W-Band RCS Prediction of Small Objects: Comparing Two Widely Used Methods with Experimental Validation
Year 2025,
Early View, 1 - 1
Deniz Sezgin
,
Funda Ergün Yardım
,
Elif Aydın
,
Ali Kara
Abstract
This paper compares the accuracy of Shooting and Bouncing Rays and Electric Field Integral Equation methods for Radar Cross Section prediction of small objects at 77-81 GHz band. Existing studies on RCS prediction methods often lack comprehensive comparisons between computational and experimental results, particularly for small objects measured with a 77 GHz radar. This study addresses this gap by presenting an in-depth analysis of both simulation and measurement data. In this work, three targets with varying geometries and materials were measured with a frequency modulated continuous wave radar and simulated using Ansys HFSS and CST Studio Suite. The measurements were performed with a commercial off-the-shelf (COTS) frequency modulated continuous wave radar operating at 77–81 GHz. This study aims to emphasize the importance of considering both efficiency and accuracy when opting for an RCS prediction method. Overall, the outcomes of both methods have largely demonstrated good alignment. It has been noted that, while Shooting and Bouncing Rays method offers promising time-saving advantages, Electric Field Integral Equation method remains a valuable tool for complex geometries where precise results are crucial.
References
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- [3] Ling, H., Chou, R.C. and Lee, S.W., “Shooting and bouncing rays: calculating the RCS of an arbitrarily shaped cavity,” IEEE Transactions on Antennas and Propagation, 37(2): 194–205, (1989). DOI: https://doi.org/10.1109/APS.1986.1149823
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- [15] Lee, S., Kang, S., Kim, S.C., and Lee, J.E., “Radar cross section measurement with 77 GHz automotive FMCW radar,” 2016 IEEE 27th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC), 1-6, (2016). DOI: https://doi.org/10.1109/PIMRC.2016.7794738
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- [17] Ahmed, B., Kara, A., Zencir, E. and Benzaghta, M., “Opportunities and challenges in RCS measurement of 9-mm bullet model with 77GHz mmwave COTS radar systems,” Microwave and Optical Technology Letters, 62(12): 3772–3778, (2020). DOI: https://doi.org/10.1002/mop.32521
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Year 2025,
Early View, 1 - 1
Deniz Sezgin
,
Funda Ergün Yardım
,
Elif Aydın
,
Ali Kara
References
- [1] Jenn, D. C., Radar and Laser Cross Section Engineering, Amer Inst of Aeronautics, (2005).
- [2] Harrington, R. F., Field computation by moment methods, Piscataway, NJ: IEEE Press, (1993).
- [3] Ling, H., Chou, R.C. and Lee, S.W., “Shooting and bouncing rays: calculating the RCS of an arbitrarily shaped cavity,” IEEE Transactions on Antennas and Propagation, 37(2): 194–205, (1989). DOI: https://doi.org/10.1109/APS.1986.1149823
- [4] Weinmann, F., “Ray Tracing with PO/PTD for RCS Modeling of Large Complex Objects,” IEEE Transactions on Antennas and Propagation, 54(6): 1797–1806, (2006). DOI: http://dx.doi.org/10.1109/TAP.2006.875910
- [5] Yee, K. S. and Chen, J. S., “The finite-difference time-domain (FDTD) and the finite-volume time-domain (FVTD) methods in solving Maxwell’s equations,” IEEE Transactions on Antennas and Propagation, 45(3): 354–363, (1997). DOI: https://doi.org/10.1109/8.558651
- [6] Song, J., Lu, C. C. and Chew, W. C., “Multilevel fast multipole algorithm for electromagnetic scattering by large complex objects,” IEEE Transactions on Antennas and Propagation, 45(10):1488–1493, (1997). DOI: https://doi.org/10.1109/8.633855
- [7] Uluisik, C., Cakir, G., Cakir, M. and Sevgi, L., “Radar cross section (RCS) modeling and simulation, part 1: a tutorial review of definitions, strategies, and canonical examples,” IEEE Antennas and Propagation Magazine, 50(1): 115–126, (2008). DOI: http://dx.doi.org/10.1109/MAP.2008.4494511
- [8] Bilal, A., Hamza, S. M., Taj, Z. and Salamat, S., “Comparison of SBR and MLFMM techniques for the computation of RCS of a fighter aircraft,” IET Radar, Sonar and Navigation, 13(10): 1805–1810, (2019). DOI: https://doi.org/10.1049/iet-rsn.2019.0070
- [9] Tempelis, A., Jussaume, M. and Jackson J. A., “Comparison of measured and predicted bistatic scattering from a right-angle dihedral,” 2011 IEEE RadarCon (RADAR), 135-140, (2011). DOI: https://doi.org/10.1109/RADAR.2011.5960515
- [10] Smit, J. C. E. H., Cilliers, E., “Comparison of MLFMM, PO and SBR for RCS investigations in radar applications”, IET International Conference on Radar Systems, 1-5, (2012). DOI: https://doi.org/10.1049/cp.2012.1636
- [11] Li, Z., Cui, T. J., Zhong, X. J., Tao, Y. B. and Lin, H., “Electromagnetic Scattering Characteristics of PEC Targets in the Terahertz Regime,” IEEE Antennas and Propagation Magazine, 51(1): 39–50, (2009). DOI: https://doi.org/10.1109/MAP.2009.4939018
- [12] Lee, S., Yoon, Y.J., Lee, J.E. and Kim, S.C., “Human–vehicle classification using feature-based SVM in 77-GHz automotive FMCW radar,” IET Radar, Sonar and Navigation, 11(10): 1589–1596, (2017). DOI: https://doi.org/10.1049/iet-rsn.2017.0126
- [13] Castro, J. D., Singh, S., Arora, A., Louie, S., and Senic, D., “Enabling Safe Autonomous Vehicles by Advanced mm-Wave Radar Simulations,” 2019 IEEE MTT-S International Microwave Symposium (IMS), 1476-1479, (2019). DOI: https://doi.org/10.1109/MWSYM.2019.8700843
- [14] Shan, J., Rambabu, K., Zhang, Y., Lin, J., “High gain array antenna for 24 GHz FMCW automotive radars,” AEU-International Journal of Electronics and Communications, 147: 1-9, (2022). DOI: https://doi.org/10.1016/j.aeue.2022.154144
- [15] Lee, S., Kang, S., Kim, S.C., and Lee, J.E., “Radar cross section measurement with 77 GHz automotive FMCW radar,” 2016 IEEE 27th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC), 1-6, (2016). DOI: https://doi.org/10.1109/PIMRC.2016.7794738
- [16] Sezgin, D., “Radar cross section measurement of various objects with 77-81 GHz automotive radar and assessment of radar cross section simulation tools,” M.S. Thesis, Graduate School of Natural and Applied Sciences., Atilim Univ., Ankara, (2022).
- [17] Ahmed, B., Kara, A., Zencir, E. and Benzaghta, M., “Opportunities and challenges in RCS measurement of 9-mm bullet model with 77GHz mmwave COTS radar systems,” Microwave and Optical Technology Letters, 62(12): 3772–3778, (2020). DOI: https://doi.org/10.1002/mop.32521
- [18] Balanis, C. A., Advanced Engineering Electromagnetics, Hoboken, N.J.: John Wiley and Sons, (2012).