Super-emission superfine fiber conductive treatment filter material
By using a multi-layered ultra-fine fiber conductive filter media with a combination of activated carbon, zeolite, diatomaceous earth, and antistatic fibers, the problems of poor filtration effect and static electricity accumulation of single-layer filter media are solved, achieving high-efficiency filtration and static electricity elimination, and ensuring safe discharge.
Patent Information
- Application Number
- CN202423118730.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-17
AI Technical Summary
Existing filter media have limited filtration efficiency when used in single-layer applications, and there is a risk of explosion or fire due to static electricity accumulation.
The ultra-emission ultrafine fiber conductive filter media with a multi-layer structure includes a non-woven filter layer, a filter assembly, and a conductive assembly, which are made of activated carbon, zeolite, diatomaceous earth, and antistatic fibers, respectively. It achieves high-efficiency filtration and static elimination through multi-layer filtration and electrostatic adsorption.
It achieves multiple filtrations and electrostatic adsorption, significantly improving the filtration effect, ensuring that the media meets emission standards, and effectively eliminating the risk of electrostatic discharge, thus preventing explosions or fires.
Smart Images

Figure CN223570249U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to filter material technical field, concretely is superfine fiber conductive treatment filter material of super discharge. BACKGROUND
[0002] Filter material is the general term of filter material, is mainly responsible for the adsorption of the particles contained in medium, and the adsorption of chemical substances.
[0003] The existing filter material in actual use, its mostly adopt single layer filter mode to the particles contained in medium adsorption, lead to the particles in medium mostly remain in a layer's inside, while the filtering effect of single layer is limited, while the medium may contain static electricity, if direct discharge can lead to if in the place such as chemical plant discharge, can lead to static electricity will explode the chemical substance in air, produce explosion or fire phenomenon. UTILITARIAN CONTENT
[0004] In view of the deficiency of prior art, the utility model provides superfine fiber conductive treatment filter material of super discharge, has good filtering effect, strong static adsorption capacity's advantage, solves the problem raised in above -mentioned background art.
[0005] The utility model provides following technical scheme: superfine fiber conductive treatment filter material of super discharge, including non -woven filter layer, the bottom of non -woven filter layer is equipped with filter assembly, the filter assembly includes first support frame, the inner wall of first support frame is equipped with first filter layer, second filter layer and adhesive glue one respectively, the bottom of filter assembly is equipped with conductive assembly, the conductive assembly includes second support frame, the inner wall of second support frame is equipped with first conductive layer, adhesive glue two and second conductive layer, the bottom of conductive assembly is equipped with end support frame, the inner wall of end support frame is equipped with end filter layer.
[0006] As a preferred technical scheme of the utility model, the first filter layer is prepared by activated carbon filling, and the second filter layer is prepared by zeolite filling.
[0007] As a preferred technical scheme of the utility model, the second filter layer and the adhesive glue two are provided with a gap on the top, and the gap penetrates the second filter layer and the adhesive glue two.
[0008] As a preferred technical scheme of the utility model, the adhesive glue one and the adhesive glue two are both prepared by gel, and the adhesive glue one is located between the first filter layer and the second filter layer, and the adhesive glue two is located between the first conductive layer and the adhesive glue two.
[0009] As a preferred technical scheme of the utility model, the first conductive layer is prepared by diatomite filling, and the second conductive layer is prepared by antistatic fiber.
[0010] As a preferred technical scheme of the utility model, the bottom of the end filter layer has an opening, and the opening penetrates the end filter layer.
[0011] Compared with the prior art, the utility model has the following beneficial effects:
[0012] 1、The superfine fiber conductive treatment filter material, when the medium passes through the first filter layer, the first filter layer adsorbs the coarse particles in the medium, so that the medium is filtered for the first time, and then the medium reaches the second filter layer through the first adhesive, the second filter layer adsorbs the fine particles in the medium, so that the medium reaches the inside of the first conductive layer through the filter assembly, the first conductive layer filters the medium for the third time, and then the medium reaches the inside of the end filter layer through the conductive assembly, the end filter layer filters the medium for the fourth time, so that the chemical substances in the medium are adsorbed by the end filter layer, and then the emission standard is reached.
[0013] 2、The superfine fiber conductive treatment filter material, when the medium enters the inside of the first conductive layer, the first conductive layer adsorbs the static electricity in the medium, so that the static electricity in the medium is reduced, and the first conductive layer can further reduce the fine particles in the medium, so that the particle content in the medium is reduced, at this time, the medium enters the inside of the second conductive layer through the first conductive layer and the second adhesive, the second conductive layer further adsorbs the static electricity in the first conductive layer, so that the static electricity in the first conductive layer is completely adsorbed. BRIEF DESCRIPTION OF DRAWINGS
[0014] Figure 1 It is a three-dimensional structure schematic view of the utility model;
[0015] Figure 2 It is an explosion structure schematic view of the utility model;
[0016] Figure 3 It is an explosion structure schematic view of the filter assembly of the utility model;
[0017] Figure 4 It is a cross-sectional structure schematic view of the utility model;
[0018] Figure 5 It is a cross-sectional structure schematic view of the conductive assembly of the utility model.
[0019] In the drawing: 1, non-woven fabric filter layer; 2, filter assembly; 201, first support frame; 202, first filter layer; 203, second filter layer; 204, first adhesive; 3, conductive assembly; 301, second support frame; 302, first conductive layer; 303, second adhesive; 304, second conductive layer; 4, end support frame; 5, end filter layer. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the utility model will be apparently and completely described in connection with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skilled in the art without creative labor belong to the scope of protection of the utility model.
[0021] Please refer to Figure 1 - Figure 5 , superfine fiber conductive treatment filter material, including non-woven filter layer 1, the bottom of non-woven filter layer 1 is provided with filter assembly 2, filter assembly 2 includes first support frame 201, the inner wall of first support frame 201 is respectively provided with first filter layer 202, second filter layer 203 and adhesive glue one 204, the bottom of filter assembly 2 is provided with conductive assembly 3, conductive assembly 3 includes second support frame 301, the inner wall of second support frame 301 is provided with first conductive layer 302, adhesive glue two 303 and second conductive layer 304, the bottom of conductive assembly 3 is provided with terminal support frame 4, the inner wall of terminal support frame 4 is provided with terminal filter layer 5, in the above structure, non-woven filter layer 1 is fixed on the top of first support frame 201, second support frame 301 is fixed on the bottom of first support frame 201, terminal support frame 4 is fixed below second support frame 301, so that the whole equipment is sealed, and medium leakage does not occur.
[0022] In a preferred embodiment, the first filter layer 202 is prepared by filling activated carbon, and the second filter layer 203 is prepared by filling zeolite, in the above structure, the first filter layer 202 is prepared by activated carbon, and the porous structure of activated carbon enables activated carbon to effectively adsorb particulate matter and adsorb particulate in the medium, the second filter layer 203 is prepared by filling zeolite, and zeolite is a natural mineral material with excellent adsorption performance, which has rich pore structure and ion exchange capacity inside, can effectively adsorb fine particulate matter and harmful medium in air, and can perform secondary adsorption on fine particles and harmful medium in the medium.
[0023] In a preferred embodiment, the top of the second filter layer 203 and the adhesive glue two 303 is provided with a gap, and the gap penetrates the second filter layer 203 and the adhesive glue two 303, in the above structure, the gap at the top of the second filter layer 203 enables the medium to be transmitted from the top to the bottom of the second filter layer 203, so that the medium is not blocked, and the gap at the top of the adhesive glue two 303 enables the adhesive glue two 303 not to be blocked, so that the medium can pass through the inside.
[0024] In a preferred embodiment, the first adhesive 204 and the second adhesive 303 are both gels, and the first adhesive 204 is between the first filter layer 202 and the second filter layer 203, and the second adhesive 303 is between the first conductive layer 302 and the second conductive layer 304. In the above structure, the first filter layer 202 and the second filter layer 203 are fixed inside the first support frame 201 by the first adhesive 204, reducing the gap between the first adhesive 204 and the second filter layer 203, avoiding the phenomenon of medium remaining inside the gap, and the first conductive layer 302 and the second conductive layer 304 are fixed inside the second support frame 301 by the second adhesive 303.
[0025] In a preferred embodiment, the first conductive layer 302 is prepared by diatomite filling, and the second conductive layer 304 is prepared by antistatic fiber. In the above structure, the first conductive layer 302 is prepared by diatomite, and the charge on the surface of diatomite can directly attract and adsorb ions or molecules with opposite charges, and the charge on the surface of diatomite can also induce polarization of polar molecules or ions in the surrounding medium, thereby enhancing the adsorption effect and allowing the static electricity inside the medium to be adsorbed when the air enters the inside of the first conductive layer 302.
[0026] In a preferred embodiment, the bottom of the end filter layer 5 has an opening, and the opening penetrates the end filter layer 5. In the above structure, the medium can pass through the end filter layer 5 to the bottom of the end filter layer 5 through the opening at the bottom of the end filter layer 5, so that the medium does not remain on the top of the end filter layer 5 for a long time.
[0027] The working principle is that the medium enters the inside of the filter assembly 2 through the non-woven fabric filter layer 1, the medium is coarsely filtered through the non-woven fabric filter layer 1, the particles in the medium are adsorbed for the first time through the first filter layer 202, so that the larger particles in the medium are adsorbed by the first filter layer 202, and then the medium moves downward through the first filter layer 202, and then the medium reaches the inside of the second filter layer 203 through the adhesive glue one 204, the particles in the medium are adsorbed for the second time by the second filter layer 203, so that the fine particles in the medium are adsorbed by the second filter layer 203, and at the same time, the second filter layer 203 can adsorb the harmful gas in the medium, at this time, the medium moves to the inside of the conductive assembly 3 through the second filter layer 203, and then enters the inside of the first conductive layer 302, the static electricity in the medium is adsorbed for the first time through the first conductive layer 302, and at the same time, the first conductive layer 302 can adsorb a small amount of particle-shaped impurities in the medium, so that the content of the medium is further purified, the medium reaches the inside of the second conductive layer 304 through the adhesive glue two 303, the static electricity in the medium is completely adsorbed through the second conductive layer 304, at this time, the medium is discharged through the end filter layer 5, so as to reach the discharge standard.
[0028] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, the scope of the utility model is defined by the appended claims and their equivalents.
Claims
1. Super emission superfine fiber conductive treatment filter material, comprising a non-woven fabric filter layer (1), characterized in that: The bottom of the non-woven fabric filter layer (1) is provided with a filter assembly (2), the filter assembly (2) comprises a first support frame (201), the inner wall of the first support frame (201) is respectively provided with a first filter layer (202), a second filter layer (203) and adhesive glue one (204), the bottom of the filter assembly (2) is provided with a conductive assembly (3), the conductive assembly (3) comprises a second support frame (301), the inner wall of the second support frame (301) is provided with a first conductive layer (302), adhesive glue two (303) and a second conductive layer (304), the bottom of the conductive assembly (3) is provided with a terminal support frame (4), the inner wall of the terminal support frame (4) is provided with a terminal filter layer (5).
2. The ultra emission ultrafine fiber conductive treatment filter material according to claim 1, characterized in that: The first filter layer (202) is prepared by filling activated carbon, and the second filter layer (203) is prepared by filling zeolite.
3. The ultra emission ultrafine fiber conductive treatment filter material according to claim 1, characterized in that: The top of the second filter layer (203) and the adhesive glue two (303) is provided with a gap, and the gap penetrates the second filter layer (203) and the adhesive glue two (303).
4. The ultra-low emission ultrafine conductive treatment filter media of claim 1, wherein: The adhesive glue one (204) and the adhesive glue two (303) are both prepared by gel, the adhesive glue one (204) is located between the first filter layer (202) and the second filter layer (203), and the adhesive glue two (303) is located between the first conductive layer (302) and the adhesive glue two (303).
5. The ultra-low emission ultrafine conductive treatment filter media of claim 1, wherein: The first conductive layer (302) is prepared by filling diatomite, and the second conductive layer (304) is prepared by antistatic fiber.
6. The ultra-low emission ultrafine conductive treatment filter media of claim 1, wherein: The bottom of the terminal filter layer (5) has an opening, and the opening penetrates the terminal filter layer (5).