摘要:本水位监测报警器使用5V低压直流电源(也可以用3节5号电池代替)就可以对5~15厘米的水位进行监测,用LED显示和数码管显示水位,并可以对不再此范围内的水位发出报警。主要采用CD4066、74LS86、74LS32、CD4511芯片,再加上数码管、蜂鸣器、发光二极管、电阻这些器件组成一个简单而灵敏的监测报警电路,操作简单,接通电源即可工作。因为大部分电路采用数字电路,所以本水位监测报警器还具有耗能低、准确性高的特点。关键字:译码电路 报警电路 监测电路 Abstract: The water level alarm monitoring the use of 5 V low-voltage DC power (can also use three batteries replaced on the 5th) will be able to 5 to 15 centimeters of water level monitoring, with LED display and digital display of water level, and this can no longer Within the scope of a water level alarm. Mainly CD4066, 74LS86, 74LS32, CD4511 chips, coupled with digital control, buzzer, light-emitting diode, the resistance of these devices composed of a simple and sensitive monitoring alarm circuits. Because the majority of circuits using digital circuitry, so the water level monitored alarm system also has low energy consumption, high accuracy of the characteristics. Keyword: Decoding circuit alarm circuit monitoring circuit
上传时间: 2013-11-05
上传用户:王庆才
基于中颖SH79F164单片机的电子血压计应用:电子血压计因具有无创性、操作简单、携带方面等优点,目前得到广泛的应用和推广。无创检测血压的方法很多,如柯氏音法,测振法,超声法、双袖带法、恒定袖带法、逐拍跟踪法、张力定测法和恒定容积法等。其中测振法就是我们常说的示波法,由于具有较好的抗干扰能力,能比较可靠地判断血压、实现血压的自动检测而成为无创血压的主流。目前国内外大多数电子血压计都采用示波法。示波法的原理同柯氏音法,也需要充气袖套来阻断动脉流,但在放气过程中不是检测柯氏音,而是检测气袖内气体的振荡波(测振法由此得名),这些振荡波是袖带与动脉耦合的结果,源于心血管周期内血管壁由于收缩舒张引起的压力脉动。理论计算和实践均证明此振荡波的幅度有一定的规律,与动脉收缩压、平均压以及舒张压有一定的函数关系。针对示波法,本文将详细介绍基于中颖电子SH79F164 单片机的血压计系统方案与软硬件实现。 在硬件电路设计方面,笔者参考了大量的资料,最终选定SH79F164 单片机作为主控IC。其理由是SH79F164 内建资源丰富,既能节省大量外围器件,又方便系统调试。SH79F164 内建资源主要有:可编程仪表放大器(PGA)、带通滤波器、固定增益放大器、恒流源放大器、10 位A/D 转换器、时基定时器(RTC)。硬件部分构成:压力传感器、SH79F164 单片机、LCD、袖套、充气泵、放气阀、按键等(见图3)。
上传时间: 2013-10-23
上传用户:muhongqing
基于单片机控制的二氧化碳浓度测试计:基于CDM4161二氧化碳气体浓度测试模块以及ATtiny26单片机,提出了一种二氧化碳浓度测试计的设计方案。该方案具有硬件电路简单、成本低、可靠性高、测量准确等优点,具有较高的实用价值。 Abstract: Abstract:A desigh scheme of CO2 concentration meter based on CDM4161carbon dioxide concentration test module and ATtiny26micro-controller is presented in this paper.The design scheme features simple hardware circuit,low-cost,high reli-ability,accurate measurement and it has a high practical value.
上传时间: 2013-11-14
上传用户:zjwangyichao
The μPSD32xx family, from ST, consists of Flash programmable system devices with a 8032 MicrocontrollerCore. Of these, the μPSD3234A and μPSD3254A are notable for having a complete implementationof the USB hardware directly on the chip, complying with the Universal Serial Bus Specification, Revision1.1.This application note describes a demonstration program that has been written for the DK3200 hardwaredemonstration kit (incorporating a μPSD3234A device). It gives the user an idea of how simple it is to workwith the device, using the HID class as a ready-made device driver for the USB connection.IN-APPLICATION-PROGRAMMING (IAP) AND IN-SYSTEM-PROGRAMMING (ISP)Since the μPSD contains two independent Flash memory arrays, the Micro Controller Unit (MCU) can executecode from one memory while erasing and programming the other. Product firmware updates in thefield can be reliably performed over any communication channel (such as CAN, Ethernet, UART, J1850)using this unique architecture. For In-Application-Programming (IAP), all code is updated through theMCU. The main advantage for the user is that the firmware can be updated remotely. The target applicationruns and takes care on its own program code and data memory.IAP is not the only method to program the firmware in μPSD devices. They can also be programmed usingIn-System-Programming (ISP). A IEEE1149.1-compliant JTAG interface is included on the μPSD. Withthis, the entire device can be rapidly programmed while soldered to the circuit board (Main Flash memory,Secondary Boot Flash memory, the PLD, and all configuration areas). This requires no MCU participation.The MCU is completely bypassed. So, the μPSD can be programmed or reprogrammed any time, anywhere, even when completely uncommitted.Both methods take place with the device in its normal hardware environment, soldered to a printed circuitboard. The IAP method cannot be used without previous use of ISP, because IAP utilizes a small amountof resident code to receive the service commands, and to perform the desired operations.
标签: Demonstration 3200 USB for
上传时间: 2014-02-27
上传用户:zhangzhenyu
All inputs of the C16x family have Schmitt-Trigger input characteristics. These Schmitt-Triggers are intended to always provide proper internal low and high levels, even if anundefined voltage level (between TTL-VIL and TTL-VIH) is externally applied to the pin.The hysteresis of these inputs, however, is very small, and can not be properly used in anapplication to suppress signal noise, and to shape slow rising/falling input transitions.Thus, it must be taken care that rising/falling input signals pass the undefined area of theTTL-specification between VIL and VIH with a sufficient rise/fall time, as generally usualand specified for TTL components (e.g. 74LS series: gates 1V/us, clock inputs 20V/us).The effect of the implemented Schmitt-Trigger is that even if the input signal remains inthe undefined area, well defined low/high levels are generated internally. Note that allinput signals are evaluated at specific sample points (depending on the input and theperipheral function connected to it), at that signal transitions are detected if twoconsecutive samples show different levels. Thus, only the current level of an input signalat these sample points is relevant, that means, the necessary rise/fall times of the inputsignal is only dependant on the sample rate, that is the distance in time between twoconsecutive evaluation time points. If an input signal, for instance, is sampled throughsoftware every 10us, it is irrelevant, which input level would be seen between thesamples. Thus, it would be allowable for the signal to take 10us to pass through theundefined area. Due to the sample rate of 10us, it is assured that only one sample canoccur while the signal is within the undefined area, and no incorrect transition will bedetected. For inputs which are connected to a peripheral function, e.g. capture inputs, thesample rate is determined by the clock cycle of the peripheral unit. In the case of theCAPCOM unit this means a sample rate of 400ns @ 20MHz CPU clock. This requiresinput signals to pass through the undefined area within these 400ns in order to avoidmultiple capture events.For input signals, which do not provide the required rise/fall times, external circuitry mustbe used to shape the signal transitions.In the attached diagram, the effect of the sample rate is shown. The numbers 1 to 5 in thediagram represent possible sample points. Waveform a) shows the result if the inputsignal transition time through the undefined TTL-level area is less than the time distancebetween the sample points (sampling at 1, 2, 3, and 4). Waveform b) can be the result ifthe sampling is performed more than once within the undefined area (sampling at 1, 2, 5,3, and 4).Sample points:1. Evaluation of the signal clearly results in a low level2. Either a low or a high level can be sampled here. If low is sampled, no transition willbe detected. If the sample results in a high level, a transition is detected, and anappropriate action (e.g. capture) might take place.3. Evaluation here clearly results in a high level. If the previous sample 2) had alreadydetected a high, there is no change. If the previous sample 2) showed a low, atransition from low to high is detected now.
上传时间: 2013-10-23
上传用户:copu
All inputs of the C16x family have Schmitt-Trigger input characteristics. These Schmitt-Triggers are intended to always provide proper internal low and high levels, even if anundefined voltage level (between TTL-VIL and TTL-VIH) is externally applied to the pin.The hysteresis of these inputs, however, is very small, and can not be properly used in anapplication to suppress signal noise, and to shape slow rising/falling input transitions.Thus, it must be taken care that rising/falling input signals pass the undefined area of theTTL-specification between VIL and VIH with a sufficient rise/fall time, as generally usualand specified for TTL components (e.g. 74LS series: gates 1V/us, clock inputs 20V/us).The effect of the implemented Schmitt-Trigger is that even if the input signal remains inthe undefined area, well defined low/high levels are generated internally. Note that allinput signals are evaluated at specific sample points (depending on the input and theperipheral function connected to it), at that signal transitions are detected if twoconsecutive samples show different levels. Thus, only the current level of an input signalat these sample points is relevant, that means, the necessary rise/fall times of the inputsignal is only dependant on the sample rate, that is the distance in time between twoconsecutive evaluation time points. If an input signal, for instance, is sampled throughsoftware every 10us, it is irrelevant, which input level would be seen between thesamples. Thus, it would be allowable for the signal to take 10us to pass through theundefined area. Due to the sample rate of 10us, it is assured that only one sample canoccur while the signal is within the undefined area, and no incorrect transition will bedetected. For inputs which are connected to a peripheral function, e.g. capture inputs, thesample rate is determined by the clock cycle of the peripheral unit. In the case of theCAPCOM unit this means a sample rate of 400ns @ 20MHz CPU clock. This requiresinput signals to pass through the undefined area within these 400ns in order to avoidmultiple capture events.
上传时间: 2014-04-02
上传用户:han_zh
The MC68HC05K0 is a low cost, low pin countsingle chip microcomputer with 504 bytes of userROM and 32 bytes of RAM. The MC68HC05K0 isa member of the 68HC05K series of devices whichare available in 16-pin DIL or SOIC packages.It uses the same CPU as the other devices in the68HC05 family and has the same instructions andregisters. Additionally, the device has a 15-stagemulti-function timer and 10 general purposebi-directional I/0 lines. A mask option is availablefor software programmable pull-downs on all ofthe I/O pins and four of the pins are capable ofgenerating interrupts.The device is ideally suited for remote-controlkeyboard applications because the pull-downs andthe interrupt drivers on the port pins allowkeyboards to be built without any externalcomponents except the keys themselves. There isno need for external pull-up or pull-down resistors,or diodes for wired-OR interrupts, as these featuresare already designed into the device.
上传时间: 2014-01-24
上传用户:zl5712176
有两种方式可以让设备和应用程序之间联系:1. 通过为设备创建的一个符号链;2. 通过输出到一个接口WDM驱动程序建议使用输出到一个接口而不推荐使用创建符号链的方法。这个接口保证PDO的安全,也保证安全地创建一个惟一的、独立于语言的访问设备的方法。一个应用程序使用Win32APIs来调用设备。在某个Win32 APIs和设备对象的分发函数之间存在一个映射关系。获得对设备对象访问的第一步就是打开一个设备对象的句柄。 用符号链打开一个设备的句柄为了打开一个设备,应用程序需要使用CreateFile。如果该设备有一个符号链出口,应用程序可以用下面这个例子的形式打开句柄:hDevice = CreateFile("\\\\.\\OMNIPORT3", GENERIC_READ | GENERIC_WRITE,FILE_SHARE_READ, NULL, OPEN_EXISTING, FILE_ATTRIBUTE_NORMAL ,NULL);文件路径名的前缀“\\.\”告诉系统本调用希望打开一个设备。这个设备必须有一个符号链,以便应用程序能够打开它。有关细节查看有关Kdevice和CreateLink的内容。在上述调用中第一个参数中前缀后的部分就是这个符号链的名字。注意:CreatFile中的第一个参数不是Windows 98/2000中驱动程序(.sys文件)的路径。是到设备对象的符号链。如果使用DriverWizard产生驱动程序,它通常使用类KunitizedName来构成设备的符号链。这意味着符号链名有一个附加的数字,通常是0。例如:如果链接名称的主干是L“TestDevice”那么在CreateFile中的串就该是“\\\\.\\TestDevice0”。如果应用程序需要被覆盖的I/O,第六个参数(Flags)必须或上FILE_FLAG_OVERLAPPED。 使用一个输出接口打开句柄用这种方式打开一个句柄会稍微麻烦一些。DriverWorks库提供两个助手类来使获得对该接口的访问容易一些,这两个类是CDeviceInterface, 和 CdeviceInterfaceClass。CdeviceInterfaceClass类封装了一个设备信息集,该信息集包含了特殊类中的所有设备接口信息。应用程序能有用CdeviceInterfaceClass类的一个实例来获得一个或更多的CdeviceInterface类的实例。CdeviceInterface类是一个单一设备接口的抽象。它的成员函数DevicePath()返回一个路径名的指针,该指针可以在CreateFile中使用来打开设备。下面用一个小例子来显示这些类最基本的使用方法:extern GUID TestGuid;HANDLE OpenByInterface( GUID* pClassGuid, DWORD instance, PDWORD pError){ CDeviceInterfaceClass DevClass(pClassGuid, pError); if (*pError != ERROR_SUCCESS) return INVALID_HANDLE_VALUE; CDeviceInterface DevInterface(&DevClass, instance, pError); if (*pError != ERROR_SUCCESS) return INVALID_HANDLE_VALUE; cout << "The device path is " << DevInterface.DevicePath() << endl; HANDLE hDev; hDev = CreateFile( DevInterface.DevicePath(), GENERIC_READ | GENERIC_WRITE, FILE_SHARE_READ | FILE_SHARE_WRITE, NULL, OPEN_EXISTING, FILE_ATTRIBUTE_NORMAL, NULL ); if (hDev == INVALID_HANDLE_VALUE) *pError = GetLastError(); return hDev;} 在设备中执行I/O操作一旦应用程序获得一个有效的设备句柄,它就能使用Win32 APIs来产生到设备对象的IRPs。下面的表显示了这种对应关系。Win32 API DRIVER_FUNCTION_xxxIRP_MJ_xxx KDevice subclass member function CreateFile CREATE Create ReadFile READ Read WriteFile WRITE Write DeviceIoControl DEVICE_CONTROL DeviceControl CloseHandle CLOSECLEANUP CloseCleanUp 需要解释一下设备类成员的Close和CleanUp:CreateFile使内核为设备创建一个新的文件对象。这使得多个句柄可以映射同一个文件对象。当这个文件对象的最后一个用户级句柄被撤销后,I/O管理器调用CleanUp。当没有任何用户级和核心级的对文件对象的访问的时候,I/O管理器调用Close。如果被打开的设备不支持指定的功能,则调用相应的Win32将引起错误(无效功能)。以前为Windows95编写的VxD的应用程序代码中可能会在打开设备的时候使用FILE_FLAG_DELETE_ON_CLOSE属性。在Windows NT/2000中,建议不要使用这个属性,因为它将导致没有特权的用户企图打开这个设备,这是不可能成功的。I/O管理器将ReadFile和WriteFile的buff参数转换成IRP域的方法依赖于设备对象的属性。当设备设置DO_DIRECT_IO标志,I/O管理器将buff锁住在存储器中,并且创建了一个存储在IRP中的MDL域。一个设备可以通过调用Kirp::Mdl来存取MDL。当设备设置DO_BUFFERED_IO标志,设备对象分别通过KIrp::BufferedReadDest或 KIrp::BufferedWriteSource为读或写操作获得buff地址。当设备不设置DO_BUFFERED_IO标志也不设置DO_DIRECT_IO,内核设置IRP 的UserBuffer域来对应ReadFile或WriteFile中的buff参数。然而,存储区并没有被锁住而且地址只对调用进程有效。驱动程序可以使用KIrp::UserBuffer来存取IRP域。对于DeviceIoControl调用,buffer参数的转换依赖于特殊的I/O控制代码,它不在设备对象的特性中。宏CTL_CODE(在winioctl.h中定义)用来构造控制代码。这个宏的其中一个参数指明缓冲方法是METHOD_BUFFERED, METHOD_IN_DIRECT, METHOD_OUT_DIRECT, 或METHOD_NEITHER。下面的表显示了这些方法和与之对应的能获得输入缓冲与输出缓冲的KIrp中的成员函数:Method Input Buffer Parameter Output Buffer Parameter METHOD_BUFFERED KIrp::IoctlBuffer KIrp::IoctlBuffer METHOD_IN_DIRECT KIrp::IoctlBuffer KIrp::Mdl METHOD_OUT_DIRECT KIrp::IoctlBuffer KIrp::Mdl METHOD_NEITHER KIrp::IoctlType3InputBuffer KIrp::UserBuffer 如果控制代码指明METHOD_BUFFERED,系统分配一个单一的缓冲来作为输入与输出。驱动程序必须在向输出缓冲放数据之前拷贝输入数据。驱动程序通过调用KIrp::IoctlBuffer获得缓冲地址。在完成时,I/O管理器从系统缓冲拷贝数据到提供给Ring 3级调用者使用的缓冲中。驱动程序必须在结束前存储拷贝到IRP的Information成员中的数据个数。如果控制代码不指明METHOD_IN_DIRECT或METHOD_OUT_DIRECT,则DeviceIoControl的参数呈现不同的含义。参数InputBuffer被拷贝到一个系统缓冲,这个缓冲驱动程序可以通过调用KIrp::IoctlBuffer。参数OutputBuffer被映射到KMemory对象,驱动程序对这个对象的访问通过调用KIrp::Mdl来实现。对于METHOD_OUT_DIRECT,调用者必须有对缓冲的写访问权限。注意,对METHOD_NEITHER,内核只提供虚拟地址;它不会做映射来配置缓冲。虚拟地址只对调用进程有效。这里是一个用METHOD_BUFFERED的例子:首先,使用宏CTL_CODE来定义一个IOCTL代码:#define IOCTL_MYDEV_GET_FIRMWARE_REV \CTL_CODE (FILE_DEVICE_UNKNOWN,0,METHOD_BUFFERED,FILE_ANY_ACCESS)现在使用一个DeviceIoControl调用:BOOLEAN b;CHAR FirmwareRev[60];ULONG FirmwareRevSize;b = DeviceIoControl(hDevice, IOCTL_MYDEV_GET_VERSION_STRING, NULL, // no input 注意,这里放的是包含有执行操作命令的字符串指针 0, FirmwareRev, //这里是output串指针,存放从驱动程序中返回的字符串。sizeof(FirmwareRev),& FirmwareRevSize, NULL // not overlapped I/O );如果输出缓冲足够大,设备拷贝串到里面并将拷贝的资结束设置到FirmwareRevSize中。在驱动程序中,代码看起来如下所示:const char* FIRMWARE_REV = "FW 16.33 v5";NTSTATUS MyDevice::DeviceControl( KIrp I ){ ULONG fwLength=0; switch ( I.IoctlCode() ) { case IOCTL_MYDEV_GET_FIRMWARE_REV: fwLength = strlen(FIRMWARE_REV)+1; if (I.IoctlOutputBufferSize() >= fwLength) { strcpy((PCHAR)I.IoctlBuffer(),FIRMWARE_REV); I.Information() = fwLength; return I.Complete(STATUS_SUCCESS); } else { } case . . . } }
上传时间: 2013-10-17
上传用户:gai928943
//芯片资料请到www.elecfans.com查找 //DS1820 C51 子程序//这里以11.0592M晶体为例,不同的晶体速度可能需要调整延时的时间//sbit DQ =P2^1;//根据实际情况定义端口 typedef unsigned char byte;typedef unsigned int word; //延时void delay(word useconds){ for(;useconds>0;useconds--);} //复位byte ow_reset(void){ byte presence; DQ = 0; //pull DQ line low delay(29); // leave it low for 480us DQ = 1; // allow line to return high delay(3); // wait for presence presence = DQ; // get presence signal delay(25); // wait for end of timeslot return(presence); // presence signal returned} // 0=presence, 1 = no part //从 1-wire 总线上读取一个字节byte read_byte(void){ byte i; byte value = 0; for (i=8;i>0;i--) { value>>=1; DQ = 0; // pull DQ low to start timeslot DQ = 1; // then return high delay(1); //for (i=0; i<3; i++); if(DQ)value|=0x80; delay(6); // wait for rest of timeslot } return(value);} //向 1-WIRE 总线上写一个字节void write_byte(char val){ byte i; for (i=8; i>0; i--) // writes byte, one bit at a time { DQ = 0; // pull DQ low to start timeslot DQ = val&0x01; delay(5); // hold value for remainder of timeslot DQ = 1; val=val/2; } delay(5);} //读取温度char Read_Temperature(void){ union{ byte c[2]; int x; }temp; ow_reset(); write_byte(0xCC); // Skip ROM write_byte(0xBE); // Read Scratch Pad temp.c[1]=read_byte(); temp.c[0]=read_byte(); ow_reset(); write_byte(0xCC); //Skip ROM write_byte(0x44); // Start Conversion return temp.x/2;}
上传时间: 2013-11-03
上传用户:hongmo
单片机应用技术选编(1) 第一章 单片机系统综合应用技术 11.1 且使用 8098单片机的几点体会 2 1.2 单片机的冷启动与热启动 31.3 大容量动态存储器在单片机系统中的应用111.4 MCS-51单片机系统中动态 RAM的刷新技巧141.5 MCS-51单片机系统中外RAM空间超64KB的扩展方法161.6 8031单片机P0口和P2口的应用开发 181.7 74LS164在 8031单片机中的两种用法261.8 用于 8031单片机的快速I/O接口281.9 MCS-51定时器定时常数初值的精确设定法301.10 8253的翻转问题及 MC6840的替代方法321.11 MCS-51单片机外部中断源的扩展设计351.12 MCS-51单片机多外中断扩展方法401.13 用优先权编码器74LS348扩展51系列单片机的外中断源421.14 用优先权编码器74LS148扩展51系列单片机的外中断源471.15 8031单片机与 BG5119A汉字库的接口方法521.16 可背插 SRAM的日历时钟 DS1216及其应用551.17 实时日历时钟集成电路MSM5832及其时序601.18 实时日历时钟集成电路MSM5832的接口技术631.19 实时时钟/日历芯片MC146818及其应用671.20 与 SICE仿真器通讯的IBM-PC机通讯程序的改进741.21 代码形式参数汇编子程序的应用821.22 单片机应用系统中的查表程序设计861.23 用状态综合法设计键盘监控程序901.24 单片机系统程序的加密技术961.25 MCS-96单片机程序保密的几种方法1001.26 GAL输出宏单元原理及使用105 1.27 通用阵列逻辑 GAL应用于步进电机控制实例110 第二章 传感器与前向通道接口技术1172.1 集成温度传感器 LM134及其应用1182.2 AD590集成温度一电流传感器原理及应用1242.3 集成温度传感器 AD590的应用1292.4 GS-800和 GS-130可燃气体传感器1332.5 集成化霍尔开关传感器1352.6 一种新颖实用的氧气/频率转换电路1392.7 MCS-51单片机与数字式温度传感器的接口设计1422.8 数字式温度传感器 SWC与 8031的接口及应用1452.9 低成本高精度压力传感器微机接口设计1472.10 峰值检测电路原理及应用1512.11 用 LF398制作的实用峰值和谷值保持电路1532.12 AD637集成真有效值转换器1562.13 传感器信号调理模块 ZB311622.14 2B31模块在称重智能仪表中的应用1662.15 传感器信号调理模块 2B30/2B31及其应用1692.16 高精度光纤位移测量系统的电路设计1752.17 集成电压一电流转换器 XTR100的工作原理及应用1792.18 传感器信号变送器 F693及其应用1852.19 一种用两片 VFC32构成的隔离放大器电路1912.20 实用线性隔离放大器1922.21 电桥放大电路中 7650的一些应用问题1942.22 A/D转换器 ICL7109的应用研究1962.23 5G14433模数转换器的启停控制2002.24 ADC1130模数转换器及其使用2042.25 16位 A/D转换器 ADC1143及其与 80C31单片机的接口2082.26 串行 I/O D/A A/D转换器与单片机的接口2132.27 单片机应用系统中的数字化传感器接口技术2162.28 ADVFC32 A/D转换接口技术2202.29 V/F和 F/V转换器 TD650原理与应用2242.30 AD650与 MC-51单片机的接口技术2302.31 利用VCO电路与单片机接口实现A/D转换2352.32 LM2907/2917系列F/V变换器在汽车检测中的应用2382.33 单信号多通道输入法改善 A/D转换器性能2412.34 用多片 A们转换芯片提高 A/D转换速度2452.35 实时数控增益调整与浮点 ADC电路2492.36 电荷耦合器件的单片机驱动2532.37 电荷耦合器件的结构原理与单片机的软件定时驱动2582.38 利用模数转换器提高转换信号的线性度2622.39 利用微型机解决转换中的非线性问题2682.40 利用非线性曲线存储实现线性化的方法2702.41 输出无非线性误差的可变电压源单臂电桥274 第三章 控制系统与后向通道接口技术2793.1 DAC1231与单片机 8031的接口技术2803.2 单路及多路 D八的光电隔离接口技术2843.3 光电隔离高压驱动器2903.4 TRAIC型光耦在 8031后向通道接口的应用分析2913.5 GD-L型光控晶闸管输出光耦合器2963.6 用于晶闸管过零触发的几种方式3003.7 固态继电器3043.8 固态继电器在交流电子开关中的应用3083.9 JCG型参数固态继电器3123.10 JCG型参数固态继电器的应用315 3.11 介绍几种适用于印刷电路板的超小型电磁继电器3193.12 用TWH8751集成电路构成微机控制的三步进电机驱动电源3223.13 3-4相步进电机控制器 5G87133253.14 5G0602报警电路及应用3283.15 两种新型温控光控兀的应用330 第四章 人机对话通道接口技术3334.1 单片机键盘接口设计3344.2 由电话机集成电路构成的单片机键盘接口电路3364.3 用 GAL设计的一种编码键盘接口3384.4 用 CMOS电路构成的非编码触摸键盘3424.5 设计薄膜开关应注意的一些问题3454.6 触摸式电子开关集成电路 5G673及其应用3504.7 8279用于拨码盘及显示器的接口设计3544.8 LED数码管的构造与特点3584.9 LED数码管的集成驱动器及配套器件3624.10 8279芯片的显示接口分析及32位数码管显示驱动电路设计366 4.11 用三端可调稳压块代替LED显示器的限流电阻3704.12 液晶显示器件的构造与特点3714.13 LCD七段显示器与单片机的接口3744.14 液晶显示器与单片机的接口技术3764.15 可编程LCD控制驱动器PPD72253814.16 微机总线兼容的四位 LCD驱动电路 TSC7211AM3874.17 使用8255的双极性归零脉冲驱动液晶显示器接口3914.18 DMC16230型 LCD显示模块的接口技术3954.19 点阵式液晶显示器原理及应用4034.20 实用液晶显示电路4094.21 8031控制的 CRT显示控制接口4144.22 用 8031控制多台彩色显示器的实现方法4194.23 高级语言处理器--T6668的结构与典型电路4234.24 延长 T6668语言电路录放时间的方法4294.25 T6668高级语音开发站4324.26 语言处理器 T6668在电话报警系统中的应用4354.27 新型语音处理器YYH16439 第五章 网络、通讯控制与多机系统4415.1 IBM-PC/XT和单片机通讯系统的设计4425.2 IBM-PC/XT微机与单片机的两种通讯接口4485.3 MCS-51单片机与 IBMPC微机的串行通讯4525.4 中央控制端与 MCS-51单片机间的数据通讯4595.5 IBMPC机与 MCS-51单片机的快速数据通讯4665.6 8031单片机与 PC-1500计算机的通讯4735.7 多片 MCS-51系统的一种串行通讯方式4775.8 多单片机处理系统并行通讯的实现4815.9 半双工远距离电流环多机通讯接口电路4855.10 多微机系统共享 RAM电路4905.11 串行通讯中的波特率设置4925.12 在MCS-51单片机的串行通讯中实现波特率的自动整定4965.13 J274和 J275在微机分布式测控系统中的应用5005.14 单电缆传送双向数据5045.15 新颖的多路遥控兀编译码器5055.16 DTMF在单片机无线数据通讯中的应用5085.17 MCS-8031单片机在红外遥控装置中的应用5155.18 一种实用光纤数字遥测系统5185.19 智能仪表通讯系统中一种冗余通道的设计5245.20 EIARS-232-C接口使用中的几个问题528 第六章 电源、电源变换与电源监视5316.1 电源扩展电路5326.2 一种简单的直流三倍压电路533 6.3 直流电源变换集成电路5356.4 直流电压变换器ICL7660的应用5376.5 一种廉价高精密基准电压源5406.6 精密可调基准电压源及其应用5416.7 引脚可编程精密基准电压源AD584及其应用5496.8 几种新型恒流源集成电路5536.9 CW334三端可调恒流源及应用5576.10 电源电压监视用芯片TL7705CP简介5606.11 电源电压监视用芯片TL7700简介5646.12 WMS7705B电源监视用芯片简介5676.13 具有HMOS结构的MCS-51系列单片机提供后备电源的方法570 第七章 系统抗于扰技术5757.1 微型计算机系统的抗干扰措施5767.2 计算机应用系统抗干扰问题5797.3 微机在工业应用中的抗干扰措施5867.4 利用电源监视TL7705芯片的抗电源于扰新方法5917.5 利用电源监视芯片WMS7705的抗电源干扰新方法5947.6 具有浪涌抑制能力的 TVP 6017.7 瞬变电压抑制M极管TVP的特性及应用6047.8 单片机实时控制软件抗干扰编程方法的探讨6077.9 一种简单实用的微机死机自复位抗干扰技术6107.10 单片机程序的监视保护6127.11 软件 WATCHDOG系统615 7.12 一种实用的"看门狗"电路6187.13 高电压下测量系统的抗干扰措施619 第八章 应用实例6218.1 单片机在多功能函数发生器中的应用6228.2 单片机波形发生器6298.3 单片机控制的调幅波发生器6338.4 用 8031单片机解调时统信号6368.5 具有 114DB动态范围的浮点数据采集系统6418.6 电热恒温箱单片微机控制系统6468.7 智能 I一、C丑测试仪的原理及设计6528.8 采用 LMS算法的单片机数字交流电桥6568.9 单片微机的数字相位测试仪6598.10 单片机的气体流量测量6628.11 单片机的相关流量仪6688.12 723型可见分光光度计6758.13 多功能微电脑电子秤6798.14 智能路面回弹检测仪6838.15 使用 CCD的单片机动态布面检测系统6878.16 使用 CCD的单片机激光衍射测径系统6908.17 使用 CCD的单片机动态线径测量仪6958.18 使用CCD的单片机中型热轧圆钢直径检测仪7018.19 用 MCS-51单片微机实现织布机的监测7058.20 单片机在工频参量测试中的应用7098.21 单片机 8098在直线电机控制中的应用715?
上传时间: 2014-12-28
上传用户:liufei