标题: | 利用垂直线与分布电容制作之宽频化枝干耦合器、以耦合量大小控制之双频枝干耦合器、与基于左右手传输线之双频鼠竞环折叠基板整合波导耦合器 Bandwidth-enhanced Branch-line Coupler Using the Center-loaded Vertical Line and Distributed Capacitors, Coupling-dependent Dual-band Branch-line Coupler and Dual-band Rat-race Coupler Based on Folded Substrate Integrated Waveguide |
作者: | 陈则宇 Chen, Tse-Yu 纪佩绫 Chi, Pei-Ling 电信工程研究所 |
关键字: | 折叠基板整合波导;鼠竞环;耦合器;枝干耦合器;Folded Substrate Integrated Waveguide;Rat Race Coupler;Coupler;Branch-Line Coupler |
公开日期: | 2013 |
摘要: | 本论文演示了三种改进支干耦合器或鼠竞环耦合器的方法,其中,除了第一种宽频化的改进只限定于支干耦合器,因其余两种皆是用代换四分之波长传输线的方式,又两种耦合器阶是基于四分支波长传输线而组装,因此,只要把设计的传输线代换到另一种元件,就能继续使用该方法以改进。 前两章就支干耦合器与鼠竞环耦合器的用途演进与基本原理介绍,第三章为一宽频化支干耦合器,利用额外分支与加入的平板电容,再透过数值解求出反射系数相较于频率变化率最低的解,并将该结构实现于RO4003 20mil基板以验证得到以反射系数定义的频宽、输出均衡的频宽和输出相位的频宽分别增加11%、 3%与14%,验证了这个设计的有效。 第四章为一基于耦合线之耦合强度之缩小化双频支干耦合器,透过设计一色散的四分之一波长传输线,而该四分之一波长传输线传播常数的曲线由一对耦合线所决定,就可做出双频的四分之一波长传输线,而这种传输线最大的优点是可以在有限的制程下把两个频段拉近,以本例来说,两频带频率比2时只需要耦合系数0.2的耦合线,再应用这个传输线组成支干耦合器以实现支干耦合器,最后再以Rogers Ro4003 60mil实现于0.9GHz与1.8GHz实作。 第五章则同样为双频化设计,但应用于鼠竞环耦合器,本章采用基于复合式左右手材料的折叠基板整合波导实现鼠竞环,以用于高品质因数,高能量,高频,低损耗又易于和印刷电路板制程整合的应用,本章以左右手传输线设计好鼠竞环耦合器的一个四分支波长线段后,串接六个成环,并于Rogers 5880为基板,以Rogers Bonding Film3001压合基板以实现折叠基板整合波导,经量测后,15dB反射,10度输出相位差,0.5dB输出大小平衡的两个频代频宽几乎都在3%与8%以上以验证此结构的可行性。 In this thesis, three types of improvement on branch-line coupler or rat-race coupler are presented. Among these three types of improvement, one of them is suitable for branch-line coupler only. The other two are based on quarter-wavelength transmission line design, so these two are able to be applied on both branch-line coupler and rat-race coupler. The first two chapters introduce the applications, operation principle and theory of branch-line coupler and rat-race coupler. In the third chapter, Bandwidth-enhanced branch-line coupler using the center-loaded vertical line and distributed capacitors is presented. The branch-line coupler is realized through insertion of additional vertical branch as well as distributed capacitors patch on conventional branch-line coupler. Deriving all equations of this schematic, numerical method is applied to obtain optimized parameter. After fabricating this circuit on Rogers 4003 of 20mil, bandwidth of return loss, output balance and output phase are measuring 11%, 3% and 14% wider compared to conventional branch-line coupler. In the fourth chapter, we introduce artificial quarter wave transmission line and its application on branch-line coupler. The TL is dual-band operation based on a pair of couple-line. The higher the coupling coefficient, the closed these two band s are. By investigation of the relation between propagation constant and coupling coefficient, the coupling coefficient merely 0.2 is need to achieve band ratio 2 easy for fabrication. After that, this circuit is fabricated on Rogers Ro 4003 60mil. A CRLH-TL (Composite Right/Left Handed Transmission Line) dual-band rat-race coupler based on FSIW (Folded Substrate Integrated Waveguide) is presented in chapter 5. For purpose of high-Q, high-power, high frequency and low loss application, CRLH quarter-wave length transmission line based on FSIW is designed in this chapter. After that, we assemble six of this identical CRLH transmission line to build a rat-race ring and fabricating on Rogers 5880 bonded by Rogers Bond Film 3001. The measurement bandwidth of these two bands about 15dB return loss, 10 degree phase shift compared to central frequency and 0.5 dB output balance are above 3% and 8% respectively. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT070060312 http://hdl.handle.net/11536/73666 |
显示于类别: | Thesis |