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SYSTEMS-Inertial

  • power electronics control in electrical system

    Within this book the fundamental concepts associated with the topic of power electronic control are covered alongside the latest equipment and devices, new application areas and associated computer-assisted methods. *A practical guide to the control of reactive power systems *Ideal for postgraduate and professional courses *Covers the latest equipment and computer-aided analysis

    标签: power electronic electrical system

    上传时间: 2015-02-20

    上传用户:12345654321

  • Distributed Computing Principles

    istributed Computing Principles, Algorithms, and Systems

    标签: istributed Computing Principles Algorithms and Systems

    上传时间: 2015-03-09

    上传用户:wxw520

  • PSCAD实验指导教程

    PSCAD/EMTDC是加拿大马尼托巴高压直流研究中心出品的一款电力系统电磁暂态仿真软件,PSCAD(Power Systems Computer Aided Design)是用户界面,EMTDC(Electromagnetic Transients including DC)是内部程序。 EMTDC最初代表直流暂态,是一套基于软件的电磁暂态模拟程序。Dennis Woodford博士于1976年在加拿大曼尼托巴水电局开发完成了EMTDC的初版,编写这个程序的原因是因为当时现存的研究工具不能够满足曼尼托巴电力局对尼尔逊河高压直流工程进行强有力和灵活的研究的要求。自此之后程序被不断开发,至今已被广泛地应用在电力系统许多类型的模拟研究,其中包括交流研究,雷电过电压和电力电子学研究。EMTDC开始时在大型计算机上使用。然后在1986年被移植到Unix系统和以后的PC机上。 PSCAD代表电力系统计算机辅助设计,PSCAD的开发成功,使得用户能更方便地使用EMTDC进行电力系统分析,使电力系统复杂部分可视化成为可能,而且软件可以作为实时数字仿真器的前置端。可模拟任意大小的交直流系统。PSCAD V1 1988年首先在阿波罗工作站上使用,然后大约在1995年PSCAD V2开始应用。PSCAD V3以PC Windows作为平台,在1999年面世。目前最新版本的是PSCAD V4.2.1。 用户可以通过调用随EMTDC 主程序一起提供的库程序模块或利用用户自己开发的元部件模型有效地组装任何可以想象出的电力系统模型和结构。EMTDC 的威力之一是可以较为简单地模拟复杂电力系统, 包括直流输电系统和其相关的控制系统。 采用 PSCAD/EMTDC 进行的典型模拟研究包括:  一般的交流电力系统电磁暂态研究  直流输电结构和控制  FACTS(灵活交流输电系统)元部件模型  由于故障、断路器操作或雷电冲击引起的电力系统的过电压研究  绝缘配合研究  谐波相互影响研究  静止补偿器研究  非线性控制系统研究  变压器饱和研究, 如铁磁振荡和铁芯饱和不稳定性研究  同步发电机和感应电动机的扭矩效应和自励磁研究  陡前波分析  研究当一台多轴系发电机与串补线路或电力电子设备相互作用时的次同步谐振现象  向孤立负荷送电 电力系统数字仿真实验室使用PSCAD/EMTDC主要进行一般的交流电力系统电磁暂态研究,进行简单和复杂电力系统的故障建模及故障仿真,分析电力系统故障电磁暂态过程。

    标签: PSCAD实验指导教程

    上传时间: 2016-02-16

    上传用户:xixi略

  • vxworks源代码

    大名鼎鼎的嵌入式操作系统vxworks的完整的源代码,支持多种体系结构的嵌入式处理器,如arm,x86,i960,mc68k,mips,ppc,sparc等,包含完整的实时多任务处理及网络tcpip,dhcp,rip等协议,tffs文件系统,以及各种硬件驱动程序如usb--All the source code of Famous vxwork Embedded operating system , it supports the Embedded processor of many kinds of systems architecture, such as arm,x86,I9600,mc68k,Mips,ppc,sparc etc, it includes entire Real-Time & multi_tasks processing and some network protocols of tcpip,dhcp,rip, tfffs file system,and various kinds of hardware drivers (eg usb) etc

    标签: vxworks

    上传时间: 2016-04-01

    上传用户:dragonman

  • DAKOTA

    Computational models are commonly used in engineering design and scientific discovery activities for simulating complex physical systems in disciplines such as fluid mechanics, structural dynamics, heat transfer, nonlinear structural mechanics, shock physics, and many others. These simulators can be an enormous aid to engineers who want to develop an understanding and/or predictive capability for complex behaviors typically observed in the corresponding physical systems. Simulators often serve as virtual prototypes, where a set of predefined system parameters, such as size or location dimensions and material properties, are adjusted to improve the performance of a system, as defined by one or more system performance objectives. Such optimization or tuning of the virtual prototype requires executing the simulator, evaluating performance objective(s), and adjusting the system parameters in an iterative, automated, and directed way. System performance objectives can be formulated, for example, to minimize weight, cost, or defects; to limit a critical temperature, stress, or vibration response; or to maximize performance, reliability, throughput, agility, or design robustness. In addition, one would often like to design computer experiments, run parameter studies, or perform uncertainty quantification (UQ). These approaches reveal how system performance changes as a design or uncertain input variable changes. Sampling methods are often used in uncertainty quantification to calculate a distribution on system performance measures, and to understand which uncertain inputs contribute most to the variance of the outputs. A primary goal for Dakota development is to provide engineers and other disciplinary scientists with a systematic and rapid means to obtain improved or optimal designs or understand sensitivity or uncertainty using simulationbased models. These capabilities generally lead to improved designs and system performance in earlier design stages, alleviating dependence on physical prototypes and testing, shortening design cycles, and reducing product development costs. In addition to providing this practical environment for answering system performance questions, the Dakota toolkit provides an extensible platform for the research and rapid prototyping of customized methods and meta-algorithms

    标签: Optimization and Uncertainty Quantification

    上传时间: 2016-04-08

    上传用户:huhu123456

  • Iterative Methods For Sparse Linear Systems

    一本讲述求解稀疏线性方程的迭代方法的外文书,阅读需要具有较强的英语能力

    标签: Iterative Methods Systems Linear Sparse

    上传时间: 2016-05-21

    上传用户:通行天下

  • 32feet.NET 3.5 Bluetooth coding

    32feet.NET is a shared-source project to make personal area networking technologies such as Bluetooth, Infrared (IrDA) and more, easily accessible from .NET code. Supports desktop, mobile or embedded systems. 32feet.NET is free for commercial or non-commercial use. If you use the binaries you can just use the library as-is, if you make modifications to the source you need to include the 32feet.NET License.txt document and ensure the file headers are not modified/removed. The project currently consists of the following libraries:- Bluetooth IrDA Object Exchange Bluetooth support requires a device with either the Microsoft, Widcomm, BlueSoleil, or Stonestreet One Bluetopia Bluetooth stack. Requires .NET Compact Framework v3.5 or above and Windows CE.NET 4.2 or above, or .NET Framework v3.5 for desktop Windows XP, Vista, 7 and 8. A subset of functionality is available for Windows Phone 8 and Windows Embedded Handheld 8 in the InTheHand.Phone.Bluetooth.dll library.

    标签: feet 3.5 NET 32

    上传时间: 2016-07-06

    上传用户:magister2016

  • 面向微机电系统组装与封装的微操作装备关键技术

    对微机电系统(Micro electro mechanical systems,MEMS)组装与封装工艺的特点进行了总结分析,给出了MEMS组装与封装设备的研究现状。针对MEMS产业发展的特点,分析了面向MEMS组装与封装的微操作设备中的工艺参数优化数据库、快速精密定位、模块化作业工具、快速显微视觉、柔性装夹和自动化物流等关键技术。在此基础上,详细介绍了研制的MEMS传感器阳极化键合设备和引线键合设备的组成结构,工作原理,并给出了组装和封装试验结果。最后,指出了MEMS组装与封装技术及设备研制的发展趋势。

    标签: 微机电系统 封装 关键技术 操作

    上传时间: 2016-07-26

    上传用户:leishenzhichui

  • IAR for AVR6.21破解

    1、拷贝注册机到 安装目录如:c:\IAR Systems\Embedded Workbench 6.5\avr应该将 Cracker 放置在avr的上层目录。这里应该是C:\IAR Systems\Embedded Workbench 6.5下即可!         2、运行Cracker,单击patch!等待patch 按钮不可用即表示破解完成!

    标签: AVR6 IAR for 21 破解

    上传时间: 2016-11-06

    上传用户:sanse

  • c#简单计算器

    // 学生管理.cpp : Defines the entry point for the application. // #include "stdafx.h" #include "resource.h" #define MAX_LOADSTRING 100 // Global Variables: HINSTANCE hInst; // current instance TCHAR szTitle[MAX_LOADSTRING]; // The title bar text TCHAR szWindowClass[MAX_LOADSTRING]; // The title bar text // Foward declarations of functions included in this code module: ATOM MyRegisterClass(HINSTANCE hInstance); BOOL InitInstance(HINSTANCE, int); LRESULT CALLBACK WndProc(HWND, UINT, WPARAM, LPARAM); LRESULT CALLBACK About(HWND, UINT, WPARAM, LPARAM); struct person {   char name[10];   int ID;   int cj_yw;   int cj_sx;   struct person* next;   struct person* pro; }per; int APIENTRY WinMain(HINSTANCE hInstance,                      HINSTANCE hPrevInstance,                      LPSTR     lpCmdLine,                      int       nCmdShow) {   // TODO: Place code here. MSG msg; HACCEL hAccelTable; // Initialize global strings LoadString(hInstance, IDS_APP_TITLE, szTitle, MAX_LOADSTRING); LoadString(hInstance, IDC_MY, szWindowClass, MAX_LOADSTRING); MyRegisterClass(hInstance); // Perform application initialization: if (!InitInstance (hInstance, nCmdShow))  { return FALSE; } hAccelTable = LoadAccelerators(hInstance, (LPCTSTR)IDC_MY); // Main message loop: while (GetMessage(&msg, NULL, 0, 0))  { if (!TranslateAccelerator(msg.hwnd, hAccelTable, &msg))  { TranslateMessage(&msg); DispatchMessage(&msg); } } return msg.wParam; } // //  FUNCTION: MyRegisterClass() // //  PURPOSE: Registers the window class. // //  COMMENTS: // //    This function and its usage is only necessary if you want this code //    to be compatible with Win32 systems prior to the 'RegisterClassEx' //    function that was added to Windows 95. It is important to call this function //    so that the application will get 'well formed' small icons associated //    with it. // ATOM MyRegisterClass(HINSTANCE hInstance) { WNDCLASSEX wcex; wcex.cbSize = sizeof(WNDCLASSEX);  wcex.style = CS_HREDRAW | CS_VREDRAW; wcex.lpfnWndProc = (WNDPROC)WndProc; wcex.cbClsExtra = 0; wcex.cbWndExtra = 0; wcex.hInstance = hInstance; wcex.hIcon = LoadIcon(hInstance, (LPCTSTR)IDI_MY); wcex.hCursor = LoadCursor(NULL, IDC_ARROW); wcex.hbrBackground = (HBRUSH)(COLOR_WINDOW+1); wcex.lpszMenuName = (LPCSTR)IDC_MY; wcex.lpszClassName = szWindowClass; wcex.hIconSm = LoadIcon(wcex.hInstance, (LPCTSTR)IDI_SMALL); return RegisterClassEx(&wcex); } // //   FUNCTION: InitInstance(HANDLE, int) // //   PURPOSE: Saves instance handle and creates main window // //   COMMENTS: // //        In this function, we save the instance handle in a global variable and //        create and display the main program window. // BOOL InitInstance(HINSTANCE hInstance, int nCmdShow) {    HWND hWnd;    hInst = hInstance; // Store instance handle in our global variable    hWnd = CreateWindow(szWindowClass, szTitle, WS_OVERLAPPEDWINDOW,       CW_USEDEFAULT, 0, CW_USEDEFAULT, 0, NULL, NULL, hInstance, NULL);    if (!hWnd)    {       return FALSE;    }    ShowWindow(hWnd, nCmdShow);    UpdateWindow(hWnd);    return TRUE; } // //  FUNCTION: WndProc(HWND, unsigned, WORD, LONG) // //  PURPOSE:  Processes messages for the main window. // //  WM_COMMAND - process the application menu //  WM_PAINT - Paint the main window //  WM_DESTROY - post a quit message and return // // LRESULT CALLBACK WndProc(HWND hWnd, UINT message, WPARAM wParam, LPARAM lParam) { int wmId, wmEvent; PAINTSTRUCT ps; HDC hdc; TCHAR szHello[MAX_LOADSTRING]; LoadString(hInst, IDS_HELLO, szHello, MAX_LOADSTRING); switch (message)  { case WM_COMMAND: wmId    = LOWORD(wParam);  wmEvent = HIWORD(wParam);  // Parse the menu selections: switch (wmId) { case IDM_ABOUT:   DialogBox(hInst, (LPCTSTR)IDD_ABOUTBOX, hWnd, (DLGPROC)About);   break; case IDM_EXIT:   DestroyWindow(hWnd);   break; default:   return DefWindowProc(hWnd, message, wParam, lParam); } break; case WM_PAINT: hdc = BeginPaint(hWnd, &ps); // TODO: Add any drawing code here... RECT rt; GetClientRect(hWnd, &rt); DrawText(hdc, szHello, strlen(szHello), &rt, DT_CENTER); EndPaint(hWnd, &ps); break; case WM_DESTROY: PostQuitMessage(0); break; default: return DefWindowProc(hWnd, message, wParam, lParam);    }    return 0; } // Mesage handler for about box. LRESULT CALLBACK About(HWND hDlg, UINT message, WPARAM wParam, LPARAM lParam) { switch (message) { case WM_INITDIALOG: return TRUE; case WM_COMMAND: if (LOWORD(wParam) == IDOK || LOWORD(wParam) == IDCANCEL)  { EndDialog(hDlg, LOWORD(wParam)); return TRUE; } break; }     return FALSE; }

    标签: 计算器 学生

    上传时间: 2016-12-29

    上传用户:767483511