CERAMIC STRUCTURE FOR DENTAL APPLICATION, PROCESS AND ITS USES
20200306019 · 2020-10-01
Inventors
- FILIPE SAMUEL CORREIA PEREIRA SILVA (GUIMARÃES, PT)
- PAULO FILIPE SALGADO PINTO (GUIMARÃES, PT)
- ÓSCAR SAMUEL NOVAIS CARVALHO (GUIMARÃES, PT)
Cpc classification
A61C13/20
HUMAN NECESSITIES
A61C13/09
HUMAN NECESSITIES
A61C8/00
HUMAN NECESSITIES
A61C13/0004
HUMAN NECESSITIES
B28B11/12
PERFORMING OPERATIONS; TRANSPORTING
A61C13/0022
HUMAN NECESSITIES
A61C13/082
HUMAN NECESSITIES
B28B3/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
A61C8/00
HUMAN NECESSITIES
B28B11/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure relates to a ceramic structure for dental application, preferably dental restoration, process for obtaining it and its uses. The process now disclosed comprises computer-controlled machining (CNC), particularly by milling, to obtain a ceramic structure, for example dental covers, which reach thicknesses between 0.05 and 0.4 millimeters.
Claims
1. A process for obtaining a ceramic structure for dental application, wherein the process comprises the following steps: machining a first face of a block of pressed ceramic powders to create a cavity in the first face of said block; inserting a support material into the cavity, so that said support material adheres to and supports the first face of the block of pressed ceramic powders; machining a second face of the block of pressed ceramic powders; and removing the support material, to obtain the ceramic structure for the dental application.
2. The process according to claim 1, wherein the step of inserting the support material into the cavity is performed so that said support material adheres to and covers the entire first face of the block of pressed ceramic powders.
3. The process according to claim 1, wherein the step of inserting the support material into the cavity is performed with the support material in the liquid state.
4. The process according to claim 1, wherein the support material has a low modulus of elasticity material.
5. The process according to claim 1, wherein the block is secured to a CNC milling equipment by a block having a low modulus of elasticity material.
6. The process according to claim 1, wherein the process comprises a prior step of securing the block of pressed ceramic powders to a CNC milling equipment.
7. The process according to claim 1, wherein the low modulus of elasticity material has an elasticity between 0.05-20 GPa.
8. The process according to claim 1, wherein the support material is wax a thermoplastic polymer, or both wax and the thermoplastic polymer.
9. The process according to claim 8, wherein the thermoplastic polymer is selected from the group consisting of: polymethyl methacrylate (PMMA), nylon, low density polyethylene (LDPE), or and combinations thereof.
10. The process according to claim 1, wherein the block of pressed ceramic powders comprises zirconia, alumina, or both zirconia and alumina.
11. The process according to claim 10, wherein the block of pressed ceramic powders comprises a compound selected from the group consisting of: zirconia, yttrium, cerium, magnesium, and combinations thereof.
12. The process according to claim 10, wherein the block of pressed ceramic powders comprises a compound selected from the group consisting of: zirconia, alumina, iron oxides, manganese oxides, and combinations thereof.
13. The process according to claim 1, wherein the process comprises a step of painting the ceramic structure.
14. The process according to claim 1, wherein the process comprises a step of cleaning the ceramic structure.
15. The process according to claim 1, wherein the process comprises a step of removing the support material having a low modulus of elasticity material.
16. The process according to claim 15, wherein the step of removing the support material is performed by melting or sublimation at a temperature between 80-400 C.
17. The process according to claim 15, wherein the step of removing the support material is performed by chemical dissolution using a solvent.
18. The process according to claim 1, wherein the process comprises a step of sintering the ceramic structure with thermal cycles between 1200-1600 C. for 0.5-3 hours and between periods of heating and cooling for 2-4 hours, with heating ramps of 5 C./minute.
19. The process according to claim 5, wherein the step of securing the block of pressed ceramic powders in the CNC milling equipment is performed using fastening elements.
20. The process according to claim 1, wherein the block of pressed ceramic powders is pre-sintered.
21. A ceramic structure for the dental application, formed by the process of claim 1, wherein the ceramic structure has a thickness between 0.05-0.4 mm.
22. The ceramic structure according to claim 21, wherein the ceramic structure is selected from the group consisting of: a dental cover, a dental facet, a dental blade, an ultrathin dental veneer, and an implant.
23. A support material used to produce a ceramic structure for dental application, the support material comprising: a substance having a low modulus of elasticity material selected from wax, thermoplastic polymer, or both wax and thermoplastic polymer.
24. The support material according to claim 23, wherein the thermoplastic polymer is selected from the group consisting of: polymethyl methacrylate (PMMA), nylon, low density polyethylene (LDPE), and combinations thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0049] For an easier understanding, the following drawings are attached, which represent preferred embodiments which are not intended to limit the object of the present description.
[0050]
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DETAILED DESCRIPTION
[0057] The present disclosure relates to a method of manufacturing ultrathin dental veneers, blades, facets or covers with thicknesses between 0.05 and 0.4 mm and overall cover dimensions that may reach at least 15 mm in width and in length. These covers are made up of ceramics, preferably of zirconia or alumina or zirconia or alumina-based compounds, wherein the zirconia may contain stabilizing elements of the tetragonal phase of zirconia such as yttria, ceria, magnesia, among others, or zirconia or alumina may contain oxides or other miscellaneous compounds which are responsible for the color and fluorescence, such as iron oxides, manganese oxides, among others, and which are applied in the restoration or for aesthetic purposes of teeth.
[0058] The process that allows to obtain ultrathin covers, that is, covers with thicknesses which may be between 0.05 and 0.4 millimeters, comprises manufacturing by computer-controlled machining (CNC), in particular by milling, and in the process of fixing the component to be milled, during the machining sequence.
[0059] The present disclosure relates to a process for obtaining a ceramic structure either for dental application, preferably dental restoration, or characterized by obtaining a structure with thicknesses between 0.05 and 0.4 millimeters by computer-controlled machining (CNC) and may comprise the following steps: [0060] placing blocks with a diameter between 85 and 100 millimeters and a thickness between 10 and 20 mm in the CNC milling equipment (5); [0061] fixing the block to the equipment by fastening elements (19); [0062] machining one of the faces of the block so that the first face of the cover is formed (4); [0063] inserting into the cavity existing after the previous step, a low modulus of elasticity material, that adheres either to the block and to the machined face of the cover; [0064] starting to machine the second face of the cover (9) on the other side of the block and removing the ceramic connections before reaching a thickness of 0.5 mm, the cover then being supported exclusively on the low modulus of elasticity material; [0065] proceeding with the program of machining the cover to reduce the thickness of the cover to the desired dimensions for the cover; [0066] machining the support material with low modulus of elasticity to separate the cover from the block, the cover still coming together with the low modulus of elasticity material on one side; [0067] placing the cover in a furnace or in a chemical solution to remove the low modulus of elasticity material; [0068] sintering the cover in a thermal cycle of temperatures between 1200 and 1600 C. for a period of time between 0.5 and 3 hours, between heating and cooling periods, which can last between 2 to 4 hours, with heating ramps of about 5 C./minute.
[0069] In one embodiment, the block may be a compact of ceramic powders or block of material having a low modulus of elasticity which incorporates in its interior and surface one or more compact blocks of ceramic powders of smaller dimensions.
[0070] In one embodiment, the compact block of ceramic powders of smaller dimension may be between 10 and 20 millimeters in diameter and about 3 millimeters in thickness.
[0071] In one embodiment, the compact blocks of ceramic powders may be of zirconia or alumina or zirconia or alumina-based compounds, wherein the zirconia may contain stabilizing elements of the tetragonal phase of zirconia such as yttria, ceria, magnesia, among others, or the zirconia or alumina may contain oxides such as iron oxides, manganese oxides, among others.
[0072] In one embodiment, the low modulus of elasticity material may have between 0.05 and 20 GPa.
[0073] In one embodiment, the low modulus of elasticity material of the block may be thermoplastic wax or polymer such as PMMA, Nylon, LDPE, among others.
[0074] In one embodiment, the fastening elements may be clamps or screws, among others.
[0075] In one embodiment, in the final machining step of the second face of the cover, the cover is supported on the entire first face of the cover being machined by the low modulus of elasticity material, and the connection between the cover and the larger block is through material of low modulus of elasticity.
[0076] In one embodiment, the placement of the low modulus of elasticity material in the cavity can be carried out by pouring in the liquid state.
[0077] In one embodiment, the removal of the wax or of other low modulus of elasticity material, can be carried out in a furnace having a temperature between 80 and 400 C.
[0078] In one embodiment, the chemical solution may consist of a solvent such as ethanol, or another equivalent, or other chemical dissolution agent, in the case of other polymers.
[0079] In one embodiment, the dental covers may have a thickness between 0.05 and 0.4 millimeters and lengths of at least 15 millimeters and widths of at least 15 millimeters.
[0080] In one embodiment, the process may be initiated with a compact block of ceramic powders (1), and which is to be fixed by fastening elements (19) of the machine, such as for example, clamps, screws, or other fastening elements of the block in the machine, which can be sold commercially, or which may be obtained by compacting powders, made in a press, in a mould, with pressures that can oscillate between 30 and 200 MPa. Pressed blocks are usually pre-sintered at temperatures that can oscillate between 600 C. and 1100 C., for periods ranging from 1 hour to 12 hours, and wherein the dimensions of the blocks are normally between 85 and 100 millimeters in diameter, with a thickness between 10 and 20 millimeters. Pre-sintering may slightly increase the resistance of the pressed and during machining it can increase the wear of the cutting tools. Alternatively, blocks of low modulus of elasticity material may be used (18), for example of wax or other polymer, which will be fixed with the fastening elements (19) to the machine, and are therein embedded (i.e., inserted inside and on the surface) and rigidly fixed, small blocks of pressed ceramic powders (20), of the same material of block 1, and with dimensions between 10 and 20 millimetersa little larger than the dimensions of the final cover to be obtained from these small blocks. As an example, it can have 20 millimeters in diameter and 3 millimeters in thickness. The wax or polymer blocks (18), may be commercially acquired or obtained by melting the low modulus material and subsequent moulding. The small compact blocks of ceramic powders (20) follow the same processing mentioned for block 1, mentioned above.
[0081] In one embodiment, blocks (1) or (18) may then be secured to the CNC milling equipments, with metal clamps (19), commercially available, which fix them rigidly, with precision and accuracy.
[0082] It can thus be seen that it is possible to use two approaches of fixing the ceramic blocks: [0083] the ceramic blocks (1) are fixed directly on the metal clamps (19); or [0084] smaller ceramic blocks (20) are placed and rigidly fixed, mechanically or by means of gluing (for example with material equal to that of the bigger block) onto larger blocks of low modulus of elasticity material (18) and the latter are placed in the machine, fixed by the fastening elements (clamps) (19). With this second option it is achieved that the small ceramic blocks (20) are already supported on a larger block of low modulus of elasticity material (18) and therefore already have some damping effect on the connection between these small ceramic blocks (18) and the machine clamps (19).
[0085] In the first option, before finishing the machining of the second face of the cover, it is necessary to remove the ceramic connection between the initial ceramic block (1) and the small block from where the cover (4) will be extracted, the cover being connected to the main ceramic block (1) only through material of low modulus of elasticity, thus gaining damping capacity (
[0086] In one embodiment, thereafter, and in both cases of assembly of the ceramic blocks, the numerical program begins to perform the machining, with milling cutters (5), by numerical control, of one of the faces of the cover (4).
[0087] In one embodiment, after the first face (4) (Side A) of the cover is machined, the process is interrupted, and the cavity (3) relating to the cover made in the compact due to the machining of this face of the cover, is filled (6) with a material such as wax or other polymer having a low modulus of elasticity (typically between 0.05 and 20 GPa), and that adheres either to the block of ceramic powders (1) or block of low modulus of elasticity material (18), and to the machined face of the cover (4). This filling can be, for example, by pouring in the liquid state (7) wax, or thermoplastic polymers as PMMA-Poly (methyl methacrylate, Nylon, LDPELow-density polyethylene, among others.
[0088] In one embodiment, the equipment then starts the machining (5) of the other face of the cover (9) on the other side of the compact block, and in the case of the compact block of ceramic powders (1), removes the ceramic connections (8) between the cover and the initial ceramic block (1), before the cover reaches very thin thicknesses, for example before it reaches about 0.5 mm of thickness.
[0089] In one embodiment, the equipment then proceeds the program of machining the second face of the cover (9) until the cover reaches the desired ultrathin thickness, i.e. between 0.05 and 0.4 millimeters. During this final stage of machining of the cover, the cover is connected to the ceramic block (1) or to the block of low modulus of elasticity material (18), only by the addition material (6), which gives it a damping effect, with elastic deformation of the addition material and, in the case of the disc (18), also of the disc itself (18), as schematically shown in
[0090] In one embodiment, upon completion of the machining of the cover, the program will machine the low modulus of elasticity support material (10), in order to separate the cover (11) from the ceramic block (1) or from the block of low modulus material (18), wherein the first face of the cover to be machined (4), remains fully sustained or supported on the material of low modulus of elasticity.
[0091] In one embodiment, thereafter, possible cover paintings, or other treatments such as cleaning may be performed on the exposed face of the cover (9), i.e. on the second face to be machined. After these optional operations, the small block (11), extracted from the main block, composed of the cover and low modulus of elasticity material, which is still attached to one face of the cover, is placed in a furnace for removal of the low modulus of elasticity material (12) by melting or sublimation, under temperatures (13) ranging from 80 C. to 400 C., depending on the low modulus of elasticity material used. Alternatively, the material of low modulus of elasticity, wax or another polymer, can be removed by chemical dissolution (14), in a solvent (15), for example ethanol, in the case of certain waxes, in which case the cover and the material attached thereto should be immersed in said solutions.
[0092] In one embodiment, the cover is then placed in a furnace and subjected to final sintering (16), in a thermal cycle that can reach maximum temperatures between 1200 C. and 1600 C. for periods which can last between 0.5 and 3 hours, between periods of heating and cooling, which can last between 2 to 4 hours, with heating ramps of about 5 C./minute.
[0093] In one embodiment, after this sintering treatment, the cover (17) is ready and with thicknesses that can be between 0.05 and 0.4 millimeters, and length and width which can reach at least 15 millimeters.
[0094] The term comprises or comprising when used herein is intended to indicate the presence of features, elements, integers, steps and components mentioned, but does not preclude the presence or addition of one or more other features, elements, integers, steps and components, or groups thereof. The present disclosure is not, of course, restricted to the embodiments described herein and a person of ordinary skill in the art may predict many possibilities of modifying it and replacing technical features by equivalent ones, as defined in the appended claims. The described embodiments are combinable with each other. The following claims further define preferred embodiments.