Instrument holder

The instrument holder addresses handling difficulties and safety concerns by rotating between tilted states, ensuring safe and hygienic use with minimal operator contact and effective detection prevention.

JP7842439B2Active Publication Date: 2026-04-08TAKARA BELMONT CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-28
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Conventional dental instrument holders that hold instruments in a horizontal position can be difficult to handle and pose safety and hygiene risks due to the potential for contact with the operator, especially when sharp blades are involved.

Method used

An instrument holder that rotates from a rearward-tilted holding state to a forward-tilted waiting state, with a hose support portion and a restricting portion to minimize contact and facilitate safe, hygienic handling, and includes a detection unit to prevent false detection.

Benefits of technology

The instrument holder allows for smooth, safe, and hygienic handling by maintaining a rearward-tilted position when not in use and facilitating easy return to a forward-tilted position for use, while preventing false detection and reducing operator contact risks.

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Patent Text Reader

Abstract

To provide an instrument holder which can smoothly, safely and hygienically handle an instrument by holding the instrument in a standing attitude in the time of use and holding the instrument in an attitude that is difficult to be in contact with a practitioner in the time of non-use.SOLUTION: A holder part 15 of an instrument holder 12 includes: a pair of support body parts 16 which is fixed to a pedestal part 13; a rotation body part 23 which is supported by the support body part 16 and is rotatable with respect to the support body part 16; a holder body part 31 which is attached to the rotation body part 23; and a roller 45 which supports an instrument hose of an instrument detached from the holder part 15 so as to deviate from a rotational axis A. By rotating the rotation body part 23, the holder part 15 is changed alternately to the backward-tilt holding state in which the holder part can hold the instrument in the backward-tilt attitude and the frontward-tilt stand-by state in which the holder part can hold the instrument in the frontward-tilt attitude.SELECTED DRAWING: Figure 5
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Description

Technical Field

[0001] The present invention relates to an instrument holder for holding instruments used in dental treatment.

Background Art

[0002] Conventionally, dental treatment devices installed in dental clinics are equipped with instrument holders holding instruments. Generally, an instrument holder holds an instrument in a posture where the head portion of the instrument faces the front side as viewed by a dentist, a dental hygienist, etc. (hereinafter referred to as "operator"). Therefore, there is a possibility that the head portion may come into contact with the operator or surrounding equipment. When a sharp blade such as a cutting bar or a scaler tip is attached to the head portion, it is dangerous and unhygienic for the blade to come into contact with the operator.

[0003] For example, the invention described in Patent Document 1 below (hereinafter referred to as "document-known invention") holds an instrument in a posture where the head portion of the instrument faces the back side as viewed by the operator. More specifically, in the document-known invention, an instrument holder is provided on the upper surface of a flat instrument fixing plate, and the instrument is held in a horizontal posture with the head portion facing the back side in this instrument holder. Therefore, compared with the case where the instrument is held in a posture where the head portion faces the front side, since the possibility that the operator contacts the head portion is low, it is safe and hygienic.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] However, as mentioned above, the publicly known inventions in the literature are held in a horizontal position, which can make them difficult for practitioners to handle. In other words, the way a practitioner holds an instrument varies from person to person, and the ease of handling differs depending on whether the instrument is held in an upright position and the grip is adjusted according to the treatment, or whether the instrument is held in a horizontal position and the grip is adjusted according to the treatment.

[0006] This invention was proposed in view of the above circumstances. Specifically, the objective is to provide an instrument holder that allows for smooth, safe, and hygienic handling of instruments by holding them in an upright position when in use and in a position that minimizes contact with the practitioner when not in use. [Means for solving the problem]

[0007] To achieve the above objective, the instrument holder according to the present invention has a holder portion that rotates from a rearward-tilted holding state in which the tip of the instrument is tilted to the rear to a forward-tilted waiting state in which the tip is tilted forward, the holder portion is individually rotatable and has a hose support portion that supports the hose of the instrument when it is removed from the holder portion, the rearward-tilted holding state is maintained when the instrument is held in the holder portion, and the instrument that has been removed from the holder portion is returned to the holder portion in any position between the rearward-tilted holding state and the forward-tilted waiting state, and then returns to the rearward-tilted holding state.

[0008] The instrument holder according to the present invention is characterized in that the rotation axis of the holder portion is located in an insertion hole in the holder portion into which the instrument is inserted, and the hose support portion is provided at a position offset from the rotation axis of the holder portion to support the hose of the instrument that has been removed from the holder portion.

[0009] The instrument holder according to the present invention is characterized by having a restricting portion that causes the hose of the instrument, when removed from the holder portion, to be positioned offset from the rotation axis of the holder portion.

[0010] The instrument holder according to the present invention is characterized in that the rotation axis of the holder portion intersects with the axis of the insertion hole into which the instrument is inserted, and in the forward-tilting standby state, the restricting portion is below a virtual axis line passing through the axis of the insertion hole.

[0011] The instrument holder according to the present invention is characterized by having a detection unit that detects the presence or absence of the instrument on or near the rotation axis of the holder portion.

[0012] The instrument holder according to the present invention is characterized by having a state-holding means for maintaining the forward-tilted standby state.

[0013] The instrument holder according to the present invention is characterized in that the hose support portion is a roller and is positioned away from the instrument held in the holder portion.

[0014] The instrument holder according to the present invention is characterized in that the holder portion has a cylindrical portion that forms an insertion hole into which the instrument is inserted, and an open portion whose front part is open and leads to the insertion hole, the open portion is formed to a width through which the hose passes, and the hose support portion is positioned in front of the open portion. [Effects of the Invention]

[0015] The instrument holder according to the present invention has a holder portion that rotates from a rearward-tilted holding state in which the tip of the instrument is tilted backward to a forward-tilted waiting state in which the tip is tilted forward, and the holder portion is individually rotatable and has a hose support portion that supports the hose of the instrument when it is removed from the holder portion. When the instrument is held in the holder portion, it maintains the rearward-tilted holding state, and when the instrument is removed from the holder portion, it returns to the holder portion in any position between the rearward-tilted holding state and the forward-tilted waiting state, and then returns to the rearward-tilted holding state. In other words, the instrument holder changes the posture of the instrument to facilitate treatment. Specifically, when the instrument is not in use, the holder portion holds the instrument in a rearward-tilted position that is less likely to come into contact with the practitioner, and maintains the rearward-tilted holding state, so that the practitioner can handle the instrument safely and hygienically. The holder's position when the instrument is returned can be any position between a forward-leaning standby position and a backward-leaning holding position. Since the hose is supported by the hose support, when the hose is pulled (or pushed) by moving the instrument, the holder rotates in conjunction with the hose. Regardless of the holder's position, the practitioner can move the instrument to return it to the forward-leaning standby position, the same position as when the instrument was pulled out, allowing the practitioner to return the instrument smoothly. After the practitioner returns the instrument, if the holder returns to the backward-leaning holding position, it becomes difficult for the practitioner to come into contact with the instrument, allowing the practitioner to handle the instrument safely and hygienically.

[0016] The instrument holder according to the present invention has a rotating shaft for the holder portion located in an insertion hole in the holder portion into which an instrument is inserted, and a hose support portion provided at a position offset from the rotating shaft of the holder portion to support the hose of an instrument removed from the holder portion. With this configuration, the hose supported by the hose support portion is offset from the rotating shaft. For example, even if a detection unit for detecting whether or not an instrument is held in the holder portion is provided on or near the rotating shaft, the hose is not on the rotating shaft and therefore does not obstruct the detection unit provided on the rotating shaft or the like. Thus, false detection by the detection unit can be prevented.

[0017] The instrument holder according to the present invention has a restricting part that causes the hose of an instrument removed from the holder to be positioned offset from the rotation axis of the holder. The restricting part causes the instrument hose to be offset from the rotation axis. For example, even if a detection unit is provided on or near the rotation axis, the hose is not on the rotation axis and therefore does not obstruct the detection unit provided on the rotation axis, etc. Therefore, false detection by the detection unit can be prevented.

[0018] In the instrument holder according to the present invention, the rotation axis of the holder portion intersects with the axis of the insertion hole into which the instrument is inserted, and in the forward-tilted standby state, the restricting portion is below a virtual axis line passing through the axis of the insertion hole. That is, the hose, upon contact with the restricting portion, is positioned off the virtual axis line and shifted from the rotation axis. For example, even if a detection unit is provided on or near the rotation axis, the hose, upon contact with the restricting portion, is not on the rotation axis and therefore does not obstruct the detection unit provided on the rotation axis, etc. Therefore, false detection by the detection unit can be prevented.

[0019] The instrument holder according to the present invention has a detection unit that detects the presence or absence of an instrument at or near the rotation axis of the holder portion. As the holder portion rotates, it enters either a rearward-tilted holding state or a forward-tilted standby state, so the posture of the holder portion differs depending on the state, but the rotation axis remains unchanged regardless of the state of the holder portion. In other words, if the position of the detection unit were far from the rotation axis, the position of the detection unit relative to the rotation axis would be displaced each time the state of the holder portion changes, making the wiring of the detection unit complicated. On the other hand, as in the present invention, if the position of the detection unit is near the rotation axis, the wiring of the detection unit becomes easy.

[0020] The instrument holder according to the present invention has a state-holding means for maintaining a forward-leaning waiting state. Because the forward-leaning waiting state is maintained, the instrument maintains a forward-leaning posture, allowing the practitioner to smoothly withdraw the instrument. When the instrument is returned, the holder part is waiting for the instrument in the same posture as when the instrument was withdrawn, allowing the practitioner to smoothly return the instrument.

[0021] The instrument holder according to the present invention has a hose support portion that is a roller and is disposed away from the instrument held by the holder portion. With this configuration, the roller does not contact either the instrument or the hose when the instrument is held by the holder portion. However, when the instrument is pulled out, the hose contacts the roller. At that time, since the hose comes off from the insertion hole of the instrument, it is displaced from the rotation axis of the roller. For example, even when a detection unit is provided near the rotation axis or on the rotation axis, the hose does not block the detection unit provided on the rotation axis or the like because it is not on the rotation axis. Therefore, false detection by the detection unit can be prevented. Also, since the hose is supported by the roller and the load is dispersed as the roller rotates, the operability of the instrument is improved and the burden on the operator when pulling the instrument is reduced. Further, since the hose passes between the holder portion and the roller, the path of the hose is restricted within the holder portion both when the instrument is pulled out and when it is retracted, and it does not come off from the holder portion. Therefore, it is easy for the operator to retract the instrument.

[0022] The instrument holder according to the present invention has a cylindrical portion that forms an insertion hole into which the instrument is inserted, and an open portion at the front of the cylindrical portion that is open and leads to the insertion hole. The open portion is formed to have a width through which the hose passes, and the hose support portion is disposed in front of the open portion. With this configuration, when the instrument is pulled out, the instrument comes off from the insertion hole, and the hose passes through the open portion and reaches the roller and contacts the roller. That is, since the hose comes off from the insertion hole of the instrument, it does not block the detection unit provided on the rotation axis of the roller. Therefore, false detection by the detection unit can be prevented.

Brief Description of the Drawings

[0023] [Figure 1] FIG. 1 is an external perspective view showing a dental treatment apparatus having an instrument holder according to an embodiment of the present invention. [Figure 2]FIG. 2 is an external perspective view of the instrument holder according to an embodiment of the present invention when the holder portion is in the rearward inclined holding state. [Figure 3] FIG. 3 is an external perspective view of the instrument holder according to an embodiment of the present invention when only the holder portion used therein is in the forward inclined standby state. [Figure 4] FIG. 4 is an external perspective view of the instrument holder according to an embodiment of the present invention when the holder portion is in the forward inclined standby state and the instrument is pulled out. [Figure 5] FIG. 5 is an enlarged exploded perspective view of the instrument holder according to an embodiment of the present invention. [Figure 6] FIG. 6 is an enlarged perspective view of the members constituting the holder portion of the instrument holder according to an embodiment of the present invention. [Figure 7] FIG. 7 is an enlarged top view of the members constituting the holder portion of the instrument holder according to an embodiment of the present invention. [Figure 8] FIG. 8 is a partial side cross-sectional view of the instrument holder according to an embodiment of the present invention when the holder portion is in the rearward inclined holding state. [Figure 9] FIG. 9 is a partial side cross-sectional view of the instrument holder according to an embodiment of the present invention when the holder portion is in the forward inclined standby state. [Figure 10] FIG. 10 is a partial side cross-sectional view of the instrument holder according to an embodiment of the present invention when the holder portion is in the forward inclined standby state and the instrument is pulled out and the hose hits the hose support portion. [Figure 11] FIG. 11 is a side cross-sectional view of the instrument holder according to an embodiment of the present invention when the holder portion is in the forward inclined standby state and the instrument is pulled out and the hose hits the regulating portion. [Figure 12] FIG. 12 is a schematic side cross-sectional view of the instrument holder according to an embodiment of the present invention when the holder portion is in the rearward inclined holding state. [Figure 13]Figure 13 is a schematic side cross-sectional view of an instrument holder according to an embodiment of the present invention when the holder portion is in a forward-tilted standby state. [Figure 14] Figure 14 is an enlarged perspective view of the components constituting the holder portion of an instrument holder according to another embodiment of the present invention. [Figure 15] Figure 15 is an enlarged perspective view of the members constituting the holder portion of an instrument holder according to another embodiment of the present invention. [Modes for carrying out the invention]

[0024] The following is a description of an instrument holder according to an embodiment of the present invention. Figure 1 shows the external appearance of a dental treatment device 1 having an instrument holder 12.

[0025] As shown in Figure 1, the dental treatment device 1 includes a treatment sheet 2 on which the patient (not shown) lies, a spittoon 3 for the patient to spit out water held in their mouth, a dental light 4 for illuminating the patient's mouth, and a doctor's table 5 used by the practitioner during treatment. The doctor's table 5 is fitted with an instrument holder 12 that holds various instruments 6.

[0026] The spittoon 3 and dental light 4 are supported by a cuspider unit 8, which is installed next to the dental chair 2. The spittoon 3 is a bowl and is installed on top of the cuspider unit 8. The dental light 4 is connected to the end of a movable arm 10 for the light, which is attached to the cuspider unit 8. The cuspider unit 8 has a sub-holder 9 for holding instruments 6. The doctor's table 5 is connected to the end of a movable arm 11 for the table, which is installed near the dental chair 2. The movable arm 10 for the light and the movable arm 11 for the table have multiple joints. Therefore, the dental light 4 can be moved freely via the movable arm 10 for the light. Similarly, the doctor's table 5 can be moved freely via the movable arm 11 for the table.

[0027] The instruments 6 held in the instrument holder 12 are, for example, turbines, micromotors, air motors, scalers, syringes, etc., while the instruments 6 held in the sub-holder 9 are, for example, vacuums, saliva ejectors, syringes, etc. An instrument hose 7 is connected to each instrument 6, and this instrument hose 7 is connected to the doctor's table 5 or the cuspider unit 8.

[0028] Here, the instrument holder 12 will be described based on the drawings. Figures 2 to 4 show the operation process of the instrument holder 12. Figure 2 shows a rearward tilted holding state in which the instrument 6 can be held in a rearward tilted position where the tip of the instrument 6 is tilted to the rear. Figure 3 shows a forward tilted waiting state in which the instrument 6 can be held in a forward tilted position where the tip of the instrument 6 to be used is tilted forward. Figure 4 shows the forward tilted waiting state in which the instrument 6 has been pulled out of the instrument holder 12 and is waiting for the instrument 6. In the following explanation, as shown in Figures 2 to 4, the direction in which the tip of the instrument 6 is tilted toward the doctor's table 5, or the direction toward the doctor's table 5 relative to the axis of rotation A, is defined as the rear (Back), the opposite direction in which the tip of the instrument 6 is tilted toward the practitioner (not shown), or the direction toward the practitioner relative to the axis of rotation A, is defined as the front (Front), the directions in which multiple instruments 6 are lined up are defined as the left and right sides (Left Side, Right Side), the direction in which gravity acts is defined as downward (Down), and the opposite side is defined as upward (Up).

[0029] As shown in Figures 2 to 4, the instrument holder 12 has a long, plate-shaped base 13 to which multiple holder sections 15 are attached. The holder sections 15 can rotate to switch between a rearward-tilted holding state and a forward-tilted standby state, thereby changing the instrument 6 to either a rearward-tilted or forward-tilted position. The holder sections 15 are arranged in the left-right direction on the same axis of rotation A and can rotate independently. The number of holder sections 15 is arbitrary, but this embodiment has five holder sections 15.

[0030] As shown in Figure 2, the holder 15 in the backward-tilting position holds the instrument 6 in a backward-tilting position and maintains this position. Therefore, the tip of the instrument 6 is pointed away from the side where the practitioner is located and toward the side where the doctor's table 5 is located. In this state, when the practitioner pulls the instrument 6 forward, an external force is applied to the instrument 6, causing the instrument 6 to fall forward and the holder 15 to rotate forward, and as shown in Figure 3, the holder 15 enters a forward-tilting standby state. In the forward-tilting standby state, the holder 15 holds the instrument 6 in a forward-tilting position. Therefore, the tip of the instrument 6 is pointed away from the side where the doctor's table 5 is located and toward the side where the practitioner is located. In this state, as shown in Figure 4, the practitioner grasps the instrument 6 and pulls it out of the holder 15. The instrument 6, after being pulled out and removed from the holder 15, is returned to the holder 15 in any position from the forward-leaning standby state to the backward-leaning holding state, and then automatically or manually by the operator to the backward-leaning holding state due to the moment. Here, "from the forward-leaning standby state to the backward-leaning holding state" includes the forward-leaning standby state, the position between the forward-leaning standby state and the backward-leaning holding state, and the backward-leaning holding state.

[0031] Furthermore, the instrument holder 12 will be described in detail based on the drawings. Figure 5 shows the instrument holder 12 in its disassembled state.

[0032] As shown in Figure 5, the instrument holder 12 consists of a base portion 13, a holder portion 15 fixed to the front of the base portion 13, and a restricting portion 60 fixed to the lower part of the base portion 13. The base portion 13 has wiring holes 14 formed for each holder portion 15 through which wiring is passed. The base portion 13 also has screw holes formed as appropriate for screws to be passed through in order to fix the holder portion 15. The holder section 15 includes a pair of support sections 16 fixed to the base section 13, a rotating main body section 23 supported by the support sections 16 and rotatable relative to the support sections 16, a holder main body section 31 attached to the rotating main body section 23, a detection section 39 built into the support section 16 for detecting the presence or absence of an instrument 6, an angle positioning means for determining the rotation angle of the rotating main body section 23, a state holding means for forcibly maintaining a forward-tilted standby state or a backward-tilted holding state, and a roller 45 as a hose support section for supporting the instrument hose 7 of the instrument 6 detached from the holder section 15. The detection section 39 is, for example, an infrared sensor. The regulating section 60 includes a regulating main body section 61 that is elongated from left to right, and L-shaped base sections 62 connected to both left and right ends of the regulating main body section 61. The regulating main body section 61 is cylindrical and may have a structure that rotates like a roller. With the base portion 62 attached to the lower part of the pedestal portion 13, the regulating body portion 61 is positioned below the pedestal portion 13 (see Figure 4).

[0033] The pair of support sections 16 are disc-shaped, and each support section 16 is further composed of a pair of members. The support section 16 consists of a disc-shaped fixed support section 17 and a disc-shaped lid support section 18 identical in shape to the fixed support section 17 and attached to the fixed support section 17. Inside the fixed support section 17, a detection unit housing section 19 is formed approximately in the center, to which the detection unit 39 is attached. A connecting section 20 is formed on the outer circumferential surface of the fixed support section 17, which is attached to the base section 13. The connecting section 20 protrudes backward from the outer circumferential surface. The connecting section 20 and the fixed support section 17 are connected internally, and the wires and signal wires of the detection unit 39 are passed through the connecting section 20. The lid support section 18 is attached to the side of the fixed support section 17 from the side facing the rotating main body section 23. A shaft projection 21 is formed in the center of the lid-side support portion 18, which serves as the axis of rotation A when the rotating main body portion 23 is rotated. The shaft projection 21 protrudes toward the rotating main body portion 23. A support window portion 22 is formed in the center of the lid-side support portion 18, on the shaft projection 21. The support window portion 22 is a hole that penetrates the shaft projection 21 in the axial direction. On the side of the lid-side support portion 18 facing the rotating main body portion 23, a positioning projection 47 as an angular positioning means and a state-holding piece 63 as a state-holding means are formed. The positioning projection 47 protrudes toward the rotating main body portion 23 and is located around the shaft projection 21, behind the axis of rotation A. The state-holding piece 63 is a leaf spring formed by cutting out a part of the surface of the lid-side support portion 18, and is located in front of the axis of rotation A.

[0034] Here, the rotating body portion 23 and the holder body portion 31 will be described based on the drawings. Figure 6 shows an enlarged view of the rotating body portion 23 and an enlarged view of the lid-side support portion 18. Figure 7 shows an enlarged view of the holder body portion 31 and an enlarged view of the roller 45.

[0035] As shown in Figure 6, the rotating body portion 23 has a cylindrical shape suitable for rotation around its left and right axes. In this cylinder, a mounting hole 24 is formed in a direction perpendicular to the rotation axis A, to which the holder body portion 31 is attached, and the front of this mounting hole 24 is open. That is, the rotating body portion 23 has a pair of supported portions 25 supported by the support portion 16, and a rear surface portion 26 that connects the rear ends of the supported portions 25. The front ends of the supported portions 25 are separated and not connected. The left and right outer surfaces of the supported portions 25 are circular, and on the inside, an axis recess 51, a positioning groove portion 48 as an angular positioning means, and a state-holding groove portion 64 as a state-holding means are formed. The axis recess 51 is a circular groove formed in the center of the outer surface of the supported portion 25. The positioning groove portion 48 is located behind the axis recess 51 and consists of a first positioning portion 49 and a second positioning portion 50. Each positioning portion 49, 50 is flat and extends radially backward from the shaft recess 51. A space is formed between each positioning portion 49, 50. The state-holding groove portion 64 is located in front of the shaft recess 51 and consists of a first locking portion 65 and a second locking portion 66. Each locking portion 65, 66 is flat and extends radially forward from the shaft recess 51. A space is formed between each locking portion 65, 66. The rear surface portion 26 is curved around the shaft recess 51. The mounting hole 24 is perpendicular to the shaft recess 51, and the center of the mounting hole 24 is approximately perpendicular to the shaft recess 51. Inside the rotating body portion 23 (mounting hole 24), at the center of the supported portion 25, above the shaft recess 51, a rotating body window portion 29 is formed. The rotating body window portion 29 is a hole that penetrates the rotating body portion 23 in the direction of the shaft recess 51. A light-transmitting member 30, such as glass or plastic, is attached to the rotating main body window section 29 from the left and right outer sides (see Figure 5).

[0036] As shown in Figures 5 and 7, the holder body 31 has a cylindrical portion 32 that forms an insertion hole 33 into which the instrument 6 is inserted, a cover portion 34 connected to the upper end of the cylindrical portion 32 and extending to the front of the cylindrical portion 32, and an open portion 35 that is open at the front of the cylindrical portion 32 and leads to the insertion hole 33. The cylindrical portion 32 is shaped to match the mounting hole 24 of the rotating body 23, and because the front is open, it is formed in a C shape when viewed from the axial direction of the insertion hole 33. The virtual axis V passing through the insertion hole 33 is approximately perpendicular to the rotation axis A. Since the virtual axis V is within the range of the insertion hole 33, there are cases where the center of the virtual axis V is perpendicular to the rotation axis A, as well as cases where a range other than the center of the virtual axis V is perpendicular to the rotation axis A. A holder window portion 36 is formed on the inner surface of the cylindrical portion 32, on the rotation axis A. The holder window portion 36 is a hole that penetrates the holder body portion 31 in the direction of the rotation axis A. That is, the rotation axis A is located inside the insertion hole 33. A locking piece 37 is formed at the lower end of the cylindrical portion 32 to lock onto the rotating body portion 23. The cover portion 34 is a flange that extends from the upper end of the cylindrical portion 32 to the left and right sides, rear and front, and is approximately rectangular when viewed from above. The front part of the cover portion 34 extends from the left and right sides to the lower end of the cylindrical portion 32 and is recessed toward the insertion hole 33, and is connected to the opening portion 35. A roller receiving portion 67 is formed at the upper and front end of the cover portion 34. A roller 45 is attached to the roller receiving portion 67 via a shaft 68. The roller 45 is positioned at a distance in front of the opening portion 35 (of the insertion hole 33). The roller 45 is rod-shaped and rotates on an axis parallel to the rotation axis A of the rotating body portion 23. The width of the opening 35 is large enough for the instrument hose 7 to pass through, but not large enough for the instrument 6 to pass through.

[0037] The components formed as described above are assembled as follows.

[0038] In Figure 5, a detection unit 39 is attached to the detection unit housing 19 of the fixed-side support unit 17 of the support unit 16, and the wiring of the detection unit 39 is passed through the connection part 20 of the fixed-side support unit 17. The lid-side support unit 18 of the support unit 16 is attached to the fixed-side support unit 17. A light-transmitting member 30 is attached to the rotating body window 29 of the rotating body 23 from the left and right outer sides. The support unit 16 is attached to both supported parts 25 of the rotating body 23 from the left and right outer sides, and the axial projection 21 of this support unit 16 is inserted into the axial recess 51 of both supported parts 25. At that time, the positioning projection 47 of the support unit 16 is positioned between the respective positioning parts 49, 50 of the rotating body 23, and the state-holding piece 63 of the support unit 16 is positioned between the respective locking parts 65, 66 of the rotating body 23. The rotating body 23 is supported by being sandwiched between the two support parts 16, allowing it to rotate freely. The support parts 16 and the rotating body 23 are positioned on the rotation axis A. The assembled holder part 15 is fixed to the base part 13. At this time, the wiring of the detection unit 39, which is passed through the connection part 20, is passed through the wiring hole 14 of the base part 13. When multiple holder parts 15 are fixed to the base part 13, adjacent rotating body parts 23 are supported by a common support part 16. In addition, a decorative cover 38 is attached to the outermost support part 16 of the adjacent holder parts 15 (see Figure 2).

[0039] Next, the holder body 31 is attached to the rotating body 23. At this time, the cylindrical portion 32 of the holder body 31 is inserted into the mounting hole 24 of the rotating body 23, and the locking piece 37 of the holder body 31 is locked to the lower edge of the mounting hole 24 (see Figure 8). The rotating body 23 and the support portion 16 are covered from the top surface to the front surface by the cover portion 34 of the holder body 31. The support window portion 22 of the support portion 16, the rotating body window portion 29 of the rotating body 23, and the holder window portion 36 of the holder body 31 are aligned on the rotation axis A, and the infrared light source and light receiving element of the detection unit 39 are also positioned on the rotation axis A. After the instrument 6 is inserted into the insertion hole 33 of the holder body 31, the roller 45 is attached to the roller receiving portion 67 via the shaft 68. The instrument 6 is surrounded by the holder body 31 and the roller 45 and is passed through the holder portion 15.

[0040] The operation of the instrument holder 12 assembled as described above will now be explained based on the drawings. Figures 8 to 11 show the process of operation of the instrument holder 12. Figure 8 shows a cross-section in the backward-tilting holding state, Figure 9 shows a cross-section in the forward-tilting standby state, Figure 10 shows a cross-section when the instrument 6 is pulled out, showing the operation of the roller 45, and Figure 11 shows a cross-section after the instrument 6 has been pulled out to the limit of the length of the instrument hose 7, showing the operation of the regulating part 60.

[0041] As shown in Figure 8, the center of the insertion hole 33 of the holder body 31 is approximately perpendicular to the axis of rotation A. Therefore, assuming that the weight of the holder 15 can be ignored when the instrument 6 is inserted into the insertion hole 33 and held by the holder 15, the center of gravity of the holder 15 including the instrument 6 (hereinafter referred to as the "instrument-attached holder") is on the instrument 6. Furthermore, the instrument 6 is held by the holder 15 such that the center of gravity of the instrument-attached holder is above the axis of rotation A. Therefore, if an external force acts on the instrument 6 from the axis of rotation A toward the rear, or if the tip of the instrument 6 is behind the axis of rotation A, the center of gravity will be behind the axis of rotation A, and the moment acting on the instrument-attached holder will be in the direction of rotation of the rotating body 23 toward the rear (for example, clockwise in Figure 8). Consequently, the holder 15 will be in a backward-tilted holding state. The backward tilted position is maintained by gravity or by the action of a state-holding mechanism. In the backward tilted position, the roller 45 is positioned away from the instrument 6 and the instrument hose 7.

[0042] On the other hand, if an external force acts on the instrument 6 from the rotation axis A toward the front, or if the tip of the instrument 6 is in front of the rotation axis A, the center of gravity will be in front of the rotation axis A, and the moment acting on the instrument holder will be in the direction that causes the rotating body 23 to rotate forward (for example, counterclockwise in Figure 8). Therefore, as shown in Figure 9, the holder 15 will be in a forward-tilted standby state. This forward-tilted standby state is maintained by gravity. When the instrument 6 is pulled out in the forward-tilted standby state, the posture of the holder 15 will change between the forward-tilted standby state and the backward-tilted holding state depending on the external force. In the forward-tilted standby state, the restricting body 61 of the restricting unit 60 is below the virtual axis V, and the instrument hose 7 is in contact with the restricting body 61. In addition, depending on the rotation angle of the holder portion 15, the thickness and slack of the instrument hose 7, etc., the instrument hose 7 may not be in contact with the regulating body portion 61 when in the forward-tilted standby state.

[0043] As shown in Figure 10, when the instrument 6 is pulled out and removed from the holder 15, the instrument hose 7 is pulled by the instrument 6 and exits through the insertion hole 33 of the holder body 31. The instrument hose 7 detaches from the rotation axis A, passes through the opening 35, and is supported by the roller 45 at a position offset from the rotation axis A. Therefore, the instrument hose 7 does not obstruct the infrared light between the infrared light source and the light receiving element of the detection unit 39, which are aligned on the rotation axis A. The instrument hose 7 is smoothly pulled out as the load is distributed by the rotating roller 45.

[0044] As shown in Figure 11, when the instrument 6 is further stretched to the limit of the instrument hose 7's length, the instrument hose 7 remains in contact with the roller 45 and then contacts the regulating body 61, which is the lower part of the regulating section 60, and becomes taut. In other words, the instrument hose 7 is supported by contacting the regulating section 60 at a position offset from the rotation axis A. Therefore, the instrument hose 7 does not obstruct the infrared light between the infrared light source and the photodetector element of the detection unit 39, which are aligned on the rotation axis A.

[0045] The rotation angle of the holder portion 15 is determined by the angle positioning means, and the maintenance of the forward-tilted standby state and the backward-tilted holding state is achieved by the state holding means. Figures 12 and 13 show schematics of the angle positioning means and state holding means of the instrument holder 12. Figure 12 shows the interior of the instrument holder 12 with the backward-tilted holding state maintained by the angle positioning means and state holding means, and Figure 13 shows the interior of the instrument holder 12 with the forward-tilted standby state maintained by the angle positioning means and state holding means.

[0046] In Figure 12, the moment acting on the instrument holder is in the direction of rotation of the rotating body 23 toward the rear (for example, clockwise in Figure 12). The second locking portion 66 of the rotating body 23 has passed over the state-holding piece 63 of the lid-side support portion 18, and the second positioning portion 50 of the rotating body 23 is in contact with the positioning projection 47 of the support portion 16. Therefore, the rotating body 23 stops, and the backward tilted holding state is maintained. On the other hand, in Figure 13, the moment acting on the instrument holder is in the direction of rotation of the rotating body 23 toward the front (for example, counterclockwise in Figure 13). The first locking portion 65 of the rotating body 23 has passed over the state-holding piece 63 of the lid-side support portion 18, and the first positioning portion 49 of the rotating body 23 is in contact with the positioning projection 47. Therefore, the rotating body 23 stops, and the forward tilted standby state is maintained.

[0047] As described above, this embodiment is configured as described.

[0048] Next, the effects of this embodiment will be described.

[0049] As described above, in this embodiment, multiple holder sections 15 are arranged in the left-right direction on the same rotation axis A, and adjacent rotating body sections 23 are supported by a common support section 16, so that the rotating body sections 23 can rotate independently (see Figures 2 and 3). That is, each holder section 15 rotates and enters either a forward-tilted standby state or a backward-tilted holding state, so that only the instrument 6 being used is in a forward-tilted position, while the other unused instruments 6 maintain a backward-tilted position. When the practitioner takes out or puts back an instrument 6, the other unused instruments 6 are in a backward-tilted position (see Figure 3), so the practitioner will not be injured by the tip of another instrument 6, and the extended instrument hose 7 will not interfere with other instruments 6. Therefore, multiple instruments 6 can be handled smoothly, safely, and hygienically, depending on whether each instrument 6 is being used or not.

[0050] In this embodiment, the holder portion 15 of the instrument holder 12 includes a pair of support portions 16 fixed to the base portion 13, a rotating body portion 23 supported by the support portions 16 and rotatable relative to the support portions 16, and a holder body portion 31 attached to the rotating body portion 23. That is, by rotating the rotating body portion 23, the holder portion 15 changes between a reclined holding state (see Figure 8) and a forward-leaning standby state (see Figure 9). In the reclined holding state, the holder portion 15 holds the instrument 6 in a reclined position that makes it difficult for the practitioner to come into contact with it. Therefore, the practitioner can handle the instrument 6 safely and hygienically. On the other hand, in the forward-leaning standby state, the holder portion 15 holds the instrument 6 in a forward-leaning position, so the practitioner can smoothly pull out the instrument 6.

[0051] In this embodiment, the position of the holder portion 15 when the instrument is returned is arbitrary, ranging from a forward-leaning standby state to a backward-leaning holding state. Since the instrument hose 7 is surrounded by the holder body portion 31 and the roller 45 and passes through the holder portion 15, when the instrument is moved, the instrument hose 7 is pulled (or pushed), and the holder portion 15 rotates in conjunction with the instrument hose 7. Regardless of the position of the holder portion 15, the practitioner can move the instrument 6 to bring the holder portion 15 to the forward-leaning standby state, which is the same position as when the instrument 6 is pulled out, so that the practitioner can return the instrument 6 smoothly.

[0052] In this embodiment, as a state-holding means, a leaf spring-shaped state-holding piece 63 is formed by cutting out a part of the surface of the lid-side support portion 18, and a state-holding groove portion 64 is formed in the supported portion 25 of the rotating body portion 23 (see Figure 6). In the forward-tilted standby state, the state-holding piece 63 is locked to the first locking portion 65 of the state-holding groove portion 64, and the positioning projection 47 contacts the first positioning portion 49 of the positioning groove portion 48, thereby holding the rotating body portion 23 in place (see Figure 13). With this configuration, the forward-tilted standby state is maintained, making it easy for the practitioner to return the instrument 6 to the holder portion 15 and to handle the instrument 6 smoothly. Furthermore, even after returning the instrument 6, the practitioner can maintain the forward-tilted standby state and hold the instrument 6 in place, depending on the application.

[0053] Furthermore, in this embodiment, when the instrument 6 is held in a backward tilt position, the state-holding piece 63 is locked to the second locking portion 66 of the state-holding groove 64, and the positioning projection 47 contacts the second positioning portion 50 of the positioning groove 48, thereby securing the rotating body 23 (see Figure 12). This configuration maintains the backward tilt position. With this configuration, for example, the instrument 6 can be kept in a backward tilt position during treatment. Also, when the instrument 6 is removed from the instrument hose 7 for sterilization or the like, and only the instrument hose 7 is held by the holder portion 15, the rotating body 23 may rotate backward if the center of gravity is behind the rotation axis A, or if the doctor's table 5 moves. Even in such cases, the state-holding means can maintain the backward tilt position.

[0054] In this embodiment, the support portion 16 of the holder portion 15 is composed of a fixed-side support portion 17 and a lid-side support portion 18. A detection unit 39 for detecting the presence or absence of an instrument 6 is attached to a detection unit housing portion 19 formed approximately in the center of the inside of the fixed-side support portion 17 (see Figure 5). The detection unit 39 is, for example, an infrared sensor. The support window portion 22 of the support portion 16, the rotating body window portion 29 of the rotating body portion 23, and the holder window portion 36 of the holder body portion 31 are aligned on the rotation axis A, and the infrared light source and light receiving element of the detection unit 39 are also arranged on the rotation axis A. Therefore, wiring of the detection unit 39 is easy. That is, the holder portion 15 is in a rearward tilted holding state or a forward tilted standby state as the rotating body portion 23 rotates, so the posture of the holder portion 15 differs depending on the state, but the rotation axis A does not change regardless of the state of the holder portion 15. If the position of the detection unit 39 inside the support unit 16 were far from the rotation axis A, the position of the detection unit 39 relative to the rotation axis A would be displaced each time the state of the holder unit 15 changes, resulting in complicated wiring. Therefore, as in this embodiment, arranging the detection unit 39 on the rotation axis A makes wiring easier.

[0055] In this embodiment, the holder body 31 has an opening 35 at the front of the cylindrical portion 32 that leads to an insertion hole 33. A roller 45 that supports the instrument hose 7 of the instrument 6 detached from the holder portion 15 is attached to a roller receiving portion 67 positioned at a distance in front of the opening 35 (of the insertion hole 33) (see Figure 10). The width of the opening 35 is large enough for the instrument hose 7 to pass through, but not large enough for the instrument 6 to pass through. When the instrument is held in a backward tilt position, the roller 45 is positioned at a distance from the instrument hose 7 (see Figure 8). In this configuration, the roller 45 does not come into contact with either the instrument 6 or the instrument hose 7 when the instrument 6 is held in the holder portion 15. However, when the instrument 6 is pulled out and removed from the holder portion 15, the instrument hose 7 is pulled by the instrument 6 and exits through the insertion hole 33 of the holder body portion 31. The instrument hose 7 detaches from the rotation axis A, passes through the opening 35, and is supported by contact with the roller 45 at a position offset from the rotation axis A (see Figure 10). Since the instrument hose 7 is not on the rotation axis A, it does not obstruct the infrared rays of the detection unit 39 provided on the rotation axis A. Therefore, false detection by the detection unit 39 can be prevented.

[0056] In this embodiment, the instrument hose 7 is supported by the roller 45, and the load is distributed as the roller 45 rotates, improving the operability of the instrument 6 and reducing the burden on the practitioner when pulling the instrument 6. Furthermore, since the instrument hose 7 passes between the holder body 31 and the roller 45, the path of the instrument hose 7 is restricted within the insertion hole 33 of the holder body 31 when the instrument 6 is pulled out or returned, so the instrument hose 7 does not come out of the holder body 31, making it easy for the practitioner to return the instrument 6. In this embodiment, the rotating body 23 rotates separately, and the other unused instruments 6 are in a backward-tilting position, so even if the path of the instrument hose 7 is restricted, the instrument hose 7 does not interfere with the other instruments 6. If the other instruments 6 remain in a forward-leaning position, and the instrument hose 7 is restricted by the roller 45, the path for the instrument hose 7 will be limited to the vicinity of the other instruments 6 that are in a forward-leaning position, and therefore the instrument hose 7 may get caught on the other instruments 6.

[0057] This embodiment has a restrictor 60 fixed to the lower part of the base 13, and the restrictor 60 has a cylindrical restrictor body 61 (see Figure 2). The virtual axis V passing through the insertion hole 33 of the holder body 31 is almost perpendicular to the rotation axis A, and in the forward-tilting standby state, the restrictor body 61 of the restrictor 60 is below the virtual axis V (see Figure 9). With this configuration, when the instrument 6 is pulled further to the limit of the length of the instrument hose 7, the instrument hose 7 remains in contact with the roller 45 and then comes into contact with the restrictor body 61, which is the lower part of the restrictor 60, and becomes taut (see Figure 11). That is, the instrument hose 7 is supported by contacting the restrictor body 61 at a position offset from the rotation axis A. Since the instrument hose 7 is not on the rotation axis A, it does not obstruct the infrared rays of the detection unit 39 provided on the rotation axis A. Therefore, false detections by the detection unit 39 can be prevented.

[0058] In addition, in another embodiment of the present invention, the regulating part is integrated with the base part. Other embodiments do not have a regulating section. Other embodiments include a forward tilt angle adjustment mechanism. This forward tilt angle adjustment mechanism is implemented, for example, by an inverted L-shaped adjustment piece attached to the base and a locking portion protruding rearward from the rear surface of the rotating body. In other embodiments, the detection unit and each window are positioned near or away from the rotation axis, rather than on the rotation axis, as long as they are on the same line. In this case, the position of the detection unit differs depending on the state of the holder, so ingenuity is required in the wiring of the detection unit. In other embodiments, the detection unit is a reflective infrared sensor. In this case, the detection unit is built into, for example, the rotating body or the support body. In other embodiments, the detection unit is a magnetic sensor. In this case, no windows are formed, the sensor is built into the rotating body, and a magnetic material is built into the instrument. Alternatively, a sensor is built into the support, and this sensor detects the magnetic force of the instrument. In other embodiments, the detection unit is a contact switch. In this case, the contact switch is placed in the insertion hole of the holder body. In other embodiments, the detection unit is an imaging means such as a video camera. In other embodiments, the detection unit is attached to a suitable member extending from the doctor's table to the holder. That is, the detection unit is not directly provided on the holder. In other embodiments, the holder portion does not have a detection portion. In other embodiments, as a means for maintaining the state, a weight that serves as the center of gravity of the holder is housed in the rotating body of the holder, and the weight is located in front of the rotation axis A. In other embodiments, the state-holding means is not configured such that the weight is housed in a weight housing, but rather the center of gravity of the rotating body itself is designed to be at a predetermined position. In other embodiments, the state-holding means applies a moment using, for example, air, pneumatic or hydraulic piston cylinders, springs, magnets, electromagnets, etc. When the state-holding means is a magnet, for example, as shown in Figure 14, a state-holding magnet 163 is built into the lid-side support portion 118 in front of the rotation axis A, and a first locking magnet 165 and a second locking magnet 166 are built into the rotating body portion 123 in front of the axis recess 151. Also, for example, as shown in Figure 15, a third locking magnet 269 is built into the positioning projection 247 of the lid-side support portion 218, and a fourth locking magnet 270 and a fifth locking magnet 271 are built into the rotating body portion 223 on the side of the first positioning portion 249 and the second positioning portion 250. In other embodiments, the state-holding means is an appropriate resistance applied between the support portion and the rotating body portion, and the rotating body portion stops due to frictional force. In this case, the rotating body portion stops at any position free from external forces such as those applied by the practitioner. In other embodiments, the state-holding means forcibly maintains only one of the forward-leaning standby state or the backward-leaning holding state. Other embodiments do not have a state-holding means. In other embodiments, the rotating body and the holder body are integrated, and the rotating body has the same configuration as the holder body. In other embodiments, a state detection unit for detecting the various states of the holder is provided on the base or support. The state detection unit determines whether the holder is in a backward-tilted holding state or a forward-tilted standby state by detecting the position of the rotating main body, and can be, for example, an infrared sensor, a magnetic sensor, a contact switch, or a tilt sensor. In this case, for example, control is possible such as outputting a signal only when both the detection of the instrument by the detection unit and the detection of the backward-tilted holding state by the state detection unit are ON. In other embodiments, the degree to which the instrument hose is offset from the axis of rotation is arbitrary, as long as it does not interfere with the sensing unit on the axis of rotation. For example, the insertion hole in the holder body is left open to accommodate about the length of one instrument hose. In other embodiments, the hose support is achieved by narrowing the width of the opening in the holder body. In this case, there are no rollers.

[0059] Although embodiments of the present invention have been described in detail above, the present invention is not limited to the above embodiments. Furthermore, various design modifications can be made to the present invention without departing from the matters described in the claims. [Explanation of Symbols]

[0060] 1. Dental treatment equipment 2. Medical examination sheet 3 Spitton 4 Dental Lights 5 Doctor's Table 6 Instruments 7. Instrument hoses (hoses) 8 Cuspider Units 9 Subholders 10. Movable arm for lights 11. Table-mounted movable arm 12 Instrument Holders 13. Base 14 Wiring hole 15. Holder section 16,116,216 Support part 17 Fixed side support part 18,118,218 Lid side support part 19 Detection Unit Housing 20 Connection part 21,121,221 Shaft protrusion 22,122,222 Support window part 23,123,223 Rotating main body 24,124,224 mounting holes 25,125,225 Supported part 26,126,226 Rear part 29,129,229 Rotating main body window section 30 Translucent material 31 Holder body 32 Cylindrical part 33 Insertion hole 34 Cover section 35 Open area 36 Holder window section 37 Locking piece 38 Cosmetic lid 39 Detection unit 45. Roller (hose support part) 47,147,247 Positioning projection (angle positioning means) 48,148,248 Positioning groove (angle positioning means) 49,149,249 First positioning section 50, 150, 250 Second positioning section 51,151,251 Shaft recess 60 Regulatory Department 61 Regulatory main body 62 Base 63 State-retaining piece (state-retaining means) 64 State-holding groove (state-holding means) 65 First locking part 66 Second locking part 67 Roller support section 68 shaft 163 State-holding magnet (state-holding means) 165 First locking magnet (state holding means) 166 Second locking magnet (state holding means) 269 ​​Third locking magnet (state holding means) 270 Fourth locking magnet (state holding means) 271 Fifth locking magnet (state holding means) A rotation axis V virtual axis

Claims

1. The holder portion has a rearward-tilting holding state in which the instrument is held with the tip of the instrument tilted backward, and a forward-tilting waiting state in which the tip of the instrument is tilted forward. The holder portion is individually rotatable and has a hose support portion that supports the hose of the instrument when it is removed from the holder portion. While the instrument is held in the holder, the backward-tilted holding state is maintained, and after the instrument is removed from the holder, it is returned to the holder in any position between the backward-tilted holding state and the forward-tilted waiting state, and then returns to the backward-tilted holding state. An instrument holder characterized by the following.

2. The rotation axis of the holder portion is located in the insertion hole of the holder portion into which the instrument is inserted. The hose support portion is positioned to support the hose of the instrument, which has been removed from the holder portion, at a position offset from the rotation axis of the holder portion. The instrument holder according to feature 1.

3. The device has a restricting portion that causes the hose of the instrument, which has been removed from the holder portion, to be positioned offset from the rotation axis of the holder portion. An instrument holder as described in claim 1 or 2.

4. The rotation axis of the holder portion intersects with the axis of the insertion hole into which the instrument is inserted. In the aforementioned forward-tilting standby state, the restricting portion is below the virtual axis passing through the axis of the insertion hole. The instrument holder according to feature 3.

5. The holder portion has a detection unit that detects the presence or absence of the instrument at or near the rotation axis of the rotation axis. An instrument holder as described in any one of claims 1 to 4.

6. Having a state-holding means for maintaining the aforementioned forward-leaning standby state, An instrument holder as described in any one of claims 1 to 5.

7. The hose support portion is a roller, and is positioned away from the instrument held in the holder portion. An instrument holder as described in any one of claims 1 to 6.

8. The holder portion comprises a cylindrical portion that forms an insertion hole into which the instrument is inserted, The front of the cylindrical portion is open and has an opening that leads to the insertion hole, The opening is formed to a width through which the hose passes, The hose support portion is positioned in front of the opening. An instrument holder as described in any one of claims 1 to 7.

Citation Information

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