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電磁懸浮熔煉試樣的最低溫度計算分析
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TF133 O441.3

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國家自然科學(xué)基金項目(50171044)


Calculation and Analysis of Minimum Temperature in Electromagnetic Levitation Melting
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    摘要:

    根據(jù)Clemente R A計算電磁懸浮熔煉最低溫度的辦法,導(dǎo)出存考慮輻射散熱和保護(hù)性氣體自然對流散熱聯(lián)合作用情況下,球形試樣電磁懇浮熔煉最低溫度的計算模型。利用該模犁計算了不考慮氣體散熱、氬氣自然對流散熱、氦氣自然對流散熱3種情況下電磁懇浮熔煉球形試樣的最低溫度范圍。通過對比,發(fā)現(xiàn)對于冷卻能力籌的氬氣,溫度計算時可以不考慮氣體散熱;而對于冷卻能力較大的氦氣,對于高密度、高電阻率、低輻射率試樣只考慮輻射散熱計算球形試樣最低電磁懸浮熔煉溫度可行;而對于低密度、低電阻率、高輻射率試樣,則必須考慮氦氣散熱與輻射散熱聯(lián)合作用計算球形試樣最低電磁懸浮熔煉溫度。不存存外部強(qiáng)制冷卻的情況下,高熔點(diǎn)、低電阻率、低密度、高輻射率的試樣,保護(hù)性氣體冷卻能力較強(qiáng),試樣易于在重力環(huán)境下實(shí)現(xiàn)懸浮過冷;而低熔點(diǎn)、高電阻率、高密度、低輻射率的試樣,保護(hù)性氣體冷卻能力較差,試樣難以在重力環(huán)境下實(shí)現(xiàn)懸浮過冷。

    Abstract:

    Considering terrestrial gravity and natural convection of protected gas, a calculated model of minimum temperature of spherical sample under electromagnetic levitation melting is derived. The range of minimum temperature is calculated without regard to the conditions of the heat dissipation by emission in gas. For argon, which has poor cooling ability, the heat dissipation by gas can be neglected in the temperature calulation. For helium, which has strong cooling ability, when the sample has high density, high electrical resistivity and low emissivity, the heat dissipation by gas can be neglected in the temperature calculation, too. When the sample with low density, low electrical resistivity and high emissivity, the heat dissipation by gas must be considered. When sample has high melting point, low electrical resistivity, low density, high emissivity and the gas has high cooling ability, the sample is easy to obtain undercooling under electromagnetic levitation in terrestrial gravity without additional cooling. When levitation melting sample has low melting point, high electrical resistivity, high density, low emissivity and protected gas has poor cooling ability, the sample is difficult to obtain undercoling.

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馬偉增 鄭紅星 李建國.電磁懸浮熔煉試樣的最低溫度計算分析[J].稀有金屬材料與工程,2004,33(6):594~597.[Ma Weizeng, Zheng Hongxing, Li Jianguo. Calculation and Analysis of Minimum Temperature in Electromagnetic Levitation Melting[J]. Rare Metal Materials and Engineering,2004,33(6):594~597.]
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