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低MHD 效應(yīng)的雙液相混合流態(tài)氚增殖劑研究
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1.北京工業(yè)大學(xué)新能源材料與技術(shù)研究所;2.中國航天科工集團(tuán)研究所第三實(shí)驗(yàn)室

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國家自然科學(xué)基金資助(項(xiàng)目號(hào)NO. 51571003)


An innovative approach to prepare liquid-liquid dual-phase flowable tritium breeder with low MHD effect
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1.Beijing University of Technology;2.No Laboratory, Research Institute,China Aerospace Science and Industry Corporation

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    摘要:

    新型流態(tài)氚增殖劑主要是通過液態(tài)金屬基體與液態(tài)彌散絕緣相的復(fù)合,形成一種可以流動(dòng)的氚增殖復(fù)合材料。這樣的液液兩相混合而成的流態(tài)氚增殖材料既可抑制現(xiàn)有的液態(tài)金屬或熔鹽氚增殖劑的磁流體動(dòng)力學(xué)阻力效應(yīng),又可以消除固體氚增殖材料氚釋出效率低、傳熱性低、易碎以及鋰揮發(fā)造成載氣通路阻塞等問題。本文利用液態(tài)金屬GaInSn合金實(shí)驗(yàn)?zāi)M鋰基液態(tài)氚增殖劑的流體行為,與模擬液態(tài)彌散絕緣相的淬火油復(fù)合,形成流態(tài)氚增殖材料。 本文制備出了一種低電導(dǎo)率特征的金屬流體,液態(tài)金屬GaInSn合金和液態(tài)彌散絕緣相淬火油混合成新型流體。研究了磁場、混合比例、溫度對(duì)其粘度的影響規(guī)律,測試了流體的電導(dǎo)率隨著加入態(tài)彌散絕緣相淬火油的變化。結(jié)果表明:當(dāng)磁感應(yīng)強(qiáng)度超過一定數(shù)值后,全液態(tài)金屬的粘度顯著大于添加淬火油復(fù)合材料的粘度,說明添加淬火油能有效降低磁流體效應(yīng),并且在強(qiáng)磁場下,淬火油復(fù)合材料將具有更低的流動(dòng)阻力;測試了流體電導(dǎo)率,發(fā)現(xiàn)電導(dǎo)率隨著淬火油的增加近似呈現(xiàn)指數(shù)型的下降;流態(tài)氚增殖劑電導(dǎo)率在靜置一段時(shí)間后會(huì)突然增高,隨后在新的電導(dǎo)率水平再次趨于穩(wěn)定。如果將其重新超聲攪拌,則可再次恢復(fù)到最初的電導(dǎo)率,這說明實(shí)際應(yīng)用時(shí)可循環(huán)使用。

    Abstract:

    A novel flowable tritium breeder is a tritium breeder composite material which can flow through the combination of liquid metal matrix and liquid dispersion insulating phase. Such a liquid-liquid dual-phase composite can not only inhibit the magnetohydrodynamic (MHD) resistance effect of the current liquid metal or molten salt tritium breeders, but also address the problems of solid tritium breeders such as low tritium release efficiency, low heat transfer, fragile and easy blockage of gas channel. In this paper, the liquid metal GaInSn alloy was used to simulate the flowable behavior of lithium-based liquid tritium breeder, and composite with quenching oil simulating liquid dispersion insulation phase to form a flowable tritium breeder material. In this paper, a flowable metal with low conductivity characteristics was prepared, and the liquid metal GaInSn alloy and liquid dispersed insulating phase quenching oil were mixed into a new fluid. The influence of magnetic flux, mixing ratio and temperature on its viscosity was studied, and the change of conductivity of fluid with the quenching oil of the added dispersed insulating phase was tested. The results showed that When the magnetic induction intensity exceeds a certain value, the viscosity of the fully liquid metal is significantly higher than that of the composite material with quenched oil, indicating that the addition of quenched oil can effectively reduce the MHD effect, and the quenched oil composite material will have lower flow resistance under a strong magnetic field. The conductivity of the fluid was tested and it was found that the conductivity decreased approximately exponentially with the increase of quenching oil. The conductivity of the flowable tritium breeder increased abruptly after standing for a period of time, and then stabilizes again at the new conductivity level. On condition that it was re-sonicated, it could be restored to its original conductivity again, which meant that it could be recycled in practical applications.

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徐坤,張麗霞,李俊格,王波.低MHD 效應(yīng)的雙液相混合流態(tài)氚增殖劑研究[J].稀有金屬材料與工程,2023,52(12):4164~4170.[Kun Xu, Lixia Zhang, Junge Li, Bo Wang. An innovative approach to prepare liquid-liquid dual-phase flowable tritium breeder with low MHD effect[J]. Rare Metal Materials and Engineering,2023,52(12):4164~4170.]
DOI:10.12442/j. issn.1002-185X.20220945

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  • 收稿日期:2022-12-05
  • 最后修改日期:2023-02-02
  • 錄用日期:2023-02-14
  • 在線發(fā)布日期: 2023-12-29
  • 出版日期: 2023-12-22