Investigation of CaSO4-KPO3-Na2B4O7 System as a Basis for Synthesis of Low-Melting Glasses Used as a Glass-Solder Material

Article Preview

Abstract:

The possibility of using the compositions of CaSO4-KPO3-Na2B4O7 system as a glass-solder material is shown. A glass formation region has been established in ternary system. The concentration dependences of linear thermal expansion coefficient, the softening temperature and the glass transition temperature are determined and discussed.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

265-269

Citation:

Online since:

May 2020

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2020 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] N.M. Bobkova, Low-Melting Glasses Based on Lead-Borate Systems (Review), Glass and Ceramics, (2009) 206-209.

DOI: 10.1007/s10717-009-9170-2

Google Scholar

[2] A.K. Zhuravlev and N.M. Pavlushkin, Low-Melting Glasses [in Russian], Stroiizdat, Moscow (1970).

Google Scholar

[3] N.M. Bobkova, E.E. Trusova, Structure of Bismuth-Borate Glasses with RO-Group Oxides According to IR Spectroscopy, Glass and Ceramics, 72 (2015) 79-82.

DOI: 10.1007/s10717-015-9728-0

Google Scholar

[4] N.M. Bobkova and E.E. Trusova, Low-Melting Bismuth–Borate Glass: Composition Development, Glass and Ceramics, 68 (2012) 349-352.

DOI: 10.1007/s10717-012-9387-3

Google Scholar

[5] N.M. Bobkova, Study of the Properties of Bismuth-Borate Systems toward Low-Melting Lead-Free Glasses, Glass Physics and Chemistry, 38 (2012) 180-183.

DOI: 10.1134/s108765961201004x

Google Scholar

[6] N.M. Bobkova, G.B. Zakharevich and O.V. Kichkailo, Low-Melting Low-Lead Glasses Based on Borate Systems, Glass and Ceramics, 67 (2010) 15-18.

DOI: 10.1007/s10717-010-9220-9

Google Scholar

[7] N.M. Bobkova and S.A. Khot'ko, Low-Melting Glasses Based on Borate Systems, Glass and Ceramics, 61 (2004) 175-177.

DOI: 10.1023/b:glac.0000043085.41234.be

Google Scholar

[8] Feng He, Zi-jun He, Jun-lin Xie, Shu-xia Mei and Ming-fang Jin, Melting, Sintering and Wetting Properties of ZnO–Bi2O3–B2O3 Sealing Glass, Journal of Central South University, 23 (2016) 1541-1547.

DOI: 10.1007/s11771-016-3206-x

Google Scholar

[9] Safeya Ibrahim, Mohamed Mahmoud Gomaa and Hussein Darwish, Influence of Fe2O3 on the Physical, Structural and Electrical Properties of Sodium Lead Borate Glasses, Journal of Advanced Ceramics, 3 (2014) 155-164.

DOI: 10.1007/s40145-014-0107-z

Google Scholar

[10] Pei Chen, Shengchun LiWenjie and QiaoYaogang Li, Structure and Crystallization of ZnO-B2O3-P2O5 Glasses, Glass Physics and Chemistry, 37 (2011) 29-33.

DOI: 10.1134/s1087659611010044

Google Scholar

[11] M.R. Oganesyan, R.M. Oganesyan and N.B. Knyazyan, Interrelation Between Glass Formation, Liquidus Temperature, and the Cooling Rate of Barium-Bismuth-Borate Melts, Theoretical Foundations of Chemical Engineering, 44 (2010) 500-502.

DOI: 10.1134/s004057951004024x

Google Scholar

[12] D.A. Geodakyan, B.V. Petrosyan, S.V. Stepanyan and K.D. Geodakyan, Investigation of the Possibility of Replacing High-Lead Glasses in Fusible Glass Solders by Less Toxic Glasses, Glass and Ceramics, 66 (2009) 381-384.

DOI: 10.1007/s10717-010-9206-7

Google Scholar

[13] Ya.I. Vakhula, M.Ya. Matsigin, K.S. Besaga and L.V. Zhuk, Processes Occurring in Boron-and Molybdenum-Containing Glass-Forming Phosphate Solutions, Russian Journal of Applied Chemistry, 81 (2008) 752-754.

DOI: 10.1134/s1070427208050042

Google Scholar

[14] N.M. Bobkova and E.E. Trusova, Low-Melting Bismuth-Borate Glass: Composition Development, Glass and Ceramics, 68 (2012) 349-352.

DOI: 10.1007/s10717-012-9387-3

Google Scholar

[15] J.K. Chakvetadze, Yu.A. Spiridonov, K.V. Naumova and V.N. Sigaev, Low-Melting Glass Compositions for Vacuum Sealed Low Temperature Soldering of Materials in a Wide Range of TCLE [in Russian], Uspekhi v khimii i khimicheskoi tekhnologii, 29 (2015) 84-86.

Google Scholar

[16] V.L. Mamoshin, Fabrication of Low-Melting Glasses in the ZnSO4-KPO3-NaPO3 and Li2SO4-Na2SO4-K2SO4-NaPO3 Systems, Glass and Ceramics, 53 (1996) 166-168.

DOI: 10.1007/bf01166029

Google Scholar

[17] V.G. Vyatchina, L.A. Perelyaeva, M.G. Zuev and I.V. Baklanova, Structure and Properties of Glasses in the MgSO4-Na2B4O7-KPO3 system, Glass Physics and Chemistry, 35 (2009) 580-585.

DOI: 10.1134/s1087659609060054

Google Scholar

[18] Z. Koryakova and V. Bitt, Low-Melting Glasses with a Certain Complex of Physico-Chemical Properties [in Russian], Components & Technologies, 5 (2004) 126-128.

Google Scholar

[19] V.L. Mamoshin, Theoretical Estimation of the Possibility of Glass Formation in Sulfate, Phosphate, and Sulfate-Phosphate Systems, Glass and Ceramics, 53 (1996) 104-106.

DOI: 10.1007/bf01166062

Google Scholar

[20] V.L. Mamoshin, Some Aspects of Glass Formation in R'2O−P2O5 and R"O−P2O5 Systems, Glass and Ceramics, 54 (1997) 45-47.

DOI: 10.1007/bf02767143

Google Scholar

[21] V.L. Mamoshin, Fabrication of Low-Melting Glasses in the ZnSO4–KPO3–NaPO3 and Li2SO4–Na2SO4–K2SO4–NaPO3 Systems, Glass and Ceramics, 53 (1996) 166-168.

DOI: 10.1007/bf01166029

Google Scholar

[22] V.G. Vyatchina, L.A. Perelyaeva, M.G. Zuev and V.L. Mamoshin, Glass Formation and Vibrational Spectra of Glasses in the SrSO4–KPO3–Na2B4O7 System, Glass Physics and Chemistry, 29 (2003) 522-525.

DOI: 10.1023/b:gpac.0000007925.41967.de

Google Scholar

[23] V.G. Vyatchina, L.A. Perelyaeva, M.G. Zuev, V.L. Mamoshin and I.V. Baklanova, Glass formation and vibrational spectra of glasses in the RSO4-Na2B4O7-K2SO4 (R = Mg, Ca, Sr, Ba) systems, Glass Physics and Chemistry, 32 (2006) 634-637.

DOI: 10.1134/s1087659606060071

Google Scholar

[24] V.G. Vyatchina, L.A. Perelyaeva, M.G. Zuev, I.V. Baklanova and V.L. Mamoshin, Vibrational Spectra of Sulfoborate Glasses, Inorganic Materials, 41 (2005) 1128-1130.

DOI: 10.1007/s10789-005-0272-0

Google Scholar

[25] V.G. Vyatchina, L.A. Perelyaeva, M.G. Zuev and V.L. Mamoshin, Glass Formation and Vibrational Spectra of Glasses in the SrSO4–KPO3–Na2B4O7 System, Glass Physics and Chemistry, 29 (2003) 522-525.

DOI: 10.1023/b:gpac.0000007925.41967.de

Google Scholar