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I.INTRODUCTIONOver the past few years considerable attention has been focussed on the inclusion of flexibility in communication satellite payloads. The purpose of this flexibility is to enable a given satellite on command to support different frequency plans, re-configure coverage in response to changing traffic demands and reconfigure interconnectivity between coverages. In general flexibility would enable a satellite system to adapt to changing circumstances over its lifetime and thereby maximise its utility and profitability. A most attractive component in support of flexibility would be a re-configurable antenna system, which would enable the satellite to change its coverage to follow changes in traffic distribution or respond to new, developing market demands. The most flexible of such antenna systems are based on Array Fed Reflector (AFR) or Direct Radiating Array (DRA) architectures. These may use hundreds or thousands of feed elements with interconnectivity provided by a complex beamforming network. Beamforming may be provided either digitally, as in the case of Inmarsat 4 series of satellites, or using analogue means, for example the Boeing Spaceway. One limitation with digital beamforming is related to the mass and power requirements of the digital processor, which can grow quickly with number of control points, proportional to the number of feed elements and bandwidth per feed. Analogue versions of the beamforming network (BFN) can be constructed. Concern with this type of beamforming is the insertion loss, which increases with numbers of antenna elements (number of signal path divisions), and number of beams, resulting in the need to incorporate embedded amplifiers within the BFN to maintain signal powers at a useable level. An alternative solution may be the use of optical beamforming techniques. These incorporate RF/optical and optical/RF converters at the beamformer interfaces with the beamforming carried out using optical technology. This technology can be embodied in integrated circuits (optical chips) resulting in beamformers of small size, low weight, low insertion loss and with potentially low production and installation costs. Indeed, because the beamforming is carried out optically, save for the RF/optical converters and dimensioning of elements internal to the optical chips, the same design and technology can be used for the optical BFN for the full range of RF applications from L-band up to Ka-band and higher frequencies. Moreover, individual chips can be considered as building blocks, with the BFN of the required scale and functionality built up from these blocks. Such an approach could be a means of providing beam forming networks of large scale and complexity at low cost and with practical features such as low mass, power requirements and insertion loss. This paper describes an optical beamforming network capable of seamlessly controlling the reception angles of 36 independent beams in a Ku-band receive configuration, employing a phased array receive antenna with 144 antenna elements. The OBFN is fully integrated via a hybrid coupling of two integrated optics platforms. II.DEFINITION OF MISSION REQUIREMENTS:Multiple beam missions are frequently the subject of interest from satellite operators, primarily because they offer the potential for high traffic capacity by re-using a limited frequency bandwidth [1]. Historically the solution has been reflector based, either with Single Feed Per Beam (SFPB) or AFR with only limited beamforming. These technologies have been selected as the result of a trade-off between mission objectives and the maturity of the technology available. Satellite based optical beamforming has applications in a wide range of missions, not only in telecommunications satellites but in Earth observation and science. It may be the case that applications outside of telecommunications stimulate the investment needed to develop this technology, and that this will lead to the practical realisation of optically beamformed telecommunications payloads. The following factors have been taken into consideration in determining the mission requirements:
For Ku-band applications the level of complexity proposed for the optical beamformer is 144 elements connected to 36 beams. This is consistent with typical commercial missions. For Ka-band applications there may be an opportunity in the future to implement some of the high capacity multiple beam missions with reflector antennas fed by an array of overlapping subarrays. A typical mission could comprise 100 beams in which no more than 12 elements are connected to any one beam. A.Antenna Subsystem DefinitionThe antenna is a Direct Radiating Array (or phased array) design as outlined in Fig. 1. The antenna sub-system includes the following features:
Comments on the above configuration are as follows:
B.Antenna Coverage Plots and PolygonsExamples of mission requirements have been reported in above sections and from these, suitable candidates for further investigation have been selected. The primary mission comprises a DRA antenna with 144 radiating elements and up to 36 beams. The sizing of this antenna is sufficient to envelope a number of Ku-band spot beam missions. In addition, a reconfigurable DRA of this complexity can address other requirements such as those detailed below:
In addition to the above requirements, a further class of mission was identified for further evaluation. Commercial operators and ESA studies have consistently foreseen applications for large numbers of narrow Ka-band beams, with diameters as low as 0.2 degrees. The large apertures required for such a system make the accommodation of either phased arrays or SFPB multiple reflectors challenging, in which case an AFR antenna offers significant advantages. The requirements for a secondary mission for such a system are provided below and in Fig 4 (right). Table 1.Requirements for Single Circular Beam
Table 2.Requirements for Individual Elliptical Beam
III.OBFN FUNCTIONAL DESIGN:The following 9 options shown in Table 3 were considered for the optical beamformer. These can be categorised in two main types:
Table 3.Optical Beamformer Options Considered
The above nine options for optical beamforming network, are all capable of detecting signals from 36 independent beam directions using an antenna array of 144 antenna elements. For all options, redundancy is roughly equally challenging. In Table 4, a visual overview of the characteristics is given of all nine options. Table 4.Visual Overview of the Different OBFN Options Based on the overall power consumption, complexity, size and required number of components (i.e., lasers, modulators, detectors) options 1.4 and 2.4 were found to be the best option for further physical layout and design. Option 1.4 consists of a set of 36 binary-tree shaped 144x1 OBFNs using true-time delay (TTD), (i.e. 36 pieces of 144x1 OBFNs), each attached to the full array of antennas (and LNAs). Option 2.4 consists of a 36x144 Nolen matrix. For the remainder of this paper, we will only consider option 1.4 for additional explanation. A.Comparison of Different OBFN TechnologiesA summary comparison of key issues for different OBFN technologies is provided in Table 5. Table 5.Summary Comparison of Key Issues for Different OBFN Technologies The need for using integrated optics rather than free-space optics or fibre-optics arises from the issues associated with thermal and acoustic instabilities and large sized setups in free-space optics and long (and thereby bulky) fibres and expensive Multiplexer/De-multiplexer (MUX/DMUX) devices. If all components can be combined in integrated optical devices, this will reduce thermal and acoustic sensitivity as well as size. As Integrated Optics Optical Beamforming Networks (IO-OBFN) can be fabricated in Complementary Metal–Oxide–Semiconductor (CMOS) factories, the cost of an OBFN in integrated optics can be fairly low when a large number of OBFNs are produced. B.Waveguide Technologies OverviewAs a comparison between the investigated technologies, an overview summary of various waveguide technologies that can be used in an OBFN is presented in Table 6. This overview also includes some of the “exotic” waveguide platforms such as Gallium Arsenide (GaAs) and Lithium Niobate (LiNbO3). Table 6.Summary Comparison of Waveguide Technologies Recently, many functionalities, like beamforming [5] – [11] and microwave photonic filters have been demonstrated in the SiO2/Si3N4 (TriPleX™) waveguide technology platform. This waveguide technology is based on a combination of silicon nitride (Si3N4) as waveguide layer(s), filled with, and encapsulated by silica (SiO2). TriPleX™ allows for extremely low loss integrated optical waveguides both on silicon and glass substrates for all wavelengths between 405 nm (near UV) up to 2.35 μm, providing maximum flexibility from an integration standpoint. It is clear that, although Silicon-on-Insulator (SOI) and Indium Phosphide (InP) have a much higher index contrast and higher refractive (group) index, compared to TriPleX™, both InP and SOI have too high propagation losses to be feasible as a large-scale IO-OBFN. For an OBFN the most suitable waveguide technology has a high refractive index (RI) contrast in order to enable to produce small bending radius which is required for making the OBFN devices small enough to fit on a single production wafer. Multiple wafers will cause much higher losses at interconnects between the wafers. The attenuation (waveguide propagation loss) should be as low as possible to be able to have sufficient measureable optical high link gain and low noise figure at the end of the OBFN. Transparency should be sufficient for the chosen wavelength. The mentioned technologies are all transparent for 1550nm wavelength. The fiber-chip coupling should be high; in order to decrease loss at interconnects between fibers and waveguides. Functional integration has to be high to be able to integrate as much as possible on a single wafer. C.Integrated-optics OBFNA schematic of a 16x1 OBFN, in receive architecture is shown in Fig 5 (left). It shows a binary tree structure where each circle represents a so-called Optical Ring Resonator (ORR). These ORRs can be used as true-time delay (TTD) devices, because light can travel one or multiple roundtrips through the ORR, depending on the settings of the device. Using these type of resonators, the footprint of the OBFN can be much smaller than when using free-space or fibre-optics. This particular OBFN was fabricated in silicon nitride waveguide material and has 16 inputs and 1 RF output. In current IO-OBFN techniques, the beamformer is fully integrated; however in current state-of-the-art some components are still fibre-coupled or fibre-based. The OBFN in Fig 5 (left) is connected to a laser, optical modulators, antennas and detectors as shown in Fig 6 (right). It should be noted that the modulators are reflecting modulators, so the light originating from the laser travels through the OBFN twice. Current state-of-the-art IO-OBFNs make use of the following critical components:
For a fully functional OBFN, which is also fully integrated, a solution can be found in the combination of active and passive waveguides. Waveguides in active materials should contain parts that can be modulated with high speed (many tens of GHz), can detect light with similar high speeds and also can generate (laser) light, all on the same, single chip. However, typically active materials exhibit very high propagation loss. Therefore, a suitable low-loss passive waveguide material has to be applied for the delay-paths of the OBFN. Currently work is ongoing on combining InP (active) and TriPleX (passive) waveguides in a single package. An example is shown in Fig 7. This example shows InP waveguides incorporating (laser) gain, modulator and multiple detectors. The TriPleX part is low-loss silicon nitride waveguide technology, which can incorporate a laser-mirror to narrow the laser line-width and the delay lines for the OBFN. III.FULLY INTEGRATED OBFN SOLUTIONS:Based on the IO-OBFN technologies presented above, a fully integrated OBFN solution is more preferable than discrete component solution because of the following:
For the fully integrated solution, the following aspects have to be taken into account:
The consequences of these aspects are:
Because of extremely low propagation loss and relatively high index contrast, TriPleX™ is used as best solution for the delay line part of the OBFN, while InP is used as best solution for the active part of the OBFN. Figure 8 show the first-in-the-world attempt to integrate the above named integrated optical platforms to form a working OBFN. Measurements of this device are still being processed. B.Summary Comparison between RF-BFN and OBFNAs an overview, a summary comparison of the main parameters for RF-beamforming and IO-OBFN is outlined in Table 7. Table 7.Summary Comparison Between RF-BFN and IO-OBFN IV.CONCLUSIONS:This paper has outlined optical beamforming concepts that address the reference mission scenarios. The activity investigated nine different OBFN options and the pros and cons of each option was analysed. Two options were identified as promising to be investigated further. Detailed designs of these two options were performed and one of these was elaborated on in this paper. The risks associated with the optical OBFN technology were identified and mitigation actions to address these risks were developed. Major advantages of optical beamforming are its promise to reduce the mass, power consumption, footprint, and cost of complex beamformers, as well as reduction in effort required for Assembly, Integration and Test (AIT). A typical application of such a system would be the Terabit Satellite system, the subject of a recent ESA study. This paper has outlined the requirements of a receive antenna using OBFN technology. A transmit antenna incorporating OBFN technology presents additional technical challenges, particularly thermal design. These considerations, however, apply to any transmit array and are not specific to a transmit array connected to an OBFN. ACKNOWLEDGEMENT:The authors would like to express their gratitude to ESA for the continued support and funding this activity for the optical beamforming network study. Special thanks and appreciation are expressed to the technical officers at European Space Agency, Dr. Nikos Karafolas and Paul Van Loock for their expert advice and exceptional valued help. REFERENCESHector Fenech, Andrew Lindley, Emmanuel Lance and Alessia Tomatis,
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