Vacuum Cleaner Adapter Device with Electric Shock Module
The vacuum cleaner adapter device with an integrated electric shock module addresses the ineffectiveness of traditional vacuum cleaners in capturing moving insects by using high-voltage discharge to kill insects, enhancing the device's functionality and providing an environmentally friendly insect control solution.
Patent Information
- Application Number
- JP2024547425
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-05-08
- Publication Date
- 2025-06-12
- Estimated Expiration
- 2043-05-08
AI Technical Summary
Existing vacuum cleaners are ineffective in capturing and processing moving insects like cockroaches and ants, and conventional insect control methods face issues with drug residues, accidental ingestion, and environmental pollution.
A vacuum cleaner adapter device equipped with an electric shock module, which includes an adapter device main body, an electric shock module, and a voltage boosting module. The electric shock module features a high-voltage discharge system with electrodes and a voltage boosting module to generate arc sparks, effectively killing insects.
The adapter device allows for the effective capture and killing of insects within the vacuum cleaner, maintaining the device's functionality for dust and debris removal while providing an eco-friendly solution to insect control.
Smart Images

Figure 2025517855000001_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to a vacuum cleaner adapter device, and more particularly to a vacuum cleaner adapter device equipped with an electric shock module.
Background Art
[0002] Vacuum cleaners are one of the standard cleaning tools in modern household life because they are very convenient to use and operate and can quickly suck up dust and foreign objects to clean the room. For moving insects (such as cockroaches and ants) that are everywhere in daily life, since the insects move, even after being sucked up by the vacuum cleaner, they remain in the dust box and run around, so they cannot be processed. Therefore, generally, vacuum cleaners are not used to suck up moving insects, and it is not considered that vacuum cleaners are used to exterminate insects. Generally, when cockroaches and ants run around, most people have psychological fears and feel great mental stress.
[0003] There are various commercially available methods for exterminating cockroaches, which can be broadly classified into methods using chemicals, physically capturing methods, or methods that mix chemicals and physical capture. For example, cockroach traps come in various types such as bait type, adhesive type, and capture type. The usage method is to randomly place the cockroach trap and put bait in it. The bait can be divided into poisonous bait and non-poisonous bait. Poisonous bait usually has an insecticide component added and has a delayed effect. When an insect takes the bait with the added insecticide component back to the nest group, the bait spreads to other insects, so a large number of pests can be exterminated. Place non-poisonous bait in the cockroach trap, lure the cockroaches to crawl in and eat, and combine it with a strong adhesive or a capture box from which they cannot get out once they enter, so that the cockroaches cannot escape.
[0004] The use of the above-mentioned poisoned baits has problems such as drug residues and accidental ingestion by children and pets. Long-term and large-scale use of drugs not only causes drug resistance in insects but may also cause harmful pollution to the environment. In the capture method combined with a strong adhesive, there are problems such as children and pets touching the surface of the adhesive, as well as the problem of dealing with the situation when insects adhere. In addition, when using a capture box from which it is impossible to get out once entered, the treatment when capturing running cockroaches also becomes a problem. The above various cockroach traps are randomly placed and need to be collected and discarded after being fixed for a certain period, but it often happens that users forget the placement location.
[0005] In summary, the above various cockroach control methods have problems and defects that need to be overcome. In view of this, how to improve the above problems is the main issue that the present disclosure attempts to solve.
Summary of the Invention
[0006] The present disclosure provides a vacuum cleaner adapter device equipped with an electric shock module to solve the problems of the above-mentioned prior art.
[0007] The present disclosure provides a vacuum cleaner adapter device equipped with an electric shock module. This device includes an adapter device main body, an electric shock module, and a voltage boosting module. The adapter device main body has an air inlet and an air outlet. The air outlet is removably suction-connected to the suction main body to form a negative pressure inside the adapter device main body. Air flows in from the air inlet and is discharged from the air outlet. The electric shock module is arranged inside the adapter device main body and can perform high-voltage discharge to generate arc sparks. The voltage boosting module is electrically connected to the electric shock module and provides high voltage to the electric shock module for discharge.
[0008] Furthermore, the electric shock module includes a first electrode and a second electrode spaced apart from each other, an electric shock region is formed between the first electrode and the second electrode, and air flows through the electric shock region.
[0009] Furthermore, when the object to be shocked enters the shock region, a high-voltage discharge occurs between the first electrode and the second electrode, generating an arc spark.
[0010] Furthermore, the first electrode is a first metal mesh including first pores, the second electrode is a second metal mesh including second pores, and after the air flows through the first pores into the shock region and then flows out from the second pores to the air outlet.
[0011] Furthermore, the first pores are larger than the second pores, and the object to be shocked can pass through the first pores but cannot pass through the second pores.
[0012] Furthermore, the first electrode is a first metal piece, the second electrode is a second metal piece, the first metal piece and the second metal piece together form a shock region inlet on the side close to the air inlet, the first metal piece and the second metal piece together form a shock region outlet on the side close to the air outlet, and the object to be shocked flows in from the shock region inlet and is discharged from the shock region outlet.
[0013] Furthermore, the shock region inlet is larger than the shock region outlet.
[0014] Furthermore, it further includes an electrode position adjustment control unit capable of relatively moving the first electrode and the second electrode to change the size of the shock region.
[0015] Furthermore, the first electrode is a flexible metal piece, and the flexible metal piece flexibly deforms and moves closer to the second electrode without contacting it.
[0016] Furthermore, after the flexible metal piece flexibly deforms, it can generate a shock gain region.
[0017] Furthermore, it further includes a voltage boosting module, and the voltage boosting module is electrically connected to the shock module.
[0018] Furthermore, it further includes a control switch, and the control switch is electrically connected to the step-up voltage module and is used to control the power supply of the electric shock module.
[0019] Furthermore, it further includes a battery module that is electrically connected to the step-up voltage module in a quickly removable manner and is used to supply power to the step-up voltage module.
[0020] One embodiment of the above disclosure has at least the following advantages or beneficial effects. The vacuum cleaner adapter device equipped with the electric shock module of the present disclosure is used in combination with an existing vacuum cleaner, and the operation is very convenient. When the object to be shocked enters the electric shock area, the step-up voltage module provides a high voltage to the electric shock module for discharging, generates an arc spark, and can effectively give an electric shock to the object to be shocked. The vacuum cleaner can maintain the function of quickly sucking up dust and foreign objects, and can also have the function of killing insects at the same time. After the object to be shocked receives an electric shock, it presents a dry state and pathogens do not reproduce, so it is suitable for popularization and is widely applied.
Brief Description of the Drawings
[0021]
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Embodiments for Carrying Out the Invention
[0022] Hereinafter, several preferred examples of the technical means of the present invention will be described in detail with reference to the drawings so as to deeply understand and agree with the present disclosure.
[0023] Hereinafter, the present disclosure will be described in more detail with reference to the accompanying drawings so that those skilled in the art can implement it by referring to the text of the specification. In the embodiments of the present disclosure, when there are descriptions related to "first", "second", etc., the descriptions such as "first", "second", etc. are for the purpose of explanation only, and it cannot be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Thus, the features defined by "first" and "second" can include at least one feature, either explicitly or implicitly.
[0024] It should also be noted that in the description of the present disclosure, the terms "arrangement" and "connection" should be understood in a broader sense unless otherwise clearly defined and limited. For example, "connection" may be a fixed connection, a detachable connection, or an integral connection. It may be a mechanical connection or an electrical connection. It may be a direct connection, an indirect connection through an intermediate medium, or an internal communication between two elements. Those skilled in the art can understand the specific meaning of the above terms in the present disclosure according to the situation.
[0025] In addition, when the meaning of "and / or" appears in the present disclosure, three parallel solutions are included. For example, in the case of "A and / or B", the solutions include solution A, or solution B, or a solution that satisfies both A and B simultaneously. Also, the technical solutions in each embodiment can be combined with each other, but they must be based on what those skilled in the art can implement. If the combination of technical solutions seems to be contradictory or cannot be realized, such a combination of technical solutions does not exist and should be considered not to be within the scope of protection required by the present disclosure.
[0026] Hereinafter, the technical means of the present disclosure will be described in detail with reference to the accompanying drawings. The devices and their operation methods described below are used only for explaining the embodiments of the present disclosure and do not define the scope of the present invention. Furthermore, the same numbers in the specification refer to the same components.
[0027] First, please refer to FIG. 1. FIG. 1 shows a schematic cross-sectional view of a vacuum cleaner adapter device 1 equipped with an electric shock module according to an embodiment of the present disclosure. The vacuum cleaner adapter device 1 equipped with an electric shock module includes an adapter device main body 11 and an electric shock module 12. The electric shock module 12 is disposed inside the adapter device main body 11. The adapter device main body 11 is a hollow housing and has an air inlet 111 and an air outlet 112 at both ends of the adapter device main body 11, respectively. The air outlet 112 is removably suction-connected to a suction main body 13 to form a negative pressure inside the adapter device main body 11, allowing external air to flow in from the air inlet 111 and be discharged from the air outlet 112. The suction main body 13 includes various vacuum cleaners, but is not limited thereto. A vacuum cleaner is a device that sucks air containing dust by the suction force of a suction motor provided in the cleaner main body and controls a dust separation mechanism to filter the dust. Whether the vacuum cleaner is a canister-type cleaner, an upright-type cleaner, or a handheld-type cleaner, it does not affect the scope of the rights protected by the present disclosure.
[0028] In this embodiment, the electric shock module 12 includes a first electrode 121 and a second electrode 122 that are separated from each other, and an electric shock region 123 is formed between the first electrode 121 and the second electrode 122. There is a fixing structure (not shown) on the inner wall of the adapter device main body 11. The fixing structure can fix the electric shock module 12 inside the adapter device main body 11. Air flows in from the air inlet 111, flows through the first electrode 121, the electric shock region 123, and the second electrode 122 in sequence, and then is discharged from the air outlet 112.
[0029] Please refer to FIGS. 1 and 2 together. FIG. 2 shows a three-dimensional schematic diagram of the electric shock module 12 in FIG. 1. Here, the first electrode 121 is a first metal mesh 1211 and includes a first pore 12111, and the second electrode 122 is a second metal mesh 1221 and includes a second pore 12211. Air flows through the electric shock region 123 from the first pore 12111 and then flows from the second pore 12211 to the air outlet 112 and is discharged. The first pore 12111 is larger than the second pore 12211. The object to be shocked 14 flows into the inside of the adapter device main body 11 from the air inlet 111 together with the external air, passes through the first pore 12111 of the first metal mesh 1211, and can enter the electric shock region 123. However, most of the objects to be shocked 14 cannot pass through the second pore 12211 because their size is larger than that of the second pore 12211, and are blocked by the second metal mesh 1221 and stay on the second metal mesh 1221. A voltage boosting module (not shown) is electrically connected to the electric shock module 12 and supplies a high voltage to the electric shock module 12 for discharging. After the object to be shocked 14 flows into the electric shock region 123, a high-voltage discharge occurs between the first electrode 121 and the second electrode 122, and an arc spark is generated. The size of the object to be shocked 14 described in the present disclosure is larger than the volume of general dust and floating particles. For example, it may be a general insect such as a cockroach or an ant, but it is not limited thereto. As long as it can pass through the first pore 12111 of the first metal mesh 1211 and enter the electric shock region 123 and be blocked by the second metal mesh 1221 and stay on the second metal mesh 1221, it is the object to be shocked 14 represented in the present disclosure.
[0030] Please refer to FIG. 3. FIG. 3 shows a schematic cross-sectional view of a vacuum cleaner adapter device 2 provided with an electric shock module according to another embodiment of the present disclosure. The vacuum cleaner adapter device 2 provided with an electric shock module includes an adapter device main body 11 and an electric shock module 22. The electric shock module 22 is disposed inside the adapter device main body 11. Please also refer to FIG. 4. FIG. 4 is a perspective schematic view of the electric shock module 22 in FIG. 3. The electric shock module 22 includes a first electrode 221 and a second electrode 222 spaced apart from each other, and an electric shock region 223 is formed between the first electrode 221 and the second electrode 222. The electric shock module 22 of the present embodiment is different from the electric shock module 12 in that the first electrode 221 of the electric shock module 22 is composed of a first metal piece 2211, and the second electrode 222 is composed of a second metal piece 2221. The first metal piece 2211 and the second metal piece 2221 are metal pieces, and there are no mesh-like pores in the metal pieces themselves and air cannot pass through them. Therefore, the feature of the present embodiment is that the first electrode 221 and the second electrode 222 spaced apart from each other are arranged along the air flow direction, and an electric shock region 223 through which the air flow can pass is formed in the middle of the distance between the two. The first metal piece 2211 and the second metal piece 2221 together form an electric shock region inlet 2231 on the side close to the air inlet 111, and the first metal piece 2211 and the second metal piece 2221 together form an electric shock region outlet 2232 on the side close to the air outlet 112. The object to be shocked 14 flows in from the electric shock region inlet 2231 and flows out from the electric shock region outlet 2232.
[0031] As shown in FIG. 3, the interior of the adapter device body 11 gradually contracts inward from the air inlet 111 toward the electric shock area inlet 2231 to form a funnel shape, and the outlet of the funnel is connected to the electric shock area inlet 2231. In this embodiment, the areas of the electric shock area inlet 2231 and the electric shock area outlet 2232 are the same. As can be understood, the first metal piece 2211 and the second metal piece 2221 are not limited to the arrangement, position, and shape shown in FIG. 4, and the two electrodes are separated. When the object to be shocked 14 flows through the electric shock area 223 and the voltage boosting module provides a high voltage to the electric shock module 22 for discharging, a high voltage discharge occurs between the first electrode 221 and the second electrode 222, an arc spark is generated, and if the object to be shocked 14 can flow out of the electric shock area 223 after being shocked, this is the disclosure spirit that this embodiment intends to protect.
[0032] Please refer to FIG. 5. FIG. 5 shows a cross-sectional schematic view of an electric shock module 32 according to another embodiment of the present disclosure. The electric shock module 32 includes a first electrode 321 and a second electrode 322 that are separated from each other. An electric shock area 323 is formed between the first electrode 321 and the second electrode 322. The first electrode 321 of the electric shock module 32 is a first metal piece 3211, and the second electrode 322 is a second metal piece 3221. The first metal piece 3211 and the second metal piece 3221 together form an electric shock area inlet 3231 on the side closer to the air inlet 111, and the first metal piece 3211 and the second metal piece 3221 together form an electric shock area outlet 3232 on the side closer to the air outlet 112. The object to be shocked 14 flows in from the electric shock area inlet 3231 and flows out from the electric shock area outlet 3232. The electric shock module 32 of this embodiment is different from the embodiment of the electric shock module 22 in that the electric shock area inlet 3231 of the electric shock module 32 is larger than the electric shock area outlet 3232. Air flows in from the electric shock area inlet 3231 with a larger area to the electric shock area outlet 2232 with a smaller area. When the area of the electric shock area inlet 3231 is larger, the object to be shocked 14 can more easily enter the electric shock area 323. When the electric shock area outlet 3232 is smaller, an electric shock gain can occur, so that the object to be shocked 14 is effectively shocked and the object to be shocked 14 can be discharged from the air outlet 112 after being shocked.
[0033] Comparing FIG. 3 and FIG. 5, in the embodiment of FIG. 3, the electric shock region 223 is formed by the substantially parallel first electrode 221 and the second electrode 222. Due to the inconsistency of the inner diameter of the adapter device body 11, the effect of a relatively large inhalation surface can be achieved. For example, in FIG. 3, the inner diameter of the adapter device body 11 can gradually contract from the air inlet 111 towards the electric shock region inlet 2231 to form a funnel shape. The outlet of the funnel is connected to the electric shock region inlet 2231, whereby the object to be shocked 14 can easily enter from the inlet with a large area and the effect of effectively receiving an electric shock at the electric shock region outlet 2232 is achieved. In the embodiment of FIG. 5, the electric shock region 323 is directly formed in a funnel shape by the first electrode 321 and the second electrode 322, whereby the object to be shocked 14 can easily enter from the electric shock region inlet 3231 with a large area and the effect of effectively receiving an electric shock at the electric shock region outlet 3232 is achieved. As can be seen from the above, in the embodiments disclosed in the present disclosure, even if the electric shock region inlet 3231 formed by the first electrode 321 and the second electrode 322 is larger than the electric shock region outlet 3232, or even if the area of the air inlet 111 is larger than the electric shock region inlet 2231 due to the inconsistency of the inner diameter of the adapter device body 11, as long as the object to be shocked 14 can easily enter at the inlet and reach the effect of effectively receiving an electric shock at the outlet, it falls within the scope of rights to be protected by the spirit of the present disclosure.
[0034] In aerodynamics, when the area of the air inlet decreases, the suction force increases. However, since the main purpose of the present disclosure is to effectively apply an electric shock to the shocked object 14 being inhaled, the reason that the electric shock region inlet 3231 is larger than the electric shock region outlet 3232, or the area of the air inlet 111 is larger than the electric shock region inlet 2231, is to relatively easily achieve the purpose of the electric shock. To increase the suction force, the power of the suction body 13 can be increased, or a suction head with a relatively small suction inlet area can be further added to the front end of the air inlet 111. As shown in FIG. 6, a suction head whose suction inlet area gradually decreases from the air inlet 111 toward the outside can be combined at the front end of the air outlet 111 of the vacuum cleaner adapter device 2 equipped with the electric shock module. As can be understood, the vacuum cleaner adapter device 1 equipped with the electric shock module can similarly be combined with a suction head whose suction inlet area gradually decreases toward the outside. Therefore, the vacuum cleaner adapter devices 1 and 2 equipped with the electric shock module disclosed in the present disclosure are for the purpose of enabling the shocked object 14 to easily enter and increasing the suction force, and the two do not conflict with each other and can assist when necessary.
[0035] Please refer to FIG. 7. FIG. 7 shows a schematic diagram of the electric shock module 42 according to another embodiment of the present disclosure. The electric shock module 42 includes a first electrode 421 and a second electrode 422 spaced apart from each other, and an electric shock region 423 is formed between the first electrode 421 and the second electrode 422. The first electrode 421 of the electric shock module 42 is composed of a first metal piece 4211, and the second electrode 422 is composed of a second metal piece 4221. The difference between the electric shock module 42 and the electric shock module 22 is as follows. The electric shock module 42 of this embodiment further includes an electrode position adjustment control unit 424, and the electrode position adjustment control unit 424 can adjust and control the first metal piece 4211 to be displaced from position A to position B. When the first electrode 421 is at position A, the distance between the first electrode 421 and the second electrode 422 is greater than the distance that can cause high-voltage discharge to generate arc sparks. When moving to position B, a high-voltage discharge is caused to form an electric shock region 423 that can generate arc sparks. As can be understood, in another embodiment, when the first electrode 421 is at position A, the distance between the first electrode 421 and the second electrode 422 can cause high-voltage discharge to generate arc sparks. When moving to position B, an electric shock region 423' smaller than the original volume is formed. When the volume becomes smaller, an electric shock effect gain can be obtained. In this embodiment, the first metal piece 4211 and the second metal piece 4221 are relatively displaced substantially in parallel, that is, the size changes of the electric shock region inlet 2231 and the electric shock region outlet 3232 are the same. As can be understood, in other embodiments, the first metal piece 4211 and the second metal piece 4221 may have different size changes of the electric shock region inlet 2231 and the electric shock region outlet 3232, as long as the object to be shocked 14 can be effectively shocked and can be discharged from the air outlet 112 after being shocked, which is the disclosed spirit that this embodiment intends to protect.
[0036] Please refer to FIG. 8. FIG. 8 shows a schematic diagram of the electric shock module 52 according to another embodiment of the present disclosure. The electric shock module 52 includes a first electrode 521 and a second electrode 522 that are separated from each other, and an electric shock region 523 is formed between the first electrode 521 and the second electrode 522. The electric shock module 52 is different from the electric shock module 42 in that the first electrode 521 of the electric shock module 52 may be composed of a flexible metal piece 5211, and the second electrode 522 may be composed of a second metal piece 5221. The electrode position adjustment control unit 524 can adjust and control the degree to which the flexible metal piece 5211 bends toward the second metal piece 5221. An electric shock gain region 5231 is formed at a location where the distance between the first electrode 521 and the second electrode 522 is relatively close, and the success rate of the electric shock can be improved. It can be understood that the electrode position adjustment control unit 524 adjusts and controls so that the position of the flexible metal piece 5211 is not limited to the center. In another embodiment, it can be understood that when the first electrode 521 is in its original position, the distance between the first electrode 521 and the second electrode 522 is greater than the distance that can cause high-voltage discharge to generate an arc spark. That is, when the first electrode 521 is in its original position, the electric shock region 523 does not exist. When moving to the bent position, the distance between the first electrode 521 and the second electrode 522 reaches the electric shock region 523' that can cause high-voltage discharge to generate an arc spark.
[0037] Please refer to FIG. 9. FIG. 9 shows a schematic diagram of the electric shock module 62 according to another embodiment of the present disclosure. The electric shock module 62 includes a first electrode 621 and a second electrode 622 that are separated from each other, and an electric shock region 623 is formed between the first electrode 621 and the second electrode 622. The first electrode 621 of the electric shock module 62 may be composed of a flexible metal piece 6211, and the second electrode 622 may be composed of a second metal piece 6221. The difference between the electric shock module 62 and the electric shock module 52 is as follows. In the electric shock module 62 of the present embodiment, the electrode position adjustment control unit 624 is disposed at the axial position of the first electrode 621 and is close to the air inlet 111. In a buckling manner, the degree to which the flexible metal piece 6211 bends and moves toward the second metal piece 6221 is adjusted and controlled. At a location where the distance between the first electrode 621 and the second electrode 622 is relatively close, an electric shock gain region 6231 is formed, and the success rate of the electric shock can be improved. As can be understood, in another embodiment, when the first electrode 621 is in its original position, the spacing distance between the first electrode 621 and the second electrode 622 is greater than the distance that can cause high-voltage discharge to generate an arc spark. That is, when the first electrode 621 is in its original position, the electric shock region 623 does not exist. When moving to the buckling position, the spacing distance between the first electrode 521 and the second electrode 522 reaches the electric shock region 623' where high-voltage discharge can be caused to generate an arc spark.
[0038] The vacuum cleaner adapter devices 1 and 2 provided with the electric shock module of the present disclosure further include a voltage boosting module (not shown). The voltage boosting module 15 is electrically connected to the electric shock modules 12, 22, 32, 42, 52, 62, and boosts the voltage between the first electrodes 121, 221, 321, 421, 521, 621 and the second electrodes 122, 222, 322, 422, 522, 622 to 1000 volts or more (the air breakdown voltage is about 5 kV / cm) and can accumulate it in a capacitor. When the object to be shocked 14 enters the electric shock regions 123, 223, 323, 423, 423', 523, 523', 623, 623', ionization of electrons occurs and the electrical resistance of the air decreases. The current flows along the shortest path, whereby the capacitor storing high-voltage electricity discharges, an arc spark is generated, and the insects are stunned or killed.
[0039] In another embodiment of the present disclosure, the vacuum cleaner adapter devices 1, 2 provided with the electric shock module may further include a control switch (not shown). The control switch is electrically connected to the voltage boosting module and is used to control the power supply to the electric shock modules 12, 22, 32, 42, 52, 62. That is, if the power supply to the electric shock modules 12, 22, 32, 42, 52, 62 is turned off, the vacuum cleaner adapter devices 1, 2 provided with the electric shock module that are suction-connected to the suction body 13 will not affect the original vacuuming function, and the suction body 13 can still be used normally.
[0040] In another embodiment of the present disclosure, the vacuum cleaner adapter devices 1, 2 provided with the electric shock module are electrically connected to the voltage boosting module in a quickly removable manner, and may further include a battery module (not shown) for supplying power to the voltage boosting module. As can be understood, power can be supplied to the vacuum cleaner adapter devices 1, 2 provided with the electric shock module individually, or power can also be supplied to the suction body 13 and the vacuum cleaner adapter devices 1, 2 provided with the electric shock module simultaneously.
[0041] The above detailed description is a specific description of the feasible embodiments of the present disclosure, and thus does not limit the scope of the patent of the present disclosure. Any equivalent implementation or modification that does not deviate from the technical spirit of the present disclosure should be included in the scope of the patent of this case. In addition, this case is not only truly innovative in terms of technical ideas, but also has many effects that the conventional traditional structure cannot achieve, and fully meets the legal patent requirements of novelty and progressiveness.
Description of Reference Numerals
[0042] 1, 2: Vacuum cleaner adapter device provided with electric shock module 11: Adapter device main body 111: Air inlet 112: Air outlet 12, 22, 32, 42, 52, 62: Electric shock module 121, 221, 321, 421, 521, 621: First electrode 1211: First metal mesh 12111: First pore 122, 222, 322, 422, 522, 622: Second electrode 1221: Second metal mesh 12211: Second pore 123, 223, 323, 423, 423’, 523, 523’, 623, 623’: Electric shock area 13: Suction body 14: Object to be shocked 2211, 3211, 4211: First metal sheet 2221, 3221, 4221, 5221, 6221: Second metal sheet 2231, 3231: Electric shock area exit 2232, 3232: Electric shock area entrance 424, 524, 624: Electrode position adjustment control unit 5211, 6211: Flexible metal sheet 5231, 6231: Electric shock gain area
Claims
Claim 1 A vacuum cleaner adapter device equipped with an electric shock module, comprising an adapter device main body, an electric shock module, and a voltage boosting module, The adapter device main body has an air inlet and an air outlet. The air outlet is used to removably suction-connect to a suction main body. A negative pressure is formed within the adapter device main body, and air flows in from the air inlet and is discharged from the air outlet. The electric shock module is disposed within the adapter device main body and is used to discharge at a high voltage to generate an arc spark. The voltage boosting module is electrically connected to the electric shock module and provides a high voltage to the electric shock module for discharging. A vacuum cleaner adapter device equipped with an electric shock module, characterized by the above. Claim 2 The electric shock module includes a first electrode and a second electrode spaced apart from each other. An electric shock region is formed between the first electrode and the second electrode, and air flows through the electric shock region and is discharged from the air outlet. A vacuum cleaner adapter device equipped with an electric shock module according to Claim 1, characterized by the above. Claim 3 When an object to be shocked enters the electric shock region, a high-voltage discharge occurs between the first electrode and the second electrode, generating an arc spark. A vacuum cleaner adapter device equipped with an electric shock module according to Claim 2, characterized by the above. Claim 4 The first electrode is a first metal mesh and includes first pores. The second electrode is a second metal mesh and includes second pores. After air flows through the electric shock region from the first pores, it flows from the second pores to the air outlet and is discharged. A vacuum cleaner adapter device equipped with an electric shock module according to Claim 3, characterized by the above. Claim 5 The first pores are larger than the second pores, whereby the object to be shocked can pass through the first pores but cannot pass through the second pores. A vacuum cleaner adapter device equipped with an electric shock module according to Claim 4, characterized by the above. Claim 6 The first electrode is a first metal piece, the second electrode is a second metal piece, the first metal piece and the second metal piece together form an electric shock region inlet on the side close to the air inlet, the first metal piece and the second metal piece together form an electric shock region outlet on the side close to the air outlet, and the object to be shocked is discharged from the air outlet after flowing through the electric shock region inlet and the electric shock region outlet from the air inlet. The vacuum cleaner adapter device provided with the electric shock module according to claim 3, characterized in that.
7. Further comprising a suction head connected to the front end of the air inlet, the suction head having a suction inlet area that gradually decreases outward from the air inlet. The vacuum cleaner adapter device provided with the electric shock module according to claim 6, characterized in that.
8. The electric shock region inlet is larger than the electric shock region outlet. The vacuum cleaner adapter device provided with the electric shock module according to claim 6, characterized in that.
9. Further comprising an electrode position adjustment control unit used to relatively move the first electrode and the second electrode to change the size of the electric shock region. The vacuum cleaner adapter device provided with the electric shock module according to claim 6, characterized in that.
10. The first electrode is a flexible metal piece, and the flexible metal piece flexibly deforms and moves closer to the second electrode without contacting it. The vacuum cleaner adapter device provided with the electric shock module according to claim 9, characterized in that.
11. After the flexible metal piece flexibly deforms, it is used to generate an electric shock gain region. The vacuum cleaner adapter device provided with the electric shock module according to claim 10, characterized in that.
12. Further comprising a control switch, the control switch being electrically connected to the voltage boosting module and used to control the power supply of the electric shock module. The vacuum cleaner adapter device provided with the electric shock module according to any one of claims 1 to 11, characterized in that.
13. Further comprising a battery module that is electrically connected to the voltage boosting module in a quickly removable manner and used to supply power to the voltage boosting module. The vacuum cleaner adapter device provided with the electric shock module according to any one of claims 1 to 11, characterized in that.
14. A vacuum cleaner adapter device comprising an electric shock module according to claim 12, further comprising a battery module that is electrically connected to the step-up voltage module so as to be quickly removable and supplies power to the step-up voltage module.
Citation Information
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