Investigation on thermal behaviours of a methane charged cryogenic loop heat pipe
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DOI: 10.1016/j.energy.2018.05.133
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- Jouhara, H. & Chauhan, A. & Nannou, T. & Almahmoud, S. & Delpech, B. & Wrobel, L.C., 2017. "Heat pipe based systems - Advances and applications," Energy, Elsevier, vol. 128(C), pages 729-754.
- Chernysheva, M.A. & Yushakova, S.I. & Maydanik, Yu.F., 2014. "Copper–water loop heat pipes for energy-efficient cooling systems of supercomputers," Energy, Elsevier, vol. 69(C), pages 534-542.
- Victar V. Maziuk & Viachaslau V. Doctarau & Anatoliy A. Rak, 2006. "Miniature loop heat pipes with noninverted meniscus concept and treatment," International Journal of Low-Carbon Technologies, Oxford University Press, vol. 1(3), pages 228-235, July.
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Keywords
Methane; Loop heat pipe; Cryogenic; Supercritical startup; Temperature hysteresis;All these keywords.
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