Investigation of horizontal and vertical distance of lithium-ion batteries on the thermal management of the battery pack filled with phase change material with the air flow
暂无分享,去创建一个
[1] Zhongjie Li,et al. Experimental investigation on performance improvement of cantilever piezoelectric energy harvesters via escapement mechanism from extremely Low-Frequency excitations , 2022, Sustainable Energy Technologies and Assessments.
[2] Anas M. Abdelrahman,et al. Effect of combined air cooling and nano enhanced phase change materials on thermal management of lithium-ion batteries , 2022, Journal of Energy Storage.
[3] Anas M. Abdelrahman,et al. Cooling of non-sloped, positively sloped, and negatively sloped arrangements of Li-ion batteries with a phase change material connected to a solar system , 2022, Journal of Energy Storage.
[4] Ahmad Hajatzadeh Pordanjani,et al. Investigation of passive method in thermal management of lithium-ion batteries at different discharge rates by changing the number of cavities containing phase change materials , 2022, Journal of Energy Storage.
[5] Shaorong Xie,et al. Performance comparison of electromagnetic generators based on different circular magnet arrangements , 2022, Energy.
[6] M. El-Shorbagy,et al. Optimization and sensitivity analysis of extended surfaces during melting and freezing of phase changing materials in cylindrical Lithium-ion battery cooling , 2022, Journal of Energy Storage.
[7] Z. Said,et al. Energy, exergy, economic and environmental (4E) analysis of a parabolic trough solar collector using MXene based silicone oil nanofluids , 2022, Solar Energy Materials and Solar Cells.
[8] Qi Zhang,et al. Activated metal-organic frameworks (a-MIL-100 (Fe)) as fillers in polymer electrolyte for high-performance all-solid-state lithium metal batteries , 2022, SSRN Electronic Journal.
[9] Yanli Tan,et al. Engineering hierarchical porous S-doped Defective nickel Cobaltite/carbon hybrids to boost efficient asymmetric electrochemical capacitor , 2022, Composites Science and Technology.
[10] Li Ma,et al. Hierarchical polygon Co3O4 flakes/N,O-dual doped porous carbon frameworks for flexible hybrid supercapacitors , 2022, Electrochimica Acta.
[11] Yongbing Tang,et al. A Vanadium‐Based Fluoroxide Cathode Material for Lithium‐Ion Storage with High Energy Density , 2022, Advanced Sustainable Systems.
[12] X. Sheng,et al. A Multifunctional Flexible Composite Film with Excellent Multi‐Source Driven Thermal Management, Electromagnetic Interference Shielding, and Fire Safety Performance, Inspired by a “Brick–Mortar” Sandwich Structure , 2022, Advanced Functional Materials.
[13] Changhai Zhang,et al. Polymer dielectric films exhibiting superior high-temperature capacitive performance by utilizing an inorganic insulation interlayer. , 2022, Materials horizons.
[14] J. Luo,et al. Battery thermal management systems (BTMs) based on phase change material (PCM): A comprehensive review , 2022, Chemical Engineering Journal.
[15] O. Younis,et al. Numerical simulation of the effect of battery distance and inlet and outlet length on the cooling of cylindrical lithium-ion batteries and overall performance of thermal management system , 2022, Journal of Energy Storage.
[16] K. Monika,et al. Comparative assessment among several channel designs with constant volume for cooling of pouch-type battery module , 2022, Energy Conversion and Management.
[17] E. Houshfar,et al. Experimental study of thermal management system for cylindrical Li-ion battery pack based on nanofluid cooling and copper sheath , 2022, International Journal of Thermal Sciences.
[18] B. Sundén,et al. Progress and challenges on the thermal management of electrochemical energy conversion and storage technologies: Fuel cells, electrolysers, and supercapacitors , 2022, Progress in Energy and Combustion Science.
[19] Qi Zhang,et al. Metal-Organic Frameworks-Based Solid-State Electrolytes for All Solid-State Lithium Metal Batteries: A Review , 2022, CrystEngComm.
[20] M. Jabbari,et al. Numerical analysis of lithium-ion battery thermal management system using phase change material assisted by liquid cooling method , 2022, International Journal of Heat and Mass Transfer.
[21] L. Luo,et al. A review on thermal management of lithium-ion batteries for electric vehicles , 2022 .
[22] Karim Egab,et al. Thermal management analysis of li-ion battery-based on cooling system using dimples with air fins and perforated fins , 2022 .
[23] J. Monsalve-Serrano,et al. Thermal runaway evaluation and thermal performance enhancement of a lithium-ion battery coupling cooling system and battery sub-models , 2021, Applied Thermal Engineering.
[24] X. Sui,et al. Shape-stable and Fire-resistant Hybrid Phase Change Materials with Enhanced Thermoconductivity for Battery Cooling , 2021, Chemical Engineering Journal.
[25] Yuzhen Sun,et al. Simulation of nanofluid-cooled lithium-ion battery during charging: A battery connected to a solar cell , 2021, International Journal of Mechanical Sciences.
[26] M. Negnevitsky,et al. A Study of Variable Cell Spacings to the Heat Transfer Efficiency of Air-Cooling Battery Thermal Management System , 2021, Applied Sciences.
[27] A. Allouhi,et al. Recent advances on improved optical, thermal, and radiative characteristics of plasmonic nanofluids: Academic insights and perspectives , 2021, Solar Energy Materials and Solar Cells.
[28] A. Incecik,et al. Phase change material heat storage performance in the solar thermal storage structure employing experimental evaluation , 2021, Journal of Energy Storage.
[29] Raja Mazuir Raja Ahsan Shah,et al. Modelling of battery thermal management: A new concept of cooling using fuel , 2021, Fuel.
[30] B. Sundén,et al. Effect of an impinging jet on the flow characteristics and thermal performance of mainstream in battery cooling of hybrid electric vehicles , 2021, International Journal of Heat and Mass Transfer.
[31] Minxiang Wei,et al. Effect of liquid cooling system structure on lithium-ion battery pack temperature fields , 2021, International Journal of Heat and Mass Transfer.
[32] A. Allouhi,et al. Thermophysical properties of water, water and ethylene glycol mixture-based nanodiamond+Fe3O4 hybrid nanofluids: An experimental assessment and application of data-driven approaches , 2021, Journal of Molecular Liquids.
[33] Y. Diao,et al. Active air cooling thermal management system based on U-shaped micro heat pipe array for lithium-ion battery , 2021 .
[34] Yunze Long,et al. Predictive model of convective heat transfer coefficient in bone micro-grinding using nanofluid aerosol cooling , 2021 .
[35] Yongbing Tang,et al. High Oxidation Potential ≈6.0 V of Concentrated Electrolyte toward High‐Performance Dual‐Ion Battery , 2021, Advanced Energy Materials.
[36] Yongbing Tang,et al. K‐Ion Battery Cathode Design Utilizing Trigonal Prismatic Ligand Field , 2021, Advanced materials.
[37] Rasool Kalbasi. Introducing a novel heat sink comprising PCM and air - Adapted to electronic device thermal management , 2021 .
[38] Jiapei Zhao,et al. Simulation and analysis of air cooling configurations for a lithium-ion battery pack , 2021 .
[39] Kumar Kirad,et al. Design of cell spacing in lithium-ion battery module for improvement in cooling performance of the battery thermal management system , 2021 .
[40] Lijuan Wang,et al. Construction of pseudocapacitive Li2-xLaxZnTi3O8 anode for fast and super-stable lithium storage , 2021 .
[41] M. R. Elkadeem,et al. A state of art review and future viewpoint on advance cooling techniques for Lithium–ion battery system of electric vehicles , 2020 .
[42] Baobao Chang,et al. Rapid sintering method for highly conductive Li7La3Zr2O12 ceramic electrolyte , 2020, Ceramics International.
[43] Yongbing Tang,et al. Fast Rate and Long Life Potassium‐Ion Based Dual‐Ion Battery through 3D Porous Organic Negative Electrode , 2020, Advanced Functional Materials.
[44] Zhengguo Zhang,et al. Computationally efficient thermal network model and its application in optimization of battery thermal management system with phase change materials and long-term performance assessment , 2020 .
[45] Naiqing Zhang,et al. Experimental assessment of an environmentally friendly grinding process using nanofluid minimum quantity lubrication with cryogenic air , 2018 .
[46] G. Lorenzini,et al. Constructal multi-scale structure of PCM-based heat sinks , 2017 .
[47] Zhonghao Rao,et al. Thermal performance of lithium-ion battery thermal management system by using mini-channel cooling , 2016 .
[48] Fan Zhang,et al. A Novel Aluminum–Graphite Dual‐Ion Battery , 2016 .
[49] Xiaodong Wang,et al. Microencapsulation of n-octadecane phase change material with calcium carbonate shell for enhancement of thermal conductivity and serving durability: Synthesis, microstructure, and performance evaluation , 2014 .
[50] C. H. Li,et al. Modeling and Numerical Simulation of the Grinding Temperature Field with Nanoparticle Jet of MQL , 2013 .
[51] D. Jeon,et al. Thermal modeling of cylindrical lithium ion battery during discharge cycle , 2011 .