Browse > Article
http://dx.doi.org/10.5781/JWJ.2016.34.2.46

Effect of Heating Rates on Microstructures in Brazing Joints of STS304 Compact Heat Exchanger using MBF 20  

Kim, Jun-Tae (Dept. of Applied Hybrid Materials, Pusan National University)
Heo, Hoe-jun (Dept. of Material Science and Engineering, Pusan National University)
Kim, Hyeon-Jun (DongHwa Entec Co., Ltd. R&D Center)
Kang, Chung-Yun (Dept. of Material Science and Engineering, Pusan National University)
Publication Information
Journal of Welding and Joining / v.34, no.2, 2016 , pp. 46-53 More about this Journal
Abstract
Effect of heating rate on microstructure of brazed joints with STS 304 Printed Circuit Heat Exchanger (PCHE),which was manufactured as large-scale($1170(L){\times}520(W)){\times}100(T)$, mm), have been studied to compare bonding phenomenon. The specimens using MBF 20 was bonded at $1080^{\circ}C$ for 1hr with $0.38^{\circ}C/min$ and $20^{\circ}C/min$ heating rate, respectively. In case of a heating rate of $20^{\circ}C/min$, overflow of filler metal was observed at the edge of a brazed joints showing the height of filler metal was decreased from $100{\mu}m$ to $68{\mu}m$. At the center of the joints, CrB and high Ni contents of ${\gamma}$-Ni was existed. For the joints brazed at a heating rate of $0.38^{\circ}C/min$, the height of filler was decreased from $100{\mu}m$ to $86{\mu}m$ showing the overflow of filler was not appeared. At the center of the joints, only ${\gamma}$-Ni was detected gradating the Ni contents from center. This phenomenon was driven from a diffusion amount of Boron in filler metal. With a fast heating rate $20^{\circ}C/min$, diffusion amount of B was so small that liquid state of filler metal and base metal were reacted. But, for a slow heating rate $0.38^{\circ}C/min$, solid state of filler metal due to low diffusion amount of B reacted with base metal as a solid diffusion bonding.
Keywords
PCHE (Pring cicuit heat exchanger); Brazing; MBF 20; Boron diffusion; Microstructure;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 Ae-Jeong Jeon et al., J. Welding and Jopining, 32(4) (2014), 384-392 (in Korean)
2 Li, Qi, et al., RENEW SUST ENERG REV, 15(9) (2011), 4855-4875   DOI
3 Takeda Takeshi, et al., NUCL ENG DES, 168(1) (1997), 11-21   DOI
4 조흥곤, 기계산업 452 단일호 (2015), 64-72 (in Korean)
5 Sabharwall Piyush, et al., J. Thermal Sci. Eng. Appl., 5(1) (2013), 011009   DOI
6 Jiang, Wenchun, Jianming Gong, and Shan-Tung Tu., MATER DESIGN, 31(1) (2010), 648-653   DOI
7 Jeong-Woo Yu, et al., Journal of KWJS, 30(6) (2012), 106-112 (in Korean)
8 Ngo, Tri Lam, et al., EXP THERM FLUID SCI, 30(8) (2006), 811-819   DOI
9 Nikitin, Konstantin, Yasuyoshi Kato, and Lam Ngo., INT J REFRIG, 29(5) (2006), 807-814   DOI
10 Gale, W. F. and D. A. Butts., SCI TECHNOL WELD JOI, 9(4) (2004), 283-300.   DOI
11 Yong-Won Lee and Jong-Hoon Kim., Korean Journal of Materials Research, 17(3) (2007), 179-183   DOI
12 Chung-Yun Kang, et al., Journal of KWS, 17(2) (1999), 1-8 (in Korean)
13 Chung-Yun Kang, et al., Journal of KWS, 21(3) (2003), 21-3 (in Korean)
14 J. Lemus-Ruiiz et al., J MATER PROCESS TECH, 223 (2015), 16-21   DOI
15 Wenchun Jiang, Jianming Gong, MATER DESIGN, 32(2) (2011), 736-742   DOI
16 R K Roy, H Bapari, A K Panda, A Mitra, SCI TECHNOL WELD JOI, 18(3) (2013), 216-221   DOI
17 Ruiz-Vargas, J, et al., J MATER PROCESS TECH, 213(1) (2013), 20-29   DOI