科技报告详细信息
Temperature Oscillations in Loop Heat Pipes - A Revisit
Ku, Jentung
关键词: ACTIVE CONTROL;    CONDENSERS;    HEAT PIPES;    HEAT SINKS;    OSCILLATIONS;    TEMPERATURE CONTROL;    VAPORS;    ANALYTIC FUNCTIONS;    EVAPORATORS;    HIGH FREQUENCIES;    LOW TEMPERATURE;    RESERVOIRS;    SPACECRAFT ENVIRONMENTS;    THERMOCOUPLES;   
RP-ID  :  GSFC-E-DAA-TN52767
美国|英语
来源: NASA Technical Reports Server
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【 摘 要 】
Three types of temperature oscillation have been observed in the loop heat pipes. The first type is an ultra-high frequency temperature oscillation with a period on the order of seconds or less. This type of temperature oscillation is of little significance in spacecraft thermal control because the amplitude is in the noise level. The second type is a high frequency, low amplitude temperature oscillation with a period on the order of seconds to minutes and an amplitude on the order of one Kelvin. It is caused by the back-and-forth movement of the vapor front near the inlet or outlet of the condenser. The third type is a low frequency, high amplitude oscillation with a period on the order of hours and an amplitude on the order of tens of Kelvin. It is caused by the modulation of the net heat load into the evaporator by the attached large thermal mass which absorbs and releases energy alternately. Several papers on LHP temperature oscillation have been published. This paper presents a further study on the underlying physical processes during the LHP temperature oscillation, with an emphasis on the third type of temperature oscillation. Specifically, equations governing the thermal and hydraulic behaviors of LHP operation will be used to describe interactions among LHP components, heat source, and heat sink. The following sequence of events and their interrelationship will also be explored: 1) maxima and minima of reservoir and thermal mass temperatures; 2) the range of the vapor front movement inside the condenser; 3) rates of change of the reservoir and thermal mass temperatures; 4) the rate of heat absorption and heat release by the thermal mass and the rate of vapor front movement; and 5) inflection points of the reservoir and thermal mass temperatures.
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