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Verified CAS / Academic Author2 Decoded Studies

Prof. WANG Jiangfei

State Key Laboratory of Disaster Prevention & Reduction for Power Grid (Changsha University of Science & Technology)

Co-Affiliations:Fujian Normal University

Research Publications & English Decoded Briefs

Showing 2 publications
Acta Energiae Solaris Sinica2026DOI: 10.19912/j.0254-0096.tynxb.202608_9670

Three-Phase Parallel Quasi-Z-Source Low-Ripple High-Gain Grid-Connected Converter for Hydrogen Fuel Cells

Existing grid-connected converter systems for hydrogen fuel cells suffer from insufficient voltage step-up capability, weak ripple suppression, and elevated switch overcurrent risk. This paper proposes a three-phase parallel quasi-Z-source two-stage DC-boost hydrogen fuel cell grid-connected converter (TPPQZSTSDBHFC-GCC). A mathematical model of proton exchange membrane fuel cell (PEMFC) output voltage, current, and power is established to reveal the power-voltage-current relationship and response characteristics. Based on the fuel cell output characteristics, the TPPQZSTSDBHFC-GCC topology is proposed, and its operating principle and ripple suppression capability are analyzed in detail. Results demonstrate that the proposed topology achieves high voltage gain while maintaining low ripple, low overcurrent risk, and superior steady-state performance. Simulation and experimental verification confirm the correctness and effectiveness of the proposed topology. The system addresses the critical challenge of wide-range voltage fluctuations (213–323 V) and high output currents (up to 700 A) in high-power PEMFC stacks, enabling safe grid integration and extended fuel cell lifespan.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202608007

Antibiotic Pollution Characteristics and Ecological Risk Assessment in the Tidal Reach of the Minjiang River During Low-Water Periods Under Policy Intervention

The Minjiang River Basin, subjected to combined pollution from domestic, agricultural, and industrial sources, has become a typical sensitive area for studying the environmental behavior of emerging contaminants such as antibiotics. This study conducted a cross-year comparative analysis of the composition and concentrations of antibiotics in water samples from nine sampling sites during the dry season in November 2022 and 2024. The findings revealed: 1) After the implementation of the "National Action Plan for Reducing Antimicrobial Use in Livestock", the detection concentrations of tetracycline antibiotics (TCs) decreased (e.g., doxycycline concentrations dropped from 7.75 ng/L to undetectable levels), and the mixed risk quotient (MRQ) across the entire basin transitioned from medium to low risk. However, lincomycin (up to 4.6 ng/L), clarithromycin (1.3 ng/L), and florfenicol (0.6 ng/L) have emerged, indicating an increasing hidden ecological risk from substitution. 2) High-concentration antibiotic zones transferred from urban residential areas in 2022 to intensive aquaculture zones and upstream reservoir areas in 2024. The reduction in dry-season water flow intensified pollutant accumulation, synergistically enhancing the effects of tidal drag. Additionally, the conversion of agricultural land to aquaculture ponds led to increased use of alternative drugs (e.g., sulfamethazine), while policy interventions mitigated the exacerbation of urban antibiotic pollution by construction land. This study elucidates the migration patterns of antibiotic pollution under the synergistic effects of policy regulation and natural processes, emphasizing the need to address hidden risks of substitute drugs and the driving role of land-use changes, providing scientific basis for watershed-scale risk assessment and precise management of emerging pollutants.

Prof. WANG Jiangfei | Publications & Academic Profile | SinoGreenTech | SinoGreenTech