Substrate integrated waveguides (SIW) maintain the advantages of planar circuits (low loss, low profile, easy manufacturing, integration in a planar circuit board), and improve quality factor of filter resonators. Empty substrate integrated waveguides substantially reduce the insertion losses because waves propagate through air instead of through a lossy dielectric. The first empty substrate integrated waveguide (ESIW) used a simple tapering transition that can not be used for thin substrates. A new transition has recently been proposed which includes a taper also in the microstrip line, not only inside the ESIW, and so it can be used for all substrates, although measured return losses are only 13 dB. In this work the cited transition is improved by placing via holes that prevent undesired radiation, as well as two holes that help to ensure good accuracy in the mechanization of the input iris, thus allowing very good return losses (over 20 dB) in the measured results. A design procedure, that allows the successful design of the proposed new transition, is also provided. A back to back configuration of the improved new transition has been successfully manufactured and measured.
Abstract-Very recently, a new empty coaxial structure, entirely built with printed circuit boards, has been proposed. The resulting coaxial line has low radiation, low losses, high quality factor, mono-mode propagation and is non-dispersive. Also, and conversely to other coaxial line designs, the fabrication process of this empty coaxial line permits to easily adjust the dimensions of the inner and outer conductors. Thus, the response of the coaxial line can be tailored by designing the shape of the conductors appropriately. Up to now, this novel coaxial line has not been successfully integrated in a planar substrate, since a working transition to a traditional planar line has not been defined yet. Therefore, in this paper, a novel and high-quality transition from coplanar waveguide to this new and versatile empty coaxial line is proposed. With this transition, the coaxial line is completely integrated in a planar circuit board, so that it truly becomes an empty substrate integrated coaxial line. The proposed transition has been fabricated and assembled. Both full-wave simulated and measured results show an excellent agreement. Therefore, the proposed transition is suitable to develop completely substrate integrated planar components for applications in wideband communication systems that require very high-quality responses and protection from external electromagnetic interferences. In order to show this fact, this new transition has been applied to integrate a high-performance empty coaxial line filter in a planar substrate. The measured response of this filter is excellent, and proves the goodness of the proposed transition that has enabled, for the first time, the complete integration of an empty coaxial line in a planar substrate.Index Terms-Empty substrate integrated coaxial line, ESICL, substrate integrated coaxial line, SICL, substrate integrated waveguide, SIW, substrate integrated circuit, SIC, bandpass filter.
SummaryThe concept of eco-efficiency can be defined by using the "product value/environmental influence" ratio. Different models have been proposed to measure eco-efficiency. The main difference among them is the weighting system used to aggregate the environmental results. Data Envelopment Analysis (DEA) permits this aggregation without requiring a subjective judgment about the weights. In this study, a DEA model was applied to Spanish Mahón-Menorca cheese production to determine the most eco-efficient production techniques.To this end, 16 scenarios of Mahón-Menorca cheese production were built regarding technical (degree of automation) and cleaner production criteria. The environmental impacts were assessed by means of the Life Cycle Assessment. An economic assessment was carried out by determining the economic value added and the net income for each scenario. The results are referred to as 1 kg cheese ripened over 105 days.By using DEA, an eco-efficiency ratio lying between 0 and 1 was obtained. Three scenarios were found to be eco-efficient, using a high degree of automation (enclosed vat and molding and demolding machines) and accelerated cheese ripening.The Montecarlo simulation was used to carry out a sensitivity analysis to compare the influence of price changes on the eco-efficiency ratio. The results emphasized the consistency and stability of the eco-efficient scenarios.
The paper presents a new accurate and efficient technique for the analysis of H-plane single or multiple rods in rectangular waveguides. The new method is based on a mode matching procedure that matches open space and guided modes along a circular boundary that encloses the rods. Since the EM fields around the obstacles are expanded using open space cylindrical modes, a full analytical (and highly efficient) solution can be obtained for dielectric or metallic circular posts. However, this technique can also cope with any arbitrary geometry of the H plane obstacles. In such a case, a numerical method should be used to characterize geometries other than circular in terms of cylindrical modes, and therefore the efficiency would be reduced.The method has been successfully applied to the analysis and design of several H plane filters with different topologies involving single centered and off-centered posts, as well as double post geometries.
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