Sole or inner sole
11064758 · 2021-07-20
Assignee
Inventors
- Kemal Dervish (Welwyn Garden City, GB)
- Haim Geva (London, GB)
- Jason Lloyd Roberts (St. Margarets, GB)
- Giles Tongue (West Byfleet, GB)
- Grant Trewartha (Wiltshire, GB)
Cpc classification
A43B7/144
HUMAN NECESSITIES
A43B7/142
HUMAN NECESSITIES
A43B7/1425
HUMAN NECESSITIES
A43B7/1435
HUMAN NECESSITIES
A43B17/00
HUMAN NECESSITIES
A61B2562/125
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/103
HUMAN NECESSITIES
A61B5/11
HUMAN NECESSITIES
Abstract
A sole (100) or inner sole for a shoe is provided. The sole (100) or inner sole comprises: a toe region (28) for supporting a user's toes; a forefoot region (26) for supporting a user's forefoot; a midfoot region (24) for supporting a user's arch; and a heel region (22) for supporting a user's heel. A longitudinal direction (X) extends from the heel region (22) towards the toe region (28). A lateral direction (Y) transverse to the longitudinal direction (X) extends from an inner side to an outer side of the sole (100) or inner sole. A plurality of force sensors (10) distributed throughout the sole (100) or inner sole. The plurality of force sensors (10) comprise: a first lateral row of force sensors (10) in the toe region (28); a second lateral row of force sensors (10) in the forefoot region (26); a first longitudinal row of force sensors (10) along the inner side of the sole (100) or inner sole from the heel region (22) to the midfoot region (24); and a second longitudinal row of force sensors (10) along the outer side of the sole (100) or inner sole from the heel region (22) to the midfoot region (24).
Claims
1. A sole or inner sole for a shoe comprising: a toe region for supporting a user's toes; a forefoot region for supporting a user's forefoot; a midfoot region for supporting a user's arch; a heel region for supporting a user's heel; a longitudinal direction extending from the heel region towards the toe region; a lateral direction transverse to the longitudinal direction extending from an inner side of the sole or inner sole to an outer side of the sole or inner sole opposite of the inner side, the inner side of the sole or inner sole corresponding to a medial side of a wearer's foot and the outer side of the sole or inner sole corresponding to a lateral side of the wearer's foot when the sole or inner sole is worn; a plurality of force sensors distributed throughout the sole or inner sole comprising: a first lateral row of force sensors in the toe region, a second lateral row of force sensors in the forefoot region, a first longitudinal row of force sensors positioned along the inner side of the sole or inner sole in the longitudinal direction from the heel region to the midfoot region, and a second longitudinal row of force sensors positioned along the outer side of the sole or inner sole in the longitudinal direction from the heel region to the midfoot region; an interior sealed region formed by an upper flexible layer and a lower flexible layer sealed together in a central region of the sole or inner sole, where the interior sealed region is positioned between the first and second longitudinal row of force sensors; and a compressible material positioned between the upper flexible layer and the lower flexible layer, the compressible material including cutaway sections in which the plurality of force sensors are deposited; wherein the upper flexible layer and the lower flexible layer are sealed together around the outer edge of the sole or inner sole to form an outer seal, and the compressible material is positioned between the outer seal and the interior sealed region.
2. The sole or inner sole for the shoe according to claim 1, wherein each row comprises at least three force sensors.
3. The sole or inner sole for the shoe according to claim 2, wherein each row comprises at least four force sensors.
4. The sole or inner sole for the shoe according to claim 1, wherein at least half of all the force sensors have the same shape.
5. The sole or inner sole for the shoe according to claim 4, wherein at least half of all the force sensors are circular.
6. The sole or inner sole for the shoe according to claim 4, wherein at least one of the force sensors is elongated.
7. The sole or inner sole for the shoe according to claim 6, wherein the elongated sensor is provided in the first or second lateral row.
8. The sole or inner sole for the shoe according to claim 6, wherein the elongated sensor is the outermost sensor.
9. The sole or inner sole for the shoe according to claim 1, wherein the interior sealed region is watertight and airtight.
Description
(1) The invention will now be described in detail, by way of example only, with reference to the accompanying drawings in which:
(2)
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(5)
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(10)
(11) The sole (or insole/inner sole) 100 shown in
(12) Moving from the heel region 22 in the longitudinal direction, the sole 100 has a midfoot region 24, a forefoot region 26 and a toe region 28. In use, the heel region 22 supports the user's heel, the midfoot region 24 supports the user's arch, the forefoot region 26 supports the user's forefoot and the toe region 28 supports the user's toes.
(13) The sole 100 is provided with a number of force sensitive resistors 10 arranged across the sole 100. An exemplary force sensitive resistor 10 is shown in
(14) The bottom layer 8 is generally a small section of a larger sheet forming a larger structure. In particular, the bottom layer 8 may be a fabric, plastic or other flexible material which forms a part of a garment. While the present invention is generally described with respect to a sole 100, it is appreciated that it may be used with any other garment.
(15) A garment is generally intended to mean anything which may be worn by a person. In particular, the garment may be any of a top, vest, trouser, jacket, helmet, inner sole, shoe, under-garment, or any other garment.
(16) By printing the conductive ink onto this bottom layer 8 a force sensitive resistor 10 may be provided on the garment. The flexible bottom layer 8 may then contact a wearer and/or be subjected to an external impact force, and the force sensitive resistor 10 can determine the force applied by the wearer.
(17) A spacer ring 18 is provided surrounding the first conductive element. A top sensor layer 19 is provided across the spacer ring 18. The top sensor layer 19 is flexible and comprises a second conductive element. Typically, the top sensor layer is formed from PET. The first and second conductive elements may be moved relative to one another in order to vary the resistance of the force sensitive resistor 10 as the user runs.
(18) As the conductive ink is printed directly onto the stretchable lower layer 8, the output of the force sensitive resistor 10 may be altered when the lower layer 8 flexes and stretches and hence the results from the resistor 10 cannot be practically used. In order to address this, the upper sensor layer 19 is stiffer than the lower layer 8. This provides the localised region of the lower layer 8 with enhanced strength, on which the first conductive element is printed. In particular, this is achieved by the upper sensor layer 19 having a higher Young's modulus than the lower layer 8. This locally limits the ease of stretching of the lower layer 8 in the region of the first conductive element within the spacer 18. As such, the first conductive element may be printed directly on to the lower flexible layer 8 whilst still obtaining useful data.
(19) As shown in
(20) The upper and lower flexible layers 8, 9 of the sole 100 are also sealed in a water and air tight manner across a portion of the central region of the sole 100. This forms a central sealed region 3 on the sole which may extend across the heel region 22, the midfoot region 24 and the forefoot region 26.
(21) As shown in
(22) The compressible material may be any suitable material. In particular embodiments it is a foam material, with either an open cell or closed cell arrangement.
(23) The material 5 may be provided across multiple force sensitive resistors 10. That is, the material 5 may be shared by a plurality of force sensitive resistors 10.
(24) As shown in
(25) Air is able to flow through the material 5. This allows the entirety of the sole 100 to be sealed around its outer edge. Typically, prior art force sensitive resistors 50 as shown in
(26) As the conductive elements are moved towards and away from one another, the volume of the spacer chamber 58 is varied. Accordingly, air which is held in the spacer chamber 58 must be expelled via the vent pathway 57 otherwise the prior art force sensitive resistor 50 may rupture. As such, in prior art soles without the air permeable compressive material 5 of the present invention, a vent pathway must be provided from the force sensitive resistor 50 to the atmosphere outside of the sole 100. While efforts are made to minimise these vent pathways, they represent pathways via which moisture may ingress and damage the sole 100.
(27) By providing the air permeable material 5, these vent pathways are no longer necessary. The air displaced by movement of the force sensitive resistors 10 can be distributed across the sole 100 without risking rupture. This allows the entire sole 100 to be sealed to the atmosphere, which ensures better moisture resistance than known systems.
(28)
(29) In the embodiment of
(30) In the embodiment shown in
(31) The force sensitive resistors 10 are distributed throughout the sole 100. This ensures that a detailed understanding of the user's weight distribution can be calculated, along with information such as the degree of pronation of the user while walking. In particular, as shown in
(32) While this arrangement in the toe and forefoot regions 28, 26 is ideal it may not be possible in all embodiments. In particular, for soles 100 designed for smaller feet it may not be possible to fit five separate force sensitive resistors 10 across the lateral direction Y. Accordingly, an arrangement such as that shown in
(33) Across the heel and midfoot regions 22, 24 two longitudinal rows of force sensitive resistors 10 are provided. One row is on the inner side of the sole and the other row is on the outer side, with the sealed central region 3 provided between these rows. At least one force sensitive resistor 10 is provided in each row in each of the heel and midfoot regions 22, 24. Preferably, if the sole 100 is big enough, each row has two force sensitive resistors 10 in each of the heel and midfoot regions 22, 24.
(34) By providing force sensitive resistors 10 in this arrangement a high quality of data can be obtained that provides a lot of information regarding the weight distribution and pronation of the user.