The present invention relates to an optical lens member comprising at least one sub-surface referencing element, to a method of blocking such optical lens using the sub-surface referencing element and to a method of manufacturing an ophthalmic lens starting from an optical lens member according to the invention.
The discussion of the background of the invention herein is included to explain the context of the invention. This is not to be taken as an admission that any of the material referred to was published, known or part of the common general knowledge at the priority date of any of the claims.
An ophthalmic lens is typically made of plastic or glass material and generally has two opposing surfaces which co-operate to provide a required corrective prescription. When the positioning or shape of one of these surfaces with respect to the other is inaccurate, optical errors can occur.
Manufacturing of an ophthalmic lens to the required prescription requirements typically includes machining a face of a semi-finished lens. Typically, a semi-finished lens has a finished face, for example the front face and an unfinished face, for example the back face. By machining the back face of the lens to remove material, the required shape and positioning of the surface of the back face with respect to the surface of the front face for the desired corrective prescription can be generated.
The surface of the finished face of the semi-finished lens can be obtained by molding, machining or any other known means.
Conventionally, a semi-finished lens is provided with engraved markings on the finished face. The engraved markings define a reference system of the surface of the finished face of the semi-finished lens.
During manufacturing of the lens it is important that the semi-finished lens is securely maintained in an accurate position in order to prevent the generation of optical errors. Therefore, the manufacturing method comprises a blocking step during which the semi-finished lens is blocked to an insert using a blocking station.
Various materials may be employed to secure the semi-finished lens and the insert. These materials include low temperature fusible metal alloys.
The use of such materials requires that the finished face of the semi-finished lens be protected prior to being blocked. A protective tape is generally placed on the finished face prior to blocking the semi-finished lens.
The protective tape can make the viewing of the engraved markings on the finished face of the semi-finished lens difficult. Thus, it may be difficult to accurately determine the position in which the semi-finished lens is blocked. An inaccurate position of the semi-finished lens respectively the insert may create optical errors in the final lens. For the same reason it is difficult to evaluate the position of the semi-finished lens after the blocking step.
One object of the present invention is to provide an optical lens member to be manufactured that allows increased accuracy in the positioning of both surfaces of the final ophthalmic lens.
In accordance with a first aspect of the invention there is provided an optical lens member.
The optical lens member comprises first and second faces connected by an external periphery surface, a reference system identified by at least one sub-surface referencing element located between the first and second optical faces wherein the first face comprises a first optical surface having a surface design associated with the reference system.
Advantageously, having a referencing element placed between the first and second optical surfaces increases the accuracy of the determination of the positions of such referencing element. Indeed, such sub-surface element can easily be visualized even when one of the optical faces of the optical lens member is recovered with a protective tape. For example, the inventors have observed that in specific lighting conditions, for example by lighting the optical lens member through the external periphery surface, the sub-surface referencing element can easily be visualized trough one of the first or second faces of the optical lens member.
Therefore, one may determine more easily and accurately the position of the referencing element and thus the reference system.
According to further embodiments which can be considered alone or in combination:
Another aspect of the invention relates to a method of blocking an optical lens member, the method comprising:
According to further embodiments which can be considered alone or in combination:
Another aspect of the invention relates to a method of adapting surface data of a surface of an optical lens member to be manufactured, the method comprising:
The surface data may be used for the machining of a face of the optical lens member and/or for the referencing of the machined face of the optical lens member and/or for the polishing of the machined face of the optical lens member and/or for the marking of the machined face of the optical lens member and/or for the coating of the machined face of the optical lens member.
Another aspect of the invention relates to a method of manufacturing an optical lens, the method comprising:
Another aspect of the invention relates to a method of manufacturing an optical lens, the method comprising:
wherein during the first and second optical surface manufacturing steps, the same reference system identified by the sub-surface referencing element is used.
According to a further aspect, the invention relates to a computer program product comprising one or more stored sequences of instructions that are accessible to a processor and which, when executed by the processor, causes the processor to carry out the steps of the method according to an embodiment of the invention.
Another aspect of the invention relates to a computer readable medium carrying one or more sequences of instructions of the computer program product according to an embodiment of the invention.
Another aspect of the invention relates to a program which makes a computer execute the method of an embodiment of the invention.
Another aspect of invention relates to a computer-readable storage medium having a program recorded thereon; where the program makes the computer execute the method according to an embodiment of the invention.
Another aspect of the invention relates to a device comprising a processor adapted to store one or more sequence of instructions and to carry out at least one of the steps of the method according to an embodiment of the invention.
Unless specifically stated otherwise, as apparent from the following discussions, it is appreciated that throughout the specification discussions utilizing terms such as “computing”, “calculating”, or the like, refer to the action and/or processes of a computer or computing system, or similar electronic computing device, that manipulate and/or transform data represented as physical, such as electronic, quantities within the computing system's registers and/or memories into other data similarly represented as physical quantities within the computing system's memories, registers or other such information storage, transmission or display devices.
Embodiments of the present invention may include apparatuses for performing the operations herein. This apparatus may be specially constructed for the desired purposes, or it may comprise a general purpose computer or Digital Signal Processor (“DSP”) selectively activated or reconfigured by a computer program stored in the computer. Such a computer program may be stored in a computer readable storage medium, such as, but is not limited to, any type of disk including floppy disks, optical disks, CD-ROMs, magnetic-optical disks, read-only memories (ROMs), random access memories (RAMs) electrically programmable read-only memories (EPROMs), electrically erasable and programmable read only memories (EEPROMs), magnetic or optical cards, or any other type of media suitable for storing electronic instructions, and capable of being coupled to a computer system bus.
The processes and displays presented herein are not inherently related to any particular computer or other apparatus. Various general purpose systems may be used with programs in accordance with the teachings herein, or it may prove convenient to construct a more specialized apparatus to perform the desired method. The desired structure for a variety of these systems will appear from the description below. In addition, embodiments of the present invention are not described with reference to any particular programming language. It will be appreciated that a variety of programming languages may be used to implement the teachings of the inventions as described herein.
Embodiments of the invention will now be described, by way of example only, and with reference to the following drawings in which:
Elements in the figures are illustrated for simplicity and clarity and have not necessarily been drawn to scale. For example, the dimensions of some of the elements in the figure may be exaggerated relative to other elements to help improve the understanding of the embodiments of the present invention.
In the sense of the invention the “surface design” designates the set of parameters that allow defining the surface of a face of an optical lens member. For example the surface design may comprise the surface equation, position and orientation of the surface of a face of an optical lens member, such equation, position and orientation being defined in a reference system.
In the context of the present invention the term “optical lens member” can refer to a lens blank or a semi-finished lens.
As represented on
The optical lens member further comprises a reference system identified by at least one sub-surface referencing element 111 located between the first and second optical faces.
In the sense of the invention, the wording “reference system identified by at least one sub-surface referencing element” is to be understood as meaning that a skilled person can easily identify the main center and the mains axis of the reference system from the position and orientation of the sub-surface referencing element.
In the example represented on
The second face 12 is to be modified by a manufacturing method so as to provide for example the back face 13 of the finished optical lens, represented by the dotted line. Second face 12 is to be machined by a machining tool so that the back face 13 is orientated with respect to the reference system identified by the referencing element 111.
As represented on
While in this embodiment of the invention, the first face is the front face of the lens member and the second face is the back face, it will be understood, that in alternative embodiments of the invention the first face may be the back face of the lens member and the second face may be the front face.
Furthermore, while in this embodiment of the invention, the back face of the optical lens is formed by a digital surfacing manufacturing method, it will be understood, that in alternative embodiments of the invention both or either faces of the lens may be formed by a manufacturing method.
Moreover, although the face 12 to be manufactured is represented in
According to an embodiment of the invention, the first face has a surface design associated with the reference system. In other words, the surface design of the first optical face of the optical lens member is oriented and positioned with respect to the reference system identified by the referencing element 111.
According to an embodiment of the invention, the first face lens is obtained by molding. The surface design of the first face is associated with a reference system identified by at least one referencing element 111 added after the molding process between the first and second surface of the optical lens member.
According to an embodiment of the invention, the first face lens is obtained by machining a surface of an optical lens blank. The surface design of the first face is associated with a reference system identified by at least one referencing element 111 present between the first and second surface of the optical lens blank.
The referencing element 111 are configured to remain at least partially in the manufactured optical lens after the second optical face has been manufactured and eventually after the optical lens has been edged so as to fit a spectacle frame. Therefore, preferably the referencing element is configured so as to be non-discernable.
In the sense of the invention, referencing elements are considers as non-discernable when they do not appear to the wearer more than the classic marking referred to in the ISO standard IS 8980-2.
As indicated in EP 1 888 635, the reference elements, although they are within the active area of the lens, should not hinder the sight of the eyeglasses wearer nor be seen by a casual observer. On the other hand, the reference elements must be readable, for instance, by technical who seeks the reference element or by an imaging vision machine. The non-discernable referencing elements can be observed under certain light conditions such as against the transition between light and shadow. This type of elements is referred herein as a non-discernable referencing element, also known as “semi-visible”, “invisible”, “hidden element”, or similar names.
According to an embodiment of the invention, the referencing element is placed out of the wearer's principal visual field.
Alternatively, referencing element 111 are configured to vanish from the manufactured optical lens after the second optical face has been manufactured and eventually after the optical lens has been edged so as to fit a spectacle frame. In this embodiment the visibility of the referencing element can be much higher than in the previously described embodiment.
According to an embodiment of the invention, the referencing element is arranged so as to be visible only under specific lighting conditions.
The referencing element 111 may comprise local modification of the refractive index of the optical lens member. For example the referencing element comprises a set of markings.
Each marking may have a dimension of a few microns, for example between 1 and 5 μm and each marking is distant of about 10 to 20 μm from the others.
Advantageously the markings are so small that they are non-discernable to the wearer of the optical lens but there sizes are sufficient for creating light scattering points in specific lighting conditions. The markings composing the set are close enough to allow identifying a shape, for example an elementary geometrical shape such as a square, a circle, a triangle, etc . . .
Such micro-markings may be obtained by using a by using a pulsed laser source with pulse duration within femto-second range. The light emitted by the laser source is focused within the optical lens member.
As a none limiting example, the inventors have obtained good results using an Amplitude Systemes S-Pulse laser source. The light emitted by this light source is focused within the optical lens member using a Mitutoyo objective. The laser light used had a wavelength of about 1030 nm, a pulse duration of about 650 fs, an average power of about 1 W for a recurrency of 10 kHz and the objective is a microscope objective 20× having an numerical aperture of about 0.4 and was placed at about 10 mm of the focusing point. Using such parameters the inventors have obtained good sub-surface markings about 1 mm below the laser side surface of the lens member. According to an embodiment, the referencing element may comprise a plurality of sub-surface markings. The sub-surface markings may define a plan P1, preferably the plan P1 is perpendicular to the main axis (Z) of the reference system.
Furthermore, the sub-surface markings may be arranged to form, when highlighted, a specific shape, for example a circle or a square, preferably such shapes are in the plan P1 perpendicular to the main axis (Z). Advantageously, when visualizing the referencing element trough one of the optical surfaces, a deformation of the shape defined by the sub-surface markings can easily be linked to a tilt in the position of the optical lens member about the two axes X and Y.
According to an embodiment of the invention illustrated on
According to an embodiment of the invention, the set of markings are determined according to optical data and observation data.
The optical data represent the refractive properties of the optical lens member.
The optical data may represent the design of the first and second surfaces, the position of the second relative to the first surface, for example, the thickness and prism of the optical lens and the refractive index. For example, the optical data represent the prescription of the wearer.
The observation data represent observation conditions in which the first and second set of sub-surface markings are to be observed. The observation conditions may be defined by considering the observation device and the position of the manufactured lens in the observation device. The position of the manufactured optical lens in the observation device may be defined as the position of an optical lens reference system and an observation device reference system.
Advantageously, determining the relative positions of the two set of markings is rendered much easier, in particular when the observation of the first and second set of markings is realized in the observation conditions.
According to an embodiment of the invention, the sub-surface markings are arranged so as to appear at the same position in the observation conditions when the optical lens member is correctly positioned in the reference system. Therefore, in the observation condition the second and first markings appear superimposed. This simplifies the lens positioning operations prior to the blocking step.
According to an embodiment of the invention illustrated on
For example as illustrated on
Therefore, when the positioning error of the optical lens member is greater than the error position tolerance, the first markings appear outside the second markings, as illustrated on
However, when the positioning error of the optical lens member is smaller than the error position tolerance, the first markings appear inside the second markings, as illustrated on
As illustrated on
During the optical lens member providing step S1, an optical lens member according to the invention is provided, for example an optical lens member as described above.
During the taping step S2, an adhesive tape is provided on the first face of the lens member so as to cover at least part of the first face.
Examples of suitable adhesive tapes are given in U.S. Pat. No. 6,036,013.
During the blocker providing step S3 a blocker with a blocker reference system is provided.
The optical lens is placed on the blocker and positioned in a blocking position with respect to the blocker reference system using the sub-surface reference elements during the optical lens member positioning step S4.
During the blocking step S5, the optical lens member is blocked on the blocker in a blocking position. The blocking position is determined with respect to the blocker reference system using the sub-surface referencing element.
Referring now to
As illustrated in
As illustrated on
After the optical lens member 10 has been placed on the blocking device 20, the operator may make an initial judgment as to the quality of the positioning by direct visualization of the sub-surface reference element 111 of the optical lens member 10 with respect to the reference markings of the blocking device 20 before continuing the blocking process. If the operator is not satisfied with the initial positioning, the optical lens member 10 may be repositioned manually or automatically on the blocking device 20. Once the operator is satisfied with the positioning the clamping arm 35 may be put in place to hold the optical lens member 10 in position on the blocking device 20.
The positioning of the optical lens member 10 on the blocking device 20 can then be quantified using the digital camera 36. In order to measure the positioning of the lens member 10, the sub-surface referencing elements 111 and the reference markings 211 and 222 provided on the blocking device 20 are viewed through the lens member 10 by means of the camera 36 of the blocking device 20 as illustrated in
The position and/or orientation of the referencing element may be measured by lighting the optical lens member through the external periphery surface and capturing an image of the lighted sub-surface referencing element, for example using the camera 36.
According to an embodiment of the invention, the deviation of the image of the sub-surface referencing element 111 located between the first and second faces of the lens member 10 due to refractive properties of the optical lens member 10 may be taken into account when making measurements of the position of the reference system relative to the blocker reference system.
These various steps can alternatively be performed automatically by machines rather by an operator.
Further to the blocking step, the method according to the invention may comprise a blocking position determining step S6.
During the blocking position determining step S6, the blocking position of the optical lens member is determined with respect to the blocker reference system using the sub-surface referencing element 111. Determining the actual blocking position may be used during the downstream steps of the manufacturing process of the optical lens.
For example the surface data use to manufacture the surface of the second face of the optical lens may be adapted according to the actual blocking position of the optical lens member.
Indeed, usually, the surface data are determined assuming that the optical lens member is perfectly positioned with respect to the blocker reference system. However a positioning error may occur during the blocking process. Advantageously, the method according to the invention allows determining the actual position of the optical lens member and the surface data can be adapted according to the difference between the actual position and the theoretical position of the optical lens member. The determination of the actual position is easy because it is based on a relative position measurement of shapes appearing on an image captured, through the lens member. Thus, the method according to the invention allows increasing the overall accuracy of the manufacturing process and the optical quality of the manufactured optical lenses.
The invention further relates to a method of manufacturing an optical lens. The method further comprises after the steps of the blocking method according to the invention:
As indicated previously, the surface data may have been adjusted based on the actual position of the optical lens, said actual position being determined using the sub-surface referencing element.
According to an aspect of the invention, both faces of the optical lens member may be manufactured, for example by digital surfacing technology. Thus the invention further relates to a method of manufacturing an optical lens comprising:
During the first and second optical surface manufacturing steps, the same reference system identified by the sub-surface referencing element is used. Advantageously, the risk of shift between the surfaces of the first and second faces of the final ophthalmic lens is reduced. Thus, the overall quality of the manufacturing process can be increased.
While the foregoing examples have been described with reference to the manufacture of an ophthalmic lens, it will be appreciated that the method of the invention may be applied more generally to the manufacture of other types of optical lens, for example optical lens used in telescopes and the like.
Many further modifications and variations will suggest themselves to those skilled in the art upon making reference to the foregoing illustrative embodiments, which are given by way of example only and which are not intended to limit the scope of the invention, that being determined solely by the appended claims.
In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. The mere fact that different features are recited in mutually different dependent claims does not indicate that a combination of these features cannot be advantageously used. Any reference signs in the claims should not be construed as limiting the scope of the invention.
Number | Date | Country | Kind |
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13305239.9 | Mar 2013 | EP | regional |
This is a U.S. national stage application under 35 USC §371 of International application No. PCT/EP2014/053926, filed on Feb. 28, 2014. This application claims the priority of European application no. 13305239.9 filed Mar. 1, 2013, the entire content of which is hereby incorporated by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/053926 | 2/28/2014 | WO | 00 |