IP Library › Granted Patent US 12,458,474
Granted Patent B2
US 12,458,474 · App. 17/756,725 · Granted Nov 4, 2025

Process for making a reinforcing structure for dental prostheses in continuous fiber composite materials

Inventors: Gabriele Natale (Milan, IT); Michele Tonizzo (Milan, IT)
Assignee: MOFDENTAL S.R.L.
A61C13/0019A61C13/34B29C64/165B29C64/386B33Y10/00B33Y50/00B29K2105/08B29L2031/7536B33Y80/00
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Quick Facts
Patent No.
US 12,458,474
App. No.
17/756,725
Granted
Nov 4, 2025
Kind
B2
Abstract

A process for making a reinforcing structure ( 20 ) for dental prostheses in continuous fiber composite materials is described, comprising the steps of: —a) obtaining a digital three-dimensional model ( 2 ) of the patient's palate by means of a three-dimensional scan; —b) defining an operative outline ( 3;3 ′) through an offset of at least one portion of said three-dimensional model ( 2 ); —c) obtaining a path for at least one height hi of said three-dimensional model, said path being arranged inside said operative outline ( 3:3 ′); —d) depositing a continuous filiform element according to said path ( 9 ).

Claims (35)

1 . A process for making a reinforcing structure for dental prostheses in continuous fiber composite materials, comprising the steps of:

a) obtaining a digital three-dimensional model of a patient's palate by means of a three-dimensional scan;

b) generating a two-dimensional operative outline by inwardly offsetting at least one portion of said three-dimensional model,

c) defining a two-dimensional path at a height location of said three-dimensional model, said two-dimensional path being internal to said two-dimensional operative outline;

d) repeating said step c) at a plurality of said height locations of said three dimensional model to form a plurality of said two-dimensional paths at said corresponding plurality of height locations; and

e) depositing a continuous filiform element onto a supporting surface to form said reinforcing structure by depositing said filiform material along each said two-dimensional path at each said corresponding height location over said supporting surface using a movable feeding head.

2 . The process according to claim 1 , wherein the step of generating a two-dimensional operative outline is implemented through an offset of at least one three-dimensional surface of said three-dimensional model.

3 . The process according to claim 1 , wherein the step of generating a two-dimensional operative outline is implemented through an offset of a two-dimensional outline of said three-dimensional model.

4 . The process according to claim 1 further comprising a step of: f) intersecting said three-dimensional model with a surface at a height h 1 of said three-dimensional model.

5 . The process according to claim 4 , wherein the step f) of intersecting said three-dimensional model with a surface at a height h 1 of said three-dimensional model occurs prior to the generating step and results in said operative two-dimensional outline of the three-dimensional model at the height h 1 .

6 . The process according to claim 5 , further comprising the step of: g) discretizing said operative two-dimensional outline in a plurality of adjacent areas and calculating the centroid of each area.

7 . The process according to claim 6 , further comprising the steps of:

h) making a broken line passing inside said operative two-dimensional outline and extending along the whole extent of the operative two-dimensional outline resulting from the union of the centroids of each area;

i) calculating a couple of side paths, the side paths of each couple extending in the same extension direction of said broken line, each side path being spaced from said broken line in the opposite direction with respect to the rest of the couple; and

j) joining the two side paths of said couple at the free ends, thus creating a continuous path for the height h 1 .

8 . The process according to claim 7 , wherein the steps b) to j) are repeated for n heights of said three-dimensional model, thus creating continuous paths at different heights of said three-dimensional model.

9 . The process according to claim 8 , wherein each of said continuous paths at different heights of said three-dimensional model are joined to create a single continuous deposition path.

10 . The process according to claim 9 , wherein said single continuous deposition path is discretized by combining a plurality of lying planes, each lying plane being positioned on the single continuous deposition path and being oriented through a set of orthogonal Cartesian axes X; Y; Z, wherein the X axis is arranged along the extent of the continuous deposition path and the Z axis is perpendicular to the geometry of said three-dimensional model.

11 . The process according to claim 1 , further comprising a molding step that comprises the steps of:

feeding the continuous filiform element to a feeding head;

making the feeding head follow the plurality of two-dimensional paths thus delivering said continuous filiform element onto said supporting surface; and

suddenly melting and cooling and/or polymerizing the continuous filiform element to stabilize composite material of the deposited continuous filiform element in a solid state.

12 . The process according to claim 1 , wherein the at least one portion of said three-dimensional model is a lowermost base portion of said model.

13 . The process according to claim 1 , wherein said step c) comprises defining said two-dimensional path at a height location of said three-dimensional model, said two-dimensional path being arranged between said two-dimensional offset operative outline and said three-dimensional model.

14 . The process according to claim 1 , further comprising a molding step comprising feeding the continuous filiform element to the movable feeding head within a movement assembly and wherein the movement assembly exerts a traction force on the filiform element.

15 . The process according to claim 1 , further comprising suddenly melting and cooling the continuous filiform element after said step e) of depositing, to stabilize the composite material of the deposited continuous filiform element in a solid state.

16 . A process for making a reinforcing structure for dental prostheses in continuous fiber composite materials, comprising the steps of:

a) obtaining a digital three-dimensional model of a patient's palate by means of a three-dimensional scan;

b) generating a two-dimensional operative outline by inwardly offsetting at least one portion of said three-dimensional model,

c) defining a path at a height location of said three-dimensional model, said path being internal to said two-dimensional operative outline;

d) repeating said step c) at a plurality of said height locations of said three-dimensional model to form a plurality of paths at said corresponding plurality of height locations;

e) depositing a continuous filiform element onto a supporting surface to form said reinforcing structure by depositing said filiform material along each said path at each said corresponding height location over said supporting surface, wherein said depositing comprises the steps of:

f) feeding the continuous filiform element to a movable feeding head;

g) causing the movable feeding head follow each of the plurality of paths thus delivering said continuous filiform element onto said supporting surface; and

h) suddenly melting and cooling and/or polymerizing the continuous filiform element to stabilize composite material of the deposited continuous filiform element in a solid state.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 21, 2023
From: MOI COMPOSITES S.R.L.
To: MOI DENTAL S.R.L.
Reel/Frame 063395/0987 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 1, 2022
From: NATALE, GABRIELE; TONIZZO, MICHELE
To: MOI COMPOSITES S.R.L.
Reel/Frame 060065/0785 →
Priority Claims (1)
IT 102019000023226 · Dec 6, 2019 · national
Continuity (1)
Related Publication 20230011023A1 · Jan 12, 2023
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