DocumentCode
3328257
Title
Modeling of mercury-free HID lamps: Kinetics and thermodynamcs
Author
Babaeva, N.Yu. ; Kushner, M.J. ; Sato, A. ; Brates, N. ; Noro, K.
Author_Institution
Electr. Eng. & Comput. Sci. Dept., Univ. of Michigan, Ann Arbor, MI, USA
fYear
2010
fDate
20-24 June 2010
Firstpage
1
Lastpage
1
Abstract
Summary form only given. In mercury-free high-intensity-discharge (HID) lamps, mercury is often replaced by ZnI2. This substitution, along with the use of conventional metal halides such as NaI and ScI3 add both complexity and potential variability to the system. For example, has been experimentally determined that the lamp operating voltage is dependent or can be controlled by varying the amount of Znl2. This in turn has implications on the design of lamp components. The composition of the plasma, and electrical and thermal properties of the lamp are strongly influenced by the dosage of Znl2.In this talk we report on the results from a computational investigation of the plasma properties of HID lamps having different metal halide fillings. The lamp resembles a D4 having initial mixtures containing Xe, Scl3, Znl2 and Nal. The model used in this work, nonPDPSIM, is a plasma hydrodynamics model in which continuity, momentum and energy equations are solved for charged species with solution of Poisson´s equation. The model is coupled with a thermodynamics module providing local thermodynamic equilibrium (LTE) properties. Algorithms were developed to represent the transition of the lamp from a kinetics-Poisson regime during breakdown to an LTE-ambipolar regime as the arc begins to form. During the LTE phase, the plasma composition is given either by a kinetics description or by LTEderived densities on a point-by-point basis in the lamp. The plasma composition, and the effects of mixing, segregation and ionization of light and heavy additives on thermal, electrical conductivity and I-V characteristics will be discussed. The thermodynamic database constructed for these doses will also be discussed.
Keywords
arcs (electric); discharge lamps; ionisation; plasma kinetic theory; plasma simulation; plasma thermodynamics; plasma transport processes; scandium compounds; sodium compounds; xenon; zinc compounds; LTE-ambipolar regime; NaI; Poisson equation; ScI3; Xe; ZnI2; continuity equation; electrical conductivity; electrical property; energy equation; kinetics-Poisson regime; lamp operating voltage; light ionization; local thermodynamic equilibrium; mercury-free high-intensity-discharge lamp; metal halide fillings; mixing effect; momentum equation; plasma composition; plasma hydrodynamics model; thermal conductivity; thermal property; thermodynamic database; thermodynamics module; Filling; High intensity discharge lamps; Hydrodynamics; Kinetic theory; Plasma density; Plasma properties; Poisson equations; Thermal conductivity; Thermodynamics; Voltage control;
fLanguage
English
Publisher
ieee
Conference_Titel
Plasma Science, 2010 Abstracts IEEE International Conference on
Conference_Location
Norfolk, VA
ISSN
0730-9244
Print_ISBN
978-1-4244-5474-7
Electronic_ISBN
0730-9244
Type
conf
DOI
10.1109/PLASMA.2010.5533950
Filename
5533950
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