Thermal performance of PCM and branch-structured fins for cylindrical power battery in a high-temperature environment
暂无分享,去创建一个
[1] J. Selman,et al. Active (air-cooled) vs. passive (phase change material) thermal management of high power lithium-ion packs: Limitation of temperature rise and uniformity of temperature distribution , 2008 .
[2] Jiateng Zhao,et al. Investigation of power battery thermal management by using mini-channel cold plate , 2015 .
[3] Adriano Sciacovelli,et al. Maximization of performance of a PCM latent heat storage system with innovative fins , 2015 .
[4] S. M. Sadrameli,et al. Thermal management of a LiFePO4 battery pack at high temperature environment using a composite of phase change materials and aluminum wire mesh plates , 2016 .
[5] M. Alipanah,et al. Numerical studies of lithium-ion battery thermal management systems using phase change materials and metal foams , 2016 .
[6] Liangbing Hu,et al. Rapid, in Situ Synthesis of High Capacity Battery Anodes through High Temperature Radiation-Based Thermal Shock. , 2016, Nano letters.
[7] Guoqing Zhang,et al. Experimental study on a novel battery thermal management technology based on low density polyethylene-enhanced composite phase change materials coupled with low fins , 2016 .
[8] Mingyi Chen,et al. Study of the fire hazards of lithium-ion batteries at different pressures , 2017 .
[9] Dongsheng Wen,et al. Experimental and numerical investigation on integrated thermal management for lithium-ion battery pack with composite phase change materials , 2017 .
[10] Wang Zhiwei,et al. Experimental investigation on the thermal behavior of cylindrical battery with composite paraffin and fin structure , 2017 .
[11] Weixiong Wu,et al. Experimental investigation on the thermal performance of heat pipe-assisted phase change material based battery thermal management system , 2017 .
[12] Chun Yang,et al. Numerical analysis and experimental visualization of phase change material melting process for thermal management of cylindrical power battery , 2018 .
[13] Guoming Chen,et al. Investigation on thermal management performance of PCM-fin structure for Li-ion battery module in high-temperature environment , 2018, Energy Conversion and Management.
[14] Jianqiu Li,et al. Thermal Runaway of Lithium-Ion Batteries without Internal Short Circuit , 2018, Joule.
[15] Zhengguo Zhang,et al. Thermal management performance of phase change materials with different thermal conductivities for Li-ion battery packs operated at low temperatures , 2018 .
[16] Wei Zhu,et al. Design, fabrication and numerical analysis of compact thermal management system integrated with composite phase change material and thermal bridge , 2018 .
[17] Yong Li,et al. Investigation on the thermal performance of a battery thermal management system using heat pipe under different ambient temperatures , 2018 .
[18] Deqiu Zou,et al. Thermal performance enhancement of composite phase change materials (PCM) using graphene and carbon nanotubes as additives for the potential application in lithium-ion power battery , 2018 .
[19] Jianqin Zhu,et al. Performance analysis of a novel thermal management system with composite phase change material for a lithium-ion battery pack , 2018, Energy.
[20] Weixiong Wu,et al. Thermal management optimization of a prismatic battery with shape-stabilized phase change material , 2018, International Journal of Heat and Mass Transfer.
[21] Haiping Ma,et al. Multi-objective optimization of charging patterns for lithium-ion battery management , 2018 .
[22] B. Mu,et al. Fabrication and thermal properties of tetradecanol/graphene aerogel form-stable composite phase change materials , 2018, Scientific Reports.
[23] I. Dincer,et al. A novel approach for performance improvement of liquid to vapor based battery cooling systems , 2019, Energy Conversion and Management.
[24] Zhile Yang,et al. Lithium-ion battery charging management considering economic costs of electrical energy loss and battery degradation , 2019, Energy Conversion and Management.
[25] Jie Zhang,et al. Design a J-type air-based battery thermal management system through surrogate-based optimization , 2019, Applied Energy.
[26] Hao Peng,et al. Solidification performance of a latent heat storage unit with innovative longitudinal triangular fins , 2019, International Journal of Heat and Mass Transfer.
[27] Qingsong Wang,et al. Experimental and numerical study on a novel hybrid battery thermal management system integrated forced-air convection and phase change material , 2019, Energy Conversion and Management.
[28] Wangyu Liu,et al. Experimental investigation on thermal management of cylindrical Li-ion battery pack based on vapor chamber combined with fin structure , 2019, Applied Thermal Engineering.
[29] Jian Qu,et al. Heat transfer characteristics of plug-in oscillating heat pipe with binary-fluid mixtures for electric vehicle battery thermal management , 2019, International Journal of Heat and Mass Transfer.
[30] Weixiong Wu,et al. A critical review of battery thermal performance and liquid based battery thermal management , 2019, Energy Conversion and Management.
[31] Qingsong Wang,et al. A review of lithium ion battery failure mechanisms and fire prevention strategies , 2019, Progress in Energy and Combustion Science.
[32] Wenhua H. Zhu,et al. A novel cooling structure with a matrix block of microfibrous media / phase change materials for heat transfer enhancement in high power Li-ion battery packs , 2019, Journal of Cleaner Production.
[33] T. Osaka,et al. Systematic analysis of interfacial resistance between the cathode layer and the current collector in lithium-ion batteries by electrochemical impedance spectroscopy , 2019, Journal of Power Sources.
[34] Orhan Aydin,et al. Combined effects of inclination angle and fin number on thermal performance of a PCM-based heat sink , 2019, Applied Thermal Engineering.
[35] M. Shojaeefard,et al. Improving the performance of a passive battery thermal management system based on PCM using lateral fins , 2019, Heat and Mass Transfer.
[36] Guoqing Zhang,et al. A phase change material with enhanced thermal conductivity and secondary heat dissipation capability by introducing a binary thermal conductive skeleton for battery thermal management , 2019, Applied Thermal Engineering.
[37] Shufen Zhang,et al. Novel strategies and supporting materials applied to shape-stabilize organic phase change materials for thermal energy storage–A review , 2019, Applied Energy.
[38] Furong Gao,et al. A novel framework for Lithium-ion battery modeling considering uncertainties of temperature and aging , 2019, Energy Conversion and Management.
[39] Hong Li,et al. Practical Evaluation of Li-Ion Batteries , 2019, Joule.
[40] Jian Wang,et al. Effect of High Temperature Circumstance on Lithium-Ion Battery and the Application of Phase Change Material , 2019, Journal of The Electrochemical Society.
[41] Xuning Feng,et al. Investigating the thermal runaway mechanisms of lithium-ion batteries based on thermal analysis database , 2019, Applied Energy.
[42] Inamuddin,et al. Recent developments in phase change materials for energy storage applications: A review , 2019, International Journal of Heat and Mass Transfer.
[43] Zhengqiang Pan,et al. An easy-to-implement multi-point impedance technique for monitoring aging of lithium ion batteries , 2019, Journal of Power Sources.
[44] Weixiong Wu,et al. Cooling efficiency improvement of air-cooled battery thermal management system through designing the flow pattern , 2019, Energy.
[45] W. Cheng,et al. Thermal management of Li-ion battery pack with the application of flexible form-stable composite phase change materials , 2019, Energy Conversion and Management.
[46] Guoqing Zhang,et al. Experimental research on the effective heating strategies for a phase change material based power battery module , 2019, International Journal of Heat and Mass Transfer.