Composite ion generation device and method

By integrating the composite ion generating device with water ion and negative ion generating modules, the problem of poor dust removal, sterilization and odor removal effects when used alone is solved, and comprehensive dust removal, sterilization and odor removal effects are achieved.

CN113809642BActive Publication Date: 2025-10-03STRATOSPHERIC COMPOSITE WATER ION SHENZHEN CO LTD
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Patent Information

Application Number
CN202010555721.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-06-17
Publication Date
2025-10-03
Estimated Expiration
2040-06-17

AI Technical Summary

Technical Problem

Existing water ion and negative ion generating devices are used independently, resulting in poor dust removal, sterilization and odor removal effects.

Method used

A composite ion generating device is designed, which integrates the water ion generating module and the negative ion generating module. By installing the water ion generating component and the negative ion generating component, the generated water ions and negative ions are fused to achieve comprehensive dust removal, sterilization and odor removal effects.

Benefits of technology

It realizes the comprehensive dust removal, sterilization and odor removal effects of water ions and negative ions, makes up for the shortcomings of using them alone, and achieves the best overall effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a device and method for composite ion generation, comprising a water ion generation module and at least one negative ion generation module. The water ion generation module comprises a hollow housing and a water ion generation assembly. The water ion generation assembly is mounted in the lower portion of the housing. The outer side of the housing is provided with at least one supporting side platform protruding from the outer side of the housing, and the negative ion generation module is mounted on the supporting side platform. The device and method for composite ion generation integrate the water ion generation module and the negative ion generation module, thereby integrating the generated water ions and negative ions. The good dust removal performance of negative ions compensates for the poor dust removal performance of water ions, while the sterilization and odor removal performance of water ions compensates for the poor sterilization and odor removal performance of negative ions, thereby achieving an overall effect of combining excellent dust removal and sterilization and odor removal.
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Description

Technical Field

[0001] The present invention relates to the field of discharge devices, and in particular to a device and method for generating composite ions. Background Art

[0002] Currently, water ion generators and negative ion generators are generally used separately. The negative ions generated by the negative ion generator have the advantage of good dust removal effect, but poor sterilization and odor removal effect; while the water ions generated by the water ion generator have good sterilization and odor removal effect, but poor dust removal effect. Summary of the Invention

[0003] The object of the present invention is to provide a device and method for generating composite ions to solve the above technical problems.

[0004] In order to achieve the above-mentioned purpose, the technical solution of the present invention is: to provide a device for composite ion generation, including a water ion generation module and at least one negative ion generation module, the water ion generation module includes a hollow shell and a water ion generation component, the water ion generation component is installed in the shell, and at least one supporting side platform is protruding from the outer side of the shell, and the negative ion generation module is installed on the supporting side platform.

[0005] Preferably, the water ion generating assembly includes a cooling assembly, an embedded electrode and a tubular electrode. The cooling assembly is installed on the lower part of the inner side of the outer shell. The cooling assembly includes a fan, a heat sink and a cooling fin. A cooling support platform is protruding inward from the lower part of the inner wall of the outer shell. The fan is installed on the cooling support platform, the heat sink is installed on the fan, the cooling fin is installed on the heat sink, the embedded electrode is installed on the cooling fin, the tubular electrode is installed on the inner side of the outer shell and is located above the embedded electrode, and the central axis of the tubular electrode is opposite to the embedded electrode.

[0006] Preferably, the shell includes a cylindrical shell body, an annular upper cover and an annular middle cover, the cooling support platform protrudes from the lower part of the inner side wall of the shell body, the middle cover is installed on the top of the shell body, and the lower part of the inner side wall of the center hole of the middle cover protrudes inward to form a resting boss, the tubular electrode includes a tubular electrode body and a connecting ridge extending radially outward from the side wall of the tubular electrode body, the connecting ridge is rested on the resting boss, the diameter of the center hole of the upper cover is smaller than the diameter of the center hole of the middle cover, the bottom of the upper cover is fixedly connected to the top of the middle cover, and the bottom of the upper cover protrudes downward near the center hole of the upper cover to form a pressure ring, and the bottom of the pressure ring is pressed against the top of the connecting ridge.

[0007] Preferably, the embedded electrode includes an electrode base and an electrode needle, the electrode base is fixedly mounted on the top of the cooling plate, the lower end of the electrode needle is vertically fixed on the electrode base, the two opposite inner walls of the shell body are provided with limit blocks protruding inward, the cooling plate is located between the two limit blocks, the upper part of the inner side wall of the limit block is provided with an electrode needle limit head protruding inward, and the bottom of the electrode needle limit head is pressed against the top of the electrode base.

[0008] Preferably, the negative ion generating module includes a negative ion skeleton and at least one negative ion generating end. The negative ion skeleton is detachably mounted on the supporting side platform, and the negative ion generating end is vertically mounted on the negative ion skeleton.

[0009] Preferably, the inner end of the negative ion skeleton is fixed to the outer end of the supporting side platform by screws, and the negative ion generating end is vertically installed on the outer end of the negative ion skeleton.

[0010] Preferably, the number of the negative ion generating ends is two.

[0011] The present invention also provides a method for composite ion generation, comprising the following steps: (1) providing a water ion generation module and at least one negative ion generation module, wherein the water ion generation module comprises a hollow shell and a water ion generation component, and the water ion generation component is installed in the shell; and (2) integrally installing the negative ion generation module on the outer wall of the shell.

[0012] The device and method for composite ion generation of the present invention integrate a water ion generation module and a negative ion generation module, so that the generated water ions and negative ions are integrated. The advantage of the negative ions in dust removal makes up for the disadvantage of the water ions in dust removal, and the advantage of the water ions in sterilization and deodorization makes up for the disadvantage of the negative ions in sterilization and deodorization, thereby achieving an overall effect of better dust removal and sterilization and deodorization.

[0013] The present invention will become more apparent from the following description taken in conjunction with the accompanying drawings, which are used to illustrate embodiments of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 This is a structural diagram of the device for generating composite ions from one angle of the present invention.

[0015] Figure 2 This is a structural diagram of the device for generating composite ions of the present invention from another angle.

[0016] Figure 3 for Figure 2 Sectional view along section line AA.

[0017] Figure 4 for Figure 2Cross-sectional view along section line CC.

[0018] Figure 5 This is a structural diagram of the second embodiment of the device for generating composite ions of the present invention.

[0019] Figure 6 This is a structural diagram of the third embodiment of the device for generating composite ions of the present invention.

[0020] Figure 7 This is a structural diagram of the fourth embodiment of the device for generating composite ions of the present invention.

[0021] Figure 8 This is a structural diagram of the first application embodiment of the double-piece device for generating composite ions of the present invention.

[0022] Figure 9 This is a structural diagram of the second application embodiment of the double-piece device for generating composite ions of the present invention.

[0023] Figure 10 This is a structural diagram of the third application embodiment of the double-piece device for generating composite ions of the present invention. DETAILED DESCRIPTION

[0024] refer to Figures 1 to 4 The composite ion generating device 100 of the present invention includes a water ion generating module 10 and at least one negative ion generating module 20. The water ion generating module 10 includes a hollow housing 11 and a water ion generating assembly. The water ion generating assembly is mounted in the housing 11. The housing 11 has at least one supporting side platform 111 protruding from the outside. The negative ion generating module 20 is mounted on the supporting side platform 111.

[0025] Specifically, the water ion generating assembly includes a cooling assembly 121, an embedded electrode 122, and a cylindrical electrode 123. The cooling assembly 121 is installed at the lower portion of the inner side of the shell 11, and includes a fan 1211, a heat sink 1212, and a cooling fin 1213. A cooling support platform 112 is provided inwardly from the lower portion of the inner side wall of the shell 11. The fan 1211 is installed on the cooling support platform 112, the heat sink 1212 is installed on the fan 1211, and the cooling fin 1213 is installed on the heat sink 1212. The embedded electrode 122 is installed on the cooling fin 1213. The cylindrical electrode 121 is installed on the inner side of the shell 11 and is located above the embedded electrode 122. The central axis of the cylindrical electrode 121 is directly opposite to the embedded electrode 122.

[0026] Specifically, the housing 11 includes a cylindrical housing body 1101, an annular upper cover 1102, and an annular middle cover 1103. The cooling support platform 112 protrudes from the lower portion of the inner sidewall of the housing body 1101. The middle cover 1103 is mounted on the top of the housing body 1101. A resting boss 1104 is formed by protruding inward from the lower portion of the inner sidewall of the center hole of the middle cover 1103. The cylindrical electrode 123 includes the cylindrical electrode body 123 and a connecting flange 1231 extending radially outward from the sidewall of the cylindrical electrode body 123. In this embodiment, the connecting flange 1231 extends radially outward from the lower end of the sidewall of the cylindrical electrode body 123. The connecting flange 1231 rests on the resting boss 1104. The diameter of the center hole of the upper cover 1102 is smaller than that of the center hole of the middle cover 1103. The bottom of the upper cover 1102 is fixedly connected to the top of the middle cover 1103. A pressure ring 1105 is formed on the bottom of the upper cover 1102, near the center hole of the upper cover 1102. The bottom of the pressure ring 1105 presses against the top of the connecting flange 1231. In this embodiment, the bottom of the upper cover 1102 is welded to the top of the middle cover 1103.

[0027] Preferably, the embedded electrode 122 includes an electrode base 1221 and an electrode needle 1222. The electrode base 1221 is fixedly mounted on the top of the cooling plate 1213. The lower end of the electrode needle 1222 is vertically fixed on the electrode base 1221, and the two opposite inner walls of the shell body 1101 are provided with limit blocks 1106 protruding inwardly. The cooling plate 1213 is located between the two limit blocks 1106. The upper part of the inner side wall of the limit block 1106 is provided with an electrode needle limit head 1107 protruding inwardly, and the bottom of the electrode needle limit head 1107 is pressed against the top of the electrode base 1221.

[0028] Specifically, the negative ion generating module 20 includes a negative ion skeleton 21 and at least one negative ion generating end 22. The negative ion skeleton 21 is detachably mounted on the supporting side platform 111, and the negative ion generating end 22 is vertically mounted on the negative ion skeleton 21. In this embodiment, the inner end of the negative ion skeleton 21 is fixed to the outer end of the supporting side platform 111 by a screw, and the negative ion generating end 22 is vertically mounted on the outer end of the negative ion skeleton 21. The number of the negative ion generating ends 22 is two.

[0029] The present invention also provides a method for composite ion generation, comprising the following steps: (1) providing a water ion generating module 10 and at least one negative ion generating module 20, wherein the water ion generating module 10 includes a hollow shell 11 and a water ion generating component, and the water ion generating component is installed in the shell 11; (2) integrally installing the negative ion generating module 20 on the outer wall of the shell 11.

[0030] The device and method for composite ion generation of the present invention integrate a water ion generation module and a negative ion generation module, so that the generated water ions and negative ions are integrated. The advantage of the negative ions in dust removal makes up for the disadvantage of the water ions in dust removal, and the advantage of the water ions in sterilization and deodorization makes up for the disadvantage of the negative ions in sterilization and deodorization, thereby achieving an overall effect of better dust removal and sterilization and deodorization.

[0031] It should be noted that the supporting side platform 111 and the negative ion generating module 20 may be in addition to the above-mentioned one group, or may be in two groups, three groups, or four groups. Figures 5 to 7 In addition to the single use of the water ion generating module 10, it can also be used flexibly in combination with two, refer to Figures 8 to 10 The electrode of the negative ion generating end 22 can be a steel needle, or can be a carbon fiber or fullerene material. The negative ion generating end 22 installed on the negative ion skeleton 21 is not limited to the two mentioned above, and one or more can be used.

[0032] The present invention is described above in conjunction with the best embodiment, but the present invention is not limited to the embodiment disclosed above, but should cover various modifications and equivalent combinations based on the essence of the embodiment.

Claims

1. A device for composite ion generation, comprising a water ion generating module and at least one negative ion generating module, the water ion generating module comprising a hollow shell and a water ion generating assembly, the water ion generating assembly being installed in the shell, the outer side of the shell being protruded with at least one supporting side platform, the negative ion generating module being installed on the supporting side platform, the water ion generating assembly comprising a cooling assembly, an embedded electrode and a cylindrical electrode, the cooling assembly being installed at the lower portion of the inner side of the shell, the cooling assembly comprising a fan, a heat sink and a refrigeration fin, a cooling support platform being protruded inwardly from the lower portion of the inner side wall of the shell, the fan being installed on the cooling support platform, the heat sink being installed on the fan, the refrigeration fin being installed on the heat sink, the embedded electrode being installed on the refrigeration fin, the cylindrical electrode being installed at the inner side of the shell and being located above the embedded electrode, the central axis of the cylindrical electrode being directly opposite to the embedded electrode, characterized in that: The shell includes a cylindrical shell body, an annular upper cover and an annular middle cover, the cooling support platform is protruded from the lower part of the inner side wall of the shell body, the middle cover is installed on the top of the shell body, the lower part of the inner side wall of the center hole of the middle cover is protruded inward to form a resting boss, the cylindrical electrode includes a cylindrical electrode body and a connecting convex edge extending radially outward from the side wall of the cylindrical electrode body, the connecting convex edge is rested on the resting boss, the diameter of the center hole of the upper cover is smaller than the diameter of the center hole of the middle cover, the bottom of the upper cover is fixedly connected to the top of the middle cover, and the bottom of the upper cover is protruded downward near the center hole of the upper cover to form a pressure ring, and the bottom of the pressure ring is pressed against the top of the connecting convex edge; The negative ion generating module comprises a negative ion skeleton and at least one negative ion generating end. The negative ion skeleton is detachably mounted on the supporting side platform, and the negative ion generating end is vertically mounted on the negative ion skeleton.

2. The device for generating composite ions according to claim 1, wherein: The embedded electrode includes an electrode base and an electrode needle. The electrode base is fixedly installed on the top of the cooling plate. The lower end of the electrode needle is vertically fixed on the electrode base. The two opposite inner walls of the shell body are provided with limit blocks protruding inward. The cooling plate is located between the two limit blocks. The upper part of the inner side wall of the limit block is provided with an electrode needle limit head protruding inward. The bottom of the electrode needle limit head is pressed against the top of the electrode base.

3. The device for generating composite ions according to claim 1, wherein: The inner end of the negative ion skeleton is fixed to the outer end of the supporting side platform by screws, and the negative ion generating end is vertically installed on the outer end of the negative ion skeleton.

4. The device for generating composite ions according to claim 3, wherein: The number of the negative ion generating ends is two.

5. A method for generating composite ions using the device according to any one of claims 1 to 4, characterized in that: The following steps are involved: (1) Providing a water ion generating module and at least one negative ion generating module, wherein the water ion generating module comprises a hollow shell and a water ion generating component, wherein the water ion generating component is installed in the shell; (2) The negative ion generating module is integrally mounted on the outer wall of the housing.

Citation Information

Patent Citations

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