There is a natural trade-off between spacecraft size and functionality in all current satellite applications, independently of orbit and mission. Therefore, advances in both miniaturization and integration technologies are required to increase satellites’ lifetime and performance, simultaneously reducing their cost. In case of the next generation of Earth Observation (EO) satellites, one of the key development areas is synthetic aperture radar (SAR) antennas, where expected progress will be to increase the operating bandwidth - requiring, for instance wideband true-time delay (TTD) beamformers - and miniaturization, drastically reducing the mass and volume compared to current implementations.
The use of photonic integrated circuits (PIC) technology in the beamforming network, in combination with an optical fibre harness, are key enabling technologies for future SAR instruments.
RETINA has performed the necessary design and research to demonstrate a compact, suitable for space, broadband frequency operation multi-beam photonic beamformer network (BFN) with centralized processing for Next Generation SAR improving the figures of size, mass, power consumption and bandwidth processing.
The RETINA objectives have been:
• Development of a multi carrier laser with space-grade specifications reducing the power consumption associated to the thermal cooling by a factor of 3 per laser.
• The design of photonic integrated circuits (PIC) designs in silicon-nitride technology implementing a true-time delay (TTD) BFN compatible with large antennas requirements.
• Array antenna element (AAE) design at X-band, amplification section and opto/electronic converters for integration in the AAE.
• Design and manufacturing of a TRL6 small footprint broadband beam optical transmitter (BOT) module up to Ka-band including RF and optical amplification and modulation.
• Design and manufacturing of a TRL6 compact antenna optical receiver (AOR) in X-band with a co-package of amplifiers, optical receiver, and AAE.
• Design, manufacturing, and supply of photoreceivers in the X band with optimized footprint and self-stabilized gain vs temperature. The photodiode within the photoreceiver will cover up to Ka-band to address the objective of broadband frequency operation.
• Flexible beam-shaping and beam-switching in a PIC-based optical BFN, through multi-orthogonal beam synthesis.
• To demonstrate the flexibility of beam-shaping and beam-switching in a PIC-based optical beamformer by the combination of a fixed beamformer network generating massive orthogonal beams with a co-integrated switching network to perform beam-shaping by multi-orthogonal beam synthesis. The level of flexibility should be comparable with a traditional beamforming network based on phase and amplitude control with an order of magnitude less complexity.