The present invention relates to a spectacle frame comprising a hinge of “telescopic” type.
“Telescopic” hinges which, like most hinges, comprise two elements, bearing on one another and connected by a rotation pin, at least one of the two elements being movable, have the particular feature of including, in the movable element, a tie-rod mounted so as to slide in a housing and comprising a means for cooperating with the rotation pin, and a return spring.
When a spectacle frame is being fitted to a wearer's face, these telescopic hinges are advantageous because they allow over-opening of the sides, generally by 2 to 8°, which facilitates fitting, particularly if this is done by another third party (the optician). The telescopic hinges also improve the fit of the frame to the face since, because the over-opened position is unstable, once the sides are released by the person fitting the frame they come to bear against the sides of the wearer's face, under the action of the return spring.
To ensure a comfortable fit for the wearer, it is important that the sides bear against the sides of the face with enough force to keep the spectacle frame in place but not so much as to be unbearable, the intensity of this bearing force depending on the return force.
Telescopic hinges are mass-produced and delivered in the assembled state to lens manufacturers, so that the latter or the optician cannot adjust their return force.
In the over-opened position, the hinge-side end of the sides, known as the proximal end, bears against a point on the hinge-side end, known as the proximal end, of a stub forming part of the frame face, thus creating a lever arm whose size is proportional to the thickness of the sides.
When the hinges are secured to thin sides, for example made of metal, this bearing point is located near to the rotation pin of the telescopic hinges.
On the contrary, when the telescopic hinges are secured to thick sides, as sides made of acetate or injection-moulded thermoplastic usually are, these materials being commonly used to make spectacle frames, the bearing point is significantly shifted with respect to the rotation pin of the hinges, with the result that, for the same angle of over-opening, the return force of the sides must be much greater than in the case of thin sides, to the extent that it impairs the wearer's comfort. The only option for the optician to remedy this is to deform the sides of the frame, an operation that is all the trickier the thicker the sides.
The invention proposes a solution so that the return force of the spring is the same from one frame model to another, and more precisely whatever the thickness of the frame.
The type of spectacle frame to which the invention applies comprises a frame face on which two sides are articulated by telescopic hinges allowing the sides to move
According to the invention, the said bearing point is located closer to the said plane of symmetry than the external surface of the sides, measured at the level of the said meeting plane.
This position of the bearing point, which may be alternatively described as “set back from the external surface of the side”, causes a frame with thick sides to behave like a frame with thin sides, with the result that less force is needed on the hinge to obtain the same angle of over-opening.
In one particular embodiment, the proximal end of the side and that of the stub have a meeting zone and the bearing point is located on the outer edge of the said meeting zone.
Advantageously, the proximal end of the side and/or that of the stub has a recess, from the external surface of the said side and/or that of the said stub. This gives rise to a reduction in the thickness of the meeting zone compared to what it would be if the meeting zone were as thick as the side, and this reduction can be as much as to give this zone the thickness of a metal side.
Preferably, the said recess, which may for example be a chamfer, reduces the proximal end of the side and/or that of the stub to a thickness of less than 1.5 mm; in other words, the meeting zone is less than 1.5 mm thick.
In another particular embodiment, the thickness of the meeting zone may even be zero or almost zero. Thus, the said recess may be in the form of a gap of 1 mm to 5 mm between the proximal end of the side and that of the stub, in which case the bearing point is located on the hinge itself. This embodiment can be applied inexpensively to sides made of acetate or injection-moulded thermoplastic. Specifically, all that is required is for this geometry to be provided for in the machining of such sides, or in the shape of the injection mould, to obtain the desired sides.
In the prior art, in the stable normal open configuration, the sides are substantially perpendicular to the frame face. For this purpose, the hinges are designed so that, in the normal open position, the external surfaces of the stub and the side are aligned when the proximal ends are in abutment. This means that in the position of over-opening by an angle α, generally of 2 to 8°, there is a not very attractive “break” in the line between the external surface of the stub secured to the frame face and the external surface of the side.
To overcome this aesthetic disadvantage, the invention proposes integrating the angle α in the design of the frame. To this end, in the stable normal open position, the external surface of the side makes an angle that is reentrant with respect to the plane of the external surface of the stub.
The invention will be more clearly understood on reading the following description, in conjunction with the attached drawings, in which:
a is a top view of the telescopic articulation zone of a spectacle frame with thin sides of the prior art, in the stable open position;
b is a top view of the same articulation zone as in
a is a top view of the telescopic articulation zone of a spectacle frame with thick sides of the prior art, in the stable open position;
b is a top view of the same articulation zone as in
a is a top view of the telescopic articulation zone of a frame with thick sides according to a first embodiment of the invention, in the stable open position;
b is a top view of the same articulation zone as in
a is a top view of the telescopic articulation zone of a frame with thick sides according to a second embodiment of the invention, in the stable open position;
b is a top view of the same articulation zone as in
a is a top view of the telescopic articulation zone of a frame with thick sides according to a third embodiment of the invention, in the stable open position; and
b is a top view of the same articulation zone as in
b shows the same frame portion as
a and 2b, in which elements that are the same as in
Hence, as can be seen by comparing
a and 3b, in which elements that are the same as in
a and 4b, in which elements that are the same as in
a and 5b, in which elements that are the same as in
Naturally, the invention is not limited to the embodiments described and illustrated. Thus, for example, the chamfer 12 or 512 could be made in the proximal end of the side instead of being made in the proximal end of the stub. Moreover, a recess made in any form other than a chamfer would also be possible.
Number | Date | Country | Kind |
---|---|---|---|
03 07454 | Jun 2003 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/FR2004/001489 | 6/16/2004 | WO | 00 | 3/14/2005 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2004/113996 | 12/29/2004 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4456346 | Beyer | Jun 1984 | A |
5515575 | Pinazza | May 1996 | A |
Number | Date | Country |
---|---|---|
0 177 821 | Apr 1986 | EP |
0 266 307 | May 1988 | EP |
0 889 347 | Jan 1999 | EP |
0 992 831 | Apr 2000 | EP |
2 816 072 | May 2002 | FR |
Number | Date | Country | |
---|---|---|---|
20060050226 A1 | Mar 2006 | US |