The controlled preparation of secondary cells realizes the bimodal structure through two different pressure drop methods
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Jingkui Yang | W. Gong | Chun Zhang | Li He | Tu Jiang | Lushuai Cao | Bujin Liu | Xiangbu Zeng | Ming Li | Di Zhang
[1] Tairong Kuang,et al. Preparation and properties of thermoplastic polyurethane foams with bimodal structure based on TPU/PDMS blends , 2021 .
[2] Wenhua Chen,et al. Microwave-assisted foaming and sintering to prepare lightweight high-strength polystyrene/carbon nanotube composite foams with an ultralow percolation threshold , 2021, Journal of Materials Chemistry C.
[3] Chul B. Park,et al. Microcellular injection molded outstanding oleophilic and sound-insulating PP/PTFE nanocomposite foam , 2021 .
[4] W. Gong,et al. Cell growth, deformation and model establishment of micro-foamed polystyrene material , 2021 .
[5] Jingkui Yang,et al. In-Situ Visualization of the Cell Formation Process of Foamed Polypropylene under Different Foaming Environments , 2021, Polymers.
[6] Jingkui Yang,et al. Experimental and numerical analysis of bubble nucleation in foaming polymer , 2021 .
[7] W. Gong,et al. Application of a novel cavity nucleating agent based on cyclodextrin in polymer foaming materials and in situ visual injection moulding study , 2021, Journal of Materials Science.
[8] G. Vancso,et al. Designer Core–Shell Nanoparticles as Polymer Foam Cell Nucleating Agents: The Impact of Molecularly Engineered Interfaces , 2021, ACS applied materials & interfaces.
[9] T. Tang,et al. Striking effect of carbon nanotubes on adjusting sc-CO2 foaming performance of PS/LLDPE blends and forming semi-open cellular structure , 2020 .
[10] Chul B. Park,et al. Lightweight and tough PP/talc composite foam with bimodal nanoporous structure achieved by microcellular injection molding , 2020 .
[11] Guoqun Zhao,et al. Fabrication of high porosity Nanocellular polymer foams based on PMMA/PVDF blends , 2020 .
[12] W. Gong,et al. Effect of Organic Cage Nucleating Agent Structure on Nucleating Efficiency and the Structure-Property Relationship , 2020, Polymers.
[13] Quang Binh Ho,et al. Stabilization of the cellular structure of polypropylene foams and secondary nucleation mechanism in the presence of graphene nanoplatelets , 2020 .
[14] Chul B. Park,et al. Strong and super thermally insulating in-situ nanofibrillar PLA/PET composite foam fabricated by high-pressure microcellular injection molding , 2020, Chemical Engineering Journal.
[15] G. Vancso,et al. Bubble Seeding Nanocavities: Multiple Polymer Foam Cell Nucleation by Polydimethylsiloxane-Grafted Designer Silica Nanoparticles , 2020, ACS nano.
[16] Tao Liu,et al. Analysis of bubble coalescence and determination of the bubble radius for LCB‐PET melt foaming with a PBB model , 2019 .
[17] Chul B. Park,et al. Lightweight, thermally insulating, and low dielectric microcellular high-impact polystyrene (HIPS) foams fabricated by high-pressure foam injection molding with mold opening , 2018 .
[18] W. Gong,et al. Methodology for describing characteristic foam parameters during chemical foaming of Low-density Polyethylene , 2018, Materials Research Express.
[19] Chul B. Park,et al. Injection-molded microcellular PLA/graphite nanocomposites with dramatically enhanced mechanical and electrical properties for ultra-efficient EMI shielding applications , 2018 .
[20] Kun Cao,et al. In situ visualization on formation mechanism of bi-modal foam via a two-step depressurization approach , 2018 .
[21] Joost Duvigneau,et al. Size-Dependent Submerging of Nanoparticles in Polymer Melts: Effect of Line Tension , 2018, Macromolecules.
[22] H. Sovová,et al. Effect of organic co-blowing agents on the morphology of CO2 blown microcellular polystyrene foams , 2017 .
[23] Chun Zhang,et al. Visualization observation of cells growth in low-density polyethylene foaming processes , 2017 .
[24] Guoqun Zhao,et al. A novel gas-assisted microcellular injection molding method for preparing lightweight foams with superior surface appearance and enhanced mechanical performance , 2017 .
[25] Chul B. Park,et al. Effect of the melt compressibility and the pressure drop rate on the cell-nucleation behavior in foam injection molding with mold opening , 2017 .
[26] Chul B. Park,et al. Role of elastic strain energy in cell nucleation of polymer foaming and its application for fabricating sub-microcellular TPU microfilms , 2017 .
[27] Chul B. Park,et al. Effect of foam processing parameters on bubble nucleation and growth dynamics in high-pressure foam injection molding , 2016 .
[28] Chul B. Park,et al. Study of the bubble nucleation and growth mechanisms in high-pressure foam injection molding through in-situ visualization , 2016 .
[29] Lin-Qiong Xu,et al. Formation mechanism and tuning for bi-modal cell structure in polystyrene foams by synergistic effect of temperature rising and depressurization with supercritical CO2 , 2016 .
[30] Weihua Ma,et al. Polypropylene/hydroxyl-multiwall carbon nanotubes composites: crystallization behavior, mechanical properties, and foaming performance , 2016, Journal of Materials Science.
[31] N. Takeda,et al. Unloading response prediction of indentation loaded foam core sandwich structures using extended foam material model with tensile hardening , 2016 .
[32] L. Turng,et al. Manufacturing of advanced biodegradable polymeric components , 2015 .
[33] Xiangfang Peng,et al. A novel multiple soaking temperature (MST) method to prepare polylactic acid foams with bi-modal open-pore structure and their potential in tissue engineering applications , 2015 .
[34] Chul B. Park,et al. Development of high void fraction polylactide composite foams using injection molding: Crystallization and foaming behaviors , 2015 .
[35] Chul B. Park,et al. The interfacial tension of molten polylactide in supercritical carbon dioxide , 2014 .
[36] Chul B. Park,et al. Mechanisms of nanoclay-enhanced plastic foaming processes: effects of nanoclay intercalation and exfoliation , 2013, Journal of Nanoparticle Research.
[37] L. J. Lee,et al. Extruded polystyrene foams with bimodal cell morphology , 2012 .
[38] Chul B. Park,et al. A visualization system for observing plastic foaming processes under shear stress , 2012 .
[39] Chul B. Park,et al. Mechanism of extensional stress-induced cell formation in polymeric foaming processes with the presence of nucleating agents , 2012 .
[40] L. J. Lee,et al. Extrusion foaming of polystyrene/carbon particles using carbon dioxide and water as co-blowing agents , 2011 .
[41] Chul B. Park,et al. A batch foaming visualization system with extensional stress-inducing ability , 2011 .
[42] G. Hu,et al. A two-step depressurization batch process for the formation of bi-modal cell structure polystyrene foams using scCO2 , 2011 .
[43] Chul B. Park,et al. Numerical Investigation of Nucleating-Agent-Enhanced Heterogeneous Nucleation , 2010 .
[44] M. Mahmoodi,et al. Visualization of bubble dynamics in foam injection molding , 2010 .
[45] Chul B. Park,et al. Change in the critical nucleation radius and its impact on cell stability during polymeric foaming processes , 2009 .
[46] K. Taki. Experimental and numerical studies on the effects of pressure release rate on number density of bubbles and bubble growth in a polymeric foaming process , 2008 .
[47] Hongwei Wu,et al. Multiplex shear stress‐induced nucleation in dynamic microcellular foaming process , 2006 .
[48] Xiangfang Peng,et al. Optimized Polystyrene Cell Morphology by Orthogonal Superposition of Oscillatory Shear , 2006 .
[49] M. Guo,et al. Study of shear nucleation theory in continuous microcellular foam extrusion , 2003 .
[50] Xiang Wang,et al. Effects of Shear Stress and Pressure Drop Rate on Microcellular Foaming Process , 2001 .