DocumentCode :
83619
Title :
Thermodynamic Analysis of End-Pumped Fiber Lasers Subjected to Surface Cooling
Author :
Assad, M.E.H. ; Brown, David C.
Author_Institution :
Dept. of Energy Technol., Aalto Univ., Aalto, Finland
Volume :
49
Issue :
1
fYear :
2013
fDate :
Jan. 2013
Firstpage :
100
Lastpage :
107
Abstract :
In this paper, the temperature distribution is derived analytically within a fiber laser end pumped by a top-hat beam subjected to an external convection at the cladding surface. The temperature distribution is obtained through considering the radial heat conduction and neglecting the axial heat conduction due to large aspect ratio. An expression for the volumetric entropy generation rate within the fiber laser is also derived, which is directly proportional to the temperature gradients and inversely proportional to the temperature. Based on the temperature distribution, the maximum pump power is obtained just before the thermal damage. The temperature distribution is compared with 2-D temperature distribution and the results are in good agreement. The effect of laser absorption coefficient and Biot number on the temperature and volumetric entropy generation rate are presented graphically. The results show that volumetric entropy generation rate decreases as the Biot number decreases because of lower temperature gradients at the cladding surface. The volumetric rate is always maximum at the fiber core and cladding interface. The results are presented in dimensionless form, so that they can be applied to any end-pumped laser rod, crystalline or glassy.
Keywords :
cooling; entropy; fibre lasers; heat conduction; laser beam effects; optical pumping; temperature distribution; thermodynamics; 2D temperature distribution; Biot number; cladding surface; end pumped fiber laser; end pumped laser rod; laser absorption coefficient; radial heat conduction; surface cooling; thermal damage; thermodynamic analysis; top-hat beam; volumetric entropy generation; Entropy; Fiber lasers; Heating; Laser excitation; Pump lasers; Temperature distribution; Thermal conductivity; Entropy generation; fiber laser; pump power; thermal distribution;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2012.2231665
Filename :
6374199
Link To Document :
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