Flexible self-healing phase change film with high transition enthalpy for thermal management
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[1] Jian Liu,et al. Self-healed inorganic phase change materials for thermal energy harvesting and management , 2023, Applied Thermal Engineering.
[2] Münür Sacit Herdem,et al. A Cnn-Abc Model for Estimation and Optimization of Heat Generation Rate and Voltage Distributions of Lithium-Ion Batteries for Electric Vehicles , 2022, SSRN Electronic Journal.
[3] M. Fowler,et al. Thermal Modelling Utilizing Multiple Experimentally Measurable Parameters , 2022, Batteries.
[4] Münür Sacit Herdem,et al. Numerical Simulation of Cooling Plate Using K-Epsilon Turbulence Model to Cool down Large-Sized Graphite/LiFePO4 Battery at High C-Rates , 2022, World Electric Vehicle Journal.
[5] S. Panchal,et al. Numerical investigation on thermal management system for lithium ion battery using phase change material , 2022, Materials Today: Proceedings.
[6] Shaojian Lin,et al. NIR-induced self-healing and recyclable polyurethane composites based on thermally reversible cross-linking for efficient solar-to-thermal energy storage , 2022, Polymer.
[7] Yujing Wang,et al. Self-healing, elastic and deformable novel composite phase change polymer based on thermoplastic elastomer SEBS for wearable devices , 2022, Journal of Materials Science.
[8] Liwu Fan,et al. Polyvinylpyrrolidone (PVP)-enabled significant suppression of supercooling of erythritol for medium-temperature thermal energy storage , 2022, Journal of Energy Storage.
[9] Zhengguo Zhang,et al. Thermochemical heat storage system for preventing battery thermal runaway propagation using sodium acetate trihydrate/expanded graphite , 2021, Chemical Engineering Journal.
[10] Nan Zhang,et al. Light-actuated shape memory and self-healing phase change composites supported by MXene/waterborne polyurethane aerogel for superior solar-thermal energy storage , 2021, Composites Communications.
[11] Xiao-Li Li,et al. Flexible and multifunctional phase change composites featuring high-efficiency electromagnetic interference shielding and thermal management for use in electronic devices , 2021, Chemical Engineering Journal.
[12] Jinliang Song,et al. The graphite foam/erythritol composites with ultrahigh thermal conductivity for medium temperature applications , 2021 .
[13] Zong-liang Du,et al. Recyclable, Self-Healing, and Flame-Retardant Solid-Solid Phase Change Materials Based on Thermally Reversible Cross-Links for Sustainable Thermal Energy Storage. , 2021, ACS applied materials & interfaces.
[14] Guoqing Zhang,et al. Preparation of Quasi‐Thermoplastic Phase Change Polymer with Intrinsic Antileakage Performance for Battery Thermal Management , 2021, Advanced Materials Interfaces.
[15] Nianrong Feng,et al. Shape-stabilized and antibacterial composite phase change materials based on wood-based cellulose micro-framework, erythritol-urea or erythritol-thiourea for thermal energy storage , 2021, Solar Energy.
[16] R. Wills,et al. Advances in Prevention of Thermal Runaway in Lithium‐Ion Batteries , 2021, Advanced Energy and Sustainability Research.
[17] Guoqing Zhang,et al. Thermal management of Lithium-ion battery pack through the application of flexible form-stable composite phase change materials , 2021, Applied Thermal Engineering.
[18] Zong-liang Du,et al. Recyclable and self-healing polyurethane composites based on Diels-Alder reaction for efficient solar-to-thermal energy storage , 2020 .
[19] Huimin Yu,et al. Hydrogen Bonding Reinforced Hydrogel Electrolyte for Flexible, Robust and All-In-One Supercapacitor with Excellent Low-Temperature Tolerance. , 2020, ACS applied materials & interfaces.
[20] D. Liang,et al. Preparation and research of intrinsic self-healing elastomers based on hydrogen and ionic bond , 2020 .
[21] Xi Chen,et al. Study of using enhanced heat-transfer flexible phase change material film in thermal management of compact electronic device , 2020 .
[22] Jingxin Lei,et al. Thermally reliable, recyclable and malleable solid–solid phase-change materials through the classical Diels–Alder reaction for sustainable thermal energy storage , 2019, Journal of Materials Chemistry A.
[23] W. Cheng,et al. Effects of surface roughness, temperature and pressure on interface thermal resistance of thermal interface materials , 2019, International Journal of Heat and Mass Transfer.
[24] Guoqing Zhang,et al. Experimental investigation of the thermal performance of silicon cold plate for battery thermal management system , 2019, Applied Thermal Engineering.
[25] Valan Arasu Amirtham,et al. Characterisation and thermophysical properties of graphene nanoparticles dispersed erythritol PCM for medium temperature thermal energy storage applications , 2019, Thermochimica Acta.
[26] Chao Xu,et al. Characterization and stability study of a form-stable erythritol/expanded graphite composite phase change material for thermal energy storage , 2019, Renewable Energy.
[27] Vincent Crasta,et al. Structural, optical, mechanical and dielectric properties of titanium dioxide doped PVA/PVP nanocomposite , 2019, Journal of Polymer Research.
[28] Yi Wang,et al. Preparation and Characterization of Erythritol/Graphene Oxide Shape-Stable Composites with Improved Thermal-Physical Property , 2019, ChemistrySelect.
[29] Z. Tan,et al. Thermal analysis and heat capacity study of polyethylene glycol (PEG) phase change materials for thermal energy storage applications , 2019, The Journal of Chemical Thermodynamics.
[30] Huifang Kang,et al. Reverse layered air flow for Li-ion battery thermal management , 2018, Applied Thermal Engineering.
[31] Yuanlai Fang,et al. Thermal-Driven Self-Healing and Recyclable Waterborne Polyurethane Films Based on Reversible Covalent Interaction , 2018, ACS Sustainable Chemistry & Engineering.
[32] Peng Liu,et al. Multiphase-Assembly of Siloxane Oligomers with Improved Mechanical Strength and Water-Enhanced Healing. , 2018, Angewandte Chemie.
[33] Hua Wang,et al. A yolk/shell strategy for designing hybrid phase change materials for heat management in catalytic reactions , 2017 .
[34] Kalim Deshmukh,et al. Investigation of Microstructure, Morphology, Mechanical, and Dielectric Properties of PVA/PbO Nanocomposites , 2017 .
[35] Qingchuan Tao,et al. Multiple Hydrogen Bonding Enables the Self-Healing of Sensors for Human-Machine Interactions. , 2017, Angewandte Chemie.
[36] Christopher A. Long,et al. A review of evaporative cooling system concepts for engine thermal management in motor vehicles , 2017 .
[37] Matthew J. Harrington,et al. Histidine–Zinc Interactions Investigated by Isothermal Titration Calorimetry (ITC) and their Application in Self-Healing Polymers , 2017 .
[38] Rangga Aji Pamungkas,et al. Experimental investigation on performance of lithium-ion battery thermal management system using flat plate loop heat pipe for electric vehicle application , 2016 .
[39] Rim Saada,et al. Causes and consequences of thermal runaway incidents—Will they ever be avoided? , 2015 .
[40] Ying Yang,et al. Self-healing polymeric materials. , 2013, Chemical Society reviews.
[41] Qingsong Wang,et al. Thermal runaway caused fire and explosion of lithium ion battery , 2012 .
[42] R. Bhajantri,et al. Studies on Fluorescent PVA+PVP+MPDMAPP Composite Films , 2009 .