A Novel High-Precision Imaging Radar for Quality Inspection of Building Insulation Layers
Abstract
:Featured Application
Abstract
1. Introduction
2. Radar Inspection Principle and Main Technical Parameters
2.1. Radar Inspection Principle
2.2. Main Technical Parameters
3. Radar System Design
3.1. System Composition
3.2. Radar Signal Selection
3.3. Ultra-Wideband High-Bunching Antenna Design
3.3.1. Antenna Selection
3.3.2. Ultra-Wideband High-Bunching Antenna
Radiation Oscillator
Lens Design
Reflective Backplane
Structure Design
3.3.3. Antenna Sample Test Results
4. Test and Imaging Results
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ARM | Advanced RISC Machine |
SMA | SubMiniature version A |
SWR | Standing wave ratio |
VSWR | Voltage standing wave ratio |
PCB | Printed Circuit Board |
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Existing Nondestructive Testing (NDT) Methods | Advantages | Limitations |
---|---|---|
Optical Testing -Laser Scanning -Infrared Thermographic Testing | Capable of airborne operation and enables quantitative detection of surface defects (e.g., cracks, deformations) in insulation layers with high efficiency and accuracy | Surface-level detection only, limited to severe surface defects (e.g., cracks), cannot penetrate insulation to assess internal voids, water infiltration, bonding mortar distribution, and area coverage |
Acoustic Testing -Ultrasonic Testing -Tap Testing | Low-cost solution and requires minimal technical expertise for operators, reducing training barriers | Subjective analysis, defect localization relies heavily on empirical interpretation, introducing operator bias |
Conventional High-Frequency Ground Penetrating Radar (GPR) Testing | Deep detection capability, identifies subsurface features such as reinforcing bars (rebar) and protective layer thickness beneath the insulation. | Higher operational expenses, resolution insufficient to distinguish 1–2 cm thick bonded mortar layers |
Parameter | Test Level | Min. | Typ. | Max. | Unit |
---|---|---|---|---|---|
Output port match, S22 | |||||
6.0–10.2 GHz | III (vn-tr) | −3.8 | dB | ||
Output pulse center frequency | |||||
PGSelect = 9 | III (vn-ti) | 8.2 | GHz | ||
PGSelect = 10 | III (vn-ti) | 8.8 | GHz | ||
Bandwidth, −10 dB | |||||
PGSelect = 9 | III (vn-ti) | 2.35 | 2.65 | 3.20 | GHz |
PGSelect = 10 | III (vn-ti) | 2.65 | 3.10 | 4.40 | GHz |
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Cheng, D.; Zeng, Z.; Ge, W.; Yin, Y.; Wang, C.; Li, S. A Novel High-Precision Imaging Radar for Quality Inspection of Building Insulation Layers. Appl. Sci. 2025, 15, 5991. https://doi.org/10.3390/app15115991
Cheng D, Zeng Z, Ge W, Yin Y, Wang C, Li S. A Novel High-Precision Imaging Radar for Quality Inspection of Building Insulation Layers. Applied Sciences. 2025; 15(11):5991. https://doi.org/10.3390/app15115991
Chicago/Turabian StyleCheng, Dandan, Zhaofa Zeng, Wei Ge, Yuemeng Yin, Chenghao Wang, and Shaolong Li. 2025. "A Novel High-Precision Imaging Radar for Quality Inspection of Building Insulation Layers" Applied Sciences 15, no. 11: 5991. https://doi.org/10.3390/app15115991
APA StyleCheng, D., Zeng, Z., Ge, W., Yin, Y., Wang, C., & Li, S. (2025). A Novel High-Precision Imaging Radar for Quality Inspection of Building Insulation Layers. Applied Sciences, 15(11), 5991. https://doi.org/10.3390/app15115991