Microwave Imaging Sensor Using Low Profile Modified Stacked Type Planar Inverted F Antenna
Abstract
:1. Introduction
2. Design and Methodology
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameters of Breast Phantom | Value |
---|---|
Dimension | 16 × 8 cm2 |
Diameter of the tumor | 10 mm |
Number of layers | 4; air, skin, breast tissue and tumor |
Skin permittivity | 38 |
Skin conductivity | 1.49 S/m |
Skin layer thickness | 2.5 mm |
Maximum width of breast tissue | 8.75 cm |
Breast tissue permittivity | 5.14 |
Breast tissue conductivity | 0.141 S/m |
Refs. | Antenna Type | Size (mm) | Op. Freq. (GHz) | Gain (dB) | Directivity | Remarks |
---|---|---|---|---|---|---|
[7] | Substrate based 3D | 50 × 34 × 25 | 1.41–3.57 | 2.6 dB | Almost omnidirectional | Low in gain and the radiation pattern is not unidirectional which are key requirements. Moreover, Design is expensive substrate based. |
[10] | FR4 substrate based folded dipole | 80 × 20 × 10 | 1.1–2.2 | 4.6 dB | Almost omnidirectional | Design is complex due to integration of substrate and copper plate. Substrate is expensive. Radiation pattern is not unidirectional. |
[19] | Lens-loaded Vivaldi | 110.3 × 100 × 1.6 | 1–14 | <3 dB at lower freq. (2 GHz) | Almost omnidirectional | Large in dimension. Gain is low at lower microwave frequency with omnidirectional radiation. |
[20] | Vivaldi | 45 × 53 | 2.7–7 | <2 dB in lower freq. | Unidirectional | Low in gain and height of the Vivaldi type antenna could be an issue while placement in imaging system. Substrate is also expensive. |
[21] | Dipole | 60 × 60 × 76.38 | 1–4.2 | Peak gain 6.2 dB at 4 GHz, gain <3 dB at lower freq. (2 GHz) | Omnidirectional | Height is too high, complex design and the radiation pattern is not unidirectional. |
[23] | Patch | Not specified | 2.43–2.46 | Not specified | Unidirectional | Obtained unidirectional properties. Only computational results presented, measured results of the designed antenna unavailable. |
Proposed | Modified PIFA | 70 × 60 × 10 | 1.55–1.68 | 4.5 dB | Unidirectional | Unidirectional radiation with high gain and efficiency in low frequency for sufficient signal penetration. |
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Islam, M.T.; Ullah, M.A.; Alam, T.; Singh, M.J.; Cho, M. Microwave Imaging Sensor Using Low Profile Modified Stacked Type Planar Inverted F Antenna. Sensors 2018, 18, 2949. https://doi.org/10.3390/s18092949
Islam MT, Ullah MA, Alam T, Singh MJ, Cho M. Microwave Imaging Sensor Using Low Profile Modified Stacked Type Planar Inverted F Antenna. Sensors. 2018; 18(9):2949. https://doi.org/10.3390/s18092949
Chicago/Turabian StyleIslam, Mohammad Tariqul, Md. Amanath Ullah, Touhidul Alam, Mandeep Jit Singh, and Mengu Cho. 2018. "Microwave Imaging Sensor Using Low Profile Modified Stacked Type Planar Inverted F Antenna" Sensors 18, no. 9: 2949. https://doi.org/10.3390/s18092949
APA StyleIslam, M. T., Ullah, M. A., Alam, T., Singh, M. J., & Cho, M. (2018). Microwave Imaging Sensor Using Low Profile Modified Stacked Type Planar Inverted F Antenna. Sensors, 18(9), 2949. https://doi.org/10.3390/s18092949