共 82 条
- [71] JI Jin, DING Xiaohong, XIONG Ming, Adaptive growth technique of stiffener layout design for plate/shell structures based on optimality criterion, Journal of Mechanical Engineering, 51, 11, pp. 162-169, (2014)
- [72] JI Jin, DING Xiaohong, Stiffener Layout optimization of inlet structure for electrostatic precipitator by improved adaptive growth method, Advances in Mechanical Engineering, 11, pp. 1-8, (2014)
- [73] JI Jin, DING Xiaohong, XIONG Ming, Optimal stiffener layout of plate shell structures by bionic growth method, Computers and Structures, 135, 135, pp. 88-99, (2014)
- [74] DONG Xiaohu, DING Xiaohong, XIONG Min, Optimal layout of internal stiffeners for three-dimensional box structures based on natural branching phenomena, Engineering Optimization, 51, 4, pp. 590-607, (2019)
- [75] ZHANG Heng, DING Xiaohong, DONG Xiaohu, Et al., Optimal topology design of internal stiffeners for machine pedestal structures using biological branching phenomena, Structural and Multidisciplinary Optimization, 57, 6, pp. 2323-2338, (2018)
- [76] SHEN Lei, DING Xiaohu, LI Tianjian, Et al., Structural dynamic design optimization and experimental verification of a machine tool, International Journal of Advanced Manufacturing Technology, 104, pp. 3773-3786, (2019)
- [77] DONG Xiaohu, DING Xiaohong, LI Guojie, Et al., Stiffener layout optimization of plate and shell structures for buckling problem by adaptive growth method, Structural and Multidisciplinary Optimization, 61, pp. 301-318, (2020)
- [78] WANG Pengjia, GONG Yadong, XIE Hualong, Et al., Applying CBR to machine tool product configuration design oriented to customer requirements, Chinese Journal of Mechanical Engineering, 31, 1, pp. 60-76, (2017)
- [79] HUGO I., Medellin-castillo and jorge zaragoza-siqueiros. design and manufacturing strategies for fused deposition modelling in additive manufacturing: A review, Chinese Journal of Mechanical Engineering, 32, 1, (2019)
- [80] PFAFF A, BIERDEL M, HOSCHKE K, Et al., Resource analysis model and validation for selective laser melting, constituting the potential of lightweight design for material efficiency, Sustainable Production and Consumption, 21, pp. 182-191, (2020)