The invention relates to the manufacture of optical lenses. More precisely the invention relates to a method and a system for manufacturing an optical lens.
Manufacturing an optical lens meant to provide a given correction of ametropia conventionally involves defining the geometry of the optical lens to be produced based on the correction sought and the design of the frame selected by the wearer, producing an intermediate optical element (e.g. by molding) and machining the intermediate optical element to fit the geometry previously defined and the selected frame.
It has been proposed more recently to manufacture an optical lens using an additive manufacturing technology.
Using additive manufacturing technology to manufacture an optical lens is of interest because the obtained optical lens may directly be shaped to fit the frame that shall carry it and/or the obtained optical lens complies with the wearer's ophthalmic prescription.
The invention provides a method of manufacturing an optical lens, comprising the following steps:
As the manufacturing data are determined based on the process data, these manufacturing data may take into account specific features of the additive manufacturing method used and anticipates for consequences on the resulting optical lens.
The manufactured optical lens can thus effectively correspond to the sought shape and provide the required correction, in particular.
Additive manufacturing is a manufacturing technique defined in international standard ASTM 2792-12 and designates a process for assembling elements of material to obtain a solid three-dimensional object on the basis of a digital three-dimensional model (typically represented by data of a CAD file, CAD standing for “Computer-Aided Design”).
Such a process is sometimes referred to as 3-D printing or material printing because successive elements (e.g. layers) of materials may be deposited in succession one on the precedent. The layers, which correspond to virtual cross sections extracted from the three-dimensional model, are assembled and fused in order to form the solid three-dimensional object, here an optical part comprising an ophthalmic lens and a holder.
The expression “additive manufacturing” especially designates processes that create solid objects by juxtaposing volume elements or voxels. The term “juxtaposing” is understood to mean sequential operations, for example especially deposition of a layer on the precedent, or the deposition of a voxel making contact with or nearby a voxel deposited beforehand.
Moreover, the term “voxet” is understood to mean an individual element that, in combination with other voxels, defines an intermediate element, a layer for example. The term “voxel” may also apply to an intermediate element, for example a layer, in particular when stereolithography techniques are used.
Thus, depending on the additive manufacturing technique used, the optical lens will possibly be produced voxel by voxel, line by line or layer by layer.
The additive manufacturing method used may be selected in, but is not limited to, the list consisting of inkjet printing, stereolithography, mask stereolithography or mask projection stereolithography, polymer jetting, scanning laser sintering (SLS), scanning laser melting (SLM,) and fused deposition modeling (FDM).
Optional features of the method presented above are as follows:
According to a first possible embodiment, the step of determining manufacturing data comprises the followings sub-steps:
According to a second possible embodiment, the step of determining manufacturing data includes a sub-step of retrieving at least a portion of said manufacturing data in a database associating said portion of manufacturing data to said optical data and to said process data.
The proposed method may further comprise a step of receiving frame data representing a shape of a frame for carrying the optical lens; said manufacturing data may then be determined partly based on said frame data. In the case mentioned above where the geometry of said optical lens is determined, the geometry of said optical lens may for instance be determined based on said optical data and on said frame data.
The invention also proposes a system for manufacturing an optical lens, comprising:
The following description, given with regard to the appended drawings, which are given by way of non-limiting examples, will allow what the invention consists of and how it can be carried out to be better understood.
In the appended drawings:
The system shown in
As shown in dotted lines and further explained below, the system of
The system of
The ECP device 2 is an electronic device, such as a computer (for instance a personal computer or a tablet computer), located for instance in the premises of an eye care practitioner and meant to store (at least temporarily) optical data OD representing characteristics of the optical correction that should be provided by the optical lens to be manufactured.
Such characteristics of the sought optical correction include for instance prescription data defining at least a refraction provided by the optical lens, such as a spherical refractive power and/or a cylindrical refractive power and/or a cylinder axis of the cylindrical correction.
Optical data OD may also include further data defining the lens to be manufactured, such as:
Optical data OD are for instance determined based on a prescription made by an ophthalmologist (after examination of the eyes of the future wearer of the lens to be manufactured) and/or entered in the ECP device 2 (to be at least temporarily stored therein) via a user interface of the ECP device 2.
Optical data OD may also include data defining a frame intended to carry the optical lens to be manufactured (as well as conditions of mounting the optical lens in the frame, possibly).
Such data defining the frame (or frame data FD) may include for instance a reference number identifying the frame and/or data representative of the design of at least part of the frame (such as data defining a 3D representation of the concerned frame).
The frame just mentioned may for instance have been chosen beforehand in the ECP premises by the future wearer of the optical lens to be manufactured.
According to a possible variation (represented in dotted lines in
The additive manufacturing machine 10 comprises a control unit 102, at least one nozzle 113 and a manufacturing supporting member 112 on which the optical lens will be manufactured by means of an additive manufacturing method.
The manufacturing supporting member 112 comprises a body provided with a manufacturing surface that has an overall geometry, all or some of which is independent or dependent on the geometry of at least one surface of the optical lens to be produced by additive manufacturing. In the example described here, the manufacturing surface is flat; as a variant, it could for example be convex or concave.
The nozzle 113 is controlled by the control unit 102 so as to be moved by actuators and to deliver elementary volumes (or voxels) of a material that will form, after an optional additional treatment (such as a photo-polymerization step), elementary portions of the optical lens being manufactured.
The control unit 102 is provided with a data processing system, especially comprising a microprocessor and a (e.g. non-volatile) memory (here a read-only memory or ROM integrated). Such a memory stores computer program instructions (forming a software) which, when executed by the microprocessor, allows the additive manufacturing machine 10 to be controlled and thus the additive manufacturing method to be implemented.
The control unit 102 furthermore comprises a modifiable memory, here a volatile random access memory (RAM), in which the data used during the execution of the software and implementation of the additive manufacturing method are stored.
As a variant, the non-volatile memory and/or the modifiable memory could be a rewritable non-volatile memory, for example an electrically erasable programmable read-only memory (EEPROM).
When producing the optical lens, the modifiable memory especially stores corresponding manufacturing data MD, as further described below.
The invention is not limited to a particular location of the additive manufacturing machine 10.
For instance, as schematically shown in
According to a possible variation, the additive manufacturing machine 10 and the processing unit 6 could be located in the same building.
According to yet another solution the additive manufacturing machine 10 could be located in the ECP premises.
The communication circuit 4 is adapted to establish a connection with the OCP device 2 (for instance a remote connection using a wide area network such as the Internet) so as to exchange data with the ECP device 2.
The communication circuit 4 may thus receive the optical data OD mentioned above from the ECP device 2.
The communication circuit 4 is also adapted to establish a connection with the frame designer device 12 (for instance a remote connection using a wide area network such as the Internet) so as to exchange data with the frame designer device 12.
The communication circuit 4 may thus receive at least part of the data defining the frame FD from the frame designer device 2.
The communication circuit 4 is also adapted to establish a connection with the additive manufacturing machine 10 (for instance using a wide area network or a local area network depending of the location of the additive manufacturing machine 10 with respect the communication circuit 4) so as to exchange data with the additive manufacturing machine 10.
The communication circuit 4 may thus receive (here, from the additive manufacturing machine 10) process data PD representing at least one characteristic of an additive manufacturing method used (by the additive manufacturing machine 10) to manufacture the optical lens.
Such process data PD may include for instance:
The processing unit 6 (for instance a microcontroller) is connected to the communication circuit 4 and has therefore access to the data received by the communication circuit 4 has just explained. The processing unit 6 and the communication circuit 4 may be part of the same electronic device (and in this case connected together via an internal bus of this electronic device), for instance. According to a possible variation, the processing unit 6 and the communication circuit 4 may be part of the same local area network and can this exchange data over this local area network.
The processing unit 6 is adapted to determine manufacturing data MD based on the optical data OD and on the process data PD received by the communication circuit 4. The determined manufacturing data MD will then be usable by the additive manufacturing machine 10, as already noted above and further explained below.
Such determined manufacturing data MD includes for instance:
Examples of how the manufacturing data MD may be determined are given below with reference to
The optical data OD and the manufacturing data MD may be stored (for instance in the storage unit 8) in a single set of data, for instance in a single file.
As schematically represented in
According to a possible embodiment, the single set of data defined above (including optical data OD and manufacturing data MD) is sent from the processing unit 6 to the manufacturing machine 10 (possibly via the communication circuit 4).
The single set of data just mentioned may thus include:
The method of
Exemplary optical data OD are described above with reference to
As explained above, optical data OD may at least in part be received. from the ECP device 2.
Part of the optical data OD (in particular data defining the frame FD) may be received from the frame designer device 12.
In practice, the processing unit 6 may receive (via the communication circuit 4) a reference number identifying the frame (selected by the wearer in the ECP premises) from the ECP device; this reference number may then be sent from the processing unit 6 (via the communication circuit 4) to the frame designer device 12, which sends in response to the processing unit 6 (via the communication circuit 4) data defining a 3D representation of the frame identified by this reference number.
The method of
Process data PD is for instance transmitted by the additive manufacturing machine 10 that is designed to perform the additive manufacturing method used to manufacture the optical lens.
At least part of the process data PD is for instance descriptive of an equipment participating in the implementation of the additive manufacturing method (such as the manufacturing machine 10 itself). At least part of the process data PD may be descriptive of at least one material which may be used by the equipment just mentioned (e.g. the manufacturing machine 10) and of its properties (e.g. its provider and/or its reactivity and/or its thermo-mechanical properties and/or its refractive index and/or its shrinkage and/or its viscosity and/or its wettability).
The process of
As explained above with reference to
According to a first possible embodiment, the step S6 of determining manufacturing data MD comprises the followings sub-steps:
In this embodiment, a geometry of the optical lens is first determined by the processing unit 6 such that the optical lens having this geometry provides the optical correction defined in the optical data OD.
The processing unit 6 can then determine the manufacturing data MD which make it possible to obtain an optical lens having this geometry, taking into account the additive manufacturing method to be used as determined from the process data PD.
In particular, the processing unit 6 may thus select a printing strategy among the various possibilities defined in the process data PD. The printing strategy may for instance be selected to balance production time, cost and quality and/or based on records of former successful implementations of the additive manufacturing method concerned.
Based on the selected printing strategy, the processing unit 6 may determine parameters defining the additive manufacturing method best suited to produce an optical lens conforming to the determined geometry, taking into account (i.e. compensating for) known production drifts resulting from the selected printing strategy.
Parameters defining the additive manufacturing method include for instance the number and/or size of layers deposited by the additive manufacturing machine 10. Parameters defining the additive manufacturing method may also include the material selected by the processing unit 6 for producing the optical lens.
According to a second possible embodiment, the step S6 of determining the manufacturing data MD includes a sub-step of retrieving the manufacturing data MD in a database stored for instance in the storage unit 8 and associating this manufacturing data MD to said optical data OD and to said process data PD.
This database is for instance a large multi-entry table including, for each set of a large number of sets of possible optical parameters (corresponding to optical data OD) and for each set of a large number of sets of possible process parameters (corresponding to process data PD), a set of corresponding manufacturing parameters (corresponding to manufacturing data MD).
The optical parameters just mentioned are for instance a spherical refractive power and/or a cylindrical refractive power and/or a cylinder axis of the cylindrical correction, as explained above.
The process parameters just mentioned are for instance the type of the additive manufacturing method and the materials used in the additive manufacturing method.
The set of manufacturing parameters is for instance associated to a given set of optical parameters and to a given set of process parameters based on previous experiments or implementations of the additive manufacturing method defined by these process parameters.
As already indicated above, the manufacturing data MD just obtained and the optical data OD (received in step S2) may be stored in a single set of data (such as a single file), that can thus easily be used later as explained below.
At the end of step S6, this single set of data may be sent to the additive manufacturing machine 10 (possibly via the communication circuit 4).
The process of
This step S8 of verifying at least one parameter of the optical lens may be implemented by the processing unit 6 or by the additive manufacturing machine 10, for instance.
For instance, step S8 may include estimating an effective refractive power of the optical lens to be manufactured (in a specific area of the lens or over the whole lens) using a ray tracing technique and a model of the optical lens to be manufactured, this model being defined by data included in the single set of data, such as data defining the 3D lens shape, data defining the number and the size of layers, data defining the material used (and its refractive index, as mentioned above).
Step S8 may also include comparing the estimated effective refractive power with a theoretical or desired refractive power, for instance as defined in the optical data OD. In particular, the estimated effective refractive power may be compared to a corresponding refractive power defined by prescription data, as mentioned above.
The comparison just mentioned may be used for instance to anticipate on the accuracy of the correction that may be provided by the optical lens to be manufactured, for instance to stop the current manufacturing process (and possibly use an alternative manufacturing process) in case the accuracy is not satisfactory.
In another embodiment, the result of the comparison may be used to modify the manufacturing data MD and estimate a new refractive power value based on the modified manufacturing data MD, until the comparison gives an acceptable result.
The process of
Precisely, some data among the manufacturing data MD (such as data defining the number and the size of layers) are directly usable by the additive manufacturing machine 10 to produce the optical lens.
In practice, the control unit 102 controls the nozzle 113 in accordance with data among the manufacturing data MD to thereby produce (i.e. print) the optical lens.
In view of the way the manufacturing data MD are determined (in step S6), the optical lens thus produced has the expected shape and optical properties.
A post-printing treatment (such as machining and/or polishing and/or edging) may in some case by performed on the printed optical lens (when using a additive-subtractive manufacturing technology).
Number | Date | Country | Kind |
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18306326.2 | Oct 2018 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/076897 | 10/4/2019 | WO | 00 |