搜索

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

偏滤器运行模式对托卡马克边缘区等离子体平行流的影响

欧靖 杨锦宏

引用本文:
Citation:

偏滤器运行模式对托卡马克边缘区等离子体平行流的影响

欧靖, 杨锦宏

The effect of the divertor operation regimes on the plasma parallel flow in the edge of a tokamak

Ou Jing, Yang Jin-Hong
PDF
导出引用
  • 我们使用一维流体模型,根据在不同偏滤器运行模式下静压强沿着磁力线方向的分布变化,讨论了偏滤器运行模式对托卡马克边缘区等离子体平行流的影响.低再循环模式下,静压强从X点(X-point)附近的刮削层区域开始明显下降,变化趋势与密度变化趋势一致;等离子体平行流的马赫数在偏滤器区域逐步变大,变化从平缓到迅速.高再循环模式下,静压强在靶板附近的区域迅速下降,在其他区域变化非常小;等离子体平行流的马赫数仅在靠近靶板附近的区域迅速变大,在其他区域变化平缓.在弱脱靶模式下的静压强变化与高再循环模式下类似,不过静压强在X-point附近的刮削层区域开始出现下降的趋势,导致等离子体平行流的马赫数在X-point处的值比在高再循环模式下大.强脱靶模式下,静压强在刮削层区域开始明显下降,在远离靶板的偏滤器区域,静压强迅速下降的地方,观察到高马赫数等离子体平行流.静压强迅速下降引起动压强迅速上升来维持总的压强守恒是在强脱靶状态下产生高马赫数平行流的一种可能驱动机理.
    Based on the variations of the static pressure along the magnetic field line in different divertor operation regimes, the effects of the divertor operation regimes on the plasma parallel flow at the edge of a tokamak are investigated using a one-dimensional fluid model. In low recycling regime, the variation of the static pressure along the field line is obvious from the scrape-off layer (SOL) region near the X-point, and the variation tendency is the same as that of the density. The Mach number of the plasma parallel flow increases along the magnetic field line and the variation is from gentle to sharp. In high recycling regime, the static pressure does not change much except in the near divertor plate region, as a result, the Mach number of the plasma parallel flow varies gently in the SOL region and the most of the divertor region, and it increases rapidly in the near divertor plate region. The variation of the static pressure in weak divertor detachment regime is similar to that in high recycling regime, but the static pressure shows decrease tendency in the SOL region near the X-point, consequently, the Mach number of the plasma parallel flow at X-point is larger than that in high recycling regime. In strong divertor detachment regime, static pressure decreases obviously in the SOL region and away from the divertor plate region, where the static pressure decreases rapidly, and a high Mach plasma parallel flow is observed. Static pressure decreasing while dynamic pressure increasing to keep the total pressure conservation is shown to be a possible cause of the high Mach parallel flow.
    • 基金项目: 国家自然科学基金(批准号:11105176),中国科学院知识创新工程青年人才领域专项前沿项目(批准号:085FCQ0123)和ITER计划专项国内配套研究项目(批准号:2009GB106002)资助的课题.
    • Funds: Project supported by the Natinal Natural Science Foundation of China (Grant No.11105176), the Knowledge Innovation Program of the Chinese Academy of Sciences (Grant No.085FCQ0123), and the Chinese National Fusion Project for ITER (Grant No.2009GB106002).
    [1]

    HongWY,Yan LW,Wang E Y,Li Q,Qian J 2005 Acta Phys.Sin.54 173 (in Chinese)[洪文玉,严龙文,王恩耀,李强,钱俊 2005 54 173]

    [2]

    Zhang W 2010 Ph.D Dissertation (Hefei:Institute of Plasma Physics,Chinese Academy of Sciences)(in Chinese)[张炜 2010 博士学位论文 (合肥:中科院等离子体物理研究所)]

    [3]

    Cheng F Y 2004 Ph.D Dissertation (Chengdu:Southwestern Institute of Physics)(in Chinese)[程发银 2004 博士学位论文(成都:核工业西南物理研究院)]

    [4]

    Cui Z Y,Sun P,Pan Y D,Li W,Wang Q M,Cao Z,Wang M X 2006 Chin.Phys.15 585

    [5]

    Yao L H,Yuan B S,Feng B B,Chen C Y,Hong WY,Li Y L 2007 Chin.Phys.16 200

    [6]

    Stangeby P C 2000 The Plasma Boundaries of Magnetic Fusion Devices (London:Institute of Physics Publishing)p487

    [7]

    taslas M,Herrmann A,Kallenbach A,Müller H W,Neuhauser J,Rohde V,Tsois N,Wischmeier M,ASDEX-U team 2007Plasma Phys.Control Fusion 49 857

    [8]

    Asakura N,Sakurai S,Itami K,Naito K,Takenaga H,Higashijima S,Koide Y,Sakamoto Y,Kubo H,Porter G D 2003 J.Nucl.Mater.313-316 820

    [9]

    Asakura N 2007 J.Nucl.Mater.363-365 41

    [10]

    Wesson J 1997 Tokamaks (New York:Oxford University Press)p427

    [11]

    li Q L,Zheng Y Z,Cheng F Y,Deng X B,Deng D S,You P L,Liu G A,Chen X D 2001 Acta Phys.Sin.50 507 (in Chinese)[李奇良,郑永真,程发银,邓小波,邓冬生,游佩林,刘贵昂,陈向东 2001 50 507]

    [12]

    Stangeby P C 1993 Nucl.Fusion 33 1695

    [13]

    Hatayama A,Segawa H,Schneider R,Coster D P,Hayashi N,Sakurai S,Asakura N,Ogasawara M 2000 Nucl.Fusion 40 2009

    [14]

    Schneider R,Bonnin X,Coster D P,Kastelewicz H,Reiter D,Rozhansky V A,Braams J 2006 Contrib.Plasma Phys.46 3

    [15]

    Lehnen M,Brix M,Samm U Schweer B,Unterberg B,the TEXTOR-team 2003 Nucl.Fusion 43 168

    [16]

    Ou J,Zhu S Z 2007 Plasma Sci.& Technol.9 417

    [17]

    Nakazawa S,Nakajima N,Okamoto M,Ohyabu N 2000 Plasma Phys.Control.Fusion 42 401

    [18]

    Fundamenski W,Stangeby P C,Elder J D 1999 J.Nucl.Mater.266-269 1045

  • [1]

    HongWY,Yan LW,Wang E Y,Li Q,Qian J 2005 Acta Phys.Sin.54 173 (in Chinese)[洪文玉,严龙文,王恩耀,李强,钱俊 2005 54 173]

    [2]

    Zhang W 2010 Ph.D Dissertation (Hefei:Institute of Plasma Physics,Chinese Academy of Sciences)(in Chinese)[张炜 2010 博士学位论文 (合肥:中科院等离子体物理研究所)]

    [3]

    Cheng F Y 2004 Ph.D Dissertation (Chengdu:Southwestern Institute of Physics)(in Chinese)[程发银 2004 博士学位论文(成都:核工业西南物理研究院)]

    [4]

    Cui Z Y,Sun P,Pan Y D,Li W,Wang Q M,Cao Z,Wang M X 2006 Chin.Phys.15 585

    [5]

    Yao L H,Yuan B S,Feng B B,Chen C Y,Hong WY,Li Y L 2007 Chin.Phys.16 200

    [6]

    Stangeby P C 2000 The Plasma Boundaries of Magnetic Fusion Devices (London:Institute of Physics Publishing)p487

    [7]

    taslas M,Herrmann A,Kallenbach A,Müller H W,Neuhauser J,Rohde V,Tsois N,Wischmeier M,ASDEX-U team 2007Plasma Phys.Control Fusion 49 857

    [8]

    Asakura N,Sakurai S,Itami K,Naito K,Takenaga H,Higashijima S,Koide Y,Sakamoto Y,Kubo H,Porter G D 2003 J.Nucl.Mater.313-316 820

    [9]

    Asakura N 2007 J.Nucl.Mater.363-365 41

    [10]

    Wesson J 1997 Tokamaks (New York:Oxford University Press)p427

    [11]

    li Q L,Zheng Y Z,Cheng F Y,Deng X B,Deng D S,You P L,Liu G A,Chen X D 2001 Acta Phys.Sin.50 507 (in Chinese)[李奇良,郑永真,程发银,邓小波,邓冬生,游佩林,刘贵昂,陈向东 2001 50 507]

    [12]

    Stangeby P C 1993 Nucl.Fusion 33 1695

    [13]

    Hatayama A,Segawa H,Schneider R,Coster D P,Hayashi N,Sakurai S,Asakura N,Ogasawara M 2000 Nucl.Fusion 40 2009

    [14]

    Schneider R,Bonnin X,Coster D P,Kastelewicz H,Reiter D,Rozhansky V A,Braams J 2006 Contrib.Plasma Phys.46 3

    [15]

    Lehnen M,Brix M,Samm U Schweer B,Unterberg B,the TEXTOR-team 2003 Nucl.Fusion 43 168

    [16]

    Ou J,Zhu S Z 2007 Plasma Sci.& Technol.9 417

    [17]

    Nakazawa S,Nakajima N,Okamoto M,Ohyabu N 2000 Plasma Phys.Control.Fusion 42 401

    [18]

    Fundamenski W,Stangeby P C,Elder J D 1999 J.Nucl.Mater.266-269 1045

  • [1] 陈龙, 檀聪琦, 崔作君, 段萍, 安宇豪, 陈俊宇, 周丽娜. 电子非广延分布的多离子磁化等离子体鞘层特性.  , 2024, 73(5): 055201. doi: 10.7498/aps.73.20231452
    [2] 龙婷, 柯锐, 吴婷, 高金明, 才来中, 王占辉, 许敏. HL-2A托卡马克偏滤器脱靶时边缘极向旋转和湍流动量输运.  , 2024, 73(8): 088901. doi: 10.7498/aps.73.20231749
    [3] 黄艳, 孙继忠, 桑超峰, 王德真. ITER 第一类边界局域模对排布位错偏滤器靶板钨/铜瓦片腐蚀程度的数值模拟.  , 2023, 72(18): 185202. doi: 10.7498/aps.72.20230281
    [4] 李涵汐, 王德真. 热电子发射对钨偏滤器靶板附近磁化鞘层影响的模拟研究.  , 2023, 72(15): 159401. doi: 10.7498/aps.72.20230276
    [5] 张洪铭, 吴静, 李佳鲜, 姚列明, 徐江城, 吴岩占, 刘旗艳, 郭鹏程. HL-2A高约束先进运行模式等离子体电流剖面集成模拟.  , 2021, 70(23): 235203. doi: 10.7498/aps.70.20210945
    [6] 赵崇霄, 漆亮文, 闫慧杰, 王婷婷, 任春生. 放电参数对爆燃模式下同轴枪强流脉冲放电等离子体的影响.  , 2019, 68(10): 105203. doi: 10.7498/aps.68.20190218
    [7] 纪丹丹, 张劭光. 三区域膜泡相分离模式之间转变的研究.  , 2018, 67(18): 188701. doi: 10.7498/aps.67.20180828
    [8] 黄艳, 孙继忠, 桑超峰, 胡万鹏, 王德真. 边界局域模引起钨偏滤器靶板侵蚀和形貌变化的数值模拟研究.  , 2017, 66(3): 035201. doi: 10.7498/aps.66.035201
    [9] 李刘合, 刘红涛, 罗辑, 许亿. 带状真空电弧磁过滤器等离子体分布特性及制备类金刚石膜研究.  , 2016, 65(6): 065202. doi: 10.7498/aps.65.065202
    [10] 项蓉, 严微微, 苏中地, 吴杰, 张凯, 包福兵. 生物过滤器中非均匀性流动的数值研究.  , 2014, 63(16): 164702. doi: 10.7498/aps.63.164702
    [11] 黄艳, 孙继忠, 桑超峰, 丁芳, 王德真. 边界局域模对EAST钨偏滤器靶板腐蚀程度的数值模拟研究.  , 2014, 63(3): 035204. doi: 10.7498/aps.63.035204
    [12] 孙振月, 桑超峰, 胡万鹏, 王德真. 偏滤器等离子体中杂质对钨壁材料的侵蚀模拟研究.  , 2014, 63(14): 145204. doi: 10.7498/aps.63.145204
    [13] 王道泳, 马锦秀, 李毅人, 张文贵. 等离子体中热阴极鞘层的结构.  , 2009, 58(12): 8432-8439. doi: 10.7498/aps.58.8432
    [14] 邹 秀, 刘惠平, 谷秀娥. 磁化等离子体的鞘层结构.  , 2008, 57(8): 5111-5116. doi: 10.7498/aps.57.5111
    [15] 覃怀莉, 薛建明, 赖江南, 王建勇, 苗 琦, 张伟明, 马 磊, 颜 莎, 赵渭江, 顾红雅, 王宇钢. 拟南芥胚的不同区域对MeV离子辐照的响应.  , 2006, 55(11): 5991-5995. doi: 10.7498/aps.55.5991
    [16] 龚学余, 彭晓炜, 谢安平, 刘文艳. 托卡马克等离子体不同运行模式下的电子回旋波电流驱动.  , 2006, 55(3): 1307-1314. doi: 10.7498/aps.55.1307
    [17] 王正汹, 刘金远, 邹 秀, 刘 悦, 王晓钢. 尘埃等离子体鞘层的玻姆判据.  , 2004, 53(3): 793-797. doi: 10.7498/aps.53.793
    [18] 邹 秀, 刘金远, 王正汹, 宫 野, 刘 悦, 王晓钢. 磁场中等离子体鞘层的结构.  , 2004, 53(10): 3409-3412. doi: 10.7498/aps.53.3409
    [19] 王琛, 顾援, 傅思祖, 周关林, 吴江, 王伟, 孙玉琴, 董佳钦, 孙今人, 王瑞荣, 倪元龙, 万炳根, 黄关龙, 张国平, 林尊琪, 王世绩. 软X射线激光偏折法测量激光等离子体电子密度分布.  , 2002, 51(4): 847-851. doi: 10.7498/aps.51.847
    [20] 李齐良, 郑永真, 程发银, 邓小波, 邓冬生, 游佩林, 刘贵昂, 陈向东. 托卡马克删削层与偏滤器中等离子体输运的解析研究.  , 2001, 50(3): 507-511. doi: 10.7498/aps.50.507
计量
  • 文章访问数:  7850
  • PDF下载量:  681
  • 被引次数: 0
出版历程
  • 收稿日期:  2011-05-14
  • 修回日期:  2012-04-05
  • 刊出日期:  2012-04-05

/

返回文章
返回
Baidu
map