Published 2006 | Version v1
Book

Probing the water phases and microstructure in a model cement blend matrix used for the encapsulation of intermediate level nuclear wastes

  • 1. Immobilisation Science Laboratory, Department of Engineering Materials, University of Sheffield, Sheffield S1 3JD (United Kingdom)
  • 2. Physics Department, School of Electronics and Physical Sciences, University of Surrey, Guildford GU2 7XH (United Kingdom)

Description

The changes in microstructure and content of water phases during hydration of a 3:1 BFS:OPC blend are investigated by Mercury Intrusion Porosimetry (MIP), freeze-drying, Thermal Gravimetric Analysis (TGA) and 1H Nuclear Magnetic Resonance (NMR) relaxometry. MIP indicates that during the blend hydration, a reduction in the population of capillary pores (larger than about 100 nm) occurs while the population of gel pores (smaller than few tens of nanometres) increases. Between 3 and 90 days, the porosity estimated by MIP decreases from about 36% down to 18% while the median pore size decreases from about 140 nm down to 6 nm. 1H NMR relaxometry shows that after 1 day of hydration, nearly 70% of the evaporable water is held in capillary pores while about 30% is present in gel pores. After two weeks, most of the evaporable water (90%) is found in pores smaller than few tens of nanometres. The amount of evaporable water detected by freeze drying decreases from less than 20 wt.% after one week of hydration down to about 16.3 wt.% after 90 days while the amount of chemically bound water related to the degree of advancement of the cement hydration and detected by TGA increases from 8 wt.% to 10.3 wt.%. During hydration the BFS:OPC blend matrix evolves from an open microporous network to one of a poorly connected network of water rich nanopores with increasing amounts of chemically bound water. (author)

Part of:
Scientific basis for nuclear waste management XXIX. Materials Research Society symposium proceedings, Vol. 932

Additional details

Publishing Information

Publisher
Materials Research Society
Imprint Place
Warrendale, PA (United States)
ISBN
978-1-55899-889-6
Imprint Title
Scientific basis for nuclear waste management XXIX. Materials Research Society symposium proceedings, Vol. 932
Imprint Pagination
1083 p.
Journal Volume
932
Series
Materials Research Society symposium proceedings
Journal Page Range
p. 767-774

Conference

Title
29. international symposium on scientific basis for nuclear waste management
Dates
12-16 Sep 2005
Place
Ghent (Belgium)

Optional Information

Notes
11 refs, 4 figs; This record replaces 38061183