Active gas injection device

By using an active gas jet device in dental treatment, which generates active gas at a temperature exceeding 40°C using a heating element, the problems of insufficient activity and low healing efficiency of low-temperature plasma therapy devices are solved, achieving highly efficient cell activation and disinfection effects.

CN223860950UActive Publication Date: 2026-02-03SEKISUI CHEMICAL CO LTD
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Patent Information

Application Number
CN202423232899.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2026-02-03
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

Existing low-temperature plasma therapy devices have problems in dental treatment, such as insufficient activity, inadequate disinfection and sterilization effects, and the need to improve treatment efficiency.

Method used

An active gas injection device was designed, which is connected to the working gas supply unit through a spray gun and connecting pipe. It includes a plasma generation unit, a shell and an injection pipe. The working gas is heated by a heating unit to generate an active gas with a temperature exceeding 40°C. Plasma is generated in a tubular dielectric through internal and external electrodes. The active gas is injected to achieve cell activation and disinfection.

Benefits of technology

It provides ample cell activation capabilities, disinfection and sterilization effects, and high healing efficiency, enabling it to quickly kill bacteria and cancer cells, and its short spraying time makes it less likely to cause burns.

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Abstract

The present disclosure provides an active gas injection device having sufficient cell activation ability, disinfection and sterilization effects, and high healing efficiency. An active gas injection device is provided with a lance and a working gas supply unit. The torch includes a plasma generating portion, a housing covering the plasma generating portion, and an injection pipe. The working gas supply unit supplies a working gas to the plasma generation unit through the connection duct. The plasma generation unit is provided with: a tubular dielectric that has a gas flow path therein and into which a working gas is introduced; an internal electrode that is provided inside the tubular dielectric, extends in the tube axis direction of the tubular dielectric, and is separated from the tubular dielectric; and an external electrode provided on the outside of the tubular dielectric and facing the internal electrode across the tubular dielectric. The injection pipe has, at the tip thereof, an injection port for discharging the active gas, and the temperature of the active gas at a surface to be injected, which is 1-10 mm away from the injection port, exceeds 40 DEG C.
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Description

Technical Field

[0001] This disclosure relates to an active gas injection device. Background Technology

[0002] Currently, in medical applications such as dental treatment, devices capable of generating low-temperature plasma are used for anti-inflammatory and therapeutic purposes. For example, Patent Document 1 discloses a plasma therapy device having a flexible tube for air circulation and wire passage, and a handheld part connected to the flexible tube. Low-temperature plasma with a lower temperature is ejected from the front end of the handheld part for dental treatment.

[0003] However, while low-temperature plasma can rapidly kill various bacteria, viruses, and cancer cells, it suffers from insufficient activity, inadequate disinfection and sterilization effects, and room for improvement in treatment efficiency. Therefore, there is room for further improvement in existing plasma therapy devices.

[0004] Existing technical documents

[0005] Patent documents

[0006] Patent Document 1: JP2013-128681A Utility Model Content

[0007] This disclosure was made in consideration of the above circumstances, and its purpose is to provide an active gas injection device with sufficient cell activation capacity, disinfection and sterilization effect and high cure efficiency.

[0008] The disclosed active gas injection device includes a spray gun and a working gas supply unit connected to the spray gun via a connecting pipe. The spray gun has a plasma generating unit, a housing covering the plasma generating unit, and an injection pipe disposed at the front end of the housing. The working gas supply unit supplies working gas to the plasma generating unit via the connecting pipe. The plasma generating unit includes: a tubular dielectric having a gas flow path inside, through which the working gas is introduced; an internal electrode disposed inside the tubular dielectric, extending along the tube axis of the tubular dielectric and separated from the tubular dielectric; and an external electrode disposed outside the tubular dielectric, facing the internal electrode across the tubular dielectric. The injection pipe has an injection port at its front end from which an active gas activated by plasma generated based on the working gas is ejected. The temperature of the active gas at the injection surface at a distance of 1 mm to 10 mm from the injection port exceeds 40°C.

[0009] According to the active gas injection device disclosed herein, the active gas injection device includes a temperature control unit for adjusting the temperature of at least one of the working gas and the active gas.

[0010] According to the active gas injection device of this disclosure, the temperature control unit is a heating unit that heats at least one of the working gas and the active gas.

[0011] According to the active gas injection device disclosed herein, the heating unit is disposed on the spray gun to heat the working gas.

[0012] According to the active gas injection device disclosed herein, the heating unit is disposed in the connecting pipe to heat the working gas.

[0013] According to the active gas injection device of this disclosure, the heating unit is disposed in the working gas supply unit to heat the working gas.

[0014] According to the active gas injection device of this disclosure, the working gas supply unit includes a gas storage tank for storing the working gas, and the heating unit heats the gas storage tank.

[0015] According to the active gas injection device of this disclosure, the active gas injection device further includes a power source for applying voltage to the plasma generating unit to generate the plasma from the working gas.

[0016] According to the active gas injection device disclosed herein, the gas storage tank is configured separately from the power source.

[0017] According to the active gas injection device of this disclosure, the gas storage tank and the power supply are arranged in the same housing.

[0018] According to the active gas injection device disclosed herein, an active gas injection device with sufficient cell activation capacity, disinfection and sterilization effect and high cure efficiency can be provided. Attached Figure Description

[0019] The objects, features, and advantages of this disclosure will become clearer from the following description of embodiments of the present disclosure with reference to the accompanying drawings, in which:

[0020] Figure 1 This is a schematic diagram showing the active gas injection device of this disclosure in use;

[0021] Figure 2 This is a block diagram showing the general structure of the active gas injection device of this disclosure;

[0022] Figure 3 This is a block diagram showing the general structure of the active gas injection device of this disclosure;

[0023] Figure 4 This is a schematic diagram illustrating an example of the active gas injection device of this disclosure;

[0024] Figure 5 This is a partial cross-sectional view of a spray gun illustrating one embodiment of the present disclosure;

[0025] Figure 6 Indicates along Figure 5 A cross-sectional view along line AA;

[0026] Figure 7 This is a schematic diagram showing an example of the installation position of the heating element in this disclosure;

[0027] Figure 8 This is a schematic diagram showing an example of the installation position of the heating element in this disclosure;

[0028] Figure 9 This is a schematic diagram showing an example of the installation position of the heating element in this disclosure;

[0029] Figure 10 This is a schematic diagram showing an example of the installation position of the heating element in this disclosure.

[0030] Explanation of reference numerals in the attached figures

[0031] 1. Active gas injection device;

[0032] 10 spray guns;

[0033] 10A Plasma Generation Unit;

[0034] 11. Tubular dielectric;

[0035] 11F gas flow path;

[0036] 11X Tube axis direction;

[0037] 12 Internal electrodes;

[0038] 13. External electrodes;

[0039] 10B Housing;

[0040] 14. Main body section;

[0041] 15. Connecting parts;

[0042] 10C injection nozzle;

[0043] 16. Injection nozzles;

[0044] S is the surface being sprayed;

[0045] 20 Power supplies;

[0046] 30. Gas Supply Department;

[0047] Heating sections H1, H2, H3, H4, and H5;

[0048] 30B Gas storage tank. Detailed Implementation

[0049] The embodiments of the present disclosure will now be described with reference to the accompanying drawings. However, it should be understood that these descriptions are exemplary only and are not intended to limit the scope of the disclosure. In the following detailed description, numerous specific details are set forth to provide a thorough understanding of the embodiments of the present disclosure for ease of explanation. However, it will be apparent that one or more embodiments may be practiced without these specific details. Furthermore, descriptions of well-known structures and techniques are omitted in the following description to avoid unnecessarily obscuring the concepts of the present disclosure.

[0050] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit this disclosure. The terms “having”, “comprising”, etc., as used herein indicate the presence of the said features, operations, and / or components, but do not exclude the presence or addition of one or more other features, operations, or components.

[0051] All terms used herein (including technical and scientific terms) have the meanings commonly understood by those skilled in the art, unless otherwise defined. It should be noted that the terms used herein are to be interpreted in a manner consistent with the context of this specification, and not in an idealized or overly rigid way.

[0052] When using expressions such as "at least one of A, B, and C," they should generally be interpreted in accordance with the meaning commonly understood by a person skilled in the art (e.g., "an apparatus having at least one of A, B, and C" should include, but is not limited to, having A alone, having B alone, having C alone, having A and B, having A and C, having B and C, and / or having A, B, and C, etc.). A person skilled in the art should also understand that any conjunction and / or phrase that substantially arbitrarily represents two or more alternative items, whether in the specification, claims, or drawings, should be understood to give the possibility of including one of these items, either of these items, or both items. For example, the phrase "A or B" should be understood to include the possibility of "A" or "B," or "A and B."

[0053] In addition, for ease of understanding, the scale and aspect ratio of the actual objects in the attached drawings have been appropriately altered or exaggerated.

[0054] This disclosure provides an active gas injection device. The active gas injection device includes a spray gun and a working gas supply unit connected to the spray gun via a connecting pipe. The spray gun has a plasma generating unit, a housing covering the plasma generating unit, and an injection pipe disposed at the front end of the housing. The working gas supply unit supplies working gas to the plasma generating unit via the connecting pipe. The plasma generating unit includes a tubular dielectric, an internal electrode, and an external electrode. The tubular dielectric has a gas flow path inside, through which the working gas is introduced. The internal electrode is disposed inside the tubular dielectric, extends along the axis of the tubular dielectric, and is separate from the tubular dielectric. The external electrode is disposed outside the tubular dielectric, facing the internal electrode across the tubular dielectric. The injection pipe has an injection port at its front end from which the active gas, activated by plasma generated based on the working gas, is ejected. The temperature of the active gas at the sprayed surface at a distance of 1 mm to 10 mm from the injection port exceeds 40°C.

[0055] The following is for reference Figures 1 to 10 The active gas injection device disclosed herein will be described.

[0056] The active gas injection device 1 disclosed herein is mainly used for sterilization, disinfection, and healing of wound surfaces and other surfaces to be sprayed. Figure 1 This is a schematic diagram illustrating the operational state of the active gas injection device 1 of this disclosure. The spray gun 10 of the active gas injection device 1, for example, is operated by a doctor or other operator, and has a shape, size, and weight suitable for easy hand-held operation. Figure 1 As shown, the operator holds a spray gun and sprays an active gas from the nozzle onto the surface S being sprayed. This active gas contains active species generated through plasma activation, which has the effect of promoting the healing of external injuries and abnormalities. By irradiating cells, living tissues, or biological individuals with active gas containing active species, it is possible to produce effects such as promoting the cleansing, activation, and healing of the irradiated part. Examples of active species include: hydroxyl radicals, singlet oxygen, ozone, hydrogen peroxide, superoxide anion radicals, and other reactive oxygen species; and nitric oxide, nitrogen dioxide, peroxynitrite, peroxynitrite, and dinitrogen trioxide, and other reactive nitrogen species.

[0057] Figure 2 This is a block diagram showing the general structure of the active gas injection device 1 of this disclosure. Figure 2As shown, the reactive gas injection device 1 may include a spray gun 10 and an air supply unit 30 (an example of a working gas supply unit) connected to the spray gun 10 via a pipe 32 (an example of a connecting pipe). The air supply unit 30 may be included in the supply unit 50, for example. The reactive gas injection device 1 may also include a power supply 20 for supplying power to the spray gun 10. The reactive gas injection device 1 may also include a control unit 40, which can control the spray gun 10, the air supply unit 30, and the power supply 20, respectively. The control unit 40 may also be connected to an input unit, display unit, etc. (not shown) via wired or wireless means.

[0058] In another scheme, such as Figure 3 As shown, the power supply 20 can also be included in the supply unit 50 together with the air supply unit 30.

[0059] Figure 4 This is a schematic diagram illustrating an example of the active gas injection device 1 of this disclosure, visually demonstrating... Figure 3 The connection method between the spray gun 10 and the power supply 20, air supply unit 30, etc. in the supply unit 50 is shown.

[0060] like Figure 4 As shown, the air supply pipe 310 connecting the air supply unit 30 to the spray gun 10 and the power supply line 210 connecting the power supply 20 to the spray gun 10 are, for example, housed within a single conduit 32. Similarly, the grounding wire of the spray gun 10 can also be housed within this conduit 32. In other words, the end of the spray gun 10 is connected to the supply unit 50 via only one conduit 32. Therefore, the active gas injection device 1 of this disclosure has a simple structure and is easy to move and use.

[0061] Figure 5 yes Figure 4 A partial cross-sectional view of the spray gun 10 shown.

[0062] like Figure 5 As shown, the spray gun 10 has a plasma generating section 10A, a housing 10B covering the plasma generating section 10A, and a spray pipe 10C disposed at the front end of the housing 10B.

[0063] The plasma generating unit 10A includes a tubular dielectric 11, an internal electrode 12, and an external electrode 13. The tubular dielectric 11 is a cylindrical component extending along its axial direction 11X, and has an internal gas flow path 11F through which a working gas is introduced. The internal electrode 12 is disposed inside the tubular dielectric 11, extends along its axial direction 11X, and is separate from the tubular dielectric 11. The external electrode 13 is disposed outside the tubular dielectric 11, and is positioned opposite the internal electrode 12 across the tubular dielectric 11.

[0064] When the active gas injection device 1 is in operation, the plasma generation unit 10A is powered, thereby applying a voltage between the internal electrode 12 and the external electrode 13. At the same time, the working gas is introduced from the gas supply unit 30 through the pipe 32 into the gas flow path 11F of the tubular dielectric 11. The type of working gas is not particularly limited, and gases such as oxygen, helium, argon, nitrogen, carbon dioxide, and air can be used.

[0065] In this disclosure, the inner electrode 12 and the outer electrode 13 are positioned opposite each other in a direction perpendicular to the flow direction of the working gas. When a voltage is applied between the inner electrode 12 and the outer electrode 13, the working gas is ionized at the position where the outer peripheral surface of the inner electrode 12 faces the inner peripheral surface of the outer electrode 13, becoming plasma, and is further guided along the gas flow path 11F to the nozzle 16. At the plasma generation section 10A, the plasma generated based on the working gas is an active gas containing ions, electrons, excited molecules and atoms, and a small amount of active species. As the plasma moves away from the plasma generation section 10A, the ionized ions and electrons in the active gas recombine, causing a change in the active components, such that at the point of being guided to the nozzle 16, the active species become the main active components in the gas. As a result, the active gas activated by the plasma is ejected from the nozzle 16 at the front end of the jet tube 10C. As mentioned earlier, depending on the type of working gas, reactive gases can include, for example, the following reactive oxygen species: hydroxyl radicals, singlet oxygen, ozone, hydrogen peroxide, superoxide anion radicals, etc.; and reactive nitrogen species: nitric oxide, nitrogen dioxide, peroxynitrite, peroxynitrite, and dinitrogen trioxide, etc. These reactive species exhibit significant activity in the sterilization of sprayed surfaces such as skin, and in the healing of wounds.

[0066] In this disclosure, the temperature of the active gas at the sprayed surface S, which is 1 mm or more but less than 10 mm away from the injection port 16, exceeds 40°C.

[0067] The inventors of this disclosure have discovered that if the temperature of the sprayed gas is too low, the concentration of active species in the active gas is insufficient, which cannot provide sufficient cell activation capacity and disinfection and sterilization effect, thus affecting the cure efficiency.

[0068] Simultaneously, appropriately heating the skin and other surfaces being sprayed can dilate local blood vessels, increasing blood flow and relieving muscle tension while improving tissue suppleness. Furthermore, the increased blood flow delivers more oxygen, nutrients, and antioxidants, thereby accelerating cell metabolism and enhancing the body's self-healing abilities.

[0069] Therefore, by setting the temperature of the active gas at the sprayed surface S to over 40°C, a synergistic effect can be achieved by the active species outside the body and the vasodilation inside the body, resulting in a high cure rate.

[0070] In particular, the improvement in healing efficiency is more pronounced when the sprayed surface does not show signs of bleeding or inflammation.

[0071] As a preferred embodiment, the temperature of the active gas at the sprayed surface S, which is at a distance of more than 1 mm and less than 10 mm from the injection port 16, exceeds 50°C.

[0072] In this disclosure, because the concentration of active species in the active gas ejected from the active gas ejection device is relatively high, disinfection and sterilization of the sprayed surface such as skin, wound healing, etc., usually only require a few tens of seconds or even a few seconds of spraying, which can speed up the operation. Furthermore, because the spraying time is short, even if the temperature of the active gas is high during spraying, burns will not occur immediately.

[0073] The temperature at which the sprayed surface will not be burned is related to the spraying time. Basically, the shorter the spraying time, the less likely the sprayed surface will be burned. From the viewpoint of preventing burns, the temperature of the active gas at the sprayed surface S, which is 1 mm to 10 mm away from the spray nozzle 16, is preferably less than 70°C, more preferably less than 65°C, and even more preferably less than 60°C.

[0074] In order to control the temperature of the active gas at the injection surface S within the aforementioned range, in one embodiment, the active gas injection device 1 includes a temperature control unit that adjusts the temperature of at least one of the working gas and the active gas. Thus, the temperature of the active gas can be accurately controlled to the target value.

[0075] More specifically, the temperature control unit is a heating unit that heats at least one of the working gas and the active gas. This enables higher plasma generation efficiency and helps ensure that the temperature of the active gas at the sprayed surface S, located at a distance of 1 mm to 10 mm from the nozzle 16, exceeds 40°C.

[0076] In this disclosure, the internal electrode 12 is formed in a generally cylindrical or rod-shaped manner, and may have various shapes of protrusions, holes, etc., on the electrode surface opposite the external electrode 13. The cross-sectional shape of the internal electrode 12 perpendicular to the tube axis direction 11X is not particularly limited, and can be, for example, circular, elliptical, quadrilateral, hexagonal, etc. The material of the internal electrode 12 is not particularly limited as long as it is a conductive material; metals used in electrodes of known plasma generating devices can be used. Examples of materials for the internal electrode 12 include stainless steel, copper, tungsten, and carbon.

[0077] In this disclosure, the shape of the external electrode 13 is not particularly limited as long as it can be oriented to face the internal electrode 12 along the tubular dielectric 11. Examples of suitable shapes include cylindrical, rod-shaped, and plate-shaped electrodes. Preferably, the external electrode 13 is cylindrical, allowing it to fit snugly against the outer peripheral surface of the tubular dielectric 11. By making the external electrode 13 cylindrical, the inner peripheral surface of the external electrode 13 can be reliably aligned with the outer peripheral surface of the internal electrode 12, improving plasma generation efficiency. The material of the external electrode 13 is not particularly limited as long as it is a conductive material; metals used in electrodes of known plasma generation devices can be used. Examples of suitable materials for the external electrode 13 include stainless steel, copper, tungsten, and carbon.

[0078] In one embodiment of this disclosure, the entire surface of the external electrode 13 is opposed to the internal electrode 12 in the tube axis direction 11X, thereby maximizing the area of ​​the opposing region between the external electrode 13 and the internal electrode 12, and further improving the plasma generation efficiency which is positively correlated with this area.

[0079] The cross-sectional shape of the tubular dielectric 11 disclosed herein, perpendicular to the tube axis direction 11X, is not particularly limited. For example, it can be circular, elliptical, quadrilateral, hexagonal, or similar shapes, corresponding to the aforementioned internal electrode 12. However, the tubular dielectric 11 is preferably cylindrical or similar shapes that allow it to fit tightly against the inner circumferential surface of the external electrode 13. The material of the tubular dielectric 11 is not particularly limited, and dielectric materials used in known plasma generating devices can be used. Examples of materials for the tubular dielectric 11 include glass, ceramics, and synthetic resins.

[0080] In this disclosure, considering the plasma generation efficiency and the temperature of the ejected active gas, the tubular dielectric 11 is preferably characterized by a high relative permittivity and a thin thickness.

[0081] Furthermore, in this disclosure, the main body 14, the connecting part 15, and the spray pipe 10C in the housing 10B of the spray gun 10 are arranged on the same axis along the pipe axis direction 11X.

[0082] As an example, such as Figure 6 As shown in the cross-sectional view, the cylindrical shell main body 14, the cylindrical external electrode 13, the cylindrical tubular dielectric 11, and the cylindrical internal electrode 12 are arranged in concentric circles from the outside towards the center.

[0083] In this way, the centers of the gas flow paths are aligned on a straight line, resulting in minimal energy loss during the process of the working gas transforming into plasma and then into an active gas.

[0084] The main body 14 in the housing 10B can be made of an insulating material. However, the main body 14 can also be made of a non-insulating material such as metal. In this case, the main body 14 includes a metal outer skin member 14O and an insulating member 14I disposed close to the inner side of the outer skin member. The insulating member 14I is used to separate the metal external electrode 13 disposed inside the housing 10B from the metal outer skin member 14O of the housing 10B (see reference). Figure 5 , Figure 6 ).

[0085] In addition, the connecting part 15 in the housing 10B can also be made of insulating or non-insulating material.

[0086] In this disclosure, the spray pipe 10C is detachably mounted to the front end of the connector 15. For example, the spray pipe 10C can be detachably mounted to the front end of the connector 15 by insertion or threading. This facilitates the installation and removal of the spray pipe 10C, allowing for timely replacement and cleaning of the spray pipe 10C after each use of the spray gun 10.

[0087] The material of the spray nozzle 10C is not particularly limited; it may or may not be insulating. In cases of repeated use, the material of the spray nozzle 10C is preferably a material with excellent wear resistance and corrosion resistance. Examples of materials with excellent wear resistance and corrosion resistance include metals such as stainless steel.

[0088] Figures 7 to 10 An example of the active gas injection device 1 of this disclosure is shown, specifically illustrating the location of the heating section, wherein... Figures 8 to 10 The illustrations of spray gun 10 and pipe 32 are omitted.

[0089] In some of the schemes disclosed herein, such as Figures 8 to 10 As shown, the gas supply unit 30 includes a gas storage tank 30B for storing working gas.

[0090] In some embodiments of this disclosure, as previously described, the active gas injection device 1 may further include a power source 20 that applies a voltage to the plasma generation unit 10A to generate plasma from the working gas.

[0091] To ensure that the temperature of the reactive gas at the sprayed surface S, which is at a distance of more than 1 mm and less than 10 mm from the injection port 16, exceeds 40°C, the reactive gas injection device 1 can be configured as follows: Figure 7 As shown, the spray gun 10 is provided with a heating element H1, and / or as shown in the figure. Figure 7 As shown, a heating element H2 is installed in pipe 32, or as shown in the diagram. Figure 8 As shown, a heating element H3 is provided on the outer periphery of the gas storage tank 30B located within the supply unit 50. Alternatively, a heating element H3 may be provided on the outer periphery of the gas storage tank 30B located within the supply unit 50. Figure 9As shown, a heating element H4 is installed at the outlet of the gas storage tank 30B, and it can also be used as... Figure 10 As shown, a heating element H5 is provided on the outer periphery of the gas storage tank 30B located outside the supply unit 50.

[0092] Each heating section H1-H5 may have at least one of these heating elements; the type is not particularly limited, as long as it can heat the working gas as desired. Furthermore, according to... Figures 7 to 10 It is clear that the size and shape of the heating element should preferably be adjusted appropriately according to its location to achieve better heating performance.

[0093] When the gas supply unit 30 includes a gas storage tank 30B, as described above, the gas storage tank 30B can be as follows: Figures 8 to 9 As shown, it can be arranged in the same supply unit 50 (an example of a housing device) as the power supply 20, or as shown in the example. Figure 10 As shown, it is configured separately from the power supply 20 and located outside the supply unit 50. Therefore, the active gas injection device 1 of this disclosure can be flexibly applied to more application scenarios.

[0094] In summary, the active gas injection device disclosed herein can provide an active gas injection device with sufficient cell activation capacity, disinfection and sterilization effect, and high cure efficiency.

[0095] Those skilled in the art will understand that the features described in the various embodiments and / or claims of this disclosure can be combined or combined in various ways, even if such combinations or combinations are not explicitly described in this disclosure. In particular, the features described in the various embodiments and / or claims of this disclosure can be combined or combined in various ways without departing from the spirit and teachings of this disclosure. All such combinations and / or combinations fall within the scope of this disclosure.

[0096] The embodiments of this disclosure have been described above. However, these embodiments are for illustrative purposes only and are not intended to limit the scope of this disclosure. Although various embodiments have been described above, this does not mean that the measures in the various embodiments cannot be used advantageously in combination. The scope of this disclosure is defined by the appended claims and their equivalents. Various substitutions and modifications can be made by those skilled in the art without departing from the scope of this disclosure, and all such substitutions and modifications should fall within the scope of this disclosure.

Claims

1. An active gas injection device comprising a spray gun and a working gas supply unit connected to the spray gun via a connecting pipe, characterized in that, The spray gun has a plasma generating section, a housing covering the plasma generating section, and a spray pipe disposed at the front end of the housing. The working gas supply unit supplies working gas to the plasma generation unit through the connecting pipe. The plasma generating unit includes: A tubular dielectric having an internal gas flow path through which the working gas is introduced; An internal electrode is disposed inside the tubular dielectric, extends along the tube axis of the tubular dielectric, and is separate from the tubular dielectric. as well as An external electrode is disposed on the outside of the tubular dielectric, facing the internal electrode across the tubular dielectric. The injection pipe has an injection port at its front end from which an active gas, obtained by activation of plasma based on the working gas, is ejected. The temperature of the active gas at the sprayed surface, which is more than 1 mm but less than 10 mm away from the injection port, exceeds 40°C.

2. The active gas injection device according to claim 1, characterized in that, The active gas injection device includes a temperature control unit that adjusts the temperature of at least one of the working gas and the active gas.

3. The active gas injection device according to claim 2, characterized in that, The temperature control unit is a heating unit that heats at least one of the working gas and the active gas.

4. The active gas injection device according to claim 3, characterized in that, The heating element is disposed on the spray gun to heat the working gas.

5. The active gas injection device according to claim 3, characterized in that, The heating element is located in the connecting pipe and heats the working gas.

6. The active gas injection device according to claim 3, characterized in that, The heating unit is located in the working gas supply unit and heats the working gas.

7. The active gas injection device according to claim 6, characterized in that, The working gas supply unit includes a gas storage tank for storing the working gas. The heating unit heats the gas storage tank.

8. The active gas injection device according to claim 7, characterized in that, The active gas injection device also includes a power source for applying voltage to the plasma generating unit to generate plasma from the working gas.

9. The active gas injection device according to claim 8, characterized in that, The gas storage tank is configured separately from the power source.

10. The active gas injection device according to claim 8, characterized in that, The gas storage tank and the power source are housed in the same enclosure.

Citation Information

Patent Citations

  • Plasma treatment equipment

    JP2013128681A