An ion generator with power saving mode

By introducing a blowing diffusion device and a tourmaline structure into the negative ion generator, and combining wind power and water tank humidification technology, the problems of weak negative ion activity, short propagation distance, high static electricity, and high ozone concentration are solved, achieving low-cost, high-efficiency negative ion propagation and air purification.

CN119171186BActive Publication Date: 2025-09-30QINGDAO KANGLUN ELECTROMECHANICAL
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Patent Information

Application Number
CN202410143052.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-02-01
Publication Date
2025-09-30
Estimated Expiration
2044-02-01

AI Technical Summary

Technical Problem

Existing negative ion generators have the problems of weak negative ion activity, short propagation distance, high static electricity, high ozone concentration and high cost.

Method used

A blowing diffusion device is set on the carrier, and a negative ion generating mechanism is used to form a high corona area. The wind force is combined to diffuse negative ions. Negative ions are generated through tourmaline structures and plants and other materials. The fan and air guide are used to transport air to increase the diffusion range and propagation distance. The water tank is used for humidification to eliminate static electricity.

Benefits of technology

It achieves the effects of good negative ion activity, long propagation distance, less static electricity, low ozone concentration and low use cost, improving air quality and health benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an ion generator with a power-saving mode, relating to the field of negative ion generators. The ion generator comprises a carrier and a negative ion generating mechanism, the negative ion generating mechanism being disposed at one end of the carrier and configured to form a high corona zone where negative ions combine with oxygen to form negative air ions. The carrier is also provided with a blower diffuser. The blower diffuser in the present invention draws air in from one end of the carrier and discharges air from the other end. The discharged air passes through the negative ion generating mechanism, diffusing and propagating the generated negative ions over long distances. Compared to the prior art method of generating negative air ions using needle-shaped electrodes, the present invention combines the advantages of good negative ion activity, long propagation distance, low static electricity generation, low ozone concentration, and low cost of use.
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Description

Technical Field

[0001] The present invention relates to the field of negative ion generators, in particular to an ion generator with a power-saving mode. Background Art

[0002] A negative ion generator is a device that generates negative air ions. The device processes the input DC or AC power through an EMI processing circuit and a lightning protection circuit, and then increases it to AC high voltage through a pulse circuit, overvoltage current limiting, high and low voltage isolation, and other circuits. The device then rectifies and filters it through special grade electronic materials to obtain a pure DC negative high voltage. The DC negative high voltage is connected to a release tip made of metal or carbon elements, and the DC high voltage at the tip generates a high corona, which releases a large number of electrons (e - ), and electrons cannot exist in the air for a long time (the lifetime of existing electrons is only at the nanosecond level), and they will be immediately captured by oxygen molecules (O2) in the air, thus generating negative air ions.

[0003] There are two common negative ion generators on the market:

[0004] 1. Simple electron generator.

[0005] The principle used is high-pressure ionization of air, and the results produced include the following substances:

[0006] (1) Unstable negative ions are composed of ionized electrons combined with other molecules in the air. They are extremely unstable and usually have a propagation distance of less than two meters. The air outlet volume is still large and they are almost useless beyond two meters. The activity determines that this "negative ion" has a very weak effect on health.

[0007] (2) Where there are negative ions, there are positive ions. Positive ions can steal electrons, so they have strong oxidizing properties, which is static electricity. Static electricity is very harmful.

[0008] (3) The electronic generator produces a large amount of ozone. Based on environmental protection requirements, there are strict standards for ozone emissions. Ozone is very harmful to human life and has a strong oxidizing ability that can kill biological cells. Long-term exposure to a high concentration of ozone will cause serious damage to lung cells, which can lead to sponge lung and even endanger life.

[0009] (4) High cost.

[0010] 2. Negative ions generated by motion ion converter technology.

[0011] This method simulates the entire process of negative ion generation in nature, including the ionization of air by lightning and the subsequent release of negative ions. The negative ions thus generated have the following characteristics:

[0012] (1) Good activity;

[0013] (2) Long transmission distance;

[0014] (3) There is almost no static electricity because it is absorbed by the ion converter;

[0015] (4) The ozone concentration is very low. After actual testing, it is only 0.014ppm (the standard is 0.05ppm).

[0016] (5) High cost.

[0017] Therefore, it is necessary to propose an ion generator with a power-saving mode to take into account good negative ion activity, long propagation distance, less static electricity generated, low ozone concentration generated, and low cost of use. Summary of the Invention

[0018] The purpose of the present invention is to provide an ion generator with a power-saving mode, so as to achieve the goals of good negative ion activity, long propagation distance, less static electricity, low ozone concentration and low use cost generated in the negative ion generator.

[0019] To achieve the above-mentioned objectives, the present invention provides the following technical solution: an ion generator with a power-saving mode, comprising a carrier and a negative ion generating mechanism, wherein the negative ion generating mechanism is arranged at one end of the carrier, and the negative ion generating mechanism is used to form a high corona zone, in which negative ions combine with oxygen to form air negative ions, and an air blowing diffusion device is installed on the carrier, which takes in air from one end of the carrier and discharges air from the other end. The discharged air passes through the negative ion generating mechanism and diffuses the generated negative ions and transmits them over long distances.

[0020] Preferably, the carrier includes a needle-shaped electrode body.

[0021] Preferably, an electric heating tube is fixedly provided at the end of the needle-shaped electrode body, and an external thread is provided at the end of the electric heating tube, and a limiting nut is connected to the external thread through threaded fitting.

[0022] Preferably, the negative ion generating mechanism includes but is not limited to: tourmaline structure, infrared gemstones and plants containing high amounts of negative ions.

[0023] Preferably, the tourmaline structure is a rectangular plate structure, a mounting hole is provided in the middle of the tourmaline structure, the mounting hole is sleeved on the electric heating tube, and air holes are provided on the upper and lower surfaces of the tourmaline structure, and the air holes are in a bent channel structure. There are multiple tourmaline structures. When multiple tourmaline structures are combined, a complete ventilation channel is formed between the corresponding channel structures, and the ventilation channel passes through one end of the tourmaline structure to form a main outlet. A main diversion channel is also provided on the side of the tourmaline structure, and the main diversion channel is connected to the interior of the air hole. A Y-shaped diversion channel is provided at one end of the main diversion channel away from the air hole, and both ends of the Y-shaped diversion channel away from the main diversion channel pass through the side of the tourmaline structure, and a diversion hole is also provided in the air hole that simultaneously passes through the upper and lower surfaces of the tourmaline structure. There are multiple diversion holes, and a screw fixing hole is also provided on the tourmaline structure. Multiple tourmaline structures are connected by a screw-nut assembly, and the screw-nut assembly includes a screw and a nut. The screw passes through the corresponding screw fixing holes on multiple tourmaline structures at the same time, and the nut is connected to both ends of the screw by threaded cooperation.

[0024] Preferably, a porous structure is provided on the tourmaline structure.

[0025] Preferably, the air blowing and diffusion device includes an air duct and a fan, the needle-shaped electrode body is a cylindrical structure, the air duct is fixedly sleeved on the outer ring of the needle-shaped electrode body, the fan is connected to the outer ring of the needle-shaped electrode body through a support seat, one end of the air duct is connected to the fan through an air inlet pipe, and the other end of the air duct is provided with an air outlet, and the air outlet faces the tourmaline structure.

[0026] Preferably, a spiral guide structure for guiding wind is fixedly provided on the inner wall of the air guide cylinder.

[0027] Preferably, a water tank is provided on the air guide tube, in which water is stored, the lower end of the water tank is a funnel surface, the bottom of the funnel surface is integrally provided with a dropper, the upper end of the dropper is provided with a solenoid valve, and the lower end of the dropper is provided with a sponge column, the bottom of the sponge column is hemispherical, and the hemispherical structure at the bottom of the sponge column is movably extended into the interior of the air guide tube.

[0028] Preferably, a water adding pipe for adding water to the water tank is provided at the upper end of the water tank, a filter cover is clamped on the upper end of the water adding pipe to prevent impurities from entering the water tank, an elastic clamp is fixedly connected to the bottom of the water tank, and the elastic clamp is movably clamped on the air guide tube.

[0029] The technical effects and advantages of the present invention are as follows:

[0030] 1. The carrier of the present invention is equipped with an air blowing and diffusion device, which takes in air from one end of the carrier and discharges air from the other end. The discharged air passes through the negative ion generating mechanism and diffuses and propagates the generated negative ions over a long distance. Compared with the prior art method of using needle-shaped electrodes to generate air negative ions, the present invention takes into account the good negative ion activity, long propagation distance, less static electricity, low ozone concentration and low cost of use.

[0031] 2. In the needle electrode body working mode, the needle electrode body is started and generates negative high voltage electricity. The negative high voltage electricity stimulates the tourmaline structure to produce negative ions, which are mixed with the air to form negative air ions.

[0032] 3. In the needle-shaped electrode body support mode, the needle-shaped electrode body only supports the tourmaline structure. At this time, the fan is started, and the fan transports the air from the end of the needle-shaped electrode body away from the tourmaline structure through the air inlet pipe, air guide tube, and air outlet in sequence to the porous structure on the tourmaline structure. The negative ions on the tourmaline structure are blown and mixed by the air to form negative air ions. The negative air ions diffuse over a wide range after passing through the porous structure, thereby increasing the diffusion range of the negative air ions and increasing the propagation distance of the negative air ions when the air flows;

[0033] 4. The water in the water tank can enter the dropper along the funnel surface. The water entering the dropper is absorbed by the sponge column and gradually gathers on the hemispherical structure. As the wind passes through the air guide tube, the water molecules in the water droplets gathered on the hemispherical structure can be driven by the wind and act on the negative ion generating mechanism, thereby humidifying the negative ion generating mechanism, eliminating static electricity in the negative ions in the air, and reducing the impact of static electricity.

[0034] 5. In the present invention, the structural setting of the sponge column can make water molecules gradually discharged by wind for use, saving water resources and replacing the spray humidification method. When the solenoid valve is closed, the water supply can be shut off, which is convenient for selective use according to actual needs. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] Figure 1 This is a schematic diagram of the composition of the ion generator module with a power-saving mode of the present invention.

[0036] Figure 2 This is a schematic diagram of the composition of an ion generator module in the prior art.

[0037] Figure 3 This is a schematic structural diagram of an ion generator with a power-saving mode according to the present invention.

[0038] Figure 4 It is a schematic diagram of the tourmaline structure of the present invention.

[0039] Figure 5This is a cross-sectional view of an ion generator with a power-saving mode according to the present invention.

[0040] Figure 6 This is a top view of the ion generator with a power-saving mode according to the present invention.

[0041] Figure 7 For the present invention Figure 3 A magnified schematic diagram of the structure in the middle.

[0042] Figure 8 For the present invention Figure 5 A magnified schematic diagram of the structure at point B in the middle.

[0043] Figure 9 For the present invention Figure 5 Enlarged schematic diagram of the structure at point C in the middle.

[0044] Figure 10 For the present invention Figure 6 Enlarged schematic diagram of the structure at point D in the middle.

[0045] Figure 11 This is a structural schematic diagram of the electric heating tube from one perspective of the present invention.

[0046] Figure 12 This is a structural schematic diagram of the electric heating tube of the present invention from another perspective.

[0047] Figure 13 This is a schematic diagram of the structure of the present invention when adding water vapor to wind power.

[0048] In the figure: 1. Needle-shaped electrode body; 2. Electric heating tube; 3. Tourmaline structure; 4. Air guide tube; 5. Fan; 6. Water tank; 7. Air outlet; 8. Elastic clamp; 9. Support seat; 10. Air hole; 11. Screw and nut assembly; 12. Main outlet; 13. Mounting hole; 14. Limit nut; 15. Auxiliary outlet; 16. External thread; 17. Screw fixing hole; 18. Spiral guide structure; 19. Diverter hole; 20. Main diverter channel; 21. Y-shaped diverter channel; 22. Water adding pipe; 23. Filter cover; 24. Air inlet pipe; 25. Sponge column; 26. Dropper; 27. Solenoid valve. DETAILED DESCRIPTION

[0049] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0050] The present invention provides Figures 1-13An ion generator with a power-saving mode is shown, comprising a carrier and a negative ion generating mechanism, wherein the negative ion generating mechanism is arranged at one end of the carrier, and the negative ion generating mechanism is used to form a high corona zone, in which negative ions combine with oxygen to form air negative ions, and a blowing diffusion device is installed on the carrier, which takes in air from one end of the carrier and discharges air from the other end. The discharged air passes through the negative ion generating mechanism and diffuses and propagates the generated negative ions over long distances. Compared with the prior art method of using needle-shaped electrodes to form air negative ions, the negative ion activity is good, the propagation distance is long, the static electricity generated is small, the ozone concentration generated is low, and the use cost is low.

[0051] like Figure 2 As shown in , the principle of using needle-shaped electrodes to form negative air ions in the prior art is:

[0052] Applying the same negative high voltage to the needle electrode will generate a high corona at the end of the needle electrode. The negative ions in the high corona combine with oxygen to form negative air ions.

[0053] The defects of using needle-shaped electrodes to form negative air ions in the prior art are as follows:

[0054] 1. Since the end of the needle-shaped electrode is a common electrode end, the high corona angle range released is only about 60°, and the diffusion range is small;

[0055] 2. Since there is no external force to drive the spread of negative air ions, the negative air ions generated by the needle-shaped electrode can usually only spread within a range of 2 meters, and the propagation distance is short;

[0056] 3. The ionized electrons combine with other molecules in the air, are extremely unstable, have low activity, and have little effect on health;

[0057] 4. Due to the lack of static electricity removal measures, the area where negative air ions are released has a lot of static electricity;

[0058] 5. Using high voltage electricity to ionize the air will produce a large amount of ozone, which is not environmentally friendly and harmful to the body;

[0059] 6. The method of using high voltage electricity to ionize air is costly.

[0060] In the present invention, a blowing diffusion device is provided on the carrier, which can expand the high corona zone generated by the negative ion generating mechanism to about 180 degrees, and can apply wind force to the negative air ions to increase the propagation distance of the negative air ions. The negative air ions are diffused by blowing, so that the surrounding area is filled with negative air ions, and the wind force pushes away the cations in the air, reducing the generation of static electricity; the advantages of a large range of negative air ions, a long propagation distance and less static electricity are taken into account.

[0061] The carrier in the present invention is also a needle-shaped electrode that can generate negative high voltage electricity, but this needle-shaped electrode can be used in two ways:

[0062] The first method generates negative high voltage electricity to accelerate the generation of negative air ions, but the cost is relatively high, the negative air ions generated are less active, and they are prone to produce ozone.

[0063] The second method does not generate negative high voltage electricity, but generates a large number of negative ions through the negative ion generating mechanism. A large number of negative ions combine with oxygen to produce air negative ions. The advantages are: low cost, high negative ion activity, long negative ion propagation distance, wide diffusion range and no ozone generation.

[0064] The negative ion generating mechanism is arranged at the end of the carrier, and there are many options for the negative ion generating mechanism, so as to achieve the purpose of good negative ion activity, long propagation distance, less static electricity generated, low ozone concentration generated, and low use cost.

[0065] The following are several examples to describe the effects of different negative ion generating mechanisms:

[0066] In Example 1, the carrier includes a needle-shaped electrode body 1, an electric heating tube 2 is fixedly provided at the end of the needle-shaped electrode body 1, a tourmaline structure 3 is selected as the negative ion generating mechanism, the tourmaline structure 3 is installed on the electric heating tube 2, a mounting hole 13 is provided in the middle of the tourmaline structure 3, the mounting hole 13 is sleeved on the electric heating tube 2, a porous structure is provided on the tourmaline structure 3, and the air blowing diffusion device includes an air guide 4 and a fan 5. The needle-shaped electrode body 1 is a cylindrical structure, the air guide 4 is fixedly sleeved on the outer ring of the needle-shaped electrode body 1, and the fan 5 is connected to the outer ring of the needle-shaped electrode body 1 through a support seat 9. One end of the air guide 4 It is connected to the fan 5 through an air inlet pipe 24, and an air outlet 7 is provided at the other end of the air guide tube 4, and the air outlet 7 faces the tourmaline structure 3; when working, the fan 5 is started, and the fan 5 transports the air from the end of the needle-shaped electrode body 1 away from the tourmaline structure 3 through the air inlet pipe 24, the air guide tube 4, and the air outlet 7 in sequence to the porous structure on the tourmaline structure 3. The tourmaline structure 3 can generate negative ions, and the oxygen in the air combines with the negative ions to generate air negative ions. The air negative ions diffuse over a wide range after passing through the porous structure, thereby increasing the diffusion range of the air negative ions; based on wind transportation, the propagation distance of the air negative ions is long.

[0067] It should be noted that the tourmaline structure 3 is a natural mineral material that permanently releases negative ions. It has low cost, can release negative ions without electric shock, and does not release ozone.

[0068] The tourmaline structure 3 has a porous structure. This porous structure gives the tourmaline structure 3 a large specific surface area, which is conducive to the adsorption and release of negative ions. When the tourmaline structure 3 is stimulated by the outside world, it will release the stored negative ions, thereby affecting the surrounding air quality. In addition to stimulation, temperature is also an important factor affecting the release of negative ions by the tourmaline structure 3. Generally, the higher the temperature, the faster the tourmaline structure 3 releases negative ions. This is because high temperature can accelerate the movement of electrons inside the tourmaline structure 3, promoting the release of negative ions.

[0069] The tourmaline structure 3 can also generate negative ions through other means, such as illumination or electric fields. When the tourmaline structure 3 is exposed to light, the energy of the photons excites electrons within the structure, thereby generating negative ions. Furthermore, under the influence of the electric field, the electrons within the structure 3 are also driven by the force of the electric field, thereby forming negative ions.

[0070] The mechanism by which Tourmaline Structure 3 generates negative ions is primarily influenced by factors such as external stimuli, its porous structure, and temperature. Through these factors, Tourmaline Structure 3 continuously releases negative charges, which then combine with oxygen molecules in the air to form negative ions. Negative ions possess certain biological activities and health benefits in the air, playing a positive role in improving air quality and enhancing human health. Therefore, Tourmaline Structure 3 can be widely used in fields such as air purification.

[0071] When working, the needle-shaped electrode body 1 has two modes: first, working mode; second, supporting mode;

[0072] When the needle-shaped electrode body 1 is in working mode, the needle-shaped electrode body 1 is started and generates negative high voltage electricity. The negative high voltage electricity stimulates the tourmaline structure 3 to generate negative ions, which are mixed with air to form negative air ions.

[0073] In the support mode of the needle-shaped electrode body 1, the needle-shaped electrode body 1 only supports the tourmaline structure 3. At this time, the fan 5 is started, and the fan 5 transports the air from the end of the needle-shaped electrode body 1 away from the tourmaline structure 3 to the porous structure on the tourmaline structure 3 through the air inlet pipe 24, the air guide tube 4, and the air outlet 7 in sequence. The negative ions on the tourmaline structure 3 are blown and mixed by the air to form negative air ions. The negative air ions diffuse over a wide range after passing through the porous structure, thereby increasing the diffusion range of the negative air ions, and can increase the propagation distance of the negative air ions when the air flows.

[0074] Furthermore, when the electric heating tube 2 is energized, heat is generated, which heats the tourmaline structure 3 , thereby stimulating the tourmaline structure 3 to produce more negative ions through high temperature, thereby forming more negative air ions.

[0075] The wind-powered transport method of the present invention takes into account the advantages of air negative ion propagation distance, diffusion range and low cost.

[0076] A spiral guide structure 18 for guiding wind is fixedly provided on the inner wall of the air guide tube 4. The wind passes through the spiral guide structure 18 to form a spirally transported wind. The spirally propagated wind enters the porous structure of the tourmaline structure 3 at different angles, thereby making the contact area between air and negative ions wider, the air negative ions are diffused wider, and the propagation distance is longer.

[0077] Among them, the tourmaline structure 3 is a rectangular plate structure, and the upper and lower surfaces of the tourmaline structure 3 are provided with air holes 10. The air holes 10 are curved channel structures. There are multiple tourmaline structures 3. When multiple tourmaline structures 3 are combined, a complete ventilation channel is formed between the corresponding channel structures. When the wind enters the air holes 10, the negative ions in the porous structure of the tourmaline structure 3 can be blown out more fully.

[0078] Furthermore, a main diversion channel 20 is provided on the side of the tourmaline structure 3, and the main diversion channel 20 is connected to the interior of the wind hole 10. A Y-shaped diversion channel 21 is provided at one end of the main diversion channel 20 away from the wind hole 10, and both ends of the Y-shaped diversion channel 21 away from the main diversion channel 20 pass through the side of the tourmaline structure 3; when the wind enters the wind hole 10, it can be diverted into the main diversion channel 20, and the wind entering the main diversion channel 20 is guided by the end of the main diversion channel 20 and then diverted again to be discharged from the auxiliary outlets 15 at the two ends of the Y-shaped diversion channel 21, forming wind discharge in different directions; and the wind hole 10 is also provided with a diversion hole 19 that simultaneously passes through the upper and lower surfaces of the tourmaline structure 3, and a plurality of diversion holes 19 are provided. The wind entering the wind hole 10 can be discharged after being diverted by the diversion hole 19, thereby increasing the diffusion range of negative air ions, replacing the conventional needle-shaped electrode used in the prior art that can only produce a high corona with a diffusion angle of about 60°.

[0079] The tourmaline structure 3 is also provided with a screw fixing hole 17, and multiple tourmaline structures 3 are connected by a screw nut assembly 11. The screw nut assembly 11 includes a screw and a nut. The screw passes through the corresponding screw fixing holes 17 on multiple tourmaline structures 3 at the same time, and the nut is connected to the two ends of the screw through threaded fitting, thereby achieving the purpose of fixing multiple tourmaline structures 3; it is convenient for disassembly and replacement, and it is also convenient to assemble a suitable number of tourmaline structures 3 according to actual needs.

[0080] In the present invention, the electric heating tube 2 can heat the tourmaline structure 3 when started and can be used selectively. The end of the electric heating tube 2 is provided with an external thread 16, and the external thread 16 is connected to a limiting nut 14 through threaded cooperation. The limiting nut 14 has a certain limiting effect on the tourmaline structure 3.

[0081] It should be noted that the negative ion generating mechanism in the present invention can not only use the tourmaline structure 3, but also use minerals with high negative ion content, such as infrared gems, etc.; it can also use some plants that easily produce negative ions, etc., which is more cost-effective and can spread the negative ions generated by plants farther, which is more environmentally friendly.

[0082] In the present invention, a water tank 6 is provided on the air guide 4, and water is stored in the water tank 6. A water adding pipe 22 for adding water to the water tank 6 is provided at the upper end of the water tank 6. A filter cover 23 is engaged at the upper end of the water adding pipe 22 to prevent impurities from entering the water tank 6. The lower end of the water tank 6 is a funnel surface, and a dropper 26 is integrally provided at the bottom of the funnel surface. A solenoid valve 27 is provided at the upper end of the dropper 26, and a sponge column 25 is provided inside the lower end of the dropper 26. The bottom of the sponge column 25 is hemispherical, and the bottom of the sponge column 25 is The hemispherical structure movably extends into the interior of the air guide 4. When the solenoid valve 27 is opened, the water in the water tank 6 can enter the dropper 26 along the funnel surface. The water entering the dropper 26 is absorbed by the sponge column 25 and gradually gathers on the hemispherical structure. As the wind passes through the air guide 4, the water molecules in the water droplets gathered on the hemispherical structure can be driven by the wind and act on the negative ion generating mechanism, thereby humidifying the negative ion generating mechanism, eliminating static electricity in the negative ions in the air, and reducing the impact of static electricity.

[0083] Furthermore, in the present invention, through the structural setting of the sponge column 25, water molecules can be gradually discharged by wind for use, saving water resources and replacing the spray humidification method. When the solenoid valve 27 is closed, the water supply can be shut off, which is convenient for selective use according to actual needs.

[0084] It should be noted that an elastic snap ring 8 is fixedly connected to the bottom of the water tank 6, and the elastic snap ring 8 is movably engaged with the air guide tube 4, which is convenient for disassembly, assembly and replacement.

Claims

1. An ion generator with a power-saving mode, comprising a carrier and a negative ion generating mechanism, characterized in that: The negative ion generating mechanism is arranged at one end of the carrier, and the negative ion generating mechanism is used to form a corona zone, in which negative ions combine with oxygen to form air negative ions. The carrier is equipped with a blowing diffusion device, which takes in air from one end of the carrier and discharges air from the other end. The discharged air passes through the negative ion generating mechanism and diffuses and propagates the generated negative ions. The carrier comprises a needle-shaped electrode body (1); An electric heating tube (2) is fixedly provided at the end of the needle-shaped electrode body (1); The negative ion generating mechanism includes a tourmaline structure (3); The tourmaline structure (3) is a rectangular plate-shaped structure. A mounting hole (13) is provided in the middle of the tourmaline structure (3). The mounting hole (13) is sleeved on the electric heating tube (2). The upper and lower surfaces of the tourmaline structure (3) are both provided with air holes (10). The air holes (10) are in a bent channel structure. There are multiple tourmaline structures (3). When multiple tourmaline structures (3) are combined, a complete ventilation channel is formed between the corresponding channel structures. The side of the tourmaline structure (3) is also provided with A main diversion channel (20) is connected to the interior of the air hole (10); a Y-shaped diversion channel (21) is provided at one end of the main diversion channel (20) away from the air hole (10); both ends of the Y-shaped diversion channel (21) away from the main diversion channel (20) pass through the side of the tourmaline structure (3); the air hole (10) is further provided with a diversion hole (19) that passes through the upper and lower surfaces of the tourmaline structure (3); and a plurality of diversion holes (19) are provided.

2. The ion generator with a power-saving mode according to claim 1, characterized in that: The end of the electric heating tube (2) is provided with an external thread (16), and a limiting nut (14) is connected to the external thread (16) through threaded matching.

3. The ion generator with a power-saving mode according to claim 1, characterized in that: The tourmaline structure (3) is further provided with a screw fixing hole (17), and a plurality of tourmaline structures (3) are connected via a screw nut assembly (11). The screw nut assembly (11) comprises a screw and a nut. The screw simultaneously passes through the corresponding screw fixing holes (17) on the plurality of tourmaline structures (3), and the nut is connected to both ends of the screw via threaded engagement.

4. The ion generator with a power-saving mode according to claim 1, characterized in that: The tourmaline structure (3) is provided with a porous structure.

5. The ion generator with a power-saving mode according to claim 1, characterized in that: The blowing and diffusion device comprises an air guide tube (4) and a fan (5); the needle-shaped electrode body (1) is a cylindrical structure; the air guide tube (4) is fixedly sleeved on the outer ring of the needle-shaped electrode body (1); the fan (5) is connected to the outer ring of the needle-shaped electrode body (1) through a support seat (9); one end of the air guide tube (4) is connected to the fan (5) through an air inlet pipe (24); the other end of the air guide tube (4) is provided with an air outlet (7), and the air outlet (7) faces the tourmaline structure (3).

6. The ion generator with a power-saving mode according to claim 5, characterized in that: A spiral guide structure (18) for guiding wind force is fixedly provided on the inner wall of the air guide cylinder (4).

7. The ion generator with a power-saving mode according to claim 5, characterized in that: The air guide tube (4) is provided with a water tank (6), in which water is stored. The lower end of the water tank (6) is a funnel surface, and a dropper (26) is integrally provided at the bottom of the funnel surface. The upper end of the dropper (26) is provided with a solenoid valve (27), and a sponge column (25) is provided inside the lower end of the dropper (26). The bottom of the sponge column (25) is hemispherical, and the hemispherical structure at the bottom of the sponge column (25) is movably extended into the interior of the air guide tube (4).

8. The ion generator with a power-saving mode according to claim 7, characterized in that: The upper end of the water tank (6) is provided with a water adding pipe (22) for adding water into the water tank (6); the upper end of the water adding pipe (22) is engaged with a filter cover (23) for preventing impurities from entering the water tank (6); the bottom of the water tank (6) is fixedly connected with an elastic snap ring (8), and the elastic snap ring (8) is movably engaged with the air guide tube (4).

Citation Information

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