Study on wave rotor refrigerators
Yuqiang DAI, Dapeng HU, Meixia DING
Study on wave rotor refrigerators
As a novel generation of a rotational gas wave machine, the wave rotor refrigerator (WRR) is an unsteady flow device used for refrigeration, in whose passages pressured streams directly contact and exchange energy due to the movement of pressure waves. In this paper, the working mechanism and refrigeration principle are investigated based on the one-dimensional unsteady flow theory. A basic limitation on main structural parameters and operating parameters is deduced and the wave diagram of WRR to guide designing is sketched. The main influential factors are studied through an experiment. In the DUT Gas Wave Refrigeration Studying and Development Center (GWRSDC) lab, the isentropic efficiency can now reach about 65%. The results show that the WRR is a feasible and promising technology in pressured gas refrigeration cases.
wave rotor / refrigeration / unsteady flow theory / wave diagram
[1] |
Marius H, Florin I, Norbert M. Wave Rotors Technology and Applications. The 11th International Conference on Vibration Engineering Timisoara, Romania, Sep. 27, 2005
|
[2] |
Pezhman A, Amir A K, Norbert M. Utilizing wave rotor technology to enhance the turbo compression in power and refrigeration cycles. IMECE2003–44222
|
[3] |
Dai Y Q. The research on performance of pressure exchanging refrigerator. Dissertation for master degree. Dalian: Dalian university of technology, 2003
|
[4] |
Gerard E W, Rodrick V C. Two-dimensional CFD modeling of wave rotor flow dynamics. AIAA, 1993, 3318–370
|
[5] |
Jack W, Gerard E W, Daniel E P. Experimental results of performance tests on a four-port wave rotor. AIAA2007–1250
|
[6] |
Daniel E P, Jack W, Gerard E W. Comparison between simulated and experimentally measured performance of a four-port wave rotor. AIAA2007–5049
|
[7] |
Matsutomi Y, Hein C, Lian C Z, etc. Facility development for testing of wave rotor combustion rig. AIAA2007–5052
|
[8] |
Akbari P, Szpynda E. Recent developments in wave rotor combustion technology and future perspectives: a progress review. AIAA2007–5055
|
[9] |
Chima R V, Liou M S. Comparison of the AUSM+ and H-CUSP schemes for turbomachinery applications. <patent>NASA TM-2003-212457</patent>, 2003
|
[10] |
Liou M S. A sequel to AUSM: AUSM+. Journal of Computational Physics, 129, 1996: 364–382
CrossRef
Google scholar
|
/
〈 | 〉 |