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Investigation on the electromagnetic centring technique in compressor with labyrinth seal structure

  • W. Zhang
  • , C. Feng
  • , J. Cheng
  • , Q. Feng
  • , W. Wu
  • Xi'an Jiaotong University

Research output: Contribution to journalConference articlepeer-review

1 Scopus citations

Abstract

At present, the piston of compressors with labyrinth seal structure generally runs eccentrically, which causes uneven radial clearance, serious leakages and lower volumetric efficiency. This has become an urgent problem in the development of labyrinth compressors. In this study, electromagnetic levitation technology was introduced to achieve concentric centering between the piston and cylinder, and the conventional cantilever structure for the piston centering was replaced by a simple support structure using the through-piston rod. Furthermore, the simulation model of the electromagnetic centering system was established and the experimental prototype was built. The mathematical simulation model was verified by comparing simulated and tested results. Then, the centering effect of the system was assessed and the variation of the leakage in the compressor was studied by models using dynamic mesh technology. The results showed that the radial clearance between piston and cylinder can be maintained in the range of -0.3 mm to 0.3 mm through the electromagnetic centering control. In addition, the inner leakage of the compressor was quite appreciable without the electromagnetic control. However, it was reduced by 1.8 times with the introduction of the electromagnetic control. Thus, it can be concluded that the precise centering between the piston and the cylinder can be achieved by the introduction of the electromagnetic centering technique.

Original languageEnglish
Article number012072
JournalIOP Conference Series: Materials Science and Engineering
Volume232
Issue number1
DOIs
StatePublished - 6 Sep 2017
Event10th International Conference on Compressors and Their Systems - London, United Kingdom
Duration: 11 Sep 201713 Sep 2017

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