Medical detection attachment and medical endoscope system

The medical detection attachment with dual IC detectors and a main body verifies proper connection between the light guide and rigid scope, addressing safety issues by controlling laser emission, ensuring compliance with laser safety standards and maintaining high light intensity.

JP7742792B2Active Publication Date: 2025-09-22SONY OLYMPUS MEDICAL SOLUTIONS
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Patent Information

Application Number
JP2022038567
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-11
Publication Date
2025-09-22
Estimated Expiration
2042-03-11

AI Technical Summary

Technical Problem

Existing medical endoscope systems face safety issues due to incorrect connection procedures of detection attachments, leading to potential laser light emission from the light guide's output end even when it is not connected to the rigid scope, violating laser safety standards.

Method used

A medical detection attachment with a main body and dual detection bodies to ensure proper connection between the light guide and rigid scope, using IC detectors to verify the connection state and control laser light emission based on detection results.

Benefits of technology

Ensures safe emission of laser light by preventing emission when the light guide is not properly connected, maintaining high light intensity within safety standards and preventing detachment, thus ensuring both safety and sufficient light output.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To secure light volume of laser beams emitted to a subject while securing safety.SOLUTION: A medical detection attachment 11 includes: an attachment body 111 attached to a connection place CN between a light guide 4 for guiding laser beams and a hard mirror 2 for irradiating a subject with laser beams through the light guide 4; a first detection body 112 provided in the attachment body 111 for detecting connection between the attachment body 111 and the hard mirror 2; and a second detection body 113 provided in the attachment body 111 for detecting connection between the attachment body 111 and the light guide 4.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present disclosure relates to medical sensing attachments and medical endoscopy systems. [Background technology]

[0002] 2. Description of the Related Art In recent years, in medical endoscope systems for observing a subject, narrow-band, highly coherent laser light is sometimes used as light for observing the subject. Such a medical endoscope system includes a rigid endoscope, a light guide, and a light source device, which will be described below. The light source device emits a laser beam. The light guide connects the rigid scope and the light source device, and guides the laser light emitted from the light source device to the rigid scope. The rigid endoscope is inserted into a subject, and irradiates the subject with laser light guided by a light guide from the tip thereof, and also captures an image of the subject inside the subject.

[0003] Here, the light guide can be easily removed from the rigid scope without using tools. In other words, if the light guide becomes detached from the rigid scope, there is a risk that the laser light emitted from the light guide's emission end may be irradiated onto the user. To ensure safety, the light guide must be designed so that the laser light emitted from the light guide's emission end meets the requirements stipulated in the laser standard, which indicates the "safety standards for laser products." If designed in this way, the laser standard limits the amount of laser light emitted from the light guide's emission end, making it difficult to ensure the amount of laser light emitted from the tip of the rigid scope.

[0004] Further, a medical endoscope system has been proposed in the past in which laser light is emitted from a light source device only when it is detected that a light guide is connected to a rigid endoscope (see, for example, Patent Document 1). The medical endoscope system described in Patent Document 1 detects that a light guide and a rigid endoscope are connected by using a detection attachment that has a built-in object to be detected, such as an RFID (Radio Frequency Identifier) ​​tag. Specifically, the light guide is provided with a detector that detects the above-mentioned detectable object. A detector attachment is connected to the rigid endoscope, and the light guide is connected to the detector attachment, allowing the detector attached to the light guide to detect the detectable object contained in the detector attachment. This allows the connection between the light guide and the rigid endoscope to be detected.

[0005] If the light source device is configured to emit laser light only when the light guide and the rigid scope are connected, laser light will not be emitted from the light guide's emission end if the light guide becomes detached from the rigid scope. In other words, with this configuration, the laser light emitted from the tip of the rigid scope can be designed to meet the requirements stipulated in the laser standard, which indicates the "Safety Standards for Laser Products." With this design, the amount of laser light emitted from the light guide's emission end can be increased without being limited by the laser standard, ensuring a sufficient amount of laser light emitted from the tip of the rigid scope. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 7,018,331 Summary of the Invention [Problem to be solved by the invention]

[0007] However, the medical endoscope system described in Patent Document 1 has the following problems if the connection procedure of the detection attachment is incorrect. In other words, if the detection attachment is connected to the light guide first, it will detect that the light guide and the rigid scope are connected, even though they are not. As a result, laser light will be emitted from the light guide's output end, even though the light guide and the rigid scope are not connected. In other words, safety cannot be ensured. Therefore, there is a demand for a technique that can ensure the amount of laser light emitted to the subject while ensuring safety.

[0008] The present disclosure has been made in consideration of the above, and aims to provide a medical detection attachment and a medical endoscope system that can ensure the amount of laser light emitted to a subject while ensuring safety. [Means for solving the problem]

[0009] In order to solve the above-mentioned problems and achieve the objectives, the medical detection attachment of the present disclosure comprises an attachment main body attached to a connection point between a light guide that guides laser light and a rigid scope that irradiates the laser light via the light guide onto a subject, a first detection body provided on the attachment main body for detecting the connection between the attachment main body and the light guide, and a second detection body provided on the attachment main body for detecting the connection between the attachment main body and the rigid scope.

[0010] The medical endoscope system according to the present disclosure comprises a laser source device that emits laser light, a light guide that guides the laser light, a rigid scope that irradiates a subject with the laser light that passes through the light guide, a medical detection attachment that detects the connection state between the light guide and the rigid scope, and a light source control device that uses the medical detection attachment to detect the connection state between the light guide and the rigid scope and controls the output of the laser light in the laser source device based on the detection result, and the medical detection attachment comprises an attachment main body that is attached to the connection point between the light guide and the rigid scope, a first detection body that is provided on the attachment main body for detecting the connection between the attachment main body and the light guide, and a second detection body that is provided on the attachment main body for detecting the connection between the attachment main body and the rigid scope. [Effects of the Invention]

[0011] According to the medical detection attachment and medical endoscope system according to the present disclosure, it is possible to ensure the amount of laser light emitted to the subject while ensuring safety. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a diagram showing a medical endoscope system according to the first embodiment. [Figure 2] FIG. 2 is a block diagram showing the configuration of the light source device. [Figure 3] FIG. 3 is a diagram showing the configuration of the insertion portion side connector and the first light guide side connector. [Figure 4] FIG. 4 is a diagram showing the configuration of the detection attachment. [Figure 5] FIG. 5 is a flowchart showing the lighting drive control executed by the control unit. [Figure 6] FIG. 6 is a diagram showing the configuration of the detection attachment according to the second embodiment. [Figure 7] FIG. 7 is a block diagram showing the configuration of a light source device according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, modes for carrying out the present disclosure (hereinafter, referred to as embodiments) will be described with reference to the drawings. Note that the present disclosure is not limited to the embodiments described below. Furthermore, in the drawings, the same parts are denoted by the same reference numerals.

[0014] (Embodiment 1) [General configuration of medical endoscope system] FIG. 1 is a diagram showing a medical endoscope system 1 according to the first embodiment. The medical endoscope system 1 is used in the medical field and is a system for observing a subject (inside a living body). As shown in Fig. 1, the medical endoscope system 1 includes an insertion section 2, a light source device 3, a light guide 4, a camera head 5, a first transmission cable 6, a display device 7, a second transmission cable 8, a control device 9, a third transmission cable 10, and a detection attachment 11.

[0015] The insertion section 2 corresponds to the rigid endoscope according to the present disclosure, has an elongated shape that is entirely rigid or has a part that is flexible and another part that is rigid, and is inserted into a living body. Inside the insertion portion 2, an optical system (not shown) is provided, which is configured using one or more lenses and focuses the subject image.

[0016] As shown in FIG. 1, the insertion section 2 is provided with an insertion section side connector 21 to which a first light guide side connector 41 of the light guide 4 is detachably connected. The configuration of the insertion portion side connector 21 will be explained in the section "Configuration of the insertion portion side connector and the first light guide side connector" below.

[0017] The light source device 3 is connected to the second light guide side connector 42 of the light guide 4, and under the control of the control device 9, supplies light (normal light such as white light or excitation light (laser light)) designated by the control device 9 to the incident end of the light guide 4. In the first embodiment, the light source device 3 is configured as a separate entity from the control device 9, but this is not limiting, and a configuration in which the light source device 3 is provided within the control device 9 may be adopted. The detailed configuration of the light source device 3 will be described later in the section "Configuration of the Light Source Device."

[0018] The light guide 4 has a first light guide-side connector 41 on the incident end side detachably connected to the insertion portion-side connector 21, and a second light guide-side connector 42 on the output end side detachably connected to the light source device-side connector 30 (see FIG. 2) of the light source device 3. The light guide 4 supplies light (normal light such as white light or excitation light (laser light)) supplied from the light source device 3 to the insertion portion 2. The light supplied to the insertion portion 2 is irradiated into a living body from the tip of the insertion portion 2. The normal light and excitation light (laser light) reflected within the living body, and fluorescence emitted from fluorescent substances in the living body as a result of the fluorescent substances being excited by the excitation light, are collected by an optical system within the insertion portion 2. The configuration of the first light guide side connector 41 will be described later in the section "Configuration of the Insertion Portion Side Connector and the First Light Guide Side Connector."

[0019] The camera head 5 is detachably connected to the eyepiece 22 of the insertion portion 2. Under the control of the control device 9, the camera head 5 captures an image of a subject focused by the insertion portion 2 and generates an image signal (hereinafter referred to as a captured image).

[0020] One end of the first transmission cable 6 is detachably connected to the control device 9, and the other end is detachably connected to the camera head 5. The first transmission cable 6 transmits captured images and other signals output from the camera head 5 to the control device 9, and also transmits control signals, synchronization signals, clocks, power, and other signals output from the control device 9 to the camera head 5. The captured images and the like may be transmitted as optical signals or electrical signals from the camera head 5 to the control device 9 via the first transmission cable 6. The same applies to the transmission of control signals, synchronization signals, and clocks from the control device 9 to the camera head 5 via the first transmission cable 6.

[0021] The display device 7 is configured with a display using liquid crystal or organic EL (Electro Luminescence) or the like, and displays an image based on a video signal from the control device 9 under the control of the control device 9. One end of the second transmission cable 8 is detachably connected to the display device 7, and the other end is detachably connected to the control device 9. The second transmission cable 8 transmits the video signal processed by the control device 9 to the display device 7.

[0022] The control device 9 is composed of a CPU (Central Processing Unit), FPGA (Field-Programmable Gate Array), etc., and comprehensively controls the operations of the light source device 3, camera head 5, and display device 7. For example, the control device 9 outputs a control signal to the light source device 3 according to an observation mode such as a normal observation mode or a fluorescent observation mode, causing the light source device 3 to emit light corresponding to the observation mode (normal light such as white light or excitation light (laser light)). The control device 9 also performs various image processing on the captured image output from the camera head 5 and generates a video signal for displaying the captured image. The control device 9 then outputs the video signal to the display device 7 via the second transmission cable 8, causing the display device 7 to display the captured image based on the video signal. One end of the third transmission cable 10 is detachably connected to the light source device 3, and the other end is detachably connected to the control device 9. The third transmission cable 10 transmits a control signal from the control device 9 to the light source device 3.

[0023] The detection attachment 11 is an attachment for detecting the connection state between the light guide 4 and the insertion section 2, and corresponds to the medical detection attachment according to the present disclosure. The detailed configuration of the detection attachment 11 will be explained in the section "Configuration of the Detection Attachment" below.

[0024] [Configuration of light source device] FIG. 2 is a block diagram showing the configuration of the light source device 3. As shown in FIG. Next, the configuration of the light source device 3 will be described with reference to FIG. As shown in FIG. 2, the light source device 3 includes a visible light source 31, first and second excitation light sources 32 and 33, first and second dichroic mirrors 34 and 35, a control unit 36, and a memory 37. The visible light source 31 is a light source used in both the normal observation mode and the fluorescent observation mode, and emits (emits) normal light such as white light in the visible wavelength band. In the first embodiment, the visible light source 31 is configured by an LED (Light Emitting Diode) that emits white light (normal light).

[0025] The first excitation light source 32 corresponds to the laser light source device according to the present disclosure. This first excitation light source 32 is a light source used in a fluorescence observation mode and is composed of a semiconductor laser that emits excitation light (hereinafter referred to as the first laser light) having a peak wavelength of approximately 405 nm. The first laser light is excitation light that excites protoporphyrin biosynthesized in mitochondria after 5-aminolevulinic acid (5-ALA) is taken up into cells after administration to a subject. Furthermore, when excited by the first laser light, the protoporphyrin emits fluorescence having peak wavelengths of approximately 636 nm and 705 nm.

[0026] The second excitation light source 33 corresponds to the laser light source device according to the present disclosure. The second excitation light source 33 is a light source used in a fluorescence observation mode and is configured with a semiconductor laser that emits excitation light (hereinafter referred to as second laser light) in the near-infrared wavelength band (peak wavelength: approximately 808 nm). The second laser light is excitation light that excites indocyanine green (a fluorescent substance). When excited by the second laser light, the indocyanine green emits fluorescence having a peak wavelength (approximately 835 nm) longer than the peak wavelength of the second laser light.

[0027] In this embodiment 1, the light (normal light and first and second laser light) emitted from the visible light source 31 and the first and second excitation light sources 32, 33 is designed to be in the class shown in Tables 1 and 2 below (laser standard indicating "safety standards for laser products" (e.g., IEC60825-1:2014 or 2007)).

[0028] [Table 1]

[0029] [Table 2]

[0030] Here, Table 1 lists the classes of light emitted from the "tip of the insertion section 2." For example, as shown in Table 1, when normal light and second laser light are emitted simultaneously, the second laser light is designed to be class 1. Also, for example, when first and second laser lights are emitted simultaneously, the first and second laser lights are designed to be class 1. Furthermore, for example, when only the second laser light is emitted, the second laser light is designed to be class 1.

[0031] Table 2 lists the class of light emitted from the "output end of the light guide 4." For example, as shown in Table 2, when normal light and second laser light are emitted simultaneously, the second laser light is designed to be class 3R. For example, when first and second laser lights are emitted simultaneously, the first and second laser lights are designed to be class 3R. Furthermore, for example, when only the second laser light is emitted, the second laser light is designed to be class 3R.

[0032] The first dichroic mirror 34 is a dichroic mirror that transmits the first laser light and reflects the second laser light in the same direction as the traveling direction of the first laser light. The second dichroic mirror 35 is a dichroic mirror that transmits the first and second laser beams and reflects normal light in the same direction as the traveling direction of the first and second laser beams.

[0033] The control unit 36 ​​is realized by a controller such as a CPU or an MPU (Micro Processing Unit) executing various programs stored in a memory 37, and controls the overall operation of the light source device 3. The control unit 36 ​​is not limited to a CPU or an MPU, and may be configured by an integrated circuit such as an ASIC (Application Specific Integrated Circuit) or an FPGA. Then, in accordance with the control signal output from the control device 9, the control unit 36 ​​drives the light source designated by the control device 9 from among the visible light source 31 and the first and second excitation light sources 32, 33. At this time, the control unit 36 ​​executes a specific lighting drive control. Details of the lighting drive control will be explained later in the section "Operation of the control unit."

[0034] The memory 37 stores programs executed by the control unit 36, information necessary for the processing of the control unit 36, and the like.

[0035] [Configuration of the insertion portion side connector and the first light guide side connector] FIG. 3 is a diagram showing the configuration of the insertion portion side connector 21 and the first light guide side connector 41. As shown in FIG. Next, the configurations of the insertion portion side connector 21 and the first light guide side connector 41 will be described with reference to FIG. The insertion portion side connector 21 has an overall substantially cylindrical shape that protrudes in a direction perpendicular to the longitudinal direction of the insertion portion 2 (the vertical direction in FIG. 3). In this insertion portion side connector 21, a flange portion 211 (FIG. 3) having an outer diameter larger than other portions is provided on the outer peripheral surface of the approximately central portion in the protruding direction.

[0036] When the first light guide side connector 41 is connected, the portion of the insertion portion side connector 21 that is distal to the flange portion 211 (hereinafter referred to as the distal portion 212) is inserted into the first light guide side connector 41, and the flange portion 211 abuts against the first light guide side connector 41, as shown in Figure 3.

[0037] Here, as shown in Fig. 3, a first IC (Integrated Circuit) tag 213 is built into the tip portion 212. In the first embodiment, the first IC tag 213 is configured by a known RFID tag. That is, although not specifically shown in the drawings, the first IC tag 213 has an antenna and an IC chip. The IC chip operates using radio waves received via the antenna from a first IC detector 112 (described later) as a power source, and transmits data recorded in the IC chip to the first IC detector 112 via the antenna.

[0038] The first light guide side connector 41 has a cylindrical shape with approximately the same outer diameter as the flange portion 211 . 3, the first light-side guide connector 41 has a second IC tag 411 built in. In the first embodiment, the second IC tag 411 is configured as a known RFID tag, similar to the first IC tag 213. That is, the second IC tag 411 has an antenna and an IC chip, although specific illustrations are omitted. The IC chip operates using radio waves received via the antenna from a second IC detector 113 (described later) as a power source, and transmits data recorded in the IC chip to the second IC detector 113 via the antenna.

[0039] 3 and 4, the light guide 4 has first to fourth one-end contacts 431 to 434 provided on the outer surface of the first light guide connector 41. Similarly, the second light guide connector 42 has first to fourth other-end contacts 441 to 444. The first one-end contact 431 and the first other-end contact 441 are electrically connected by a first light guide wiring 451 that runs through the light guide 4. The second one-end contact 432 and the second other-end contact 442 are electrically connected by a second light guide wiring 452 that runs through the light guide 4. The third one-end contact 433 and the third other-end contact 443 are electrically connected by a third light guide wiring 453 that runs through the light guide 4. Furthermore, the fourth one-end contact 434 and the fourth other-end contact 444 are electrically connected by a fourth light guide-side wiring 454 that runs inside the light guide 4 .

[0040] Here, as shown in FIG. 2, the light source device side connector 30 is provided with first to fourth light source device side contacts 3011 to 3014. The first light source device side contact 3011 is electrically connected to the first other end side contact 441 when the second light guide side connector 42 is connected to the light source device side connector 30. The first light source device side contact 3011 is also electrically connected to the control unit 36 ​​by the first light source device side wiring 3021 (FIG. 2).

[0041] The second light source device side contact 3012 is electrically connected to the second other end side contact 442 when the second light guide side connector 42 is connected to the light source device side connector 30. The second light source device side contact 3012 is also electrically connected to the control unit 36 ​​by the second light source device side wiring 3022 (FIG. 2).

[0042] The third light source device side contact 3013 is electrically connected to the third other end side contact 443 when the second light guide side connector 42 is connected to the light source device side connector 30. The third light source device side contact 3013 is also electrically connected to the control unit 36 ​​by the third light source device side wiring 3023 (FIG. 2).

[0043] The fourth light source device side contact 3014 is electrically connected to the fourth other end side contact 444 when the second light guide side connector 42 is connected to the light source device side connector 30. The fourth light source device side contact 3014 is also electrically connected to the control unit 36 ​​by a fourth light source device side wiring 3024 (FIG. 2).

[0044] [Configuration of detection attachment] FIG. 4 is a diagram showing the configuration of the detection attachment 11. As shown in FIG. Next, the configuration of the detection attachment 11 will be described with reference to FIG. As shown in FIG. 4, the detection attachment 11 includes an attachment body 111 and first and second IC detectors 112 and 113.

[0045] As described above, when the insertion portion-side connector 21 and the first light guide-side connector 41 are connected, the tip portion 212 is inserted into the first light guide-side connector 41 and the flange portion 211 abuts against the first light guide-side connector 41. The flange portion 211 and the first light guide-side connector 41 have an approximately cylindrical overall shape. For ease of explanation, the flange portion 211 and the first light guide-side connector 41 abutting against each other will be referred to as a connection point CN (FIGS. 3 and 4).

[0046] The attachment body 111 is a part attached to the connection point CN. In the first embodiment, the attachment body 111 has a generally cylindrical shape. The attachment body 111 is formed so that the inner diameter dimensions of one end and the other end are smaller than the inner diameter dimensions of the other end, and has a space SP inside that is generally the same as the outer size of the connection point CN. The attachment body 111 is further composed of first and second attachment bodies 1111 and 1112 that are divided into multiple bodies (two bodies in the first embodiment) by a plane including the central axis of the cylindrical shape. These first and second attachment bodies 1111 and 1112 are fixed to each other with fixing screws SC (FIG. 4) in a state where they are combined with each other so that the connection point CN is fitted into the space SP. In this state, since the connection point CN is fitted into the space SP, the insertion portion side connector 21 and the first light guide side connector 41 will not be disconnected from each other. That is, the attachment body 111 has a ring shape that covers the periphery of the connection point CN by combining the first and second attachment bodies 1111 and 1112 with each other.

[0047] The first IC detector 112 is used to detect the connection between the attachment main body 111 and the insertion section 2, and corresponds to the first detection body according to the present disclosure. As shown in FIG. 4 , the first IC detector 112 is built into the first attachment main body 1111 at a position facing the first IC tag 213 when the attachment main body 111 is attached to the connection point CN. The first IC detector 112 is configured, for example, by a loop antenna, and when energized, transmits electromagnetic waves that serve as a power source for the first IC tag 213 through electromagnetic induction, as well as electromagnetic waves that serve as a data transmission command for the first IC tag 213. The first IC detector 112 also receives data transmitted from the first IC tag 213.

[0048] The second IC detector 113 is used to detect the connection between the attachment main body 111 and the light guide 4, and corresponds to the second detection body according to the present disclosure. As shown in FIG. 4 , the second IC detector 113 is built into the first attachment main body 1111 at a position facing the second IC tag 411 when the attachment main body 111 is attached to the connection point CN. The second IC detector 113 is configured, for example, by a loop antenna, and when energized, transmits electromagnetic waves that serve as a power source for the second IC tag 411 through electromagnetic induction, as well as electromagnetic waves that serve as a data transmission command for the second IC tag 411. The second IC detector 113 also receives data transmitted from the second IC tag 411.

[0049] In addition, first to fourth attachment-side contacts 1141 to 1144 are provided on the inner circumferential surface of the attachment main body 111 on the light guide 4 side, as shown in FIG. 4, the first attachment side contact 1141 is provided on the first attachment body 1111. When the attachment body 111 is attached to the connection point CN, the first attachment side contact 1141 is electrically connected to the first one-end side contact 431. The first attachment side contact 1141 is also electrically connected to the first IC detector 112 by a first attachment side wiring 1151 (FIG. 4) that runs inside the first attachment body 1111.

[0050] As shown in Fig. 4, the second attachment side contact 1142 is provided on the first attachment body 1111. When the attachment body 111 is attached to the connection location CN, the second attachment side contact 1142 is electrically connected to the second one-end side contact 432. The second attachment side contact 1142 is also electrically connected to the second IC detector 113 by a second attachment side wiring 1152 (Fig. 4) that runs inside the first attachment body 1111.

[0051] 4, the third attachment side contact 1143 is provided on the second attachment body 1112. This third attachment side contact 1143 is electrically connected to the third one end side contact 433 when the attachment body 111 is attached to the connection location CN. 4, the fourth attachment side contact 1144 is provided on the second attachment body 1112. This fourth attachment side contact 1144 is electrically connected to the fourth one end side contact 434 when the attachment body 111 is attached to the connection location CN. The third and fourth attachment-side contacts 1143, 1144 are electrically connected to each other by an assembly check wiring 1153 (FIG. 4) that runs inside the second attachment body 1112.

[0052] [Operation of the control unit] Next, the lighting drive control executed by the control unit 36 ​​will be described. FIG. 5 is a flowchart showing the lighting drive control executed by the control unit 36. First, the control unit 36 ​​constantly monitors whether the detection unit (not shown) has detected the connection of the light guide 4 (second light guide side connector 42) to the light source device 3 (light source device side connector 30) (step S1). If it is determined that the connection of the light guide 4 to the light source device 3 has been detected (step S1: Yes), the control unit 36 ​​executes the following determination process to determine whether the light guide 4 and the insertion portion 2 are properly connected (step S2). Here, the determination process executed in step S2 is made up of first to third determination processes.

[0053] The first determination process is as follows. The control unit 36 ​​determines whether the path from the third light source device side wiring 3023 to the third light source device side contact 3013 to the third other end contact 443 to the third light guide side wiring 453 to the third one end contact 433 to the third attachment side contact 1143 to the assembly confirmation wiring 1153 to the fourth attachment side contact 1144 to the fourth one end contact 434 to the fourth light guide side wiring 454 to the fourth other end contact 444 to the fourth light source device side contact 3014 to the fourth light source device side wiring 3024 (hereinafter referred to as the assembly confirmation path) is conductive or not.

[0054] Here, if the first and second attachment bodies 1111, 1112 are not assembled, that is, if the attachment body 111 is not attached to the connection point CN, the assembly confirmation path described above will not be conductive. On the other hand, when the first and second attachment bodies 1111, 1112 are assembled, that is, when the attachment body 111 is attached to the connection point CN, the assembly confirmation path described above is conductive. If the assembly confirmation path is not conductive, the control unit 36 ​​determines "No" in the first determination process. On the other hand, if the assembly confirmation path is conductive, the control unit 36 ​​determines "Yes" in the first determination process.

[0055] The second determination process is as follows. The control unit 36 ​​passes current through a path (hereinafter referred to as a first path) from the first light source device side wiring 3021 to the first light source device side contact 3011 to the first other end side contact 441 to the first light guide side wiring 451 to the first one end side contact 431 to the first attachment side contact 1141 to the first attachment side wiring 1151 to the first IC detector 112. When current is passed through the first IC detector 112, the first IC detector 112 receives data from the first IC tag 213 in a contactless manner by wireless communication using electromagnetic induction, and outputs the data to the control unit 36 ​​by following the first path in the reverse direction.

[0056] Here, if the insertion portion side connector 21 is not connected to the first light guide side connector 41 and the first IC tag 213 does not exist in the space SP, the control unit 36 ​​cannot acquire the data of the first IC tag 213. On the other hand, when the insertion portion side connector 21 is connected to the first light guide side connector 41 and a first IC tag 213 is present in the space SP, the control unit 36 ​​can acquire data of the first IC tag 213. Then, if the control unit 36 ​​is unable to acquire the data of the first IC tag 213, the control unit 36 ​​determines "No" in the second determination process. On the other hand, if the control unit 36 ​​is able to acquire the data of the first IC tag 213, the control unit 36 ​​determines "Yes" in the second determination process.

[0057] The third determination process is as follows. The control unit 36 ​​passes current through a path (hereinafter referred to as the second path) of the second light source device side wiring 3022-the second light source device side contact 3012-the second other end side contact 442-the second light guide side wiring 452-the second one end side contact 432-the second attachment side contact 1142-the second attachment side wiring 1152-the second IC detector 113 to the second IC detector 113. When the current is passed through the second IC detector 113, the second IC detector 113 receives data from the second IC tag 411 in a contactless manner by wireless communication using electromagnetic induction, and outputs the data to the control unit 36 ​​by following the second path in the reverse direction.

[0058] Here, if the attachment main body 111 is not attached to the connection point CN, the control unit 36 ​​cannot acquire the data of the second IC tag 411. On the other hand, when the attachment main body 111 is attached to the connection point CN, the control unit 36 ​​can acquire the data of the second IC tag 411. Then, the control unit 36 ​​determines "No" in the third determination process when it is unable to acquire the data of the second IC tag 411. On the other hand, the control unit 36 ​​determines "Yes" in the third determination process when it is able to acquire the data of the second IC tag 411.

[0059] As a result of the judgment process (step S2), if any of the first to third judgment processes is judged as "No", it is judged that the light guide 4 and the insertion section 2 are not properly connected (step S3: No), and the control section 36 returns to step S2.

[0060] On the other hand, if the result of the determination process (step S2) is "Yes" in all of the first to third determination processes, it is determined that the light guide 4 and the insertion section 2 are properly connected (step S3: Yes), and the control unit 36 ​​starts the operation of the light source designated by the control device 9 from among the visible light source 31 and the first and second excitation light sources 32 and 33 in accordance with the control signal output from the control device 9 (step S4). As a result, light (at least one of normal light and first and second laser light) is output from the light source.

[0061] After step S4, the control unit 36 ​​executes the same determination process as in step S2 (step S5). Here, the above-mentioned determination process (steps S2 and S5) is performed at a cycle shorter than the time standard corresponding to the class defined in the laser standard indicating the "Safety Standards for Laser Products" for the laser light (first and second laser light) emitted from the emission end of the light guide 4. Specifically, in the first embodiment, as shown in Table 2, the class of the laser light emitted from the emission end of the light guide 4 is "Class 3R." The time standard corresponding to this "Class 3R" is 0.25 seconds. Therefore, the control unit 36 ​​performs the determination process (steps S2 and S5) at a cycle of 0.2 seconds, which is shorter than 0.25 seconds.

[0062] As a result of the judgment process (step S5), if the first to third judgment processes are all judged as "Yes," the control unit 36 ​​judges that the light guide 4 and the insertion section 2 are properly connected (step S6: Yes), and returns to step S5.

[0063] On the other hand, if the result of the determination process (step S5) is "No" in any of the first to third determination processes, it is determined that the light guide 4 and the insertion section 2 are not properly connected (step S6: No), and the control unit 36 ​​stops the operation of the light source that started operating in step S4 (step S7), thereby stopping the output of light from the light source (at least one of the normal light and the first and second laser light).

[0064] According to the first embodiment described above, the following effects are achieved. In the medical endoscope system 1 according to the first embodiment, the detection attachment 11 includes an attachment body 111 attached to the connection point CN, a first IC detector 112 for detecting the connection between the attachment body 111 and the insertion section 2, and a second IC detector 113 for detecting the connection between the attachment body 111 and the light guide 4. Furthermore, the control unit 36 ​​uses the detection attachment 11 to detect the connection state between the light guide 4 and the insertion section 2, and controls the outputs of the first and second laser beams from the first and second excitation light sources 32 and 33 based on the detection result.

[0065] Therefore, if the light guide 4 and the insertion portion 2 are not properly connected, for example, if the light guide 4 becomes detached from the insertion portion 2, the output of the first and second laser beams can be stopped. That is, as a result of this configuration, the laser beam emitted from the tip of the insertion portion 2 can be designed to satisfy the requirements stipulated in the laser standard indicating the "Safety Standards for Laser Products." Furthermore, since the first and second laser beams emitted from the emission end of the light guide 4 can have a high light intensity such as Class 3R, the light intensity of the first and second laser beams emitted from the tip of the insertion portion 2 can be ensured. Therefore, the light source device 3 according to the present embodiment can ensure the amount of laser light emitted to the subject while ensuring safety.

[0066] Furthermore, in the medical endoscope system 1 according to the first embodiment, the attachment main body 111 is divided into a plurality of bodies, which are combined with each other to form a ring shape that covers the periphery of the connection point CN. Therefore, by attaching the attachment main body 111 to the connection point CN, it is possible to design a structure that prevents the insertion portion side connector 21 and the first light guide side connector 41 from being disconnected.

[0067] Furthermore, the medical endoscope system 1 according to the first embodiment is configured with IC detectors 112 and 113 that read data from IC tags 213 and 411 as the first and second detection objects according to the present disclosure. Therefore, the connection between the attachment body 111 and the insertion section 2 and the connection between the attachment body 111 and the light guide 4 can be easily detected.

[0068] Furthermore, in the medical endoscope system 1 according to this embodiment, the judgment process (steps S2, S5) is performed at a period shorter than the time standard corresponding to the class defined in the laser standard indicating the "safety standards for laser products" for the laser light (first and second laser light) emitted from the emission end of the light guide 4. Therefore, even if the light guide 4 becomes detached from the insertion portion 2, it is possible to detect that the light guide 4 has become detached from the insertion portion 2 and stop the output of the first and second laser beams before the first and second laser beams are emitted from the emission end of the light guide 4 for the time reference. Therefore, safety can be sufficiently ensured.

[0069] (Embodiment 2) Next, the second embodiment will be described. In the following, the same components as those in the first embodiment are denoted by the same reference numerals, and detailed description thereof will be omitted or simplified. In the medical endoscope system 1 according to the first embodiment described above, the detection attachment 11 is electrically connected to the control unit 36 ​​by wire. In contrast, in the medical endoscope system 1 according to the second embodiment, the detection attachment 11 is connected to the control unit 36 ​​so as to be able to communicate wirelessly with the detection attachment 11. That is, the medical endoscope system 1 according to the second embodiment does not include the first to fourth one-end contacts 431 to 434, the first to fourth other-end contacts 441 to 444, the first to fourth light guide wirings 451 to 454, the first to fourth light source device contacts 3011 to 3014, and the first to fourth light source device wirings 3021 to 3024 described in the first embodiment.

[0070] FIG. 6 is a diagram showing the configuration of the detection attachment 11 according to the second embodiment. First, the configuration of the detection attachment 11 according to the second embodiment will be described. As shown in FIG. 6, the detection attachment 11 according to the second embodiment includes an attachment main body 111 and first and second IC detectors 112 and 113 as described in the first embodiment above, as well as an assembly confirmation IC tag 114, an assembly confirmation IC detector 115, a communication unit 116, and first and second batteries 117 and 118.

[0071] As shown in Fig. 6, the assembly confirmation IC tag 114 is built into the first attachment body 1111. In the second embodiment, the assembly confirmation IC tag 114 is configured as a known RFID tag. That is, although not specifically shown, the assembly confirmation IC tag 114 has an antenna and an IC chip. The IC chip operates using radio waves received from the assembly confirmation IC detector 115 via the antenna as a power source, and transmits data recorded in the IC chip to the assembly confirmation IC detector 115 via the antenna.

[0072] 6, the assembly confirmation IC detector 115 is built into the second attachment body 1112 at a position facing the assembly confirmation IC tag 114 when the attachment body 111 is assembled. The assembly confirmation IC detector 115 is configured, for example, as a loop antenna, and when energized, transmits electromagnetic waves that serve as a power source for the assembly confirmation IC tag 114 through electromagnetic induction, as well as electromagnetic waves that serve as a transmission command for data from the assembly confirmation IC tag 114. The assembly confirmation IC detector 115 also receives data transmitted from the assembly confirmation IC tag 114.

[0073] The communication unit 116 is connected to the light source device 3 according to the second embodiment so as to be able to wirelessly transmit and receive data therebetween. 6, the first battery 117 is built into the first attachment body 1111. The first battery 117 supplies power to the first and second IC detectors 112 and 113 under the control of the control unit 36. 6, the second battery 118 is built into the second attachment body 1112. The second battery 118 supplies power to the assembly confirmation IC detector 115 and the communication unit 116 under the control of the control unit 36.

[0074] FIG. 7 is a block diagram showing the configuration of a light source device 3 according to the second embodiment. As shown in FIG. 7, in the light source device 3 according to the second embodiment, a communication unit 38 is added to the light source device 3 described in the first embodiment above. The communication unit 38 is connected to the communication unit 116 in the detection attachment 11 so as to be able to wirelessly send and receive data therebetween.

[0075] Then, the control unit 36 ​​according to the second embodiment executes the following determination processes (first to third determination processes) in steps S2 and S5 described in the first embodiment above. The first determination process is as follows. The control unit 36 ​​transmits a control signal to the second battery 118 via the communication units 38 and 116. As a result, the second battery 118 energizes the assembly confirmation IC detector 115. Then, when energized, the assembly confirmation IC detector 115 receives data from the assembly confirmation IC tag 114 in a contactless manner via wireless communication using electromagnetic induction. The data is then transmitted to the control unit 36 ​​via the communication units 116 and 38.

[0076] Here, if the first and second attachment bodies 1111, 1112 are not assembled, i.e., if the attachment body 111 is not attached to the connection point CN, the control unit 36 ​​cannot receive the data of the assembly confirmation IC tag 114. On the other hand, when the first and second attachment bodies 1111, 1112 are assembled, that is, when the attachment body 111 is attached to the connection point CN, the control unit 36 ​​can acquire the data of the assembly confirmation IC tag 114. If the control unit 36 ​​is unable to acquire the data from the assembly confirmation IC tag 114, the control unit 36 ​​determines "No" in the first determination process. On the other hand, if the control unit 36 ​​is able to acquire the data from the assembly confirmation IC tag 114, the control unit 36 ​​determines "Yes" in the first determination process.

[0077] The second determination process is as follows. The control unit 36 ​​transmits a control signal to the first battery 117 via the communication units 38 and 116. As a result, the first battery 117 energizes the first IC detector 112. Then, the first IC detector 112 receives data from the first IC tag 213 in a contactless manner by wireless communication using electromagnetic induction, and the data is transmitted to the control unit 36 ​​via the communication units 116 and 38.

[0078] Here, if the insertion portion side connector 21 is not connected to the first light guide side connector 41 and the first IC tag 213 does not exist in the space SP, the control unit 36 ​​cannot acquire the data of the first IC tag 213. On the other hand, when the insertion portion side connector 21 is connected to the first light guide side connector 41 and a first IC tag 213 is present in the space SP, the control unit 36 ​​can acquire data of the first IC tag 213. Then, if the control unit 36 ​​is unable to acquire the data of the first IC tag 213, the control unit 36 ​​determines "No" in the second determination process. On the other hand, if the control unit 36 ​​is able to acquire the data of the first IC tag 213, the control unit 36 ​​determines "Yes" in the second determination process.

[0079] The third determination process is as follows. The control unit 36 ​​transmits a control signal to the first battery 117 via the communication units 38 and 116. As a result, the first battery 117 energizes the second IC detector 113. Then, the second IC detector 113 receives data from the second IC tag 411 in a contactless manner by wireless communication using electromagnetic induction. The data is then transmitted to the control unit 36 ​​via the communication units 116 and 38.

[0080] Here, if the attachment main body 111 is not attached to the connection point CN, the control unit 36 ​​cannot acquire the data of the second IC tag 411. On the other hand, when the attachment main body 111 is attached to the connection point CN, the control unit 36 ​​can acquire the data of the second IC tag 411. Then, the control unit 36 ​​determines "No" in the third determination process when it is unable to acquire the data of the second IC tag 411. On the other hand, the control unit 36 ​​determines "Yes" in the third determination process when it is able to acquire the data of the second IC tag 411.

[0081] Even when configured as in the second embodiment described above, the same effects as those of the first embodiment can be achieved.

[0082] (Other embodiments) Although the embodiments for carrying out the present disclosure have been described above, the present disclosure should not be limited to only the first and second embodiments described above. In the above-described first and second embodiments, the first IC tag 213 is provided on the insertion portion side connector 21, the second IC tag 411 is provided on the first light guide side connector 41, and the first and second IC detectors 112, 113 are provided on the attachment main body 111. However, this is not limitative. For example, by devising a method for supplying power to the first and second IC detectors 112, 113, the first and second IC detectors 112, 113 may be provided on the insertion portion side connector 21 and the first light guide side connector 41, respectively, and the first and second IC tags 213, 411 may be provided on the attachment main body 111.

[0083] In the first and second embodiments described above, a combination of an IC tag and an IC detector is used as a configuration for detecting the connection between the attachment main body 111 and the insertion section 2 and the light guide 4, respectively. However, this is not limiting. A combination of a magnet and a Hall element may also be used as the configuration. In this case, either the magnet or the Hall element corresponds to the first or second detection body according to the present disclosure.

[0084] In the above-described first and second embodiments, the laser light source device according to the present disclosure is provided with two laser light sources, the first and second excitation light sources 32 and 33. However, this is not limited to this. The number of laser light source devices according to the present disclosure is not limited to two, and may be one, or three or more.

[0085] In the above-described first and second embodiments, in step S7, the control unit 36 ​​stops the operation of the light source that started operating in step S4, but this is not limited to this, and the light output may be reduced to an amount of light that ensures safety without stopping it. In the above-described first and second embodiments, when only normal light is emitted from visible light source 31, the normal light is different from laser light, for which safety considerations must be taken into account, and therefore the above-described lighting drive control does not need to be executed. That is, after determining that connection of light guide 4 to light source device 3 has been detected (step S1: Yes), control unit 36 ​​may start operation of visible light source 31 in step S4 without executing the determination process (step S2) or the like. In addition, in the above-described first and second embodiments, when normal light and at least one of the first and second laser lights are emitted simultaneously, in step S7, the output of only that laser light may be stopped.

[0086] In the above-described first and second embodiments, when the determination in step S3 is "No" or when the determination in step S6 is "No," the control unit 36 ​​may cause an external notification unit to issue warning information indicating that the light guide 4 and the insertion unit 2 are not properly connected. For example, the control unit 36 ​​causes the display device 7 serving as the notification unit to display the warning information via the control device 9. The notification unit is not limited to the display device 7, and may be another display device or a speaker that outputs the warning information by voice. By recognizing the warning information, a user such as a doctor can recognize that the light guide 4 and the insertion portion 2 are not properly connected, thereby improving convenience.

[0087] Furthermore, in the above-described embodiment, the first to third determination processes are executed as the determination process (steps S2 and S5), but this is not limiting, and only the second and third determination processes may be executed. That is, in steps S3 and S6, if the result of the determination process (steps S2 and S5) is "No" in either the second or third determination process, the control unit 36 ​​determines that the light guide 4 and the insertion portion 2 are not properly connected (steps S3 and S6: No), and if the result of both the second and third determination processes is "Yes," the control unit 36 ​​determines that the light guide 4 and the insertion portion 2 are properly connected (steps S3 and S6: Yes).

[0088] The following configurations also fall within the technical scope of the present disclosure. (1) A medical detection attachment comprising: an attachment body attached to a connection point between a light guide that guides laser light and a rigid endoscope that irradiates the laser light via the light guide onto a subject; a first detector provided on the attachment body for detecting the connection between the attachment body and the rigid endoscope; and a second detector provided on the attachment body for detecting the connection between the attachment body and the light guide. (2) The medical detection attachment described in (1) above, wherein the attachment body is divided into multiple parts that are combined with each other to form a ring shape that covers the periphery of the connection point. (3) The medical detection attachment described in (1) or (2) above, wherein the rigid endoscope is provided with either a first IC tag or a first IC detector for contactlessly reading data from the first IC tag through wireless communication using electromagnetic induction between the rigid endoscope and the first IC tag, and the first detection body is the other of the first IC tag and the first IC detector, and the light guide is provided with either a second IC tag or a second IC detector for contactlessly reading data from the second IC tag through wireless communication using electromagnetic induction between the rigid endoscope and the second IC tag, and the second detection body is the other of the second IC tag and the second IC detector. (4) A medical endoscope system comprising: a laser source device that emits laser light; a light guide that guides the laser light; a rigid scope that irradiates a subject with the laser light that passes through the light guide; a medical detection attachment that detects the connection state between the light guide and the rigid scope; and a light source control device that uses the medical detection attachment to detect the connection state between the light guide and the rigid scope and controls the output of the laser light in the laser source device based on the detection result, wherein the medical detection attachment comprises: an attachment body that is attached to the connection point between the light guide and the rigid scope; a first detector that is provided on the attachment body for detecting the connection between the attachment body and the rigid scope; and a second detector that is provided on the attachment body for detecting the connection between the attachment body and the light guide. (5) The medical endoscope system described in (4) above, wherein the rigid scope is provided with a first IC tag, the first detecting body is a first IC detector for contactlessly reading data from the first IC tag through wireless communication using electromagnetic induction between the rigid scope and the first IC tag, the light guide is provided with a second IC tag, and the second detecting body is a second IC detector for contactlessly reading data from the second IC tag through wireless communication using electromagnetic induction between the rigid scope and the first IC tag, and the light source control device is electrically connected to the first IC detector and the second IC detector, respectively, drives the first IC detector and the second IC detector, and detects the connection between the attachment body and the rigid scope and the light guide by reading the data from the first IC tag and the data from the second IC tag, respectively. (6) The medical endoscope system according to (4), wherein the rigid scope is provided with a first IC tag, the first detecting body is a first IC detector for contactlessly reading data from the first IC tag through wireless communication using electromagnetic induction between the rigid scope and the first IC tag, the light guide is provided with a second IC tag, and the second detecting body is a second IC detector for contactlessly reading data from the second IC tag through wireless communication using electromagnetic induction between the rigid scope and the first IC tag, the attachment body is further provided with a communication unit for wirelessly transmitting data from the first IC tag read by the first IC detector and data from the second IC detector, and a battery for supplying power to the first IC detector, the second IC detector, and the communication unit, and the light source control device detects the connection between the attachment body and the rigid scope and the light guide based on the data from the first IC tag and the data from the second IC tag wirelessly transmitted from the communication unit. (7) A medical endoscope system according to any one of (4) to (6), wherein the light source control device detects the connection status between the light guide and the rigid endoscope using the medical detection attachment at a period shorter than a time standard corresponding to a class specified in a laser standard indicating safety standards for laser products for the laser light emitted from the first light source and then emitted from the light guide. [Explanation of symbols]

[0089] 1 Medical endoscopy system 2 Insertion section 3 Light source device 4 Light Guide 5 Camera Head 6. First Transmission Cable 7 Display device 8 Second Transmission Cable 9 Control Device 10 Third Transmission Cable 11 Detection attachment 21 Insertion section connector 22 Eyepiece 30 Light source device side connector 31 Visible light source 32 First excitation light source 33 Second excitation light source 34 First dichroic mirror 35 Second dichroic mirror 36 Control Unit 37 Memory 38 Communications Department 41 First light guide side connector 42 Second light guide side connector 111 Attachment body 112 First IC detector 113 Second IC detector 114 Assembly confirmation IC tag 115 IC detector for assembly confirmation 116 Communications Department 117 First Battery 118 Second Battery 211 Flange 212 Tip 213 The first IC tag 411 Second IC tag 431 First one-end contact 432 Second one-end contact 433 Third one-end contact 434 Fourth one-end contact 441 First other end contact 442 Second other end contact 443 Third other end contact 444 Fourth other end contact 451 First light guide side wiring 452 Second light guide side wiring 453 Third light guide side wiring 454 4th light guide side wiring 1111 First attachment body 1112 Second attachment body 1141 First attachment side contact 1142 Second attachment side contact 1143 Third attachment side contact 1144 Fourth attachment side contact 1151 First attachment side wiring 1152 Second attachment side wiring 1153 Assembly confirmation wiring 3011 First light source device side contact 3012 Second light source device side contact 3013 Third light source side contact 3014 Fourth light source side contact 3021 First light source device side wiring 3022 Second light source device side wiring 3023 Third light source device side wiring 3024 Fourth light source device side wiring CN connection point SC fixing screw SP space

Claims

1. an attachment body attached to a connection point between a light guide that guides laser light and a rigid endoscope that irradiates a subject with the laser light that passes through the light guide; a first detector provided on the attachment body for detecting connection between the attachment body and the rigid endoscope; A medical detection attachment comprising a second detection body provided on the attachment body for detecting connection between the attachment body and the light guide.

2. The attachment body includes: The medical detection attachment according to claim 1 , wherein the attachment is divided into a plurality of parts, which are combined with each other to form a ring shape that covers the periphery of the connection point.

3. The rigid endoscope includes: a first IC tag or a first IC detector for contactlessly reading data of the first IC tag by wireless communication using electromagnetic induction between the first IC tag and the first IC tag; The first sensing element is the other of the first IC tag and the first IC detector, The light guide includes: a second IC tag or a second IC detector for contactlessly reading data of the second IC tag by wireless communication using electromagnetic induction between the second IC tag and the second IC tag; The second sensing element is 2. The medical sensing attachment of claim 1, wherein the second IC tag is the other of the second IC detector.

4. a laser light source device that emits laser light; a light guide that guides the laser light; a rigid endoscope that irradiates the subject with the laser light via the light guide; a medical detection attachment for detecting a connection state between the light guide and the rigid endoscope; a light source control device that detects a connection state between the light guide and the rigid endoscope using the medical detection attachment and controls an output of the laser light from the laser light source device based on the detection result; The medical sensing attachment comprises: an attachment body attached to a connection point between the light guide and the rigid endoscope; a first detector provided on the attachment body for detecting connection between the attachment body and the rigid endoscope; a second detection body provided on the attachment body for detecting connection between the attachment body and the light guide;

5. The rigid endoscope includes: a first IC tag is provided; The first sensing element is a first IC detector for reading data of the first IC tag in a non-contact manner through wireless communication using electromagnetic induction between the first IC tag and the first IC tag; The light guide includes: a second IC tag is provided; The second sensing element is a second IC detector for reading data of the second IC tag in a non-contact manner through wireless communication using electromagnetic induction between the second IC tag and the second IC tag; The light source control device includes: The medical endoscope system according to claim 4, wherein the attachment body is electrically connected to the first IC detector and the second IC detector, respectively, drives the first IC detector and the second IC detector, respectively, and detects the connection between the attachment body and the rigid scope and the light guide by reading the data of the first IC tag and the data of the second IC tag, respectively.

6. The rigid endoscope includes: a first IC tag is provided; The first sensing element is a first IC detector for reading data of the first IC tag in a non-contact manner through wireless communication using electromagnetic induction between the first IC tag and the first IC tag; The light guide includes: a second IC tag is provided; The second sensing element is a second IC detector for reading data of the second IC tag in a non-contact manner through wireless communication using electromagnetic induction between the second IC tag and the second IC tag; The attachment body includes: a communication unit that wirelessly transmits data of the first IC tag read by the first IC detector and data of the second IC tag read by the second IC detector; a battery that supplies power to the first IC detector, the second IC detector, and the communication unit is further provided; The light source control device includes: The medical endoscope system according to claim 4, wherein the connection between the attachment body and the rigid endoscope and the light guide is detected based on the data of the first IC tag and the data of the second IC tag wirelessly transmitted from the communication unit.

7. The light source control device includes:

5. The medical endoscope system according to claim 4, wherein the connection state between the light guide and the rigid endoscope is detected using the medical detection attachment at a period shorter than a time standard corresponding to a class defined in a laser standard indicating safety standards for laser products for the laser light emitted from the light guide after being emitted from the laser light source device.

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