Phase composition, microstructure evolution and wear behavior of Ni-Mn-Si coatings on copper by laser cladding

被引:41
作者
Zhang, Peilei [1 ]
Liu, Xiaopeng
Yan, Hua
机构
[1] Shanghai Univ Engn Sci, Sch Mat Engn, 333 Long Teng Rd,Songjiang Campus, Shanghai 201620, Peoples R China
关键词
Coating; Microhardness; Laser cladding; Microstructure; TRANSITION-ELEMENTS; CRYSTAL-STRUCTURE; SILICIDES; RESISTANCE; SYSTEM; ALLOY; CR;
D O I
10.1016/j.surfcoat.2017.08.072
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Three Ni-Mn-Si coatings were synthesized on copper plate by laser cladding. The compositions of coatings were Ni(40 at.%)-Mn(20 at.%)-Si(40 at.%), Ni(40 at.%)-Mn(30 at.%)-Si(30 at.%) and Ni(40 at.%)-Mn(40 at.%) -Si (20 at.%), respectively. There are Mn5Si2, Mn5Si3, Mn3Si, Ni3Si, Ni2Si, Cu3Si, Mn3Ni2Si and Mn6Ni16Si7 in three coatings. Ni2Si and Ni3Si were found in Coating 1# (Ni40Mn20Si40) and Ni2Si was found in Coating 2# (Ni40Mn30Si30) and there was not any MnSi1.75-x phase in three coatings. There are not any Ni-Si binary phases in Coating 3# (Ni40Mn40Si20). Mn5Si2 was found in Coating 1# and Mn5Si2 and Mn3Si were found in Coating 2#. Mn5Si2, Mn5Si3 and Mn3Si were found in Coating 3#. There are Mn3Ni2Si phase in Coating 1# and MneNi(16)Si(7) phase in Coating 3#. Mn6Ni16Si7 phases were found in Coating 2#. The highest hardness which is about 1100 HV occurs in the clad layer of Coating 1#. Metal silicides (Ni-Si and Mn-Si phases) are the major factors in increasing the hardness of coatings. There are mainly Ni-Si metal silicides in Coating 1#, Mn-Si metal silicides in Coatings 2# and 3#. Hardness of Ni-Mn-Si coatings depends on Ni-Si phases especially Ni3Si in laser processing. The average friction coefficient for Coating 1#, Coating 2# and Coating 3# is 0.1964, 0.2393 and 0.2582, respectively. Ni-Si phase plays a more important role than Mn-Si in increasing the hardness and decreasing the friction coefficient of coatings.
引用
收藏
页码:504 / 510
页数:7
相关论文
共 37 条
[1]  
BARDOS DI, 1966, T METALL SOC AIME, V236, P40
[2]   THE CRYSTAL STRUCTURE OF THE INTERMETALLIC COMPOUND MG6SI7CU16 [J].
BERGMAN, G ;
WAUGH, JLT .
ACTA CRYSTALLOGRAPHICA, 1953, 6 (01) :93-94
[3]   THE CRYSTAL STRUCTURE OF THE INTERMETALLIC COMPOUND MG6SI7CU16 [J].
BERGMAN, G ;
WAUGH, LT .
ACTA CRYSTALLOGRAPHICA, 1956, 9 (03) :214-217
[4]   STUDY OF NEW TERNARY STRUCTURES OF G-PHASE ISOSTRUCTURAL TRANSITION-METALS [J].
CHAUDOUET, P ;
MADAR, R ;
FRUCHART, R ;
LAMBERT, B .
MATERIALS RESEARCH BULLETIN, 1983, 18 (06) :713-719
[5]  
Cherkashin Ye., 1958, CHEM, V3, P650
[6]  
Draper C. W., 1985, International Metals Reviews, V30, P85
[7]   LASER SURFACE ALLOYING - A BIBLIOGRAPHY [J].
DRAPER, CW ;
EWING, CA .
JOURNAL OF MATERIALS SCIENCE, 1984, 19 (12) :3815-3825
[8]   Laser cladding of Ni-Cr/Al2O3 composite coatings on AISI 304 stainless steel [J].
Feng, J ;
Ferreira, MGS ;
Vilar, R .
SURFACE & COATINGS TECHNOLOGY, 1997, 88 (1-3) :212-218
[9]  
FOLKES JA, 1994, SURF COAT TECH, V63, P65, DOI 10.1016/S0257-8972(05)80009-X
[10]  
Gladyshevskii E. I., 1962, PHYS CRYSTALLOGR, V6, P615