51 |
Design of a Dielectric Radome using a Ray-Tracing Model for Satellite Communications / Utformning av en dielektrisk radome med hjälp av en strålspårningsmodell för satellitkommunikationEspinosa Núria, Flores January 2023 (has links)
In recent years, there has been a huge increase in the use of satellite communications. This has led to a need for more capacity, which can be solved by moving towards higher frequency bands in search of higher bandwidths. However, the use of higher frequencies entails higher link losses, which makes it essential to use highly directional and steerable antennas. Traditionally, phased array antennas have been used for this kind of application. Nevertheless, they have a limitation in the maximum scan angle due to their effective aperture, which causes a gain reduction following the cosine of the scanning angle. A way of improving the scan range is to add a dielectric radome on top of the array. However, high computational times are needed to simulate this kind of structure using full-wave simulations. For this reason, the first part of this work is focused on adapting and improving an in-house Ray Tracing tool for the particular application under study. The tool computes the path the rays follow from the array to the aperture of the radome using geometric optics, then calculates the amplitude of the electric field at the aperture using ray tube theory, and finally determines the antenna’s radiation pattern using Kirchhoff’s diffraction formula. Moreover, some features have been added to the code to be able to compute the directivity, calculate the absorption and reflection losses, simulate multilayer radomes, and change the array elements’ radiation patterns. A model in Comsol has been developed to validate the results obtained using the Ray Tracing tool and all its added features. Finally, several optimizations have been carried out to increase the scanning range while maintaining a maximum height, and ensuring it complies with the regulatory masks for satellite communications. The optimizations have been performed both using a Particle Swarm Optimizer and manually. / Under de senaste åren har det skett en stor ökning av satellitkommunikations användning. Detta har lett till ett behov för högre kapacitet, vilket kan lösas genom att flytta till högre frekvensband på jakt efter högre bandbredder. Högre bandbredder innebär dock högre länkförluster som gör det oumbärligt att utnyttja rikt- och styrbara antenner. Ursprungligen har fasstyrda antenner använts för denna typ av tillämpning. Ändå finns en begränsning av den maximala skanningsvinkeln på grund av deras effektiva yta som leder till en minskning av förstärkning som är beroende på avsökningsvinkelns cosinus. För att kunna förbättra skanningsintervallen skulle man kunna lägga till en dielektrisk radom ovanpå arrayen. Höga beräkningstider krävs dock att simulera strukturen med helvågssimuleringar. Av denna anledning fokuserar den första delen av denna uppsats att anpassa och förbättra ett internt strålspårnings verktyg för den särskilda applikationen under studie. Verktyget beräknar vägen strålarna tar ifrån arrayen till radomens öppning med hjälp av geometrisk optik, därefter kalkyleras det elektriska fältets amplitud enligt strålrörsteori och till sist fastställs antennens strålningsmönster som definieras av Kirchhoffs diffraktionsformel. Dessutom har vissa funktioner lagts till i koden för att kunna beräkna riktningen, absorptions- och reflektionsförlusterna, simulera flerskiktsradomer och ändra arrayelementens strålningsmönster. En modell i Comsol har utvecklats för att validera resultaten som producerades av strålspårning verktyget och alla dess extra funktioner. Till sist, flera optimeringar har genomförts för att öka skanningsområdet som kan bibehålla en maximal höjd och säkerställa efterlevnaden med regleringsmaskerna för satellitkommunikationerna. Optimeringarna har utförts både manuellt och med hjälp av en partikelsvärmoptimerare. / En els últims anys hi ha hagut un increment majúscul en l’ús de les comunicacions per satèl·lit. Això s’ha traduït en la necessitat de més capacitat, la qual pot ser coberta si ens movem cap a bandes de freqüència més altes, buscant un major ample de banda. Tot i això, l’ús de freqüències més elevades comporta unes majors pèrdues en l’enllaç, les quals fan essencial l’ús d’antenes altament directives i amb capacitat d’escaneig. Tradicionalment, els arranjaments d’antenes de fase gradual han estat utilitzats per aquest tipus d’aplicacions. Tanmateix, tenen una limitació del màxim angle d’escaneig a causa de la seva obertura efectiva, la qual causa una reducció del guany seguint el cosinus de l’angle d’escaneig. Una manera de millorar el rang d’escaneig és afegint un radom dielèctric al damunt de l’arranjament d’antenes. No obstant això, es necessita un alt temps de computació per simular aquest tipus d’estructures amb simuladors d’ona completa. Per aquesta raó, la primera part d’aquest treball està enfocada a adaptar i perfeccionar una eina de traçat de rajos pròpia per l’aplicació en estudi. L’eina calcula el camí que els rajos segueixen des de l’arranjament d’antenes fins a l’obertura del radom utilitzant òptica geomètrica, a continuació computa l’amplitud del camp elèctric a l’obertura mitjançant la teoria del tub de rajos i finalment determina el patró de radiació de l’antena utilitzant la fórmula de difracció de Kirchhoff. Addicionalment, algunes funcions han estat afegides al codi per tal de poder computar la directivitat, calcular les pèrdues d’absorció i reflexió, simular radoms multicapa i canviar els patrons de radiació dels elements de l’arranjament. Un model en Comsol ha estat desenvolupat per tal de validar els resultats obtinguts emprant l’eina de traçat de rajos i totes les seves funcions. Finalment, vàries optimitzacions han estat dutes a terme per tal d’incrementar el rang d’escaneig mantenint una altura màxima i assegurant que es compleix amb les màscares reguladores de comunicacions per satèl·lit. Les optimitzacions han estat realitzades utilitzant tant un optimitzador per eixam de partícules com manualment.
|
52 |
Super-Wide Impedance Bandwidth Planar Antenna for Microwave and Millimeter-Wave ApplicationsAlibakhshikenari, M., Virdee, B.S., See, C.H., Abd-Alhameed, Raed, Falcone, F., Limiti, E. 19 May 2019 (has links)
Yes / A feasibility study of a novel configuration for a super-wide impedance planar antenna is
presented based on a 2 × 2 microstrip patch antenna (MPA) using CST Microwave Studio. The antenna
comprises a symmetrical arrangement of four-square patches that are interconnected to each other with
cross-shaped high impedance microstrip lines. The antenna array is excited through a single feedline
connected to one of the patches. The proposed antenna array configuration overcomes the main
drawback of conventional MPA with a narrow bandwidth that is typically <5%. The antenna exhibits
a super-wide frequency bandwidth from 20 GHz to 120 GHz for S11 < −15 dB, which corresponds
to a fractional bandwidth of 142.85%. The antenna’s performance of bandwidth, impedance match,
and radiation gain were enhanced by etching slots on the patches. With the inclusion of the slot,
the maximum radiation gain and efficiency of the MPA increased to 15.11 dBi and 85.79% at 80 GHz,
which showed an improvement of 2.58 dBi and 12.54%, respectively. The dimension of each patch
antenna was 4.3 × 5.3 mm2
. The results showed that the proposed MPA is useful for various
existing and emerging communication systems such as ultra-wideband (UWB) communications,
RFID systems, massive multiple-output multiple-input (MIMO) for 5G, and radar systems. / This work was partially supported by the Innovation Program under grant agreement H2020-MSCA-ITN-2016 SECRET-722424 and financial support from the UK Engineering and Physical Sciences Research Council (EPSRC) under grant EP/E022936/1.
|
53 |
Energy Efficient RF for UDNsAbdulkhaleq, Ahmed M., Sajedin, M., Al-Yasir, Yasir I.A., Mejillones, S.C., Ojaroudi Parchin, Naser, Rayit, A., Elfergani, Issa T., Rodriguez, J., Abd-Alhameed, Raed, Oldoni, M., D’Amico, M. 12 November 2021 (has links)
Multi-standard RF front-end is a critical part of legacy and future emerging mobile architectures, where the size, the efficiency, and the integration of the elements in the RF front-end will affect the network key performance indicators (KPIs). This chapter discusses power amplifier design for both handset and base station applications for 5G and beyond. Also, this chapter deals with filter-antenna design for 5G applications that include a synthesis-based approach, differentially driven reconfigurable planar filter-antenna, and an insensitive phased array antenna with air-filled slot-loop resonators.
|
54 |
Conception et réalisation d'antennes intégrables en mâture pour les plateformes navales : applications aux communications V/UHF et à un radar de navigation à balayage électronique en bande X / Design and manufacturing of antennas for integrated mast : application to a communication antenna in V/UHF band and an electrical beam scanning antenna in X-bandClauzier, Sébastien 03 October 2013 (has links)
En raison des conflits maritimes qui s'étendent (piraterie, embargo,...), les besoins de communiquer et de détecter les menaces sont de plus en plus importants. Ceci conduit irrémédiablement à l'augmentation du nombre d'aériens à bord des plateformes navales. Afin de gérer au mieux cet accroissement du nombre d'antennes, qui conduit à des effets de couplage et à une augmentation de la signature radar du navire, les principales entreprises du secteur ont mis en place des structures de mâts intégrés. C'est dans un contexte d'amélioration de leur mâture intégrée compacte (Cmast™) que les Constructions Mécaniques de Normandie (CMN) de Cherbourg en collaboration avec l'IETR de Rennes et INEO Défense ont proposé cette thèse. Ces travaux ont pour objectifs le développement de deux systèmes antennaires intégrables au sein de cette mâture intégrée compacte : une antenne de communication en bande V/UHF et une antenne de radar de navigation à balayage électronique en bande X. Une première étude a permis le développement d'une antenne conique large bande (225-400MHz) dont les paramètres géométriques ont été optimisés pour assurer une communication entre les navires et des aéronefs. Un prototype de cette antenne a été réalisé et a permis une validation expérimentale de ses performances. Une seconde étude a permis le développement d'une antenne d'un radar de navigation à balayage électronique en bande X. Cette antenne est basée sur une technologie transmit-array comprenant une source illuminante et un réseau permettant la formation du diagramme. Un effort particulier a été porté sur la source illuminante qui doit éclairer, à des distances très courtes (<550mm), un réseau qui présente des dimensions particulières (1530mmx100mm). Plusieurs sources utilisant un principe de focalisation en zone champ proche ont été développées et validées expérimentalement. Enfin deux architectures d'antennes transmit-array ont été étudiées, utilisant respectivement une technologie imprimée et une technologie en guide. Le fonctionnement de l'antenne complète (source illuminante + réseau transmit-array) a été étudié théoriquement. / The need to communicate and detect potential enemies increases with the extension of maritime conflicts. This need impacts directly the number of antennas on naval platforms. However, this increase of aerials leads to several damaging effects: like coupling or high radar signature. To limit this effect, some companies have developed integrated mast design. This structure limits the coupling effect between aerials by a subdivision of the mast and provides an omnidirectional coverage for all antennas inserted inside the mast. The objective of the thesis is to design two antenna systems for the compact integrated mast (CmastTM) developed by the Constructions Mécanique de Normandie (CMN): a communication antenna in the V/UHF band and an electronically scanning antenna for a maritime navigation radar in X-band. For the communication in the V/UHF band, a broadband conical antenna has been developed (225-400MHz). This antenna provides an optimized radiation pattern to insure the communications between the ship and the aircrafts. An experimental validation has been done with a prototype. In the second study, we have developed an electronically scanning antenna for a navigation radar. This antenna is based on a transmit-array technology including an illuminating feed and an antenna which generates the appropriate radiation pattern. A large part of the study has been done on the feed, which illuminates an array with specific dimensions (1530mmx100mm). Three different near-field focusing feeds have been developed and some of them have been validated experimentally. Then, two architectures of transmit-array antennas have been studied, using two different technologies: printed technology and a mixed technology with waveguide and horn.
|
55 |
Optical WDM Systems for Multi-point Distribution of Hybrid Signals in Phased Array Radar ApplicationsMeena, D January 2015 (has links) (PDF)
Photonics and Optical techniques have advanced recently by a great extend to play an important role in Microwave and Radar applications. Antenna array of modern active phased array radars consist of multiple low power transmit and receive mod- ules. This demands distribution of the various Local Oscillator(LO) signals for up conversion of transmit signals and down conversion of receive signals during various modes of operation of a radar system. Additionally, these receivers require control and clock signals which are digital and low frequency analog, for the synchronization between receive modules.
This is normally achieved through RF cables with complex distribution networks which add significantly higher additional weight to the arrays. During radar operations, radio frequency (RF) transmit signal needs to be distributed through the same modules which will in turn get distributed to all antenna elements of the array using RF cables. This makes the system bulky and these large number of cables are prone to Electromagnetic Interference (EMI) and need additional shielding. Therefore it is very desirable to distribute a combination of these RF, analog and digital signals using a distribution network that is less complex, light in weight and immune to EMI.
Advancements in Optical and Microwave photonics area have enabled carrying of higher datarate signals on a single fiber due to its higher bandwidth capability including RF signals. This is achieved by employing Wavelength Division Multi- plexing (WDM) that combine high speed channels at different wavelengths. This work proposes, characterizes and evaluates an optical Wavelength Division Multiplexed(WDM) distribution network that will overcome the above mentioned problems in a phased array radar application. The work carries out a feasibility analysis supported with experimental measurements of various physical parameters like am- plitude, delay, frequency and phase variation for various radar waveforms over WDM links.
Different configurations of optical distribution network are analyzed for multipoint distribution of both digital and RF signals. These network configurations are modeled and evaluated against various parameters that include power level, loss, cost and component count. A configuration which optimizes these parameters based on the application requirements is investigated. Considerable attention is paid to choose a configuration which does not provide excess loss, which is economically viable, compact and can be realized with minimum component count.
After analysing the link configuration, multiplexing density of the WDM link is considered. In this work, since the number of signals to be distributed in radar systems are small, a coarse WDM(CWDM) scheme is considered for evaluation. A comparative study is also performed between coarse and dense WDM (DWDM) links for selection of a suitable multiplexing scheme. These configurations are modeled and evaluated with power budgeting. Even though CWDM scheme does not permit the utilisation of the available bandwidth to the fullest extent, these links have the advantage of having less hardware complexity and easiness of implementation.
As the application requires signal distribution to thousands of transmit-receive modules, amplifiers are necessary to compensate for the reduction of signal level due to the high splitting ratio. Introduction of commonly available optical amplifiers like Erbium Doped Fiber Amplifier (EDFA), affect the CWDM channel output powers adversely due to their non-flat gain spectrum. Unlike DWDM systems, the channel separation of CWDM systems are much larger causing significantly high channel gain differences at the EDFA output. So an analysis is carried out for the selection of a suitable wavelength for CWDM channels to minimize the EDFA output power variation. If the gain difference is still significant, separate techniques needs to be implemented to flatten the output power at the antenna end. A CWDM configuration using C-band and L-band EDFAs is proposed and is supported with a feasibility analysis.
As a part of evaluation of these links for radar applications, a mathematical model of the WDM link is developed by considering both the RF and digital sig- nals. A generic CWDM system consisting of transmitters, receivers, amplifiers, multiplexers/ demultiplexers and detectors are considered for the modeling. For RF signal transmission, the transmitters with external modulators are considered. Mod- eling is done based on a bottom-top approach where individual component models are initially modeled as a function of input current/power and later cascaded to obtain the link model. These models are then extended to obtain the wavelength dependent model ( spectral response) of the hybrid signal distribution link
Further mathematical analysis of the developed link model revealed its variable separable nature in terms of the input power and wavelength. This led to significant reduction in the link equation complexity and development of some approximation techniques to easily represent the link behavior. The reduced form of the link spectral model was very essential as the initially developed wavelength model had a lot
of parametric dependency on the component models. This mathematical reduction
process led to simplification of the spectral model into a product of two independent
functions, the input current and wavelength. It is also noticed that the total link
power within specific wavelength range can be obtained by the integrating these
functions over a specific link input power.
After the mathematical modelling, an experimental prototype physical link is
set up and characterized using various radar signals like continuous wave (CW) RF,
pulsed RF, non linear frequency modulated signal (NLFM) etc. Additionally a proof
of concept Radio-Over-Fiber (RoF) link is established to prove the superior transmission
of microwave signal through an optical link. The analysis is supported with
measurements on amplitude, delay, frequency and phase variations. The NLFM
waveforms transmissions are further analysed using a matched _ltering process to
confirm the side lobe requirement. Further a prototype WDM link is built to study
the performance when digitally modulated channels are also multiplexed into the
link. The link is again validated for signal levels, delay, frequency and phase parameters.
Since amplitude and delay are deterministic, it is proposed that these parameter variations can be compensated by using suitable components either in the electrical or the optical domain.
Radar systems use low frequency digital signals of different duty-cycles for synchronization and control across various transmit-receive modules. In the proposed
link, these digital signals also modulate a WDM channel and hence the link is called
a hybrid system. As the proposed link has EDFA to compensate for the splitting
losses, there are chances of transient effects at the EDFA output for these low bitrate channels. Owing to the long carrier lifetime, low bitrate digital channels are prone
to EDFA transient effects under specific signal and pump power conditions. Additionally, the synchronization signals used in radar application vary the duty-cycle
over time, which is found to introduce variations in transient output. This practical challenge is further studied and the thesis for the first time, includes an analysis of EDFA transient e_ects for variable duty-cycle pulsed signals. The analysis is carried out for various parameters like bitrate, input power, pump power and duty-cycle.
Investigations on EDFA transients on variable duty-cycle signals help in proposing
a viable method to predict the lower duty-cycle transients from higher duty-cycle
transients. The predicted transients were again validated against simulated transients
and experimental results. As these transient effects are not desirable for radar
signals, we propose a novel transient suppression techniques in optical and electrical domain which are validated with simulation and experimental measures.
One suppression technique tries to avoid transient effect by keeping the optical input to EDFA always constant by feeding an inverted version of the original pulse into the EDFA along with the actual pulse. It is observed that as the wavelength of the
inverted pulse is closer to the original input pulse, the transient effect settles faster.
These EDFA transients are evaluated with WDM link configurations, where both
high and low bitrate signals are co-propagated.
Another challenging aspect of the link operation is the non-at gain spectrum
of EDFA. i.e., EDFA provides unequal power level for various signals at WDM
link output. This is especially true in the case of local oscillator signals, where
it is preferable to have the same amplitude signals before feeding it to the mixer
stages. But in the radar applications, this will require additional hardware circuits
to equalize the signal level within a phased array antenna. This work also proposes
some of the power equalization methods that can be used along with the WDM links.
This part of the work is also supported with simulation model and experimental
results.
The analytical and experimental study of this thesis aids the evaluation process
of a suitable optical Wavelength Division Multiplexed(WDM) distribution network
that can be used for the distribution of both RF and digital signals. The optical
WDM links being superior with its light weight, less loss and EMI/ EMC immunity
provides a better solution to future class of radars.
|
56 |
A 5 GHz BiCMOS I/Q VCO with 360° variable phase outputs using the vector sum methodOpperman, Tjaart Adriaan Kruger 08 April 2009 (has links)
This research looks into the design of an integrated in-phase/quadrature (I/Q) VCO operating at 5 GHz. The goal is to design a phase shifter that is implemented at the LO used for RF up conversion. The target application for the phase shifter is towards phased array antennas operating at 5 GHz. Instead of designing multiple VCOs that each deliver a variety of phases, two identical LC-VCOs are coupled together to oscillate at the same frequency and deliver four outputs that are 90 ° out of phase. By varying the amplitudes of the in-phase and quadrature signals independently using VGAs before adding them together, a resultant out-of-phase signal is obtained. A number of independently variable out-of-phase signals can be obtained from these 90 ° out-of-phase signals and this technique is better known as the vector sum method of phase shifting. Control signals to the inputs of the VGAs required to obtain 22.5 ° phase shifts were designed from simulations and are generated using 16-bit DACs. The design is implemented and manufactured using a 0.35 µm SiGe BiCMOS process and the complete prototype IC occupies an area of 2.65 × 2.65 mm2. The I/Q VCO with 360 ° variable phase outputs occupies 1.10 × 0.85 mm2 of chip area and the 16-bit DAC along with its decoding circuitry occupies 0.41 × 0.13 mm2 of chip area. The manufactured quadrature VCO was found to oscillate between 4.12 ~ 4.74 GHz and consumes 23.1 mW from a 3.3 V supply without its buffer circuitry. A maximum phase noise of -78.5 dBc / Hz at a 100 kHz offset and -108.17 dBc / Hz at a 1 MHz offset was measured and the minimum VCO figure of merit is 157.8 dBc / Hz. The output voltages of the 16 bit DAC are within 3.5 % of the design specifications. When the phase shifter is controlled by the 16 DAC signals, the maximum measured phase error of the phase shifter is lower than 10 %. / Dissertation (MEng)--University of Pretoria, 2009. / Electrical, Electronic and Computer Engineering / unrestricted
|
57 |
Generation of Modulated Microwave Signals using Optical Techniques for Onboard Spacecraft ApplicationsYogesh Prasad, K R January 2013 (has links) (PDF)
This thesis deals with optical synthesis of unmodulated and modulated microwave signals. Generation of microwave signals based on optical heterodyning is discussed in detail.
The effect of phase noise of laser on heterodyned output has been studied for different phase noise profiles. Towards this, we propose a generic algorithm to numerically model the linewidth broadening of a laser due to phase noise. Generation of microwave signals is demonstrated practically by conducting an optical heterodyning experiment. Signals ranging in frequency from 12.5 MHz to 27 GHz have been generated.
Limitations of optical heterodyning based approach in terms of phase noise performance and frequency stability are discussed and practically demonstrated. A hardware-efficient Optical Phase Locked Loop (OPLL) is proposed to overcome these issues. Phase noise tracking performance of the proposed OPLL has been experimentally demonstrated. Phase noise values as low as -105 dBc/Hz at 10 KHz offset have been achieved.
Optical modulators, owing to their extremely low electro-optic response time, can support high frequency modulating signals. This makes them highly attractive in comparison to their microwave counterparts. In this thesis, we propose techniques to generate microwave signals modulated at very high bit rates by down-converting the corresponding modulated optical signals to microwave domain. Down-conversion required for this process is achieved by optical heterodyning. The proposed concept has been theoretically analyzed, simulated and experimentally validated. Amplitude Modulated and ASK modulated microwave signals have been generated as Proof-of-Concept.
Limitations posed by OPLL in generation of angle modulated microwave signals by optical heterodyning have been brought out. Schemes overcoming these limitations have been proposed towards generation of BPSK and QPSK modulated microwave signals.
Integrated Optics (IO) technology has been studied as a means of implementation of the proposed concepts. IO components like Sinusoidal bends, Y-branch splitters and Electro-Optic-Modulators (EOMs) have been designed towards optical synthesis of modulated microwave signals. Propagation of modulated optical signal through these IO components has also been studied.
An all-optic scheme based on Optical Beam Forming is proposed for transmission of QPSK modulated signal. Limitation of phase-shifting based approach, in terms of beam-squint, has been brought out. True-Time-Delay based approach has been proposed for applications demanding wide instantaneous bandwidth to avoid beam-squint.
Algorithms / numerical methods required for analyses and simulations associated with the above-mentioned tasks have been evolved.
This study is envisaged to provide useful insight into the realization of high-speed, compact, light-weight data transmitting systems based on Integrated Optics for future onboard spacecraft applications. This work, we believe, is a step towards realization of an Integrated Optic System-on-Chip solution for specific microwave data transmission applications.
|
58 |
Design and development of phased-array antennas for dual-polarized weather radar applicationsVollbracht, Dennis 21 February 2019 (has links)
Phased array weather radar antennas with beam steering capabilities are suitable alternatives to weather radars with mechanically scanning reflector antennas. Dual-polarized phased-array weather radar antennas, however, demand careful assessment of the x-polar characteristics.
The low x-pol radiation of polarimetric weather radar antennas is of significant importance for the proper classification and qualitative estimation of hydrometeors in illuminate volumes. Unfortunately, array antennas display changing x-pol contributions during the electronical beam steering process. Typically, the x-pol radiation will be substantially increased in the co-polar main beam direction but also in other angular directions. Consequently, it is a vital challenge to design arrays with low x-pol contribution during beam steering.
In this dissertation a new phased-array weather radar concept is developed. The phased array system configuration can be used to substitute state-of-the-art weather radars with reflector antennas. Furthermore, a dense network of these phased-array radars can be used to substitute a network of high power weather radars, which are used nowadays. The research focus of this work is the development of a dual-polarized microstrip patch antenna with phased-array capability and very high polarization purity. In this regard, new graphical techniques are developed to investigate the causes and the reduction of the x-pol radiation of isolated (stand-alone) microstrip patch antennas.
To further reduce the x-pol contribution of antennas, optimization methods have been investigated, evaluated and developed. For the first time in literature, differential-feed antenna arrays are compared to excitation optimized single-feed antenna arrays in their x-pol contribution in the boresight direction and during beam steering. In particular, two dual-polarized 4x8 antenna arrays have been developed and simulated by CST MWS, produced as multilayer PCB and verified at the compact antenna test range at RWTH
Aachen. The results show that the x-pol contributions of arrays are significantly reduced for differentially-feed antenna arrays, even when beam steering is performed. During the azimuth scan of 120_ a record setting x-pol suppression of -45 dB and -36 dB could be measured for the horizontal and vertical polarization channels, respectively. / Wetterradarsysteme mit phasengesteuerten Antennen stellen eine echte Alternative zu Wetterradarsystemen mit mechanisch drehenden Reflektorantennen dar. Dual-polarisierte phasengesteuerte Antennen müssen jedoch sehr genau in ihrem Kreuzpolarisationsverhalten verifiziert werden, um für den Wetterradarbereich von Nutzen zu sein. Die Unterdrückung der kreuzpolaren Anteile von Radarantennen ist von fundamentaler Bedeutung, um Hydrometeore mit Hilfe von polarimetrischen Wetterradarsystemen klassifizieren und qualitativ bestimmen zu können. Die hohe Anforderung an Polarisationsreinheit ist mit aktuell erhältlichen Arraydesigns nur schwierig zu realisieren, da sich die Kreuzpolarisationsunterdrückung während des elektronischen Schwenks der Hauptkeule signifikant verschlechtert.
Diese Dissertation stellt ein Wetterradar Systemkonzept mit phasengesteuerter Gruppenantenne vor, welches die aktuell genutzten Wetterradare mit Reflektorantennen ablösen könnte. Der Fokus der Arbeit wurde auf die Entwicklung einer Dual-polarimetrischen, polarisationsreinen und phasengesteuerten Mikrostreifenleiterantennen gelegt. Hierbei wurden neue grafische Verfahren entwickelt, die es ermöglichen, die Generierung der kreuzpolaren Anteile von isolierten Patchantennen (Einzelpatche) zu erklären und zu minimieren. Um die kreuzpolaren Anteile weiter herabzusetzen wurden Optimierungsverfahren für Arrayantennen erforscht, bewertet und neu entwickelt. Zum ersten Mal wurden differentiell gespeiste mit einzeln gespeisten Antennenarrays in ihrem Kreuzpolarisationsverhalten während des elektronischen Schwenks der Hauptkeule verglichen. Zwei Dual- polarimetrische 4x8 Antennenarrays (differentiell gespeist und mit optimierter Phasenansteuerung) wurden zu diesem Zweck mittels CST MWS entworfen, simuliert, als Multilagenplatine gefertigt und an der Antennentestanlage der RWTH Aachen vermessen. Die Resultate zeigen, dass die Kreuzpolarisationsanteile bei differentiell gespeisten Mikrostreifenleiterantennen in Gruppenkonfiguration, selbst beim elektronischen Schwenk der Hauptkeule, signifikant minimiert werden konnten. Für einen azimutalen Scanbereich von 120_ konnte eine exzellente Kreuzpolarisationsunterdrückung zwischen -45 dB und -36 dB messtechnisch für den horizontalen und vertikalen Polarisationskanal nachgewiesen werden.
|
Page generated in 0.0299 seconds