基于不同热导率石墨的收集极散热性能的理论分析与实验研究

Theoretical and experimental investigation of heat dissipation performance of graphite collectors with different thermal conductivities

  • 摘要: 随着重复频率相对论返波管的脉冲功率和平均功率的不断提升,收集极作为关键元器件面临着严酷的散热挑战。在不锈钢,钛合金,石墨等常用收集极材料中,石墨因其密度低,熔点极高,热导率高,耐电子轰击性能好等优点而成为收集极的首选材料。选取了三种不同热导率的高纯石墨,基于CFD软件模拟分析了热导率与热流密度对收集极的内外表面温度的影响,并开展了高功率微波输出实验。模拟结果表明,在热流密度为660 W·cm−2时,石墨收集极内表面温度约为不锈钢,钛合金的一半,远低于其熔点或者升华点;石墨热导率越高,收集极内表面的温度越低。当热流密度从500 W·cm−2增至800 W·cm−2,收集极内外表面温度均升高,且在此范围内温升速率基本保持恒定,温度响应呈线性特征。实验结果表明,收集极材料的热导率与微波输出波形特性存在显著相关性。基于300个脉冲的统计分析,石墨1#,石墨2#,石墨3#收集极的平顶纹波系数分别为8.36%,4.68%和3.59%,表明热导率提升显著降低纹波系数,波形方正性明显改善,说明收集极的高效导热能力对高功率微波输出品质具有重要影响。

     

    Abstract:
    Background With the advancement of repetitive frequency relativistic backward wave oscillators (RBWOs) in both pulse power and average power, electron beam collectors, as critical components of RBWOs, face significant thermal management challenges. Among candidate materials such as stainless steel, titanium alloy, and graphite, graphite has emerged as the preferred collector material owing to its exceptional combination of low density, elevated melting point, superior thermal conductivity, and remarkable resistance to electron bombardment.
    Purpose This study aims to reveal the mechanisms by which differences in thermal conductivity influence the temperature evolution of the collector, the heat dissipation efficiency of the system, and the resultant microwave output waveform.
    Methods Three high-purity graphite specimens with different thermal conductivities were selected. CFD simulations were conducted to investigate the influences of thermal conductivity and heat flux density on the internal and external surface temperatures of the collector. Subsequently, high-power microwave output experiments were performed on collectors fabricated from the three graphite materials.
    Results The simulation results revealed that at a heat flux density of 660 W·cm−2, the inner surface temperature of the graphite collector was approximately half that of stainless steel and titanium alloy collectors, and remained well below its sublimation point. Furthermore, higher thermal conductivity of graphite led to lower inner surface temperatures. As the heat flux increased from 500 W·cm−2 to 800 W·cm−2, both inner and outer surface temperatures rose, with the rate of temperature rise remaining nearly constant, indicating a linear temperature response. Experimental results from high-power microwave output tests demonstrated a significant correlation between collector material thermal conductivity and microwave waveform quality. Statistical analysis over 300 pulses revealed that the flat-top ripple coefficients for graphite 1#, 2#, and 3# collectors were 8.36%, 4.68%, and 3.59%, respectively.
    Conclusions This indicated that improved thermal conductivity significantly reduced ripple coefficient and enhanced waveform flatness, highlighting the critical role of efficient thermal management in achieving high-quality high-power microwave output.

     

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