Root canal treatment system
The root canal treatment system uses a catalyst and excitation energy to generate free radicals in the injection solution, addressing the challenges of lengthy sterilization and difficult filler removal in conventional methods, achieving rapid and effective treatment of root canals.
Patent Information
- Application Number
- JP2023182337
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-10-24
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2043-10-24
AI Technical Summary
Conventional root canal treatment methods require lengthy sterilization processes and involve difficult and time-consuming removal of root canal fillers due to their complex shape and side branches.
A root canal treatment system that includes a catalyst section within the injection solution, an excitation energy imparting section within the oral cavity, an excitation energy supply device outside the oral cavity, and a transmission section to transmit excitation energy, causing catalytic action and generating free radicals in the injection solution for rapid and convenient treatment.
The system enables rapid and convenient treatment of root canals by generating free radicals that provide bactericidal, antibacterial, and purifying effects, effectively killing bacteria and treating the root canal and side branches in a short period.
Smart Images

Figure 2025071912000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to a technique for treating a root canal in a subject's tooth. [Background technology]
[0002] Apical lesions are inflammatory diseases that occur at the root apex of a tooth when bacteria that have entered the root canal grow and move to the apex, which is the tip of the root canal, and if left untreated, the tooth will need to be extracted. When treating the root canal, a calcium hydroxide-based root canal filling material is filled (temporarily filled) in the root canal for several days to several weeks, and sterilized using the strong alkalinity of the root canal filling material (see Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2003-286176 A Summary of the Invention [Problem to be solved by the invention]
[0004] In the conventional treatment methods described above, sterilization takes a long time, and after sterilization, it is necessary to remove the root canal filling material by a mechanical method such as cutting. Removing the root canal filling material from the root canal (and side branches) with a complex shape is a difficult and time-consuming task, even if the root canal filling material is softened using a solvent as in the technology described in Patent Document 1.
[0005] The present invention has been made in consideration of the above-mentioned points, and an object of the present invention is to provide a root canal treatment system that is capable of treating a root canal easily in a short period of time. [Means for solving the problem]
[0006] In order to solve the above-mentioned problems, the root canal treatment system of the present invention comprises a catalyst unit placed in an injection solution injected into a root canal of a tooth of a subject, an excitation energy imparting unit placed in the oral cavity of the subject and causing the catalyst unit to undergo a catalytic action by imparting excitation energy to the catalyst unit, an excitation energy supply device placed outside the oral cavity of the subject and supplying the excitation energy, and a transmission unit that transmits the generated excitation energy to the excitation energy imparting unit, and is characterized in that the catalyst unit causes the catalytic action by the excitation energy, generating free radicals in the injection solution. Effect of the Invention
[0007] According to the present invention, root canals can be treated easily and in a short period of time. [Brief description of the drawings]
[0008] [Figure 1] FIG. 1 is a diagram illustrating a root canal treatment system according to a basic embodiment of the present invention. [Diagram 2] FIG. 1 is a diagram illustrating the generation of free radicals. [Diagram 3] 2A and 2B are diagrams showing the intra-root canal electrode, the stopper, and the injectate passage of FIG. 1, in which (a) is a cross-sectional view taken along line IIIa in FIG. 1, and (b) is a cross-sectional view taken along line IIIb in (a). [Figure 4] 5(a) to 5(c) are schematic diagrams illustrating a method for producing a catalyst portion. [Diagram 5] FIG. 2 is a schematic diagram showing an apex position detection system. [Figure 6] 1 is a diagram illustrating a root canal treatment system according to a first embodiment of the present invention. FIG. [Figure 7] 1A is a graph showing a schematic representation of an apex position detection signal, FIG. 1B is a graph showing a schematic representation of a DC signal, and FIG. 1C is a graph showing a schematic representation of an example of switching between the apex position detection signal and the DC signal. [Figure 8] FIG. 2 is a diagram illustrating a root canal treatment system according to a second embodiment of the present invention. [Figure 9]FIG. 13 is a schematic diagram showing a root canal treatment system according to a third embodiment of the present invention, and is a schematic diagram showing an intra-root canal electrode, a catalyst unit, a stopper, and an injection and suction unit. [Figure 10] 11A and 11B are diagrams showing a root canal treatment system according to a fourth embodiment of the present invention, in which (a) is a diagram showing an intra-root canal electrode, a stopper, and an infusion liquid passage portion, and (b) is an Xa-line cross-sectional view of (a). [Figure 11] FIG. 13 is a diagram illustrating a root canal treatment system according to a fifth embodiment of the present invention. [Figure 12] 12A is a schematic diagram of the transmission section, the excitation energy imparting section, and the catalyst section of FIG. 11, (b) is a cross-sectional view taken along line XIIa in (a), and (c) is a cross-sectional view taken along line XIIb in (a). [Figure 13] FIG. 13 is a diagram illustrating a root canal treatment system according to a sixth embodiment of the present invention. [Figure 14] FIG. 13 is a diagram illustrating a root canal treatment system according to a seventh embodiment of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0009] An embodiment of the present invention will be described in detail with reference to the drawings. In the following description, the same elements are given the same reference numerals, and duplicated descriptions will be omitted. In the drawings, directional expressions indicate the corresponding relationship between the drawings.
[0010] <Basic embodiment: Excitation energy provided by electric power> As shown in Fig. 1, a root canal treatment system 1 according to a basic embodiment of the present invention is an apparatus for treating a root canal 2a of a tooth 2 serving as a subject's tooth to be examined, and a lateral canal 2b extending from the root canal 2a to a periodontal ligament cavity 3. The root canal treatment system 1 generates free radicals in an injection solution IS injected into the root canal 2a and the lateral canal 2b, and treats the root canal 2a and the lateral canal 2b with the bactericidal, antibacterial and purifying effects of the free radicals.
[0011] <Injection liquid> The injection liquid IS is, for example, water or an aqueous solution (oxygen water, oxydol, etc.) containing a compound that is the source of free radicals (oxygen (O2), hydrogen peroxide (H2O2), etc.). Here, oxydol is an aqueous solution containing hydrogen peroxide at a concentration of 2.5 to 3.5 w / v %. The injection liquid IS may also be a neutral aqueous solution with a pH of 4.5 to 8.9. Such an injection liquid IS can generate free radicals when excitation energy is imparted to it, and can ensure safety when no excitation energy is imparted to it. It is desirable for the injection liquid IS to be a solution that can be disposed of as general waste without neutralization treatment or the like.
[0012] The root canal treatment system 1 includes an excitation energy supply device 10, a transmission section 20A, an excitation energy application section 30A, a catalyst section 40, a stopper 50A, an injection suction section 60A, and an injection liquid passage section 70A (see FIG. 3).
[0013] <Excitation energy supply device> The excitation energy supplying device 10 supplies excitation energy for causing a catalytic reaction in the catalyst section 40 to the excitation energy imparting section 30A via the transmitting section 20A. In this embodiment, the excitation energy supplying device 10 generates electric power as the excitation energy, and supplies the generated electric power to the excitation energy imparting section 30A.
[0014] The excitation energy supplying device 10 includes a power supplying unit 11 , a control unit 12 , an operation unit 13 , a display unit 14 , and a sound output unit 15 .
[0015] ≪Power supply section≫ The power supply unit 11 generates electric power as excitation energy based on a control signal from the control unit 12, and supplies the generated electric power to the intra-root canal electrode 31A and the counter electrode 32 via the transmission unit 20A. The electric power supplied by the power supply unit 11 may be DC power (DC signal, which may be either positive or negative) or AC power (AC signal, which may be a sine wave, a square wave, or the like) such as a root apex position detection signal (described in detail in the first embodiment).
[0016] <Control Unit> The control unit 12 is configured with a CPU (Central Process Unit), a ROM (Read Only Memory), a RAM (Random Access Memory), an input / output circuit, etc. The control unit 12 includes, as functional units, a power supply amount setting unit 12a and a power supply time setting unit 12b.
[0017] ≪Power supply amount setting section≫ The power supply amount setting unit 12a sets the amount of power supplied per unit time as excitation energy (i.e., the magnitude of power) by changing the current and / or voltage based on the result of an operation by an operator (dentist, dental hygienist, dental assistant, etc.) of the operation unit 13. That is, the power supply amount setting unit 12a can change the amount of power supplied per unit time as excitation energy.
[0018] <Power supply time setting section> The power supply time setting unit 12b sets the supply time of power as excitation energy based on the result of the operator's operation of the operation unit 13. That is, the power supply time setting unit 12b can change the supply time of power as excitation energy.
[0019] ≪Operation section≫ The operation unit 13 is composed of buttons, a keyboard, a touch panel, etc., and outputs to the control unit 12 a signal according to the result of the operation of the operation unit 13 by the surgeon.
[0020] ≪Display section≫ The display unit 14 is composed of a monitor, a touch panel, etc., and displays the position of the tip of the root canal electrode 31A, the position of the root apex 2a1 (i.e., the root canal length, which is the length of the root canal 2a), the position of the side branch 2b (the connection point with the root canal 2a), etc. based on a control signal from the control unit 12.
[0021] <Sound output section> The sound output unit 15 is composed of a speaker, etc., and based on a control signal from the control unit 12, notifies the surgeon of the position of the tip of the root canal electrode 31A, the position of the root apex 2a1 (i.e., the root canal length, which is the length of the root canal 2a), the position of the side branch 2b (the connection point with the root canal 2a), etc. by sound (warning sound, etc.) or voice.
[0022] <Transmission section> The transmission unit 20A transmits the excitation energy supplied from the excitation energy supply device 10 to the excitation energy imparting unit 30A. In this embodiment, the transmission unit 20A is an electric wire that transmits electric power as the excitation energy, and configures a series circuit that transmits electric power from the excitation energy supply device 10 to the excitation energy imparting unit 30A.
[0023] <Excitation energy imparting section> The excitation energy applying unit 30A is placed in the oral cavity of a subject, and applies the excitation energy supplied from the excitation energy supply device 10 via the transmission unit 20A to the catalyst unit 40. In this embodiment, the excitation energy applying unit 30A includes an intra-root canal electrode 31A and a counter electrode 32.
[0024] ≪Root canal electrode≫ The intra-root canal electrode 31A is an elongated, generally rod-shaped electrode to be inserted into the root canal 2a of the subject's tooth 2. The intra-root canal electrode 31A is made of a conductive material (e.g., conductive metal such as stainless steel, nickel titanium, or tungsten). The intra-root canal electrode 31A has a tip diameter of 0.1 mm to 2 mm, preferably 0.2 mm, and has flexibility (pliability) that allows it to be adapted to a curved root canal 2a.
[0025] The intra-root canal electrode 31A may have a blade 31a formed on its outer circumferential surface. The blade 31a is a spiral-shaped blade capable of cutting the inner circumferential surface of the root canal 2a, and has the function of a file and / or a reamer. The blade 31a may be formed on the outer circumferential surface of the intra-root canal electrode 31A in a portion where the catalytic part 40 described below is not arranged, or in a portion where the catalytic part 40 is arranged, or may be formed over both of these portions.
[0026] The blade portion 31a as a file is formed in a spiral shape and has a cutting edge at the tip of the intra-root canal electrode 31A. The blade portion 31a is used to scrape out and remove necrotic dental tissue, enlarge the root canal 2a, and form the root canal by reciprocating in the axial direction within the root canal 2a. The helical twist of the blade portion 31a as a file is formed tighter than the helical twist of the blade portion 31a as a reamer.
[0027] The blade portion 31a as a reamer is formed in a spiral shape and does not have a cutting edge at the tip of the intra-root canal electrode 31 A. Such blade portion 31a is used to cut the inner wall of the root canal 2a by twisting it to remove the nerve of the tooth or to form a root canal.
[0028] The intra-root canal electrode 31A constitutes an intra-root canal electrode unit U1 together with a catalytic part 40 described later. That is, the intra-root canal electrode unit U1 includes the intra-root canal electrode 31A and the catalytic part 40 arranged on the intra-root canal electrode 31A.
[0029] <Counter electrode> The counter electrode 32 is a plate-shaped electrode attached to the body of the subject (e.g., the gums 4). The counter electrode 32 is formed of a conductive material (e.g., a conductive metal such as stainless steel, nickel titanium, or tungsten). The counter electrode 32 may be a counter electrode plate attached to the gums 4, an electrical connection terminal such as a mouth corner clip hung on the gums 4, a crocodile clip attached to the body of the subject, an electrode held by the subject, a saliva ejector made of a conductive metal and placed at the corners of the mouth, or the like. That is, the shape of the counter electrode 32 is not limited to a plate shape, and may be a rod shape, a sphere shape, or the like. In addition, the attachment position of the counter electrode 32 is not limited to the gums 4, which is the surface of the oral cavity, and may be any part of the body of the subject, such as the lips, the surface of the oral cavity, the hands, or the skin.
[0030] Here, the intra-root canal electrode 31A in which the catalyst section 40 is arranged and the counter electrode 32 are configured to be detachable (replaceable) from the transmission section 20A. Alternatively, the transmission section 20A is configured to be detachable (replaceable) from the excitation energy supply device 10.
[0031] <Catalyst section> The catalyst section 40 is disposed on the outer circumferential surface of the intra-root canal electrode 31A (more preferably, on the outer circumferential surface of the tip). The catalyst section 40 is disposed in the injectate IS injected into the root canal 2a, and catalyzes with the excitation energy supplied from the excitation energy supply device 10 to generate free radicals in the injectate IS. In this embodiment, the catalyst section 40 generates free radicals with electric power as the excitation energy. Examples of materials for the catalyst section 40 include metal oxide semiconductors that are n-type semiconductors (photoactive anatase or rutile type titanium oxide (TiO2, i.e., titanium dioxide), zinc oxide (ZnO), tungsten oxide (WO3), strontium titanate (SrTiO3), etc.), metal sulfides (zinc sulfide (ZnS), etc.), etc. These substances are photocatalysts that catalyze when irradiated with light, and also catalyze when excitation energy is imparted by electric power or vibration other than light.
[0032] As shown in FIG. 2, when excitation energy is applied to titanium oxide serving as the catalyst portion 40 and absorbed by the titanium oxide, electrons in the valence band are moved to the conduction band beyond the band gap by the excitation energy, and excited electrons (e - ) in the conduction band inside titanium oxide. - ) is generated, and holes (h + ) is generated. The electrons generated in the conduction band react with the oxygen contained in the injection liquid IS (reduction action), producing free radicals called superoxide (O2 - ) occurs. e - +O2→O2 - In addition, the positive holes generated in the valence band react with water, which is the injection liquid IS (oxidation), generating hydroxyl radicals (OH) as free radicals. h + +H2O→OH+H + Such free radicals, superoxide and hydroxyl radicals, exert bactericidal, antibacterial and purifying effects by decomposing organic substances, and kill bacteria and the like in the root canal 2a and lateral branch 2b.
[0033] In titanium oxide, when the crystal system is rutile type, the excitation energy is 3.0 eV, and when the crystal system is anatase type, the excitation energy is 3.2 eV. Therefore, the root canal treatment system 1 can generate free radicals in the injection liquid IS by applying an excitation energy of this magnitude or more to the catalyst part 40 formed of titanium oxide. The excitation energy can be applied to the catalyst part 40 as light or vibration other than electric power.
[0034] Titanium oxide is chemically stable and is an abundant resource. In addition, because titanium oxide has no harmful effects on living organisms, it is used as a white pigment in cosmetics and in medical devices such as catheters. Titanium oxide is also used in the dental field as a denture cleaner and tooth whitening agent, taking advantage of its antibacterial properties.
[0035] In addition to the above, titanium oxide has a band gap that does not cause the self-dissolution phenomenon in water, and therefore is suitable from the standpoint of durability and practicality as a material for the catalyst section 40. Here, the self-dissolution phenomenon is a phenomenon in which, when excitation energy is applied to a material with a small band gap (less than 3.0 eV) in water, holes generated in the conduction band oxidize themselves, causing metal ions to dissolve in the water.
[0036] The catalyst portion 40 is formed by a dip coating method. As shown in FIG. 4(a), the tip of the intra-root canal electrode 31A is immersed in a solution Sa containing a catalyst substance (e.g., rutile-type titanium oxide) 41 at a first predetermined speed (e.g., 10 mm / sec) (first step). Then, the tip of the intra-root canal electrode 31A is held in the solution Sa for a predetermined time (e.g., 10 sec) (second step). Then, as shown in FIG. 4(b), the tip of the intra-root canal electrode 31A is pulled out of the solution Sa at a second predetermined speed (e.g., 10 mm / sec) (third step). Then, as shown in FIG. 4(c), the pulled-out tip of the intra-root canal electrode 31A is dried (fourth step). Then, the first to fourth steps are repeated a first predetermined number of times (e.g., five times). Then, the tip of the intra-root canal electrode 31 is heated (e.g., at 200° C. for 10 minutes) (fifth step). Subsequently, the first to fourth steps are repeated and the fifth step is repeated a second predetermined number of times (for example, twice).
[0037] The film thickness of the catalyst substance 41 forming the catalyst portion 40 becomes thicker as the second predetermined speed for withdrawing the intra-root canal electrode 31A from the solution Sa becomes faster, and becomes thinner as the second predetermined speed becomes slower.
[0038] <Stopper> As shown in Fig. 1, the stopper 50A is a plate-like member disposed at the occlusal end of the tooth 2 (the tip of the occlusal surface; the lower end of the upper tooth and the upper end of the lower tooth) and fixes the intra-root canal electrode 31A inserted into the root canal 2a at a desired insertion depth. The stopper 50A is formed, for example, from a rubber material. The intra-root canal electrode 31A is press-fitted into the hole 51 of the stopper 50A so as to be movable (slidable) in the axial direction of the intra-root canal electrode 31A.
[0039] The stopper 50A abuts against the occlusal end of the tooth 2, thereby becoming a reference position for measuring the root canal length, which is the length of the root canal 2a. That is, the surgeon abuts the stopper 50A against the occlusal end of the tooth 2 in a state where the apex position detection unit 16a detects that the tip of the intra-root canal electrode 31A is located at the root apex 2a1. Next, the surgeon takes out the intra-root canal electrode 31A and the stopper 50A in this state from the oral cavity of the subject, and measures the distance from the stopper 50A to the tip of the intra-root canal electrode 31A, thereby measuring the root canal length. The surgeon can also measure the position of the lateral canal 2b (the distance from the occlusal end of the tooth 2 to the connection site of the lateral canal 2b) by a similar method.
[0040] <Injection suction section> The injection and suction unit 60A injects the injection liquid IS into the root canal 2a (and the lateral branch 2b) of the subject's tooth 2 and suctions it from the root canal 2a (and the lateral branch 2b). The injection and suction unit 60A includes a storage unit 61 in which the injection liquid IS is stored, a piston unit 62 for pushing the injection liquid IS out of the storage unit 61 and for suctioning the injection liquid IS into the storage unit 61, and a gripping unit 63 that is disposed to cover the storage unit 61 and can be gripped by the surgeon.
[0041] <Injection liquid passage section> 3, the infusion liquid passage 70A is a passage that is installed in the root canal 2a of the subject and outside the oral cavity, and communicates between the reservoir 61 and the root canal 2a so that the infusion liquid IS can pass through. In this embodiment, the infusion liquid passage 70A is a through hole that passes through the intra-root canal electrode 31 in the axial direction.
[0042] <Example of operation> First, an operator (dentist, dental hygienist, dental assistant, etc.) detects the positions of the root apex 2a1 and the lateral canal 2b using the root apex position detection system 101 shown in FIG. 5. An existing system (apparatus) capable of detecting the positions of the root apex 2a1 and the lateral canal 2b can be used as the root apex position detection system 101 (root apex position detection device 110). First, the operator attaches the counter electrode 132 to the gum 4 and inserts the intra-root canal electrode 131 into the root canal 2a. Next, the operator operates the root apex position detection device 110 to cause the root apex position detection device 110 to generate an apex position detection signal. The root apex position detection signal is applied to the intra-root canal electrode 131 and the counter electrode 132 via the transmission unit 120A. The root apex position detection device 110 detects the position of the root apex 2a1 and the position of the lateral canal 2b based on the root apex position detection signal.
[0043] More specifically, when detecting the position of the root apex 2a1, the operator operates the root apex position detection device 110 to cause the root apex position detection device 110 to generate a root apex position detection signal. In this state, the operator operates the gripping portion 163 with a fingertip to slowly move the intra-root canal electrode 131 from the opening of the root canal 2a toward the root apex 2a1. The intra-root canal electrode 131 moves relative to a stopper 150 arranged to abut against a measurement reference point g, which is the occlusal side end of the tooth 2 as the inspected tooth, and is fixed relative to the stopper 150 when the movement is stopped. When the intra-root canal electrode 131 approaches the root apex 2a1, the root apex position detection device 110 notifies (warns) the operator by displaying a meter and emitting a warning sound. Using the scale or the like of the intra-root canal electrode 131, the surgeon can measure the dimension L (that is, the length of the root canal 2a) from the measurement reference point g where the stopper 150 is placed to the tip of the intra-root canal electrode 131.
[0044] When detecting the position of the lateral canal 2b, the surgeon operates the apex position detection device (or a lateral canal position detection device other than the apex position detection device) 110 having a lateral canal position detection function to generate an apex position detection signal (here, a lateral canal position detection signal) in the apex position detection device (or a lateral canal position detection device) 110. In this state, the surgeon operates the gripping part 163 with a fingertip to slowly move the intra-root canal electrode 131 from the opening of the root canal 2a toward the root apex 2a1. The intra-root canal electrode 31A moves relative to the stopper 50A arranged to abut against the measurement reference point g, which is the occlusal side end of the tooth 2 as the inspected tooth, and when the movement is stopped, it is fixed relative to the stopper 150. When the intra-root canal electrode 31A approaches the lateral canal 2b, the apex position detection part 12c notifies (warns) the surgeon by displaying a meter on the display part 14 and generating a warning sound from the sound output part 15. Using the scale or the like on the intra-root canal electrode 131, the surgeon can measure the dimension L from the measurement reference point g where the stopper 150 is placed to the tip of the intra-root canal electrode 131 (ie, the position of the lateral canal 2b).
[0045] By measuring and recording the dimension L from the measurement reference point g to the tip of the intra-root canal electrode 131 when the root apex 2a1 and the lateral branch 2b are detected, the surgeon can set the position of the tip of the intra-root canal electrode 131 to the position of the root apex 2a1 and the lateral branch 2b even after the intra-root canal electrode 131 is pulled out of the root canal 2a.
[0046] Next, the surgeon treats the root canal 2a and the lateral branch 2b using the root canal treatment system 1 shown in FIG. 1. First, the surgeon attaches the counter electrode 32 to the gum 4, inserts the intra-root canal electrode 31A into the root canal 2a, and injects the injection liquid IS into the root canal 2a and the lateral branch 2b by operating the injection and suction unit 61A. Next, the surgeon inputs the supply amount and supply time of DC power by operating the operation unit 13. The power supply amount setting unit 12a sets the supply amount of power (DC power in this embodiment) per unit time based on the input value, and the power supply time setting unit 12b sets the supply time of power based on the input value. The control unit 12A causes the power supply unit 11 to generate power based on the set supply amount and supply time of power per unit time.
[0047] Here, the surgeon can place the tip of the intra-root canal electrode 31A at a desired position (for example, the position of the lateral canal 2b) based on the detection result of the position of the tip of the intra-root canal electrode 31A by the apex position detection section 12c.
[0048] The catalytic section 40 is activated by the DC power, generating free radicals in the injectate IS. The free radicals are generated intensively near the catalytic section 40, and are also generated throughout the injectate IS. The generated free radicals have a bactericidal effect, killing bacteria, viruses, and the like in the root canal 2a and the lateral branch 2b, thereby treating the root canal 2a and the lateral branch 2b.
[0049] Next, the surgeon aspirates the injectate IS from the root canal 2a and the lateral branch 2b by operating the injecting and suction part 61A. Then, the surgeon pulls out the intra-root canal electrode 31A from the root canal 2a and removes the counter electrode 32 from the gums 4.
[0050] Next, the surgeon removes the intra-root canal electrode 31A and the counter electrode 32 that have been used from the transmission unit 20A (and the injection and suction unit 60A), and discards (discards as general waste) the injectate IS that has been sucked and stored in the injection and suction unit 61A. When performing root canal treatment on another patient, the surgeon replaces the intra-root canal electrode 31A and the counter electrode 32 with new ones, and fills the injection and suction unit 61A with new injectate IS.
[0051] A root canal treatment system 1 according to a basic embodiment of the present invention includes a catalyst unit 40 disposed in an injection liquid IS injected into a root canal 2a of a tooth 2 of a subject, an excitation energy imparting unit 30A disposed in the oral cavity of the subject and imparting excitation energy to the catalyst unit 40 to cause the catalyst unit 40 to undergo a catalytic action, an excitation energy supply device 10A disposed outside the oral cavity of the subject and supplying the excitation energy, and a transmission unit 20A that transmits the generated excitation energy to the excitation energy imparting unit 30A, and the catalyst unit 40 undergoes the catalytic action by the excitation energy, thereby generating free radicals in the injection liquid IS. Therefore, the root canal treatment system 1 can continuously generate free radicals in the root canal 2a, and can suitably treat the root canal 2a in a short period of time and in a simple manner.
[0052] In the root canal treatment system 1, the catalyst portion 40 is made of titanium oxide. Therefore, the root canal treatment system 1 can suitably generate free radicals by catalytic action.
[0053] In the root canal treatment system 1, the excitation energy application unit 30A and the transmission unit 20A, or the transmission unit 20A and the excitation energy supply device 10A, are separable from each other. Therefore, the root canal treatment system 1 makes it possible to replace the excitation energy application unit 30A for each patient, and to realize suitable treatment of the root canal 2a.
[0054] In the root canal treatment system 1, the excitation energy supply device 10A is configured to be able to change the supply amount and / or supply time of the excitation energy per unit time. Therefore, the root canal treatment system 1 can quantitatively generate free radicals according to the diagnosis results of, for example, an operator (dentist, dental hygienist, dental assistant, etc.), facilitate control of the generation of free radicals according to symptoms, and realize suitable treatment of the root canal 2a.
[0055] In the root canal treatment system 1, the injectate IS is water, oxygen water, hydrogen peroxide, or a neutral aqueous solution having a pH of 4.5 to 8.9. Therefore, the root canal treatment system 1 exerts bactericidal, antibacterial and purifying effects due to free radicals when excitation energy is applied, and can return the injection liquid IS to its original harmless state by ceasing the application of excitation energy, thereby enabling safe disposal.
[0056] In the root canal treatment system 1, the catalyst unit 40 is disposed so as to cover the tip end of the excitation energy application unit 30A. Therefore, the root canal treatment system 1 can suitably treat the root canal 2a and the side branch 2b by concentrating the generation of free radicals at the tip of the excitation energy application unit 30A and, for example, aligning the position of the tip of the excitation energy application unit 30A with the position of the side branch 2b.
[0057] In the root canal treatment system 1, the catalyst portion 40 is formed by a dip coating method in which the tip portion of the excitation energy applying portion 30A is immersed in a solution Sa containing a catalyst substance 41. Therefore, the root canal treatment system 1 can realize the catalyst portion 40 having a desired thickness by a simple manufacturing method, and can realize suitable treatment of the root canal 2a.
[0058] The root canal treatment system 1 includes a stopper 50A that is placed at the occlusal end of the tooth 2, and the excitation energy application unit 30A is attached so as to be movable and fixable in the axial direction of the root canal 2a relative to the stopper 50A. Therefore, the root canal treatment system 1 can suitably position the excitation energy application unit 30A within the root canal 2a, and can detect the position of the root apex 2a1 (root canal length) and the position of the lateral branch 2b based on the distance from the stopper 50A to the excitation energy application unit 30A.
[0059] The root canal treatment system 1 is provided with an injectant passage portion 70A that is installed within the root canal 2a and outside the oral cavity and through which the injectant IS can pass. Therefore, the root canal treatment system 1 can facilitate the movement of the injectate IS to the root canal 2a.
[0060] The root canal treatment system 1 includes an injection and suction section 60A that injects the injection liquid IS into the root canal 2a through the injection liquid passage section 70A and suctions the injection liquid IS from inside the root canal 2a. Therefore, the root canal treatment system 1 can suitably realize the injection and suction of the injection liquid IS into and from the root canal 2a.
[0061] In the root canal treatment system 1, the excitation energy application unit 30A includes an intra-root canal electrode 31A placed in the root canal 2a and a counter electrode 32 placed on the subject's body, the transmission unit 20A is an electric wire, and the excitation energy supply device 10A supplies electric power as the excitation energy to the intra-root canal electrode 31A and the counter electrode 32 via the electric wire. Therefore, the root canal treatment system 1 can generate free radicals by applying excitation energy by electric power, and can suitably treat the root canal 2a. In addition, the root canal treatment system 1 can realize miniaturization of the part inserted into the root canal 2a by using the intra-root canal electrode 31A.
[0062] In the root canal treatment system 1, the excitation energy supply device 10A is configured to be able to change the amount and / or time of supply of the power. Therefore, the root canal treatment system 1 can generate free radicals quantitatively according to, for example, the diagnosis results of the surgeon, facilitate control of the generation of free radicals according to symptoms, and realize suitable treatment of the root canal 2a.
[0063] <First embodiment: Excitation energy provided by electric power> Next, a root canal treatment system according to a first embodiment of the present invention will be described, focusing on differences from the root canal treatment system 1 according to the basic embodiment. As shown in Fig. 6, the root canal treatment system 1A according to the first embodiment of the present invention includes an excitation energy supply device 10A, a transmission unit 20A, an excitation energy application unit 30A, a catalyst unit 40, a stopper 50A, an injection suction unit 60A, and an injection liquid passage unit 70A.
[0064] <Excitation energy supply device> The excitation energy supplying device 10A supplies excitation energy for causing a catalytic reaction in the catalyst section 40 to the excitation energy imparting section 30A via the transmitting section 20A. In this embodiment, the excitation energy supplying device 10A generates electric power as the excitation energy, and supplies the generated electric power to the excitation energy imparting section 30A.
[0065] The excitation energy supplying device 10A includes a power supplying unit 11A, a control unit 12A, an operation unit 13, a display unit 14, and a sound output unit 15.
[0066] ≪Power supply section≫ The power supply unit 11A includes a DC power generating unit 11a, an apex position detection signal generating unit 11b, and a switch unit 11c.
[0067] <DC power generation section> The DC power generating unit 11a generates DC power (DC signal; see Figure 7(a)) as excitation energy based on a control signal from the control unit 12A, and passes the generated DC power to the root canal electrode 31A and the counter electrode 32 via the transmission unit 20A.
[0068] <Root apex position detection signal generator> The apex position detection signal generating unit 11b generates an apex position detection signal (see FIG. 7(b)) for detecting the position of the apex 2a1, which is the tip (bottom) of the root canal 2a, based on a control signal from the control unit 12A, and transmits the generated apex position detection signal to the intra-root canal electrode 31A via the transmission unit 20A. The apex position detection signal generating unit 11b generates two signals with different frequencies as the apex position detection signal. The apex position detection signal generating unit 11b has a multiplexer and can output two signals with different frequencies as one signal that alternates, for example, every 100 msec.
[0069] The apex position detection signal generated by the apex position detection signal generating unit 11b may be applied to the intra-root canal electrode 31A and the counter electrode 32 as excitation energy instead of DC power.
[0070] <Switch section> The switch unit 11c is interposed between the DC power generating unit 11a and the apex position detection signal generating unit 11b, which are arranged in parallel, and the transmission unit 20A, and based on a control signal from the control unit 12A, connects one of the DC power generating unit 11a and the apex position detection signal generating unit 11b to the transmission unit 20A and disconnects the other of the DC power generating unit 11a and the apex position detection signal generating unit 11b from the transmission unit 20A.
[0071] When the switch unit 11c connects the apex position detection signal generating unit 11b side and disconnects the DC power generating unit 11a side, the apex position detection signal generating unit 11b generates an apex position detection signal (see the apex position detection signal in FIG. 7(b)). Note that FIG. 7(b) illustrates one of the two apex position detection signals. The apex position detection signal may be a square wave or a sine wave. When the apex position detection signal is a square wave, the excitation energy supply device 10A can increase the amount of power compared to when the signal is a sine wave, and therefore can efficiently supply excitation energy to the catalyst unit 40.
[0072] When the switch unit 11c disconnects the apex position detection signal generating unit 11b and connects the DC power generating unit 11a, the DC power generating unit 11a generates DC power (see the DC signal in FIG. 7(a)). The DC power may be either a positive or negative signal. That is, one of the intra-root canal electrode 31A and the counter electrode 32 described below serves as an anode, and the other serves as a cathode.
[0073] <Control Unit> The control unit 12A is composed of a CPU (Central Process Unit), a ROM (Read Only Memory), a RAM (Random Access Memory), an input / output circuit, etc. The control unit 12A controls the power supply unit 11A (DC power generation unit 11a, apex position detection signal generation unit 11b, and switch unit 11c) by outputting a control signal to the power supply unit 11A. The control unit 12A includes, as functional units, a power supply amount setting unit 12a, a power supply time setting unit 12b, and an apex position detection unit 12c.
[0074] ≪Power supply amount setting section≫ The power supply amount setting unit 12a sets the amount of power (in this embodiment, DC power) supplied as excitation energy per unit time by changing the current and / or voltage based on the result of the operator's operation of the operation unit 13. That is, the power supply amount setting unit 12a can change the amount of power supplied as excitation energy per unit time.
[0075] <Power supply time setting section> The power supply time setting unit 12b sets the supply time of power (in this embodiment, DC power) as excitation energy based on the result of the operator's operation of the operation unit 13. That is, the power supply time setting unit 12b can change the supply time of power as excitation energy.
[0076] The control unit 12A supplies power to the intra-root canal electrode 31A and the counter electrode 32 based on the set (or default) amount of power supply per unit time and / or the supply time.
[0077] <Root apex position detection unit> The apex position detection unit 12c measures impedances corresponding to the two apex position detection signals in a circuit including the intra-root canal electrode 31A and the counter electrode 32 when the intra-root canal electrode 31A is inserted into the root canal 2a into which the infusion liquid IS is injected and two apex position detection signals with different frequencies are applied between the intra-root canal electrode 31A and the counter electrode 32, and detects the position of the apex 2a1 based on the measured impedances. Here, the surgeon advances the intra-root canal electrode 31A into the root canal 2a into which the infusion liquid IS is injected. When each impedance reaches a preset value, the apex position detection unit 12c can detect that the tip of the intra-root canal electrode 31A is located at the apex 2a1.
[0078] The apex position detector 12c detects the position of the lateral branch 2b based on the measured impedances. The surgeon then advances the intra-root canal electrode 31A into the root canal 2a into which the injection solution IS has been injected. When the impedances change as specified, the apex position detector 16a can detect that the tip of the intra-root canal electrode 31A is located at the connection site of the lateral branch 2b.
[0079] The apex position detector 12c detects the position of the tip of the intra-root canal electrode 31A in the root canal 2a based on the measured impedances. The apex position detector 16a stores the impedance values when the intra-root canal electrode 31A is inserted into the root canal 2a to detect the position of the apex 2a1 and / or the position of the lateral branch 2b. The apex position detector 16a can detect the position of the tip of the intra-root canal electrode 31A in the root canal 2a based on the impedances stored in advance and the impedances measured when the intra-root canal electrode 31A is inserted this time.
[0080] The apex position detection unit 12c applies two apex position detection signals, which are weak currents and have different frequencies, to the intra-root canal electrode 31A and the counter electrode 32, and detects the ratio and / or difference between the impedances measured corresponding to the two applied apex position detection signals. By detecting the ratio and difference between the impedances, the apex position detection unit 16a can accurately detect the position of the tip of the intra-root canal electrode 31A in the root canal 2a (the position of the apex 2a1, the position of the lateral branch 2b) regardless of external factors such as dryness or wetness of the root canal 2a.
[0081] <Example of operation> First, the operator (dentist, dental hygienist, dental assistant, etc.) attaches the counter electrode 32 to the gum 4, inserts the intra-root canal electrode 31A into the root canal 2a, and injects the injection liquid IS into the root canal 2a and the lateral branch 2b by operating the injection and suction unit 61A. Next, the operator connects the switch unit 11c to the apex position detection signal generating unit 11b side by operating the operation unit 13 (see before time t1 in FIG. 7(c)). The apex position detection unit 12c detects the position of the root apex 2a1 and the lateral branch 2b based on the root apex position detection signal. In this operation, the intra-root canal electrode 31A without the catalyst unit 40 may be used. The injection liquid IS may be injected into the root canal 2a and the lateral branch 2b after the positions of the root apex 2a1 and the lateral branch 2b are detected. That is, the positions of the root apex 2a1 and the lateral branch 2b can be detected even when the injectant IS is not injected into the root canal 2a and the lateral branch 2b. When the positions of the root apex 2a1 and / or the lateral branch 2b are detected in a state in which the injectant IS is injected into the root canal 2a and the lateral branch 2b, treatment of the root canal 2a1 and the lateral branch 2b by generating free radicals is also performed at the same time.
[0082] More specifically, when detecting the position of the root apex 2a1, the surgeon operates the operation unit 13 to cause the root apex position detection signal generating unit 11b to generate a root apex position detection signal. In this state, the surgeon uses his fingertip to slowly move the intra-root canal electrode 31A from the opening of the root canal 2a toward the root apex 2a1. The intra-root canal electrode 31A moves relative to the stopper 50A arranged so as to abut against the measurement reference point g, which is the occlusal side end of the tooth 2 as the inspected tooth, and when the movement is stopped, the intra-root canal electrode 31A is fixed relative to the stopper 50A. When the intra-root canal electrode 31A approaches the root apex 2a1, the root apex position detecting unit 12c notifies (warns) the surgeon by displaying a meter on the display unit 14 and generating a warning sound from the sound output unit 15. The surgeon can measure the dimension L (i.e., the root canal length) from the measurement reference point g, where the stopper 50 is arranged, to the tip of the intra-root canal electrode 31A.
[0083] When detecting the position of the lateral canal 2b, the surgeon operates the operation unit 13 to cause the apex position detection signal generating unit 11b to generate an apex position detection signal. In this state, the surgeon uses his fingertip to slowly move the intra-root canal electrode 31A from the opening of the root canal 2a toward the root apex 2a1. The intra-root canal electrode 31A moves relative to the stopper 50A arranged so as to abut against the measurement reference point g, which is the occlusal end of the tooth 2 as the subject tooth, and when the movement is stopped, the intra-root canal electrode 31A is fixed relative to the stopper 50A. When the intra-root canal electrode 31A approaches the lateral canal 2b, the apex position detecting unit 12c notifies (warns) the surgeon by displaying a meter on the display unit 14 and generating a warning sound from the sound output unit 15. The surgeon can measure the dimension L from the measurement reference point g, where the stopper 50 is arranged, to the tip of the intra-root canal electrode 31A (i.e., the position length of the lateral canal 2b).
[0084] By measuring and recording the dimension L from the measurement reference point g when the root apex 2a1 and the lateral branch 2b are detected to the tip of the intra-root canal electrode 31A, the surgeon can set the position of the tip of the intra-root canal electrode 31A to the position of the root apex 2a1 and the lateral branch 2b even after the intra-root canal electrode 31A is pulled out of the root canal 2a.
[0085] Next, the surgeon operates the operation unit 13 to input the amount and time of DC power supply and connects the switch unit 11c to the DC power generation unit 11a side (see after time t1 in FIG. 7(c)). The power supply amount setting unit 12a sets the amount of power (in this embodiment, DC power) supplied per unit time based on the input value, and the power supply time setting unit 12b sets the time of power supply based on the input value. The control unit 12A causes the DC power generation unit 11a to generate DC power based on the set amount and time of DC power supply per unit time.
[0086] Here, the surgeon can place the tip of the intra-root canal electrode 31A at a desired position (for example, the position of the lateral canal 2b) based on the detection result of the position of the tip of the intra-root canal electrode 31A by the apex position detection section 12c.
[0087] The catalytic section 40 is activated by the DC power, generating free radicals in the injectate IS. The free radicals are generated intensively near the catalytic section 40, and are also generated throughout the injectate IS. The generated free radicals have a bactericidal effect, killing bacteria, viruses, and the like in the root canal 2a and the lateral branch 2b, thereby treating the root canal 2a and the lateral branch 2b.
[0088] Next, the surgeon aspirates the injectate IS from the root canal 2a and the lateral branch 2b by operating the injecting and suction part 61A. Then, the surgeon pulls out the intra-root canal electrode 31A from the root canal 2a and removes the counter electrode 32 from the gums 4.
[0089] Next, the surgeon removes the intra-root canal electrode 31A and the counter electrode 32 that have been used from the transmission unit 20A (and the injection and suction unit 60A), and discards (discards as general waste) the injectate IS that has been sucked and stored in the injection and suction unit 61A. When performing root canal treatment on another patient, the surgeon replaces the intra-root canal electrode 31A and the counter electrode 32 with new ones, and fills the injection and suction unit 61A with new injectate IS.
[0090] The catalyst unit 40 can also generate free radicals in the injection solution IS by catalyzing the apex position detection signal. In this case, the DC power generation unit 11a and the switch unit 11c can be omitted. That is, in a state where the intra-root canal electrode 31A is held by the stopper 50A at the position of the detected apex 2a1 or lateral branch 2b, the apex position detection signal generation unit 11b supplies the apex position detection signal to the intra-root canal electrode 31A and the counter electrode 32, so that the catalyst unit 40 generates free radicals. In addition, the power supply amount setting unit 12a and / or the power supply time setting unit 12b can set the supply amount and / or supply time of the apex position detection signal as power per unit time based on the operation result of the operation unit 13 by the surgeon.
[0091] Therefore, the root canal treatment system 1A has a function of detecting the position of the root apex 2a1 and a function of generating free radicals in the root canal 2a, so that it is possible to reduce the number of devices (systems) required for treating the root canal 2a.
[0092] In a root canal treatment system 1A according to a first embodiment of the present invention, the excitation energy supply device 10A includes an apex position detection signal generating unit 11b that generates an apex position detection signal for detecting the position of the apex 2a1, which is the tip of the root canal 2a, and an apex position detection unit 12c that detects the position of the apex 2a1 using the apex position detection signal. Therefore, the root canal treatment system 1A can detect the position of the root apex 2a1, and can generate free radicals in the injection liquid IS using the root apex position detection signal, thereby suitably treating the root canal 2a.
[0093] In the root canal treatment system 1A, the excitation energy supply device 10A includes a DC power generation unit 11a that generates DC power as the excitation energy. Therefore, by using DC power, the root canal treatment system 1 can improve the efficiency of generating free radicals, and thus improve the efficiency of treating the root canal 2a.
[0094] <Second embodiment: Modification of DC power generating unit and apex position detection signal generating unit> Next, a root canal treatment system according to a second embodiment of the present invention will be described, focusing on the differences from the root canal treatment system 1A according to the first embodiment. As shown in Fig. 8, the root canal treatment system 1B according to the second embodiment of the present invention includes an excitation energy supply device 10B instead of the excitation energy supply device 10A. The excitation energy supply device 10B includes a power supply device 11B instead of the power supply device 11A. The power supply device 11B does not include the DC power generation device 11a, and the apex position detection signal generation device 11b also functions as the DC power generation device 11a.
[0095] In this embodiment, the apex position detection signal generating unit 11b generates an apex position detection signal when the switch unit 11c arranged in parallel to the apex position detection signal generating unit 11b is in a disconnected state (see before time t1 in Figure 7(c)), and generates a DC signal (which can be either positive or negative) when the switch unit 11c is in a connected state (see after time t1 in Figure 7(c)).
[0096] A root canal treatment system 1B according to the second embodiment of the present invention generates a root apex position detection signal and a DC signal in one signal generating unit, thereby enabling free radicals to be generated efficiently with greater power using the DC signal than the root apex position detection signal, and also enabling the number of parts to be reduced.
[0097] <Third embodiment: modified example of injection and suction part> Next, a root canal treatment system according to a third embodiment of the present invention will be described, focusing on the differences from the root canal treatment system 1A according to the first embodiment. As shown in Fig. 9, the root canal treatment system 1C according to the third embodiment of the present invention includes an injection and suction unit 60C instead of the injection and suction unit 60A.
[0098] <Injection suction section> The injection / suction section 60C includes, instead of the reservoir section 61 and the piston section 62, a dropper section 64 in which the injection liquid IS is stored.
[0099] When the user grips the dropper portion 64 tighter, the dropper portion 64 discharges the injection fluid IS into the injection fluid passage portion 70A, and when the user grips the dropper portion 64 looser, the injection fluid IS is sucked into the dropper portion 64 from the injection fluid passage portion 70A.
[0100] The root canal treatment system 1C according to the third embodiment of the present invention can realize the injection and suction of the injection liquid IS with a simple operation.
[0101] <Fourth embodiment: modified example of injection liquid passage portion> Next, a root canal treatment system according to a fourth embodiment of the present invention will be described, focusing on the differences from the root canal treatment system 1A according to the first embodiment. As shown in Fig. 10, the root canal treatment system 1D according to the fourth embodiment of the present invention includes an intra-root canal electrode 31D, a stopper 50D, and an injectate passage section 70D, instead of the intra-root canal electrode 31A and the stopper 50A. The intra-root canal electrode 31D and the catalyst section 40 constitute an intra-root canal electrode unit U2.
[0102] <Intra-root canal electrode> The intra-root canal electrode 31D does not have a through hole as a passage for the injection liquid IS and does not have a blade portion 31a.
[0103] <Stopper> The stopper 50D is formed with a hole 52 into which the injection liquid passage 70D is press-fitted.
[0104] <Injection liquid passage section> The infusion fluid passage portion 70D is disposed along the intra-root canal electrode 31D and is a tube through which the infusion fluid IS can pass.
[0105] In the root canal treating system 1D according to the fourth embodiment of the present invention, the shape of the intra-root canal electrode 31D can be simplified, thereby reducing the cost.
[0106] <Fifth embodiment: Excitation energy provided by light> Next, a root canal treatment system according to a fifth embodiment of the present invention will be described, focusing on differences from the root canal treatment system 1A according to the first embodiment. As shown in Fig. 11, a root canal treatment system 1E according to the fifth embodiment of the present invention includes an excitation energy supply device 10E, a transmission unit 20E, and an excitation energy imparting unit 30E, instead of the excitation energy supply device 10A, the transmission unit 20A, and the excitation energy imparting unit 30A.
[0107] <Excitation energy supply device> The excitation energy supplying device 10E generates light as excitation energy, and supplies the generated light to an excitation energy imparting unit 30E via a transmitting unit 20E. The excitation energy supplying device 10E includes a light source 16 and a control unit 12E instead of the power supplying unit 11A and the control unit 12A.
[0108] ≪Light source (light supply section)≫ The light source 16 is, for example, an LED, and generates light containing ultraviolet light of 390 nm or less.
[0109] <Control Unit> The control unit 12E controls the light source 16 based on the result of the user's operation of the operation unit 13. The control unit 12E may be configured to be able to change the supply amount per unit time and / or the supply time of the energy of the light emitted from the light source 16 based on the result of the user's operation of the operation unit 13.
[0110] <Transmission section> The transmitting section 20E is made of an optical fiber, and includes a core 21 and a cladding 22 that covers the core 21 (see FIGS. 12(a) and 12(b)).
[0111] <Excitation energy imparting section> The excitation energy imparting section 30E includes a core 33 formed integrally with the core 21 (see FIGS. 12(a) and 12(c)). The core 33 is exposed from the clad 22 and is covered with a catalyst section 40.
[0112] Light from the light source 16 is transmitted through the cores 21 and 33 and irradiated onto the catalyst section 40. The catalyst section 40 causes a catalytic action by the excitation energy of the light, generating electrons and holes in the titanium oxide, and the electrons and holes generate free radicals in the injection liquid IS. TiO2+hν→e - +h + e - +O2→O2 - h ++H2O→OH+H +
[0113] An optical connector (not shown) is disposed in the middle of the transmission unit 20E. With this configuration, the excitation energy application unit 30E can be made replaceable.
[0114] In a root canal treatment system 1E according to a fifth embodiment of the present invention, the excitation energy supply device 10E includes a light source 16, the transmission unit 20E is an optical fiber through which light from the light source 16 is transmitted, and the excitation energy imparting unit 30E is a core 33 of the optical fiber exposed from the tip of the optical fiber. Therefore, the root canal treatment system 1E can generate free radicals by applying excitation energy from light (photocatalysis), and can suitably treat the root canal 2a.
[0115] Sixth embodiment: Excitation energy provided by light Next, a root canal treatment system according to a sixth embodiment of the present invention will be described, focusing on differences from the root canal treatment system 1E according to the fifth embodiment. As shown in Fig. 13, the root canal treatment system 1F according to the sixth embodiment of the present invention includes an excitation energy supply device 10F, a transmission unit 20F, and an excitation energy application unit 30F, instead of the excitation energy supply device 10E, the transmission unit 20E, and the excitation energy application unit 30E.
[0116] <Excitation energy supply device> The excitation energy supplying device 10F includes a DC power generating unit 11a and a control unit 12F instead of the light source 16 and the control unit 12E.
[0117] <DC power generation section> In this embodiment, the DC power generating unit 11a is an example of a power generating unit that generates DC power as a source of excitation energy, and generates DC power according to the type of the excitation energy applying unit 30F.
[0118] <Control Unit> The control unit 12F controls the DC power generating unit 11a based on the result of an operation of the operation unit 13 by the user.
[0119] <Transmission section> The transmission unit 20F is an electric wire that transmits DC power as excitation energy.
[0120] <Excitation energy imparting section> The excitation energy imparting unit 30F is a light source that emits light using DC power. The excitation energy imparting unit 30F as a light source is, for example, configured with an LED or the like, and generates light that includes ultraviolet light of 390 nm or less.
[0121] In a root canal treatment system 1F according to a sixth embodiment of the present invention, the excitation energy supply device 10F includes a power generating unit (DC power generating unit 11a) that generates electric power, the transmission unit 20F is an electric wire that transmits the generated electric power, and the excitation energy imparting unit 30F is an emission unit that emits light using the electric power from the power generating unit. Therefore, the root canal treatment system 1F can generate free radicals by applying excitation energy from light (photocatalysis), and can suitably treat the root canal 2a.
[0122] <Seventh embodiment: Excitation energy transfer by vibration> Next, a root canal treatment system according to a seventh embodiment of the present invention will be described, focusing on differences from the root canal treatment system 1A according to the first embodiment. As shown in Fig. 14, a root canal treatment system 1G according to the seventh embodiment of the present invention includes an excitation energy supply device 10G, a transmission unit 20G, and an excitation energy imparting unit 30G, instead of the excitation energy supply device 10A, the transmission unit 20A, and the excitation energy imparting unit 30A.
[0123] <Excitation energy supply device> The excitation energy supplying device 10G generates vibration as excitation energy, and supplies the generated vibration to an excitation energy imparting unit 30G via a transmission unit 20G. The excitation energy supplying device 10G includes a vibration source 17 and a control unit 12G.
[0124] ≪Vibration source (vibration supply section)≫ The vibration source 17 generates vibrations in the ultrasonic range as excitation energy. For example, the electric vibration source 17 converts electric vibrations generated by an ultrasonic generator into mechanical vibrations (20 kHz to 40 kHz) by a vibrator and supplies the converted mechanical vibrations. The air vibration source 17 converts compressed air vibrations (5 kHz to 10 kHz) by an air turbine into mechanical vibrations and supplies the converted mechanical vibrations.
[0125] <Control Unit> The control unit 12G controls the vibration source 17 based on the result of the operation of the operation unit 13 by the user.
[0126] <Transmission section> The transmission unit 20G transmits the mechanical vibration generated by the vibration source 17 to the excitation energy imparting unit 30G.
[0127] <Excitation energy imparting section> The excitation energy imparting section 30G is a vibration chip that vibrates due to vibration supplied from an excitation energy supply device 10G via a transmission section 20G, and imparts the vibration of the vibration chip to the catalyst section 40.
[0128] The catalyst section 40 generates a catalytic action by the vibration, generating electrons and holes in the titanium oxide, and the electrons and holes generate free radicals in the injection liquid IS. The generated free radicals have a bactericidal effect, killing bacteria, viruses, etc. in the root canal 2a and the lateral branch 2b, thereby treating the root canal 2a and the lateral branch 2b.
[0129] In a root canal treatment system 1G according to a sixth embodiment of the present invention, the excitation energy supply device 10G includes a vibration source 17 that generates vibrations as excitation energy, the transmission unit 20G transmits the vibrations, and the excitation energy imparting unit 30G is a vibration tip that vibrates due to the transmitted vibrations. Therefore, the root canal treatment system 1G can generate free radicals by applying excitation energy due to vibration, and can suitably treat the root canal 2a.
[0130] Although the embodiment of the present invention has been described above, the present invention is not limited to the above embodiment and can be modified as appropriate within the scope of the present invention. For example, the excitation energy supply device may be configured to supply excitation energy by combining two or more of electric power, light, and vibration. The control units 12E, 12F, and 12G may be configured to be able to change the supply amount and / or supply time of the excitation energy per unit time. The injectate suction units 60A and 60C and the injectate passage units 70A and 70D may be embodied using a syringe, dropper, or the like separate from the intra-root canal electrode 31A, and may be configured to inject or suck the injectate IS before and after root canal treatment using the syringe, dropper, or the like. The apex position detection signal generation unit 11b may be configured to generate three or more apex position detection signals with different frequencies. In this case, the apex position detection unit 12c selects two apex position detection signals having the largest impedance ratio and / or difference from among three or more apex position detection signals, and detects the position of the apex 2a1 (and side branch 2b) based on the two selected apex position detection signals, thereby improving the position detection accuracy. [Explanation of symbols]
[0131] 1A,1B,1C,1D,1E,1F,1G Root Canal Treatment System 2 Teeth (tested teeth) 2a Root canal 2a1 Apical 2b Side branch 10A, 10B, 10E, 10F, 10G Excitation energy supply device 11a DC power generation section 11b apex position detection signal generating unit 12c Apex position detection unit 20A Transmission part (electric wire) 30A Excitation energy supply unit 31A Root canal electrode 32 Counter electrode 40 Catalyst section 41 Catalyst material 50A stopper 60A injection suction section 70A Injection liquid passage section
Claims
1. A catalyst portion disposed in an injection liquid injected into a root canal of a tooth of a subject; an excitation energy applying unit that is placed in the oral cavity of the subject and applies excitation energy to the catalyst unit to cause the catalyst unit to perform a catalytic action; An excitation energy supply device that is placed outside the oral cavity of the subject and supplies the excitation energy; A transmission unit that transmits the generated excitation energy to the excitation energy applying unit; Equipped with The catalyst portion causes the catalytic action by the excitation energy to generate free radicals in the injection liquid. A root canal treatment system comprising:
2. The catalyst portion is formed of titanium oxide. The root canal treatment system according to claim 1 .
3. The excitation energy imparting unit and the transmission unit, or the transmission unit and the excitation energy supply device, are separable from each other.
3. A root canal treatment system according to claim 1 or 2.
4. The excitation energy supply device is configured to be able to change the supply amount and / or supply time of the excitation energy per unit time.
3. A root canal treatment system according to claim 1 or 2.
5. The injection liquid is water, oxygen water, hydrogen peroxide, or a neutral aqueous solution with a pH of 4.5 to 8.
9.
3. A root canal treatment system according to claim 1 or 2.
6. The catalyst portion is disposed so as to cover the tip portion of the excitation energy imparting portion.
3. A root canal treatment system according to claim 1 or 2.
7. The catalyst portion is formed by a dip coating method in which the tip of the excitation energy imparting portion is immersed in a solution containing a catalyst substance.
7. The root canal treatment system according to claim 6.
8. a stopper disposed at an occlusal end of the tooth; The excitation energy application unit is attached to the stopper so as to be movable and fixable in the axial direction of the root canal.
3. A root canal treatment system according to claim 1 or 2.
9. The injection liquid passage is disposed in the root canal and outside the oral cavity, and allows the injection liquid to pass therethrough.
3. A root canal treatment system according to claim 1 or 2.
10. The injection suction section is provided for injecting the injection liquid into the root canal through the injection liquid passage section and for suctioning the injection liquid from inside the root canal.
10. The root canal treatment system according to claim 9.
11. The excitation energy applying unit is an intra-canal electrode disposed within the root canal; A counter electrode for placement on the subject's body; Equipped with The transmission unit is an electric wire, The excitation energy supply device supplies electric power as the excitation energy to the intra-root canal electrode and the counter electrode via the electric wire.
3. A root canal treatment system according to claim 1 or 2.
12. The excitation energy supply device is configured to be able to change the amount of power supplied per unit time and / or the supply time of the power. The root canal treatment system according to claim 11 .
13. The excitation energy supply device comprises: a root apex position detection signal generating unit that generates a root apex position detection signal for detecting the position of the root apex, which is the tip of the root canal; a root apex position detection unit that detects the position of the root apex using the root apex position detection signal; The root canal treatment system according to claim 11, further comprising:
14. The excitation energy supply device comprises: A DC power generating unit is provided to generate DC power as the excitation energy. The root canal treatment system according to claim 11 .
15. The excitation energy supply device includes a light source; the transmission unit is an optical fiber through which light from the light source is transmitted, The excitation energy imparting portion is a core of the optical fiber exposed from a tip portion of the optical fiber.
3. A root canal treatment system according to claim 1 or 2.
16. The excitation energy supply device includes a power generating unit that generates electric power, The transmission unit is an electric wire that transmits the generated electric power, The excitation energy providing unit is a light emitting unit that emits light by the electric power from the electric power generating unit.
3. A root canal treatment system according to claim 1 or 2.
17. The excitation energy supply device includes a vibration source that generates vibration as excitation energy, The transmission unit transmits the vibration, The excitation energy applying unit is a vibration tip that vibrates due to the transmitted vibration.
3. A root canal treatment system according to claim 1 or 2.
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