Dental plaster composition
The dental gypsum composition with gypsum hemihydrate and pregelatinized starch addresses the issue of short usable time in conventional compositions, ensuring stable positioning and improved workability for dental models on articulators.
Patent Information
- Application Number
- JP2024549869
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-09-26
- Filing Date
- 2023-08-21
- Publication Date
- 2026-02-05
- Estimated Expiration
- 2043-08-21
AI Technical Summary
Conventional dental gypsum compositions used for mounting models on articulators have a short usable time, making it difficult to reliably and stably position and fix the model in a desired position, which reduces work efficiency.
A dental gypsum composition comprising gypsum hemihydrate and pregelatinized starch, with specific surface area and starch content, providing the necessary hardness and fluidity for stable positioning and good workability.
The composition allows models to remain stably positioned without sinking and maintains desired hardness and fluidity for improved workability, enhancing efficiency in attaching models to articulators.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a dental gypsum composition used, for example, when placing and fixing a dental model on an articulator. [Background technology]
[0002] Gypsum powder is highly safe and functional, and is widely used, for example, as a dental material for obtaining various models required for making dentures. One use of dental gypsum compositions is for mounting and fixing dental models in an articulator. An articulator is a device that reproduces jaw movement and occlusion by attaching plaster models made from impressions of upper and lower teeth. For example, when preparing prosthetic devices such as dentures to treat missing teeth, the articulator is used to check whether the occlusion of the prosthetic device is in good condition. Specifically, the denture being made is actually occluded using the articulator to check its condition, and then fine-tuning the prosthetic device to improve the occlusion.
[0003] Various dental gypsum materials have been proposed in accordance with their intended use. For example, Patent Document 1 proposes a dental gypsum powder capable of preparing a gypsum slurry with high consistency and excellent buildability, stating that a gypsum slurry with high consistency and excellent buildability is desired for reproducing the details of the oral cavity and creating a three-dimensional model. Specifically, the proposed dental gypsum powder contains 0.5 to 3 parts by mass of gypsum dihydrate, 0.05 to 3 parts by mass of potassium sulfate, and 0.1 to 1 part by mass of a water-soluble saccharide per 100 parts by mass of gypsum hemihydrate. According to this proposal, mixing a predetermined amount of dental gypsum powder and water can prepare a gypsum slurry with high consistency and excellent buildability. Furthermore, the proposed gypsum slurry exhibits low fluidity when left standing, but exhibits high fluidity when vibration or load is applied, demonstrating thixotropy. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2017-55850 A Summary of the Invention [Problem to be solved by the invention]
[0005] In contrast to the conventional techniques proposed to suit specific applications as described above, the present inventors recognized that it is important to develop a dental gypsum composition having unprecedented properties suitable for applications such as those described below, and that this would be an effective means of contributing to the advancement of dental technology. As described above, when fabricating prosthetic appliances such as dentures, an articulator is used to reproduce the jaw movement, bite position, and other parameters, and fine adjustments are made to the prosthetic appliance depending on the condition. One of the tasks required by dental technicians, etc., in this case is to attach a dental model taken from the patient to the articulator and reproduce the bite in the mouth.
[0006] A gypsum composition is also used when mounting a model on the articulator described above. The dental gypsum composition used to mount a model on an articulator is required to have the following two properties. First, because of the need to mount the model in the correct position, the gypsum composition must be hard enough to prevent the model from sinking when the model is placed in a predetermined position on the articulator using a slurry prepared by adding water to the gypsum composition. Second, because of the need to ensure that the worker has sufficient working time to set the model in the correct position, the gypsum composition must be hard enough to obtain a slurry with the desired hardness and appropriate fluidity (working life) when water is added.
[0007] In response to the above-mentioned demand, commercially available plaster products used to attach a model to an articulator ensure hardness by shortening the hardening time. A shorter hardening time means a shorter usable time (workable time). Therefore, the above-mentioned conventional products have a short usable time, for example, about 3 minutes. According to the inventors' study, a usable time of about 3 minutes poses a problem: it is difficult to reliably and stably position and fix the model in a desired position on the articulator in a good condition without relying heavily on the experience of the operator. On the other hand, if the model cannot be attached to the articulator in a good condition, it is necessary to break up the hardened plaster, remove the model, and then reattach the model to the articulator, which significantly reduces work efficiency.
[0008] Therefore, an object of the present invention is to provide a dental gypsum composition that solves the above-mentioned problems, and that, when water is added to the gypsum composition to form a slurry, which is required for a dental gypsum composition when a model is attached to an articulator, and the slurry has a hardness that allows the model to remain stably positioned at the desired position without sinking, and at the same time, the slurry has a desired hardness and appropriate fluidity (use time) that allows good workability. [Means for solving the problem]
[0009] The above-mentioned object can be achieved by the present invention, which provides the following dental gypsum composition. [1] A dental gypsum composition comprising gypsum hemihydrate and pregelatinized starch.
[0010] The above-mentioned dental gypsum composition preferably has the following composition. [2] The dental gypsum composition according to the above [1], wherein the pregelatinized starch is contained in an amount of 0.01 to 0.3 parts by mass per 100 parts by mass of the gypsum hemihydrate. [3] The dental gypsum composition according to [1] or [2] above, wherein the pregelatinized starch is made from at least one selected from the group consisting of potato, corn, wheat, and tapioca. [4] The dental gypsum composition according to any one of the above [1] to [3], wherein the gypsum hemihydrate contains α-type gypsum hemihydrate and / or β-type gypsum hemihydrate. [5] The dental gypsum composition according to any one of the above [1] to [4], which is used when placing and fixing a dental model on an articulator. [6] The specific surface area of the hemihydrate gypsum is 1000 to 9000 cm 2 The dental gypsum composition according to any one of the above [1] to [5], wherein the content is 1 / g. [Effects of the Invention]
[0011] According to the present invention, it is possible to provide a dental gypsum composition that has the hardness required for a dental gypsum composition when, for example, attaching a model to an articulator, the gypsum composition is added with water to form a slurry, and when the slurry is used to place a model or the like in a desired position, the model or the like does not sink and can be maintained in a stable position, and at the same time, the slurry has the desired hardness and appropriate fluidity (use life) to achieve good workability.As a result, by using a slurry obtained by adding water to the dental gypsum composition of the present invention, it is possible to provide a useful dental gypsum composition that allows, for example, when an operator attaches a model to a desired position on an articulator, to place the model in a stable and good state with good workability, thereby improving work efficiency. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a schematic diagram showing a state in which a slurry 1, which is made by adding water to the dental gypsum composition of the present invention, is placed on a base 2 of an articulator 10. [Figure 2] FIG. 2 is a schematic diagram showing a state in which a model is placed on the articulator 10 in the state of FIG. 1, and a slurry 1 made by adding water to the dental gypsum composition of the present invention is hardened to set a model 3. DETAILED DESCRIPTION OF THE INVENTION
[0013] The present invention will be described below with reference to preferred embodiments. As shown in Fig. 2, the present inventors have intensively studied a dental gypsum composition that has a hardness that allows the model, etc. to be stably maintained in a desired position without sinking when the slurry 1 is added to a gypsum composition to prepare a slurry 1, which is required when attaching a model 3 to an articulator 10, and at the same time, allows the slurry to have a desired hardness and appropriate fluidity (use life) that allows good workability, and as a result, the present invention has been achieved.
[0014] In the course of intensive research into a gypsum composition for which a slurry is required to satisfy the above-mentioned contradictory properties that are the object of the present invention, the present inventors discovered that by using pregelatinized starch, which has not conventionally been used in dental gypsum compositions, remarkable effects that could never be obtained by using a general consistency adjuster (thickening agent), as will be described later, can be obtained, and thus the present invention was achieved.
[0015] Examples of the pregelatinized starch that characterizes the present invention include those made from at least one selected from the group consisting of potato, corn, wheat, and tapioca. Here, pregelatinized starch refers to starch obtained by rapidly dehydrating and pulverizing a liquid containing gelatinized starch without retrogradation. Pregelatinized starch is also known as α-starch, pregelatinized starch, pregel, or instant starch. When starch is heated with water, the starch molecules lose their regularity and become pasty (α-form). This process is called gelatinization (gelatinization). Pregelatinized starch is characterized by its ability to dissolve in water and reproduce a viscous paste. Because it rapidly develops viscosity, it is used for thickening and water retention. For example, it is widely used as an additive for foods such as bread, confectionery, and noodles. According to the studies of the present inventors, pregelatinized starches made from potato, corn, wheat, and tapioca are preferred for use in the present invention. Among these, pregelatinized starches made from potato are particularly preferred because excellent effects can be obtained with a small amount added.
[0016] According to the studies of the present inventors, the amount of pregelatinized starch added is preferably within a range of 0.01 to 0.3 parts by mass relative to 100 parts by mass of gypsum hemihydrate. As will be described later, for example, in the case of pregelatinized starch derived from potato, the desired properties aimed at in the present invention can be more effectively and stably obtained at an amount within a range of 0.01 to 0.1 parts by mass, or even within a range of 0.03 to 0.1 parts by mass, relative to 100 parts by mass of gypsum hemihydrate. Furthermore, for example, in the case of pregelatinized starch derived from corn, the desired properties aimed at in the present invention can be more effectively and stably obtained at an amount within a range of 0.05 to 0.3 parts by mass relative to 100 parts by mass of gypsum hemihydrate. Considering the cost of the material, it is desirable to add as little pregelatinized starch as possible. Therefore, from an economical standpoint, it is preferable to use pregelatinized starch derived from potato.
[0017] The dental gypsum composition of the present invention is characterized by the use of gypsum hemihydrate in combination with the above-mentioned pregelatinized starch. As the gypsum hemihydrate, either alpha-type gypsum hemihydrate or beta-type gypsum hemihydrate can be used, and both may be appropriately blended and used. Note that alpha-type gypsum hemihydrate has advantages such as requiring less water for hardening than beta-type gypsum hemihydrate and having higher strength when hardened. Furthermore, in the dental gypsum composition of the present invention, the specific surface area of the gypsum hemihydrate (both alpha-type and beta-type) used is 1000 to 9000 cm 2 It is preferable to use the powder after pulverizing it to a specific surface area of about 1 / g. The specific surface area is the value measured by a Blaine air permeation device specified in JIS R 5201.
[0018] Since the dental gypsum composition of the present invention is used as a slurry by adding mixing water, a setting time adjuster may be added in addition to gypsum hemihydrate as needed. Common set accelerators, such as gypsum dihydrate and potassium sulfate, can be added to accelerate the setting of gypsum. Also, common set retarders, such as sodium citrate and potassium tartrate, can be added to delay the setting of gypsum. By using these additives, it becomes possible to easily adjust the "use time" of the dental gypsum composition of the present invention, when used as a slurry by adding mixing water, to a desired value that provides excellent workability. [Example]
[0019] The present invention will be specifically described below based on examples, comparative examples, and study examples. The present invention is not limited to these examples. In the examples, comparative examples, and study examples, "parts" and "%" are by mass unless otherwise specified.
[0020] [Study Example 1] <Study on consistency adjusters (thickeners)> The present inventors first investigated the composition of a gypsum composition to find a dental gypsum composition that, when prepared by adding water to a gypsum composition to form a slurry and using the resulting slurry to place a model in a desired position, has a hardness that allows the model to remain stably positioned in the desired position without sinking, and at the same time, has a suitable fluidity (working life) that allows the slurry to be easily worked with. In particular, the inventors investigated how to easily achieve a hardness that allows the model to remain stably positioned in the desired position without sinking when prepared as a slurry.
[0021] In this study, a known setting time adjuster was appropriately blended to adjust the basic performance so that the usable time of the slurry would be approximately 5 to 10 minutes. The "usable time" was determined as follows. The gypsum composition was mixed with mixing water to form a slurry, which was then left to stand for 15 seconds in a rubber bowl and mixed for 15 seconds, and this process was repeated. The usable time was determined as the time when the fluidity decreased, i.e., the viscosity of the slurry increased, making it impossible to use in dental applications. Specifically, in this study, the usable time was defined as the time from when the worker added water to the gypsum composition to prepare the slurry to when it became impossible to apply the slurry 1 to the base 2 of the articulator 10 shown in Figure 1.
[0022] The gypsum composition used in the study was mixed with mixing water (the point at which water was added was considered "wet") to produce a slurry, which was mixed under the following fixed conditions to prevent differences in the amount of water that would affect the consistency or differences due to the mixing conditions. Specifically, a specified amount of water for mixing was measured into a dental rubber bowl, and the gypsum composition powder was added to it over 30 seconds, followed by mixing (stirring) for 60 seconds (up to 1 minute and 30 seconds after the start of adding the gypsum composition powder). A special spatula with a blade tip of 13 to 20 mm and a blade length of 95 to 105 mm was used for mixing, and the stirring speed was kept constant at 100 rpm.
[0023] For the study, slurries were prepared under the same conditions described above using each gypsum composition, each containing a different type of consistency adjuster (thickening agent), as shown in Table 1, and the consistency and usable life of each slurry were measured and evaluated. The following components were used as the components shown in Table 1. ·α-type hemihydrate gypsum (manufactured by Yoshino Gypsum Co., Ltd., specific surface area: 2000cm 2 / g) ·β-type hemihydrate gypsum (manufactured by Yoshino Gypsum Co., Ltd., specific surface area: 7000cm 2 / g) Hardening accelerator: gypsum dihydrate, potassium sulfate Set retarders: sodium citrate, sodium succinate Pregelatinized starch: (raw materials: potato, corn) ·Starch: (raw material; potato) PVA Guar gum Dextrin
[0024] The consistency was measured as follows. First, each mixed slurry was weighed into a ring with an inner diameter of 40 mm and a height of 60 mm placed on the top surface of glass plate A (the process was to be completed within 2 minutes after contact with water). The ring was then lifted and the slurry was gently poured onto the top surface of glass plate A (2 minutes 30 seconds). Then, 3 minutes after contact with water, a square glass plate B measuring 11 cm in length and width and weighing 150 g was placed on the slurry poured onto glass plate A. The size of the circularly expanded gypsum hardened body was measured and used as the consistency. Specifically, the arithmetic mean value of the maximum and minimum diameters of the hardened body in contact with the top surface of glass plate A was used as the consistency. The consistency obtained as described above is shown in Table 1. A consistency of less than 70 mm was considered an acceptable product and indicated by a circle. Furthermore, a consistency of 70 mm or more was regarded as unacceptable and indicated by an X.
[0025] The "pot life" in Table 1 is a value measured by the following method. That is, mixing water was added to the gypsum composition for investigation, and the resulting slurry was mixed under the above conditions. The slurry was left standing in a rubber bowl for 15 seconds, and then mixed for 15 seconds. This process was repeated, and the time until the fluidity decreased (the viscosity of the slurry increased) and the slurry could no longer be piled on the base of the articulator was measured and taken as the pot life.
[0026] TIFF0007811411000001.tif140170
[0027] As shown in Table 1, it was confirmed that the use of pregelatinized starch made it possible to obtain a dental gypsum composition with an appropriate consistency and a sufficient working life for stable work. In contrast, when other consistency adjusters were used, the consistency became too high and the desired appropriate viscosity was not achieved.
[0028] [Study example 2] As shown in the results of the study example shown in Table 1, the usefulness of using pregelatinized starch in formulating a gypsum composition was discovered, and further studies were conducted. Specifically, two types of pregelatinized starch made from different raw materials were used, and the blending amounts of each were changed. The consistency and usable time were measured and evaluated in the same manner as described above. The components used in the blending were the same as those described in the study example above. The results are shown in Tables 2-1 and 2-2. In Table 2-1, pregelatinized starch made from potato was used, and in Table 2-2, pregelatinized starch made from corn was used. The blending amount of pregelatinized starch was then gradually changed from 0.01 to 0.30 parts by mass per 100 parts by mass of gypsum hemihydrate, and tests were conducted. In addition, to adjust the consistency, the amount of mixing water was increased as the blending amount of pregelatinized starch increased, as shown in Table 2.
[0029] TIFF0007811411000002.tif109170
[0030] TIFF0007811411000003.tif109170
[0031] As shown in Table 2, it was confirmed that by using pregelatinized starch, regardless of the difference in raw materials or blending amounts, when mixing water was added to form a slurry and the slurry was used to attach a model to an articulator, a dental gypsum composition with appropriate consistency and a necessary and sufficient pot life for stable work could be obtained. Furthermore, it was discovered that by using pregelatinized starch made from potato as a raw material, it is possible to provide a dental gypsum composition that exhibits better properties when made into a slurry, even with a small amount added. [Explanation of symbols]
[0032] 1: Gypsum slurry 2: Base 3: Model 10: Articulator
Claims
1. A dental gypsum composition comprising gypsum hemihydrate and pregelatinized starch, wherein the pregelatinized starch is contained in an amount of 0.01 to 0.3 parts by mass relative to 100 parts by mass of the gypsum hemihydrate.
2. 2. The dental gypsum composition according to claim 1, wherein the pregelatinized starch is made from at least one raw material selected from the group consisting of potato, corn, wheat, and tapioca.
3. 2. The dental gypsum composition according to claim 1, wherein the pregelatinized starch is made from potato, and the pregelatinized starch is contained in an amount of 0.01 parts by mass to 0.1 parts by mass relative to 100 parts by mass of the gypsum hemihydrate.
4. 2. The dental gypsum composition according to claim 1, wherein the pregelatinized starch is made from corn, and the pregelatinized starch is contained in an amount within a range of 0.05 parts by mass to 0.3 parts by mass per 100 parts by mass of the gypsum hemihydrate.
5. The dental gypsum composition according to any one of claims 1 to 4, wherein the hemihydrate gypsum contains α-type hemihydrate gypsum and / or β-type hemihydrate gypsum.
6. The dental gypsum composition according to any one of claims 1 to 4, which is used when placing and fixing a dental model on an articulator.
7. The specific surface area of the hemihydrate gypsum is 1000 to 9000 cm 2 The dental gypsum composition according to any one of claims 1 to 4, wherein the gypsum composition is 0.1g / g.
Citation Information
Patent Citations
Gypsum casting molding method, gypsum molded product and application
CN112194446A
Inlay material for dental casting
JP1986020547A
Embedding material for dental molding
JP1988141906A
Articulator and its gypsum mold mounting method
JP1996107906A
A 3D printing material system with improved color, material performance, and ease of use.
JP2010515605A