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Production quality controls and geometric characterization of the IFMIF-RFQ modules via the usage of a Coordinate Measuring Machine

机译:通过使用坐标测量机对IFMIF-RFQ模块进行生产质量控制和几何表征

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The RFQ of the IFMIF/EVEDA project (Perez et al., 2015) [1] is a 9.8 m long cavity able to accelerate a 125 mA deuteron beam from the input energy of 50 keV/u to the output energy of 2.5 MeV/u. Such RFQ operates at the frequency of 175 MHz and is composed of 18 mechanical modules approximately 0.55 long each (Pepato et al., 2010)[2]. The RFQ realization involves the I.N.F.N. Sections of Padova, Torino and Bologna, as well as the Legnaro National Laboratories (L.N.L.). The metrological measurements via CMM (Coordinate Measuring Machine) provided to be a very effective tool both for quality controls along the RFQ production phases and in the reconstruction of the cavity geometric profile for each RFQ module. The scans in the most sensitive regions with respect to RF frequency, such as modulation, tips, base vane width and Vessel height provided the values of the cavity deviations from nominal geometry to be compared with design physic-driven tolerances and with RF measurements. Moreover, the comparison between mechanical and RF measurements suggests a methodology for the geometric reconstruction of the cavity axis and determines the final machining of the end surfaces of each module in view of the coupling with the adjacent ones. In this paper a detailed description of the metrological procedures and tests and of the RFQ along its production and assembly phases will be given and it will be shown that the adopted procedure allowed the attainment of the tuning range specifications for each RFQ module. (C) 2016 Elsevier B.V. All rights reserved.
机译:IFMIF / EVEDA项目的RFQ(Perez等人,2015)[1]是一个9.8 m长的腔,能够将125 mA氘核束从50 keV / u的输入能量加速到2.5 MeV /的输出能量。你此类RFQ以175 MHz的频率运行,由18个机械模块组成,每个模块的长度约为0.55(Pepato等人,2010)[2]。 RFQ实现涉及I.N.F.N.帕多瓦,都灵和博洛尼亚的部分地区以及莱格纳罗国家实验室(L.N.L.)。通过CMM(坐标测量机)进行的度量衡测量是非常有效的工具,不仅可以用于RFQ生产阶段的质量控制,而且可以重构每个RFQ模块的型腔几何轮廓。相对于RF频率的最敏感区域的扫描(例如调制,叶尖,基本叶片宽度和容器高度)提供了与标称几何形状的腔偏差值,可以与设计物理驱动的公差和RF测量值进行比较。此外,机械和RF测量之间的比较提出了一种用于腔体轴线几何重构的方法,并考虑到与相邻模块的耦合,确定了每个模块端面的最终加工方式。在本文中,将对计量程序和测试以及RFQ在其生产和组装阶段的详细说明,并表明所采用的程序可实现每个RFQ模块的调谐范围规格。 (C)2016 Elsevier B.V.保留所有权利。

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