The present invention relates to a position localizer device of the enhanced type, suitable for use in oral, dental and maxillofacial prostheses. The field of application of the invention is that of devices which are used for reproducing the natural position of the same devices and of an element connected to these, for example a dental implant in a patient's mouth or on models which reproduce it. In particular, the devices to which the invention relates serve to reproduce, in the form of a mathematical model, the position and orientation in space of an osteo-integrated implant in a patient's mouth or on the models reproducing the same.
For this purpose, the use is known, in fact, of position localizer devices, which have a readable surface by means of suitable instruments (data scanning or similar). This surface is, in particular, provided with elements, that can be detected by said instrumentation and which identify position references of the same, suitable for the construction and identification of a mathematical model. This model, which is present in a database of the instrument, serves to reproduce as faithfully as possible, the natural position of the localizer and consequently of the element connected to the same which must be localized. The elements mentioned above, which are positioned on the surface of the localizer also have a reference function, suitable for identifying and coupling this surface, actually revealed on the localizer device, with the corresponding surface of a mathematical model filed in the database of the instrument.
The scanning phase of the surface of the position localizer represents, as is known, a very difficult and delicate moment of the overall reconstruction process of the initial structure, particularly due to reading errors which do not allow the strict adherence of the surface scanned to that effectively belonging to the position localizer.
Further difficulties arise in the subsequent coupling phase of the form, thus revealed by the optical instrument, with the model filed in the database of the detector. These difficulties mainly relate to obtaining a perfect adherence of the surfaces scanned with those coming from the mathematical model present in the database, which requires correspondence between the space coordinates and their point of origin, of the actual localizer and its mathematical model, respectively.
Position localizers having a truncated-cone-shaped or cylindrical form, integrated with a reference notch, are currently known.
These localizers, however, have the drawback of offering a limited number of surface reference points, with the consequence of both generating distortions during the optical detection, and causing inaccuracies, also significant, on the coupling of these surfaces with the desired mathematical model.
Further known embodiments are identified by position localizers having a cylindrical base surmounted by a plurality of spherical bodies, the latter arranged on axes different from those of the localizer body. These devices, however, which have the advantage of introducing a larger number of reference points on the surface of the localizer, have the drawback of hindering the optical scanning phase of said surface, mainly in the case of localizers positioned with a high inclination. This drawback is even more serious if it is considered that the known devices, due to their composite structure, require the integral reading of all of their form components (cylindrical body and spheres), and if one of these is lacking, for example due to the presence of obstacles (such as other teeth or the like) close to the localizer, the scanning provides incorrect position results.
Finally, localizers obtained from the combination of spherical forms reciprocally interconnected, are known, which have the disadvantage of substantially lacking references with respect to their angular position, references which can be inferred in all circumstances, particularly also in the presence of obstacles which do not allow their reading.
US2008/0176188 A1 discloses a gauging member provided with hemispherical elements positioned offset on the upper detecting surface.
The main objective of the present invention is to provide a position localizer device of the enhanced type, for oral, dental and maxillofacial prostheses, in respective intraoral applications and on the model, which overcomes the above mentioned drawbacks of the known art.
In particular, an objective of the invention is to provide a device of the type mentioned above, which allows the reconstruction, through the reading of the surfaces, as accurately as possible, with respect to the actual value, of both space coordinates and their point of origin.
Another objective of the invention is to provide a localizer device of the type mentioned above, which is able to effect the accurate coupling of the surfaces scanned with those of the mathematical model in the database, obtaining, for this purpose, the best possible coincidence of the space coordinates and the point of origin of these surfaces.
A further objective of the invention is to provide a new localizer device having a form suitable for eliminating any uncertainty in the reading and composition on the part of the scanning software of the detection instrument.
These and other objectives are achieved by the position localizer device for oral, dental, maxillofacial prostheses according to the invention as disclosed hereinafter.
With respect to the known art considered above, the localizer of the invention offers the advantage of allowing a perfect adherence between the surfaces scanned and those belonging to the same device and the perfect coupling of the surfaces scanned with the mathematical model present in the database.
This important result is obtained thanks to the particular form of the device, which eliminates reading and composition ambiguities on the part of the scanning software, consequently avoiding distortions and approximations which can be found in traditional systems. More specifically, the combination of a spherical surface with the horizontal and vertical edges of an irregular polyhedron, avoids the formation of parts hidden from the scanning device, and aligns the scans in sequence, practically nullifying incorrect overlapping. Above all, the irregular geometrical form of the polyhedron generates adjacent angles all different from each other, consequently eliminating any ambiguity of overlapping on the part of the composition software algorithm of the solid scanned. This composition of figures confers therefore a high precision to the scanning phase of the solid, eliminating acquisition defects of the images on the part of the software.
The device of the invention also offers the advantage of effecting an accurate coupling of the scanned surfaces with those of the mathematical model in the database, obtaining to this end the best coincidence of the space coordinates and the point of origin of these surfaces. In particular the device of the invention allows the perfect adherence of the scanned surfaces with the surfaces coming from the database to be obtained, through the exact determination, on the part of the coupling algorithm, of the vertical position of the object in the database, the side position with respect to the origin and inclination of the object in the database with respect to the vertical, in addition to the rotation of the surface with respect to the origin and horizontal axis of the object in the database.
These and other objectives, advantages and characteristics emerge from the following description of a preferred embodiment of the device of the present invention illustrated, as a non-limiting example, in the figures of the enclosed tables of drawings. In these:
The device of the invention is indicated as a whole with 1 in
A connection cylindrical element 18 is positioned at the base of the device 1, or on the lower side of the polyhedric body 3, suitable for effecting the coupling of the localizer with the interface of the respective supporting structure (not shown). The dimensions of this element are selected so as to be able to adapt it to the interfaces of the implants, maintaining the same upper portion for as many implants as possible, according to the dimensions and type of interface. The cylindrical design of this connection element was also conceived for allowing it to be held by operating pincers on tool machines during the construction of the device, without jeopardizing its accuracy.
As illustrated in
In order to reduce the error identified by the inclination or the angular shift a between the actual axis 41 of the device 1 and the axis 42 which can be read by the detector 7 (
In order to reduce the reading error on the part of the detector 7 as much as possible, on the angular position β of the device 1 around its axis 4 (which, in
Consequently, thanks to the detecting of the overall geometrical figure of the device 1, in particular by exploiting the cited geometrical elements of the spherical body 2, edges 9, 51, 52 and lateral sides 8 of the polyhedron 3, the reading errors concretized by the shifts F1, F2; F3, F4; α, β between the position revealed by the detector 7 and the actual position of the device 1 of the invention, are reduced to the minimum, as shown in the previous figures. This significant reduction in the reading errors of the device 1 by the detector 7, leads, in the subsequent coupling phase with the corresponding mathematical model, to an even lesser ambiguity in the interpretation of the coupling between the surface read by the detector 7 and the surface of the corresponding mathematical model.
In the variation shown in
The function of the connection 10 described is to further reduce the shift or error in the reading of the vertical position of the device 1, as revealed by the detector 7, in the direction of the arrows F1, F2 of
This result is reached, in particular, thanks to the different curvature R1, R2 of the mentioned portions 11 and 12 of the connection 10. Preferably the cited radiuses R1, R2 are also different from the radius of the outer surface of the spherical body 2.
In the variation shown in
With respect to the overall body of the cylinder 13, this contributes to minimizing the shifts F3 and F4 of
In the version shown in
an upper cylindrical body 16 with an edge 20, the spherical body 2 of
a connection 17 which connects the mentioned cylinder 16 with the spherical body 2,
the body 3 in the form of a polyhedron shown in
the connection 10 shown in
the lower cylindrical body 13 of
the cylindrical connection 18 of the device shown in the previous figures.
In particular:
for optimizing the precision of the vertical detection with respect to the origin (shifts F1, F2 of
for optimizing the precision of the detection with respect to the plane X, Y, and with respect to the angle a between the axis 41 and 42 (
Having thus described some preferred exemplary embodiments of the device of the present invention in accordance with the principles of the present invention, it should be apparent to those skilled in the art that various additional objects and advantages have been attained by the invention and that a variety of modifications can be made within the scope of the present invention, being limited by the following appended claims only.
Number | Date | Country | Kind |
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12181013.9 | Aug 2012 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2013/002258 | 7/30/2013 | WO | 00 |