H2020Individual fellowship2019–2021

Photonic Radar · Implementation of Long Reach Hybrid Photonic Radar System and convergence over FSO and PON Networks

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-09-25 → 2021-09-24
EU contribution
€224,934
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

Implementation of Long Reach Hybrid Photonic Radar System and convergence over FSO and PON Networks

Advancements in sensor technology, imaging, light detection and ranging, electronics, and artificial intelligence have enabled state-of-the-art autonomous vehicles (AVs) to provide several significant services including collision avoidance, blind-spot monitoring, lane departure warning, and park assistance. The synchronization of these technologies-based driving assistance systems (DAS) allows self-driving vehicles to monitor their surroundings and respond promptly to prevent any road hazard. As a part of these objectives, the measurement of target velocity and range concurrently with high precision becomes essential in today’s AV industry. Therefore, most of the advanced AVs are equipped with various expensive signal processing modules, high precision cameras, radar, and high-end sensors. However, they still offer the target-detection to a few meters only with a limited range- and imagery resolution. The situation becomes more serious under bad weather conditions and augments the probability of road hazards. It has been predicted that about 1.35 million people around the world have lost their life due to road accidents and ≈ 20-50 million people are surviving with critical damages. If this current tendency persists, it is predicted that road accidents may increase by ≈ 65% and turn out to be the fifth major reason for fatality by 2030. Moreover, the direct estimated costs due to road-accident injuries have been ≈ 1%, ≈ 1.5%, and ≈ 2% of the total revenue of under-developed, developing, and well-developed countries respectively. To reduce these numbers, AV-related industries are looking for some effective approaches for the last few years to improve the accuracy of self-driving vehicles with extended target-range detection and range-visibility at low-power requirements. The photonic radar (PHRAD) comes out as an attractive candidate to provide an accurate and improved range-speed resolution with low power requirements for intelligent transportation systems (ITS), remote-sensing, and other related surveillance industries. On the other hand, the existing advanced microwave-based surveillance and navigation systems are limited to a marginal accuracy range, especially, in populated areas at high frequencies. Keeping in mind the current requirements of the advanced AVs, the importance of the photonic-radar upturns significantly by providing high range-speed resolution with precision along with an extended tracking range. However, such radars were developed at ≤ 24 GHz. Subsequently, a tunable multiband PHRAD is the demand of the futurist AV-related industries for reducing the weight, cost, and size of the system and offers high-frequency flexibility. Such systems can be tuned to multi-frequency bands to catering to the issue of signal fading in the presence of harsh weather situations. At a high-frequency band under the impact of harsh atmospheric fluctuations, the detection range will reduce and identification of the target will be difficult to retrieve. So, a tunable PHRAD can be tuned to a low-frequency band for satisfactory performance of the photonic radar. Alternatively, it can work significantly under normal situations at higher frequency bands and offering improved radar imaging and tracking. Keeping these issues and requirements of the state-of-the-art AV-related industries in mind, the primary objective of this multidisciplinary project “Photonic Radar (PHRAD)” is to develop a multiband photonics-based radar system in 74 GHz-77 GHz frequency band for detection and ranging of multiple mobile automotive targets differentiated by their associated radar cross-section under normal and complex traffic scenarios in the presence of weak-to-severe atmospheric fluctuations. The tunability of the PHRAD over different frequency bands is attained by incorporating an experimentally designed tunable dual-wavelength fiber laser in a lab environment, which is capable to generate phase-stable millimeter waves over a wide range (≈ 12 GHz-110 GHz).

Data: CORDIS, © European Union

Project objective

The conventional radar systems, operating in mm-wave (MMW) i.e. beyond 30 GHz, are exposed to high free-path losses (≥ 1 dB/km) and the situation becomes more punitive under severe environment conditions, for instance, Heavy rain and fog. Moreover, the traditional radar distribution networks are realized with conventional cables or space-feeds that results in a massive, complex and inflexible system. To overcome these issues, the hybrid photonic-based radar system (PHRAD) emerges as a promising candidate, providing low-loss, immunity to EM interference and high bandwidth capacity. These robust properties of photonics play a vital role in realization of PHRAD transceiver with improved navigation and detection. Although, the possibility of multiband PHRAD, capable to work in both S-and X-band, becomes feasible that reduces the weight, size and cost of the system. Alternatively, the state-of-the-art electronic techniques have not the required potential to make such radars feasible. The key goal of the proposed project is to develop a PHRAD transceiver tunable over a wide frequency range (≥ 40GHz) and immune to phase fluctuations in order to realize a robust navigation and detection system capable of providing high imagery-resolution and accuracy. The proposed work will be carried out in three phases. In phase I, Mode lock Lasers will be cultivated to generate wide-range and phase-stable radar signals in MMW. These wide-bandwidth signals (40-80GHz) will help to provide high imagery-resolution with accurate speed-computation of objects that lead to a reliable and secure navigation to the autonomous vehicles. In phase II, a multiband PHRAD transceiver will be designed to provide high frequency-flexibility that provides capability to track any frequency signal within S-or X-band. The phase III is dedicated to the implementation of the developed multiband PHRAD in real-time environment, especially in intelligent transport system (ITS), for its testing and evaluation.

Original text from CORDIS.

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Data: CORDIS, © European Union