IP Library Granted Patent US 11,633,265
Granted Patent B2
US 11,633,265 · App. 16/229,373 · Granted Apr 25, 2023

Dynamic virtual articulator for simulating occlusion of teeth

Inventors: Rune Fisker (Virum, DK); Christophe Vasiljev Barthe (Copenhagen N, DK); Kasper Kabell Kristensen (Vanlose, DK); Tommy Sanddal Poulsen (Altered, DK)
Assignee: 3SHAPE A/S
A61C11/00A61C13/0004A61C19/05A61C9/0053A61C9/0086A61C13/097A61C19/045G16H20/40
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Quick Facts
Patent No.
US 11,633,265
App. No.
16/229,373
Granted
Apr 25, 2023
Kind
B2
Abstract

Disclosed is a computer-implemented method of using a dynamic virtual articulator for simulating occlusion of teeth, when performing computer-aided designing of one or more dental restorations for a patient, where the method includes the steps of: providing the virtual articulator including a virtual three-dimensional model of the upper jaw and a virtual three-dimensional model of the lower jaw resembling the upper jaw and lower jaw, respectively, of the patient's mouth; providing movement of the virtual upper jaw and the virtual lower jaw relative to each other for simulating dynamic occlusion, whereby collisions between teeth in the virtual upper and virtual lower jaw occur; wherein the method further includes: providing that the teeth in the virtual upper jaw and virtual lower jaw are blocked from penetrating each other's virtual surfaces in the collisions.

Claims (34)

1. A computer-implemented method of simulating occlusion of teeth, the method comprises using a dynamic virtual articulator when performing computer-aided designing of one or more dental restorations for a patient, the method further comprises:

providing the dynamic virtual articulator, the dynamic virtual articulator including a virtual three-dimensional model of the upper jaw and a virtual three-dimensional model of the lower jaw resembling the upper jaw and lower jaw, respectively, of the patient's mouth, wherein the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw include three dimensional models of teeth without restorations, and at least one of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw with three dimensional models of teeth including one or more dental restorations;

displacing the at least one or more virtual dental restorations vertically relative to the jaw from an original position on at least one of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw in order to provide a relative offset of the at least one or more virtual dental restorations;

providing movement of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw relative to each other for simulating dynamic occlusion, whereby collisions between the teeth in the virtual upper and virtual lower jaw occur; and

providing that the teeth in the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw are blocked from penetrating each other's virtual surfaces in the collisions while permitting penetration of the at least one or more displaced virtual dental restorations, wherein the permission of the penetration is based on a preference of an operator or a user.

2. The computer-implemented method according to claim 1 , wherein the method further comprises simultaneous modeling of the one or more displaced virtual dental restorations and collision testing of the virtual upper jaw and virtual lower jaw.

3. The computer-implemented method according to claim 1 , wherein the method further comprises fixing the virtual upper jaw to the occlusal axis such that the virtual lower jaw is configured to move relative to the virtual upper jaw.

4. The computer-implemented method according to claim 1 , wherein the method further comprises defining a search structure on the virtual upper jaw configured for searching on predefined circular paths around the occlusal axis for detecting collisions with the surface of the lower jaw model.

5. The computer-implemented method according to claim 1 , wherein a part of the one or more virtual dental restorations which causes a collision is configured to be automatically removed from the respective virtual jaw.

6. The computer-implemented method according to claim 1 , wherein the method further comprises that the movement of the virtual upper jaw and the virtual lower jaw relative to each other is configured to be digitally recorded.

7. The computer-implemented method according to claim 1 , wherein the method further comprises aligning the virtual upper jaw and virtual lower jaw to correspond to the anatomical alignment of the jaws in the mouth of the patient.

8. The computer-implemented method according to claim 1 , wherein the method further comprises positioning a virtual alignment plane relative to the virtual upper jaw and the virtual lower jaw, where the virtual upper jaw and virtual lower jaw defines a virtual model of the set of teeth, wherein the method comprises the steps of:

visualising the virtual alignment plane and the virtual upper jaw and virtual lower jaw; and

automatically positioning the virtual alignment plane and the virtual lower jaw and virtual upper jaw relative to each other based on one or more parameters.

9. The computer-implemented method according to claim 8 , wherein the positioning of the virtual alignment plane relative to the virtual model of the set of teeth is configured to be performed by the operator by selecting one or more virtual points relative to the virtual model of the set of teeth within which point(s) the virtual alignment plane should be moved to.

10. The computer-implemented method according to claim 8 , wherein the virtual alignment plane and/or the virtual model of the set of teeth is/are semi-transparent or translucent such that both the virtual alignment plane and the virtual set of teeth are visible simultaneously.

11. The computer-implemented method according to claim 8 , wherein the method further comprises positioning a virtual alignment plane relative to the virtual upper jaw and the virtual lower jaw, where the virtual upper jaw and virtual lower jaw defines a virtual model of the set of teeth, wherein the method comprises the steps of:

visualising the virtual alignment plane and the virtual upper jaw and virtual lower jaw; and

automatically positioning the virtual alignment plane and the virtual lower jaw and virtual upper jaw relative to each other.

12. The computer-implemented method according to claim 1 , wherein the method further comprises that during the movement of the virtual upper jaw and the virtual lower jaw relative to each other all the collisions occurring between teeth are registered, and after the movement is finished, modeling of the collision points of the displaced virtual model of the one or more dental restorations is performed.

13. The computer-implemented method according to claim 1 , wherein a predefined motion of the virtual upper jaw and the virtual lower jaw relative to each other is configured to be played.

14. The computer-implemented method according to claim 1 , wherein the method further comprises designing the one or more dental restorations.

15. The computer-implemented method according to claim 1 , wherein the positions of teeth within the upper jaw are unchanged relative to the virtual three dimensional model of the upper jaw in the dynamic virtual articulator and the positions of the teeth within the lower jaw are unchanged relative to the virtual three dimensional model of the lower jaw included in the dynamic virtual articulator.

16. A virtual articulator system for simulating occlusion of teeth, where the system comprises:

a virtual articulator comprising a virtual three-dimensional model of the upper jaw and a virtual three-dimensional model of the lower jaw resembling the upper jaw and lower jaw, respectively, of the patient's mouth, wherein the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw include three dimensional models of teeth without restorations, and at least one of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw with three dimensional models of teeth including one or more dental restorations;

wherein the controller is further configured for displacing the at least one or more virtual dental restorations vertically relative to the jaw from an original position on at least one of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw in order to provide a relative offset of the at least one or more virtual dental restorations;

a controller configured for moving the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw relative to each other for simulating dynamic occlusion when performing computer-aided designing of the one or more dental restorations for a patient, whereby collisions between the teeth in the virtual upper and virtual lower jaw occur; and

wherein the controller is further configured to provide that the teeth in the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw are blocked from penetrating each other's virtual surfaces in the collisions while permitting penetration of the at least one or more displaced virtual dental restorations, wherein the permission of the penetration is based on a preference of an operator or a user.

17. A computer-implemented method of simulating occlusion of teeth, the method comprises using a dynamic virtual articulator when performing computer-aided designing of one or more dental restorations for a patient, the method further comprises:

providing the dynamic virtual articulator, the dynamic virtual articulator including a virtual three-dimensional model of the upper jaw and a virtual three-dimensional model of the lower jaw resembling the upper jaw and lower jaw, respectively, of the patient's mouth, wherein the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw include three dimensional models of physical teeth without restorations, and at least one of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw with three dimensional models of teeth including one or more dental restorations;

displacing the virtual model of the one or more dental restorations vertically relative to the jaw from an original position on at least one of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw in order to provide a relative offset of the virtual model of the one or more dental restorations;

providing movement of the virtual three-dimensional model of the upper jaw and the virtual three-dimensional model of the lower jaw relative to each other for simulating dynamic occlusion, whereby collisions between the teeth in the virtual upper and virtual lower jaw occur;

detecting collisions of only the physical teeth during simulation of the dynamic occlusion by letting the displaced virtual model of the one or more dental restorations be penetrable; and

using the physical teeth as a guide for determining the relative movement between the upper jaw and lower jaw.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2018
From: FISKER, RUNE; BARTHE, CHRISTOPHE VASILJEV; KRISTENSEN, KASPER KABEL; POULSEN, TOMMY SANDDAL
To: 3SHAPE A/S
Reel/Frame 047841/0361 →
Priority Claims (3)
DK PA 2010 00156 · Feb 25, 2010 · national
DK PA 2010 00425 · May 14, 2010 · national
DK PA 2010 00835 · Sep 17, 2010 · national
Continuity (5)
Continuation 13580876
Provisional Application 61383840 · Sep 17, 2010
Provisional Application 61334681 · May 14, 2010
Provisional Application 61307934 · Feb 25, 2010
Related Publication 20190290408A1 · Sep 26, 2019