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BiBTeX citation export for TUPOMS022: Cooling Challenges in a NEG-Coated Vacuum Chamber of a Light Source

@inproceedings{talebimotlagh:ipac2022-tupoms022,
  author       = {S. Talebi Motlagh and A. Danaeifard and J. Rahighi and F. Saeidi and F. Zamani},
  title        = {{Cooling Challenges in a NEG-Coated Vacuum Chamber of a Light Source}},
  booktitle    = {Proc. IPAC'22},
% booktitle    = {Proc. 13th International Particle Accelerator Conference (IPAC'22)},
  pages        = {1456--1458},
  eid          = {TUPOMS022},
  language     = {english},
  keywords     = {vacuum, simulation, radiation, software, synchrotron},
  venue        = {Bangkok, Thailand},
  series       = {International Particle Accelerator Conference},
  number       = {13},
  publisher    = {JACoW Publishing, Geneva, Switzerland},
  month        = {07},
  year         = {2022},
  issn         = {2673-5490},
  isbn         = {978-3-95450-227-1},
  doi          = {10.18429/JACoW-IPAC2022-TUPOMS022},
  url          = {https://jacow.org/ipac2022/papers/tupoms022.pdf},
  abstract     = {{In a light Source, unused synchrotron radiation is being distributed along the walls of the chambers. Due to the small conductance of the chambers, vacuum pumping is based on the distributed concept, and then non-evaporable getter (NEG) coating is extensively used. The vacuum chambers are made of copper alloys tube, and cooling circuits are welded to the chamber to remove the heat load from the radiation generated. Filler metal is used to create a brazed joint between the water cooling pipe and the vacuum chamber body. The thermal conductivity of the fillers is less than the vacuum chamber body. Moreover, the water velocity in the cooling pipe must be taken into account in thermal calculations. In this paper, we study and investigate the effects of the filler metal and the cooling water velocity in cooling the chambers.}},
}