Search

Article

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

Effect of straining flow on growth of columnar crystal in ternary undercooled melt

Fan Hai-Long Chen Ming-Wen

Citation:

Effect of straining flow on growth of columnar crystal in ternary undercooled melt

Fan Hai-Long, Chen Ming-Wen
PDF
HTML
Get Citation
  • As an important microstructure, columnar crystal growth technology, especially the growth technology of single columnar crystal plays an important role in improving the performances of semiconductor, optical devices and other related products. In many practical applications, because the alloy is composed of multi-component and there is inevitably flow in the melt, it is necessary to study the growth of columnar crystals in multi-component melt with flow separately. The growth of columnar crystal in a ternary undercooled melt subjected to straining flow under non-isothermal conditions is studied, and the approximate analytical expression for growth morphology of columnar crystal is given by using asymptotic method. It can be seen from the expression that straining flow is an important reason for irregular columnar crystal. When analyzing the effect of straining flow on the growth of columnar crystal in ternary melt, it is found that the incoming flow accelerates the growth velocity of the interface, while the outgoing straining flow reduces the growth velocity of the interface, namely, the straining flow makes the interface of columnar crystal deformed. At the same time, it is found that the interface deformation becomes more intense with the increase of flow velocity. The above conclusion can also be applied to the effect of straining flow on the interface morphology of columnar crystal in pure melt and binary melt. The comparison of the effects of straining flow on the interface of columnar crystal among pure melt, binary melt and ternary melt, shows that the interface morphology of columnar crystal in dilute alloy melt is more affected by straining flow than in the pure melt, but the more components are more easily affected by flow. However, the number of components in melt is not a decisive factor for the change of interface morphology of the columnar crystal, but the constitutional undercooling is an important factor for determining the interface morphology of multicomponent alloy. According to the conclusion of this paper, the influence of straining flow on the interface morphology of columnar crystal growth can be quantitatively predicted, which provides the necessary theoretical guidance in accurately controlling the interface morphology in the future.
      Corresponding author: Chen Ming-Wen, chenmw@ustb.edu.cn
    [1]

    Mullins W W, Sekerka R F 1963 J. Appl. Phys. 34 323Google Scholar

    [2]

    Flood S C, Hunt J D 1987 J. Cryst. Growth 82 543Google Scholar

    [3]

    Libbrecht K G, Yu H 2001 J. Cryst. Growth 222 822Google Scholar

    [4]

    Ares A E, Gueijman S F, Schvezov C E 2002 J. Cryst. Growth 241 235Google Scholar

    [5]

    Viardin A, Založnik M, Souhar Y, Apel M, Combeau H 2017 Acta Mater. 122 386Google Scholar

    [6]

    Wang L, Wang N, Provatas N 2017 Acta Mater. 126 302Google Scholar

    [7]

    Debroy P P, Sekerka R F 1996 Phys. Rev. E 53 6244Google Scholar

    [8]

    Ren S, Li P, Jiang D, Tan Y, Li J, Zhang L 2016 Appl. Therm. Eng. 106 875Google Scholar

    [9]

    Lü C, Ai Y, Yu Q, Chen W, He W, Zhang J, Min X 2019 J. Cryst. Growth 507 395Google Scholar

    [10]

    Battaglioli S, Robinson A J, McFadden S 2018 Int. J. Heat Mass Tran. 126 66Google Scholar

    [11]

    Buchholz A, Engler S 1996 Comput. Mater. Sci. 7 221Google Scholar

    [12]

    Lee S Y, Lee S M, Hong C P 2000 ISIJ Int. 40 48Google Scholar

    [13]

    Coriell S R, Parker R L 1965 J. Appl. Phys. 36 632Google Scholar

    [14]

    陈亚军, 陈琦, 王自东, 胡汉起, 刘玉敏, 连玉栋 2004 清华大学学报(自然科学版) 44 1464Google Scholar

    Chen Y J, Chen Q, Wang Z D, Hu H Q, Liu Y M, Lian Y D 2004 Tsinghua Sci. Technol. 44 1464Google Scholar

    [15]

    Du L, Zhang P, Yang S, Chen J, Du H 2018 Mod. Phys. Lett. B 32 1850078

    [16]

    Murakami K, Aihara H, Okamoto T 1984 Acta Metall. 32 933Google Scholar

    [17]

    Szajnar J 2004 J. Mater. Process. Technol. 157 761

    [18]

    Altieri A L, Davis S H 2017 J. Cryst. Growth 467 162Google Scholar

    [19]

    Colin J 2018 J. Cryst. Growth 493 76Google Scholar

    [20]

    Vogel A, Cantor B 1977 J. Cryst. Growth 37 309Google Scholar

    [21]

    Fan H L, Chen M W, Shan Y Y 2019 Surf. Rev. Lett. 11 1950170

  • 图 1  $Oxy$平面上应变流对柱状晶体形态演化的影响, 其中$t = 396, $ $\varGamma = 0.25, $ $M_{\rm{C}}^1=0.01, $ $M_{\rm{C}}^2=0.02, $ $C_{{\rm{L}}, \infty }^1 = $1.0, $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = $ –2.33, $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^1 = $ 0.01, $\lambda _{\rm{D}}^2 = 0.02, $ $\varepsilon = 0.05$

    Figure 1.  The morphology evolution of columnar crystal in a straining flow on the cross-section of $Oxy$plane at $t = 396, $ where $\varGamma = 0.25, $ $M_{\rm{C}}^1=0.01, $ $M_{\rm{C}}^2=0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ E = 0.3, ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^1 = 0.01, $ $\lambda _{\rm{D}}^2 = $ 0.02, $ \varepsilon = 0.05$

    图 2  $t = 396$时, 柱状晶体的界面形态. 其中$\varGamma = 0.25, $ $M_{\rm{C}}^{\rm{1}}=0.01, $ $M_{\rm{C}}^{\rm{2}}=0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^1 = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05, $ $A = 0.9$

    Figure 2.  The morphology evolution of columnar crystal in a straining flow at $t = 396, $ where $\varGamma = 0.25, $ $M_{\rm{C}}^{\rm{1}}=0.01, $ $M_{\rm{C}}^{\rm{2}}=0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^1 = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05, $ $A = 0.9$

    图 3  不同强度的应变流对柱状晶体界面形态的影响, 其中$t \!=\! 256, $ $\varGamma \!=\! 0.25, $ $M_{\rm{C}}^1 \!=\! 0.01, $ $M_{\rm{C}}^2\! =\! 0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^1 = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05.$ A由左向右分别为0.9, 0.6, 0.3, 0

    Figure 3.  Interface morphology of columnar crystals affected by different sizes of straining flow, where $t = 256, $ $\varGamma = 0.25, $ $M_{\rm{C}}^1=0.01, $ $M_{\rm{C}}^2=0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^1 = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05.$ A is 0.9, 0.6, 0.3, 0 from left to right, respectively.

    图 4  $Oxy$平面上柱状晶体界面随时间的演化, 其中$\varGamma \!=\! 0.25, $ $M_{\rm{C}}^1 \!=\! 0.01, $ $M_{\rm{C}}^{\rm{2}} \!=\! 0.02, $ $C_{{\rm{L}}, \infty }^1 \!=\! 1.0, $ $C_{{\rm{L}}, \infty }^2 \!=\! 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ E = 0.3, Mk = 0.01, kT = 1.23, ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05, $ $A = 0.9$

    Figure 4.  Evolution of columnar crystal interface with time in the $Oxy$ plane, where $\varGamma = 0.25, $ $M_{\rm{C}}^1=0.01, $ $M_{\rm{C}}^{\rm{2}}=0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ m2 = –2.33, E = 0.3, Mk = 0.01, kT = 1.23, ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05, $ $A = 0.9$

    图 5  应变流对不同杂质含量柱状晶体界面形态的影响, 其中$t = 256, $ $\varGamma = 0.25, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05$

    Figure 5.  Effect of straining flow on the interface morphology of columnar crystals in different impurity content, where $t = 256, $ $\varGamma = 0.25, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05$

    图 6  应变流对不同杂质含量柱状晶体界面形态的影响, 其中$t = 256, $ $\varGamma = 0.25, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05$

    Figure 6.  Effect of straining flow on the interface morphology of columnar crystals in different impurity content, where $t = 256, $ $\varGamma = 0.25, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}} = 0.02, $ $\varepsilon = 0.05$

    图 7  $R, \theta $平面上, 柱状晶体界面杂质浓度$C_{\rm{L}}^1$$\theta $的变化情况, 其中$t = 256, $ $\varGamma = 0.25, $ $M_{\rm{C}}^{\rm{1}}=0.01, $ $M_{\rm{C}}^{\rm{2}}=0.02, $ $C_{{\rm{L}}, \infty }^1 = 1.0, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = - 2.33, $ $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}}=0.02, $ $\varepsilon = 0.05, $ $A = 0.9$

    Figure 7.  The change of impurity concentration at the interface of columnar crystal in the $R, \theta $ plane, where $t = 256, $ $\varGamma = 0.25, $ $M_{\rm{C}}^{\rm{1}}=0.01, $ $M_{\rm{C}}^{\rm{2}}=0.02, $ $C_{{\rm{L}}, \infty }^2 = 3.0, $ ${A_\lambda } = 3.3, $ ${m_1} = - 1.6, $ ${m_2} = $ –2.33 $E = 0.3, $ ${M_{\rm{k}}} = 0.01, $ ${k_{\rm{T}}} = 1.23, $ ${\lambda _{\rm{S}}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{1}} = 0.01, $ $\lambda _{\rm{D}}^{\rm{2}}=0.02, $ $\varepsilon = 0.05, $ $A = 0.9$

  • [1]

    Mullins W W, Sekerka R F 1963 J. Appl. Phys. 34 323Google Scholar

    [2]

    Flood S C, Hunt J D 1987 J. Cryst. Growth 82 543Google Scholar

    [3]

    Libbrecht K G, Yu H 2001 J. Cryst. Growth 222 822Google Scholar

    [4]

    Ares A E, Gueijman S F, Schvezov C E 2002 J. Cryst. Growth 241 235Google Scholar

    [5]

    Viardin A, Založnik M, Souhar Y, Apel M, Combeau H 2017 Acta Mater. 122 386Google Scholar

    [6]

    Wang L, Wang N, Provatas N 2017 Acta Mater. 126 302Google Scholar

    [7]

    Debroy P P, Sekerka R F 1996 Phys. Rev. E 53 6244Google Scholar

    [8]

    Ren S, Li P, Jiang D, Tan Y, Li J, Zhang L 2016 Appl. Therm. Eng. 106 875Google Scholar

    [9]

    Lü C, Ai Y, Yu Q, Chen W, He W, Zhang J, Min X 2019 J. Cryst. Growth 507 395Google Scholar

    [10]

    Battaglioli S, Robinson A J, McFadden S 2018 Int. J. Heat Mass Tran. 126 66Google Scholar

    [11]

    Buchholz A, Engler S 1996 Comput. Mater. Sci. 7 221Google Scholar

    [12]

    Lee S Y, Lee S M, Hong C P 2000 ISIJ Int. 40 48Google Scholar

    [13]

    Coriell S R, Parker R L 1965 J. Appl. Phys. 36 632Google Scholar

    [14]

    陈亚军, 陈琦, 王自东, 胡汉起, 刘玉敏, 连玉栋 2004 清华大学学报(自然科学版) 44 1464Google Scholar

    Chen Y J, Chen Q, Wang Z D, Hu H Q, Liu Y M, Lian Y D 2004 Tsinghua Sci. Technol. 44 1464Google Scholar

    [15]

    Du L, Zhang P, Yang S, Chen J, Du H 2018 Mod. Phys. Lett. B 32 1850078

    [16]

    Murakami K, Aihara H, Okamoto T 1984 Acta Metall. 32 933Google Scholar

    [17]

    Szajnar J 2004 J. Mater. Process. Technol. 157 761

    [18]

    Altieri A L, Davis S H 2017 J. Cryst. Growth 467 162Google Scholar

    [19]

    Colin J 2018 J. Cryst. Growth 493 76Google Scholar

    [20]

    Vogel A, Cantor B 1977 J. Cryst. Growth 37 309Google Scholar

    [21]

    Fan H L, Chen M W, Shan Y Y 2019 Surf. Rev. Lett. 11 1950170

  • [1] Wang Lan, Cheng Si-Yuan, Zeng Hang-Hang, Xie Cong-Wei, Gong Yuan-Hao, Zheng Zhi, Fan Xiao-Li. Structure prediction of CuBiI ternary compound and first-principles study of photoelectric properties. Acta Physica Sinica, 2021, 70(20): 207305. doi: 10.7498/aps.70.20210145
    [2] Wang Wei-Hao, Cui Zhi-Wen. Borehole interface converted electromagnetic wave of double cylindrical formation. Acta Physica Sinica, 2019, 68(20): 204301. doi: 10.7498/aps.68.20190891
    [3] Zhao Zhen-Yang, Li Tao, Li Xiao-Yin, Li Xiong-Ying, Li Hui. Interfacial properties and morphological evolution of liquid Ag film on the modified graphene. Acta Physica Sinica, 2017, 66(6): 069601. doi: 10.7498/aps.66.069601
    [4] Jiang Han, Chen Ming-Wen, Shi Guo-Dong, Wang Tao, Wang Zi-Dong. Effect of surface tension anisotropy on the interface morphological stability of deep cellular crystal. Acta Physica Sinica, 2016, 65(9): 096803. doi: 10.7498/aps.65.096803
    [5] Bao Jin, Yan Cui-Ling, Yan Zu-Wei. Surface and interface phonon-polaritons in four layer systems consisting of polar ternary mixed crystals. Acta Physica Sinica, 2014, 63(10): 107105. doi: 10.7498/aps.63.107105
    [6] Zhang Zhong-Yu, Yao Xiong-Liang, Zhang A-Man. Cavitation shape of the three-dimensional slender at a small attack angle in a steady flow. Acta Physica Sinica, 2013, 62(20): 204701. doi: 10.7498/aps.62.204701
    [7] Zhang Yun-Peng, Lin Xin, Wei Lei, Wang Meng, Peng Dong-Jian, Huang Wei-Dong. Effect of surface tension anisotropy on the growth patterns of cellulars in directional solidification. Acta Physica Sinica, 2012, 61(22): 228106. doi: 10.7498/aps.61.228106
    [8] Chen Cheng, Chen Zheng, Zhang Jing, Yang Tao. Simulation of morphological evolution and crystallographic tilt in heteroepitaxial growth using phase-field crystal method. Acta Physica Sinica, 2012, 61(10): 108103. doi: 10.7498/aps.61.108103
    [9] Chen Ming-Wen, Ni Feng, Wang Yan-Lin, Wang Zi-Dong, Xie Jian-Xin. Effect of interface kinetics on the interface morphology of a spherical crystal in the undercooled melt. Acta Physica Sinica, 2011, 60(6): 068103. doi: 10.7498/aps.60.068103
    [10] Pang Jing, Chen Xiao-Gang, Song Jin-Bao. Second-order Stokes wave solutions for intefacial waves in three-layer stratified fluid with background current. Acta Physica Sinica, 2007, 56(8): 4733-4741. doi: 10.7498/aps.56.4733
    [11] Wang Kuang-Fei, Li Bang-Sheng, Ren Ming-Xing, Mi Guo-Fa, Guo Jing-Jie, Fu Heng-Zhi. Numerical simulation of columnar to equiaxial transition during solidification of Ti-44at%Al alloy. Acta Physica Sinica, 2007, 56(6): 3337-3343. doi: 10.7498/aps.56.3337
    [12] Wang Xin-Jun, Wang Ling-Ling, Huang Wei-Qing, Tang Li-Ming, Zou Bing-Suo, Chen Ke-Qiu. Influence of ternary mixed crystal defect layer on the localized interface optical-phonon modes in a finite superlattice. Acta Physica Sinica, 2007, 56(1): 429-436. doi: 10.7498/aps.56.429
    [13] Chen Ming-Wen, Wang Zi-Dong, Sun Ren-Ji. Effect of far field flow on the spherical crystal in the undercooled melt. Acta Physica Sinica, 2007, 56(3): 1819-1824. doi: 10.7498/aps.56.1819
    [14] LU PENG, WANG YAO-JUN. SOUND WAVE SCATTERING BY ELASTIC CYLINDER ENCASEDIN SOLID MATRIX WITH INTERPHASE LAYER. Acta Physica Sinica, 2001, 50(4): 697-703. doi: 10.7498/aps.50.697
    [15] HUANG WEI-DONG, SHANG BAO-LU, ZHOU YAO-HE. AN EXPERIMENTAL STUDY OF MORPHOLOGY DEVELOP-MENT OF SOLIDIFICATION INTERFACE. Acta Physica Sinica, 1991, 40(2): 323-328. doi: 10.7498/aps.40.323
    [16] XING FENG, HE WEN-WANG. ST RUCTURAL AND MAGNETIC PROPERTIES OF TERNARY NEODYMIUM-IRON-CARBON (OR CARBON-BORON) COMPOUNDS. Acta Physica Sinica, 1990, 39(6): 169-174. doi: 10.7498/aps.39.169-2
    [17] MING NAI-BEN, ZHOU FANG-QIAO. EXPERIMENTAL INVESTIGATION OF STABILITY OF PLANAR CRYSTAL-MELT INTERFACE AND EVOLUTION OF CELLULAR INTERFACE DURING CZOCHRALSKI GROWTH OF LiNbO3 SINGLE CRYSTALS DOPED WITH YTTRIUM. Acta Physica Sinica, 1986, 35(12): 1603-1608. doi: 10.7498/aps.35.1603
    [18] LU XUE-SHAN, LI FANG-HUA. THE CRYSTAL STRUCTURE OF (Ni, Co)3Al4 IN THE Al-Ni-Co TERNARY SYSTEM——A NEW VACANCY CONTROLLED ALLOY PHASE. Acta Physica Sinica, 1980, 29(2): 182-198. doi: 10.7498/aps.29.182
    [19] ZHANG YUAN-LONG. ON THE CORRELATION BETWEEN GROWTH FORMS AND INTERFACE MOLECULAR GROUP WAVINESS OF SYNTHETIC QUARTZ. Acta Physica Sinica, 1979, 28(1): 40-53. doi: 10.7498/aps.28.40
    [20] LU HSUEH-SHAN, CHANG TSUNG. CRYSTAL STRUCTURE CHANGES IN THE T-PHASE OF Al-Cu-Ni ALLOYS. Acta Physica Sinica, 1957, 13(2): 150-176. doi: 10.7498/aps.13.150
Metrics
  • Abstract views:  4239
  • PDF Downloads:  44
  • Cited By: 0
Publishing process
  • Received Date:  18 February 2020
  • Accepted Date:  02 April 2020
  • Published Online:  05 June 2020

/

返回文章
返回