Academic literature on the topic 'Rheokinetik'

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Journal articles on the topic "Rheokinetik"

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Shumsky, V. F., T. D. Ignatova, L. F. Kosyachuk, I. P. Getmanchuk, O. I. Antonenko, and O. O. Brovko. "The scaling approach to the description of the rheokinetics of the formation of poly(methylmethacrylate), crosslinked polyurethane and its in situ forming blend." Plasticheskie massy, no. 3-4 (June 24, 2019): 11–13. http://dx.doi.org/10.35164/0554-2901-2019-3-4-11-13.

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The scaling approach was used to the interpretation of the rheokinetics of poly(methyl methacrylate) and crosslinked polyurethane formation as well as of its in situ forming blend. It was shown that such approach makes it possible to characterize more completely the processes of phase state change of the system that can not be detected by the traditional methods of describing the experimental rheokinetic results.
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Gehm, Lothar. "Rheokinetik aus Rußland: Rheokinetics. Rheological Transformations in Synthesis and Reactions of Oligomers and Polymers. Von A. Y. Malkin und S, G. Kulichikhin. Hüthig, Heidelberg, 1996. 326 S., geb., 148,-DM. ISBN 3-85739-120-0." Nachrichten aus Chemie, Technik und Laboratorium 45, no. 5 (1997): 528–29. http://dx.doi.org/10.1002/nadc.19970450530.

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Pekař, Miloslav, and Pavel Kopecký. "Miscibility and Crosslinking of Polybutadiene-Based Polyurethanes." Collection of Czechoslovak Chemical Communications 65, no. 11 (2000): 1820–32. http://dx.doi.org/10.1135/cccc20001820.

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Rheokinetics of polybutadiene-based polyurethanes was studied. Sixteen mixtures differing in the miscibility of reactive components and hard segments contents were prepared. Regardless of the miscibility of the components, the rheokinetics behaviour is qualitatively very similar. The viscous response part is formed and finished much earlier than the elastic part. The quantitative dissimilarities, caused by cooperative effect of miscibility and differences in reactivity, are described. Using a well miscible initial mixture need not give the best results as a reactive crosslinker can easily reac
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Malkin, A. Ya, and V. V. Kuznetsov. "Impregnating Flow of a Rheokinetic Liquid." International Polymer Processing 13, no. 3 (1998): 271–76. http://dx.doi.org/10.3139/217.980271.

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Pakhomov, K. S., Yu V. Antipov, and I. D. Simonov-Emel'yanov. "The Viscous Characteristics and Rheokinetics of an Epoxy Oligomer with an Active Thinner." International Polymer Science and Technology 44, no. 1 (2017): 27–30. http://dx.doi.org/10.1177/0307174x1704400105.

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The effect of an EA-grade low-viscosity thinner and of temperature on the rheokinetic properties of an epoxy oligomer of grade UP-610 cured with a Benzam-ABA amine curing agent was investigated. It was established that, when thinner is introduced and the temperature is varied, the lifetime of EFA-B epoxy binder can vary from 25 min to 26 h.
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Vorster, O. C., and L. Halasz. "The use of a rheological technique in the determination of the curing kinetics of a reactive polyester powder coating." Suid-Afrikaanse Tydskrif vir Natuurwetenskap en Tegnologie 23, no. 1/2 (2004): 13–21. http://dx.doi.org/10.4102/satnt.v23i1/2.188.

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In this article a study of the curing process of carboxyl terminated polyester-triglycidyl isocyanurate systems is reported. A comparison is made between the generally used Differential Scanning Calorimetric methods and rheokinetic methods, using a parallel plate oscillating stress rheometer. Gel times were determined and scaling exponents calculated. A new method for the estimation of the extent of reaction is presented and compared with results obtained by means of differential scanning calorimetry
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Wang, K. J., T. J. Hsu, and L. James Lee. "Rheokinetic changes during polyurea reactions in solution." Journal of Applied Polymer Science 41, no. 56 (1990): 1055–72. http://dx.doi.org/10.1002/app.1990.070410516.

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Malkin, A. Ya, A. V. Baranov, and S. V. Timofeev. "Flow with impregnation of a rheokinetic liquid." Journal of Non-Newtonian Fluid Mechanics 54 (August 1994): 489–501. http://dx.doi.org/10.1016/0377-0257(94)80038-3.

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Huang, Bei Qing, Kai Yuan Luo, Xian Fu Wei, Ling Ya Gu, and Mu Qun Yu. "Study on a Characterization Method of Curing Rate of UV Curing System Based on Rheokinetics." Applied Mechanics and Materials 262 (December 2012): 454–59. http://dx.doi.org/10.4028/www.scientific.net/amm.262.454.

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Curing rate is one of the most important performance parameters of UV curing system. During the curing process, curing degree is closely related to curing rate. Cross linking and curing degree of the system could be reflected by rheological characteristics. A method based on rheokinetics was used to characterize radical polymerization reaction which initiated by UV light. Changes of G’ (dynamic modulus) in every stage of curing process were real-time monitored by a rheometer equipped with UV curing accessory. The influence of varieties and contents of photo-initiators on curing process of poly
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Biesenberger, J. A., R. Kumar, R. Garritano, and J. M. Starita. "Rheokinetics for reactive polymer processing." Polymer Engineering and Science 25, no. 5 (1985): 301–4. http://dx.doi.org/10.1002/pen.760250509.

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Dissertations / Theses on the topic "Rheokinetik"

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Hamidi, Abdelmoumen. "Modélisation et simulation du rotomoulage réactif du polyuréthane." Thesis, Paris, ENSAM, 2015. http://www.theses.fr/2015ENAM0016/document.

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Le procédé du rotomoulage réactif est une technologie de fabrication de pièces creuses de taille et géométrie très variés. Une compréhension et une modélisation des phénomènes physiques qui interviennent dans les différentes étapes de la fabrication apportent une contribution importante à la maîtrise de ce procédé. Les travaux abordés dans cette thèse se situent dans le cadre d'un programme plus général visant le contrôle et le pilotage du rotomoulage réactif.Tout d'abord, une caractérisation et modélisation de la cinétique du polyuréthane thermodurcissable en mode dynamique est réalisé suivie
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Migabo, Willy Mbasha. "The effect of gypsum phase components on the rheokinetics of cement paste." Thesis, Cape Peninsula University of Technology, 2018. http://hdl.handle.net/20.500.11838/2763.

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Thesis (Doctor of Engineering in Civil Engineering)--Cape Peninsula University of Technology, 2018.<br>Rheological properties of most ordinary Portland cements are dictated by the hydration reactions that their different phases experience. Cement clinker has four main phases with aluminate being the most reactive. Once in contact with water, the aluminate phase reacts rapidly and generally impedes the early hydration of other cement compounds such as calcium silicates that are responsible for the strength of cement systems. Consequently, the obtained matrix is stiff without much strength. Alte
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Sparks, Stefanie A. "A rheokinetic study of free radical polymerization of polystrene graphite systems performed with a couette rheometer /." Connect to this title online, 2005. http://hdl.handle.net/1811/309.

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Thesis (Honors)--Ohio State University, 2005.<br>Title from first page of PDF file. Document formattted into pages: contains vi, 31 p.; also includes graphics. Includes bibliographical references (p. 30-31). Available online via Ohio State University's Knowledge Bank.
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Dkier, Mohamed. "Etude rhéocinétique de polyamides HT : Application à la mise en forme de matériaux composites par des procédés réactifs." Thesis, Lyon, 2017. http://www.theses.fr/2017LYSEI080/document.

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Les travaux de cette thèse concernent l’étude et la modélisation rhéocinétique de systèmes chimiques réactifs à base de prépolymères PA haute température (PA-HT) pour la mise en forme de composites de hautes performances à base de matrice thermoplastique. Ils visent, plus particulièrement, le développement d’une métrologie adaptée pour le suivi de réactions très rapides sous hautes températures (supérieures à 275°C) et pouvant atteindre des degrés de conversions très élevés à des temps très courts. La viscosité du milieu atteint des valeurs supérieures à 10 Pa.s en moins d’une minute. L’intérê
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Chevrel, Marie-Claire. "Intensification des procédés de polymérisation : passage du batch au continu." Thesis, Université de Lorraine, 2014. http://www.theses.fr/2014LORR0111/document.

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Les polymères de spécialité en solution dans l’eau sont typiquement produits en réacteur agité dans des ateliers multi-produit, offrant la possibilité de produire une large gamme de produits. Cependant, les limites inhérentes au réacteur batch se concrétisent dans ce type de production par une variation de la qualité de polymère d’une synthèse à l’autre, d’une phase de développement difficile de l’échelle laboratoire à la production industrielle, et d’une technologie offrant des échanges de chaleur limité. Des conditions diluées sont requises ce qui implique des cycles de production longs. Le
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Barhoumi, Najoua. "Elaboration et mise en forme de matériaux polymères à base de l’ε-caprolactame (PA6) par le procédé de rotomoulage réactif". Thesis, Lyon, INSA, 2013. http://www.theses.fr/2013ISAL0146/document.

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Cette thèse porte sur le rotomoulage réactif de polyamide 6. Ce procédé a la particularité de présenter des cycles thermiques relativement réduit et de fabriquer des polymères sur mesure contrairement à son homologue conventionnelle. La voie envisagée pour la synthèse in situ de PA6 est la polymérisation anionique de l’ε-caprolactame par ouverture de cycle. Le Caprolactamate de sodium et le bromure de caprolactame-magnésium ont été utilisés comme catalyseurs, et l’hexaméthylène dicarbamoyl dicaprolactame a été employé comme activateur. L’étude rhéocinétique de deux systèmes réactifs lactames q
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Lecocq, Eva. "Caractérisation et mise en œuvre de systèmes réactifs polyamide et polyépoxyde formulés pour le rotomoulage de liners de stockage hyperbare." Phd thesis, INSA de Lyon, 2012. http://tel.archives-ouvertes.fr/tel-01015615.

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Ce travail s'inscrit dans le développement de formulations performantes et processables pour les liners de réservoirs de stockage hyperbare. Une large gamme de formulations à base polyamide et polyépoxyde a ainsi été synthétisée en conditions contrôlées, représentatives du procédé de rotomoulage. Les systèmes polyamide ont été modifiés par copolymérisation statistique et les polyépoxydes par une phase dispersée micro- ou nano-structurée avec des thermoplastiques de haute Tg ou des copolymères blocs. Les propriétés morphologiques, thermiques, mécaniques et barrière de chaque formulation ont été
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Books on the topic "Rheokinetik"

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Malkin, A. Ya. Rheokinetics: Rheological transformations in synthesis and reactions of oligomers and polymers. Hüthig & Wepf, 1996.

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Malkin, Aleksandr I͡Akovlevich. Rheokinetics: Rheological transformations in synthesis and reactions of oligomers and polymers. Huthig & Wepf, 1996.

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Malkin, A. Y., and S. G. Kulichikhin. Rheokinetics. Huethig & Wepf, 1996.

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Malkin, A. Ya, and S. G. Kulichikhin. Rheokinetics: Rheological Transformations in Synthesis and Reactions of Oligomers and Polymers. Wiley & Sons, Incorporated, John, 2008.

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Malkin, A. Ya, and S. G. Kulichikhin. Rheokinetics: Rheological Transformations in Synthesis and Reactions of Oligomers and Polymers. Wiley & Sons, Limited, John, 2008.

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Malkin, A. Ya, and S. G. Kulichikhin. Rheokinetics: Rheological Transformations in Synthesis and Reactions of Oligomers and Polymers. John Wiley & Sons Inc, 1998.

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Book chapters on the topic "Rheokinetik"

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Rosendale, D., and J. A. Biesenberger. "Rheokinetic Measurements of Step- and Chain-Addition Polymerizations." In Advances in Chemistry. American Chemical Society, 1990. http://dx.doi.org/10.1021/ba-1990-0227.ch016.

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Malkin, A. Ya. "Some Problems Related to Flow of “Rheokinetic” Liquids." In Progress and Trends in Rheology V. Steinkopff, 1998. http://dx.doi.org/10.1007/978-3-642-51062-5_10.

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Shulman, Z. P., B. M. Khusid, E. V. Ivashkevich, and N. O. Vlasenko. "Rheokinetics, Flow and Convective Heat Transfer of Polymerizing Oligomers." In Third European Rheology Conference and Golden Jubilee Meeting of the British Society of Rheology. Springer Netherlands, 1990. http://dx.doi.org/10.1007/978-94-009-0781-2_150.

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Yemelyanov, Daniil N. "The Complex of Viscosimeters-Dilatometers for Study of Polymerization Rheokinetics." In Third European Rheology Conference and Golden Jubilee Meeting of the British Society of Rheology. Springer Netherlands, 1990. http://dx.doi.org/10.1007/978-94-009-0781-2_174.

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Sánchez, M. C., M. Berjano, A. Guerrero, and C. Gallegos. "Influence of the Type of Emulsifier on the Rheokinetics of the Emulsification Process." In Progress and Trends in Rheology V. Steinkopff, 1998. http://dx.doi.org/10.1007/978-3-642-51062-5_289.

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"Rheology and Rheokinetics." In Reactive Extrusion Systems. CRC Press, 2004. http://dx.doi.org/10.1201/9780203014172-6.

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"Rheology and Rheokinetics." In Reactive Extrusion Systems. CRC Press, 2004. http://dx.doi.org/10.1201/9780203014172.ch4.

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DONSKOY, A. A., S. G. KULICHIKHIN, V. A. SHERSHNEV, V. D. YULOVSKAJA, and MALKINA YA. "RHEOKINETICS OF NETWORK FORMATION IN ELASTOMER COMPOSITIONS." In Theoretical and Applied Rheology. Elsevier, 1992. http://dx.doi.org/10.1016/b978-0-444-89007-8.50167-2.

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Han, Chang Dae. "Chemorheology of Thermosets." In Rheology and Processing of Polymeric Materials: Volume 1: Polymer Rheology. Oxford University Press, 2007. http://dx.doi.org/10.1093/oso/9780195187823.003.0020.

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Thermosets (e.g., unsaturated polyester, epoxy, urethane) are small molecules containing functional groups, which undergo chemical reactions (commonly referred to as “cure”) in the presence of an initiator(s) or a catalyst(s). In a broader sense, thermosets can be regarded as being parts of reactive polymer systems, which include pairs of polymers (e.g., blends of maleated polyolefin and nylon 6, as presented in Chapter 11) that undergo chemical reactions during compounding, and mixtures of an elastomer and a vulcanizing agent that undergo cross-link reactions (commonly referred to as vulcanization) at an elevated temperature. The subject of investigating the rheological behavior of reactive polymer systems is referred to as “chemorheology.” Since chemorheology is such a very broad field of investigation, one must specify the polymer system under consideration, classifying as chemorheology of thermosets, chemorheology of reactive polymer blends, chemorheology of elastomer vulcanization, and so on. In this chapter, for a number of reasons we restrict our presentation to the chemorheology of thermosets only. These reasons include (1) the limited space available here, meaning that it is not possible to present the chemorheology of every reactive polymer system, (2) thermosets play a very important role in polymer processing from an industrial point of view, and (3) the presentation of the chemorheology of thermosets in this chapter lays the foundation for the presentation of processing of thermosets in Chapters 11–13 of Volume 2. In the 1970s and 1980s, considerable amounts of effort were spent on investigating the chemorheology of thermosets. There are many experimental techniques that have been used to investigate the cure kinetics of thermosets: differential scanning calorimetry (DSC), Fourier transform infrared (FTIR) spectroscopy, dielectric measurements, and rheokinetic measurements. There are monographs (Kock 1977; May 1983; Turi 1981) and a comprehensive review article (Halley and Mackay 1996) on the subject. A better understanding of the chemorheology of thermosets requires an understanding of the kinetics of chemical reactions during cure. It can then easily be surmised that an understanding of the chemorheology of thermosets is much more complex than the rheology of thermoplastics presented in Chapter 6 through Chapter 12.
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Conference papers on the topic "Rheokinetik"

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Bogoslovsky, Andrey V., Ivan S. Kozhevnikov, and Lyubov K. Altunina. "Double-probe viscometer for rheokinetic measurements." In PROCEEDINGS OF THE ADVANCED MATERIALS WITH HIERARCHICAL STRUCTURE FOR NEW TECHNOLOGIES AND RELIABLE STRUCTURES. Author(s), 2018. http://dx.doi.org/10.1063/1.5083279.

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Asghar, Muhammad Ali, Ihtzaz Qamar, Arhum Hassan, and Mamoon A. Alvi. "Rheokinetic Analysis of HTPB-TDI Based Polyurethane Binder System." In 2019 Sixth International Conference on Aerospace Science and Engineering (ICASE). IEEE, 2019. http://dx.doi.org/10.1109/icase48783.2019.9059201.

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Bogoslovsky, Andrey V., Ivan S. Kozhevnikov, and Lyubov A. Stasyeva. "Rheokinetics of gelation of injected high viscosity compositions." In PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON PHYSICAL MESOMECHANICS. MATERIALS WITH MULTILEVEL HIERARCHICAL STRUCTURE AND INTELLIGENT MANUFACTURING TECHNOLOGY. AIP Publishing, 2020. http://dx.doi.org/10.1063/5.0034643.

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Ilyin, S. O., S. V. Kotomin, V. G. Kulichikhin, A. D’Amore, Domenico Acierno, and Luigi Grassia. "Epoxy Nanocomposites—Curing Rheokinetics, Wetting and Adhesion to Fibers." In V INTERNATIONAL CONFERENCE ON TIMES OF POLYMERS (TOP) AND COMPOSITES. AIP, 2010. http://dx.doi.org/10.1063/1.3455554.

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Liu, Xing, Xia Sheng, Jong Keun Lee, and Michael R. Kessler. "Rheokinetic evaluation of self-healing agents polymerized by Grubbs catalyst embedded in various thermosetting systems." In International Conference on Smart Materials and Nanotechnology in Engineering. SPIE, 2007. http://dx.doi.org/10.1117/12.780096.

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Kozhevnikov, Ivan S., Andrey V. Bogoslovsky, and Lyubov K. Altunina. "Area of correctness of the conventional interpretation of the rheokinetics of oil system congelation." In PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON PHYSICAL MESOMECHANICS. MATERIALS WITH MULTILEVEL HIERARCHICAL STRUCTURE AND INTELLIGENT MANUFACTURING TECHNOLOGY. AIP Publishing, 2020. http://dx.doi.org/10.1063/5.0034636.

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Dkier, Mohamed, Khalid Lamnawar, and Abderrahim Maazouz. "Rheokinetic studies for in-situ monitoring of T-RTM process: Rheology coupled to dielectric analysis and FTIR spectroscopy." In PROCEEDINGS OF PPS-32: The 32nd International Conference of the Polymer Processing Society - Conference Papers. Author(s), 2017. http://dx.doi.org/10.1063/1.5016788.

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Moon, Ji Young, Yongchul Shin, Sumin Kim, et al. "Non Conductive Film Analysis Using Cure Kinetics and Rheokinetics for Gang Bonding Process for 3DIC TSV Packaging." In 2021 IEEE 71st Electronic Components and Technology Conference (ECTC). IEEE, 2021. http://dx.doi.org/10.1109/ectc32696.2021.00122.

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Mohan, Sriram, Anandh Balakrishnan, and Mrinal C. Saha. "Cure Kinetics of Neat and Nanophased Polyurethane Foams." In ASME 2008 International Mechanical Engineering Congress and Exposition. ASMEDC, 2008. http://dx.doi.org/10.1115/imece2008-68063.

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In this work, the isothermal cure behavior of a two part polyurethane foam system has been evaluated at temperatures between 25°C–80°C via a rheokinetic method. An ATD CSS 1000-Advanced Polymer Analyzer (APA) rheometer operating in torsion mode was used for this purpose. In the first phase of our work, neat polyurethane foams were investigated and the effects of cure temperature on the final cure modulus and density were documented. The testing procedure consisted of measuring G* as a function of time. The data obtained was fit to a generalized cure kinetics model to evaluate various parameter
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