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CST-STUDIO-SUITE-2014离散端口概述.doc

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1、Beside waveguide ports or plane waves, the discrete ports offers another possibility to feed the calculation domain with power、 Two main port types are available: the discrete edge and the discrete face port、 They are divided in three different subtypes, considering the excitation as a voltage or cu

2、rrent source or as an impedance element that also absorbs power and enables Sparameter calculation、Discrete ports are mainly used to simulate lumped element sources inside the calculation domain、 These ports are a good approximation for the source in the feeding point of antennas when calculating fa

3、rfields、 In some cases, these ports may also be used to terminate coaxial cables or microstrip lines、 However, due to the transmission between transmission lines of different geometric dimensions, reflections may occur that are much larger than those for the termination with waveguide ports、 For low

4、er frequencies (pared to the dimension of the discrete port), these reflections may be sufficiently small, such that these kinds of ports may also be used successfully for the Sparameter calculations of multipin connectors、Please note that the input signal for the port is normalized depending on the

5、 chosen port type、ContentsDiscrete Edge PortsGeneral DescriptionConstructionPort TypesMesh RepresentationSymmetry PlanesDiscrete Face PortsGeneral DescriptionConstructionPort TypesSee alsoDiscrete Edge PortsGeneral DescriptionAlthough the waveguide ports are the most accurate way to terminate a wave

6、guide, discrete edge ports are sometimes more convenient to use、 Discrete edge ports have two pins with which they can be connected to the structure、This kind of port is often used as feeding point source for antennas or as the termination of transmission lines at very low frequencies、 At higher fre

7、quencies (e、g、 the length of the discrete port is longer than a tenth of a wavelength) the Sparameters may differ from those when using waveguide ports because of the improper match between the port and the structure、ConstructionA discrete edge port consists of a perfect conducting wire connecting s

8、tart and end points and a lumped element in the center of the wire、The typical way to define a discrete port is to pick its two end points from the structure using the mon pick tools and then to enter the discrete port dialog box:Discrete ports can be applied to different types of port structures as

9、 presented below:Coaxial portMicrostrip portCoplanar portNote: The SParameter ports are the most frequently used Port Types and contain internal resistors for calculating SParameters with fixed reference impedances、 In contrast, the Voltage and Current ports are ideal sources、 The latter types of po

10、rts are normally used for EMC types of application、Port TypesVoltage port: This port type realizes a voltage source, exciting with a constant voltage amplitude、 If this port is not stimulated in the transient analysis, the voltage along the wire is set to zero、 The voltage excitation signal will be

11、recorded during the solver run、Current port: This port type realizes a current source, exciting with a constant current amplitude、 The current excitation signal will be recorded during the solver run、Impedance element (SParameter type): This port type is modeled by a lumped element, consisting of a

12、current source with an inner impedance that excites and absorbs power、 The current source will only be active when the discrete element is the stimulation port in the transient analysis、 This port realizes an input power of 1 W and enables the calculation of correspondent Sparameter, based on the in

13、ing and outgoing time signals、 In addition, it is also possible to monitor the voltage across and the current through the discrete port、 Note that the orientation of the discrete port is used to determine the phase of the Sparameters、Mesh RepresentationThe discrete port is defined by two points, det

14、ermined either by picking two points or entering valid expressions for the points coordinates、The input data can be seen in the Modeler View, where the discrete port is represented by a straight line and a cone、 Due to the fact that discrete elements must be located on the calculation mesh, it is al

15、ways advisable to examine the mesh representation of the element in the Mesh View、 Here, one can observe that almost all elements on the grid consist of a metallic wire、 Only the middle element contains the source、Mesh representation of a discrete element, consisting of two metallic wires (marked in

16、 orange) and a source element (red cone)、 The colors of the wire and the cone can be changed in the Colors View Options dialog、Symmetry PlanesIf a discrete port touches a symmetry plane, an electric plane must be chosen in the case of a perpendicular cut and a magnetic plane must be chosen in the ca

17、se of a parallel allocation、 The corresponding symmetry factors for the discrete elements will be considered automatically, such that the simulation results (depending on impedance and input power) will not be changed by the definition of symmetry planes、 However, it should be mentioned that if an e

18、lectric symmetry plane has been defined, the symmetry formulation varies slightly from the original problem regarding the elements allocation、 As you can see in the picture below, the symmetric representation of a source directly at the symmetry plane is equivalent to a discrete element with two sou

19、rces in the middle、 Concerning the simulation results, this effect usually is negligible and can be ignored、 Discrete Face PortsGeneral DescriptionThe discrete face port is a special kind of discrete port、 It is supported by the integral equation solver, the transient solver, as well as the frequenc

20、y domain solver with tetrahedral mesh、 The discrete face port is replaced by a Discrete Edge Port if any other solver is chosen、 Two different types of discrete face ports are available, considering the excitation as a voltage or as an impedance element which also absorbs some power and enables Spar

21、ameter calculation、ConstructionA face port can be defined by picking two separate edges (Pick Edge Mode) and choosing Simulation: Sources and Loads Discrete Port、 Further a discrete face port can be created between two edge chains、 A surface will be created between an edge chain and a surface (Pick

22、Face Mode) if one edge chain and one surface is picked、The face port will be created between the two selected edges、Pick two edge chains, then add discrete port、Pick an edge or an edge chainand a face, then add discrete port、By default the excitation takes place at the (highlighted red) center edge

23、of the port、 A classical discrete port is also displayed、 It will be used if another solver is used for simulationThe created surface is a PEC sheet and will be meshed、 Port TypesVoltage port: This port type realizes a voltage source, exciting with a constant voltage amplitude、 If this port is not s

24、timulated in the transient analysis, the voltage along the wire is set to zero、 The voltage excitation signal will be recorded during the solver run、Impedance element (SParameter type): This port type is modeled by a lumped element, consisting of a current source with an inner impedance that excites

25、 and absorbs power、 The current source will only be active when the discrete element is the stimulation port in the transient analysis、 This port realizes an input power of 1 W and enables the calculation of correspondent Sparameter, based on the ining and outgoing time signals、 In addition, it is a

26、lso possible to monitor the voltage across and the current through the discrete port、 Note that the orientation of the discrete port is used to determine the phase of the Sparameters、See alsoDiscrete Ports,Discrete Face Port, Modeler View, Mesh View,Time Signal View, Reference and Normalizing, Excitation Source Overview

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