Multi-Cavity Probe

The multi-lumen probe design with central electrode and separation walls addresses thermal and stiffness challenges, enabling a flexible and miniaturized argon plasma coagulation instrument for endoscopic applications.

JP7808450B2Active Publication Date: 2026-01-29ERBE ELEKTROMEDIZIN GMBH
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Patent Information

Application Number
JP2021167012
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-16
Filing Date
2021-10-11
Publication Date
2026-01-29
Estimated Expiration
2041-10-11

AI Technical Summary

Technical Problem

Existing argon plasma coagulation probes face design limitations due to thermal stresses and high voltage requirements, leading to stiffness and limited flexibility, which restricts their application in endoscopic procedures.

Method used

A multi-lumen probe design with a centrally located electrode and concentrically arranged separation walls, using materials with low dielectric strength and high elasticity, combined with metallization or metal inlays, to achieve high electrical insulation and flexibility, allowing for a miniaturized and flexible probe.

Benefits of technology

The design enables a highly flexible and miniaturized probe capable of generating argon plasma, overcoming thermal and stiffness issues, expanding its applicability in endoscopic treatments.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a monopole instrument for argon plasma coagulation of a biological tissue, which is provided with a flexible and slim probe with high dielectric strength.SOLUTION: An instrument 10 comprises a probe hose 14 and a conductor for feeding power to an electrode, in its center. A plurality of gas guiding lumens separated from each other with separation walls are disposed coaxially around the conductor. The separation walls support a central section disposed in the center and house the conductor.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an instrument for the treatment of biological tissue, particularly for argon plasma coagulation of biological tissue in endoscopic applications. [Background technology]

[0002] An endoscopic instrument for argon plasma coagulation is basically known. Patent Document 1 discloses such an instrument, which includes a flexible hose and two electrodes arranged therein, between which a light arc can be ignited. The hose-like instrument has one or two lumens. In the two-lumen version, an outer probe hose and two inner hoses each having two lumens are provided. Each lumen is assigned to one of the two electrodes. Each electrode is connected to a conductor, which extends through its assigned lumen along the entire length of the instrument without being insulated. The electrodes are centrally held in the gas outlet opening of each lumen. This gives the outer probe hose an elliptical cross section.

[0003] A multi-lumen instrument is known from US Pat. No. 5,623,999, in which an electrode is held in another hose arranged concentrically within a probe hose. For support within the inner hose, the electrode comprises a spirally wound section supported on the inner wall of the inner hose. Radially oriented spacers are provided to fix the inner hose centrally to the outer hose.

[0004] Also known from US Pat. No. 5,699,499 is a bipolar instrument. This instrument comprises a probe hose with a lumen and two electrodes embedded in the probe hose. One electrode is provided with a metal ring seated on a ceramic sleeve, while the other electrode is located in the center of the central passage of the ceramic sleeve. The ceramic sleeve forms an electrical insulator, which allows an electrical barrier discharge, and thus a non-thermal plasma, to be generated inside it.

[0005] A manual instrument provided for open surgical applications is known from US Pat. No. 5,623,999, which comprises an outlet channel at its distal end and an electrode disposed therein, and a line provided for supplying gas to the manual instrument includes multiple lumens.

[0006] Further prior art is formed by US Pat. No. 5,629,299, US Pat. No. 5,629,299 and US Pat. No. 5,629,299.

[0007] Probes for generating thermal plasmas are subject to significant thermal stresses that limit the design of such probes. Furthermore, plasma generation requires high voltages, which require large probe hose wall thicknesses to achieve the required dielectric strength. This must be taken into account in the geometric design of the probe, and typically results in problematic stiffness due to the general design. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] International Publication No. 2008 / 090004 [Patent Document 2] International Publication No. 2006 / 119892 [Patent Document 3] European Patent No. 3205301 [Patent Document 4] European Patent Application Publication No. 0353177 [Patent Document 5] European Patent Application Publication No. 0738519 [Patent Document 6] Japanese Patent Application Laid-Open No. 2002-301088 [Patent Document 7] European Patent Application Publication No. 3412234 Summary of the Invention [Problem to be solved by the invention]

[0009] It is therefore an object of the present invention to provide a basic concept for an instrument that achieves expanded design possibilities. [Means for solving the problem]

[0010] This object is solved by an apparatus according to claim 1.

[0011] The instrument according to the invention can be particularly configured as a monopolar instrument suitable for plasma coagulation, in particular argon plasma coagulation of living tissue. The instrument is particularly a flexible probe. An electric current flows between the (preferably single) electrode of the instrument and the living tissue in a plasma formed at or emerging from the distal end of the probe.

[0012] The instrument (probe) comprises a probe hose containing at least two, preferably three or more, lumens connectable to a gas supply. The lumens preferably extend through the entire probe hose from the proximal end to a gas exit opening located at the distal end. Preferably, no non-conductive elements or conductors or electrodes are disposed in any of the lumens.

[0013] At the distal end of the probe hose, an electrode is preferably centrally located, with its working end exposed and not electrically insulated in this area. The working end of the electrode is in contact with the gas flow exiting the gas outlet opening, and is the section of the electrode that ionizes this gas flow. This allows the working end of the electrode to reach significant temperatures of up to several hundred degrees Celsius. The gas outlet openings are grouped around the electrode.

[0014] Due to its multi-lumen configuration, the probe hose typically comprises an outer hollow cylindrical portion, a preferably generally cylindrical hub or central section concentrically disposed therein, and flat separation walls preferably disposed therebetween like spokes. Preferably, each separation wall has a substantially constant thickness from the central section to the outer section. Preferably, the thickness varies by less than about 20%. The central section, separation walls, and outer hollow cylindrical portion are preferably made of the same material and are part of one and the same plastic hose that seamlessly transition into one another. High electrical insulation and high flexibility are achieved. Such a hose allows for small radius extension.

[0015] The electrical insulation comes primarily from the radial conductors outboard of the central section, the radius of which is preferably equal to or greater than the outer wall section of the hose.

[0016] Maximizing the diameter of the center section has little effect on the flexibility of the probe hose because the center section contributes little to the bending stiffness of the probe. In contrast, the outer hollow cylindrical jacket can be constructed with a relatively thin wall. This allows for the creation of a fluid channel with a large free-flow cross section despite the high insulating capacity provided by the center section.

[0017] The probe hose may be made of a plastic having a lower dielectric strength and / or a higher modulus of elasticity than materials otherwise used in argon plasma probes, such as fluoroplastics, particularly PTFE and FEP.

[0018] To create an equipotential surface, the outer central section and / or the inner jacket section can be provided with metallization or metal inlays, which also increases the dielectric strength of the probe hose.

[0019] However, it is preferred to dimension the radial thickness of the central section greater than the radial thickness of the jacket section so that electrical insulation is primarily provided by the central section.

[0020] The gas outlet openings are preferably arranged concentrically around the electrode. The separating walls between the lumens of the probe hose can be inclined relative to the radial direction. Preferably, not all separating walls are inclined in the same direction. The lumens can have a substantially triangular cross section with arcuate edges (two convex and one concave). Instead of sharp edges, curves can be provided. Each of the above-mentioned measures individually contributes to the hose having equal flexibility and being equally immune to closure of all radial gas guide lumens due to bending of the probe hose. Furthermore, the inclined separating walls relative to the radial direction contribute to the flexibility of the probe hose, thereby ensuring uniform gas flow around the electrode.

[0021] The curvature of the separating wall, which in cross section is manifested as a curvature about an axis perpendicular to the cross section plane, supports the flexibility of the probe hose and ensures electrical insulation strength, especially at bending points of the probe hose. The separating wall, located between the central section and the jacket section during bending of the probe hose, increases the breakthrough field strength, which is due to the electrical insulation strength.

[0022] Alternatively, an uninsulated conductor can be embedded in the central section of the probe hose, thereby providing electrical insulation. However, instead of an uninsulated conductor, an insulated conductor can be embedded in the central section so that the conductor is surrounded by a multilayer insulation of different materials. This can also be used to improve electrical insulation for a more compact probe design, or vice versa. The conductor can be a wire or braid of metal or conductive plastic. The multilayer insulation concept increases the variety of materials that can be used for the probe hose. For example, the central section can be made of a material optimized for its electrical insulation capabilities, while the jacket section (and / or the separating wall) is made of a material optimized for its flexibility.

[0023] The probe hose preferably comprises a constant cross section from the proximal end to the gas outlet opening. The gas conducting lumen can be arranged straight, parallel to the central axis, or can have a helical extension.

[0024] The jacket section may extend distally beyond the gas exit opening so as to form a plasma chamber at the distal end of the instrument, inside which the distal end of the electrode is disposed. The jacket section may be made of the material of the probe hose. However, it is also possible for the end portion surrounding the plasma chamber to be made of a different material, for example, ceramic.

[0025] Furthermore, the electrode may protrude from the probe hose and be provided with a protective body at its free distal end. The protective body is preferably an electrical insulator, for example a ceramic body, such as a ceramic ball or any other body. Preferably, this protective body has a diameter significantly larger than the electrode diameter, for example, approximately matching the outer diameter of the probe hose. The protective body preferably has a rounded distal end face and no points or sharp edges. This concept is particularly suitable for radial probes, which can output a plasma flow in any radial direction. In the case of an asymmetric configuration of the protective body, for example in the form of an obliquely oriented ceramic disk, the radial direction can also be defined for the desired plasma output.

[0026] The electrode can be configured as a bare wire at its end sections. For example, the wire can be made of chromium-nickel steel, which has a low thermal conductivity and therefore introduces little heat into the central section of the probe hose. In this case, the wire is in direct contact with the plastic of the probe hose. It is also possible to provide a coating on an electrode configured as a wire extending through the probe hose along its entire length or at least in a distal section, e.g., the working end. The coating is preferably made of an electrically conductive material. Preferably, the material is metallic, the melting temperature of which is lower than that of the electrode. For example, the coating can be made of silver or a silver alloy. More preferably, an additional layer, such as an adhesive layer in the form of a gold layer, can be provided between the electrode substrate (e.g., chromium-nickel steel) and the low-melting-point coating. Such electrodes are stable and transfer little heat within the probe hose. The coating and the resulting low thermal stresses allow the electrode to be directly attached to the probe hose. Previously used plate or needle electrodes with spiral bases have provided, for example, increased cooling by convection and a specific distance of the discharge zone from the hose. The present invention eliminates both of these, allowing for the construction of flexible and miniaturized probes.

[0027] Additionally, the distal end of the wire extending through the probe hose may be provided with an electrode extension, which may, for example, comprise a coating as described above.

[0028] Further details of advantageous embodiments of the invention emerge from the dependent claims, the drawings and the associated description. [Brief explanation of the drawings]

[0029] [Figure 1] 1 is a schematic perspective view of the device of the present invention connected to a delivery device; FIG. [Figure 2] FIG. 1 is a perspective view of the distal end of the instrument. [Figure 3] FIG. 3 is a front view of the device of FIGS. 1 and 2. [Figure 4] FIG. 4 is a view of the device according to FIG. 3 in detail in longitudinal section. [Figure 5] 5 is a view of a modified embodiment of the device according to FIG. 4, showing a longitudinal section in detail. [Figure 6] 5 is a view of another modified embodiment of the instrument according to FIG. 4, showing the distal end of the instrument in longitudinal section. [Figure 7] 10 shows a partial cross-sectional side view of the distal end of another embodiment of the device of the present invention. FIG. [Figure 8] FIG. 10 is a front view of the instrument with a modified probe hose. [Figure 9] FIG. 10 is a front view of the instrument with a modified probe hose. DETAILED DESCRIPTION OF THE INVENTION

[0030] FIG. 1 shows a surgical instrument 10 in the form of a multi-lumen probe connected to a supply device 11. The multi-lumen probe can be used for surgical treatment of a patient and can therefore be introduced into the patient through the working channel of an endoscope. The device 11 serves to supply the instrument 10 with the medium and current required for its operation. Thus, for example, the device 11 can comprise a gas source 12 and a generator 13. The gas source 12 can be, for example, an argon source provided in a pressure vessel and formed by respective control elements such as valves, pressure regulators, etc. The generator 13 is preferably a radio frequency generator for outputting a radio frequency alternating voltage with a desired peak voltage, preferably with adjustable modulation and / or adjustable power.

[0031] The instrument 10 includes a probe hose 14 extending from a proximal end 15 to a distal end 16. The probe hose 14 is a flexible hose preferably made of a plastic, such as PTFE, FEP, or PA, TPE, HDPE, or PP. The probe hose 14 preferably has a circular exterior cross-section, as seen in FIG. 3 . Alternatively, the exterior cross-section may be polygonal, such as a hexagon or octagon. The exterior cross-section is defined by a circular jacket 17, from which a number of separator walls 18, 19, and 20 extend to a centrally located, hub-like central section 21, preferably having a cylindrical exterior. Preferably, there is an odd number of separator walls to achieve uniform stiffness, i.e., equal stiffness in all radial directions. At least two, preferably three or more lumens 22-24 are separated from one another within the probe hose 14 by separating walls 18, 19, 20 and extend from the proximal end 15 to the distal end 16 or to gas outlet openings 25, 26, 27 at the distal end, respectively, and are grouped around a central section. Depending on the material and precision of the extrusion, the cross section of the outer surface and / or the cross section of the central section may also be polygonal.

[0032] As can be seen in Figure 4, the gas outlet openings 25, 26 (and 27) are displaced proximally rearward relative to the end face of the probe hose 14 so that a chamber-like recess is formed in the distal end 16 of the probe hose 14. The working end 29 of the electrode 30 extends into this recess, where the electrode 30 is held in the center of the central section 21. The chamber-like recess is a plasma chamber in which the current from the electrode 30 transits over the plasma that is formed.

[0033] 4 for emitting an axial plasma flow, the working end 29 of the electrode 30 is located entirely inside the instrument 10, and thus within the plasma chamber. The tip of the working end 29 of the electrode 30 is therefore displaced proximally rearward relative to the end face 28 of the probe hose 14. The electrode can also be located in a plane with the end face of the probe hose 14.

[0034] From electrode 30, an electrical conductor extends, preferably centrally, through central section 21 to proximal end 15 where it connects with a pole of generator 13. The other pole of generator 30 is connectable or connects to a neutral electrode (not shown) that can be attached to the patient for current return. Thus, device 10 is a monopolar device in that the patient is part of the treatment current circuit.

[0035] The electrode 30 can be made of, and therefore be part of, a single piece with the electrical supply line 31 extending away from it in the proximal direction. However, the electrode 30 can also be formed by a separate metal element connected to the supply line 31. Preferably, the electrode 30 is made of a material with low thermal conductivity, such as stainless steel, in particular chromium-nickel steel, and has, for example, the following composition:

[0036] [Table 1]

[0037] A coating can be provided at least on the working end 29 or the entire electrode 30. The coating can also extend over the entire length of the conductor 31. The coating is preferably a metal coating, the melting temperature of which is lower than that of the electrode 30 or working end 29, respectively. In particular, the coating can be formed by a silver layer. An adhesive layer can be provided between the silver layer and the material of the electrode or the working end 29 of the electrode 30. The adhesive layer preferably consists of a material having a melting temperature lower than that of the electrode 30 or its working end 29. However, the melting temperature of the adhesive layer is preferably at least as high as that of the coating. The adhesive layer can be, for example, a gold layer.

[0038] During operation, the electrodes 30 and conductors 31 are subjected to a high voltage, which can range from a multiple of 100V to a multiple of 1000V. To electrically insulate the conductors 31, the central section 21 preferably has a radial thickness greater than the thickness of the jacket 17 measured radially. The central section 21 and the jacket 17 contribute to the electrical insulation of the conductors 31 from the surrounding endoscope and / or surrounding biological tissue. The illustrated distribution of material strength favorable to the central section 21 allows for high flexibility of the probe hose 14. Additionally, the cross-sectional flow areas of the lumens 22, 23, and 24 are maximized. If desired, the radial thickness of the central section 21 can be significantly increased, as shown by the dashed circle 32 in FIG. 3 . This significantly improves the electrical insulation of the conductors 31 without substantially affecting the cross-sectional flow areas of the lumens 22, 23, and 24.

[0039] To further enhance flexibility and / or equalize bendability in all radial directions and to avoid lumen occlusion during bending of the probe hose 14, the separation walls 18, 19, 20 can also be configured to be angled and curved, as is evident from FIG. 3. When such a probe hose 14 is bent through a small bend radius, the separation walls 18, 19, 20 can abut against the central section 21 on one side of the bend, while the other separation wall 19, 20 can be upright. This ensures that at least one, and often two or three, of the lumens are always open so that gas flow can freely flow distally. Bending of the probe hose 14 with occlusion of the lumens does not occur.

[0040] During operation, the instrument 10 described thus far is supplied with a gas, e.g., argon, which flows parallel to one another through the lumens 22, 23, and 24 and exits through gas exit openings 25-27. The gas flows around the electrode 30 or its working end 29, which ionizes the gas stream and thus generates a plasma stream that exits distally from the instrument 10 and impacts the surrounding tissue. This is connected to the counter pole of the generator 13 by the neutral electrode mentioned above, thereby allowing a current to flow between the working end 29 of the electrode 30 and the tissue.

[0041] Some measures, namely, - uniform gas flow from the outlet openings 25, 26, 27, - coating of the electrode 30, for example with silver, at least at the distal end; - concentration of electrical insulation in the center of the probe cross section, By combining The instrument 10 can be significantly miniaturized. The outer diameter of the probe hose 14 can be reduced to less than 1 mm without heat arising from the working end 29 of the electrode 30, which would rapidly damage the probe hose 14. This also applies to wire or rod-shaped electrodes 30, i.e., preferably configured linearly but in two-dimensional contact with the periphery of the plastic of the probe. Rapid thermal damage to the probe hose is particularly avoided if the working end 29 of the electrode 30 is provided with a suitable coating, such as a silver coating, which concentrates the discharge at the distal end of the working end 29. Finally, a highly miniaturizable and highly flexible probe is obtained, opening up previously unreachable fields of application for argon plasma coagulation.

[0042] The structure formed at the distal end 16 of the instrument 10 can be manufactured using a manufacturing method in which the probe hose extruded over the conductor 31 is first cut, followed by the introduction of the plasma chamber 33, as shown in FIG. 4, at the distal end 16. This distal section of the separating walls 18, 19, and 20, and, if necessary, part of the central section 21, are removed, for example, mechanically. The electrode 30 can also be slightly shortened so that it does not protrude beyond the end face 28 of the probe hose 14. However, it is also possible to simply manipulate the probe hose 14, cut during initial use on a patient or by the manufacturer under controlled conditions, to create the plasma chamber 33 by causing the working section 29 of the electrode 30 to melt or burn away part of the separating walls 18, 19, and 20 as well as the central section 21 as a result of the generation of heat. This process can be supported by using another suitable gas, such as a reactive gas such as CO₂ or air, instead of argon.

[0043] The probe described thus far is susceptible to numerous variations. For example, walls 18, 19, 20 can be tangentially adjacent to center section 21 as shown. However, the walls can also be radially adjacent and then transition to an angled orientation. Also, walls 18, 19, 20 can be tangentially adjacent to jacket 17. However, the walls can also be radially adjacent and then angled away therefrom.

[0044] In all embodiments, the distal end 16 of the probe hose 14 can be provided with a sleeve-shaped element 35 made of a material different from that of the probe hose 14. For this purpose, FIG. 6 shows the probe hose 14 as an example in which the element 35 is formed by a ceramic sleeve. The probe hose can be connected to the probe hose 14 by a stepped joint or even an obtuse-angled joint on a conical interface. The connection can be made by gluing, welding, e.g., ultrasonic welding, or by other form-fitting and / or material-bonding connection techniques. With regard to the configuration and positioning of the electrode 30 and its working end 29, the above explanations apply accordingly to the above-described embodiments.

[0045] However, in all the embodiments described above, as is clear from FIG. 7, the working end 29 of the electrode 30 can also protrude beyond the end face 28 of the probe hose 14. In this case, the end of the electrode 30 can be provided with a protection 36, for example in the form of an insulator, for example in the form of a ceramic element. The protection 36 is preferably configured rotationally symmetrically with respect to the working end 29 of the electrode 30. For example, the protection can be plate-shaped, pyramidal, ball-shaped, mushroom-shaped, etc. It is preferably configured so that all radial directions are free relative to the electrode 30. Thus, the plasma flow can be directed in any radial direction over 360°. However, it is also possible to configure the protection 36 asymmetrically and combine it with or connect it to the element 35. In this way, an asymmetric operating probe can be designed.

[0046] The above description of the embodiments according to Figures 1-7 assumes that the conductor 31 is in direct contact with the material of the probe hose 14. However, in all of the above-described embodiments, instead of the bare conductor 31, a cable 37 consisting of the conductor 31 and the cable insulation 38 applied thereon can also be provided. The cable insulation can be formed, for example, by insulating varnish or a plastic hose. The material of the probe hose 14 is applied over the cable insulation 38 so that the inside of the central section 21 consists of the material of the cable insulation 38 and the material of the probe hose applied over the cable insulation 38. This concept further increases safety against voltage breakthrough. The material of the cable insulation 38 can be optimized taking into account the maximum dielectric strength. This reduces the role of the stiffness of this material. On the other hand, the material of the probe hose 14 can be optimized in this case with regard to the desired flexibility.

[0047] To improve the dielectric strength at the interface between the cable insulation 38 and the material of the probe hose 14 applied thereon, it is possible to provide a metallization that defines a cylindrical equipotential surface, thereby increasing the dielectric strength.

[0048] Furthermore, as shown in FIG. 9, the separation walls 18, 19, 20 can be radially oriented, thereby configuring them to be straight or curved.

[0049] The instrument 10 according to the invention comprises a probe hose 14, in the center of which is provided a conductor 31 for the power supply of an electrode 30. Arranged concentrically around the conductor 31 are a number of gas-conducting lumens 22, 23, 24, which are separated from one another by separating walls 18, 19, 20. The separating walls 18, 19, 20 support a centrally arranged central section 21 which houses the conductor 31 and which is crucial for the electrical insulation of the conductor 31. This probe design makes it possible to produce a particularly flexible and particularly slim probe with a particularly high dielectric strength. [Explanation of symbols]

[0050] 10. Equipment 11 Equipment 12 Gas Source 13. Generator 14 Probe hose 15 Proximal end of probe hose 14 16 Distal end of probe hose 14 17 Jacket 18~20 Separation wall 21 Central Section 22~24 lumen 25~27 Gas outlet opening 28 End face of probe hose 14 29 Working end of electrode 30 30 electrodes 31 Supply Line 32 Circle to illustrate improved electrical insulation of line 31 33 Plasma Chamber 34 Sleeve 35 elements 36 Insulation body 37 Cable 38 Cable insulation 39 Radial inner start of surface 28 40 transition between end surface 28 and outer surface

Claims

1. An instrument (10) which is a monopolar instrument for argon plasma coagulation of living tissue, comprising: a flexible probe hose (14) with at least two lumens (22, 23) connectable to a gas supply device (12), the probe hose (14) being connected at its proximal end (15) to a device (11) comprising the gas supply device (12); an electrode (30) supported within the probe hose (14) and having a working end (29); Each lumen (22, 23) includes a gas exit opening (25, 26), the gas exit openings (25, 26) being located near the working end (29) of the electrode (30); the central section (21) of the probe hose (14) does not have a lumen for the flow of gas supplied from the gas supply device (12); a separating wall (18, 19) is disposed between the lumens (22, 23) adjacent to the inner central section (21) and the outer jacket (17), and the separating wall (18, 19) allows the at least two lumens (22, 23) to extend from the proximal end (15) of the probe hose (14) to the gas outlet openings (25, 26); the central section (21), the separating walls (18, 19) and the jacket (17) are made of the same material and are part of one and the same plastic hose that seamlessly merge into one another; The working end (29) is a section of an electrode (30) that is in contact with the gas flow exiting the gas outlet openings (25, 26) and ionizes the gas flow.

2. 2. The device according to claim 1, characterized in that the gas outlet openings (25, 26) are arranged concentrically around the electrode (30).

3. The central section (21) is cylindrical and concentrically arranged in the center of the probe hose (14), and the jacket (17) is a hollow cylinder; 3. The device according to claim 1 or 2, characterized in that the electrodes (30) are arranged insulated in the central section (21), and the radial thickness of the probe hose (14) in the central section (21) is greater than the radial thickness of the probe hose (14) in the jacket (17).

4. 4. The device according to claim 3, characterized in that the separating walls (18, 19) are arranged at an angle to the radial direction of the probe hose (14).

5. 5. The device according to claim 3 or 4, characterized in that the separating wall is configured to be curved.

6. 6. Device according to any one of claims 1 to 5, characterized in that the probe hose (14) has an externally circular cross section.

7. 7. The device according to claim 1, wherein only a single electrode (30) is arranged in the probe hose (14), the electrode (30) being arranged centrally in the probe hose (14).

8. 8. An instrument according to any one of claims 1 to 7, characterized in that the electrodes are embedded in an electrically insulated manner in the central section (21) of the probe hose (14).

9. 9. An apparatus according to any one of claims 1 to 8, characterized in that the probe hose (14) comprises a jacket section (17, 35) extending distally beyond the gas outlet opening (25, 26).

10. 10. An apparatus according to claim 9, characterized in that the jacket section (35) is made of a different material than the probe hose (14).

11. 11. The device according to any one of claims 1 to 10, characterized in that the electrode (30) has a distal end arranged inside the probe hose (14).

12. 11. The device according to any one of claims 1 to 10, characterized in that the electrode (30) is arranged outside the probe hose (14) and has a distal end provided with an insulator (36).

13. 13. An instrument according to any one of the preceding claims, characterized in that the electrode (30) is at least partially provided with an electrically conductive coating.

Citation Information

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