Dust collection device with electric shock module

The dust collection device with an electric shock module addresses the inefficiencies of traditional insect extermination by electrocuting and capturing insects, offering a safe and stress-free solution.

JP7821307B2Active Publication Date: 2026-02-26何易璋
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Patent Information

Application Number
JP2024547421
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-05-08
Publication Date
2026-02-26
Estimated Expiration
2043-05-08

AI Technical Summary

Technical Problem

Existing insect extermination methods, such as chemical traps and vacuum cleaners, pose environmental hazards, risk accidental ingestion, and fail to effectively capture moving insects, causing psychological distress.

Method used

A dust collection device equipped with an electric shock module that uses a suction body, collection unit, suction tube set, and electric shock module to electrocute insects with high-voltage discharge, ensuring they are sucked up and remain dry to prevent pathogen growth.

Benefits of technology

The device effectively captures and kills insects, eliminating the need for chemical residues and providing a hygienic solution that reduces psychological stress.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

The present disclosure provides a vacuum cleaner equipped with an electric shock module. The apparatus includes a suction body, a collection unit, a suction pipe set, an electric shock module, and a voltage boosting module. The suction body generates a negative pressure suction force by a motor or a fan. The collection unit is connected to the suction body and includes a collection inlet and a filtration system, and the filtration system is used to filter and collect the objects to be shocked and / or the inhaled substances. The suction pipe set has an air inlet and an air outlet, the air outlet is suction-connected to the collection inlet, forms a negative pressure in the suction pipe set, and the air inlet is used to actively generate a vacuum negative pressure between it and the adsorption surface in order to inhale air and the objects to be shocked and / or the inhaled substances. The electric shock module is disposed in the suction pipe set and can 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.
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Description

[Technical Field]

[0001] The present disclosure relates to a dust suction device, and more particularly to a dust suction device that is also equipped with an electric shock module. [Background technology]

[0002] Insects (e.g., cockroaches and ants) are found everywhere in our lives, and most people generally experience psychological fear when confronted with cockroaches. There are various commercially available cockroach extermination methods, which can be broadly divided into chemical methods, physical capture methods, and a combination of chemical and physical capture methods. For example, cockroach traps come in various types, including bait-type, sticky-type, and trap-type. To use them, cockroach traps are randomly placed and bait is placed inside them. The bait usually contains an insecticide ingredient, which has a delay effect. When the insects bring the insecticide-added bait back to their nest, the bait spreads to other insects, thereby eliminating a large number of pest insects.

[0003] Among the various cockroach extermination methods mentioned above, chemical methods have problems with chemical residue and accidental ingestion by children and pets. Long-term and large-scale use of chemicals can not only cause insects to develop drug resistance, but also cause harmful pollution to the environment. Combining physical capture methods with the use of strong adhesives can prevent cockroaches from escaping, but this strong adhesive surface can also be a problem for children and pets to touch. Combining traps that allow entry but no escape can prevent cockroaches from escaping, but the disposal of captured, moving cockroaches can also be unpleasant for people. The traps mentioned above need to be removed and discarded after a certain period of time, and users tend to forget where they were placed. This presents problems and drawbacks to current cockroach extermination methods that need to be resolved.

[0004] Vacuum cleaners are extremely convenient to use and operate, and can quickly suck up dust and foreign objects to clean rooms, making them a standard cleaning tool in modern households. Moving insects (such as cockroaches and ants) are ubiquitous in our daily lives, but because they move, they remain in the dustbin and continue to scurry about even after being sucked up by a vacuum cleaner, making them impossible to deal with. Therefore, vacuum cleaners are generally not used to suck up moving insects, and vacuum cleaners are not generally thought of as being used to exterminate insects. Generally, seeing cockroaches or ants scurrying around provokes psychological fear and causes significant mental stress for most people.

[0005] In view of this, how to improve the above-mentioned problems is the main problem that the present disclosure aims to solve. Summary of the Invention

[0006] SUMMARY OF THE INVENTION The present disclosure provides a dust collection device equipped with an electric shock module to solve the above-mentioned problems of the prior art.

[0007] The present disclosure provides a dust collection device equipped with an electric shock module. The device includes a suction body, a collection unit, a suction tube set, an electric shock module, and a voltage boost module. The suction body generates negative pressure suction force using a motor or a fan. The collection unit is connected to the suction body and includes a collection inlet and a filtering system, which is used to filter and collect the object to be electrocuted and / or the object to be aspirated. The suction tube set has an air inlet and an air outlet, and the air outlet is suction-connected to the collection inlet to create negative pressure within the suction tube set. The air inlet is used to actively create a vacuum-like negative pressure between the suction tube set and a suction surface to suck in air and the object to be electrocuted and / or the object to be aspirated. The electric shock module is disposed within the suction tube set and is capable of generating an arc spark by discharging at a high voltage. The voltage boost module is electrically connected to the electric shock module and provides high voltage to the electric shock module for discharging.

[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 the object to be electrocuted flows through the electric shock region.

[0009] Furthermore, when an object to be electrocuted enters the electrocution area, 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 piece, the second electrode is a second metal piece, the first metal piece and the second metal piece together form an electric shock area inlet on a side closer to the air inlet, the first metal piece and the second metal piece together form an electric shock area outlet on a side closer to the air outlet, and the object to be electrocuted flows in through the electric shock area inlet and is discharged from the electric shock area outlet.

[0011] Furthermore, the electric shock area entrance is larger than the electric shock area exit.

[0012] The device further includes an electrode position adjustment control unit that can change the size of the electric shock area by moving the first electrode and the second electrode relatively.

[0013] Furthermore, the first electrode is a flexible metal piece that flexibly deforms and moves toward the second electrode without contacting it.

[0014] Furthermore, the flexible metal piece can generate an electric shock gain area after being flexibly deformed.

[0015] The present disclosure provides a dust collection device equipped with an electric shock module. The device includes a suction body, a collection unit, a suction tube set, at least one electric shock module, and a voltage boost module. The suction body generates negative pressure suction force using a motor or a fan. The collection unit is connected to the suction body and includes a collection inlet and a filtering system, which is used to filter and collect the object to be electrocuted and / or the object to be aspirated. The suction tube set has an air inlet and an air outlet, and the air outlet is suction-connected to the collection inlet. The air inlet is used to actively generate a vacuum-like negative pressure between the air inlet and a suction surface to suck in air and the object to be electrocuted and / or the object to be aspirated. The at least one electric shock module is disposed within the collection unit and is capable of discharging at a high voltage to generate an arc spark. The voltage boost module is electrically connected to the electric shock module and provides a high voltage to the electric shock module for discharge.

[0016] Furthermore, the electric shock module includes a first electrode and a second electrode spaced apart from each other, an electric shock area is formed between the first electrode and the second electrode, and when the object to be electrocuted flows through the electric shock area, a high-voltage discharge occurs between the first electrode and the second electrode, generating an arc spark.

[0017] The collection unit further includes a plurality of said shock modules spaced apart along an interior wall thereof.

[0018] The power supply further includes a voltage boost module, the voltage boost module being electrically connected to the electric shock module.

[0019] The power supply further includes a control switch, which is electrically connected to the voltage boost module and is used to control the power supply of the electric shock module.

[0020] The power supply further includes a battery module that is quickly and removably electrically connected to the voltage boost module and that supplies power to the voltage boost module.

[0021] One embodiment of the above disclosure has at least the following advantages or beneficial effects. The dust suction device equipped with the electric shock module of the present disclosure can actively suck in the object to be electrified, and when the object to be electrified enters the electric shock area, the voltage boost module provides high voltage to the electric shock module for discharge, generating an arc spark and effectively electrifying the object. The dust suction device has the function of sucking up dust and foreign matter, and can also have the function of repelling insects. After the object to be electrified is electrified, it remains dry and pathogens cannot grow, making it suitable for widespread use and widely used. [Brief explanation of the drawings]

[0022] [Figure 1] 1 is a schematic cross-sectional view of a vacuum cleaner device including an electric shock module according to an embodiment of the present disclosure; [Figure 2] 1 is a schematic three-dimensional view of an electric shock module that is a metal piece according to an embodiment of the present disclosure. FIG. [Figure 3] FIG. 10 is a schematic diagram of an electric shock module that is a metal piece, according to another embodiment of the present disclosure. [Figure 4] FIG. 1 is a schematic diagram of a suction tubing set having a relatively small suction area, according to one embodiment of the present disclosure. [Figure 5] FIG. 1 is a schematic diagram of a suction tubing set with a capture suction disk according to one embodiment of the present disclosure. [Figure 6] FIG. 1 is a schematic diagram of an electric shock module having an electrode positioning control unit according to an embodiment of the present disclosure. [Figure 7] FIG. 1 is a schematic diagram of an electroshock module in which the electrodes are flexible metal pieces, according to one embodiment of the present disclosure. [Figure 8] FIG. 10 is a schematic diagram of an electric shock module in which the electrodes are flexible metal strips, according to another embodiment of the present disclosure. [Figure 9] FIG. 10 is a schematic diagram of an electric shock module disposed within a collection unit according to another embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0023] The technical means of the present invention will be described in detail below with several preferred embodiments accompanied with drawings, so that the present disclosure can be deeply understood and accepted.

[0024] The present disclosure will be described in more detail below with reference to the accompanying drawings so that those skilled in the art can practice the present disclosure 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 "first", "second", etc. are for explanatory purposes only and cannot be understood as indicating or implying the relative importance thereof or the number of technical features shown. Therefore, the features defined by "first" and "second" may include at least one feature, either explicitly or implicitly.

[0025] It should also be noted that in the description of the present disclosure, unless further clearly specified and limited, the terms "disposed" and "connected" should be understood in a broader sense. For example, "connected" may be a disposed 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 via 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 depending on the context.

[0026] Furthermore, when the meaning of "and / or" appears in this disclosure, it includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution that simultaneously satisfies both A and B. Furthermore, the technical solutions in each embodiment may be combined with each other, but they must be based on what a person skilled in the art can implement. If a combination of technical solutions appears contradictory or cannot be realized, such a combination of technical solutions should be deemed not to exist and not within the scope of protection claimed by this disclosure.

[0027] The technical means of the present disclosure will be described in detail below with reference to the accompanying drawings. The apparatus and its operation method described below are only used to explain the embodiments of the present disclosure and do not define the scope of the present invention. Furthermore, the same numerals in the specification refer to the same components.

[0028] Please refer to FIG. 1. FIG. 1 shows a schematic cross-sectional view of a dust suction device 1 equipped with an electric shock module according to one embodiment of the present disclosure. The dust suction device 1 equipped with an electric shock module includes a suction main body 11, a collection unit 12, a suction pipe set 13, an electric shock module 141, and a voltage boost module. The suction main body 11 generates negative pressure suction force using a motor or a fan. The collection unit 12 is connected to the suction main body 11 and includes a collection inlet 121 and a filtering system 122. The filtering system 122 is used to filter and collect the object to be electrocuted 16 and / or the object to be suctioned 17 (hereinafter collectively referred to as "object to be suctioned"). The suction pipe set 13 has an air inlet 131 and an air outlet 132. The air outlet 132 can be suction-connected to the collection inlet 121. The air inlet 131 can be used to actively generate a vacuum-like negative pressure between the air inlet 131 and the suction surface 15 to suck in air and the object to be suctioned. The electric shock module 141 is disposed within the suction tube set 13 and can generate arc sparks by discharging high voltage. A voltage boost module (not shown) is electrically connected to the electric shock module 141 and provides high voltage to the electric shock module 141 for discharging. The active generation of vacuum-like negative pressure means that the user brings the air inlet 131 close to the suction surface 15 to generate vacuum-like negative pressure. Without the suction surface 15, sufficient suction force cannot be generated to suck in the object to be electrocuted 16.

[0029] The suction body 11 may be, for example, but is not limited to, a motor or fan of various vacuum cleaners, and is used to generate negative pressure suction. The collection unit 12 may be, for example, but is not limited to, a dust collection box, dust collection bag, etc., and is used to filter the collected particles. The suction tube set 13 may be, for example, but is not limited to, a dust collection tube, suction head, suction nozzle, etc. The suction surface 15 may include, but is not limited to, various table surfaces, floors, walls, ceilings, etc. A vacuum-like negative pressure space is generated between the air inlet 131 of the suction tube set 13 and the suction surface 15. As shown by the dashed-line frame on the left side of FIG. 1 , this vacuum-like negative pressure occurs when the air inlet 131 and the suction surface 15 are not completely sealed, leaving a gap through which the object to be electrocuted 16 can enter. The air inlet area of ​​this gap is smaller than the air flow area inside the suction tube set 13, and therefore, the suction force is strong in this gap. This allows the object to be electrified 16, which is relatively large and heavy, to be sucked in. The object to be electrified 17 described in the present disclosure may be, for example, but is not limited to, various types of dust, airborne particles, etc., and generally refers to dust that is sucked in when using a vacuum cleaner. The object to be electrified 16 may be, but is not limited to, various types of cockroaches, ants, mosquitoes, etc. The object to be electrified 16 has a larger volume and weight than the object to be electrified 17 and can cause a high-voltage discharge in the electric shock module 141, generating an arc spark.

[0030] The shock module 141 is disposed inside the suction tube set 13. The shock module 141 includes a first electrode 1411 and a second electrode 1412 spaced apart from each other, and a shock region 1413 is formed between the first electrode 1411 and the second electrode 1412. The inhaled matter enters through the air inlet 131, flows through the shock region 1413, and is then discharged from the air outlet 132 to the collection inlet 121 of the collection unit 12. See FIG. 2. The first electrode 1411 of the shock module 141 is composed of a first metal piece 14111, and the second electrode 1412 is composed of a second metal piece 14121. The shock region 1413, through which air can pass, is formed between the first electrode 1411 and the second electrode 1412, which are spaced apart from each other. The first metal piece 14111 and the second metal piece 14121 together form an electric shock area inlet 14131 on the side closer to the air inlet 131, and the first metal piece 14111 and the second metal piece 14121 together form an electric shock area outlet 14132 on the side closer to the air outlet 132. Objects to be inhaled flow in through the electric shock area inlet 14131 and flow out through the electric shock area outlet 14132. The voltage boost module provides high voltage to the electric shock module 141 for discharge. The objects to be inhaled 16 are struck by arc sparks generated by the high-voltage discharge of the electric shock module 141 and flow into the collection unit 12 through the air outlet 132.

[0031] As can be understood, the first metal piece 14111 and the second metal piece 14121 are not limited to the arrangement, position, and shape shown in Figures 1 and 2. When the two electrodes are spaced apart and the object to be electrocuted 16 flows through the electrocution area 1413, if the voltage boost module provides a high voltage to the electrocution module 141 for discharge, a high voltage discharge occurs between the first electrode 1411 and the second electrode 1412, generating an arc spark, and the object to be electrocuted 16 can flow out of the air outlet 132 after being electrocuted, this is within the scope of rights that the spirit of the present disclosure intends to protect.

[0032] Please refer to FIG. 3. FIG. 3 shows a cross-sectional schematic diagram of an electric shock module 142 according to another embodiment of the present disclosure. The electric shock module 142 includes a first electrode 1421 and a second electrode 1422 spaced apart from each other, with an electric shock region 1423 formed between the first electrode 1421 and the second electrode 1422. The first electrode 1421 of the electric shock module 142 is a first metal piece 14211, and the second electrode 1422 is a second metal piece 14221. The first metal piece 14211 and the second metal piece 14221 together form an electric shock region inlet 14231 on a side closer to the air inlet 131, and the first metal piece 14211 and the second metal piece 14221 together form an electric shock region outlet 14232 on a side closer to the air outlet 132. The object to be electrocuted 16 flows in through the electric shock region inlet 14231 and flows out through the electric shock region outlet 14232. The electric shock module 142 of this embodiment differs from the electric shock module 141 in that the electric shock area entrance 14231 is larger than the electric shock area exit 14232, and the object to be inhaled flows from the larger area of ​​the electric shock area entrance 14231 to the smaller area of ​​the electric shock area exit 14232. When the area of ​​the electric shock area entrance 14231 is larger, the object to be inhaled 16 can more easily enter the electric shock area 1423. When the electric shock area exit 14232 is smaller, an electric shock gain effect occurs, so the object to be inhaled 16 can be effectively shocked when it leaves the electric shock area 1423. After being shocked, the object to be inhaled 16 can be discharged through the air outlet 132.

[0033] In the embodiment of Figures 1 and 2, the electric shock region 1413 is formed by the substantially parallel first electrode 1411 and second electrode 1412, but the mismatch in the inner diameter of the suction tube set 13 can achieve the effect of a relatively large suction surface. For example, in Figure 1, the inner diameter of the suction tube set 13 can gradually shrink from the air inlet 131 toward the electric shock region inlet 14131 to form a funnel shape, and the outlet of the funnel is connected to the electric shock region outlet 14131, thereby allowing the object to be electrocuted 16 to easily enter the large area at the inlet and achieving the effect of being effectively electrocuted in the electric shock region 1413. In the embodiment of Figure 3, the funnel-shaped electric shock region 1423 is directly formed by the first electrode 1421 and the second electrode 1422, thereby allowing the object to be electrocuted 16 to easily enter the large area at the inlet and achieving the effect of being effectively electrocuted in the electric shock region 1423. As can be seen from the above, in the embodiments disclosed in the present disclosure, even if the electric shock area entrance 14231 formed by the first electrode 1421 and the second electrode 1422 is larger than the electric shock area exit 14232, or even if the area of ​​the air inlet 131 is larger than the electric shock area entrance 14131 due to a mismatch in the inner diameter of the suction tube set 13, as long as the object to be electric shock 16 can easily enter at the entrance and be effectively electric shocked at the exit, all of these are within the scope of rights that should be protected by the spirit of the present disclosure.

[0034] In aerodynamics, the smaller the area of ​​the air inlet, the greater the suction force. The primary objective of this embodiment is to effectively deliver an electric shock to the object to be electrocuted 16. Therefore, the reason why the electric shock area inlet 14231 is larger than the electric shock area outlet 14232, or the area of ​​the air inlet 131 is larger than the electric shock area inlet 14131, is to facilitate the achievement of this objective. To increase the vacuum-like negative pressure suction force generated between the air inlet 131 and the suction surface 15, the power of the suction body 11 can be increased, or, as shown in FIG. 4, a suction head with a relatively small suction opening area can be added to the front end of the air inlet 131. As can be seen, the objective of this disclosure, which is to allow the object to be electrocuted 16 to easily enter and be effectively electrocuted, and the objective of increasing the vacuum-like negative pressure suction force generated between the air inlet 131 and the suction surface 15, are not inconsistent and can complement each other as needed.

[0035] Please refer to FIG. 5. FIG. 5 shows another embodiment of the present disclosure, in which a trapping and suction disk 133 is attached to the front end of the air inlet 131. Insects are highly mobile and easily move around anywhere. A large-diameter trapping and suction disk can be attached to the adsorption surface 15 and tightly fitted. The purpose of the trapping and suction disk 133 is to cover the insects and prevent them from escaping. The space inside the trapping and suction disk 133 is sealed, and a vacuum-like negative pressure suction force is still generated between the air inlet 131 and the adsorption surface 15. The trapping and suction disk 133 is made of a material such as rubber, plastic, or silicone rubber, which has a certain material elasticity and easily fits tightly to the adsorption surface 15. The trapping and suction disk 133 further includes a trapping and suction disk air inlet valve 1331 that can release the adsorption state by allowing air to enter the sealed space inside the trapping and suction disk 133.

[0036] Please refer to FIG. 6. FIG. 6 is a schematic diagram of an electric shock module 143 according to another embodiment of the present disclosure. The electric shock module 143 includes a first electrode 1431 and a second electrode 1432 spaced apart from each other, with an electric shock region 1433 formed between the first electrode 1431 and the second electrode 1432. The first electrode 1431 of the electric shock module 143 is composed of a first metal piece 14311, and the second electrode 1432 is composed of a second metal piece 14321. The electric shock module 143 differs from the electric shock module 141 as follows: The electric shock module 143 of this embodiment further includes an electrode position adjustment control unit 1434, which can adjust and control the displacement of the first metal piece 14311 from position A to position B. When the first electrode 1431 is in position A, the distance between the first electrode 1431 and the second electrode 1432 is greater than the distance that can cause a high-voltage discharge and generate an arc spark. Moving to position B creates an electric shock region 1433 that can cause a high-voltage discharge and generate an arc spark. As can be seen, in another embodiment, when the first electrode 1431 is in position A, the distance between the first electrode 1431 and the second electrode 1432 is greater than the distance that can cause a high-voltage discharge and generate an arc spark. Moving to position B creates an electric shock region 1433' that reduces in volume, resulting in an electric shock gain effect. In this embodiment, the first metal piece 14311 and the second metal piece 14321 are displaced relatively in a substantially parallel manner, i.e., the size change at the entrance of the electric shock region and the exit of the electric shock region are the same. As can be understood, in other embodiments, the first metal piece 14311 and the second metal piece 14321 may have different size changes at the entrance and exit of the electric shock area, and as long as the object to be electric shock 16 can be effectively electrocuted and the object to be electric shock 16 can be discharged from the air outlet 121 after being electrocuted, this is the spirit of the disclosure that this embodiment is intended to protect.

[0037] Please refer to FIG. 7. FIG. 7 is a schematic diagram of an electric shock module 144 according to another embodiment of the present disclosure. The electric shock module 144 includes a first electrode 1441 and a second electrode 1442 that are spaced apart from each other. An electric shock region 1443 is formed between the first electrode 1441 and the second electrode 1442. The electric shock module 144 differs from the electric shock modules 141 and 143 in that the first electrode 1441 of the electric shock module 144 may be formed from a flexible metal piece 14411, and the second electrode 1442 may be formed from a second metal piece 14421. The electrode position adjustment control unit 1444 can adjust and control the degree to which the flexible metal piece 14411 bends toward the second metal piece 14421. An electric shock gain region 14433 is formed where the first electrode 1441 and the second electrode 1442 are relatively close to each other. The electric shock gain region 14433 can improve the success rate of the electric shock. It can be seen that the electrode position adjustment control unit 1444 adjusts and controls the position of the flexible metal piece 14411 so that it is not limited to the center. As can be seen, in another embodiment, when the first electrode 1441 is in its original position, the distance between the first electrode 1441 and the second electrode 1442 is greater than the distance that can cause a high-voltage discharge and generate an arc spark. That is, when the first electrode 1441 is in its original position, the electric shock region 1443 does not exist. When the first electrode 1441 is moved to the deflected position, the distance between the first electrode 1441 and the second electrode 1442 reaches the electric shock region 1443' that can cause a high-voltage discharge and generate an arc spark.

[0038] Please refer to Figure 8. Figure 8 shows a schematic diagram of an electric shock module 145 according to another embodiment of the present disclosure. The electric shock module 145 includes a first electrode 1451 and a second electrode 1452 spaced apart from each other, and an electric shock region 1453 is formed between the first electrode 1451 and the second electrode 1452. The first electrode 1451 of the electric shock module 145 may be made of a flexible metal piece 14511, and the second electrode 1452 may be made of a second metal piece 14521. The differences between the electric shock module 145 and the electric shock module 144 are as follows. In the electric shock module 145 of this embodiment, the electrode position adjustment control unit 1454 is disposed at the axial position of the first electrode 1451 and adjacent to the air inlet 131. The buckling mechanism adjusts and controls the degree to which the flexible metal piece 14511 bends toward the second metal piece 14521. This allows an electric shock gain region 14533 to be formed where the first electrode 1451 and the second electrode 1452 are relatively close to each other, thereby improving the success rate of the electric shock. As can be seen, in another embodiment, when the first electrode 1451 is in its original position, the distance between the first electrode 1451 and the second electrode 1452 is greater than the distance required for high-voltage discharge to generate an arc spark. That is, when the first electrode 1451 is in its original position, the electric shock region 1453 does not exist. When the first electrode 1451 is moved to the bent position, the distance between the first electrode 1451 and the second electrode 1452 reaches an electric shock region 1453' required for high-voltage discharge to generate an arc spark.

[0039] Please refer to FIG. 9. FIG. 9 is a schematic diagram of a dust suction device 2 equipped with an electric shock module according to another embodiment of the present disclosure. The dust suction device 2 equipped with an electric shock module differs from the dust suction device 1 equipped with an electric shock module in that an electric shock module 141 is disposed inside the collection unit 12. When air enters the collection unit 12 through the collection inlet 121, a spiral airflow is generated. The object to be electrocuted 16 continuously rotates and collides with the inner wall of the collection unit 12. When the object to be electrocuted 16 flows through the electric shock area 1413, a high-voltage discharge occurs between the first electrode 1411 and the second electrode 1412, generating an arc spark. FIG. 9 illustrates, as an example, that electric shock modules 141 can be installed inside the collection unit 12. However, it should be understood that the number and location of the modules do not limit the scope of the rights protected by the spirit of the present disclosure.

[0040] The dust suction devices 1 and 2 equipped with the electric shock modules of the present disclosure further include a voltage boosting module (not shown). The voltage boosting module is electrically connected to the electric shock modules 141, 142, 143, 144, and 145, and can boost the voltage between the first electrodes 1411, 1421, 1431, 1441, and 1451 and the second electrodes 1412, 1422, 1432, 1442, and 1452 to 1,000 volts or more (air breakdown voltage is approximately 5 kV / cm) and store the boosted voltage in a capacitor. When the object to be electrocuted 16 enters the electric shock region 1413, 1423, 1433, 1433', 1443, 1443', 1453, and 1453', electrons are liberated, reducing the electrical resistance of the air. The current takes the shortest path, causing the capacitor that stores high voltage electricity to discharge, creating an arc that stuns or kills the insect.

[0041] In another embodiment of the present disclosure, the dust suction device 1, 2 with the electric shock module may further include a control switch (not shown). The control switch is electrically connected to the voltage boost module and is used to control the power supply to the electric shock modules 141, 142, 143, 144, 145. That is, when the power supply to the electric shock modules 141, 142, 143, 144, 145 is turned off, the original dust suction function is not affected, and the suction body 11 can still be used normally.

[0042] The above detailed description is a specific description of the workable embodiments of the present disclosure, and does not limit the patent scope 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 patent scope of the present disclosure. In addition, the present invention is not only truly innovative in terms of technical idea, but also has many effects that conventional traditional structures cannot achieve, and fully meets the statutory patent requirements of novelty and inventive step. [Explanation of symbols]

[0043] 1, 2: Dust collection device equipped with an electric shock module 11:Suction body 12: Collection unit 121: Collection entrance 122: Filtration system 13: Suction tube set 131: Air inlet 132: Air outlet 133: Capture suction disk 1331: Capture suction disc air admission valve 141, 142, 143, 144, 145: Electric Module 1411, 1421, 1431, 1441, 1451: 1st electrode 14111, 14211, 14311: 1st metal piece 14411, 14511: Flexible metal strips 1412, 1422, 1432, 1442, 1452: 2nd electrode 14121, 14221, 14321, 14421, 14521: 2nd metal piece 1413, 1423, 1433, 1433', 1443, 1443', 1453, 1453': Electricity Zone 14131, 14231: Electricity Area Entrance 14132, 14232: Exit from the Electric Blitz Area 1434, 1444, 1454: Electrode position adjustment control unit 14433, 14533: Electric shock gain area 15: Adsorption surface 16: Electric shock object 17: Inhalants

Claims

1. A dust suction device with an electric shock module, comprising: a suction body, a collecting unit, a suction tube set, an electric shock module, a voltage boosting module, and an electrode position adjusting control unit; The suction body generates a negative pressure suction force by a motor or a fan, the collecting unit is connected to the suction body and includes a collecting inlet and a filtering system, the filtering system being used to filter and collect the electrocuted object and / or the suction object; the suction tube set has an air inlet and an air outlet, the air outlet is suction-connected to the collection inlet to create a negative pressure within the suction tube set, the air inlet is used to actively create a vacuum-like negative pressure between the air inlet and an adsorption surface to suck in air and the object to be electrocuted and / or the object to be aspirated; the electric shock module is disposed within the suction tube set and is used for discharging a high voltage to generate an arc spark, the electric shock module includes a first electrode and a second electrode spaced apart from each other, an electric shock area is formed between the first electrode and the second electrode, the object to be electric shock flows through the electric shock area, 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 area inlet on a side closer to the air inlet, the first metal piece and the second metal piece form an electric shock area outlet on a side closer to the air outlet, the object to be electric shock flows from the air inlet through the electric shock area inlet and the electric shock area outlet, and is then discharged from the air outlet, when the object to be electric shock flows into the electric shock area, a high voltage discharge occurs between the first electrode and the second electrode, generating an arc spark, the object to be electric shock does not pass through the first electrode or the second electrode, the voltage boost module is electrically connected to the electric shock module and provides a high voltage to the electric shock module for discharge; A dust suction device equipped with an electric shock module, characterized in that the electrode position adjustment control unit is used to move the first electrode and the second electrode relatively to change the size of the electric shock area.

2. 2. The dust suction device with an electric shock module according to claim 1, further comprising a suction head connected to a front end of the air inlet, the suction head having a suction opening area that gradually decreases from the air inlet toward the outside.

3. The dust suction device equipped with the electric shock module according to claim 1 , wherein the electric shock area inlet is larger than the electric shock area outlet.

4. 2. The dust suction device with an electric shock module according to claim 1, wherein the first electrode is a flexible metal piece, which is flexibly deformed and moves toward the second electrode without contacting it.

5. The dust suction device with an electric shock module according to claim 4, wherein the flexible metal piece is used to generate an electric shock gain area after being flexibly deformed.

6. A dust suction device with an electric shock module, comprising: a suction body, a collecting unit, a suction tube set, at least one electric shock module, a voltage boosting module, and an electrode position adjusting control unit; The suction body generates a negative pressure suction force by a motor or a fan, the collecting unit is connected to the suction body and includes a collecting inlet and a filtering system, the filtering system being used to filter and collect the electrocuted object and / or the suction object; the suction tube set has an air inlet and an air outlet, the air outlet is suction-connected to the collection inlet to create a negative pressure within the suction tube set, and the air inlet is used to actively generate a negative pressure, such as a vacuum, between the air inlet and an adsorption surface for sucking air and the object to be electrocuted and / or the object to be aspirated; the at least one electric shock module is disposed within the collecting unit and is used for discharging a high voltage to generate an arc spark, the electric shock module including 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, the object to be electric shock flows through the electric shock region, 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 a side closer to the air inlet, the first metal piece and the second metal piece form an electric shock region outlet on a side closer to the air outlet, the object to be electric shock flows from the air inlet through the electric shock region inlet and the electric shock region outlet, and is then discharged from the air outlet, when the object to be electric shock flows into the electric shock region, a high voltage discharge occurs between the first electrode and the second electrode, generating an arc spark, the object to be electric shock does not pass through the first electrode or the second electrode, the voltage boost module is electrically connected to the electric shock module and provides a high voltage to the electric shock module for discharge; A dust suction device equipped with an electric shock module, characterized in that the electrode position adjustment control unit is used to move the first electrode and the second electrode relatively to change the size of the electric shock area.

7. 7. A dust suction device equipped with an electric shock module according to claim 6, wherein the electric shock module includes a first electrode and a second electrode spaced apart from each other, an electric shock area is formed between the first electrode and the second electrode, and when an object to be electrocuted flows through the electric shock area, a high-voltage discharge occurs between the first electrode and the second electrode, generating an arc spark.

8. 8. A dust suction device equipped with an electric shock module according to claim 7, comprising a plurality of said electric shock modules arranged at intervals along the inner wall of the collection unit.

9. A dust suction device equipped with an electric shock module as described in any one of claims 1 to 8, further comprising a control switch, the control switch being electrically connected to the voltage boost module and used to control the power supply of the electric shock module.

10. A dust suction device equipped with an electric shock module according to any one of claims 1 to 8, further comprising a battery module that is quickly and detachably electrically connected to the voltage boost module and supplies power to the voltage boost module.

11. 10. The dust suction device with an electric shock module according to claim 9, further comprising a battery module electrically connected to the voltage boost module in a quickly removable manner to supply power to the voltage boost module.

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