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T-s

  • 采用TÜV认证的FPGA开发功能安全系统

    This white paper discusses how market trends, the need for increased productivity, and new legislation have accelerated the use of safety systems in industrial machinery. This TÜV-qualified FPGA design methodology is changing the paradigms of safety designs and will greatly reduce development effort, system complexity, and time to market. This allows FPGA users to design their own customized safety controllers and provides a significant competitive advantage over traditional microcontroller or ASIC-based designs. Introduction The basic motivation of deploying functional safety systems is to ensure safe operation as well as safe behavior in cases of failure. Examples of functional safety systems include train brakes, proximity sensors for hazardous areas around machines such as fast-moving robots, and distributed control systems in process automation equipment such as those used in petrochemical plants. The International Electrotechnical Commission’s standard, IEC 61508: “Functional safety of electrical/electronic/programmable electronic safety-related systems,” is understood as the standard for designing safety systems for electrical, electronic, and programmable electronic (E/E/PE) equipment. This standard was developed in the mid-1980s and has been revised several times to cover the technical advances in various industries. In addition, derivative standards have been developed for specific markets and applications that prescribe the particular requirements on functional safety systems in these industry applications. Example applications include process automation (IEC 61511), machine automation (IEC 62061), transportation (railway EN 50128), medical (IEC 62304), automotive (ISO 26262), power generation, distribution, and transportation. 图Figure 1. Local Safety System

    标签: FPGA 安全系统

    上传时间: 2013-11-14

    上传用户:zoudejile

  • 三菱FX-PLC的通讯协议参考(含有源码)

    三菱FX-PLC 的通讯协议参考(含有源码):三菱FX 系列PLC 专用协议通信指令一览FX 系列PLC 专用协议通信指令一览以下将详细列出PLC 专用协议通信的指令指令 注释BR 以1 点为单位,读出位元件的状态WR 以16 点为单位,读出位元件的状态,或以1 字为单位读出字元件的值BW 以1 点为单位,写入位元件的状态WW 以16 点为单位,写入位元件的状态或以1 字为单位写入值到字元件BT 以1 点为单位,SET/RESET 位元件WT 以16 点为单位,SET/RESET 位元件,或写入值到字元件RR 控制PLC 运行RUNRS 控制PLC 停止STOPPC 读出PLC 设备类型TT 连接测试注:位元件包括X,Y,M,S 以及T,C 的线圈等字元件包括D,T,C,KnX,KnY,KnM 等。

    标签: FX-PLC 三菱 通讯协议 有源

    上传时间: 2015-01-02

    上传用户:gdgzhym

  • 5位数微电脑型盘面式电表(小功率的)(24*48mm)

    特点: 精确度0.05%满刻度±1位數 可量测交直流电流/交直流电压/电位计/Pt-100/热电偶/荷重元/电阻等信号 热电偶SENSOR输入种类J/K/T/E/R/S/B可任意规划 显示范围-19999-99999可任意规划 小数点可任意规划 尺寸小,稳定性高 CE认证

    标签: 24 48 mm 微电脑

    上传时间: 2013-10-31

    上传用户:wsq921779565

  • 基于T-F变换的多点流体温度测量系统

    针对一般测温方法在进行流体多点温度测量时存在系统复杂,准确度和速度难以兼顾的问题,提出了一种基于温度-频率(T-F)变换的测量系统。该系统使用PIC18F6722单片机控制MOS管开关阵列,使多个测点的热敏电阻分别与TLC555构成振荡电路,将测点的温度变化转化为振荡频率的变化,使用8253计数芯片对TLC555的输出信号进行测量并产生中断,单片机读取8253计数值反演为测点温度。实验表明,测点数目增多不会增加测量系统的复杂程度,通过设置8253的计数初值,可以在不改变硬件的情况下灵活选择测量的准确度和速度,满足了流体多点精确快速测温的需求。同时该系统具备简洁实用,成本低的优点。

    标签: T-F 变换 多点 流体

    上传时间: 2013-10-23

    上传用户:assef

  • 16kb/s Low Delay CELP 算法

    16kb/s Low Delay CELP 算法

    标签: Delay CELP Low 16

    上传时间: 2015-01-03

    上传用户:huangld

  • 支持SSL v2/v3, TLS, PKCS #5, PKCS #7, PKCS #11, PKCS #12, S/MIME, X.509v3证书等安全协议或标准的开发库编译用到NSPR

    支持SSL v2/v3, TLS, PKCS #5, PKCS #7, PKCS #11, PKCS #12, S/MIME, X.509v3证书等安全协议或标准的开发库编译用到NSPR

    标签: PKCS MIME NSPR SSL

    上传时间: 2014-01-27

    上传用户:sammi

  • s

    s

    标签:

    上传时间: 2013-12-20

    上传用户:sdq_123

  • 功能强大的一个b/s工作站

    功能强大的一个b/s工作站

    标签: 工作站

    上传时间: 2014-11-26

    上传用户:hebmuljb

  • d Ream s Red 开发的文本编缉器

    d Ream s Red 开发的文本编缉器

    标签: Ream Red

    上传时间: 2013-12-18

    上传用户:CSUSheep

  • C/S模式的局域网计时程序

    C/S模式的局域网计时程序

    标签: 模式 局域网 计时 程序

    上传时间: 2013-12-23

    上传用户:xjz632