<p>Electrostatic precipitators (ESPs) are widely used for particulate matter control in buildings due to their cost-effectiveness and low maintenance requirements. However, existing ESPs exhibit low removal efficiency for submicron particles and inefficient dust cleaning after accumulation. To address these limitations, a collection module in ESP, featuring electrodes coated with a PVDF/H-SiO<sub>2</sub> superhydrophobic coating, is proposed. The applied voltage, electrode gap, and coating material are evaluated in this study. Results showed that the water contact angle on the coated surface was 152.4°, attributed to the combination of low-surface-energy groups and rough structures. When superhydrophobic electrodes with a 2-mm gap were used and air velocity of 1.5 m/s, the removal efficiency for 0.3–0.5 μm particles was 92.5%. Additionally, the removal efficiency of the collection module with superhydrophobic coating could be restored to 99.7% of its initial efficiency, compared to 87.0% for the collection module without the coating. Moreover, the removal efficiency of the ESP remained consistently high over 21 days with an average of 91.3%. The proposed novel ESP demonstrates significant potential for air removal in ventilation systems for clean and sustainable building environments.</p>

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A novel electrostatic precipitator with superhydrophobic coating for enhanced particulate removal efficiency restoration

  • Chenhua Wang,
  • Chenzheng Yan,
  • Zhiyang Zhang,
  • Junjie Liu,
  • Xu Han

摘要

Electrostatic precipitators (ESPs) are widely used for particulate matter control in buildings due to their cost-effectiveness and low maintenance requirements. However, existing ESPs exhibit low removal efficiency for submicron particles and inefficient dust cleaning after accumulation. To address these limitations, a collection module in ESP, featuring electrodes coated with a PVDF/H-SiO2 superhydrophobic coating, is proposed. The applied voltage, electrode gap, and coating material are evaluated in this study. Results showed that the water contact angle on the coated surface was 152.4°, attributed to the combination of low-surface-energy groups and rough structures. When superhydrophobic electrodes with a 2-mm gap were used and air velocity of 1.5 m/s, the removal efficiency for 0.3–0.5 μm particles was 92.5%. Additionally, the removal efficiency of the collection module with superhydrophobic coating could be restored to 99.7% of its initial efficiency, compared to 87.0% for the collection module without the coating. Moreover, the removal efficiency of the ESP remained consistently high over 21 days with an average of 91.3%. The proposed novel ESP demonstrates significant potential for air removal in ventilation systems for clean and sustainable building environments.