Preparation and Performance Study of Composite Aramid Paper for High-Frequency Working Conditions
Abstract
:1. Introduction
2. Experimental Section
2.1. Main Materials
2.2. Preparation of High-Performance Composite Aramid Paper
2.2.1. Preparation Process of Boron Nitride Nanosheets (BNNS)
Preparation of BNNS
Preparation of BNNS-OH
2.2.2. Preparation Process of Composite Filler KH-550@BNNS Particles
2.2.3. Preparation Process of Composite Aramid Paper
3. Results and Discussion
3.1. Performance Characterization of Composite Particles
3.1.1. FTIR Analysis
3.1.2. XRD Analysis
3.1.3. TEM Analysis
3.2. Performance Characterization of Composite Aramid Paper
3.2.1. SEM and EDS Analysis
3.2.2. Thermogravimetric and Thermal Conductivity Analysis
3.2.3. Dielectric Properties Analysis
3.2.4. Partial Discharge (PD) Characteristics Analysis
Insulating Material | Model Number | Nominal Thickness/mm | Heat Resistance Level | Calculate the Intensity of Electric Field/(kV/mm) |
---|---|---|---|---|
DMD paper | 6641F | 0.30 | F | ≥30 |
PET membrane film | 6020 | 0.125 | E | ≥100 |
PI membrane film | 6050 | 0.10 | H | 60~100 |
3.2.5. Analysis of Space Charge Characteristics
3.2.6. Mechanical Performance Analysis
4. Mechanism Analysis
4.1. Influence of Thermal Conductive Network on the Performance of Composite Aramid Paper
4.2. Influence of Hydrogen Bonds on the Performance of Composite Aramid Paper
4.3. Influence of Charge Transport on the Performance of Composite Aramid Paper
5. Conclusions
- (1)
- Through characterization methods such as FTIR, XRD, and TEM analysis, it has been confirmed that boron nitride nanosheets (BNNS) have been successfully exfoliated and modified by a silane coupling agent. A comparison between composite aramid papers containing BNNS and K-BNNS particles reveals that the silane coupling agent KH-550 significantly improves the interfacial compatibility between composite particles and the aramid paper matrix, reducing internal defects within the composite aramid paper.
- (2)
- When the content of K-BNNS composite particles is 10%, the composite aramid paper exhibits optimal comprehensive performance. Compared to Nomex paper, the breakdown voltage of partial discharge is increased by an average of 48.73%, thermal conductivity of plane thermal conductivity and through-plane is improved by 502.86% and 633.13%, respectively, and tensile strength is increased by 2.49%.
- (3)
- The superior performance of F-10 composite aramid paper is attributed to two main reasons. First, a complete thermal conductive network is formed within the composite aramid paper matrix at this filler content, reducing matrix interfacial thermal resistance and enhancing the thermal conductivity of the material. Second, the addition of composite particles introduces numerous hydrogen bonds, strengthening the interfacial bonding force between the aramid matrix and composite particles. It indicates that the energy barriers for charge trapping and de-trapping are increased, charge migration at defect is inhibited, and the activity of partial discharge is suppressed.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Material Name | Specification | Manufacturer |
---|---|---|
Boron nitride (BN) | Particle size 1 μm | Aladdin reagent Co., Ltd. (Shanghai, China) |
Polymeric m-phenylenediamine solution (PMIA) | Solid content 20% | Taihe New Material Group Co., Ltd. (Shandong, China) |
N,N-dimethylacetamide (DMAc) | Analytical purity (AR) | China National Pharmaceutical Group Chemical Reagent Co., Ltd. (Shanghai, China) |
Double-distilled water | Shuyang Kehong Trading Co., Ltd. (Jiangsu, China) | |
Polytetrafluoroethylene filter membrane | Aperture 0.1 μm | German Filter New Materials Technology Co., Ltd. (Zhejiang, China) |
Silane coupling agent KH-550 | Chemically pure | Nanjing Chuanshi Chemical Auxiliary Co., Ltd. (Nanjing, China) |
Composite Aramid Paper | Composite Particle Content | The in-Plane Thermal Conductivity | The Through-Plane Thermal Conductivity |
---|---|---|---|
NBKP/h-BN [23] | 40% | 0.682W/(m·K) | |
BNNS/ANF [24] | 30% | 5.31 W/(m·K) | |
(BNNS@PDA)/ANF [25] | 50% | 0.62 W/(m·K) | 3.94 W/(m·K) |
BTCN/PMIA [26] | 10% | 0.62 W/(m·K) | |
D@BTW-fBNNSs [27] | 15% | 0.57 W/(m·K) | |
Sample of this article | 10% | 0.76 W/(m·K) | 7.64W/(m·K) |
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Li, X.; Qin, T.; Zhang, W.; Wang, H.; Chen, Y.; Li, K.; Wang, Q.; Wang, Y. Preparation and Performance Study of Composite Aramid Paper for High-Frequency Working Conditions. Nanomaterials 2024, 14, 1880. https://doi.org/10.3390/nano14231880
Li X, Qin T, Zhang W, Wang H, Chen Y, Li K, Wang Q, Wang Y. Preparation and Performance Study of Composite Aramid Paper for High-Frequency Working Conditions. Nanomaterials. 2024; 14(23):1880. https://doi.org/10.3390/nano14231880
Chicago/Turabian StyleLi, Xiaonan, Tong Qin, Wenxu Zhang, Hong Wang, Yanhong Chen, Kangle Li, Qing Wang, and Yibo Wang. 2024. "Preparation and Performance Study of Composite Aramid Paper for High-Frequency Working Conditions" Nanomaterials 14, no. 23: 1880. https://doi.org/10.3390/nano14231880
APA StyleLi, X., Qin, T., Zhang, W., Wang, H., Chen, Y., Li, K., Wang, Q., & Wang, Y. (2024). Preparation and Performance Study of Composite Aramid Paper for High-Frequency Working Conditions. Nanomaterials, 14(23), 1880. https://doi.org/10.3390/nano14231880