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Heat Transfer in Polyolefin Foams

https://doi.org/10.1007/8611_2010_40
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47/47 checkable references clean · checked 2026-07-25

Every reference with a DOI in the deposited reference list resolved to a known work in Crossref or DataCite at the dated check, and none carried a retraction, withdrawal, or removal notice.

18 without a DOI — not checked. A reference deposited without a DOI is never matched by title or guessed at; it stays outside the checked set, and this line discloses that.

The 47 checked references that resolve
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The thermal conductivity of foams. I. Models for heat conduction
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Novel Carbon Nanotube−Polystyrene Foam Composites for Electromagnetic Interference Shielding
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Creep and Recovery of Polyolefin Foams—Deformation Mechanisms
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Crosslinked Polyolefin Foams: Production, Structure, Properties, and Applications
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The Production of Cellular Crosslinked Polyolefins — Part 2 — The Injection Moulding and Press Moulding Techniques
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Generation of microcellular polymeric foams using supercritical carbon dioxide. I: Effect of pressure and temperature on nucleation
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Characterization of highly filled magnesium hydroxide-polypropylene composite foams
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Heat Transfer of Mineral-Filled Polypropylene Foams
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Thermal Transport Measurements of Individual Multiwalled Nanotubes
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Thermal Conductivity of Carbon Nanofibre-Polypropylene Composite Foams
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Improvement of the laser flash method to reduce uncertainty in thermal diffusivity measurements
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The Development of a Standard for Contact Transient Methods of Measurement of Thermophysical Properties
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Measurement of thermal conductivity, thermal diffusivity and heat capacity of highly porous building materials using transient plane source technique
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Measurement of the thermal diffusivity and specific heat capacity of polyethylene foams using the transient plane source technique
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An experimental study on the thermal conductivity of aluminium foams by using the transient plane source method
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Thermal conductivity of AZ91 magnesium integral foams measured by the Transient Plane Source method
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Numerical investigation of conductive heat transfer in high-porosity foams
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The conductivity of foams: a generalisation of the electrical to the thermal case
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resolves10.1002/(SICI)1099-0488(20000401)38:7<993::AID-POLB10>3.0.CO;2-J
Prediction of the radiation term in the thermal conductivity of crosslinked closed cell polyolefin foams
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The Effect of Cell Size on the Physical Properties of Crosslinked Closed Cell Polyethylene Foams Produced by a High Pressure Nitrogen Solution Process
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Thermal transport in polystyrene and polyurethane foam insulations
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The effective reaction rate and diffusion coefficients for a two-phase medium
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Thermal Conductivity: VIII, A Theory of Thermal Conductivity of Porous Materials
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Cell Size Measurement of Polymeric Foams
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Cellular Structure of EVA/ATH Halogen-free Flame-retardant Foams
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The 18 references without a DOI — listed, not checked
no DOI — not checkedGlicksman, L.R.: Heat transfer in foams. In: Hilyard, N.C., Cunningham, A. (eds.) Low Density Cellular Plastics: Physical Basis of Behaviour, 1st edn. Chapman and Hall, UK (1994)
no DOI — not checkedMills, N.: Polymer Foams Handbook, Engineering and Biomechanics Applications and Design Guide, 1st edn, pp. 46–47. Elsevier, Oxford (2007)
no DOI — not checkedKlempner, D., Sendijarevic, V.: Polymeric Foams and Foam Technology, 2nd edn, pp. 275–288. Hanser, Munich (2004)
no DOI — not checkedMartini, J.E., Suh, N.P., Waldman, F.A.: U.S. Patent 4,473,665 (1984)
no DOI — not checkedUK Zotefoams: High Performance Polymers, 2 (1999)
no DOI — not checkedPerry, D.L., Phillips, S.L.: Handbook of Inorganic Compounds. CRC-Press, Boca Raton (1995)
no DOI — not checkedTye, R.P.: In: Proceedings of the “Cellular Polymers, an International Conference”. Rapra Technology Ltd, London (1991)
no DOI — not checkedTye, R.P., Coumou, K.G.: High temperature-high pressures 13, 695–704 (1981)
no DOI — not checkedASTM E1225 - 04 Standard test method for thermal conductivity of solids by means of the guarded-comparative-longitudinal heat flow technique
no DOI — not checkedISO 8302: Thermal insulation—determination of steady-state thermal resistance and related properties—guarded hot plate apparatus (1991)
no DOI — not checkedISO 13787: Thermal insulation products for building equipment and industrial installations (2003)
no DOI — not checkedASTM E1461-07 Standard test method for thermal diffusivity by the flash method
no DOI — not checkedE1461-92 Standard test method for thermal diffusivity of solids by the flash method
no DOI — not checkedSchuetz, M.A., Glicksman, L.R.: Heat transfer in foam insulation. Massachusetts Institute of Technology, Cambridge (1982)
no DOI — not checkedKaviany, M.: Principles of Heat Transfer in Porous Media (Mechanical Engineering Series), 2nd edn. Springer, New York (1999)
no DOI — not checkedBoetes, R., Hoogendoorn, C.J.: Heat transfer in polyurethane foams for cold insulation. Proc. Int. Symp. Heat Mass Transf. 24, 14–31 (1987)
no DOI — not checkedAlmanza, O., Rodríguez-Pérez, M.A., de Saja, J.A.: The thermal conductivity of polyethylene foams manufactured by a nitrogen solution process. Cell Polym. 18, 385–401 (1999)
no DOI — not checkedShaffer, M.S.P., Sandler, J.K.W.: Carbon nanotube/nanofibre polymer composites. In: Advani, S.G. (ed.) Processing and properties of nanocomposites. World Scientific Publishing Company, Singapore (2006)
What this badge says. CiteStamped means the CHECKABLE references of this work were clean at the dated check: each resolved to a known work in a public registry, and none carried a retraction notice at that time. It says nothing about the quality, findings, or importance of the work itself, and nothing about references deposited without a DOI.

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