DocumentCode :
1556705
Title :
ATCA-Based Hardware for Control and Data Acquisition on Nuclear Fusion Fast Control Plant Systems
Author :
Correia, Miguel ; Sousa, Jorge ; Rodrigues, António P. ; Batista, António J N ; Gonçalves, Bruno ; Varandas, Carlos A F ; Correia, Carlos M B A
Author_Institution :
Lab. Associado, Univ. Tec. de Lisboa, Lisbon, Portugal
Volume :
58
Issue :
4
fYear :
2011
Firstpage :
1701
Lastpage :
1705
Abstract :
In contemporary control and data acquisition systems for Nuclear Fusion devices, the galloping need for high channel density and real-time multi-input-multi-output (MIMO) controller support gave rise to a new generation of hardware architecture based on the Advanced Telecommunications Computing Architecture (ATCA) specification. In addition, ATCA successfully delivered solutions in other sensitive issues like redundancy, power dissipation and available area for components and routing. Experience has shown, however, that such hardware devices can require a lengthy development. The ATCA specification allows for custom solutions in areas of the interfaces which can be used to define extensions of the standard for instrumentation needs. The"\´xTCA for Physics" workgroups are currently developing ATCA and MicroTCA extensions for Physics instrumentation applications. These ex tensions will define interfaces in customizable areas which will support functionalities required by the instrumentation and facilitate hardware development and its posterior operation in a Fusion control plant environment-most notably, dedicated timing and input-output (IO) port assignment on the Rear Transition Module (RTM). The prototype hereby presented is a Peripheral Component Interface (PCIe) switch Advanced Mezzanine Card (AMC) carrier blade. The device serves as a hub, as to control and handle I/O data from its parent nodes existing within the same ATCA shelf through its fabric channels in dual-star topology. Parent node blades, under development, are equally linked through ATCA\´s agnostic fabric in full-mesh topology, as to attain system MIMO functionality from all I/O endpoints. The switch blade carries up to four AMC modules, adding up to modularity and versatility. This allows for a much more independent and speedier hardware development, as dedicated AMC modules, such as data processing and storage devices, can be simultaneously developed. Commercial off-the-shelf (COTS) AMC products a- - re readily available and may also be immediately integrated in the system.
Keywords :
MIMO systems; computerised instrumentation; data acquisition; fusion reactor design; fusion reactor instrumentation; peripheral interfaces; AMC modules; ATCA extension; ATCA specification; ATCA-based hardware; I/O endpoints; MIMO functionality; advanced mezzanine card carrier blade; commercial off-the-shelf AMC products; control system; custom solutions; data acquisition system; data processing; dual-star topology; fabric channels; fusion control plant environment; hardware architecture; hardware development; hardware devices; high channel IEEE density; input-output port assignment; microTCA extension; nuclear fusion devices; nuclear fusion fast control plant systems; peripheral component interface switch; power dissipation; real-time multiinput-multioutput controller; rear transition module; storage devices; Blades; Fabrics; Field programmable gate arrays; Hardware; Switches; Synchronization; Advanced Telecommunications Computing Architecture (ATCA); fast control plant systems;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2011.2158111
Filename :
5887362
Link To Document :
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