The MAX3243E device consists of three line drivers, five line receivers, and a dual charge-pump circuit with±15-kV ESD (HBM and IEC61000-4-2, Air-Gap Discharge) and ±8-kV ESD (IEC61000-4-2, Contact Discharge)protection on serial-port connection pins. The device meets the requirements of TIA/EIA-232-F and provides theelectrical interface between an asynchronous communication controller and the serial-port connector. Thiscombination of drivers and receivers matches that needed for the typical serial port used in an IBM PC/AT, orcompatible. The charge pump and four small external capacitors allow operation from a single 3-V to 5.5-Vsupply. In addition, the device includes an always-active noninverting output (ROUT2B), which allowsapplications using the ring indicator to transmit data while the device is powered down. The device operates atdata signaling rates up to 250 kbit/s and a maximum of 30-V/ms driver output slew rate.
標簽: MULTICHANNEL 5.5 TO RS
上傳時間: 2013-10-19
上傳用戶:ddddddd
The P82B96 offers many different ways in which it can be used as abus interface. In its simplest application it can be used as aninterface between bus systems operating from different supplyvoltages. Opto isolation between two bus systems is possible, andalso the availability of the Tx and Rx signals permits interfacing ofthe P82B96 with other bus systems which separate the forwardoutput path, from the backward input signal path.
上傳時間: 2013-10-11
上傳用戶:洛木卓
The CAT9555 is a CMOS device that provides 16-bitparallel input/output port expansion for I²C and SMBuscompatible applications. These I/O expanders providea simple solution in applications where additional I/Osare needed: sensors, power switches, LEDs,pushbuttons, and fans.
上傳時間: 2014-01-09
上傳用戶:1101055045
The CAT9534 is an 8-bit parallel input/output portexpander for I²C and SMBus compatible applications.These I/O expanders provide a simple solution inapplications where additional I/Os are needed: sensors,power switches, LEDs, pushbuttons, and fans.The CAT9534 consists of an input port register, anoutput port register, a configuration register, a polarityinversion register and an I²C/SMBus-compatible serialinterface.
上傳時間: 2013-11-09
上傳用戶:liulinshan2010
基于PIC單片機的脈沖電源:設計了一種金屬凝固過程用脈沖電源。該電源采用PIC16F877作為主控芯片,實現(xiàn)對窄脈沖電流幅值的檢測,以及時電流脈沖幅值根據(jù)模糊PID算法進行閑環(huán)控制。使用結果表明:該電源的輸出脈沖波形良好,電流幅值穩(wěn)定,滿足合金材料凝固過程的工藝要求且運行穩(wěn)定可靠。關鍵詞:脈沖電源;PIC16F877單片機;模糊PID;閑環(huán)控制 Abstract:A kind of pulse power supply was designed which uses in the metal solidification process ..I11is power supply used PIC16F877 to take the master control chip reali on to the narrow pulse electric current peak-to-peak value examination,carried on the closed-loop control to the electric current pulse peak-to-peak value basis fuzzy PID algorithm.The use result indicated ,this power supply output se profile is good,and the electric current peak-to-p~k value is stable,It satisfies the alloy material solidification process the technological requirement and movement stable reliable,Key words:p se po wer supply;PIC16F877single-chip microcontroller;f r PID;closed-loop control
上傳時間: 2013-10-27
上傳用戶:xcy122677
摘要:本水位監(jiān)測報警器使用5V低壓直流電源(也可以用3節(jié)5號電池代替)就可以對5~15厘米的水位進行監(jiān)測,用LED顯示和數(shù)碼管顯示水位,并可以對不再此范圍內(nèi)的水位發(fā)出報警。主要采用CD4066、74LS86、74LS32、CD4511芯片,再加上數(shù)碼管、蜂鳴器、發(fā)光二極管、電阻這些器件組成一個簡單而靈敏的監(jiān)測報警電路,操作簡單,接通電源即可工作。因為大部分電路采用數(shù)字電路,所以本水位監(jiān)測報警器還具有耗能低、準確性高的特點。關鍵字:譯碼電路 報警電路 監(jiān)測電路 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
標簽: 水位 監(jiān)測報警 系統(tǒng)原理
上傳時間: 2013-11-05
上傳用戶:王慶才
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.
上傳時間: 2013-10-23
上傳用戶:copu
The P90CL301 is a highly integrated 16/32 bit micro-controller especially suitable for applications requiring lowvoltage and low power consumption. It is fully software compatible with the 68000. Furthermore, it provides bothstandard as well as advanced peripheral functions on-chip.One of these peripheral functions is the I2C bus. This report describes worked-out driver software (written in C) toprogram the P90CL301 I2C interface. It also contains interface software routines offering the user a quick start inwriting a complete I2C system application.
上傳時間: 2014-01-06
上傳用戶:氣溫達上千萬的
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.
上傳時間: 2014-04-02
上傳用戶:han_zh
有兩種方式可以讓設備和應用程序之間聯(lián)系:1. 通過為設備創(chuàng)建的一個符號鏈;2. 通過輸出到一個接口WDM驅(qū)動程序建議使用輸出到一個接口而不推薦使用創(chuàng)建符號鏈的方法。這個接口保證PDO的安全,也保證安全地創(chuàng)建一個惟一的、獨立于語言的訪問設備的方法。一個應用程序使用Win32APIs來調(diào)用設備。在某個Win32 APIs和設備對象的分發(fā)函數(shù)之間存在一個映射關系。獲得對設備對象訪問的第一步就是打開一個設備對象的句柄。 用符號鏈打開一個設備的句柄為了打開一個設備,應用程序需要使用CreateFile。如果該設備有一個符號鏈出口,應用程序可以用下面這個例子的形式打開句柄:hDevice = CreateFile("\\\\.\\OMNIPORT3", GENERIC_READ | GENERIC_WRITE,FILE_SHARE_READ, NULL, OPEN_EXISTING, FILE_ATTRIBUTE_NORMAL ,NULL);文件路徑名的前綴“\\.\”告訴系統(tǒng)本調(diào)用希望打開一個設備。這個設備必須有一個符號鏈,以便應用程序能夠打開它。有關細節(jié)查看有關Kdevice和CreateLink的內(nèi)容。在上述調(diào)用中第一個參數(shù)中前綴后的部分就是這個符號鏈的名字。注意:CreatFile中的第一個參數(shù)不是Windows 98/2000中驅(qū)動程序(.sys文件)的路徑。是到設備對象的符號鏈。如果使用DriverWizard產(chǎn)生驅(qū)動程序,它通常使用類KunitizedName來構成設備的符號鏈。這意味著符號鏈名有一個附加的數(shù)字,通常是0。例如:如果鏈接名稱的主干是L“TestDevice”那么在CreateFile中的串就該是“\\\\.\\TestDevice0”。如果應用程序需要被覆蓋的I/O,第六個參數(shù)(Flags)必須或上FILE_FLAG_OVERLAPPED。 使用一個輸出接口打開句柄用這種方式打開一個句柄會稍微麻煩一些。DriverWorks庫提供兩個助手類來使獲得對該接口的訪問容易一些,這兩個類是CDeviceInterface, 和 CdeviceInterfaceClass。CdeviceInterfaceClass類封裝了一個設備信息集,該信息集包含了特殊類中的所有設備接口信息。應用程序能有用CdeviceInterfaceClass類的一個實例來獲得一個或更多的CdeviceInterface類的實例。CdeviceInterface類是一個單一設備接口的抽象。它的成員函數(shù)DevicePath()返回一個路徑名的指針,該指針可以在CreateFile中使用來打開設備。下面用一個小例子來顯示這些類最基本的使用方法: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;} 在設備中執(zhí)行I/O操作一旦應用程序獲得一個有效的設備句柄,它就能使用Win32 APIs來產(chǎn)生到設備對象的IRPs。下面的表顯示了這種對應關系。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 需要解釋一下設備類成員的Close和CleanUp:CreateFile使內(nèi)核為設備創(chuàng)建一個新的文件對象。這使得多個句柄可以映射同一個文件對象。當這個文件對象的最后一個用戶級句柄被撤銷后,I/O管理器調(diào)用CleanUp。當沒有任何用戶級和核心級的對文件對象的訪問的時候,I/O管理器調(diào)用Close。如果被打開的設備不支持指定的功能,則調(diào)用相應的Win32將引起錯誤(無效功能)。以前為Windows95編寫的VxD的應用程序代碼中可能會在打開設備的時候使用FILE_FLAG_DELETE_ON_CLOSE屬性。在Windows NT/2000中,建議不要使用這個屬性,因為它將導致沒有特權的用戶企圖打開這個設備,這是不可能成功的。I/O管理器將ReadFile和WriteFile的buff參數(shù)轉(zhuǎn)換成IRP域的方法依賴于設備對象的屬性。當設備設置DO_DIRECT_IO標志,I/O管理器將buff鎖住在存儲器中,并且創(chuàng)建了一個存儲在IRP中的MDL域。一個設備可以通過調(diào)用Kirp::Mdl來存取MDL。當設備設置DO_BUFFERED_IO標志,設備對象分別通過KIrp::BufferedReadDest或 KIrp::BufferedWriteSource為讀或?qū)懖僮鳙@得buff地址。當設備不設置DO_BUFFERED_IO標志也不設置DO_DIRECT_IO,內(nèi)核設置IRP 的UserBuffer域來對應ReadFile或WriteFile中的buff參數(shù)。然而,存儲區(qū)并沒有被鎖住而且地址只對調(diào)用進程有效。驅(qū)動程序可以使用KIrp::UserBuffer來存取IRP域。對于DeviceIoControl調(diào)用,buffer參數(shù)的轉(zhuǎn)換依賴于特殊的I/O控制代碼,它不在設備對象的特性中。宏CTL_CODE(在winioctl.h中定義)用來構造控制代碼。這個宏的其中一個參數(shù)指明緩沖方法是METHOD_BUFFERED, METHOD_IN_DIRECT, METHOD_OUT_DIRECT, 或METHOD_NEITHER。下面的表顯示了這些方法和與之對應的能獲得輸入緩沖與輸出緩沖的KIrp中的成員函數(shù):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 如果控制代碼指明METHOD_BUFFERED,系統(tǒng)分配一個單一的緩沖來作為輸入與輸出。驅(qū)動程序必須在向輸出緩沖放數(shù)據(jù)之前拷貝輸入數(shù)據(jù)。驅(qū)動程序通過調(diào)用KIrp::IoctlBuffer獲得緩沖地址。在完成時,I/O管理器從系統(tǒng)緩沖拷貝數(shù)據(jù)到提供給Ring 3級調(diào)用者使用的緩沖中。驅(qū)動程序必須在結束前存儲拷貝到IRP的Information成員中的數(shù)據(jù)個數(shù)。如果控制代碼不指明METHOD_IN_DIRECT或METHOD_OUT_DIRECT,則DeviceIoControl的參數(shù)呈現(xiàn)不同的含義。參數(shù)InputBuffer被拷貝到一個系統(tǒng)緩沖,這個緩沖驅(qū)動程序可以通過調(diào)用KIrp::IoctlBuffer。參數(shù)OutputBuffer被映射到KMemory對象,驅(qū)動程序?qū)@個對象的訪問通過調(diào)用KIrp::Mdl來實現(xiàn)。對于METHOD_OUT_DIRECT,調(diào)用者必須有對緩沖的寫訪問權限。注意,對METHOD_NEITHER,內(nèi)核只提供虛擬地址;它不會做映射來配置緩沖。虛擬地址只對調(diào)用進程有效。這里是一個用METHOD_BUFFERED的例子:首先,使用宏CTL_CODE來定義一個IOCTL代碼:#define IOCTL_MYDEV_GET_FIRMWARE_REV \CTL_CODE (FILE_DEVICE_UNKNOWN,0,METHOD_BUFFERED,FILE_ANY_ACCESS)現(xiàn)在使用一個DeviceIoControl調(diào)用:BOOLEAN b;CHAR FirmwareRev[60];ULONG FirmwareRevSize;b = DeviceIoControl(hDevice, IOCTL_MYDEV_GET_VERSION_STRING, NULL, // no input 注意,這里放的是包含有執(zhí)行操作命令的字符串指針 0, FirmwareRev, //這里是output串指針,存放從驅(qū)動程序中返回的字符串。sizeof(FirmwareRev),& FirmwareRevSize, NULL // not overlapped I/O );如果輸出緩沖足夠大,設備拷貝串到里面并將拷貝的資結束設置到FirmwareRevSize中。在驅(qū)動程序中,代碼看起來如下所示: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 . . . } }
上傳時間: 2013-10-17
上傳用戶:gai928943