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BiBTeX citation export for TUPCAV010: Application of the ASME Boiler and Pressure Vessel Code in the Design of SRF Cavities at Fermilab

@inproceedings{narug:srf2021-tupcav010,
  author       = {C.S. Narug and M. Parise and D. Passarelli},
  title        = {{Application of the ASME Boiler and Pressure Vessel Code in the Design of SRF Cavities at Fermilab}},
  booktitle    = {Proc. SRF'21},
% booktitle    = {Proc. 20th International Conference on RF Superconductivity (SRF'21)},
  pages        = {460--464},
  eid          = {TUPCAV010},
  language     = {english},
  keywords     = {cavity, SRF, GUI, niobium, factory},
  venue        = {East Lansing, MI, USA},
  series       = {International Conference on RF Superconductivity},
  number       = {20},
  publisher    = {JACoW Publishing, Geneva, Switzerland},
  month        = {10},
  year         = {2022},
  issn         = {2673-5504},
  isbn         = {978-3-95450-233-2},
  doi          = {10.18429/JACoW-SRF2021-TUPCAV010},
  url          = {https://jacow.org/srf2021/papers/tupcav010.pdf},
  abstract     = {{Jacketed Superconducting Radio Frequency (SRF) cavities structurally comprise of an inner niobium vessel surrounded by a liquid helium containment vessels. The pressure of the helium bath and/or its volume might be such that a jacketed SRF cavity shall be considered a system of pressure vessels. Thus, methods described in the American Society of Mechanical Engineers (ASME) Boiler and Pressure Vessel Code (BPVC) should be used to analyze the structural soundness of jacketed SRF cavities. This paper will report the use of the set of rules developed at Fermilab for the design of SRF cavities, such as jacketed 1.3 GHz cavities for LCLS-II HE and jacketed Single Spoke Resonator type~2 (SSR2) for PIP-II, to ensure a similar level of safety as prescribed by the ASME BPVC.}},
}