits which confer to the heel a certain vertical elasticity are formed; however, the solution described in this patent application does not allow to obtain an optimum walking comfort since the user clearly notices a “transverse instability” (i.e. perpendicular to the walking direction).
The patent applications CH212632A, GB238134A and FR1247874A1 describe a women's shoe provided with a heel, wherein, in the outer surface a plurality of horizontal grooves are formed which have a shallow depth (practically no more than one or two millimeters) and are “U” shaped to embrace the entire outer surface; however, the solutions described in these patent applications do not allow the heel to confer an adequate vertical elasticity.
DESCRIPTION OF THE INVENTIONThe purpose of the present invention is to provide a heel for a women's shoe with a high heel that is free from the drawbacks described above and, at the same time, is easy and inexpensive to manufacture.
In accordance with the present invention, a heel for a women's shoe with a high heel as defined in the appended claims is provided.
The present invention will now be described with reference to the accompanying drawings, which illustrate certain non-limiting embodiments, wherein:
In
According to that shown in
According to that shown in.
Preferably, the slits 8 are vertically alternated with the slits 12, i.e. a slit 8 is vertically followed and/or preceded by a slit 12. In the embodiment shown in
According to a preferred embodiment, each slit 8 and 12 involve along the transverse direction 10 more than half of the main structure 3.
The slits 8 and 12 reduce the vertical stiffness of the main structure 3 and therefore give the main structure 3 a vertical elasticity. Obviously the number and the size of the slits 8 and 12 must be chosen as a compromise between structural strength (which cannot be too little) and the deformation capacity (i.e. the elasticity). By way of example, the thickness of the slits 8 and 12 is generally between 0.5 and 4 mm. Thanks to the presence of the slits 8 and 12, the main structure 3 of the heel 2 acts integrally as a compression spring so that if the vertical load exceeds a limit value, as can occur during walking, the “coils” of the “spring” are vertically compacted one upon the other preserving the main structure 3 from breaking. The pattern of the slits 8 and 12 is important in order to avoid (or at least restrict) the lateral deflection of the main structure 3 of the heel 2. Generally, an even total number of slits 8 and 12 (i.e. a symmetrical pattern with respect to the longitudinal plane, i.e. parallel to the longitudinal direction 9, of the main structure 3) is preferred as it avoids the onset of unwanted spurious bending.
The main structure 3 of the heel 2 can be made of many materials. By way of example, the main structure 3 of the heel 2 can be made of plastic material (ABS or a thermoplastic technopolymer eventually loaded with glass fibers) that is normally injection molded already in the final shape, or the main structure 3 of the heel 2 can be made of metallic material (typically aluminum for its lightness) that is normally solid machined by removal of material.
Depending on the material used to obtain the main structure 3 of the heel 2, to further increase the structural strength of the main structure 3 to transverse loads (i.e. directed along the transverse direction 10) it is possible to provide a reinforcement pin 14 (shown in
According to the embodiment shown in
Preferably, in a central portion 18 of the main structure 3 arranged in correspondence of the slits 8 and 12 (i.e. arranged between the lower portion 16 and the upper portion 17 of the main structure 3) the reinforcement pin 14 has an external dimension smaller than the inner dimension of the seat 15 so as to avoid touching the wall of the seat 15. In particular, in correspondence of the central portion 18 of the main structure 3 the reinforcement pin 14 locally presents a reduction of the outer diameter.
According to the embodiment shown in
According to the embodiment shown in
According to the embodiment shown in
According to the embodiment shown in
The through hole 20 vertically divides the main structure 3 into two half-structures 3a and 3b (or into two columns 3a and 3b) which are parallel to each other and face each other. According to a preferred embodiment, each half-structure 3a and 3b comprises at least one slit 8 and at least one slit 12, and in one half-structure 3a/3b the slit 8 is vertically aligned with the slit 12 of the other half-structure 3b/3a and the slit 12 is vertically aligned with the slit 8 of the other half-structure 3b/3a.
In the embodiment shown in
The material used for the embodiment shown in
According to a possible embodiment, at least part of the slits 8 and 12 (i.e. all the slits 8 and 12 or only some of the slits 8 and 12) can be filled with the viscoelastic material (or a material that exhibits an intermediate rheological behavior comprised between “purely viscous materials” and “elastic materials”) to give a damping effect favoring comfortable walking.
According to a further embodiment each slit 8 or 12 ends with a cylindrical surface that is arranged parallel to the longitudinal direction 9, with a diameter preferably greater than the vertical dimension of the slit 8 or 12.
In the embodiment shown in
In essence, in the embodiment shown in
When the reinforcement pin 14 is used, the main structure 3 can be made of traditional plastic material (e.g. ABS), while the reinforcement pin 14 can be made of special steel.
In the heel 2 so far described, in its various embodiments the damping effect is therefore obtained by structurally unloading the main structure 3 (or, alternatively, the reinforcement pin 14) by way of the slits 8 and 12 which reduce the vertical stiffness amplifying at the same time the possibilities of movement.
In alternative embodiments shown in
Preferably, the abutment wall 25 of the upper portion 17 of the main structure 3 is constituted by a metal assembly bushing 26 which is integral to the upper portion 17 and is placed immediately below the insole assembly. A fixing plate 27 is normally provided which is locked at the top of the reinforcement pin 14, leaning against the assembly bushing 26, and prevents the reinforcement pin 14 from sliding off and rotating upon. For example, the fixing plate 27 is locked at the top of the reinforcement pin 14 by means of a screw (not shown) which engages a threaded hole 28 formed through the upper portion 21 of the reinforcement pin 14.
According to a preferred embodiment, the spring 24 is compressed between the abutment wall 25 of the upper portion 17 of the main structure 3 and an annular shoulder 29 of the reinforcement pin 14; said annular shoulder 29 is obtained by way of tapering (thinning) of the reinforcement pin head 14.
According to a preferred embodiment, in correspondence to the upper portion 17 of the main structure 3 the seat 15 is internally lined by at least an antifriction bushing 19 which externally is integral to the main structure 3 and internally houses in a sliding manner the reinforcement pin 14.
In the embodiment shown in
In the embodiments shown in
In the variant shown in
The embodiment shown in
The heel 2 described above has numerous advantages.
In the first place, the heel 2 described above has an optimal vertical elasticity that allows to reduce the negative stresses on the foot and on the leg of the user of the shoe 1 without penalizing, at the same time, walking which remains “natural” (i.e. the user's walking is not disturbed or otherwise adversely affected by the elasticity conferred by the vertical slits 8 and 12). This result is obtained thanks to the presence of slits 8 and 12 of different type and alternated to one another that allow to offer adequate resistance also to transverse loads.
In addition, the heel 2 described above is applicable to any type of shoe 1 without significant constructive complications; for example, in
Finally, the manufacturing process to obtain the heel 2 described above is particularly simple and quick and thus economical. In particular, in the heel 2 described above is the main structure 3 to adapt to the external conditions thanks to its intrinsic morphological constitutive characteristics and without the addition of additional components. The possible use of the reinforcement pin 14 does not particularly complicate the manufacturing process since the reinforcement pins are already normally present in many heels for women shoes with high heels.
The advantages of the present invention are particularly evident in a high heel, i.e. when the heel 2 has a height greater than 5 cm. Thus, the present invention is advantageously applied to a heel 2 for a women's shoe 1 with a high heel, which heel 2 has a height greater than 5 cm.
Claims
1. A heel for a woman's shoe with a high heel; the heel comprises:
- a main structure with an oblong shape, which, in correspondence to a lower base, is suited to rest on the ground and in correspondence to an upper base that is opposite to the lower base, is suited to be fitted to a sole of the shoe;
- at least a first slit which is horizontally oriented, extends from side to side through the main structure along a longitudinal direction, and is blind along a transverse direction that is perpendicular to the longitudinal direction thus originating from an inner portion of the main structure and ending in correspondence to a first side of the main structure; and
- at least a second slit which is horizontally oriented, extends from side to side through the main structure along the longitudinal direction, and is blind along the transverse direction that is perpendicular to the longitudinal direction, thus originating from an inner portion of the main structure and ending in correspondence to a second side of the main structure (3) that is opposite to the first side;
- the heel is characterized in that:
- each slit involves along the transverse direction more than half of the main structure; and
- each first slit is vertically misaligned with respect to the second slits.
2. The heel according to claim 1, wherein:
- there are at least two first slits and/or at least two second slits; and
- the first slits are vertically alternated with the second slits.
3. The heel according to claim 1 and comprising a reinforcement pin, which is inserted inside a seat which is centrally obtained in the main structure.
4. The heel according to claim 3, wherein the reinforcement pin is integral to, i.e. rigidly fitted, to a lower portion (16) of the main structure arranged under the slits and is mounted so as to slide with respect to an upper portion of the main structure arranged above the slits.
5. The heel according to claim 4, wherein, in correspondence to the upper portion of the main structure, the seat is internally lined with an antifriction bushing, which is externally integral to the main structure and internally houses, in a sliding manner, the reinforcement pin.
6. The heel according to claim 3, wherein, in a central portion of the main structure arranged in correspondence of the slits, the reinforcement pin presents an outer dimension that is smaller than the inner dimension of the seat so as to avoid touching the wall of the seat.
7. The heel according to claim 6, wherein the reinforcement pin comprises an upper portion which is mechanically connected to an upper portion of the main structure, a lower portion which is integral to a lower portion of the main structure, and elastic means which present a vertical elasticity and are coupled to the reinforcement pin to connect with a vertical elasticity the upper portion of the main structure to the lower portion of the main structure.
8. The heel according to claim 7, wherein:
- the upper portion of the main structure is vertically slidable with respect to the upper portion of the reinforcement pin; and
- the elastic means are constituted by at least one spring which is interposed between the reinforcement pin and an abutment wall of the upper portion of the main structure.
9. The heel according to claim 8, wherein the abutment wall of the upper portion of the main structure is constituted by an assembly bushing integral to the upper metal portion.
10. The heel according to claim 9 and comprising a fixing plate which is locked at the top of the reinforcement pin, rests against the assembly bushing, and prevents the reinforcement pin from slipping off and rotating upon.
11. The heel according to claim 7, wherein the spring is compressed between the abutment wall of the upper portion of the main structure and an annular shoulder of the reinforcement pin.
12. The heel according to claim 7, wherein the spring is a disk spring.
13. The heel according to claim 7, wherein, in correspondence to the upper portion of the main structure, the seat is internally lined by at least an antifriction bushing which is externally integral to the main structure and internally houses, in a sliding manner, the reinforcement pin.
14. The heel according to claim 1, wherein the main structure comprises a through hole, which extends from side to side through the main structure along the longitudinal direction and is arranged in a central position in correspondence of the slits.
15. The heel according to claim 9, wherein the through hole presents an oblong transverse section having the longer sides that are vertically oriented.
16. The heel according to claim 14, wherein:
- the through hole vertically divides the main structure into two half-structures which are parallel to each other and face each other;
- each half-structure comprises at least one first slit and at least one second slit; and
- in one half-structure, the first slit is vertically aligned with the second slit of the other half-structure and the second slit is vertically aligned with the first slit the other half-structure.
17. The heel according to claim 1, wherein inside the main structure each slit ends with a cylindrical surface that is arranged parallel to the longitudinal direction.
18. The heel according to claim 17, wherein in each slit, the cylindrical surface presents a diameter that is larger than the vertical dimension of the slit.
19. The heel according to claim 1, wherein at least part of the slits are filled with viscoelastic material.
20. The heel for a shoe with a high heel; the heel comprises:
- a main structure with an oblong shape, which, in correspondence to a lower base, is suited to rest on the ground and, in correspondence to an upper base that is opposite to the lower base, is suited to be fitted to a sole of the shoe and is divided into a lower portion and an upper portion, which vertically slide with respect to one another; and
- a reinforcement pin that is inserted inside a seat centrally obtained in the main structure;
- the heel is characterized in that the reinforcement pin comprises an upper portion which is mechanically connected to the upper portion of the main structure, a lower portion, which is integral to the lower portion of the main structure, and elastic means which present a vertical elasticity and are coupled to the reinforcement pin to connect with a vertical elasticity the upper portion of the main structure to the lower portion of the main structure.
21. The heel according to claim 20, wherein:
- the upper portion of the main structure is integral to the upper portion of the reinforcement pin; and
- the reinforcement pin comprises an intermediate portion, which connects, without gaps, the lower portion to the upper portion and integrates elastic means in its inside.
22. The heel according to claim 21, wherein the intermediate portion of the reinforcement pin comprises:
- at least a first slit which is horizontally oriented, extends from side to side through the main structure along a longitudinal direction, and is blind along a transverse direction that is perpendicular to the longitudinal direction thus originating from an inner portion of the main structure and ending in correspondence to a first side of the main structure, and
- at least a second slit which is horizontally oriented, extends from side to side through the main structure along the longitudinal direction, and is blind along the transverse direction that is perpendicular to the longitudinal direction, thus originating from an inner portion of the main structure and ending in correspondence to a second side of the main structure that is opposite to the first side.
23. The heel according to claim 22, wherein each first slit is vertically misaligned with respect to the second slits.
24. The heel according to claim 22, wherein:
- there are at least two first slits and/or at least two second slits; and
- the first slits are vertically alternated with the second slits.
25. The heel according to claim 22, wherein each slit involves, along the transverse direction more than half of the main structure.
26. The heel according to claim 22, wherein in a central portion the main structure arranged in correspondence of the slits, the reinforcement pin presents an outer dimension smaller than the inner dimension of the seat so as to avoid touching the wall of the seat.
27. The heel according to claim 22, wherein inside the intermediate portion of the reinforcement pin each slit ends with a cylindrical surface which is arranged parallel to the longitudinal direction.
28. The heel according to claim 27, wherein in each slit the cylindrical surface has a diameter that is larger than the vertical dimension of the slit.
29. The heel according to claim 22, wherein at least part of the slits are filled with viscoelastic material.
30. The heel according to claim 20, wherein:
- the upper portion of the main structure is vertically slidable with respect to the upper portion of the reinforcement pin; and
- the elastic means are constituted by at least one spring which is interposed between the reinforcement pin and an abutment wall of the upper portion of the main structure.
31. The heel according to claim 30, wherein the abutment wall of the upper portion of the main structure is constituted by a metal assembly bushing integral to the upper portion.
32. The heel according to claim 31 and comprising a fixing plate that is locked at the top of the reinforcement pin, leans against the assembly bushing, and prevents the reinforcement pin from slipping off and rotating upon.
33. The heel according to claim 32, wherein the fixing plate is locked at the top of the reinforcement pin by way of a screw which engages in a threaded hole formed through the upper portion of the reinforcement pin.
34. The heel according to claim 30, wherein the spring is compressed between the abutment wall of the upper portion of the main structure and an annular shoulder of the reinforcement pin.
35. The heel according to claim 30, wherein the spring is a disk spring.
36. The heel according to claim 30, wherein, in correspondence to the upper portion of the main structure, the seat is internally lined by at least one antifriction bushing which is externally integral to the main structure and internally houses in a sliding manner the reinforcement pin.
37. The heel according to claim 20, wherein the lower portion of the main structure is separated from the upper portion of the main structure by way of a through cut that completely separates the two portions without any point of contact between the two portions themselves.
38. The heel according to claim 20, wherein the lower portion of the reinforcement pin is obtained in one piece with the lower portion of the main structure and therefore integrates the lower portion of the main structure.
Type: Application
Filed: Dec 14, 2012
Publication Date: Nov 6, 2014
Applicant: TUSCANY SERVICES S.R.L. (Castelfranco di Sotto)
Inventor: Stefano Roccella (Pisa)
Application Number: 14/365,443
International Classification: A43B 21/24 (20060101);