Single-Ended and Differential S-Parameters Differential circuits have been important incommunication systems for many years. In the past,differential communication circuits operated at lowfrequencies, where they could be designed andanalyzed using lumped-element models andtechniques. With the frequency of operationincreasing beyond 1GHz, and above 1Gbps fordigital communications, this lumped-elementapproach is no longer valid, because the physicalsize of the circuit approaches the size of awavelength.Distributed models and analysis techniques are nowused instead of lumped-element techniques.Scattering parameters, or S-parameters, have beendeveloped for this purpose [1]. These S-parametersare defined for single-ended networks. S-parameterscan be used to describe differential networks, but astrict definition was not developed until Bockelmanand others addressed this issue [2]. Bockelman’swork also included a study on how to adapt single-ended S-parameters for use with differential circuits[2]. This adaptation, called “mixed-mode S-parameters,” addresses differential and common-mode operation, as well as the conversion betweenthe two modes of operation.This application note will explain the use of single-ended and mixed-mode S-parameters, and the basicconcepts of microwave measurement calibration.
上传时间: 2014-03-25
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Agilent AN 154 S-Parameter Design Application Note S参数的设计与应用 The need for new high-frequency, solid-state circuitdesign techniques has been recognized both by microwaveengineers and circuit designers. These engineersare being asked to design solid state circuitsthat will operate at higher and higher frequencies.The development of microwave transistors andAgilent Technologies’ network analysis instrumentationsystems that permit complete network characterizationin the microwave frequency rangehave greatly assisted these engineers in their work.The Agilent Microwave Division’s lab staff hasdeveloped a high frequency circuit design seminarto assist their counterparts in R&D labs throughoutthe world. This seminar has been presentedin a number of locations in the United States andEurope.From the experience gained in presenting this originalseminar, we have developed a four-part videotape, S-Parameter Design Seminar. While the technologyof high frequency circuit design is everchanging, the concepts upon which this technologyhas been built are relatively invariant.The content of the S-Parameter Design Seminar isas follows:
标签: S参数
上传时间: 2013-12-19
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Multioutput monolithic regulators are easy to use and fi tinto spaces where multichip solutions cannot. Nevertheless,the popularity of multioutput regulators is temperedby a lack of options for input voltages above 30V andsupport of high output currents. The LT3692A fi lls thisgap with a dual monolithic regulator that operates frominputs up to 36V. It also includes a number of channeloptimization features that allow the LT3692A’s per-channelperformance to rival that of multichip solutions.
上传时间: 2014-01-03
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The RT9018A/B is a high performance positive voltage regulator designed for use in applications requining very low Input voltage and very low dropout voltage at up to 3A(peak).
上传时间: 2013-10-10
上传用户:geshaowei
The NXP LPC314x combine a 270 MHz ARM926EJ-S CPU core, High-speed USB 2.0OTG, 192 KB SRAM, NAND flash controller, flexible external bus interface, three channel10-bit A/D, and a myriad of serial and parallel interfaces in a single chip targeted atconsumer, industrial, medical, and communication markets. To optimize system powerconsumption, the LPC314x have multiple power domains and a very flexible ClockGeneration Unit (CGU) that provides dynamic clock gating and scaling.
上传时间: 2013-10-11
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The LPC1850/30/20/10 are ARM Cortex-M3 based microcontrollers for embeddedapplications. The ARM Cortex-M3 is a next generation core that offers systemenhancements such as low power consumption, enhanced debug features, and a highlevel of support block integration.The LPC1850/30/20/10 operate at CPU frequencies of up to 150 MHz. The ARMCortex-M3 CPU incorporates a 3-stage pipeline and uses a Harvard architecture withseparate local instruction and data buses as well as a third bus for peripherals. The ARMCortex-M3 CPU also includes an internal prefetch unit that supports speculativebranching.The LPC1850/30/20/10 include up to 200 kB of on-chip SRAM data memory, a quad SPIFlash Interface (SPIFI), a State Configuration Timer (SCT) subsystem, two High-speedUSB controllers, Ethernet, LCD, an external memory controller, and multiple digital andanalog peripherals.
上传时间: 2014-12-31
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The LPC4350/30/20/10 are ARM Cortex-M4 based microcontrollers for embeddedapplications. The ARM Cortex-M4 is a next generation core that offers systemenhancements such as low power consumption, enhanced debug features, and a highlevel of support block integration.The LPC4350/30/20/10 operate at CPU frequencies of up to 150 MHz. The ARMCortex-M4 CPU incorporates a 3-stage pipeline, uses a Harvard architecture withseparate local instruction and data buses as well as a third bus for peripherals, andincludes an internal prefetch unit that supports speculative branching. The ARMCortex-M4 supports single-cycle digital signal processing and SIMD instructions. Ahardware floating-point processor is integrated in the core.The LPC4350/30/20/10 include an ARM Cortex-M0 coprocessor, up to 264 kB of datamemory, advanced configurable peripherals such as the State Configurable Timer (SCT)and the Serial General Purpose I/O (SGPIO) interface, two High-speed USB controllers,Ethernet, LCD, an external memory controller, and multiple digital and analog peripherals
上传时间: 2013-10-28
上传用户:15501536189
The NXP LPC315x combine an 180 MHz ARM926EJ-S CPU core, High-speed USB 2.0OTG, 192 KB SRAM, NAND flash controller, flexible external bus interface, an integratedaudio codec, Li-ion charger, Real-Time Clock (RTC), and a myriad of serial and parallelinterfaces in a single chip targeted at consumer, industrial, medical, and communicationmarkets. To optimize system power consumption, the LPC315x have multiple powerdomains and a very flexible Clock Generation Unit (CGU) that provides dynamic clockgating and scaling.The LPC315x is implemented as multi-chip module with two side-by-side dies, one fordigital fuctions and one for analog functions, which include a Power Supply Unit (PSU),audio codec, RTC, and Li-ion battery charger.
上传时间: 2014-01-17
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The super-junction structure, which has P-type pillar layers as shown left, realizes high withstand voltage and ON-resistance lower than the conventional theoretical limit of silicon.
上传时间: 2014-12-31
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注:1.这篇文章断断续续写了很久,画图技术也不精,难免错漏,大家凑合看.有问题可以留言. 2.论坛排版把我的代码缩进全弄没了,大家将代码粘贴到arduino编译器,然后按ctrl+T重新格式化代码格式即可看的舒服. 一、什么是PWM PWM 即Pulse Wavelength Modulation 脉宽调制波,通过调整输出信号占空比,从而达到改 变输出平均电压的目的。相信Arduino 的PWM 大家都不陌生,在Arduino Duemilanove 2009 中,有6 个8 位精度PWM 引脚,分别是3, 5, 6, 9, 10, 11 脚。我们可以使用analogWrite()控 制PWM 脚输出频率大概在500Hz 的左右的PWM 调制波。分辨率8 位即2 的8 次方等于 256 级精度。但是有时候我们会觉得6 个PWM 引脚不够用。比如我们做一个10 路灯调光, 就需要有10 个PWM 脚。Arduino Duemilanove 2009 有13 个数字输出脚,如果它们都可以 PWM 的话,就能满足条件了。于是本文介绍用软件模拟PWM。 二、Arduino 软件模拟PWM Arduino PWM 调压原理:PWM 有好几种方法。而Arduino 因为电源和实现难度限制,一般 使用周期恒定,占空比变化的单极性PWM。 通过调整一个周期里面输出脚高/低电平的时间比(即是占空比)去获得给一个用电器不同 的平均功率。 如图所示,假设PWM 波形周期1ms(即1kHz),分辨率1000 级。那么需要一个信号时间 精度1ms/1000=1us 的信号源,即1MHz。所以说,PWM 的实现难点在于需要使用很高频的 信号源,才能获得快速与高精度。下面先由一个简单的PWM 程序开始: const int PWMPin = 13; int bright = 0; void setup() { pinMode(PWMPin, OUTPUT); } void loop() { if((bright++) == 255) bright = 0; for(int i = 0; i < 255; i++) { if(i < bright) { digitalWrite(PWMPin, HIGH); delayMicroseconds(30); } else { digitalWrite(PWMPin, LOW); delayMicroseconds(30); } } } 这是一个软件PWM 控制Arduino D13 引脚的例子。只需要一块Arduino 即可测试此代码。 程序解析:由for 循环可以看出,完成一个PWM 周期,共循环255 次。 假设bright=100 时候,在第0~100 次循环中,i 等于1 到99 均小于bright,于是输出PWMPin 高电平; 然后第100 到255 次循环里面,i 等于100~255 大于bright,于是输出PWMPin 低电平。无 论输出高低电平都保持30us。 那么说,如果bright=100 的话,就有100 次循环是高电平,155 次循环是低电平。 如果忽略指令执行时间的话,这次的PWM 波形占空比为100/255,如果调整bright 的值, 就能改变接在D13 的LED 的亮度。 这里设置了每次for 循环之后,将bright 加一,并且当bright 加到255 时归0。所以,我们 看到的最终效果就是LED 慢慢变亮,到顶之后然后突然暗回去重新变亮。 这是最基本的PWM 方法,也应该是大家想的比较多的想法。 然后介绍一个简单一点的。思维风格完全不同。不过对于驱动一个LED 来说,效果与上面 的程序一样。 const int PWMPin = 13; int bright = 0; void setup() { pinMode(PWMPin, OUTPUT); } void loop() { digitalWrite(PWMPin, HIGH); delayMicroseconds(bright*30); digitalWrite(PWMPin, LOW); delayMicroseconds((255 - bright)*30); if((bright++) == 255) bright = 0; } 可以看出,这段代码少了一个For 循环。它先输出一个高电平,然后维持(bright*30)us。然 后输出一个低电平,维持时间((255-bright)*30)us。这样两次高低就能完成一个PWM 周期。 分辨率也是255。 三、多引脚PWM Arduino 本身已有PWM 引脚并且运行起来不占CPU 时间,所以软件模拟一个引脚的PWM 完全没有实用意义。我们软件模拟的价值在于:他能将任意的数字IO 口变成PWM 引脚。 当一片Arduino 要同时控制多个PWM,并且没有其他重任务的时候,就要用软件PWM 了。 多引脚PWM 有一种下面的方式: int brights[14] = {0}; //定义14个引脚的初始亮度,可以随意设置 int StartPWMPin = 0, EndPWMPin = 13; //设置D0~D13为PWM 引脚 int PWMResolution = 255; //设置PWM 占空比分辨率 void setup() { //定义所有IO 端输出 for(int i = StartPWMPin; i <= EndPWMPin; i++) { pinMode(i, OUTPUT); //随便定义个初始亮度,便于观察 brights[ i ] = random(0, 255); } } void loop() { //这for 循环是为14盏灯做渐亮的。每次Arduino loop()循环, //brights 自增一次。直到brights=255时候,将brights 置零重新计数。 for(int i = StartPWMPin; i <= EndPWMPin; i++) { if((brights[i]++) == PWMResolution) brights[i] = 0; } for(int i = 0; i <= PWMResolution; i++) //i 是计数一个PWM 周期 { for(int j = StartPWMPin; j <= EndPWMPin; j++) //每个PWM 周期均遍历所有引脚 { if(i < brights[j])\ 所以我们要更改PWM 周期的话,我们将精度(代码里面的变量:PWMResolution)降低就行,比如一般调整LED 亮度的话,我们用64 级精度就行。这样速度就是2x32x64=4ms。就不会闪了。
上传时间: 2013-10-08
上传用户:dingdingcandy