主要论文 |
[1] Zijing Zeng, Changhong Wang*, Jinwei Gao. Numerical simulation and optimization of metallic network for highly efficient transparent conductive films [J]. Journal of Applied Physics, 2020, 127: 065104 [2] Chengdai Chen, Lingbo Mao, Tao Lin, Teng Tu, Longqian Zhu, Changhong Wang*, Performance testing and optimization of a thermoelectric elevator car air conditioner, Case Studies in Thermal Engineering, 2020,100616,ISSN 2214-157X, [3]Jie Feng, Changhong Wang*, Qingming Liu, Chili Wu. Enhancement of heat transfer via corona discharge by using needle-mesh and needle-fin electrodes [J]. International Journal of Heat and Mass Transfer, 2019, 130: 640-649. [4] Liu Qingming, Wang Changhong. Bubble interaction of annular flow in micro-channel boiling [J]. International Communications in Heat and Mass Transfer, 2019, 101: 76-81. [5]Na Li, Changhong Wang*, Tingzhen Li. Au@Ag Core-shell Nanoparticles Supported on Carbon Nanotubes as Promising Catalysts for Oxygen Electroreduction [J]. International Journal of Electrochemical Science, 2018, 13(7): 6756-6770. [6] Li Tingzhen, Tang Zhenghua, Wang Kai, Wu Wen, Chen Shaowei, Wang Changhong*. Palladium nanoparticles grown on beta-Mo2C nanotubes as dual functional electrocatalysts for both oxygen reduction reaction and hydrogen evolution reaction [J]. International Journal of Hydrogen Energy, 2018, 43(10): 4932-4941. [7] Huanpei Zheng, Changhong Wang*, Qingming Liu, Zhongxuan Tian, Xianbo Fan. Thermal performance of copper foam/paraffin composite phase change material [J]. Energy Conversion and Management, 2018, (157): 372-381. [8] Huanpei Zheng, Changhong Wang*. Numerical and Experimental Studies on the Heat Transfer Performance of Copper Foam Filled with Paraffin [J]. Energies, 2017, 10, 902. [9] Wang Changhong*, Lin Tao, Li Na, et al. Heat transfer enhancement of phase change composite material: Copper foam/paraffin[J]. Renewable Energy, 2016, 96: 960-965. [10] Wang Changhong*, Li Na, Wang Q, et al. Hybrid Nanomaterials Based on Graphene and Gold Nanoclusters for Efficient Electrocatalytic Reduction of Oxygen[J]. Nanoscale Research Letters, 2016, 11(1): 336. [11] Na Li, Zhenghua Tang*, Changhong Wang* et al. In-situ Preparation of Multi-wall Carbon Nanotubes/Au Composites for Oxygen Electroreduction. RSC Adv., 2016, 6, 91209-91215. [12] Wang C H*, Lin T, Huang J T, et al. Temperature response of a high power lithium-ion battery subjected to high current discharge[J]. Materials Research Innovations, 2015, 19(sup2): S2-156-S2-160. [13] 王长宏*, 林涛, 曾志环. 半导体温差发电过程的模型分析与数值仿真[J]. 物理学报, 2014, 63(19): 197201-197201 [14] Wang, C. H.*; Chen, Y.; Huang, J. Thermal and Electrical Mechanism of Thermoelectric Generation Chip and its Performances in Solar Thermal Energy thermal power system. Energy Education Science and Technology Part A: Energy Science and Research,2011,28: 331-338 [15] Wang Changhong, Chen, Ying. Heat transfer characteristics analysis on the TEC system of the microelectronic chip. Electronic Components & Materials. 2011,30, (2), 57-61. [16] Wang Changhong, H Jin,Numerical simulation of electro-thermal field in a large-scale aluminum reduction cell with graphitized cathode. 2010 International Conference on Computer Application and System Modeling,2010,15:418 -421 [17] Wang Chang-Hong etc. Experimental and Numerical Simulation on Uniformity of Thermal-Flow Field in an Advanced Packaging Electroplating Cell. J. Shanghai Jiaotong Univ. Sci.,2008, 13:3-8. [18] 冯杰,王长宏,刘清明.板式离子风散热系统性能研究与优化[J].工程热物理学报,2020,41(01):202-208. [19]王长宏,朱冬生,涂娟,汪南.微小孔径旋转冲击射流换热特性的数值模拟.华南理工大学学报,2009,37(3):47-52. [20]王长宏, 朱冬生, 吕琪铭,涂善东.多开口方腔内自然对流的流动与传热特性.化工学报,2008,4:830-835. |