FILTER MATERIAL USED FOR AUTOMOBILE AIR CONDITIONING AND CAPABLE OF FILTERING OUT VOLATILE ORGANIC COMPOUND (VOC) GAS, AND PROCESS THEREOF
20220080342 · 2022-03-17
Inventors
Cpc classification
B01D53/72
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/083
PERFORMING OPERATIONS; TRANSPORTING
B32B2262/04
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0681
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/718
PERFORMING OPERATIONS; TRANSPORTING
B01D2257/708
PERFORMING OPERATIONS; TRANSPORTING
B32B5/269
PERFORMING OPERATIONS; TRANSPORTING
B01D39/18
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0216
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0636
PERFORMING OPERATIONS; TRANSPORTING
B01D2259/4566
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0407
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/20
PERFORMING OPERATIONS; TRANSPORTING
B32B7/14
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0668
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/10
PERFORMING OPERATIONS; TRANSPORTING
B32B5/271
PERFORMING OPERATIONS; TRANSPORTING
B32B5/268
PERFORMING OPERATIONS; TRANSPORTING
B32B2262/106
PERFORMING OPERATIONS; TRANSPORTING
B32B2274/00
PERFORMING OPERATIONS; TRANSPORTING
B32B5/266
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/724
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D39/18
PERFORMING OPERATIONS; TRANSPORTING
B01D39/16
PERFORMING OPERATIONS; TRANSPORTING
B01D39/20
PERFORMING OPERATIONS; TRANSPORTING
B32B5/02
PERFORMING OPERATIONS; TRANSPORTING
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure provides a filter material used for automobile air conditioning and capable of filtering out volatile organic compound (VOC) gas, including a sandwich structure (100) and an activated carbon fiber (ACF) non-woven fabric layer (200) located at one side of the sandwich structure (100), where, the ACF non-woven fabric layer (200) is composed of interleaved ACFs, and the ACF non-woven fabric layer (200) is compounded with the sandwich structure (100) via hot melt adhesive (HMA) (210).
Claims
1. A filter material used for automobile air conditioning and capable of filtering out volatile organic compound (VOC) gas, comprising a sandwich structure (100) and an activated carbon fiber (ACF) non-woven fabric layer (200) located at one side of the sandwich structure (100), wherein, the ACF non-woven fabric layer (200) is composed of interleaved ACFs, and the ACF non-woven fabric layer (200) is compounded with the sandwich structure (100) via hot melt adhesive (HMA) (210); the sandwich structure (100) comprises a viscose fiber non-woven fabric layer (110), a thermoplastic polyurethane (TPU) nanofiber layer (120), and a polypropylene (PP) long fiber non-woven fabric layer (130); and the TPU nanofiber layer (120) is located at one side of the viscose fiber non-woven fabric layer (110), the PP long fiber non-woven fabric layer (130) is located at one side of the TPU nanofiber layer (120), and the ACF non-woven fabric layer (200) is located at one side of the PP long fiber non-woven fabric layer (130).
2. The filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 1, wherein, the PP long fiber non-woven fabric layer (130), the TPU nanofiber layer (120), and the viscose fiber non-woven fabric layer (110) form the sandwich structure (100) by a compounding method; and the compounding method is thermal compounding or ultrasonic compounding.
3. The filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 1, wherein, the HMA (210) is uniformly distributed between the sandwich structure (100) and the ACF non-woven fabric layer (200) in a dot-like, fibrous, or linear form.
4. The filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 1, wherein, the ACF non-woven fabric layer (200) has a weight of 50 GSM/m.sup.2 to 500 GSM/m.sup.2.
5. The filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 1, wherein, the viscose fiber non-woven fabric layer (110) is located at a windward side, and the ACF non-woven fabric layer (200) is located at a wind-out side.
6. A fabrication method of filter material used for automobile air conditioning and capable of filtering out volatile organic compound (VOC) gas, comprising the following steps: a. fabricating a viscose fiber non-woven fabric layer (110); b. fabricating a thermoplastic polyurethane (TPU) nanofiber layer (120); c. fabricating a polypropylene (PP) long fiber non-woven fabric layer (130); d. subjecting the viscose fiber non-woven fabric layer (110), the TPU nanofiber layer (120), and the PP long fiber non-woven fabric layer (130) to thermal compounding or ultrasonic compounding to form a sandwich structure (100); e. fabricating an activated carbon fiber (ACF) non-woven fabric layer (200); f. compounding the fabricated ACF non-woven fabric layer (200) with the sandwich structure (100) via a hot melt adhesive (HMA) (210), wherein, the ACF non-woven fabric layer (200) is located at an outer side of the PP long fiber non-woven fabric layer 130; and g. subjecting a finished filter material to quality inspection and trimming, and finally storing the filter material in a warehouse; wherein, the steps a, b, and c can be conducted in any order, and the steps a, b, c, and d can be conducted either before or after the step e.
7. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein, the HMA (210) used in the step f for compounding is uniformly distributed in a dot-like, fibrous, or linear form.
8. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein, the step a comprises the following substeps: fabricating viscose fibers into a non-woven fabric by spun-bonding, and calendaring the non-woven fabric with a calendar roll.
9. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein, the step b comprises the following steps: mixing a TPU granular resin with a mixed solvent of N-dimethylformamide (DMF) and methyl ethyl ketone (MEK) in a closed container to obtain a TPU solution, and fabricating the TPU nanofiber layer (120) from the TPU solution by a nanofiber membrane fabrication device.
10. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein, the step c comprises the following step: fabricating the PP long fiber non-woven fabric layer (130) from a PP polymer resin by a melt-blown device.
11. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein, the step e comprises the following step: fabricating the ACF non-woven fabric layer (200) from ACFs by spun-lacing.
12. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein the PP long fiber non-woven fabric layer (130), the TPU nanofiber layer (120), and the viscose fiber non-woven fabric layer (110) form the sandwich structure (100) by a compounding method; and the compounding method is thermal compounding or ultrasonic compounding.
13. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein the ACF non-woven fabric layer (200) has a weight of 50 GSM/m.sup.2 to 500 GSM/m.sup.2.
14. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 6, wherein the viscose fiber non-woven fabric layer (110) is located at a windward side, and the ACF non-woven fabric layer (200) is located at a wind-out side.
15. A fabrication method of filter material used for automobile air conditioning and capable of filtering out volatile organic compound (VOC) gas according to claim 1, comprising the following steps: a. fabricating a viscose fiber non-woven fabric layer (110); b. fabricating a thermoplastic polyurethane (TPU) nanofiber layer (120); c. fabricating a polypropylene (PP) long fiber non-woven fabric layer (130); d. subjecting the viscose fiber non-woven fabric layer (110), the TPU nanofiber layer (120), and the PP long fiber non-woven fabric layer (130) to thermal compounding or ultrasonic compounding to form a sandwich structure (100); e. fabricating an activated carbon fiber (ACF) non-woven fabric layer (200); f. compounding the fabricated ACF non-woven fabric layer (200) with the sandwich structure (100) via a hot melt adhesive (HMA) (210), wherein, the ACF non-woven fabric layer (200) is located at an outer side of the PP long fiber non-woven fabric layer 130; and g. subjecting a finished filter material to quality inspection and trimming, and finally storing the filter material in a warehouse; wherein, the steps a, b, and c can be conducted in any order, and the steps a, b, c, and d can be conducted either before or after the step e.
16. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 15, wherein, the PP long fiber non-woven fabric layer (130), the TPU nanofiber layer (120), and the viscose fiber non-woven fabric layer (110) form the sandwich structure (100) by a compounding method; and the compounding method is thermal compounding or ultrasonic compounding.
17. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 15, wherein, the HMA (210) is uniformly distributed between the sandwich structure (100) and the ACF non-woven fabric layer (200) in a dot-like, fibrous, or linear form.
18. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 15, wherein, the ACF non-woven fabric layer (200) has a weight of 50 GSM/m.sup.2 to 500 GSM/m.sup.2.
19. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 15, wherein, the viscose fiber non-woven fabric layer (110) is located at a windward side, and the ACF non-woven fabric layer (200) is located at a wind-out side.
20. The fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas according to claim 15, wherein, the step a comprises the following substeps: fabricating viscose fibers into a non-woven fabric by spun-bonding, and calendaring the non-woven fabric with a calendar roll.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] In
DETAILED DESCRIPTION
[0034] The specific implementations of the present disclosure are further described in detail below with reference to examples. The following examples are intended to illustrate the present disclosure, rather than to limit the scope of the present disclosure.
[0035] As shown in
[0036] As shown in
[0037] As shown in
[0038] As shown in
[0039] As shown in
[0040] As shown in
[0041] Moreover, the VOC gas 430 in the air 400 inside an automobile will also be slowly adsorbed by the ACF non-woven fabric layer 200, thereby allowing the air 400 inside the automobile to be fresh and odorless.
[0042] A fabrication method of the filter material used for automobile air conditioning and capable of filtering out VOC gas provided in the present disclosure includes the following steps:
[0043] a. A viscose fiber non-woven fabric layer 110 is fabricated.
[0044] Viscose fibers are fabricated into a non-woven fabric by spun-bonding, which will be used as a basal layer for a filter material, and then the viscose fiber non-woven fabric layer 110 is calendared by a calendar roll to ensure that the surface to be attached with a TPU nanofiber layer 120 is smooth.
[0045] b. A TPU nanofiber layer 120 is fabricated.
[0046] A TPU granular resin is mixed with a mixed solvent of N,N-dimethylformamide (DMF) and methyl ethyl ketone (MEK) in a closed container to obtain a TPU solution, and the TPU nanofiber layer 120 is fabricated from the TPU solution by a nanofiber membrane fabrication device. The viscose fiber non-woven fabric layer 110 and the TPU nanofiber layer 120 are pressed by a calendar roll to form a two-layer composite structure.
[0047] c. APP long fiber non-woven fabric layer 130 is fabricated.
[0048] The PP long fiber non-woven fabric layer 130 is fabricated from a PP polymer resin by a melt-blown device.
[0049] d. The viscose fiber non-woven fabric layer 110, the TPU nanofiber layer 120, and the PP long fiber non-woven fabric layer 130 are subjected to thermal compounding or ultrasonic compounding to form a sandwich structure 100.
[0050] e. An ACF non-woven fabric layer 200 is fabricated.
[0051] The ACF non-woven fabric layer 200 is fabricated from ACFs by spun-lacing so that the non-woven fabric layer has excellent gas permeability.
[0052] f. The fabricated ACF non-woven fabric layer 200 is coated with HMA 210 in a dot-like, interleaved fibrous, or linear form and then compounded with the sandwich structure 100 formed by subjecting the viscose fiber non-woven fabric layer 110, the TPU nanofiber layer 120, and the PP long fiber non-woven fabric layer 130 to thermal compounding or ultrasonic compounding, so as to form a four-layer structure, where, the ACF non-woven fabric layer 200 is located at an outer side of the PP long fiber non-woven fabric layer 130.
[0053] g. A finished filter material is subjected to quality inspection and trimming, and finally stored in a warehouse.
[0054] A section was cut off from each roll of filter material, and the ability to filter out and adsorb particles and the ability to adsorb VOC gas 430 are tested by a common test method. After the test, irregular edges produced at two sides due to compounding are trimmed for qualified filter materials, and the filter materials are then stored in rolls.
[0055] In summary, the above examples are not restrictive implementations of the present disclosure. Any modification or equivalent variation made by those skilled in the art on the basis of the essence of the present disclosure falls within the technical scope of the present disclosure.