Endoscope with removable sensor

By incorporating a detachable sensor on the endoscope that provides precise position and orientation data, the challenge of accurately determining the location of endoscopic areas is addressed, improving the accuracy and effectiveness of endoscopic examinations.

JP7675278B2Active Publication Date: 2025-05-12PENTAX MEDICAL CONTRACT CO LTD
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Patent Information

Application Number
JP2024504577
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-08-31
Filing Date
2022-08-31
Publication Date
2025-05-12
Estimated Expiration
2042-08-31

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Abstract

The present disclosure relates to an endoscope (10) having a tube (200) for insertion into a patient, the tube (200) having a distal end (300) distal to the tube (200), and at least one sensor (28). The sensor (28) is removably attachable to the endoscope (10).
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Description

[Technical field]

[0001] The present disclosure relates to an endoscope having a detachable sensor. [Background technology]

[0002] Such endoscopes can include, for example, ultrasound endoscopes. Ultrasound endoscopes have, for example, an ultrasound sensor at a distal end (or section) of the ultrasound endoscope. The ultrasound sensor generates an ultrasound image of a region or area of ​​the patient being examined. The endoscope can have a position sensor to determine the position of a particular portion of the endoscope. Summary of the Invention [Problem to be solved by the invention]

[0003] It is an object of the present disclosure to reliably determine the exact location, in space and relative to the patient, of a particular endoscope portion or area to be examined. [Means for solving the problem]

[0004] This object is achieved by an endoscope according to claim 1.

[0005] Examples are detailed in the dependent claims.

[0006] The endoscope has a tube for insertion into a patient, distal to which is a distal end, and a sensor that is attachable to the exterior of the endoscope and that is configured to be detached from the endoscope again.

[0007] A sensor removably attached to an endoscope can retrieve (interrogate or sample) desired information retrieved by the sensor regarding the portion of the endoscope to which the sensor is temporarily attached and provide this information to an operator.

[0008] If the sensor is designed as a position determining sensor (position detection sensor), it can retrieve information regarding the position and orientation of the part of the endoscope to which it is temporarily attached and provide this information to the operator.

[0009] The sensor may be removably attachable to the distal end of the endoscope and may be connected to a signal transmission cable configured to be connected to a signal processor at an end of the signal transmission cable opposite the sensor, such that the sensor may be used to reliably determine information regarding the position and orientation of the distal end of the endoscope in space and relative to the patient.

[0010] Alternatively, the endoscope may be provided without a signal transmission cable, and the sensor signal from the sensor may be transmitted wirelessly by an appropriate device.

[0011] The signal transmission cable may be removably attachable to a tube of the endoscope that connects the distal end of the endoscope to a proximal gripping unit (handle unit) of the endoscope, and a processor connector (processor terminal) configured to be connected to the processor is provided proximal to the proximal gripping unit, so that the signal transmission cable does not interfere with handling of the endoscope.

[0012] The sensor may be removably attachable to the endoscope by a snap-in connection (clip-in / on connection), a removable (releasable) adhesive connection, or a mechanical plug-in connection, allowing the sensor to be attached to the endoscope and easily removed again.

[0013] The signal transmission cable may be removably attachable to the tube by a snap-in connection, a removable adhesive connection or a mechanical plug-in connection, so that the signal transmission cable can be attached to the tube and easily removed again.

[0014] The tube section can be removably fitted with a slip-on sheath (slip-on cover / coating), in which the signal transmission cable is integrated. Such a slip-on sheath, which serves as the signal transmission cable, can have a surface that facilitates and does not impede the insertion of the tube section. Furthermore, if a particularly thin slip-on sheath is selected, the diameter of the tube section only increases slightly when the slip-on sheath is placed on the tube section. The appearance of the tube section when the slip-on sheath is attached corresponds to the appearance of a conventional tube section. In addition, the use of a slip-on sheath ensures in a particularly advantageous manner that the signal transmission cable is not displaced (does not move) on the tube section. In this way, the signal transmission cable is placed on the tube section in a manner that is fixed with respect to rotation and position.

[0015] The distal end of the endoscope may have (include) an ultrasound sensor, which may be removably mountable on the endoscope with respect to the ultrasound sensor in such a way that relative position information between the sensor and the ultrasound sensor is known or determinable (identifiable). This allows the precise position of the ultrasound sensor in space and relative to the patient to be reliably determined. The sensor may be removably mounted in any suitable location on the endoscope.

[0016] The sensor may be removably mountable to the distal end of the endoscope adjacent the ultrasound sensor such that the relative positions of the removably mounted sensor and the ultrasound sensor can be easily determined.

[0017] The sensor can be a Hall effect sensor (Hall sensor) or any other positioning sensor, such as a so-called EM sensor. For example, a passive sensor can be used, which receives electromagnetic or other radiation, for example from an active sensor (which outputs radiation or radiation permanently or when switched on) that can be removably attached to the endoscope. Thereby, positioning can be realized by the sensor in a technically simple and cost-effective manner.

[0018] In addition, in a combination (set) of an endoscope having a removably attachable sensor, a signal processing device, and a processor, the signal processing device can be separate from the processor (control device), so that information determined by the removably attachable sensor can be handled separately from information processed by the processor.

[0019] Also, in the combination of an endoscope having a removably attachable sensor, a signal processor, and a processor, the signal processor can be a combined unit with the processor, the signal processor can be integrated into the processor, or it can be plugged into the processor. [Brief description of the drawings]

[0020] [Figure 1] FIG. 1 shows an example of an endoscope to which a sensor is removably attached. [Diagram 2] FIG. 13 illustrates a spring clip that removably attaches the sensor's cable to the endoscope. [Diagram 3] 3 is a perspective view of the spring clip of FIG. 2 attached to a tube portion (insertion portion) of an endoscope. [Figure 4] FIG. 1 is a perspective view of a distal portion of an endoscope having a sensor removably attached thereto. [Diagram 5] FIG. 5 is a perspective view of the distal portion of the endoscope of FIG. 4, with the location of the ultrasound image symbolically indicated. [Figure 6]5 illustrates a perspective view of the distal portion of the endoscope of FIG. 4 with the location of the ultrasound image symbolically indicated and a biopsy tool being advanced forward through the working channel. [Figure 7] FIG. 1 illustrates a distal portion of an endoscope with an attachable sensor detached from the endoscope. [Figure 8] FIG. 8 shows a distal portion of the endoscope of FIG. 7 with a sensor attached to the endoscope. [Figure 9] FIG. 13 shows a second example of a ring element for releasably fastening a cable of a sensor to an endoscope. [Figure 10] 10 is a perspective view of a second example of the ring element of FIG. 9 attached to a tube of an endoscope. [Figure 11] FIG. 11 is a perspective view of an open ring element according to a second example. [Figure 12] FIG. 13 is a perspective view of an open ring element when placed on a tube of an endoscope. [Figure 13] FIG. 13 is a diagram showing a third example of an endoscope equipped with a sensor. [Figure 14] FIG. 13 is a diagram showing a fourth example of an endoscope equipped with a sensor. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0021] Examples of the present disclosure are set forth below.

[0022] First Example First, a first example will be described with reference to FIGS.

[0023] General structure 1 shows a perspective view of an endoscope 10. In a first example, the endoscope 10 is designed as an ultrasound endoscope.

[0024] The endoscope 10 has a gripping unit 100 as a control body of the endoscope 10. The gripping unit 100 has an optional control knob 110 for, for example, turning the distal portion 300. The gripping unit 100 also has an insertion portion 120 for, for example, a working channel formed therein. The working channel extends to a distal portion 300 of the insertion portion of the endoscope 10 embodied as a tube portion 200. The tube portion 200 extends from the distal side of the gripping member 100 and is used for insertion into a patient for the purpose of examination, treatment, etc. Thus, the tube portion 200 is connected to the distal portion 300 at its distal side. When the distal portion 300 is turned, the distal portion 300 moves relative to the tube portion 200 (relative to the distal end of the tube portion 200).

[0025] An endoscope cable 400 is connected to the gripping unit 100 on the proximal side thereof. The endoscope cable 400 is used to supply power to the gripping unit 100 and to pass data between the gripping unit 100 and a processor 801 (schematically shown in FIG. 1). A processor connector 500 is provided at the proximal end of the endoscope cable 400. Thus, the endoscope cable 400 extends from the gripping unit 100 to the processor connector 500. The processor connector 500 is used to form a connection with (connect to) the processor 801. The processor 801 evaluates data obtained by the endoscope 10 and displays it on a display (not shown).

[0026] Distal portion 300 has an ultrasonic head or ultrasonic sensor 30. See, for example, Figure 5. Distal portion 300 also includes a working channel outlet 320, as shown in Figures 5, 6 and 7. Otherwise, distal portion 300 may have any other known features.

[0027] The ultrasonic sensor 30 has a signal output window 31. Through the signal output window 31, the ultrasonic sensor 30 can emit / receive ultrasonic signals within a predefined detection range, shown as an angular range 36. An angle bisector 35 of the angular range 36 indicates the alignment of the ultrasonic sensor 30. See Figures 5 and 6. The received signal is sent to a processor 801 via signal lines running within the endoscope 10. The ultrasonic signal is evaluated in a known manner.

[0028] 6, an instrument 321 can be advanced in known manner from the working channel exit 320 to the area sampled by the ultrasonic sensor 30 in the angular range 36. The instrument 321 can be a biopsy probe for tissue examination.

[0029] The sensor 28 can be used as a positioning sensor coupled to the distal portion 300 of the ultrasound endoscope so that the exact position of the area to be examined can be displayed in space and in relation to the patient.

[0030] In this example, the sensor 28 is removably attached to the endoscope 10 as part of the sensor assembly 20. In this example, the sensor 28 is removably attached to the distal portion 300 of the endoscope 10. More precisely, the sensor 28 is disposed in a distal connection element 27 forming the distal end of the sensor assembly 20. For example, the sensor 28 is embedded in the distal connection element 27. The distal connection element 27 can be made of plastic. The distal connection element 27 is removably attachable to a predetermined docking portion 37 of the distal portion 300. In other words, the distal connection element 27 is removably attachable to a predetermined docking portion 37 of the ultrasonic sensor 30.

[0031] The docking portion 37 can be formed on the outer periphery of the distal portion 300. The docking portion 37 can have positioning devices such as protrusions / protrusions and recesses or snap-in hooks, snap-in lugs, etc. that allow the docking portion 37 to be accurately positioned relative to the ultrasonic sensor 30. The distal connection element 27 can be provided with a suitable counter / mating device that engages with the positioning device of the docking portion 37 when the distal connection element 27 is attached to the docking portion 37. This defines a unique relative positional relationship between the distal connection element 27 and the docking portion 37. This in turn defines a unique relative positional relationship between the sensor 28 and the ultrasonic sensor 30, since the position of the sensor 28 in the distal connection element 27 is known.

[0032] The distal connection element 27 may be removably attached to the docking portion 37 in a rotationally fixed (non-rotating) and non-displaceable manner.

[0033] In this example, the distal connection element 27 is formed in a U-shape with two wings 271 and 272. The sensor 28 is disposed on at least one of the wings 271 and 272. The sensor 28 can also extend throughout the distal connection element 27. The sensor 28 can also be otherwise integrated into the distal connection element 27. The sensor 28 can be cast into the distal connection element 27.

[0034] In this example, the sensor 28 is implemented as a positioning sensor, preferably a six degree of freedom (three translational and three rotational data; translations along three perpendicular axes, front / back, up / down, and left / right, combined with rotations about the transverse, longitudinal, and perpendicular axes) sensor for detecting the position of the ultrasonic sensor 30.

[0035] In this example, the sensor 28 is implemented as a Hall sensor. For this purpose, a known magnetic field generator is used in the deployed position of the endoscope 10 to generate a magnetic field. The position of the sensor 28 implemented as a Hall sensor is determined. This gives rise to the position and orientation of the ultrasonic sensor 30, which is located next to the ultrasonic sensor 30 at a known distance from the ultrasonic sensor 30.

[0036] The sensor assembly 20 is configured as a connection cable. The sensor assembly 20 has a cable 21 having a distal connection element 27 at a distal end and a plug connector 24 at a proximal end. See FIG. 1.

[0037] Thus, in the sensor assembly 20, the sensor 28 is connected via the cable 21 to the plug connector 24. The plug connector 24 is located at the proximal end of the cable 21. The plug connector 24 can be connected to the processor 801 described above or to a signal processing device 802 that is separate from the processor 801. The signal processing device 802 is shown diagrammatically in FIG.

[0038] The length of the cable 21 is approximately equal to the sum of the length of the tube portion 200 of the endoscope 10 and the length of the endoscope cable 400 of the endoscope 10. The cable 21 is attached to the tube portion 200 of the endoscope 10 by a removable fastening device 22. Along the length of the tube portion 200, the cable 21 may be provided with one or more fastening devices 22.

[0039] In this example, a number of fastening devices 22 are provided along the length of the tubing 200 on the cable 21 (five fastening devices 22 are shown in FIG. 1). Each fastening device 22 is removably attachable to the tubing 200.

[0040] In this example, the fastening device 22 is configured as a spring clip, which will be described in more detail below.

[0041] FIG. 2 shows a spring clip 22 installed on a cable 21 as a fastening device.

[0042] The spring clip 22 has a streamlined shape and a body 223 through which the cable 21 passes in the longitudinal direction. More specifically, the cable 21 is routed on the inner circumference of the body 223. The body 223 cannot be displaced relative to the cable 21 (it is not displaceable).

[0043] The first wing 221 and the second wing 222 extend from the body 223. The first wing 221 and the second wing 222 are shaped to surround a portion of the outer circumference of the tube portion 200 of the endoscope 10, thereby securely attaching the spring clip 22 to the tube portion 200, as shown in FIG. 3. The wings 221, 222 are resilient, which allows the wings 221, 222 to bend open so that the space between the wings 221 and 222 increases and the wings 221, 222 can slide around the outer circumference of the tube portion 200.

[0044] The wings 221 and 222 are designed as flat leaf-shaped wings. As described above, when the spring clip 22 is removably attached to the tube section 200, the outer diameter of the wings 221, 222 of the spring clip 22 is only slightly larger than the outer diameter of the tube section 200, as shown in FIG.

[0045] This means that the cable 21 of the sensor assembly 20 can be removably attached to the tube 200 by respective fastening devices 22, as shown in Figures 1 and 4. This allows the cable 21 to be attached to the tube 200 in a tightly clamped manner, such that the cable 21 does not interfere with the cable loop, see Figure 1.

[0046] Because cable 21 is securely positioned on tube 200 by fastening device 22 , tube 200 can be inserted into the patient without interference from cable 21 .

[0047] Mode of Operation The sensor assembly 20 is removably attached to the endoscope 10 in such a manner that the distal connection element 27 is removably attached to the docking portion 37 in a rotationally fixed and non-translatable manner, and the fastening device 22 of the cable 21 is clipped into an appropriate position on the tube portion 200 in such a manner that the cable 21 firmly abuts against the tube portion 200.

[0048] The endoscope 10 is now ready for use. The exact position of the ultrasonic sensor 30 can be determined. Any changes in the position and / or orientation of the ultrasonic sensor 30 can be determined by the sensor 28.

[0049] Effect of the present disclosure The sensor assembly 20, including the cable 21, the fastening device 22, and the sensor 28, has a very small lateral / width dimension (a very small dimension perpendicular to the extension direction) and is firmly abutted against the tube section 200. The fastening device 22 prevents the cable 21 from being displaced or rotated relative to the tube section 200. Therefore, the sensor assembly 20 attached to the tube section 200 has little effect on the handling of the endoscope 10 during insertion and operation.

[0050] When attached to the distal portion 300, the sensor 28 has a fixed, well-defined relationship to the ultrasonic sensor 30. Because the sensor 28 has a fixed, well-defined relationship to the ultrasonic sensor 30, the precise location and orientation of the ultrasonic sensor 30 can be determined by the sensor 28. Positive positioning of the sensor 28 on the docking portion 37 prevents accidental rotation or displacement of the sensor 28.

[0051] Thus, the exact position and orientation, including any changes in the position and / or orientation of the ultrasonic sensor 30, can be detected by the sensor 28. This allows the position of the ultrasound image determined by the ultrasonic sensor 30 in space and relative to the patient to be determined and visualized. Thus, the exact position of the area inspected by the ultrasonic sensor 30, including the ultrasonic sensor 30 itself, can be determined with particular reliability in space and relative to the patient and can be shown on a display. It is possible to superimpose / overlay the ultrasound image with other imaging techniques such as CT and MR. Three-dimensional ultrasound images can also be generated.

[0052] The sensor 28 can be easily and quickly attached to the endoscope 10 and removed again from the endoscope 10.

[0053] The principles described above can also be applied to existing endoscopes, which can be retrofitted with sensors that can be removably attached from the outside.

[0054] The distal connection element 27 has a small radial dimension. Thus, when removably attached to the distal portion 300, the distal connection element 27 only slightly increases the radial dimension at the distal portion 300. Thus, when removably attached to the distal portion 300, the distal connection element 27 has little effect on the insertion of the tube 200 and the handling of the tube 200 during insertion and operation of the endoscope 10.

[0055] Because the sensor assembly 20 including the sensor 28 is formed separately from the endoscope 10, the relatively inexpensive sensor 28 can be substituted for another sensor 28 without requiring modifications to the relatively expensive endoscope 10.

[0056] The sensor module 20 with the sensor 28 can be used in an endoscope as a later retrofit.

[0057] Because the sensor assembly 20 with the sensor 28 is formed separately from the endoscope 10, if desired, the user may use the endoscope 10 without the sensor assembly 20, i.e., without the sensor 28, thereby providing the user with an endoscope with position determining capabilities, if desired, to determine the position and orientation of the ultrasound sensor.

[0058] Second Example In the following, a second example will be described with reference to FIGS.

[0059] In a first example, the fastening device 22 is embodied in the form of a spring clip. In this second example, the fastening device 22 is embodied in the form of an elastic strap holder (strap) 2022. See figures 9 and 10.

[0060] The elastic strap holder 2022 comprises an elastic strap 2024, at the end of which a ring 2025 acting as an eye is fixedly arranged. At the end opposite the ring 2025, the strap 2024 is connected to a body 2026 which is fixedly connected to the cable 21. The body 2026 serves as a cable fastening for the strap holder 2022 and cannot be displaced relative to the cable 21.

[0061] The body 2026 is formed with a radially outwardly facing protrusion 2027. The outer diameter of the protrusion 2027 is selected so that the protrusion 2027 passes through the ring 2025. This allows the ring 2025 to fit over the protrusion 2027. See Figures 9 and 10.

[0062] The straps 2024 have a length that corresponds to the circumferential dimension of the tube 200. More precisely, the length of the straps 2024 is selected such that the straps 2024 fit snugly around the circumference of the tube 200 and are hooked onto the rings under tension. See Figures 12 and 10.

[0063] The function of the elastic strap holder 2022 is similar to the spring clip of the first example. The elastic strap holder 2022 functions as a fastening device, whereby the cable 21 of the sensor assembly 20 is removably attached to the tube 200 in a fixed and stable manner, such that the cable 21 is temporarily fixed in a non-displaceable and non-rotatable manner relative to the tube 200.

[0064] Third Example The third example will be described below with reference to FIG.

[0065] FIG. 13 shows a third example of an endoscope equipped with a sensor.

[0066] A sensor assembly with cable 21 is removably attached to an endoscope. The structure is similar to the first example. In the third example, cable 21 is removably fastened to an endoscope cable 400 in addition to removably fastening cable 21 to tube section 200 (as in the first example). For this purpose, a permanently integrated fastening device 22 is provided in the proximal region of cable 21, and cable 21 can be temporarily attached to endoscope cable 400 so that cable 21 can be temporarily and securely fastened to endoscope cable 400.

[0067] The fastening device 22 in the proximal region of the cable 21 can have the same design as in the first or second example.

[0068] The cable 21 is routed to a processor or signal processing device, either of which has a plug connector 24 inserted therein, fastened to the endoscope cable 400 rather than loose.

[0069] In the third example, damage to the cable 21 and the endoscope cable 400 is prevented. So-called cable entanglement is avoided.

[0070] Fourth Example FIG. 14 is a diagram showing a fourth example of an endoscope equipped with a sensor.

[0071] The sensor 28 in this example is a wirelessly operating sensor that is removably attached to the distal end 300 of the endoscope 10, for example by plug-on or snap-in means. Removable attachment of the sensor 28 to the distal end 300 can be achieved in a similar manner to the first example.

[0072] The sensor 28 can be wirelessly powered and the sensor 28 can transmit information wirelessly, which means that the sensor 28 does not require cables or cable fastenings.

[0073] Fifth Example Below, a fifth example is described which is not shown separately in the drawings.

[0074] In this example, the structure corresponds to the endoscope 10 and sensor assembly 20 of FIG.

[0075] The sensor assembly 20 has a number of fasteners 22 along its longitudinal extent. In at least one of the fasteners 22, or in a number of the fasteners 22, or in all of the fasteners 22, an additional sensor is integrated for determining the position.

[0076] In this example, in addition to precisely determining the position of the ultrasound sensor 30, the exact position of the tube 200 on the patient can be determined and preferably displayed, for example on a display.

[0077] Alternative examples The embodiments disclosed in this specification may be combined in any manner.

[0078] In a first example, the instrument 321 embodied as a biopsy probe is pushed forward from the working channel exit to the area sampled by the ultrasound sensor 30 at an angle range 36. The disclosure is not limited in this respect. The instrument 321 could be any other instrument or else a micro-endoscope.

[0079] The docking section 37 does not need to have a positioning device. The positional relationship between the sensor 28 and the ultrasonic sensor 30 can be defined in other ways. The distal connection element 27 with the sensor 28 can be removably attached to the endoscope 10 by a snap-in connection, a removable adhesive connection, or a mechanical plug-in connection, or any other removable connection.

[0080] The sensor 28 does not have to be integrated into the distal connecting element 27. The sensor 28 can be located proximal to the connecting element 27. The sensor 28 can be integrated into the cable 21 of the sensor assembly 20 proximal to the connecting element 27.

[0081] The sensor 28 may have a unique and accurately known positional relationship with the ultrasonic sensor 30. The positional relationship between the sensor 28 and the ultrasonic sensor 30 may be specified in advance, or may at least be determinable.

[0082] In the first and second examples, the sensor 28 is implemented as a Hall effect sensor. The sensor 28 can be implemented by applying any suitable technical principle for determining the position. For position detection, the sensor 28 can be implemented as a magnetic 3D position sensor (such as NDI Aurora) or as a 5D or 6D sensor. The sensor 28 can also be implemented as any inductive, capacitive or magnetic sensor for detecting the position and orientation of the ultrasonic sensor 30 in space.

[0083] In addition to the sensor 28, several further position detection sensors can be mounted at regular intervals along the tube 200 to detect the position of the tube 200 inside the body. This allows the position of the endoscope tube 200 inside the body to be visualized. These further position detection sensors can use the same technical principle for position detection as the sensor 28 or can be different types of position detection sensors.

[0084] In these examples, the sensor 28 is used to detect the position of the ultrasonic sensor 30. The present disclosure is not limited thereto. The sensor 28 may be a sensor for detecting the position of an endoscope part other than an ultrasonic sensor. Also, the sensor 28 does not have to be a sensor for detecting the position, and may be a gas sensor, a biosensor for decoding DNA, a sensor for detecting molecules, or an optical sensor.

[0085] In a first example, the fastening device is designed as a spring clip 22. In a second example, the fastening device is designed as an elastic strap holder 2022. Other methods of fastening the cable 21 to the tube section 200 can be used. Removable snap-in fasteners, adhesive tapes, Velcro® fasteners, elastic rings for pushing the endoscope through, etc. can be selected as fastening devices.

[0086] Furthermore, a separate sheath member can be pressed onto the tube section 200, the sheath member having the function of the cable 21. In addition to the sensor 28 close to the ultrasonic sensor 30, further sensors can be integrated into this separate sheath member along the longitudinal extent of the sheath element. The appearance of such an alternative endoscope is the same as the endoscope 10 of FIG. 1 without the sensor assembly 20. This separate sheath member can be detachable from the endoscope 10 and thus temporarily attachable to the endoscope. This separate sheath member can be used to determine the position and orientation of the ultrasonic sensor 30 and the tube section 200, as explained in the above example. The separate sheath member not only guides the cable and the sensor, but also protects the patient from injury. The separate sheath member can be formed with little or no undercuts, thus providing good protection against contamination.

[0087] The present disclosure is preferably applicable to ultrasound endoscopes, however, the principles of the present disclosure are also applicable to any other type of endoscope. [Explanation of symbols]

[0088] 10 Endoscopy 20 Sensor Assembly 21 Cable 22 Spring clip (fastening device) 24 Plug Connector 27 Distal Connection Element 28 Sensors 30 Ultrasonic Sensor 31 Signal output window 35 angle bisector 36 Angular range of ultrasonic sensor 37 Docking section 100 gripping units 110 Control Knob 120 Insertion section 200 pipe section 221 Wing 222 Wing 223 Main Body 271 Wing Division 272 Wing Division 300 Distal part 320 Working Channel Exit 321 Equipment 400 Endoscope Cable 500 Processor Connector 801 Processor 802 Signal Processing Device 2022 Elastic Strap Holder 2024 Strap 2025 Ring 2026 Main Unit 2027 Protrusion

Claims

[Claim 1] An endoscope (10), comprising: A tube portion (200) for insertion into a patient, the tube portion (200) having an ultrasonic sensor (30) provided at a distal end portion (300) which is the distal end portion of the tube portion (200); A plurality of sensors (28); Equipped with the plurality of sensors (28) measure the positions of a plurality of locations on the tube portion (200), including the distal end portion (300) and a location proximal to the distal end portion (300); a sensor (28) among the plurality of sensors (28) that measures the position of the distal end portion (300) is positioned relative to the ultrasonic sensor (30) and is removably attached to the outer periphery of the distal end portion (300) of the tube portion (200); and a sensor (28) among the plurality of sensors (28) that measures the position of the location proximal to the distal end portion (300) is connected to the sensor (28) that measures the position of the distal end portion (300) by a cable (21) and is removably attached to the outer periphery of the location proximal to the distal end portion (300) of the tube portion (200). An endoscope (10).

Citation Information

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