DENTAL TOOL, PROSTHETIC COMPONENT, AND TOOL AND COMPONENT ASSEMBLY

20200281696 · 2020-09-10

Assignee

Inventors

Cpc classification

International classification

Abstract

A dental tool and prosthetic components/screws that allow capturing, transporting and applying torque so as to perform dental service with a single tool specially adapted for components/screws with reduced dimensions, such as, e.g., smaller than 1.4 mm in diameter.

Claims

1. A dental tool for coupling in a prosthetic component, wherein it comprises at its lower end: a plurality of protrusions and a plurality of recesses; wherein the plurality of protrusions and the plurality of recesses are alternately arranged, such that side walls are formed substantially perpendicular to the longitudinal axis of the tool; and wherein each of the protrusions is subsequently divided, from the tip of the end, into a first region, a second region, and third region.

2. The dental tool according to claim 1, wherein comprising six protrusions.

3. The dental tool according to claim 1, wherein comprising six recesses.

4. The dental tool according to claim 1, wherein the first region is provided with a corner break, so as to facilitate fitting the tool into the component.

5. The dental tool according to claim 1, wherein the second region is parallel to the wrench longitudinal axis.

6. The dental tool according to claim 1, wherein the third region is conical in shape.

7. The dental tool according to claim 1, wherein the recesses extend to the central region of the circular end of the tool.

8. The dental tool according to claim 1, wherein the recesses extend to an edge of the tip of the tool.

9. A prosthetic component as defined in claim 1, wherein comprising on its internal surface: a plurality of counterbores; a plurality of projections; wherein the plurality of counterbores and the plurality of projections are alternately arranged and equidistant, so that side walls are formed substantially perpendicular to the axis of component.

10. The prosthetic component according to claim 9, wherein the internal surface further comprises a settling platform.

11. A set comprising the dental tool as defined in claim 1 and the prosthetic component, wherein: the plurality of protrusions engages with the plurality of counterbores; and the plurality of recesses engages with the plurality of projections, wherein the side walls align with side walls forming torque areas.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0022] The present invention will now be described in more detail based on an example implementation illustrated in the drawings. The Figs. show:

[0023] FIG. 1perspective view of the end of a prior art hexagonal capture tool, highlighting the capture region;

[0024] FIG. 2perspective view of the end of a prior art capture tool, highlighting the torque region;

[0025] FIG. 3sectional front view of detail A of the hexagonal tool illustrated in FIGS. 1 and 2 at the moment of torque;

[0026] FIG. 4aside view of a first embodiment of the dental tool herein;

[0027] FIG. 4bside view of a second embodiment of the dental tool herein;

[0028] FIG. 4cside view of a third embodiment of the dental tool herein;

[0029] FIG. 5perspective view of the front end of the dental tool herein;

[0030] FIG. 6aside view of the end of a first embodiment of the dental tool herein;

[0031] FIG. 6bfront view of the lower end of a first embodiment of dental tool;

[0032] FIG. 7aside view of the end of a second embodiment of the dental tool herein;

[0033] FIG. 7bsecond top view of the lower end of a second embodiment of the dental tool herein;

[0034] FIG. 8aperspective view of a first embodiment of the prosthetic component/screw herein;

[0035] FIG. 8bperspective view of a second embodiment of the prosthetic component/screw herein;

[0036] FIG. 9atop view of the prosthetic component/screw of FIG. 8a;

[0037] FIG. 9bside sectional view of the coupling region of the prosthetic component/screw of FIG. 8a;

[0038] FIG. 10atop view of the prosthetic component/screw of FIG. 8b;

[0039] FIG. 10ba side sectional view of the coupling region of the prosthetic component/screw of FIG. 8b;

[0040] FIG. 11partial sectional side view detailing the interaction between the dental tool with the prosthetic component/screw herein;

[0041] FIG. 12sectional side view detailing the interaction between the dental tool with the prosthetic component/screw herein;

[0042] FIG. 13perspective view of the dental tool and component/screw set herein highlighting the capture region;

[0043] FIG. 14perspective view of the dental tool and component/screw set herein highlighting the torque region;

[0044] FIG. 15across-sectional view detailing the interaction between the dental tool with the prosthetic component/screw herein;

[0045] FIG. 15benlarged detailed view of FIG. 15a.

DETAILED DESCRIPTION OF THE DRAWINGS

[0046] FIGS. 1-3 illustrate a hexagonal tool 1 commonly used in the prior art, more specifically, a hexagonal capture tool 1 cooperating with a prosthetic component 2.

[0047] As seen in FIG. 1, the tip 3 of tool 1 is unable to fully penetrate the length of the internal orifice of component 2 due to the conical portion 5, such that the bottom region 4 of the internal orifice of component 2 does not contact the tip 3 of tool 1. This limitation occurs in regions of interference 16 highlighted in FIG. 1.

[0048] Thus, when a torque T is applied (see FIG. 2) to fasten the component 2 in the implant (not shown), note that it is only applied in the upper portion 6 of the internal orifice of component 2. The contact regions/points 7 are highlighted in said FIG. 2. This difference in torque T application makes it so that component 2 experiences deformations and, should the dentist continue to perform the fastening movement, more deformations will occur until such deformations add up and result in the deformation of the tool ridges 1, so that it will start to rotate on its own, no longer performing torque T.

[0049] Thus, the tool 1 with conical tip works only for the capture function and to provide only a first torque to lightly fasten the component 2 in the implant. In order to provide the optimal and necessary torque to fasten the component 2 in the implant, the use of a straight-tipped, non-angled tool is ideal, allowing the internal surface of component 2 to fully contact the tip 3 of tool 1, whereby the application of torque T is made preferably uniformly throughout component 2.

[0050] Furthermore, FIG. 3 shows in enlarged details that the hexagonal tool 1 has only a small contact region 7 actually in contact with the internal surface of component 2 for performing torque T. Thus, in addition to the deformations that occur through the use of tool 1 to tighten component 2, should the dentist provide a torque T greater than necessary for fastening component 2 in the implant, component 2 tends to deform with the intensity of force applied to it, i.e., the head of component 2 tends to dilate. This deformation is very common in parts small in diameter (smaller than 1.4 mm) that use smaller tools, as such tools support less torque and tend to deform more easily.

[0051] This deformation is extremely harmful, especially if component 2 needs to be removed for any reason. When the dentist uses a tool to remove the deformed component 2 (dilated head), tool 1 will have difficulty fitting in and, as a result, removing component 2.

[0052] Therefore, the present invention aims to provide a dental tool, which performs the function of capturing and fastening a prosthetic component 2 without the need to switch tools, reducing the possibility of defects in the component/screw 2 when applying torque T (dilation of screw head/component) and which can further be used on components with diameters smaller than 1.4 mm.

[0053] FIGS. 4a-4c illustrate three capture and fastening tool 10 embodiments of the present invention, wherein its lower end 11 has been modified so as to solve the problems presented by the prior art.

[0054] As best seen in FIGS. 5-7b, the lower end 11 of the dental tool 10 comprises a plurality of protrusions 12, preferably six axial protrusions distributed around its circular perimeter. Said protuberances 12 are divided, from the tip 3 of end 11, into three subsequent regions; the first region 12.1 being equipped with a corner break with the function of facilitate fitting the tool in the component/screw 20; a second region 12.2 parallel to the longitudinal axis of the wrench, which will be housed inside the component; and a third region 12.3 conical/angled in shape.

[0055] In the embodiment illustrated in FIGS. 5, 6a and 6b the recesses 13 extend into the region next to the center of the circular end 3 of the tip 3 of the tool 10.

[0056] Optionally and as shown in FIGS. 7a and 7b, the lower end 11 of the tool 10 further comprises, alternately with the protrusions 12, a plurality of recesses 13 also axial in the circular axis of the tool 10, said recesses 13 having no extensions. Thus, in the embodiment illustrated in FIGS. 7a and 7b, the recesses 13 extend only up to an edge 3 of the tip 3 of the tool 10, not extending in proximity to the center of the circular end 3.

[0057] This configuration allows protrusions 12 and recesses 13 to have different mechanical functions when the tool 10 is used.

[0058] However, in order to apply the capture and fastening functions of tool 10, it is necessary to modify the components/screws 20 to better adapt to the distinct shape of the tool 10. Therefore, note in FIGS. 8a and 8b that the internal surface of the component/screw 20 is comprised of a plurality of projections 22 which form counterbores 21.

[0059] As seen in FIGS. 9a-10b, the counterbore 21 and projections 22 regions of component 20 are alternately distributed and equidistant around the inner surface of the circular section of component 20. It should be noted that in the embodiment illustrated in FIGS. 10a and 10b the internal surface of component 20 is further provided with a small settling platform 23.

[0060] Thus, when the tool 10 is inserted into the component 20, as seen in FIGS. 11 and 12, the recesses 13 will couple with the projections 22 while the protrusions 12 will couple with the counterbores 21, as indicated by arrows A and A in FIG. 11, respectively.

[0061] It is important to note that such modification in the shape of both tool 10 and component 20 allows the tool 10 to fully penetrate the internal extension of component 20, as the conical region 12.3 when fitting into counterbores 21 forms a flat axial fitting with the side walls of the projections 22. This avoids any tendency of defects occurring in tool 10 or component 20 when torque T is applied.

[0062] With the tool 10 adequately fitted into component 20, the conical region 12.3 will function as a (retention) capture region 14 of component 20, as highlighted in FIG. 13, due to the male/female coupling formed between the conical region 12.3 and the counterbores 21 of the internal region of component 20, temporarily locking the component 20 in the tool 10. This locking allows the transportation of the component package into the installation site.

[0063] After transporting the component 20 into the installation site, the dentist needs to perform the necessary torque T to fasten it in an implant (not shown) installed at the patient's mouth.

[0064] Due to the alternate combination of the protrusions 12 and the recesses 13, side walls 15 (seen in FIGS. 7a and 14) substantially perpendicular to the longitudinal axis of the tool 10 are formed.

[0065] Thus, when the tool 10 contacts the component 20, the side walls 15 align with side walls 22.2 substantially perpendicular to the axis of component 20, which are formed due to the alternately combination of counterbores 21 with the projections 22 (see FIG. 15a).

[0066] Thus, when applying torque with rotation movement, the side walls 15 directly contact the entire length of the side walls 22.2 forming torque areas 18 as highlighted in FIG. 14.

[0067] As seen in greater detail in FIGS. 15a and 15b, the point of contact for applying torque between tool 10 and component 20 does not occur at a single point, but along the entire length of the surfaces of the side wall 15, 22.2 of tool 10 and component 20, respectively.

[0068] Thus, when the dentist performs torque T to fasten the component 20 in the implant, the chances of deforming the head of the component 20 or tool 10 are significantly reduced, which reduces the chances that tool 10 will dilate the head of the component. 20 and, consequently, spin on its own and deform its ridges.

[0069] Furthermore, since the tool 10 of the present invention does not have the tendency of dilating the head of the component 20, it is possible to reduce the thickness of the wall of component 20. This decrease in wall thickness increases the fitting area of the tool 10, regardless of the size of the component 20 to be fixed.

[0070] Thus, the same tool 10 can be used for components/screws 20 of different sizes, including those with diameters smaller than 1.4 mm. This is because with the adopted geometry, the radial component of contact force between the parts is smaller, such that a smaller wall thickness is required for the same resistance with the same force applied.

[0071] Having described a preferred embodiment example, it should be understood that the scope of the present invention covers other possible variations and is limited only by the content of the appended claims, including possible equivalents thereof.