[1] E C Li, P J Shi, B S Xu, et al. Analysis and reflection on the policies and regulations of remanufacturing in China. Journal of Mechanical Engineering, 2015, 51(19): 117-123. (in Chinese)
[2] C H Liu, Q H Zhu, F F Wei, et al. A review on remanufacturing assembly management and technology. International Journal of Advanced Manufacturing Technology, 2019, 105(11): 4798-4808.
[3] X L Yuan, M Y Liu, Q Yuan, et al. Transitioning China to a circular economy through remanufacturing: A comprehensive review of the management institutions and policy system. Resources Conservation and Recycling, 2020, 161: 1-16.
[4] B M Liu, D J Chen, W J Zhou, et al. The effect of remanufacturing and direct reuse on resource productivity of China's automotive production. Journal of Cleaner Production, 2018, 194: 309-317.
[5] K Chakraborty, S Mondal, K Mukherjee. Critical analysis of enablers and barriers in extension of useful life of automotive products through remanufacturing. Journal of Cleaner Production, 2019, 227: 1117-1135.
[6] M Huang, P X Yi, T L Shi, et al. A modal interval based method for dynamic decision model considering uncertain quality of used products in remanufacturing. Journal of Intelligent Manufacturing, 2018, 29(4): 925-935.
[7] L S Xiao, W L Liu, Q H Guo, et al. Comparative life cycle assessment of manufactured and remanufactured loading machines in China. Resources Conservation and Recycling, 2018, 131: 225-234.
[8] J S C Low, Y T Ng. Improving the economic performance of remanufacturing systems through flexible design strategies: A case study based on remanufacturing laptop computers for the cambodian market. Business Strategy and the Environment, 2018, 27(4): 503-527.
[9] S J Cho, H B Jun, D Kiritsis. Heuristic algorithms for maximising the total profit of end-of-life computer remanufacturing. International Journal of Production Research, 2017, 55(5): 1350-1367.
[10] K Kamigaki, M Matsumoto, Y A Fatimah. Remanufacturing and refurbishing in developed and developing countries in Asia - A case study in photocopiers. Procedia CIRP, 2017, 61: 645-650.
[11] B Yu, E Wu, C Chen, et al. A general approach to optimize disassembly sequence planning based on disassembly network: A case study from automotive industry. Advances in Production Engineering & Management, 2017, 12(4): 305-320.
[12] T Apatay, E Arslan, W Mack. Elastic-plastic design of a rotating shrink fit with functionally graded hub. Archive of Applied Mechanics, 2017, 87(11): 1829-1843.
[13] K Ning, J M Wang, H W Jiang, et al. Multi-objective intelligent cooperative design for the multilayer interference fit. Mathematical Problems in Engineering, 2019.
[14] C P Wang, H Y Qi, W X Hao, et al. Three-dimensional contact surface modeling and stress analysis of interference fit based on cylindricity error. Archive of Applied Mechanics, 2022, 92(3): 993-1014.
[15] T Apatay, E Arslan, W Mack. Effects of homogeneous and inhomogeneous heating on rotating shrink fits with annular inclusion and functionally graded hub. Journal of Thermal Stresses, 2019, 42(11): 1458-1479.
[16] S J Chu, T K Jeong, E H Jung. Effect of radial interference on torque capacity of press- and shrink-fit gears. International Journal of Automotive Technology, 2016, 17(5): 763-768.
[17] A D Taglia, G Campatelli. Design and performance assessment of a HSM tool holder. CISM Courses and Lectures, 2005, 486: 533-541.
[18] F Wang, S Zhang, S F Hao, et al. The nondestructive disassembly method of interference fit of sleeve-base structure in the case of cooling excitation. IOT with Smart Systems, 2019: 455-469.
[19] J Shen, S L Rao, G F Liu, et al. FEM analysis of hydraulic dismantling feasibility on shaft-sleeve interference fits. Advanced Materials Research, 2013, 712-715(2): 1116-1121.
[20] D Zhou, S Lan, H H Huang, et al. Nondestructive surface threshold definition for remanufacturing disassembly of interference fit. International Journal of Precision Engineering and Manufacturing. 2018, 19(11): 1735-1743.
[21] S Z WEN. Principles of tribology, 4th edn. Beijing: Tsinghua University Press, 2012.
[22] J Geng, S C Chen, S S Xin, et al. Surface/interface texture enhanced tribological properties of graphene sheets embedded carbon films. Tribology International, 2021, 163: 1-9.
[23] M Sedlacek, B Podgornik, A Ramalho, et al. Influence of geometry and the sequence of surface texturing process on tribological properties. Tribology International, 2017, 115: 268-273.
[24] X Y Liang, X H Wang, Y Liu, et al. Simulation and experimental investigation on friction reduction by partial laser surface texturing on piston ring. Tribology Transactions, 2019, 63(2): 371-381.
[25] R Duan, J X Deng, S T Lei, et al. A study on new surface textured tools for inhibition of derivative cutting. Journal of Manufacturing Science and Engineering - Transactions of the ASME, 2020, 141(12).
[26] T Y Chen, J H Ji, Y H Fu, et al. Tribological performance of UV picosecond laser multi-scale composite textures for C/SiC mechanical seals: Theoretical analysis and experimental verification. Ceramics International, 2021, 47(16): 23162-23180.
[27] X Y Wang, M Khonsari, S Y Li, et al Experimental verification of textured mechanical seal designed using multi-objective optimization. Industrial Lubrication and Tribology, 2019, 71(6): 766-771.
[28] I Shivakoti, G Kibria, R Cep, et al. Laser Surface texturing for biomedical applications: A review. Coatings, 2021, 11(2).
[29] Y Q Xing, J X Deng, Z Wu, et al. High friction and low wear properties of laser-textured ceramic surface under dry friction. Optics & Laser Technology, 2017, 93: 24-32.
[30] C Y Zhou, H W Li, X Wang. The interference fit for centrifugal compressor and the stress analysis for impeller construction. Compressor Blower and Fan Technology, 1998, (3): 8-10+3-4. (in Chinese)
[31] H Quan, Y Guo, R N Li, et al. Optimization design and experimental study of vortex pump based on orthogonal test. Science Progress, 2020, 103(1).
[32] Y Yang, L Zhou, H T Zhou, et al. Optimal design of slit impeller for low specific speed centrifugal pump based on orthogonal test. Journal of Marine Science and Engineering, 2021, 9(2).
[33] International Organization for Standardization. ISO 25178-2: 2012 Geometrical product specifications (GPS) - Surface texture: Areal - Part 2: Terms, definitions and surface texture parameters. Switzerland, 2012. http://www.iso.org .
[34] Z H Guo, F M Deng, L Zhang, et al. Fabrication and tribological properties of textured diamond coatings on WC-Co cemented carbide surfaces. Ceramics International, 2021, 47(4): 5423-5431.