株式会社極東書店トップ商品一覧Water Sensitivity of Cement-Based Materials: Exploring Low-Field Proton NMR Relaxometry Applications.

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Water Sensitivity of Cement-Based Materials: Exploring Low-Field Proton NMR Relaxometry Applications.

Water Sensitivity of Cement-Based Materials: Exploring Low-Field Proton NMR Relaxometry Applications.

・ISBN 978-1-041-38199-0 hard GB£ 187.99

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お気に入り
電子版あり 大学・学術機関向け電子ブック(eBook)ISBN 9781042012336
著者・編者Zhou, Chunsheng,
出版社 (CRC Press, UK)
出版年月2026
ページ数454 pp.
言語ENG
ニュース番号<A05-70947>

解説

This book redefines concrete as a moisture-responsive, porous material, revealing how cement-based materials interact with water through their nanoscale pore structure. This transforms our understanding of dimensional stability, long-term durability, and other aspects of concrete science.

Using low-field nuclear magnetic resonance relaxometry, the author non-destructively characterises the in-situ nanoscale pore structure of white cement-based materials and uncovers how it evolves with water content. The author identifies "water sensitivity"-the wetting expansion and drying contraction of calcium silicate hydrate-as the mechanism behind this behavior, analogous to clay minerals. The water sensitivity theory is validated by the microstructural characteristics of the dynamic pore structure, including a layered structure with a large specific surface area and a negative surface charge, and is substantiated by experimental results on permeability and sorptivity. Building on this framework, the book reexamines the effects of the water-to-cement ratio and curing temperature on the pore structure and water permeability of cement mortars. The book also successfully models phenomena, including deviated long-term water absorption, the anomalous dependence of sorptivity on initial saturation, and the isothermal drying of cement-based materials.

This book will serve as an essential reference for concrete scientists, materials engineers, and researchers studying the dimensional stability and long-term durability of cement-based materials, as well as their many other moisture-regulated performances.