Home
Editorial Committee
Brief Instruction
Back Issues
Instruction to Authors
Submission on line
Contact Us
Chinese

  The journal resolutely  resists all academic misconduct, once found, the paper will be withdrawn immediately.

Title:Research on laser cladding surface strengthening material for cold trimming die of an automobile panel
Authors:  
Unit:  
KeyWords:  
ClassificationCode:TG178; TN249
year,vol(issue):pagenumber:2023,48(1):208-215
Abstract:

 In order to improve the life of cold stamping die and reduce the manufacturing cost of die, the die manufacturing technology of laser cladding wear resistant layer on cast steel matrix surface was proposed. Firstly, three kinds of laser cladding materials were designed and the corresponding laser cladding process parameters were formulated. Laser cladding experiments were carried out on 45 cast steel matrix with the three materials by laser cladding equipment. Then, the physical and metallographic analyses of cladding samples were conducted. The results show that α-Fe, Fe-Cr intermetallic compounds, Fe-Ni solid solution, Ni-Cr-Fe solid solution and other phases are mainly found in the cladding layer of the first material, which forms solid solution strengthening and improves the hardness of cladding metal. The cladding layer of the second material mainly contains martensite, precipitated phase Fe-Cr, FeV, MnV, etc. The hardness and strength of martensite are improved, and the precipitated material at the grain boundary has the effect of dispersion strengthening, which significantly improves the hardness and strength of the material. The cladding layer of the third material mainly contains martensite, Cr7C3, Mn23C6 and other phases. The microstructure of the material has a reticular structure, and the carbide of reticular grain boundary wraps martensite, which can significantly improve the microhardness and strength of the material. Finally, the hardness, friction coefficient and wear resistance of the three materials were analyzed. It determines that the third material has the highest microhardness, the best wear resistance and the lowest friction coefficient. When the third material is coated on the edge of a cold stamping and trimming die, the die life is significantly increased.

Funds:
四川省自然科学基金面上项目(2022NSFSC0400)
AuthorIntro:
作者简介: 范 芳(1984-), 女, 硕士, 副教授 E-mail: ff496461632@ 163. com
Reference:

 [1]  李永钧. 我国汽车模具行业现状及趋势[J]. 汽车与配件,2019, (6): 44-48.


Li Y J. Current situation and trend of China′s automobile mold industry[J]. Automobile & Parts, 2019, (6): 44-48.

[2]  杨键. 降低汽车冲压模具成本的措施分析[J]. 南方农机,2019, 50 (6): 128.

Yang J. Analysis of measures to reduce the cost of automobile stamping die [J]. Nanfang Nongji, 2019, 50 (6): 128.

[3]  黄智泉. 堆焊制造与再制造技术发展综述[J]. 金属加工:热加工, 2021, (6): 23-28.

Huang Z Q. Development of surfacing and remanufacturing technology [J]. MW Metal Forming, 2021, (6): 23-28.

[4]  张立浩, 钱波, 张朝瑞, 等. 金属增材制造技术发展趋势综述[J]. 材料科学与工艺, 2022, 30 (1): 42-52.

Zhang L H, Qian B, Zhang C R, et al. Summary of development trend of metal additive manufacturing technology [J]. Materials Science and Technology, 2022, 30 (1): 42-52.

[5]  Gu Z, Peng W, Guo W, et al. Design and characterization on microstructure evolution and properties of laser-cladding Ni1. 5CrFeTi2B0. 5Mox high-entropy alloy coatings [J]. Surface

and Coatings Technology, 2021, 408: 126793.

[6]  Guo C, Zhou J S, Chen J M, et al. High temperature wear resistance of laser cladding NiCrBSi and NiCrBSi/ WC-Ni composite coatings [J]. Wear, 2011, 270: 492-498.

[7]  Wang T, Zhu L, Song H, et al. Effect of WC-17Co content on microstructure and properties of IN718 composites prepared by laser cladding [J]. Optics & Laser Technology, 2022, 148: 107780.

[8]  李云, 郭纯, 营梦, 等. Fe 基合金激光熔覆工艺参数优化及其性能研究[J]. 热加工工艺, 2022, 51 (1): 1-5.

Li Y, Guo C, Ying M, et al. Study on laser cladding process parameters optimization and performance of Fe-based alloy [J]. Hot Working Technology, 2022, 51 (1): 1-5.

[9]  张晓, 周亚军, 李政. 35CrMo 钢表面铁基激光熔覆层的组织和耐磨性能[J]. 机械工程材料, 2020, 44 (2): 55-59.

Zhang X, Zhou Y J, Li Z. Microstructure and wear resistance of ircon-based laser cladding layer on surface of 35CrMo steel [J]. Materials for Mechanical Engineering, 2020, 44 ( 2): 55 -

59.    

[10] 姚芳萍, 房立金, 李金华, 等. 激光功率对激光熔覆Ni 基涂层温度场和应力场的影响[J]. 塑性工程学报, 2021, 28(11): 87-94.

Yao F P, Fang L J, Li J H, et al. Effect of laser power on temperature field and stress field of laser cladding Ni-based coating [J]. Journal of Plasticity Engineering, 2021, 28 (11): 87-94.

[11] 姚永强, 林晨, 申井义, 等. 真空环境与基体预热对激光熔覆WC 增强镍基合金涂层组织和性能的影响[J]. 机械工程材料, 2020, 44 (5): 49-53.

Yao Y Q, Lin C, Shen J Y, et al. Effect of vacuum environment and substrate preheating on microstructure and properties of laser cladding WC reinforced nickel-based alloy coating [J]. Materials for Mechanical Engineering, 2020, 44 (5): 49-53.

[12] 刘博, 陈炜, 郭玉琴, 等. 基于激光熔覆的自润滑复合涂层制备及其性能研究[J]. 锻压技术, 2021, 46 (7): 134-139.

Liu B, Chen W, Guo Y Q, et al. Study on preparation and properties of self-lubricating composite coating based on laser cladding [J]. Forging & Stamping Technology, 2021, 46 (7): 134 -

139.  
Service:
This site has not yet opened Download Service】【Add Favorite
Copyright Forging & Stamping Technology.All rights reserved
 Sponsored by: Beijing Research Institute of Mechanical and Electrical Technology; Society for Technology of Plasticity, CMES
Tel: +86-010-62920652 +86-010-82415085     Fax:+86-010-62920652
Address: No.18 Xueqing Road, Beijing 100083, P. R. China
 E-mail: fst@263.net    dyjsgg@163.com