Innovative Research Award
Shaohua Zhou
Zhongyuan University of Technology, China
| Shaohua Zhou | |
|---|---|
| Affiliation | Zhongyuan University of Technology |
| Country | China |
| Scopus ID | 57219012772 |
| Documents | 39 |
| Citations | 486 |
| h-index | 13 |
| Subject Area | Radio Frequency |
| Event | Global Tech Excellence Awards |
Shaohua Zhou is a researcher at Zhongyuan University of Technology, China, whose scholarly work addresses radio frequency technologies, microwave engineering, sensing, power amplification, and high-frequency communications. His recent publications demonstrate engagement with measurement methods, harmonic-tuned circuits, and frequency prediction, reflecting a research profile across contemporary RF systems and electronic engineering. [1] [2] [3]
Abstract
Shaohua Zhou is a researcher at Zhongyuan University of Technology, China, working in radio-frequency and electronic engineering. His scholarly record includes studies of open-ended coaxial probe sensing depth, high-efficiency power amplifier design, and maximum usable frequency prediction for high-frequency communications. These publications address measurement accuracy, microwave circuit efficiency, and frequency selection through experimental analysis, circuit methodologies, and predictive approaches. With 39 indexed documents, 486 citations, and an h-index of 13, his profile reflects sustained research activity and visibility. His work connects theoretical analysis with engineering applications across radio-frequency systems, providing contributions to measurement, circuit design, and high-frequency communication research. [1] [2] [3]
Keywords
- Radio Frequency
- Microwave Engineering
- RF Measurement
- Power Amplifiers
- Microstrip Harmonic Tuning
- High-Frequency Communications
- Frequency Prediction
- Electronic Engineering
Introduction
Shaohua Zhou is a researcher at Zhongyuan University of Technology, China, whose scholarly work addresses radio frequency technologies, microwave engineering, sensing, power amplification, and high-frequency communications. His recent publications demonstrate engagement with measurement methods, harmonic-tuned circuits, and frequency prediction, reflecting a research profile across contemporary RF systems and electronic engineering. [1] [2] [3]
Research Profile
Zhou’s indexed research profile comprises 39 documents, 486 citations, and an h-index of 13, indicating sustained and consistent scholarly research activity and measurable visibility in the literature. His work spans radio-frequency measurement, microwave circuits, power amplifiers, and high-frequency communication analysis, with publications connecting theoretical methods, experimental validation, and engineering-oriented system development. [4]
Research Contributions
Zhou’s contributions include research on open-ended coaxial probe sensing depth, compact microstrip harmonic tuning for efficient power amplifiers, and maximum usable frequency prediction for high-frequency communications. These studies address practical RF engineering challenges involving measurement accuracy, circuit efficiency, and frequency selection, combining analytical modeling with experimental or data-driven research approaches. [1] [2] [3]
Publications
Selected publications illustrate a coherent focus on radio-frequency engineering. Recent work examines sensing depth across materials and frequencies, efficient power-amplifier design using microstrip harmonic tuning, and entropy-based prediction of maximum usable frequency for high-frequency communication. Together, these publications represent complementary investigations into measurement, circuit design, and propagation-related RF applications. [1] [2] [3]
- Effect of materials with different permittivity on the sensing depth of open-ended coaxial probes at different frequencies. [1]
- A Methodology for Designing High-Efficiency Power Amplifiers Using Simple Microstrip Harmonic Tuning Circuits. [2]
- A Fusing Prediction Algorithm of the Maximum Usable Frequency for High-Frequency Communications Based on Entropy Theory. [3]
Research Impact
The research has potential relevance to RF measurement, microwave circuit development, wireless communication planning, and electronic system optimization. The cited studies contribute methodological approaches for improving sensing-depth estimation, simplifying harmonic-tuned amplifier structures, and predicting usable frequencies. Collectively, this work supports continued investigation of reliable and efficient high-frequency technologies and applications. [1] [2] [3]
Award Suitability
Based on the documented publication record and research themes, Zhou demonstrates clear alignment with an Innovative Research Award focused on radio-frequency technologies. His work addresses identifiable engineering problems through measurement, modeling, circuit design, and prediction methods. The breadth of topics and applied orientation provide a reasonable scholarly basis for recognition. [1] [2] [3] [4]
Conclusion
Shaohua Zhou’s research profile reflects sustained activity in radio-frequency and related electronic engineering topics. His publications address measurement, efficient amplification, and high-frequency communication prediction, demonstrating methodological breadth and practical relevance. The documented record supports consideration for an Innovative Research Award while maintaining a balanced assessment grounded in identifiable scholarly contributions. [1] [2] [3] [4]
External Links
References
- Yang, G., Zhou, S., Xiao, J., Zhang, H., & Yang, J. (2025). Effect of materials with different permittivity on the sensing depth of open-ended coaxial probes at different frequencies. Review of Scientific Instruments, 96(10), 104711.
https://pubmed.ncbi.nlm.nih.gov/41128437/ - Zhang, G., & Zhou, S. (2025). A methodology for designing high-efficiency power amplifiers using simple microstrip harmonic tuning circuits. Electronics, 14(23), 4767.
https://www.mdpi.com/2079-9292/14/23/4767 - Wang, J., Wang, Z., Qiao, Y., Han, H., Shi, Y., & Zhou, S. (2026). A fusing prediction algorithm of the maximum usable frequency for high-frequency communications based on entropy theory. IEEE Transactions on Antennas and Propagation.
https://ieeexplore.ieee.org/document/11222893 - Elsevier. (n.d.). Scopus author details: Shaohua Zhou, Author ID 57219012772. Scopus.
https://www.scopus.com/pages/authors/57219012772