Antony Joby, Mathuria D S, Datta T S, Maity Tanmoy
Inter University Accelerator Centre, Aruna Asaf Ali Marg, New Delhi 110067, India.
Department of MME, Indian School of Mines (ISM), Dhanbad 826004, India.
Rev Sci Instrum. 2015 Dec;86(12):125003. doi: 10.1063/1.4937617.
The power of Ethernet for control and automation technology is being largely understood by the automation industry in recent times. Ethernet with HTTP (Hypertext Transfer Protocol) is one of the most widely accepted communication standards today. Ethernet is best known for being able to control through internet from anywhere in the globe. The Ethernet interface with built-in on-chip embedded servers ensures global connections for crate-less model of control and data acquisition systems which have several advantages over traditional crate-based control architectures for slow applications. This architecture will completely eliminate the use of any extra PLC (Programmable Logic Controller) or similar control hardware in any automation network as the control functions are firmware coded inside intelligent meters itself. Here, we describe the indigenously built project of a cryogenic control system built for linear accelerator at Inter University Accelerator Centre, known as "CADS," which stands for "Complete Automation of Distribution System." CADS deals with complete hardware, firmware, and software implementation of the automated linac cryogenic distribution system using many Ethernet based embedded cryogenic instruments developed in-house. Each instrument works as an intelligent meter called device-server which has the control functions and control loops built inside the firmware itself. Dedicated meters with built-in servers were designed out of ARM (Acorn RISC (Reduced Instruction Set Computer) Machine) and ATMEL processors and COTS (Commercially Off-the-Shelf) SMD (Surface Mount Devices) components, with analog sensor front-end and a digital back-end web server implementing remote procedure call over HTTP for digital control and readout functions. At present, 24 instruments which run 58 embedded servers inside, each specific to a particular type of sensor-actuator combination for closed loop operations, are now deployed and distributed across control LAN (Local Area Network). A group of six categories of such instruments have been identified for all cryogenic applications required for linac operation which were designed to build this medium-scale cryogenic automation setup. These devices have special features like remote rebooters, daughter boards for PIDs (Proportional Integral Derivative), etc., to operate them remotely in radiation areas and also have emergency switches by which each device can be taken to emergency mode temporarily. Finally, all the data are monitored, logged, controlled, and analyzed online at a central control room which has a user-friendly control interface developed using LabVIEW(®). This paper discusses the overall hardware, firmware, software design, and implementation for the cryogenics setup.
近年来,自动化行业已充分认识到以太网在控制与自动化技术方面的强大力量。带有超文本传输协议(HTTP)的以太网是当今最广泛接受的通信标准之一。以太网最为人所知的是能够在全球任何地方通过互联网进行控制。内置片上嵌入式服务器的以太网接口确保了无机箱控制和数据采集系统的全球连接,对于慢速应用而言,该系统相较于传统的基于机箱的控制架构具有诸多优势。这种架构将完全消除在任何自动化网络中使用任何额外的可编程逻辑控制器(PLC)或类似控制硬件,因为控制功能已在智能仪表内部进行固件编码。在此,我们描述了为大学间加速器中心的直线加速器构建的低温控制系统的国产化项目,该系统名为“CADS”,即“配电系统完全自动化”。CADS涉及使用许多自主研发的基于以太网的嵌入式低温仪器,对直线加速器低温配电系统进行完整的硬件、固件和软件实现。每个仪器都作为一个名为设备服务器的智能仪表工作,其控制功能和控制回路内置于固件本身。内置服务器的专用仪表由ARM(Acorn精简指令集计算机)和ATMEL处理器以及商用现货(COTS)表面贴装器件(SMD)组件设计而成,具有模拟传感器前端和数字后端网络服务器,通过HTTP实现远程过程调用,以执行数字控制和读出功能。目前,24台仪器内部运行着58个嵌入式服务器,每个服务器针对特定类型的传感器 - 执行器组合用于闭环操作,现已部署并分布在控制局域网(LAN)中。针对直线加速器运行所需的所有低温应用,已确定了六类这样的仪器,用于构建这个中等规模的低温自动化装置。这些设备具有诸如远程重启器、用于比例积分微分(PID)的子板等特殊功能,以便在辐射区域远程操作它们,并且还具有紧急开关,通过该开关每个设备可暂时进入紧急模式。最后,所有数据都在中央控制室进行在线监测、记录、控制和分析,中央控制室具有使用LabVIEW(®)开发的用户友好型控制界面。本文讨论了低温装置的整体硬件、固件、软件设计及实现。