MULTIFUNCTIONAL PROSTHETIC COMPONENT FOR CONVENTIONAL OR DIGITAL WORKFLOW FOR IMPLANT SUPPORTED DENTAL PROSTHESIS INSTALLATION
20230414330 · 2023-12-28
Assignee
Inventors
- Geninho Thomé (Curitiba, BR)
- Sergio Rocha BERNARDES (Curitiba, BR)
- Thiago Cabral Meira CHAVES (Curitiba, BR)
- Maria Augusta Rodrigues Pereira NUNES (Curitiba, BR)
- Ilderaldo José LUCCA (Curitiba, BR)
- Gilberto Aparecido Pinto da FONSECA, Jr. (Pinhais, BR)
Cpc classification
A61C8/0093
HUMAN NECESSITIES
A61C8/0012
HUMAN NECESSITIES
A61C8/006
HUMAN NECESSITIES
A61C8/0072
HUMAN NECESSITIES
International classification
Abstract
A multifunctional prosthetic component developed to have multiple functions within the conventional or digital workflow, in which a temporary or permanent prosthesis is made for a dental rehabilitation unit that is cemented or screwed on a dental implant. Thus, the component has a geometry that allows it to be used as a conventional closed tray transfer, conventional open tray transfer, scanbody, and temporary abutment, basically including three main regions: a lower region, an intermediate region and an upper region, being also able to cooperate with a positioner cap.
Claims
1. Multifunctional prosthetic component for conventional or digital workflow for implant supported dental prosthesis installation, comprising a component removably attached to an implant or analog, which consists of a lower region comprising a lower interface geometry which cooperates with an implant interface, wherein the lower interface has, in the bottom portion, an anti-rotational element and, in the upper portion, the lower surface has a transmucosal region; and an intermediate region comprising an abutment supported by a tapered seating region which is attached to the upper end of the transmucosal region, wherein the abutment has a top surface, the component comprising an upper region defined by at least one upper interface structure comprising a hole for coupling a screw that cooperates with the implant, wherein the upper interface comprises at least one vertical facet; wherein the joining portion between the intermediate region and the upper region configures a cutting location to separate the upper region from the abutment, wherein at least one perimeter groove of the abutment configures a cut-off marking to adjust the height of the abutment, and wherein the intermediate region and the upper region of the multifunctional component comprise a surface treated with a material that enables scanning with intraoral or benchtop scanning equipment.
2. Multifunctional prosthetic component according to claim 1, wherein it is used as a conventional closed tray transfer, a conventional open tray transfer, a scanbody and a temporary abutment.
3. Multifunctional prosthetic component according to claim 1, wherein the abutment comprises: a body of substantially tapered shaped supported by the tapered seating region: at least one top surface at least one perimeter groove and at least one substantially vertical facet.
4. Multifunctional prosthetic component according to claim 1, wherein the upper interface structure comprises at least one neck linked to the top surface, wherein the neck supports at least one substantially trapezoidal body which supports a substantially cylindrical body with a flat top surface.
5. Multifunctional prosthetic component according to claim 1, wherein the upper interface comprises at least one groove on its median horizontal axis.
6. Multifunctional prosthetic component according to claim 1, wherein at least one vertical facet of the upper interface is vertically aligned with the facet of the abutment.
7. Multifunctional prosthetic component according to claim 1, wherein at least one vertical facet of the upper interface is rotationally indexed with the anti-rotational element along the longitudinal axis of the component.
8. Multifunctional prosthetic component according to claim 1, wherein the lower interface geometry comprises one of the following interfaces: morse cone, external hexagon, or internal hexagon.
9. Multifunctional prosthetic component according to claim 1, wherein the intermediate region and the upper region of the multifunctional component have a microscopically modified surface to enable geometric recognition when using intraoral or benchtop scanning equipment.
10. Multifunctional prosthetic component according to claim 1, wherein the facets of the abutment are vertical from the top to its medial portion, wherein in the lower portion, from the medial portion of the abutment, such facets begin to be softly concave until they reach the tapered seating region.
11. Multifunctional prosthetic component according to claim 1, wherein at least one facet of the abutment is indexed to at least one face of the anti-rotational element of the lower region.
12. Multifunctional prosthetic component according to claim 1, wherein the upper portion of the abutment has a smaller cross-section than the cross-section of the region located below the perimeter groove.
13. Multifunctional prosthetic component according to claim 1, wherein it also comprises a positioner cap comprising, on its inner wall, of at least one perimeter shoulder that cooperates with the groove of the upper interface of the multifunctional component, when using a closed tray impression technique.
14. Multifunctional prosthetic component according to claim 13, wherein the perimeter shoulder of the positioner cap cooperates with the groove of the upper interface by one of the following means: interference, pressure, or male-female coupling.
15. Multifunctional prosthetic component according to claim 1, wherein it comprises a long screw for attaching the multifunctional component to the implant when using an open tray impression technique.
16. Multifunctional prosthetic component for conventional or digital flow of dental implant prosthesis installation, comprising a component removably attached to an implant or analog, comprising: a lower region comprising a lower interface geometry cooperating with the implant interface, wherein the bottom of the lower interface is linked to an anti-rotational element, and the top of the lower interface is linked to a transmucosal region; and an intermediate region comprising an s abutment supported by a tapered seating region which is attached to the upper end of the transmucosal region, wherein the abutment has a top surface and comprises at least one substantially vertical facet, a screw, the component is comprising: an upper region defined by at least one upper interface structure comprising at least one groove, and a hole for coupling a screw that cooperates with the implant, since the upper interface comprises at least one vertical facet, and a positioner cap attached to the Upper surface of the interface by means of breakable structures, wherein the positioner cap has on its inner wall at least one perimeter shoulder that cooperates with the groove of the upper interface of the multifunctional component when the multifunctional component is pressed against the positioner cap and the breakable structures break, allowing the component to move until the positioner cap is properly coupled to the upper interface; wherein the union portion between the intermediate region and the upper region configures a cutting location to separate the upper region from the temporary abutment.
17. Multifunctional prosthetic component according to claim 16, wherein the abutment comprises: a substantially truncated conical shaped body supported by the conical abutment: at least one top surface; at least one perimeter recess and at least one substantially vertical facet.
18. Multifunctional prosthetic component according to claim 16, wherein the upper interface structure comprises at least one neck linked to the top surface, wherein the neck supports at least one substantially trapezoidal body which supports a substantially cylindrical body with a flat top surface.
19. Multifunctional prosthetic component according to claim 16, wherein that the upper interface comprises at least one groove on its median horizontal axis.
20. Multifunctional prosthetic component according to claim 16, wherein at least one vertical facet of the upper interface is vertically aligned with the facet of the abutment.
21. Multifunctional prosthetic component according to claim 16, wherein at least one vertical facet of the upper interface is rotationally indexed with the anti-rotational element along the longitudinal axis of the component.
22. Multifunctional prosthetic component according to claim 16, wherein at least one perimeter groove of the abutment configures a cut-off marking to adjust the height of the abutment.
23. Multifunctional prosthetic component according to claim 16, wherein the lower interface geometry comprises one of the following interfaces: morse cone, external hexagon, or internal hexagon.
24. Multifunctional prosthetic component according to claim 16, wherein the intermediate region and the upper region of the multifunctional component comprise a surface treated with a material that enables scanning with intraoral or benchtop scanning equipment.
25. Multifunctional prosthetic component according to claim 16, wherein the intermediate region and the upper region of the multifunctional component have a microscopically modified surface to enable geometric recognition when using intraoral or benchtop scanning equipment.
26. Multifunctional prosthetic component according to claim 16, wherein the facets of the abutment are vertical from the top to its medial portion, wherein the lower portion, from the medial portion of the abutment, such facets begin to be softly concave until they reach the tapered seating region.
27. Multifunctional prosthetic component according to claim 16, wherein at least one facet of the abutment is indexed to at least one face of the anti-rotational element of the lower region.
28. Multifunctional prosthetic component according to claim 16, wherein the upper portion of the abutment has a smaller cross section than the cross section of the region located below the perimeter groove.
29. Method of immediate loading prosthesis installation through the conventional open tray workflow using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus; attach the component to the implant using the long screw; create an impression of the patient's arch using an open tray filled with a dental impression composition; after the appropriate waiting period, remove the long screw; remove the tray containing the multifunctional component from inside the patient's mouth; optional step: install a healing abutment or cover screw on the implant while the temporary prosthesis is being produced; start of the prosthetic procedure: attach an analog to the multifunctional component and cast gypsum to make the model of the patient's dental arch; after the waiting period, remove the gypsum model containing the analog from inside the impression mold, the multifunctional component remaining attached to the model; remove the component from the impression mold; with the aid of an appropriate dental tool, cut the top surface of the multifunctional component to make the abutment have a height of 6 mm, or make the cut in the groove to make the abutment have a height of 4 mm; make and attach the temporary prosthesis to the multifunctional component already shaped as a temporary abutment, being this the end of the prosthetic procedure; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the multifunctional component, acting as a temporary abutment, to the implant.
30. Method of immediate loading prosthesis installation through the closed tray conventional workflow using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus; attach the component to the implant using the screw; couple the positioner cap to the component; create impression using a closed tray; remove, from inside the patient's mouth, the tray containing the positioner cap; remove the screw and component from the implant; optional step: install a healing abutment or cover screw on the implant while the temporary prosthesis is being produced; start of the prosthetic procedure: attach an analog to the multifunctional component; couple the component+analog set to the positioner cap located inside the model, and cast the gypsum; remove the gypsum model from inside the mold; uncouple the component from the analog that was attached to the model; with the aid of an appropriate dental tool, cut the top surface of the multifunctional component to make the abutment have a height of 6 mm, or make the cut in the groove until the abutment have a height of 4 mm; make and/or attach the temporary prosthesis to the multifunctional component already shaped as a temporary abutment, being this the end of the prosthesis step; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the multifunctional component, acting as a temporary abutment, to the implant.
31. Method of immediate loading prosthesis installation through a fast workflow using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus; with the aid of an appropriate dental tool, cut the top surface of the multifunctional component to make the resulting temporary abutment have a height of 6 mm, or make the cut in the recess to make the abutment have a height of 4 mm; make and/or attach the temporary prosthesis to an already formed multifunctional component already shaped as a temporary abutment; by cementing or screwing, attach the multifunctional component, acting as a temporary abutment, to the implant.
32. Method of immediate loading prosthesis installation through a digital workflow using an intraoral scanner and the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus; attach the component to the implant using the screw; scan the patient's dental arch using an intraoral scanner; remove the screw and the component from the implant; optional step: install a healing abutment or cover screw on the implant while the temporary prosthesis is being produced; start of the prosthetic procedure: make the digital design of the temporary prosthesis using a computer and an appropriate software; produce the temporary prosthesis on a milling machine or 3D printer; with the aid of an appropriate dental tool, cut the top surface of the multifunctional component to make the resulting temporary abutment have a height of 6 mm, or make the cut in the groove to make the abutment have a height of 4 mm; attach the temporary prosthesis to the component already shaped as a temporary abutment, being this the end of the prosthetic procedure; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the multifunctional component, acting as a temporary abutment, to the implant.
33. Method of immediate loading prosthesis installation through the digital workflow using open tray and a benchtop scanner, using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus; attach the component to the implant using the long screw; create an impression using an open tray; remove the long screw; remove the tray containing the component from inside the patient's mouth; optional step: install a healing abutment or cover screw on the implant while the temporary prosthesis is being made; start of the prosthetic procedure: attach an analog to the component, and cast the gypsum; remove the gypsum model containing the analog from inside the mold, in which component remains attached; remove the component from the impression; couple the component to the analog to act as a scanbody, and scan the model using a benchtop scanner; digitally create the digital the temporary prosthesis using a computer and an appropriate software; produce the temporary prosthesis on a milling machine or 3D printer; with the aid of an appropriate dental tool, cut the the top surface of the multifunctional component to make the resulting temporary abutment have a height of 6 mm, or make the cut in the groove until the abutment have a height of 4 mm; attach the temporary prosthesis to the component already shaped as a temporary abutment, being this the end of the prosthetic prosthesis; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the multifunctional component, acting as a temporary abutment, to the implant.
34. Method of immediate loading prosthesis installation through the digital workflow using a closed tray technique and a benchtop scanner, and using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus; attach the component to the implant using the screw; couple the positioner cap to the component; create the impression using a closed tray; remove, from inside the patient's mouth, the tray containing the positioner cap; remove the screw and the component from the implant; optional step: install a healing abutment or cover screw on the implant while the temporary prosthesis is being made; start of the prosthetic procedure: attach an analog to the component; couple the component+analog set to the positioner cap that is inside the model, and cast the gypsum; remove the gypsum model from inside the mold; scan the model having component acting as a scanbody, using a benchtop scanner; uncouple the component from the analog that was attached to the model; create the digital temporary prosthesis using a computer and an appropriate software; produce the temporary prosthesis on a milling machine or 3D printer; with the aid of an appropriate dental tool, cut the top surface of the multifunctional component to make the temporary abutment have a height of 6 mm, or make the cut in the groove to make the abutment have a height of 4 mm; attach the temporary prosthesis to the component already shaped as a temporary abutment, being this the end of the prosthetic phase; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the multifunctional component, acting as a temporary abutment, to the implant.
35. Method of two-step dental prosthesis installation through the open tray conventional workflow using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus for a two-step procedure; afterwards install a healing abutment or cover screw on the implant, and wait until the appropriate osseointegration period for has elapsed; at the end of the osseointegration period, remove the healing abutment or cover screw from the implant; attach the component to the implant using the long screw; create an open tray impression; remove the long screw; remove the tray containing the component from inside the patient's mouth; optional step: reinstall the healing abutment or cover screw on the implant until the permanent prosthesis has been made; start of the prosthesis procedure: attach an analog to component, and cast the gypsum; remove the gypsum model containing the analog from inside the mold, in which component remains attached; remove the component from the impression mold; select the most appropriate prosthetic component for the case; produce and attach the permanent prosthesis on the chosen prosthetic component, being this the end of the prosthetic procedure; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the component containing the permanent prosthesis to the implant.
36. Method of two-step dental prosthesis installation through the conventional closed tray workflow, using the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus for the two-step procedure; install a healing abutment or cover screw on the implant, and wait until the appropriate osseointegration period has elapsed; at the end of the osseointegration period, remove the healing abutment or cover screw from the implant; attach the component to the implant using the screw; couple the positioner cap to the component; create the impression using a closed tray; remove, from inside the patient's mouth, the tray containing the positioner cap; remove the screw and the component from the implant; optional step: reinstall the healing abutment or cover screw on the implant until the permanent prosthesis has been produced; start of the prosthetic procedure: attach an analog to the component; couple the component+analog set to the positioner cap that is inside the impression mold, and cast the gypsum; remove the gypsum model from inside the mold; uncouple the component from the analog that was attached to the model; select the most appropriate prosthetic component for the case; produce and attach the permanent prosthesis to the prosthetic component, being this the end of the prosthetic phase; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the component containing the permanent prosthesis to the implant.
37. Method of two-step dental prosthesis installation through the digital open tray workflow using a benchtop scanner and the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus for a two-step procedure; install a healing abutment or cover screw on the implant, and wait until the appropriate osseointegration period for has elapsed; at the end of the osseointegration period, remove the healing abutment or cover screw from the implant; attach the component to the implant using the long screw; create the open tray impression; remove the long screw; remove the tray containing the component from inside the patient's mouth; optional step: reinstall the healing abutment or cover screw on the implant until the permanent prosthesis has been produced; start of the prosthetic procedure: attach an analog to the component and cast the gypsum; remove the gypsum model containing the analog from inside the mold, in which component remains attached; remove the component from the impression mold; couple the component to the analog to act as a scanbody, and scan the model using a benchtop scanner; create the digital permanent prosthesis using a computer and an appropriate software; produce the permanent prosthesis on a milling machine or 3D printer; select the most appropriate abutment for the case; attach the permanent prosthesis to the selected abutment, being this the end of the prosthetic phase; only if the optional step was performed: remove the healing abutment or cover screw from the implant; by cementing or screwing, attach the component containing the permanent prosthesis to the implant.
38. Method of two-step dental prosthesis installation through the digital closed tray workflow using a benchtop scanner and the multifunctional prosthetic component as defined in claim 1, wherein it comprises the following steps: install the implant in the surgical alveolus for a two-step procedure; install a healing abutment or cover screw on the implant, and wait until the appropriate osseointegration period for has elapsed; at the end of the osseointegration period, remove the healing abutment or cover screw from the implant; attach the component to the implant using the screw; couple the positioner cap to the component; create the closed tray impression; remove, from inside the patient's mouth, the tray containing the attached positioner cap; remove the screw and the component from the implant; optional step: install a healing abutment or cover screw on the implant until the permanent prosthesis has been produced; start of the prosthetic procedure: attach an analog to the component; couple the component+analog set to the positioner cap that is inside the mold, and cast the gypsum; remove the gypsum model containing the analog from inside the impression mold, in which the component remains coupled; scan the model which has the component acting as a scanbody, using a benchtop scanner; uncouple the component from the analog that was attached to the model; create a digital permanent prosthesis using a computer and an appropriate software; produce the permanent prosthesis on a milling machine or 3D printer; select the appropriate prosthetic component for the case; attach the permanent prosthesis on the selected prosthetic component, being that the end of the prosthetic procedure; only if the optional step was performed: remove the healing prosthetic component or cover screw from the implant; by cementing or screwing, attach the component containing the permanent prosthesis to the implant.
39. (canceled)
40. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Below this invention will be described in more detail, based on a preferred example embodiment represented in the appended figures, in which:
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DETAILED DESCRIPTION OF THE INVENTION
[0063] The object of this invention will be described and explained in more detail based on the accompanying drawings, which have a merely exemplary and non-limiting nature, since adaptations and modifications can be made without changing the scope of the claimed protection.
[0064] In a preferred embodiment, the multifunctional prosthetic component for conventional or digital workflow object of this invention basically comprises a component 1 that can be removably attached to an implant I or analog (not shown), and is preferably indicated to act as a (i) conventional closed or open tray transfer, to transfer the implant position and orientation to the gypsum model; (ii) scanbody, to be used in the mouth or mounted on the gypsum model to transfer the implant position and orientation through an intraoral or benchtop scanner, in order to create a digital model; and (iii) single (and preferably temporary) prosthetic component, which can also be used for permanent restorations screwed or cemented on implants installed in the patient's maxilla or jaw. Said component 1 comprises a single body consisting of three main regions: a lower region 2, an intermediate region 3 and an upper region 4, as illustrated in
[0065] The lower region 2 comprises the lower interface geometry 22 that cooperates with implant I, having its bottom attached to an anti-rotational element 21, and its top attached to a transmucosal region 23, i.e., positioned outside the coronal region of the implant I (see
[0066] In the first preferred embodiment of the invention, which is depicted in
[0067] The intermediate region 3 comprises the cementable portion of component 1, corresponding to the temporary abutment 31 to be used during the period prior to the installation of the permanent prosthesis, and which preferably has a conical seat 32 to facilitate the adaptation of the temporary prosthesis, in addition to being attached to the upper end of the transmucosal region 23. In
[0068] To use the multifunctional component 1 as a temporary abutment 31, it is initially necessary for the implantologist to cut the component 1 in the neck region 42, i.e., above the top surface 33. Once this is done, the cementable portion (comprising the region between the lower end of the conical seat 32 and the top 33; see
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[0070] In the upper region 4 of component 1, over the top surface 33, there is a cylindrical neck 42 that supports a trapezoidal shaped structure 43 over which an upper interface 41 defined by a substantially cylindrical body provided with a recess or groove 44 on its median horizontal axis is positioned. The upper interface 41 extends until a flat surface 45 in which it is possible to see the coupling hole O for the fixing screw 5 or 51 and, moreover, has vertical facets 46 in the front and rear parts, which are rotationally indexed with the anti-rotational element 21 along the longitudinal axis of component 1.
[0071] It is important to clarify that the geometries of the temporary abutment 31, the neck 42 and the upper interface 41 were designed to enable the accurate scanning of component 1 installed in the mouth or on a patient's dental arch model (i.e., for the geometry scanning using an intraoral or benchtop scanner). To this end, in the region located above the transmucosal portion 23 such elements receive a specific surface treatment that optimizes the scanning process and makes it possible to precisely obtain the position and orientation of implant I in the three-dimensional representation of the computer manipulable dental arch. Thus, and as illustrated in
[0072] It should also be clarified that, as illustrated in
[0073] However, there are surgical procedures that, instead of using the scanning system, require the manufacture of conventional physical models of the patient's dental arch, which are usually made of gypsum or other materials of similar physical properties. In these cases, before casting the gypsum, a negative representation of the dental arches must be collected and that is done by using trays filled with a dental putty that is compressed against the patient's teeth. As a result, for the component 1 to be used as an open or closed tray transfer to reflect the correct and precise position of the previously installed implant in the models, some adaptations that will be presented below must be made.
[0074] The use of the multifunctional component as an open tray transfer requires a screw longer than conventional, to remain with one end external and accessible after the tray is filled with the material that, after taking the arch impression, will conform the patient's dental arch model. To this end, and as illustrated in
[0075] On the other hand, using the closed tray technique to create the dental impression model requires the coupling of an additional element to component 1: a positioner cap 6, 7 as shown in
[0076] The positioner cap 6 is already widely known in implantology and, in the invention presented herein, it can optionally be used by the implantologist, according to his/her preference or surgical need. As shown in
[0077] Another embodiment of this invention is illustrated in
[0078] It is important to note that the tightening of the component 1 promoted by the neck 42 that supports the upper interference element 41 was thus shaped to promote better retention of the impression material when using the part as an open or closed tray transfer that accurately shows the position and direction of the implant to the gypsum model, and also to facilitate the process of removing the geometry 41 when using the component 1 as a temporary abutment.
[0079] In short, the multifunctional prosthetic component 1 according to the preferred embodiment illustrated in
[0080] I. Use of the Multifunctional Component 1 in Immediate Loading Dental Prosthesis Installation Techniques Using a Temporary Abutment and a Temporary Prosthesis
[0081] The installation of an immediate loading prosthesis using a temporary component and a temporary prosthesis during the osseointegration period, can be done by six distinct methods, the steps of which will be presented below.
[0082] 1. The immediate loading prosthesis installation method using the conventional workflow with open tray (as illustrated in
[0096] 2. The immediate loading prosthesis installation method using the conventional workflow with a closed tray (as illustrated in
[0112] 3. The immediate loading prosthesis installation method using the quick workflow (as illustrated in
[0117] 4. The immediate loading prosthesis installation method through the digital workflow using an intraoral scanner (as illustrated in
[0129] 5. The immediate loading prosthesis installation method through the digital workflow using an open tray and a benchtop scanner (as illustrated in
[0146] 6. The immediate loading prosthesis installation method through the digital workflow using a closed tray benchtop scanner (as illustrated in
[0165] II. Two-Step Dental Prosthesis Installation
[0166] The two-step installation needs that, in the first step, the newly installed implant is closed with a cover screw or healing abutment and only in the second step, after the osseointegration period, the permanent prosthesis shall be made and prepared. This is a process that can be done in five different manners, the steps of which will be presented below.
[0167] 1. The two-step prosthesis installation method through the conventional workflow using an open tray (as illustrated in
[0182] 2. The two-step prosthesis installation method through the conventional workflow with a closed tray (as illustrated in
[0199] 3. The two-step prosthesis installation method through the digital workflow using an intraoral scanner (as illustrated in
[0212] 4. The two-step prosthesis installation method through the digital workflow using a benchtop scanner with an open tray (as illustrated in
[0230] 5. The two steps prosthesis installation method through the digital workflow using a benchtop scanner with a closed tray (as illustrated in
[0250] The multifunctional prosthetic component disclosed herein may also present constructive variations in its portion 3, and may present more appropriate geometries for permanent prostheses, without deviating from the protection scope required herein. For example, possible embodiments may present helical channels along part of region 3, and/or a geometry capable of being indexed with hexagon 21 with respect to the component longitudinal axis, with anti-rotational locking function for the prosthesis/crown. It should also be clarified that the multifunctional component can be made of any type of appropriate material (such as, for example, titanium, zirconia or PEEK) or combinations of materials, and be used to install temporary or permanent prostheses.
[0251] Having described a preferred embodiment example, it should be understood that the scope of this invention covers other possible variations, and is only limited by the content of the appended claims, including possible equivalents thereof.