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Design Optimization of Microstrip Matching Circuits Using a Honey Bee Mating Algorithm Subject to the Transistor's Potential Performance

机译:利用晶体管的潜在性能基于蜜蜂匹配算法的微带匹配电路设计优化

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In this work, the same Honey Bee Mating Optimization as in, this time is applied to design of the input and output microstrip matching circuits to provide the source Z_S and load Z_L terminations ensuring the selected performance quadrate to the transistor, respectively for the desired performance triplets (V_(in), F(f), G_T) . In this implementation, the populations of the Queen Candidates and Drones are defined in terms of the widths W and lengths ℓ of the input and output microstrip matching circuits to determine the fitness values or estrogen values of the bees. Among the female bees probabilistically mating with the drones, the one with the fittest gens or estrogen level will be chosen as the Queen bee, in the other words, the best solution for optimization problem. On the other hand, the multi-objective design optimization procedure of the amplifier is reduced into the single objective design procedures of the input/output matching circuits using Darlington realizations of the quadrate Z_S, Z_L terminations. It can be concluded that in this work, all the constituents of the HBMO design optimization are defined rigorously and at the output, all the microstrip lengths and widths of the input and output matching circuits are obtained to be printed on a selected dielectric substrate. Finally as a work example the design of a typically ultra-wide band low noise amplifier with NE3512S02 is presented on a substrate of Rogers 4350 (ε_r = 3.48, h = 1.524 mm, tan δ = 0.003, t = 0.001 mm) within 2-5 GHz satisfying (V_(in) = 1.5, F = F_(min)(f), G_T = 10 dB) triplet using the T type of microstrip matching circuit and verified using the circuit simulator AWR.
机译:在这项工作中,这次采用了与蜜蜂交配优化相同的方法来设计输入和输出微带线匹配电路,以提供源Z_S和负载Z_L端接,从而确保所选性能分别为晶体管的四倍,以获得所需的性能。三胞胎(V_(in),F(f),G_T)。在此实施方式中,根据输入和输出微带匹配电路的宽度W和长度ℓ来定义女王候选人和无人机的种群,以确定蜜蜂的适应度值或雌激素值。在可能与无人机交配的雌蜂中,基因或雌激素水平最合适的雌蜂将被选为女王蜂,换句话说,是优化问题的最佳解决方案。另一方面,使用四方Z_S,Z_L终端的达林顿实现,将放大器的多目标设计优化过程简化为输入/输出匹配电路的单目标设计过程。可以得出结论,在这项工作中,对HBMO设计优化的所有要素都进行了严格定义,并且在输出端,获得了输入和输出匹配电路的所有微带长度和宽度,并将其印刷在选定的电介质基板上。最后,作为一个工作实例,将具有NE3512S02的典型超宽带低噪声放大器的设计展示在2英寸范围内的Rogers 4350基板上(ε_r= 3.48,h = 1.524 mm,tanδ= 0.003,t = 0.001 mm)。使用T型微带匹配电路满足5 GHz的三重态(V_(in)= 1.5,F = F_(min)(f),G_T = 10 dB),并使用电路仿真器AWR进行了验证。

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