Detail publikace
Economical helium bath cryopump: design and testing
Musilová Věra, Dupák Jan, Hanzelka Pavel, Králík Tomáš, Urban Pavel
Český název
Economical helium bath cryopump: design and testing
Anglický název
Economical helium bath cryopump: design and testing
Typ
článek v časopise - ostatní, Jost
Jazyk
en
Originální abstrakt
A small UHV helium bath cryopump with low cryoliquid consumption has been designed, manufactured and tested. The cryopump is designed to keep UHV in electron optical devices without generation of disturbing electromagnetic fields or vibrations. The outer volume of its shell is 15 l, the filling volumes of liquid helium (LHe) and liquid nitrogen (LN2) are 3.0 l and 3.4 l, respectively. Operating times between cryoliquid fillings are 35 days for LHe and 6 days for LN2. A pump speed of 25 l/s was measured for the He gas. A lowest pressure of 1.5,10,7 Pa was achieved in a test chamber and the pumping tests indicated that an even lower pressure would be achieved in a well-degassed chamber. Good agreement between the calculated and measured values both of the pump speed and the cryoliquid evaporation has been found. The system of chevron-type baffles was designed and checked by Monte Carlo simulations of molecular flow and radiative heat transfer. The pump prototype was successfully used to evacuate an operating cryostat of a NMR spectrometer.
Český abstrakt
A small UHV helium bath cryopump with low cryoliquid consumption has been designed, manufactured and tested. The cryopump is designed to keep UHV in electron optical devices without generation of disturbing electromagnetic fields or vibrations. The outer volume of its shell is 15 l, the filling volumes of liquid helium (LHe) and liquid nitrogen (LN2) are 3.0 l and 3.4 l, respectively. Operating times between cryoliquid fillings are 35 days for LHe and 6 days for LN2. A pump speed of 25 l/s was measured for the He gas. A lowest pressure of 1.5,10,7 Pa was achieved in a test chamber and the pumping tests indicated that an even lower pressure would be achieved in a well-degassed chamber. Good agreement between the calculated and measured values both of the pump speed and the cryoliquid evaporation has been found. The system of chevron-type baffles was designed and checked by Monte Carlo simulations of molecular flow and radiative heat transfer. The pump prototype was successfully used to evacuate an operating cryostat of a NMR spectrometer.
Anglický abstrakt
A small UHV helium bath cryopump with low cryoliquid consumption has been designed, manufactured and tested. The cryopump is designed to keep UHV in electron optical devices without generation of disturbing electromagnetic fields or vibrations. The outer volume of its shell is 15 l, the filling volumes of liquid helium (LHe) and liquid nitrogen (LN2) are 3.0 l and 3.4 l, respectively. Operating times between cryoliquid fillings are 35 days for LHe and 6 days for LN2. A pump speed of 25 l/s was measured for the He gas. A lowest pressure of 1.5,10,7 Pa was achieved in a test chamber and the pumping tests indicated that an even lower pressure would be achieved in a well-degassed chamber. Good agreement between the calculated and measured values both of the pump speed and the cryoliquid evaporation has been found. The system of chevron-type baffles was designed and checked by Monte Carlo simulations of molecular flow and radiative heat transfer. The pump prototype was successfully used to evacuate an operating cryostat of a NMR spectrometer.
Klíčová slova anglicky
Cryopump; Molecular flow; Radiative heat transfer; Cryogenic optimisation; Monte Carlo particle tracing
Vydáno
03.05.2004
ISSN
0042-207X
Časopis
Vacuum
Ročník
2004
Číslo
74
Počet stran
7
BIBTEX
@article{BUT42434,
author="Pavel {Urban},
title="Economical helium bath cryopump: design and testing",
journal="Vacuum",
year="2004",
volume="2004",
number="74",
month="May",
issn="0042-207X"
}