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MICADO instrument control approach in context of ESO ELT standards.

机译:在ESO ELT标准范围内的MICADO仪器控制方法。

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MICADO will equip the ELT with a first light capability for diffraction limited imaging at near-infrared wavelengths. The instrument's observing modes focus on various flavours of imaging, including astrometric, high contrast, and time resolved. There is also a single object spectroscopic mode optimised for wavelength coverage at moderately high resolution. Due to ESO's technology standards evolution from VLT to ELT, MICADO will manifest the combined, PLC based soft- and hardware control. The evolution of ESO's technology design guidelines is on the one hand triggered by the ongoing developments in modern days industry and consumer technology. On the other hand, ELT's sheer dimensions request increasingly complex and smart solutions onwards controlling and monitoring such huge instruments. ESO's control concept is based on a two layer approach: PLCs are responsible for low-level hardware control (in a real-time fashion, if necessary), while software running on a Linux workstation implements the astronomic business logic of the control system. Development is eased by the fact that ESO delivers libraries for the control of many standard hardware components. A very interesting feature of this approach is the possibility to run C++ code natively inside a PLC real-time environment. This will be used for the control of complex mechanisms like the MICADO Atmoshperic Dispersion Corrector (ADC). This contribution provides an overview of the key functionality of the instrument focusing on the mechanisms inside the cryostat, and an overview of the cryogenic control. Because of hardware and cryogenic safety reasons, the cryostat control PLC system will be designed as a closed PLC based control system. Hence commands will only be accepted from a human machine interface located next to the cryostat itself. All cryostat parameters and according sensor readings will be published via OpcUA, allowing for full remote cryostat monitoring. In contrast, the instrument control PLC system will interact with the higher level software using the advantages of the industrial OpcUA communication standard and will therefore allow for remote control. Further configuration and commissioning of those mechanisms is made conveniently accessible via this approach. All this is based on ESO's concept for Line replaceable Units (LRU), which utilizes Beckhoff PLC units to ensure maintainability, availability.
机译:MICADO将为ELT配备第一光功能,以用于近红外波长的衍射受限成像。仪器的观察模式着重于各种成像方式,包括天文测量,高对比度和时间分辨。还有一个单对象光谱模式,针对中等分辨率下的波长覆盖进行了优化。由于ESO的技术标准已从VLT演变为ELT,因此MICADO将体现基于PLC的组合软硬件控制。 ESO技术设计指南的发展一方面是由现代工业和消费者技术的不断发展引发的。另一方面,ELT的庞大规模要求越来越复杂和智能的解决方案来控制和监视此类大型仪器。 ESO的控制概念基于两层方法:PLC负责底层硬件控制(必要时以实时方式),而Linux工作站上运行的软件则实现了控制系统的天文业务逻辑。 ESO提供了用于控制许多标准硬件组件的库,从而简化了开发。这种方法的一个非常有趣的功能是可以在PLC实时环境中本地运行C ++代码。这将用于控制复杂的机制,例如MICADO大气压色散校正器(ADC)。该贡献概述了仪器的主要功能,重点放在低温恒温器内部的机制上,并提供了低温控制的概述。由于硬件和低温安全性的原因,低温恒温器控制PLC系统将被设计为基于封闭PLC的控制系统。因此,只能从位于低温恒温器本身旁边的人机界面接受命令。所有低温恒温器参数和相应的传感器读数都将通过OpcUA发布,从而实现全面的远程低温恒温器监控。相反,仪器控制PLC系统将利用工业OpcUA通信标准的优势与更高级别的软件进行交互,因此可以进行远程控制。通过这种方法,可以方便地访问这些机制的进一步配置和调试。所有这些都是基于ESO的线路可更换单元(LRU)的概念,该概念利用Beckhoff PLC单元来确保可维护性和可用性。

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