Bio-based phase change materials for thermal energy storage and release: A review
暂无分享,去创建一个
O. Younis | M. B. Ben Hamida | F. Rashid | M. Al‐Obaidi | N. Dhaidan | Ahmed Kadhim Hussein | Bagh Ali | Obai Younis
[1] R. Niu,et al. Bio-Based Polylactic Acid/Polyurethane Blends with Good Recyclability and Excellent Shape Stability for Solar Thermal Energy Storage , 2023, SSRN Electronic Journal.
[2] R. Bruno,et al. Bio-PCM to enhance dynamic thermal properties of dry-assembled wooden walls: Experimental results , 2023, Building and Environment.
[3] K. Sopian,et al. A Review of Recent Improvements, Developments, and Effects of Using Phase-Change Materials in Buildings to Store Thermal Energy , 2023, Designs.
[4] A. Ferhat,et al. Development of a new lightweight gypsum composite: Effect of mixed treatment of barley straws with hot water and bio-based phase change material on the thermo-mechanical properties , 2023, Construction and Building Materials.
[5] Ala Hasan,et al. Recent Advances, Development, and Impact of Using Phase Change Materials as Thermal Energy Storage in Different Solar Energy Systems: A Review , 2023, Designs.
[6] A. A. Mehrizi,et al. Application of bio-based phase change materials for effective heat management , 2023, Journal of Energy Storage.
[7] Xiang Lu,et al. Bio-based poly (lactic acid) shaped wood-plastic phase change composites for thermal energy storage featuring favorable reprocessability and mechanical properties , 2023, Solar Energy Materials and Solar Cells.
[8] S. M. Sadrameli,et al. A Novel Bio-Based Phase Change Material of Methyl Palmitate and Decanoic Acid Eutectic Mixture: Thermodynamic modeling and Thermal performance , 2023, Chemical Thermodynamics and Thermal Analysis.
[9] Zhibin Wang,et al. Bio-Based Mxene Hybrid Aerogel/Paraffin Composite Phase Change Materials with Superior Photo and Electrical Responses Toward Solar Thermal Energy Storage , 2023, SSRN Electronic Journal.
[10] Jue Cheng,et al. Relationship between cross-linking network structure and phase change performances toward multifunctional epoxy/bio-based wax form-stable phase change materials , 2023, Chemical Engineering Journal.
[11] F. Wei,et al. Valorization of Spent coffee Grounds: A sustainable resource for Bio-based phase change materials for thermal energy storage. , 2023, Waste management.
[12] Jialai Wang,et al. Microencapsulation of bio-based phase change materials with silica coated inorganic shell for thermal energy storage , 2023, Journal of Building Engineering.
[13] M. Kanoğlu,et al. Heat Transfer Enhancement of a Bio-based PCM/Metal Foam Composite Heat Sink , 2022, Thermal Science and Engineering Progress.
[14] A. Boudenne,et al. Mechanical and thermophysical properties of cement mortars including bio-based microencapsulated phase change materials , 2022, Construction and Building Materials.
[15] Yan Ma,et al. Nano-Ag modified bio-based loofah foam/polyethylene glycol composite phase change materials with higher photo-thermal conversion efficiency and thermal conductivity , 2022, Journal of Energy Storage.
[16] M. Jahangir,et al. Evaluation of thermal behavior and life cycle cost analysis of greenhouses with bio-phase change materials in multiple locations , 2022, Journal of Energy Storage.
[17] A. Shahsavar,et al. Experimental study on photovoltaic panels integrated with metal matrix sheets and bio-based phase change materials , 2022, Energy.
[18] Jialai Wang,et al. Cenosphere-based PCM microcapsules with bio-inspired coating for thermal energy storage in cementitious materials , 2022, Materials Chemistry and Physics.
[19] Chuanxiao Cheng,et al. Review on bio-based shape-stable phase change materials for thermal energy storage and utilization , 2022, Journal of Renewable and Sustainable Energy.
[20] R. Bennacer,et al. Dynamic hygrothermal behavior and energy performance analysis of a novel multilayer building envelope based on PCM and hemp concrete , 2022, Construction and Building Materials.
[21] Jue Cheng,et al. Bio-based Recyclable Form-Stable Phase Change Material Based on Thermally Reversible Diels–Alder Reaction for Sustainable Thermal Energy Storage , 2022, Chemical Engineering Journal.
[22] R. Belarbi,et al. Investigation of a novel bio-based phase change material hemp concrete for passive energy storage in buildings , 2022, Applied Thermal Engineering.
[23] Chao Wang,et al. Solar-driven multifunctional Au/TiO2@PCM towards bio-glycerol photothermal reforming hydrogen production and thermal storage , 2022, International Journal of Hydrogen Energy.
[24] R. Bennacer,et al. Multilayer assembly of phase change material and bio-based concrete: A passive envelope to improve the energy and hygrothermal performance of buildings , 2022, Energy Conversion and Management.
[25] V. Landry,et al. Incorporation technology of bio-based phase change materials for building envelope: A review , 2022, Energy and Buildings.
[26] G. Yin,et al. Bio-based poly (glycerol-itaconic acid)/PEG/APP as form stable and flame-retardant phase change materials , 2022, Composites Communications.
[27] V. Gumtapure,et al. Experimental investigation of shellac wax as potential bio-phase change material for medium temperature solar thermal energy storage applications , 2022, Solar Energy.
[28] V. Ram,et al. Thermal energy storage properties of bio-based n-dodecanoic acid/fly ash as a novel shape-stabilized phase change material , 2021, Case Studies in Thermal Engineering.
[29] R. Naresh,et al. Bio-based hexadecanol impregnated fly-ash aggregate as novel shape stabilized phase change material for solar thermal energy storage , 2021, Materials Today: Proceedings.
[30] Beom Yeol Yun,et al. Evaluation of thermal/acoustic performance to confirm the possibility of coffee waste in building materials in using bio-based microencapsulated PCM. , 2021, Environmental pollution.
[31] M. Ghodrat,et al. Partial charging/discharging of bio-based latent heat energy storage enhanced with metal foam sheets , 2021, International Communications in Heat and Mass Transfer.
[32] J. Qu,et al. Shape-stable composite phase change materials encapsulated by bio-based balsa wood for thermal energy storage , 2021 .
[33] R. Bennacer,et al. Experimental investigation on the hygrothermal behavior of a new multilayer building envelope integrating PCM with bio-based material , 2021 .
[34] M. Jebrane,et al. Multicomponent bio-based fatty acids system as phase change material for low temperature energy storage , 2021, Journal of Energy Storage.
[35] V. Stathopoulos,et al. What about greener phase change materials? A review on biobased phase change materials for thermal energy storage applications , 2021 .
[36] A. Sari,et al. Walnut shell derived bio-carbon/methyl palmitate as novel composite phase change material with enhanced thermal energy storage properties , 2021 .
[37] J. M. López-Romero,et al. Thermal Energy Storage by the Encapsulation of Phase Change Materials in Building Elements—A Review , 2021, Materials.
[38] R. Naresh,et al. Microencapsulated bio-based phase change material-micro concrete composite for thermal energy storage , 2021, Journal of Building Engineering.
[39] X. Sheng,et al. MXene-wrapped bio-based pomelo peel foam/polyethylene glycol composite phase change material with enhanced light-to-thermal conversion efficiency, thermal energy storage capability and thermal conductivity , 2020 .
[40] M. Mahendran,et al. Fire resistance of LSF wall systems lined with different wallboards including bio-PCM mat , 2020 .
[41] Dudul Das,et al. A novel form stable PCM based bio composite material for solar thermal energy storage applications , 2020 .
[42] Shufen Zhang,et al. Novel bio-based phase change materials with high enthalpy for thermal energy storage , 2020 .
[43] M. Jebrane,et al. Bio-Based Phase Change Materials Incorporated in Lignocellulose Matrix for Energy Storage in Buildings—A Review , 2020 .
[44] A. Pisello,et al. Palm oil for seasonal thermal energy storage applications in buildings: The potential of multiple melting ranges in blends of bio-based fatty acids , 2020 .
[45] V. Gumtapure,et al. Thermo-physical analysis of natural shellac wax as novel bio-phase change material for thermal energy storage applications , 2020, Journal of Energy Storage.
[46] E. Koenders,et al. A Comparative Study on the Thermal Energy Storage Performance of Bio-Based and Paraffin-Based PCMs Using DSC Procedures , 2020, Materials.
[47] L. Cabeza,et al. Palm oil-based bio-PCM for energy efficient building applications: Multipurpose thermal investigation and life cycle assessment , 2020, Journal of Energy Storage.
[48] S. Abidin,et al. Waste materials as the potential phase change material substitute in thermal energy storage system: a review , 2020 .
[49] Seong Jin Chang,et al. Spent coffee grounds as supporting materials to produce bio-composite PCM with natural waxes. , 2019, Chemosphere.
[50] V. Gumtapure,et al. Thermal property study of fatty acid mixture as bio-phase change material for solar thermal energy storage usage in domestic hot water application , 2019, Journal of Energy Storage.
[51] W. Wong,et al. A novel bio-based polyurethane/wood powder composite as shape-stable phase change material with high relative enthalpy efficiency for solar thermal energy storage , 2019, Solar Energy Materials and Solar Cells.
[52] Zhuohong Yang,et al. Solvent-free preparation of bio-based polyethylene glycol/wood flour composites as novel shape-stabilized phase change materials for solar thermal energy storage , 2019, Solar Energy Materials and Solar Cells.
[53] Zhi Han,et al. A promising form-stable phase change material prepared using cost effective pinecone biochar as the matrix of palmitic acid for thermal energy storage , 2019, Scientific Reports.
[54] J. Qu,et al. Bio-based poly (lactic acid)/high-density polyethylene blends as shape-stabilized phase change material for thermal energy storage applications , 2019, Solar Energy Materials and Solar Cells.
[55] I. Suamir,et al. Study on Thermal Properties of Bio-PCM Candidates in Comparison with Propylene Glycol and Salt Based PCM for sub-Zero Energy Storage Applications , 2019, IOP Conference Series: Materials Science and Engineering.
[56] S. Mahmud,et al. Charging nanoparticle enhanced bio-based PCM in open cell metallic foams: An experimental investigation , 2019, Applied Thermal Engineering.
[57] G. Lefebvre,et al. vegetable fat: A low-cost bio-based phase change material for thermal energy storage in buildings , 2019, Journal of Building Engineering.
[58] John A. Noël,et al. Supercooling and Nucleation of Fatty Acids: Influence of Thermal History on the Behavior of the Liquid Phase. , 2018, The journal of physical chemistry. B.
[59] Pierre Blanchet,et al. Performance of Wood-Based Panels Integrated with a Bio-Based Phase Change Material: A Full-Scale Experiment in a Cold Climate with Timber-Frame Huts , 2018, Energies.
[60] Gilles Lefebvre,et al. Elaboration and properties of a composite bio-based PCM for an application in building envelopes , 2018, Construction and Building Materials.
[61] S. Mahmud,et al. Geometry and nanoparticle loading effects on the bio-based nano-PCM filled cylindrical thermal energy storage system , 2018 .
[62] J. Tóth,et al. Fully bio-originated latent heat storing calcium alginate microcapsules with high coconut oil loading , 2018, Solar Energy.
[63] Yuan Song,et al. Synthesis and characterization of PEG/ZSM-5 composite phase change materials for latent heat storage , 2018, Renewable Energy.
[64] M. Fang,et al. Preparation and thermal properties of fatty acid/diatomite form-stable composite phase change material for thermal energy storage , 2018 .
[65] Mohammed El Ganaoui,et al. Thermal impact study of a bio-based wall coupled with an inner PCM layer , 2017 .
[66] Habtamu Bayera Madessa,et al. Thermal Performance of an Office Cubicle Integrated with a Bio-based PCM: Experimental Analyses , 2017 .
[67] Farah Souayfane,et al. Phase change materials (PCM) for cooling applications in buildings: A review , 2016 .
[68] D. Prakash,et al. Review on Phase Change Materials with Nanoparticle in Engineering Applications , 2016 .
[69] Khamid Mahkamov,et al. Passive thermal control in residential buildings using phase change materials , 2016 .
[70] Seunghwan Wi,et al. Energy efficient Bio-based PCM with silica fume composites to apply in concrete for energy saving in buildings , 2015 .
[71] Halime Paksoy,et al. Thermal enhancement of concrete by adding bio-based fatty acids as phase change materials , 2015 .
[72] Kaushik Biswas,et al. Low-cost phase change material as an energy storage medium in building envelopes: Experimental and numerical analyses , 2014 .
[73] Sumin Kim,et al. Thermal performance evaluation of Bio-based shape stabilized PCM with boron nitride for energy saving , 2014 .
[74] Wen Hu,et al. Thermal and mechanical properties of bio-based PCMs encapsulated with nanofibrous structure , 2014 .
[75] Ye Hong,et al. Preparation of polyethylene–paraffin compound as a form-stable solid-liquid phase change material , 2000 .
[76] H. Inaba,et al. Evaluation of thermophysical characteristics on shape-stabilized paraffin as a solid-liquid phase change material , 1997 .
[77] S. Chuangchote,et al. Elucidating the effects of emulsification on the thermal performances of palm oil-based phase change materials by molecular dynamics simulations , 2023, Journal of Energy Storage.
[78] Mingyue Du,et al. Bio-composite bacterial cellulose/melamine foam to prepare advanced phase change materials with sandwich structures for thermal storage and energy conversion , 2023, Journal of Energy Storage.
[79] Feiqiang Guo,et al. Role of biochar-based catalysts in microwave-induced biomass pyrolysis: Structural properties and modification with Fe-series metals , 2023, Fuel.
[80] M. Jebrane,et al. New Hybrid Bio-Composite Based on Epoxidized Linseed Oil and Wood Particles Hosting Ethyl Palmitate for Energy Storage in Buildings , 2022, SSRN Electronic Journal.
[81] Junqi Zhao,et al. High interface compatibility and phase change enthalpy of heat storage wood plastic composites as bio-based building materials for energy saving , 2022, Journal of Energy Storage.
[82] Yanlin Qin,et al. Novel bio-based composite phase change materials with reduced graphene oxide-functionalized spent coffee grounds for efficient solar-to-thermal energy storage , 2021 .
[83] Pierre Blanchet,et al. Thermal characterization of bio-based phase changing materials in decorative wood-based panels for thermal energy storage , 2019, Green Energy & Environment.
[84] Seulgi Yu,et al. Bio-based PCM/carbon nanomaterials composites with enhanced thermal conductivity , 2014 .
[85] Frédéric Kuznik,et al. A review on phase change materials integrated in building walls , 2011 .