Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7915911 | Cryogenics | 2016 | 11 Pages |
Abstract
This paper presents the CFD modeling and experimental verifications of a single-stage inertance tube coaxial Stirling-type pulse tube cryocooler operating at 30-35Â K using mixed stainless steel mesh regenerator matrices without either double-inlet or multi-bypass. A two-dimensional axis-symmetric CFD model with the thermal non-equilibrium mode is developed to simulate the internal process, and the underlying mechanism of significantly reducing the regenerator losses with mixed matrices is discussed in detail based on the given six cases. The modeling also indicates that the combination of the given different mesh segments can be optimized to achieve the highest cooling efficiency or the largest exergy ratio, and then the verification experiments are conducted in which the satisfactory agreements between simulated and tested results are observed. The experiments achieve a no-load temperature of 27.2Â K and the cooling power of 0.78Â W at 35Â K, or 0.29Â W at 30Â K, with an input electric power of 220Â W and a reject temperature of 300Â K.
Related Topics
Physical Sciences and Engineering
Materials Science
Electronic, Optical and Magnetic Materials
Authors
Haizheng Dang, Yibo Zhao,