Critical degree of saturation: A control factor of freeze–thaw damage of porous limestones at Castle of Chambord, France
暂无分享,去创建一个
[1] Göran Fagerlund,et al. The critical degree of saturation method of assessing the freeze/thaw resistance of concrete , 1977 .
[2] Göran Fagerlund,et al. The international cooperative test of the critical degree of saturation method of assessing the freeze/thaw resistance of concrete , 1977 .
[3] Angélique Prick,et al. Critical Degree of Saturation as a Threshold Moisture Level in Frost Weathering of Limestones , 1997 .
[4] Dario Camuffo,et al. The climate of Rome and its action on monument decay , 2001 .
[5] N. Matsuoka. Microgelivation versus macrogelivation: towards bridging the gap between laboratory and field frost weathering , 2001 .
[6] Salvador Ordóñez,et al. Quantification of salt weathering in porous stones using an experimental continuous partial immersion method , 2001 .
[7] S. Kahraman. Estimating the direct P-wave velocity value of intact rock from indirect laboratory measurements , 2002 .
[8] K. Beck,et al. Characterization, water transfer properties and deterioration in tuffeau: building material in the Loire valley—France , 2003 .
[9] Á. Török. Surface strength and mineralogy of weathering crusts on limestone buildings in Budapest , 2003 .
[10] Rafael Fort,et al. Durability estimation of porous building stones from pore structure and strength , 2004 .
[11] M. R. Yeung,et al. Effect of water saturation on deterioration of welded tuff due to freeze-thaw action , 2004 .
[12] R Altindag,et al. A decay function model for the integrity loss of rock when subjected to recurrent cycles of freezing-thawing and heating-cooling , 2004 .
[13] Multi-scale characterization of two French Limestones used in historic constructions. , 2005 .
[14] R. Altindag,et al. Estimating the index properties of deteriorated carbonate rocks due to freeze-thaw and thermal shock weathering , 2006 .
[15] Siegfried Siegesmund,et al. Mineralogical, geochemical and microfabric evidences of gypsum crusts: a case study from Budapest , 2007 .
[16] R. Siddique,et al. Damage in granite under heating/cooling cycles and water freeze-thaw condition , 2008 .
[17] C. Oguchi,et al. Role of pore size distribution in salt uptake, damage, and predicting salt susceptibility of eight types of Japanese building stones , 2010 .
[18] Jianping Yang,et al. Laboratory investigations on the mechanical properties degradation of granite under freeze–thaw cycles , 2011 .
[19] W Kloppmann,et al. Building materials as intrinsic sources of sulphate: a hidden face of salt weathering of historical monuments investigated through multi-isotope tracing (B, O, S). , 2011, The Science of the total environment.
[20] F. Bayram. Predicting mechanical strength loss of natural stones after freeze–thaw in cold regions , 2012 .
[21] E. Ferrero,et al. Iconography : Effects of temperature and humidity excursions and wind exposure on the arch of Augustus in Aosta , 2012 .
[22] Xavier Brunetaud,et al. Effect of thermal stress, condensation and freezing–thawing action on the degradation of stones on the Castle of Chambord, France , 2014, Environmental Earth Sciences.
[23] Xavier Brunetaud,et al. Historical Study of Chambord Castle: Basis for Establishing the Monument Health Record , 2013 .
[24] Patrick Fontana,et al. Influence and effectiveness of water-repellent admixtures on pozzolana–lime mortars for restoration application , 2013 .
[25] X. Brunetaud,et al. The occurrence of gypsum in the scaling of stones at the Castle of Chambord (France) , 2014, Environmental Earth Sciences.
[26] Amin Jamshidi,et al. Predicting the long-term durability of building stones against freeze–thaw using a decay function model , 2013 .